Document kaDmzxnM1vDQRBg85nZXmLBzD
Response to the European Chemicals Agency (ECHA) restriction on the manufacture, placing on the market, and use of per- and polyfluoroalkyl substances (PFASs)
Comments for Annex XV restriction report Report v2.0 CONFIDENTIAL
PREPARED FOR: The European Chemicals Agency (ECHA) scientific committees for Risk Assessment (RAC) and for Socio-Economic Analysis (SEAC)
DATE: 22nd September 2023
PREPARED BY: Name:
Mtech Access on behalf of a group of industry stakeholders Alchimia S.r.L Bausch & Lomb BVI Carl Zeiss Meditec D.O.R.C. Dutch Ophthalmic Research Centre (International) B.V. Pharmpur GmbH
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CONTENTS
EXECUTIVE SUMMARY ..............................................................................................................................6 1.0 INTRODUCTION..............................................................................................................................8
1.1 Background ........................................................................................................................................8 1.2 Substances in the scope of this comment .........................................................................................8 1.3 Objectives ..........................................................................................................................................8 2.0 METHODOLOGY .............................................................................................................................9 2.1 Targeted literature review.................................................................................................................9
2.1.1 Overview....................................................................................................................................9 2.1.2 Search parameters.....................................................................................................................9 2.2 Primary research survey ..................................................................................................................12 2.2.1 Overview..................................................................................................................................12 3.0 RESULTS .......................................................................................................................................13 3.1 Targeted literature review...............................................................................................................13 3.1.1 Burden of RD............................................................................................................................13 3.1.2 Surgical management of RD.....................................................................................................14 3.1.3 Availability of technically and economically feasible alternatives...........................................20 3.2 Primary research survey ..................................................................................................................22 3.2.1 Sample demographics..............................................................................................................22 3.2.2 Surgical management of RD.....................................................................................................22 3.2.3 Prospective risk and impact assessment .................................................................................24 3.2.4 Availability of technically and economically feasible alternatives...........................................27 3.2.5 Expert panel recommendations...............................................................................................29 4.0 DISCUSSION .................................................................................................................................30 5.0 CONCLUSION................................................................................................................................32 6.0 REQUEST TO ECHA .......................................................................................................................32 7.0 INDUSTRY STAKEHOLDERS SIGNATORIES .....................................................................................33 8.0 APPENDIX ....................................................................................................................................35 9.0 REFERENCES.................................................................................................................................39
TABLES
Table 1: Burden of disease - Search terms......................................................................................................10 Table 2: Professional medical society websites...............................................................................................10 Table 3: Clinical guidelines - Search terms......................................................................................................10 Table 4: Clinicaltrials.gov - Search terms and filters .......................................................................................12 Table 5: Ocular endotamponades and their chemical/physical properties.....................................................18 Table 6: Ocular endotamponades and their patient-related factors...............................................................19 Table 7: Research and development pipeline .................................................................................................21
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FIGURES
Figure 1: Surgical management of retinal detachment ...................................................................................17 Figure 2: Importance of PFAS-containing tamponades in the surgical management of rhegmatogenous, tractional, and exudative retinal detachment .................................................................................................23 Figure 3: Proportion of RD cases where the clinical needs can and cannot be met with PFAS-free OE .........23 Figure 4: Prospective risk-impact assessment - Patient outcomes.................................................................24 Figure 5: Prospective risk-impact assessment - Direct medical costs.............................................................25 Figure 6: Prospective risk-impact assessment - Indirect costs........................................................................26 Figure 7: Expert consensus statements: Patient outcomes, direct medical costs, and indirect costs.............27 Figure 8: Expert consensus statements: timeline for the availability of technically and economically feasible alternatives ......................................................................................................................................................28 Figure 9: Impact of the timeline for the proposed transition and derogation periods ...................................29 Figure 10: Expert panel recommendations in support of the proposed restriction options...........................29
ABBREVIATIONS
C10F18 C2F6 C3F8 C8F18 CAS CO2 ECHA EU EURETINA F6H8 H2 HCRU INN ISO NSR OE PDMS PDR PFAS PFCL PFD PFO
Perflunafen (perfluorodecalin) Perfluoroethane Perfluoropropane Perfluoro-n-octane Chemical Abstracts Service Carbon dioxide European Chemicals Agency European Union European Society of Retina Specialists Perfluorohexyloctane Hydrogen Healthcare resource use International non-proprietary name International Organization for Standardization Neurosensory retina Ocular endotamponades Polydimethylsiloxane polymers Proliferative diabetic retinopathy Per- and polyfluoroalkyl substance Perfluorocarbon liquids Perfluorodecalin Perfluorooctane
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PVD RAC RD RO1 RO2 RPE RRD SF6 TLR TRD TRRD
Posterior vitreous detachment Scientific committees for Risk Assessment Retinal detachment Restriction option 1 Restriction option 2 Retinal pigment epithelium Rhegmatogenous retinal detachment Sulphur hexafluoride Targeted literature review Tractional retinal detachment Combined traction-rhegmatogenous retinal detachment
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EXECUTIVE SUMMARY
Introduction: A group of industry stakeholders have collaborated to conduct an independent study in response to the European Chemicals Agency (ECHA) restriction proposal on the manufacture, placing on the market, and use of per- and polyfluoroalkyl substances (PFASs). The industry stakeholder group comprises of Alchimia S.r.L, Bausch & Lomb, BVI, Carl Zeiss Meditec, D.O.R.C. Dutch Ophthalmic Research Centre (International) B.V. and Pharmpur GmbH. Each company within the industry stakeholders manufacture ocular endotamponades (OE) that are used in vitreoretinal surgery. The active substances in OE which are included within the scope of this comment are perflunafen/perfluorodecalin (C10F18), perfluorooctane (C8F18), hexafluoroethane (C2F6), perfluorohexyloctane (F6H8), perfluoropropane (C3F8), and heavy silicone oil. International standard EN ISO 16672 defines these substances as medical devices,1 however they are not currently listed for potential derogation within ECHA's restriction proposal in the usecase medical devices (Section A.3.10.1).2 The objective of this study was to demonstrate the application of OE in the surgical management of retinal detachment (RD), and to conduct a prospective risk-impact assessment on patient outcomes, direct medical costs, and indirect costs associated with the proposed restriction options. Additionally, the study will evaluate the availability of technically and economically feasible alternatives.
Methodology: An independent healthcare consultancy was commissioned to conduct the research.3 The study combined a targeted literature review (TLR) and a survey with a panel of vitreoretinal surgeons in France, Germany, Italy, Spain, and the Netherlands. The TLR covered three domains: 1) the humanistic and economic burden of RD; 2) clinical guidelines on the role of OE in the surgical management of RD; and 3) availability of technically and economically feasible alternatives. The survey included six sections: 1) consent to participate; 2) introduction and objectives; 3) about you; 4) role of OE in the surgical management of RD; 5) prospective risk-impact assessment; and 6) recommended response to ECHA.
Results and discussion: RD is a medical emergency that requires prompt surgical intervention to preserve sight, functional ability, and quality of life.4 If RD is not treated, permanent vision loss or blindness is inevitable.5 OE have a long history and critical role in the surgical management of RD. There are three categories of OE: 1) gases (air, SF6, C2F6, C3F8); 2) perfluorocarbon liquids (PFCLs); (C8F18, C10F18, F6H8); and 3) silicone oils (heavy and conventional). All categories are used in the main surgical interventions which include pars plana vitrectomy, scleral buckle and pneumatic retinopexy.19-35 The choice of OE depends upon the severity and location of the retinal detachment, patient characteristics, tamponade duration, and the specific risk-benefit profile.6 Regulatory approved PFAS-free OE exist (air, SF6 and conventional silicone oil), but they are associated with limitations and are not suitable for all clinical contexts. PFAS-free OE are only suitable for the treatment of ~19% of RD patients, leaving the potential for 81% of patients to be untreatable if PFAS-containing OE were removed from the market.7 Consequently, the withdrawal of PFAS containing OE would create a significant clinical unmet need. The prospective risk-impact assessment demonstrated the high risk of the proposed restriction option to patient-outcomes, direct medical costs, and indirect costs. This is indicative of a serious patient level impact, and increased economic burden to impacted individuals and caregivers, the healthcare systems and EU societies because of the proposed restriction. Few PFAS-free alternatives are under investigation however the timeline for their clinical developments and certifications mean that they will not be available at the entry into force date and will highly unlikely be available within the 5-year and 12-year derogation periods. These investigations are in the early stages, in small cohorts (n=10-50), and in a small number of centres, including non-European locations and will in all likelihood take more than 12 years to be developed for safe use in patients. This
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means that they are highly unlikely to lead to a change in global clinical practice. Consequently, 81% of the panel supported a time-unlimited derogation for this use-case.
Conclusion: This study has demonstrated the critical role of PFAS-containing OE in the surgical management of RD. Withdrawal of the substances in the scope of this comment will result in over 80% of RD cases being surgically untreatable, with the devastating consequence of vision impairment, blindness, and other visual complications in otherwise surgically treatable eyes. The proposed restriction would result in a substantial and negative impact on patient outcomes, direct medical costs, and indirect costs. PFASfree options exist, but they are associated with limitations in clinical practice. OE manufacturers will not be able to replace these substances by the entry-into-force date, nor by the 5-year or 12-year derogation periods.
Request to ECHA: The industry stakeholder group request a new clause for a time-unlimited derogation and listing in the use `medical devices' for perflunafen/perfluorodecalin (C10F18), perfluorooctane (C8F18), hexafluoroethane (C2F6), perfluorohexyloctane (F6H8), perfluoropropane (C3F8), and heavy silicone oil.
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1.0 INTRODUCTION
A group of industry stakeholders have collaborated to conduct an independent targeted literature review (TLR) and primary research study in response to the European Chemicals Agency (ECHA) restriction proposal on the manufacture, placing on the market and use of per- and polyfluoroalkyl substances (PFASs). Mtech Access is an independent and impartial healthcare consultancy commissioned to conduct the research.3 The industry stakeholders comprises of Alchimia S.r.L, Bausch & Lomb, BVI, Carl Zeiss Meditec, D.O.R.C. Dutch Ophthalmic Research Centre International B.V. and Pharmpur GmbH.
1.1 Background
Each company within the industry stakeholder group manufactures ocular endotamponades (OE) that are used in vitreoretinal surgery. OE are defined in international standard EN ISO 16672 as a group of non-solid surgically invasive medical devices introduced into the vitreous cavity of the eye to flatten and position a detached retina onto the retinal pigment epithelium (RPE), or to tamponade the retina.1 EN ISO 16672 describes three classes of OE: 1) gaseous 2) perfluorocarbon liquids (PFCLs) and 3) silicone oils.1 OE can be used intraoperatively and removed at the end of surgery (i.e. PFCLs), remain in the vitreous cavity, and be removed later (i.e. silicone oils), or they are reabsorbed via passive diffusion (i.e. gaseous OE).10 Users of these substances are Healthcare Professionals in public and private hospitals, clinics, and ambulatory eye centres who conduct vitreoretinal surgeries.
1.2 Substances in the scope of this comment
The active substances in OE that are impacted by the proposed restriction on the manufacture, placing on the market and use of PFASs and included within the scope of this comment are listed in Appendix 1. They include perflunafen/ perfluorodecalin (C10F18), perfluorooctane (C8F18), hexafluoroethane (C2F6), perfluorohexyloctane (F6H8), perfluoropropane (C3F8), and heavy silicone oil. The active substances listed above are defined by EN ISO 16672 as medical devices;1 however, they are not listed within ECHA's restriction proposal in Section A.3.10.1. Medical devices.2 Therefore, the industry stakeholders have recommended listing these substances within the `Medical devices' section.
1.3 Objectives
This study was commissioned by the industry stakeholders to demonstrate the application of OE in the surgical management of retinal detachment (RD) and to conduct a prospective risk-impact assessment of the proposed restriction options on patient outcomes, direct costs, and indirect costs. Additionally, the study assessed the availability of technically and economically feasible alternatives.
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2.0 METHODOLOGY
An independent healthcare consultancy was commissioned to conduct the research.3 A TLR was conducted to establish the application of OE in the surgical management of RD. The review focused on three areas:
1. The humanistic and economic burden of RD 2. The types of surgical intervention and the role of different regulatory approved OE in the
surgical management of RD 3. An assessment of the availability of technically and economically feasible alternatives
A survey was conducted with a panel of vitreoretinal surgeons to gather expert opinions on the role and importance of OE in the surgical management of RD and to conduct a prospective impact assessment of the proposed restriction options on patient outcomes, direct costs, and indirect costs.
2.1 Targeted literature review
2.1.1 Overview
The scope of the TLR included five European markets: France, Germany, Italy, Spain, and the Netherlands. The review covered three domains:
Burden of disease: To understand the pathology and pathogenesis of RD and the humanistic and economic burden of the disease
Clinical guidelines: To establish the current clinical consensus on the surgical management of RD, and the role of OE in the care pathway
Availability of technically and economically feasible alternatives: To identify the current regulatory approved OE and their chemical and physical properties and to evaluate the research and development pipeline to identify any PFAS-free alternatives in development
2.1.2 Search parameters
2.1.2.1 Burden of disease
To explore the burden of RD, a PubMed search of published, peer-reviewed research studies was conducted. Search terms are provided in Table 1.
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Table 1: Burden of disease - Search terms Topic
Disease
Retinal detachment Rhegmatogenous Tractional
Impact
Incidence Prevalence Frequency Mortality Complications Cost Burden
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Search term
Exudative Retinal tear Retinal hole
Comorbidity Quality of life Activity Socio-economic Productivity Humanistic Economic
2.1.2.2 Clinical guidelines
A targeted search of professional medical society websites was conducted to identify published evidencebased guidelines for the surgical management of RD. Sources are provided in Table 2.
Table 2: Professional medical society websites Country
Source
France Germany
Italy
Socit Francaise Ophtalmologie/French Society of Ophthalmology
Deutsche Ophthalmologische Gesellschaft/German Ophthalmological Society
Bundesverband fr Ambulantes Operieren e.V./Federal Association for Outpatient Surgery
Societ Oftalmologica Italiana/Italian Ophthalmological Society
Website www.sfo.asso.fr/ www.dog.org/
www.operieren.de/
www.soiweb.com/
Spain
The Netherlands Europe
Gruppo Italiano di Chirurgia Vitreoretinica/Italian Group of Vitreoretinal Surgery Socieded Espanola De Oftalmologia/Spanish Society of Ophthalmology Nederlands Oogheelkundig Gezelschap /Ophthalmological Society of the Netherlands
European Society of Retina Specialists (EURETINA)
European Society of Ophthalmology
www.givre.it/ www.oftalmoseo.com/ www.oogheelkunde.org/ www.euretina.org/ www.soevision.org/
Additional searches were conducted using Google and Google Scholar. Google translate was used to conduct the searches in French, German, Dutch, Spanish and Italian. Search terms are provided in Table 3.
Table 3: Clinical guidelines - Search terms Topic
Search terms
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Surgical technique Disease Tamponades
Guidelines
Ocular tamponade(s); endotamponade(s) Pneumatic retinopexy Pars plana vitrectomy; vitrectomy
Retinal detachment Rhegmatogenous Tractional
Gas Air Sulphur hexafluoride; SF6 Hexafluoroethane; perfluoroethane; C2F6 Perfluoropropane; C3F8 Silicone oil; heavy; conventional
Guideline(s); guidance Position statement Consensus
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Scleral buckle; scleral buckling; scleral indentation; scleral depression
Surgery; surgical; operative
Exudative Retinal tear Retinal hole Perfluorocarbon liquids (PFCL) Perfluoroctane; C8F18 Perfluorohexyloctane; F6H8 Perflunafen; perfluorodecalin; C10F18 PFAS; per- and polyfluoroalkyl
Clinical Pathway Management; treatment
2.1.2.3 Availability of technically and economically feasible alternatives
2.1.2.3.1 Regulatory approved OE EN ISO 16672 was used to produce a list of current regulatory approved OE.1 PubMed and Google Scholar searches were used to obtain information on the chemical and physical properties associated with each OE.
2.1.2.3.2 Research and development pipeline A targeted search of the Clinicaltrials.gov database was conducted to identify clinical trials to investigate OE for the treatment of RD. Search terms and filters are described in Table 4.
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Table 4: Clinicaltrials.gov - Search terms and filters Category
Search term or filter
Condition or disease
Retinal detachment and its synonyms Ocular tamponade; endotamponade
Intervention or treatment
Include drug, medical device, procedure, other Exclude vaccine, diagnostic test and studies relating to regulatory approved OE
Location
No filter
Study status
No filter
Eligibility criteria
No filter
Study phase
No filter
Study type
No filter
Date range
01/01/2013 - 01/09/2023
Abbreviations: OE, ocular endotamponades.
Additionally, PubMed and Google scholar were searched to identify recent publications relating to future advancements in the surgical management of RD.
2.2 Primary research survey
2.2.1 Overview
Although the scope of the ECHA proposal will apply to all EU countries, the primary research survey was conducted in a sub-set of five European markets (France, Germany, Spain, Italy, and the Netherlands) to permit data collection and international co-ordination and to allow a time-sensitive response. The purpose was to gain expert opinions on the role of OE in the surgical management of RD and to conduct a prospective impact assessment of the proposed restriction options.
2.2.1.1 Sample/recruitment
The survey aimed to recruit an expert panel of up to 20 ophthalmologists with experience in vitreoretinal surgery (n=4 in each country, France, Germany, Spain, Italy, and the Netherlands). Respondents were identified by the industry stakeholders as a group of key opinion leaders and influential experts in this indication, with many holding senior positions in professional medical societies. Respondents were invited to participate via email. Data collection was conducted between 25th August and 10th September 2023.
2.2.1.2 Survey design
The survey was developed in an online digital format and comprised of six sections: Consent to participate: To present essential information relating to market research codes of conduct and to gather consent to participate Introduction and objectives: To present information on what PFAS are and why ECHA is concerned about the negative effects on human health and the environment. Additionally, to present detail of the proposed restriction options, transition period, and derogations
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About you: To collect basic demographic information on the professional experience of respondents in relation to vitreoretinal surgery
Role of OE in the surgical management of RD: To validate the outputs of the targeted literature review with respect to the surgical management of RD and to gain the experts' perspective on the role and importance of different OE
Prospective impact assessment: To gain the expert panel's predictions for the impact of the proposed restriction options on patient outcomes, direct medical costs, and indirect costs
Conclusion: To gather the expert panel's recommendations in response to the proposed restriction options, transition period and derogations
A mixture of open-ended and closed-ended questions were used. The closed-ended questions included multiple choice (single or multiple response format) and continuous 5-point Likert rating scales. Openended questions were used to provide qualitative and contextual insights.
2.2.1.3 Analysis
Data were extracted from the survey and imported into an Excel spreadsheet for analysis. Descriptive statistics including mean, and range were applied to the continuous 5-point Likert scales. Frequency counts were applied to the single and multiple-choice responses. To create the prospective risk-impact matrices, the mean impact was calculated for each criterion and plotted on the X axis (ranging from 1 [no impact] to 5 [severe impact]), and the mean likelihood was calculated and plotted on the Y axis (ranging from 1 [not at all likely] to 5 [extremely likely]). This enabled visualisation of the overall risk of each variable, considering its impact and likelihood.
3.0 RESULTS
3.1 Targeted literature review
3.1.1 Burden of RD
Retinal detachment (RD) is the separation of the neurosensory retina (NSR) from the underlying retinal pigment epithelium (RPE).11 RD is a sight-threatening condition and is considered one of the few known ocular emergencies.11 The retina is one of the most metabolically active tissues in the body. When the retina detaches from the underlying RPE, it loses oxygen and nutrient supply, resulting in retinal ischaemia.4, 12 Without surgical intervention, retinal detachment can lead to permanent blindness in the affected eye. Therefore, prompt diagnosis and treatment are critical to prevent visual loss, functional impairment and maintain quality of life.4
Retinal detachment occurs when subretinal fluid accumulates between the NSR and the RPE. This process can occur through different mechanisms, resulting in four major types of RD: rhegmatogenous, tractional, exudative, and combined tractional-rhegmatogenous.11
Rhegmatogenous retinal detachment
Rhegmatogenous retinal detachment (RRD) is the most common form of RD and is characterised by the presence of a full thickness retinal break or defect in the NSR.11, 13 This allows fluid from the vitreous cavity to enter the subretinal space, resulting in the separation of the NSR from the underlying RPE.13 In order for
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an RRD to occur, the vitreous must be at least partially liquefied, as this provides the low viscosity fluid that is able to flow through the retinal break.11 Predisposing factors to RRD are less obvious than for the remaining types of retinal detachment - they include vitreoretinal adhesions in association with posterior vitreous detachment (PVD), local ocular diseases, cataract surgery and trauma.11
Previously untreatable, RRD now achieves primary surgical success rates of over 80-90%, with complex cases also being amenable to treatment.13
A meta-analysis conducted in 2019 found the mean annual incidence of RRD in Europe to be 13.3 cases per 100,000 inhabitants.14
Tractional retinal detachment
Tractional retinal detachment (TRD) occurs when the NSR separates from the RPE due to tractional forces in the absence of a retinal tear.11 This type of retinal detachment is most common in proliferative retinal and vitreoretinal diseases, the most common being proliferative diabetic retinopathy (PDR), which is a complication of prolonged and uncontrolled diabetes mellitus.11, 15
Due to the multifactorial aetiology of TRD, the exact epidemiology has not been reported in large scale studies.16
Exudative retinal detachment
Exudative retinal detachment occurs when there is a disruption to the integrity of the blood-retinal barrier, leading to accumulation of fluid from the vessels of the retina, the choroid, or both.17 This can occur in a number of vascular, inflammatory and neoplastic diseases of the retina, RPE and choroid.11 This type of retinal detachment can also occur due to accumulation of blood in the subretinal space, known as haemorrhagic retinal detachment.11
Due to the multifactorial origin of exudative retinal detachment, no previous data on the frequency of the disease were available in reviewing the literature.18
Combined traction-rhegmatogenous retinal detachment
Combined traction-rhegmatogenous retinal detachment (TRRD) occurs because of a combination of a retinal tear and retinal traction. The major component of retinal detachment is usually traction with the tear being the secondary mechanism. TRRD is therefore also most common in proliferative retinal and vitreoretinal diseases.11
3.1.2 Surgical management of RD
Guidelines from professional medical societies listed in Table 2 describe the current medical consensus for the surgical management of RD. A summary of the three main surgical techniques, pars plana vitrectomy, scleral buckle and pneumatic retinopexy, is presented in Figure 1.19-35
3.1.2.1 OE: their role, and chemical and physical properties
OE are non-solid surgically invasive medical devices introduced into the vitreous cavity of the eye to flatten and position a detached retina onto the RPE, or to tamponade the retina.1 EN ISO 16672 describes three classes of OE: 1) gaseous OE; 2) PFCLs; and 3) silicone oils.1 OE can be used intraoperatively and removed at
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the end of surgery (i.e. PFCLs), remain in the vitreous cavity and removed later (i.e. silicone oils), or they are reabsorbed via passive diffusion (i.e. gaseous OE).10 The choice of OE depends upon the severity and location of the retinal detachment, patient characteristics, tamponade duration, and the specific risk- benefit profile.6 The chemical and physical properties of each of the categories of OE is presented in Table 5 and Table 6.
3.1.2.1.1 PFCLs
PFCLs are a group of dense liquids that are used during surgery to reattach the retina and are mainly used during complex cases. PFCLs do not remain in the eye and are removed at the end of surgery. PFCLs are crucial in the manipulation and flattening of the retina, and greatly improve the efficiency and safety of these procedures.36
3.1.2.1.2 Gaseous OE
Gas tamponades are used during most types of RD surgery (e.g. pars plana vitrectomy, scleral buckling and pneumoretinopexy). The gas is injected into the eye during surgery to flatten the retinal break. The gas is left in the eye to be gradually reabsorbed, in contrast to silicone oils, which require a second surgery to remove.39 The most commonly used gas tamponades are C3F8 and SF6, which have been the standard of care since the 1990s.37, 38 C3F8 remains in the eye for approximately 8 weeks and is categorised as a Class IIb medical device based on this long-term retention in the eye.1 In contrast, SF6 is retained in the eye for approximately 2 weeks and is categorised as a Class IIa medical device based on its shorter-term retention in the eye.1
3.1.2.1.3 Silicone oils
Silicone oils are used as longer-term tamponade agents and are suitable in clinical cases when the tamponade must remain in place for a longer period of time to promote retinal reattachment. Indications for the use of silicone oil include more complex cases, such as RRD with proliferative vitreoretinopathy.39 Unlike gases, the silicone oil tamponade does not re-absorb naturally but instead must be removed by a second surgery.39
3.1.2.1.4 PFAS containing OEs
Within the three main categories of OE (PFCLs, ocular gases, and silicone oils), ocular gases and silicone oils can be further categorised into PFAS-containing and PFAS-free.
PFCLs are fluorochemicals, and their unique chemical composition is what makes them an ideal interoperative tool.40 However, all PFCLs contain PFAS (C8F18, C10F18, and F6H8) so are therefore impacted by the proposed restriction by ECHA. There are no PFAS-free alternatives to PFCLs.
Gas tamponades include air and SF6 which are PFAS-free, and C2F6 and C3F8 which are PFAS-containing. The main differentiator of the different types of gaseous OE are the length of duration in the eye, and the surgeon's choice depends on the desired length of the tamponade effect. Air has the shortest tamponade duration of 5-7 days, and C3F8 has the longest duration of up to 8 weeks (Table 5).
There are two categories of silicone oil tamponades: conventional, which is PFAS-free; or heavy silicone oil, which is conventional silicone oil plus semi fluorinated alkanes, which are PFAS-containing (Table 5). The two categories differ in that heavy silicone oil has a higher density so is favoured for its ability to treat
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inferior RDs, and is useful in patients that cannot perform post-operative posturing, which conventional silicone oil is not appropriate for.41
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Figure 1: Surgical management of retinal detachment
Diagnosis, assessment, and referral for surgery
Only surgery can prevent loss of vision following retinal detachment, and cross-country guidance highlights the importance of timely surgical intervention to preserve sight.19,20 Retinal detachment is assessed via eye examinations, visual acuity tests, ophthalmoscopy, or ocular ultrasound.21,22,23 It is important to determine the location of the tear and type of pathology, as this informs the subsequent course of action22. The three main types of retinal pathology are rhegmatogenous, tractional, and exudative. Both tractional and rhegmatogenousretinal detachment require surgery, but not exudative.35
Surgical management
There are three main procedures used in the surgical management of retinal detachment - pars plana vitrectomy, scleral buckling and pneumatic retinopexy. All three may use an ocular endotamponade (silicone oil, gas, or perfluorocarbon liquids/semi fluorinated alkanes). The choice of tamponade is not standardised or specified in ophthalmological guidelines in the five countries and depends on the clinical need and severity of the detachment. The choice of procedure also depends on severity of detachment, macular involvement and vitreoretinal proliferation.24,25
Pars plana vitrectomy
Scleral buckle
Pneumatic retinopexy
The vitreous is removed and the retinal break is closed using laser or cryotherapy. Based on the characteristics of the detachment, a buffering substance is used to replace the vitreous fluid and hold the retina in place: either SF6 or C3F8 gas or silicone oil. Silicone oil requires another operation to remove, whereas gas is reabsorbed on its own.19,20,25,26,27 In cases where the risk of recurrence is high, the buffering substance will not be removed.20
A grooved buckle is placed at the level of the tear, creating an indentation in the eye wall that causes the underlying choroid to press against the retina and close the tear. The retinal tear can be closed with laser photocoagulation or cryotherapy. In some cases, the fluid is drained from the eye and gas or air is injected into the vitreous cavity for stronger adhesion. 19,20,25,19,26,27
In the case of retinal ruptures located in the upper two thirds of the fundus, a pneumatic retinopexy is performed where a gas bubble is injected into the vitreous cavity, usually C3F8 or SF6. Laser photocoagulation is used to repair the break. Pneumatic retinopexy is typically used for 'uncomplicated' retinal detachments.20,25,26,28 Pneumatic retinopexy is used less frequently in France19 and used to treat smaller tears in Germany.21
Pars plana vitrectomy is the most widely used option for complex and recurrent retinal detachment.30,31
Scleral buckling is commonly used for uncomplicated retinal detachment or where the patient's natural lens is still in place (as opposed to an artificial
lens placed during cataract surgery), but its popularity has declined in recent years.32
Pneumatic retinopexy is used less frequently than pars plana vitrectomy and scleral buckling, but is favoured as a minimally invasive and non-
incisional procedure with faster recovery times.33
Postoperative care
Further surgery may be required to remove the silicone oil tamponade. Patients are instructed to apply antibiotic/anti-inflammatory eye drops, ointment and a protective covering to the eye. Patients should limit usual activities to prevent eye strain and keep their head in a certain position for a specific period of time.19,23,26,27,34
In Germany and the Netherlands, the choice of vitrectomy or scleral buckle depends on if patient has previously had cataract surgery and an artificial lens fitted
In German and
Italian
guidelines, laser
and
cryocoagulation
techniques are
used in cases of
an incomplete
rupture and can
be completed in
the outpatient
setting. Laser or
cryotherapy on
its own is
reserved for less
severe cases and
generally do not
use
PFAS
containing
products21, 29
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Table 5: Ocular endotamponades and their chemical/physical properties
Chemical formula
PFAS-containing/ impacted by ECHA restriction
Duration in the eye
100% gas expansivity
Isoexpansile concentration
Injection times
Viscosity (cSt)
Interfacial tension (mN/m)
Conventional Conventional silicone oil
silicone oil36, 42 (PDMS)
Conventional silicone oil + partially fluorinated Hoiel6a, v36y, 4s2i-l4i4cone CnH2n/CnH2n+2 (PDMS + partially fluorinated
alkene/ alkane)
-
Long-term, requires surgical removal to restore clear vision and prevent negative outcomes -
-
50-240 1,000- 35
seconds 5,000
-
N/A
1,400- 41-45
3,300
Air
5-7 days
-
-
-
-
70
Gas
SF6 (sulphur hexafluoride)
tamponade6, 36,
42-44
C2F6 (perfluoroethane)
2 weeks
2x
4-5 weeks
3x
20%
-
-
70
16%
-
-
70
C3F8 (perfluoropropane)
8 weeks
4x
14%
-
-
70
PFCL/semi
C8F18 (perfluoro-n-octane)
fallukoarninesa3t6e, d42, 45- C10F18 (perfluorodecalin)
49
F6H8 (perfluorohexyloctane)
Short-term, as an
-
intra-operative aid
Short/medium term -
as a post-operative
tamponade
-
-
-
0.8
55.0
-
-
2.7
57.8
-
-
2.5
49.1
Abbreviations: CnH2n, alkene; CnH2n+2, alkane; cSt, centistoke; ECHA, European Chemicals Agency; mN/m, millinewton/metre; PDMS, polydimethylsiloxane polymers; PFCL, perfluorocarbon liquids; SO, silicone oil. PFCLs can be used short term as an intra-operative tool (most common) or short-/medium-term as a post-operative tamponade. PFCLs require complete removal and exchange with another agent (fluid, air, or SO). This can be done either in the initial retinal detachment surgery (if used as an intra-operative tool) or in a secondary surgery if used a short-/medium-term postoperative tamponade. Choice of exchange agent is driven by indication.
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Table 6: Ocular endotamponades and their patient-related factors Chemical subtype
Strict (FDP) posturing required
1-day vision recovery
Need for second surgery
Conventional silicone oil36, 42
Conventional silicone oil (PDMS)
Heavy silicone oil36, 42
Conventional silicone oil + partially fluorinated
CnH2n/CnH2n+2
(PDMS + partially fluorinated
alkene/alkane)
No, vision will remain partially blurred until the oil is removed
Air
Gas tamponade36, 42
SF6 (sulphur hexafluoride)
C F (perfluoroethane)
26
C3F8 (perfluoropropane)
No, the vision is heavily blurred until the bubble is absorbed or
removed
C8F18 (perfluoro-n-octane)
CF
PFCL/semi-fluorinated alkanes36, 10 18
42, 47
(perfluorodecalin)
No, vision will remain partially
blurred until PFCLs are removed
F6H8 (perfluorohexyloctane)
Abbreviations: CnH2n, alkene; CnH2n+2, alkane; FDP, face down posturing; PFCL, perfluorocarbon liquids; PDMS, polydimethylsiloxane polymers; SO, silicone oil. The table summarises the most common posturing approach and does not account for patient-specific differences and/or surgeon recommendations for post-operative recovery. The level of vision clarity/blur will vary with retinal problem and choice of tamponade. For gas tamponades, vision will be highly blurred until the air or gas has been reabsorbed. For SO, vision will be a little clearer than gas tamponade, but will remain partially blurred until removal.
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3.1.3 Availability of technically and economically feasible alternatives
3.1.3.1 Regulatory approved OE
A list of regulatory approved OE is presented in Table 5 and Table 6.6, 36, 41-56 There are three PFAS-free OE: air, sulphur hexafluoride (SF6), and conventional silicone oil; however, each compound presents significant limitations in surgical practice.
3.1.3.1.1 Air
Air can be used as a short-term tamponade agent. Air is reabsorbed from the vitreous cavity within 5-7 days, compared with around 2 weeks for SF6, 4-5 weeks for C2F6 and 8 weeks for C3F8.36 Longer tamponade durations lead to more favourable outcomes for retinal reattachment; therefore, the short-term duration of the air tamponade may not be suitable for all RD cases and potentially increase the risk of redetachment following surgery.36
Evidence has shown that air tamponade is inferior to SF6 in achieving anatomical closure for macular holes,57, 58 and a systematic review and meta-analysis of the efficacy of air tamponade in the treatment of RRD found that the evidence for the comparable outcomes of air to gas tamponades was low. Therefore, its use as a substitute for other tamponade agents cannot be recommended.59
3.1.3.1.2 SF6
SF6 has comparable efficacy to PFAS-containing products.60 SF6 is the shortest acting of the fluorinated gas tamponades, remaining in the vitreous cavity for around 2 weeks.36 However, SF6 is the most environmentally damaging of the OEs due to it being the most potent of the greenhouse gases, with 23,500 times the global warming potential of CO2 .61 SF6 has been identified in the United Nations' Kyoto Protocols and efforts are underway to reduce its use by replacing it with alternatives. A reduction in the use of SF6 will contribute to a significant reduction in CO2 emitted by the healthcare system, with one UK study finding that replacing SF6 gas with other tamponade agents in RD surgery would reduce CO2 emissions by 41-47% per hospital.62
3.1.3.1.3 Conventional silicone oil
There are two types of silicone oil used in retinal detachment surgery. Conventional silicone oil and heavy silicone oil, which is conventional silicone oil combined with partially fluorinated alkanes or alkenes. Silicone oil tamponades are the longest acting and remain in the eye until removed by a second surgery.63
The use of silicone oil tamponade is associated with complications, including development of cataracts in phakic eyes, recurrent retinal detachments, increased intraocular pressure, silicone oil emulsification and subretinal migration of the oil. In addition, the surgery required to remove the tamponade is associated with further complications and may contribute to worse outcomes.63
Conventional silicone oil is lighter and less dense than heavy silicone oil and is not appropriate for the treatment of proliferative vitreoretinopathy, inferior retinal tears, and macular surgery due to its buoyancy. In addition, conventional silicone oil requires post-operative posturing where patients must remain in a certain position to prevent the movement of the tamponade, which is not possible for all patients with other comorbidities or orthopaedic problems.64
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3.1.3.2 Research and development pipeline
The targeted search of ClinicalTrials.gov identified three clinical trials that met the inclusion criteria. A summary of the three trials is presented in Table 7. The alternative agents being tested consisted of hydrogels composed of hyaluronic acid (n=2) and medium-chain triglycerides (n=1).
Table 7: Research and development pipeline
Study title
Description
Suprachoroidal Visco-buckling for the Treatment of Rhegmatogenous Retinal Detachment (VIKING)65
Clinical Investigation of the Safety and Effectiveness of the ABV-1701 Ocular Endotamponade66
Evaluating Mediumchain Triglycerides as a Temporary Intraocular Tamponading Agent for Retinal Detachment67
The study is a feasibility trial comparing standard surgery for retinal detachment (vitrectomy, cryotherapy, and gas) with a surgical variation that replaces the intraocular gas tamponade with suprachoroidal injection of viscoelastic underneath the break that caused the retinal detachment
The objective of the investigation is to document the safety and effectiveness of the ABV-1701 ocular endotamponade when compared with the SF6 Gas ocular endotamponade. ABV-1701 is an injectable, in-situ-forming hydrogel, composed of oxidised hyaluronic acid and adipic acid dihydrazide
The study was a single group assessment of the use of mediumchain triglycerides as a tamponade agent during vitrectomy
Sample size
50 patients with primary rhegmatogenous retinal detachment
Location UK only
Date of completion
December 2024 (estimated)
Phase 1
40 patients with uncomplicated retinal detachment
Thailand December 1
and
2025
Australia (estimated)
only
10 patients with France January
1
retinal
only
2023 (no
detachment
results
requiring a
reported)
classical surgical
procedure with
silicone oil
There are significant challenges associated with developing a suitable vitreous substitute that means even the 12-year derogation period is insufficient. Substitutes must have long-term viability and biocompatibility, ensure clear vision post-surgery, be non-toxic, provide sufficient mechanical strength, and ideally be as structurally and functionally close to the natural vitreous as possible.67
Hydrogels consisting of natural and synthetic polymers are being explored for their favourable properties as a vitreous substitute (high water content, high clarity, suitable density, biocompatibility) and may overcome some of the limitations of existing ocular tamponade agents, such as blurred vision following surgery and the need for a second surgery to remove silicone oil tamponades.69 To date, studies evaluating hydrogels have focused on pre-clinical and animal models,67 yet studies have been limited by poor transparency, deviating refractive indices, unsuitable degradation, poor biocompatibility, and toxicity.68
A lack of in-human evidence suggests a significant delay before alternative OE agents become widely used and available to all patients who need them.
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3.2 Primary research survey
3.2.1 Sample demographics
The expert panel comprised of 16 medical professionals experienced in the conduct of vitreoretinal surgery. Primary clinical practice was in France (4, 25%), Germany (3, 18.8%), Spain (3, 18.8%), Italy (3, 18.5%) and the Netherlands (3, 18.8%), and included representatives from public (8, 50%), private (3, 18.8%) and public-private (5, 31.3%) funded settings. The panel had between 12-45 years of experience in conducting vitreoretinal surgery, with a mean of 25 years clinical experience. In total, the panel conduct approximately 8,150 vitreoretinal surgeries per year.
3.2.2 Surgical management of RD
The panel was invited to review Figure 1, which describes the current professional medical society recommendations for the surgical management of RD. 94% [15 of 16 respondents] validated it as an accurate depiction of current clinical practice. The panel also provided an overview of the proportion of each surgical procedure performed by pathology sub-type - the results are presented in the Appendix 2.
3.2.2.1 Role and importance of regulatory approved OE
The expert panel was invited to rate the overall importance on a scale of 1-5 (where 1 is not at all important and 5 is extremely important) of each category of PFAS-containing OE (gas, PFCL and silicone oil), for each pathology sub-type (exudative, tractional and rhegmatogenous). The results demonstrate the moderate-to-high overall importance of PFAS-containing gas (x = 2.6, 4.4, 4.6), PFCL (x = 3.0, 4.5, 4.3) and heavy silicone oil (x = 2.6, 3.5, 3.5) in exudative, tractional and RRD respectively. Surgical intervention is rarely indicated for exudative RD, explaining the lower overall importance for this sub-type. Heavy silicone oil is associated with complications such as intraocular pressure increase, emulsification, intraocular inflammation, and there is a risk of additional complications during its subsequent removal. Consequently, the panel rated heavy silicone oil as lower overall importance in the treatment paradigm.
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Figure 2: Importance of PFAS-containing tamponades in the surgical management of rhegmatogenous, tractional, and exudative retinal detachment
Gases (C2F6, C3F8)
PFCLs (F6H8, C8F18/PFO, C10F18/PFD)
Silicone oil (heavy)
Exudative
Tractional
Rhegmatogenous
12345
12345 1 2 3 4 5
Not at all
Extremely Not at all
Extremely Not at all
Extremely
important
important important
important important
important
Abbreviations: PFCL, perfluorocarbon liquid; PFAS, per- and polyfluoroalkyl substances; PFD, perfluorodecalin; PFO, perfluorooctane. Respondents were asked: Overall, how important is it to have the option of using PFAS-containing tamponades in the surgical management of retinal detachment? Please rate the importance for each type of retinal pathology and PFAS-containing product type (gases, PFCLs and heavy silicone oil). The importance was rated on a scale of 1 (not at all important) to 5 (extremely important). The average level of importance was plotted (n=16).
The panel was also invited to comment on the percentage of RD cases that could be successfully treated with PFAS-free OE including air, SF6, and conventional silicone oil. The results demonstrate that the majority of clinical needs cannot be met with PFAS-free OE and an estimated 81% of RD cases would be left untreatable if PFAS-containing OE were removed from the market.
Figure 3: Proportion of RD cases where the clinical needs can and cannot be met with PFAS-free OE
19% 81%
Can be treated with PFAS-free OE Cannot be treated with PFAS-free OE
Abbreviations: OE, ocular endotamponades; PFAS, per- and polyfluoroalkyl substances; RD, retinal detachment. Respondents were asked: Approximately, for what percentage of your current retinal detachment cases, can the clinical needs of patients be met with the current PFAS-free tamponades (air and conventional silicone oil), including all types and severities of detachments/tears? Responses were given as a percentage. Percentages from all respondents (n=16) were averaged.
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3.2.3 Prospective risk and impact assessment
The expert panel was invited to participate in a prospective risk and impact assessment. Each expert independently rated the likelihood (1: not at all likely to 5: extremely likely) and impact (1: no impact to 5: severe impact) of a series of prospective patient-related outcomes, direct medical costs and indirect costs that could occur because of the proposed restriction options. All patient outcomes, direct medical costs and indirect costs were rated as high risk (red), meaning that the outcomes have a high likelihood of occurrence and a high impact (Figure 4, Figure 5, Figure 6).
Figure 4: Prospective risk-impact assessment - Patient outcomes 5
4
Likelihood
3
2
1
1
2
3
4
5
Impact
Key: High risk
Moderate risk Low risk
Patient outcome 1. Increased rate of anatomical failure 2. Increased incidence of incomplete or unaddressed primary pathology 3. Increased requirement for repeat surgeries
Impact: x 4.7 4.3 4.9
Likelihood: x 4.75 4.6 4.9
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4. Increased number of severely visually impaired individuals
4.4
4.7
5. Increased number of legally blind patients
4.4
4.7
6. Reduction in vision related quality of life
4.3
4.6
7. Increased rates of depression, anxiety, and social isolation
4.1
4.2
8. Reduction in functional ability, including activities of daily living,
4.1
4.2
mobility, and independence
9. Increased risk of falls and fall related injuries, including hip fractures
4.1
4.2
10. Increased risk of post-operative complications including cataract
4.3
4.0
formation, glaucoma, keratopathy, hypotony, or haemorrhage into the
vitreous cavity
Abbreviations: PFAS, per- and polyfluoroalkyl substances. Respondents were asked: Please rate the likelihood of each of these outcomes occurring as a result of a ban on PFAS-containing substances in vitreoretinal surgery (1= not at all likely; 5= extremely likely). Please rate the impact of each of these outcomes occurring as a result of a ban on PFAS containing substances in vitreoretinal surgery (1= no impact; 5= severe impact). The average rating was plotted (n=16).
Figure 5: Prospective risk-impact assessment - Direct medical costs 5
4
Likelihood
3
2
1
1
2
3
4
Impact
Key: High risk
Moderate risk Low risk
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Direct medical costs
Impact: x Likelihood: x
1) Increased healthcare resource use (HCRU), in primary and
4.6
4.5
secondary care
2) Increased direct medical costs for additional surgeries
4.7
4.8
3) Increased direct medical costs for treatment of comorbidities,
4.6
4.5
including anxiety and depression
4) Increased need for residential or respite care
4.2
4.4
5) Increased need for assistive technology, including home
4.2
4.2
adaptations, guide cane, service dogs, alarms, vision aids etc
6) Need to train clinicians on alternative surgical techniques
4.4
4.4
7) Increased demand on social services/occupational health services
4.2
4.2
Abbreviations: HCRU, healthcare resource use; PFAS, per- and polyfluoroalkyl substances. Respondents were asked: Please rate the likelihood of each of these outcomes occurring as a result of a ban on PFAS containing substances in vitreoretinal surgery (1= not at all likely; 5= extremely likely). Please rate the impact of each of these outcomes occurring as a result of a ban on PFAS containing substances in vitreoretinal surgery (1= no impact; 5= severe impact). The average rating was plotted (n=16).
Figure 6: Prospective risk-impact assessment - Indirect costs 5
4
Likelihood
3
2
1
1
2
3
4
5
Impact
Key: High risk
Moderate risk Low risk
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Indirect costs
Impact: x Likelihood: x
1) Increased rates of unemployment
3.9
4.0
2) Reduction in productivity
4.0
4.1
3) Increased need for work-based assistive technology and adaptation
3.9
4.1
4)
Abbreviations: PFAS, per- and polyfluoroalkyl substances.
Respondents were asked: Please rate the likelihood of each of these outcomes occurring as a result of a ban on PFAS containing
substances in vitreoretinal surgery (1= not at all likely; 5= extremely likely). Please rate the impact of each of these outcomes
occurring as a result of a ban on PFAS containing substances in vitreoretinal surgery (1= no impact; 5= severe impact). The average
rating was plotted (n=16).
The expert panel was presented with statements relating to patient outcomes, direct medical costs and indirect costs, and they were invited to rate their level of agreement 1-5 (where 1 is strongly disagree, and 5 is strongly agree). The results demonstrate strong agreement that the withdrawal of PFAS-containing OE will result in a substantial and negative impact on patient-relevant outcomes [x = 4.4, 4.6, 3.7] an increase in direct medical costs [x = 4.4, 4.7, 3.8] and an increase in indirect costs [x = 4.3,4.5, 3.7] for gases, PFCLs and heavy silicone oil, respectively. Withdrawal of heavy silicone oil was associated with a marginally lower predicted impact, since it is less frequently used due to its associated complications such as intraocular pressure increase, emulsification, intraocular inflammation, and there is a risk of additional complications during its subsequent removal.
Figure 7: Expert consensus statements: Patient outcomes, direct medical costs, and indirect costs
Gases (C2F6, C3F8)
Withdrawal of PFAS-containing ocular tamponades will result in an increase in indirect costs
PFCLs (F6H8, C8F18/PFO, C10F18/PFD)
Silicone oil (heavy)
Withdrawal of PFAS-containing ocular tamponades will result in an increase in direct medical costs
Withdrawal of PFAS-containing ocular tamponades will result in a substantial and negative impact on patient relevant outcomes
1
2
3
4
5 1 2 3 4 51 2 3 4 5
Strongly
Strongly
disagree
agree
Abbreviations: PFCL, perfluorocarbon liquid; PFAS, per- and polyfluoroalkyl substances; PFD, perfluorodecalin; PFO, perfluorooctane. Respondents were asked to rate their level of agreement with each of the statements on the Y axis for each category of PFAScontaining products. The level of agreement was rated on a scale of 1 (strongly disagree) to 5 (strongly agree). The average level of agreement was calculated from all respondents (n=16) and plotted.
3.2.4 Availability of technically and economically feasible alternatives
The expert panel was presented with statements relating to the current existence of PFAS-free alternatives, and the timeline for the development, testing and regulatory approval of a PFAS-free substitute within the 5-year and 12-year derogation periods. They were invited to rate their level of agreement on a scale of 1 to
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5 (where 1 is strongly disagree and 5 is strongly agree). The results demonstrate moderate-to-strong agreement that there is no regulatory approved alternative to PFAS-containing OE that can be used in all clinical circumstances [x = 4.3, 4.3, 3.4] that development, testing, and regulatory approval of a PFAS-free substitute will not be possible before a 5-year derogation period [x = 4.0, 4.1, 3.6] and that development, testing and regulatory approval of a PFAS-free substitute will not be possible before a 12-year derogation period [x = = 3.5 3.6, 3.6], for gases, PFCLs and heavy silicone oil, respectively.
Figure 8: Expert consensus statements: timeline for the availability of technically and economically feasible alternatives
Ocular gases (C2F6, C3F8)
PFCLs (F6H8, C8F18/PFO, C10F18/PFD)
Silicone oil (heavy)
There is no regulatory approved alternative to PFAS-containing ocular tamponades that can be used in all clinical circumstances
Development, testing and regulatory approval of a PFAS-free
substitute before a 5-year derogation period will not be...
Development, testing and regulatory approval of a PFAS-free
substitute before a 12-year derogation period will not be...
1
2
3
4
5
1 2 3 4 51
2
3
4
5
Strongly disagree
Strongly agree
Abbreviations: PFAS, per- and polyfluoroalkyl substances; PFCL, perfluorocarbon liquids; PFD, perfluorodecalin; PFO, perfluorooctane Respondents were asked to rate their level of agreement with each of the statements on the Y axis for each category of PFAScontaining products. The level of agreement was rated on a scale of 1 (strongly disagree) to 5 (strongly agree). The average level of agreement was calculated from all respondents (n=16) and plotted. A derogation is a provision that would allow for specific use-cases of PFAS to be applied differently or exempted from the EU legislation.
The expert panel was invited to rate the impact on a scale of 1-5 (where 1 is no impact and 5 is severe impact) of the timeline for RO1 (18-month transition and no derogation) and restriction option 2 (18-month transition plus either a 5-year or 12-year derogation). The results demonstrate the severe impact that RO1 (18-month transition) [x = 4.9] and RO2 (18-month transition plus a 5-year derogation) would have (x =4.2). The impact was less for RO2 (18-month transition plus 12-year derogation), although still moderate (x=3.4).
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Figure 9: Impact of the timeline for the proposed transition and derogation periods
18-month transition and no derogation
18-month transition plus a 5-year derogation
18-month transition plus a 12-year derogation
1
2
3
4
5
No impact
Severe
impact
Abbreviations: PFAS, per- and polyfluoroalkyl substances. Respondents were asked: What do you predict to be the public health impact of a total ban on the use of PFAS in ocular tamponades for vitreoretinal surgery in this patient cohort for each time scenario. The perceived impact was rated on a scale of 1 (no impact) to 5 (severe impact) for each proposed time period. The average impact was calculated from all respondents (n=16) and plotted.
3.2.5 Expert panel recommendations
The expert panel was invited to provide their recommendation on which of the proposed restriction options they would support. The results demonstrated that most of the panel supported a time-unlimited derogation (81.3%, n=13). The 6.3% (n=1) who supported an 18-month transition period plus a 12-year derogation caveated that this period should be dedicated to developing a PFAS-free alternative, and if this was not possible, the derogation period should be extended.
Figure 10: Expert panel recommendations in support of the proposed restriction options
Percentage
100
80
60
40
20 0% 0
0%
6.3%
18-month
18-month
18-month
transition and no transition plus a 5- transition plus a
derogation year derogation
12-year
derogation
Restriction option 1
Restriction option 2
81.3%
Other - Time unlimited derogation Other
12.5% Uncertain
Respondents were asked: Which restriction option would you support for this use-case? Results are plotted as a frequency distribution for N=16.
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4.0 DISCUSSION
RD is a medical emergency that can be successfully managed with prompt surgical intervention.
This study has demonstrated that RD is a medical emergency that requires surgical intervention to preserve sight, functional ability, and quality of life.4 If surgical intervention is provided promptly, RRD can achieve a primary surgical success rate of 80-90%.13 If the RD is not treated and the detachment extends, then permanent vision loss or blindness is inevitable, with a substantial negative impact on patient outcomes, direct medical costs and indirect costs.5
OE have an established and critical role in the surgical management of RD.
Professional medical society guidelines (Figure 1) describe the evidence-based consensus for the surgical management of RD.19-35 All categories of OE (gas, PFCLs and silicone oils) are used in the main surgical interventions; pars plana vitrectomy, scleral buckle and pneumatic retinopexy. The choice of OE depends upon the severity and location of the retinal detachment, patient characteristics, tamponade duration, and the specific risk-benefit profile.6
Gases are used in all the main surgical techniques where they are injected into the eye during surgery to flatten retinal breaks. The gas is left in the eye to be re-absorbed. C3F8 (PFAS-containing) and SF6 (PFASfree), have been the standard of care gases for 30+ years.37
PFCLs are used as an interoperative tool to allow for safe manoeuvres during more complex detachments, and removed at the end of surgery. Since their introduction over 40 years ago, they have become indispensable and have substantially improved surgical results.36 C8F18 and C10F18 (PFAS-containing) are routinely used to drain subretinal fluid by 43% of surgeons.68 There are no PFAS-free PFCLs.
Silicone oils are longer-term tamponades that are reserved for severe and complex RD cases due to their significant associated complications.39 Silicone oils must be removed by a second surgery, which is also associated with a risk of complications.39 Conventional silicone oil is PFAS-free, while heavy silicone oil is PFAS-containing.
The panel validated the high overall importance of all categories of PAS-containing OE for the treatment of rhegmatogenous and tractional RD. Lower importance was reported for exudative RD since surgical intervention is rarely indicated.
Regulatory approved PFAS-free OE exist, but they are associated with limitations and are not suitable for all patients and clinical contexts.
Air, SF6, and conventional silicone oil do not contain PFAS; however, they are associated with significant limitations.
Air has a short tamponade duration, which means that it is not suitable for more complex detachments, and due to its short duration in the eye, it is associated with an increased risk of detachment following surgery.36
SF6 is efficacious but has a high environmental impact due to its high global warming potential.60
Conventional silicone oil has a high buoyancy that makes it unsuitable for some clinical contexts, and it requires post-operative posturing where patients must remain in a certain position to prevent the
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movement of the tamponade, which is not possible for all patients with other comorbidities or orthopaedic problems. Furthermore, it is associated with complications, including development of cataracts in phakic eyes, recurrent RDs, increased intraocular pressure, silicone oil emulsification, and subretinal migration of the oil, and requires a second surgery to remove.
Withdrawal of PFAS-containing OE would create a significant unmet clinical need.
The panel estimate that only 19% of patients can be treated with PFAS-free OE, and if PFAS-containing OE were withdrawn from the market, then an estimated 81% of all RD cases would be untreatable. This highlights the critical importance of retaining PFAS-containing OE in the treatment paradigm.
The prospective risk impact assessment highlighted the high risk to patient outcomes, direct medical costs, and indirect costs associated with a withdrawal of PFAS-containing OE.
All patient outcomes were rated as high risk, meaning that the outcomes have a high likelihood of occurrence and a high impact. The top five patient outcomes rated as the highest risk were: increased requirement for repeat surgeries, increased rate of anatomical failure, increased incidence of incomplete or unaddressed primary pathology, increased number of severely visually impaired individuals, and increased number of legally blind patients. Similarly, direct medical costs and indirect costs were rated as high risk. This suggests that there will be a serious patient level impact, and increased economic burden to individuals, the healthcare system, and society, because of the proposed restriction.
Few PFAS-free alternatives are under investigation and the timeline for their clinical development and certification mean that they will not be available at the entry-into-force date, and are highly unlikely to be available within the 5-year and 12-year derogation periods.
The research and development pipeline contains only three Phase 1 studies that are being conducted in small cohorts, and in a small number of centres, including non-European locations (n=10-50). Consequently, they are unlikely to be representative of the entire population of patients with RD nor lead to global changes in clinical practice. The early stage of development for these substances means that there will be no new alternatives on the market at the entry-into-force date for RO1. Furthermore, in the past two decades there has been a documented increase in attrition rates and duration of clinical trials, that indicates that the 5-year and 12-year derogation periods in RO2 are also insufficient.8 In order for a device to be developed, the following steps are needed: approximately 1-2 years for device design; approximately 1-2 years to establish and validate production; approximately 1-2 years for stability studies; approximately 3-years for clinical trials; approximately 1 year for production of technical documents; and approximately 1.5 years for notified body review. In total, the best-case scenario is 9.5-11-years.9 The panel also confirmed that the timelines for RO1 were insufficient, and highly challenging for RO2.
The expert panel recommended a time-unlimited derogation for this use-case.
Based upon the panel's assessment of 1) the critical and irreplaceable role of regulatory approved PFAScontaining OE; 2) the high risk to patient outcomes, direct medical costs, and indirect costs if PFAScontaining OE were withdrawn; and 3) the paucity of PFAS-free alternatives under development. A total of 81% of the experts supported a time-unlimited derogation for this use-case.
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5.0 CONCLUSION
This study has demonstrated the critical role of PFAS-containing OE in the surgical management of RD. Withdrawal of the substances in the scope of this comment will result in over 80% of RD cases being surgically untreatable, with the devastating consequence of vision impairment, blindness, and other visual complications in otherwise surgically treatable eyes. Although PFAS-free options exist, they are associated with limitations in clinical practice. The expert consensus was that the proposed restriction options (RO1 and RO2) would result in a substantial and negative impact on patient relevant outcomes, direct medical costs, and indirect costs.
Furthermore, the study highlighted the non-existence of technically or economically feasible alternatives that would achieve certification or regulatory approval before entry-into-force date for RO1, and the limited number of studies in development for an alternative suggesting that there is unlikely to be an alternative that would achieve certification by the 5-year or 12-year derogation periods.
6.0 REQUEST TO ECHA
The industry stakeholder group request a time-unlimited derogation and listing in the use `Medical devices' (Section A.3.10.1)2 for perflunafen/perfluorodecalin (C10F18), perfluorooctane (C8F18), hexafluoroethane (C2F6), perfluorohexyloctane (F6H8), perfluoropropane (C3F8), and heavy silicone oil.
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7.0 INDUSTRY STAKEHOLDERS SIGNATORIES
Version 2.0 September 2023
On behalf of [inBsaeurstcchomanpdaLnoymnabme] Signature:
bonnefoy Luc PLoucsBitoinonnef:oy (Sep 21, 2023, 1:22pm)
President Surgical
Name (please print): Bonnefoy Date: 21 Sep 2023
On behalf of [iDnsOeRrtCcompany name] Signature:
PPieorrseitBiiollanrd:on (Sep 22, 2023, 7:05am) CEO
Name (please print): BILLARDON
Date: 22 Sep 2023
On behalf ofP[ihnasremrtpcuormGpmabnHy name] Signature:
D9:i5Prk2o-aHmsei)ntnioinng :Menz (Sep 21, 2023, CEO Name (please print): Dr.D.-H. Menz
Date: 21 Sep 2023
On behalf of C[ianrsl eZretiscsoMmedpitaenc yAGname] Signature:
PoJ5su:i0st3tiuposmnF):elix Wehmer (Sep 21, 2023, CFO
Name (please print):
Justus Felix Wehmer
Date: 21 Sep 2023
On behalf ofA[licnhsiemrtiacompany name] Signature:
Bruno Chermette PBorusniotiCohner:mette (Sep 21, 2023, 5:28pm) President and Ceo
Name (please print): CHERMETTE Mtech Access
On behalf ofA[irncsaedrotpchotma pany name] Signature: Dnis hinaut PDoesniistiHoinna:ut (Sep 21, 2023, 11:24am) President
Name (please print): Hinaut denis
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Date: 21 Sep 2023
Date: 21 Sep 2023
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Comments for Annex XV restriction report
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8.0 APPENDIX
Appendix 1: Substances within the scope of this comment
General
INN
Perflunafen
Synonyms Perfluorodecalin
Perfluoroperhydronaphthalene
PERFLUORODECALIN (INCI)
Molecular Formula
C10F18
CAS Codes
CAS
306-94-5
60433-11-6 (cis)
60433-12-7 (trans)
Molecular Mass
Molecular 462.08 gmol-1 Mass Abbreviations: CAS, Chemical Abstract Service; INN, international non-proprietary name.
General
INN
Perfluoroctane
Synonyms Octadecafluoroctan
1,1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8,8-Octadecafluoroctan
PF5080
Molecular C8F18 Formula
CAS Codes
CAS
307-34-6
Molecular Mass
Molecular 438.06 gmol-1 Mass Abbreviations: CAS, Chemical Abstract Service; INN, international non-proprietary name.
General INN
Hexafluoroethane
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Synonyms 1,1,1,2,2,2-Hexafluoroethane
Molecular C2F6 Formula
CAS Codes
CAS
76-16-4
Molecular Mass
Molecular 138.01 gmol-1 Mass Abbreviations: CAS, Chemical Abstract Service; INN, international non-proprietary name.
General
INN
Perfluoropropane
Synonyms 1,1,1,2,2,3,3,3-Octafluoropropane
Perflurane
Molecular C3F8 Formula
CAS Codes
CAS
76-19-7
Molecular Mass
Molecular 188.02 gmol-1 Mass Abbreviations: CAS, Chemical Abstract Service; INN, international non-proprietary name.
General
INN
Perfluorohexyloctane
Synonyms 1,1,1,2,2,3,3,4,4,5,5,6,6-tridecafluorotetradecane
Molecular F6H8 Formula
CAS Codes
CAS
133331-77-8
Molecular Mass
Molecular 432.26 gmol-1 Mass Abbreviations: CAS, Chemical Abstract Service; INN, international non-proprietary name.
General
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INN Synonyms
Perfluorohexyloctane and 5000 cSt silicone oil 1,1,1,2,2,3,3,4,4,5,5,6,6-tridecafluorotetradecane + Polydimethylsiloxane
Molecular Formula
[-Si(CH3)2O-]n + F6H8
CAS Codes
CAS
133331-77-8
Molecular Mass
Molecular 432.26 gmol-1
Mass
Abbreviations: CAS, Chemical Abstract Service; INN, international non-proprietary name; PFAS, per- and polyfluoroalkyl substances. Heavy silicone oil is a mixture of silicone oil (PFAS-free) and F6H8 s (PFAS-containing). Therefore, the CAS code and molecular mass are provided for F6H8.
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Appendix 2: Approximate percentage of retinal detachment surgeries that can be attributed to each surgical technique for each of the main retinal pathologies
Type of retinal detachment
Rhegmatogenous
Tractional
Exudative
Average, % Range Mean, % Range Mean, % Range
Surgical
Vitrectomy
44.7
technique
0 to 95 57.7
0 to 100 32.5
0 to
100
Vitrectomy in
20.1
combination with
scleral buckle
0 to 80 11.8
0 to 70 5.5
0 to 20
Vitrectomy in
63.8
combination with
pneumoretinopexy
0 to 100 26.9
0 to 100 28.3
0 to
100
Vitrectomy in
64.3
combination with
laser repair
0 to 100 65.5
0 to 100 40.5
0 to
100
Scleral buckle
18.7
0 to 100 11.8
0 to 70 12.3
0 to 80
Scleral buckle in 26.7 combination with pneumoretinopexy
0 to 100 9.6
0 to 90 7.1
0 to 40
Scleral buckle in 11.5 combination with laser repair
0 to 100 16.0
0 to 100 21.1
0 to
100
Pneumoretinopexy 2.4
0 to 10 0.5
0 to 5
2.5
0 to 20
Pneumoretinopexy 17.3 in combination with laser repair
0 to 100 0.5
0 to 5
11.7
0 to
100
Laser repair
8.9
0 to 80 3.0
0 to 20 4.4
0 to 20
Other
1.3
0 to 5
0.0
0 to 0
0.0
0 to 0
Uncertain
0.0
0 to 0
0.0
0 to 0
0.0
0 to 0
Respondents were asked: In the primary treatment of retinal detachment, what proportion of all retinal detachment surgeries can be attributed to each surgical technique in your country for each of the retinal pathologies? Responses were collected as a percentage. Means were calculated from all respondents (n=16) regardless of country. Range is presented as the minimum value to maximum value.
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Justus Felix Wehmer opened the document email. (80.187.66.142)
Bruno Chermette viewed the envelope. (92.184.112.233)
Bruno Chermette signed the envelope (92.184.112.233)
Bruno Chermette viewed the envelope. (92.184.112.233)
Bruno Chermette opened the document email. (92.184.112.233)
Bruno Chermette opened the document email. (92.184.112.233)
Justus Felix Wehmer viewed the envelope. (80.187.66.142)
Justus Felix Wehmer signed the envelope (80.187.66.142)
Thu, 21st Sep 2023 17:01:53 UTC Thu, 21st Sep 2023 17:01:45 UTC Thu, 21st Sep 2023 15:01:49 UTC Thu, 21st Sep 2023 15:01:33 UTC Thu, 21st Sep 2023 15:01:33 UTC Thu, 21st Sep 2023 14:17:17 UTC Thu, 21st Sep 2023 14:17:17 UTC Thu, 21st Sep 2023 14:17:17 UTC Thu, 21st Sep 2023 14:17:17 UTC Thu, 21st Sep 2023 14:17:17 UTC
Thu, 21st Sep 2023 14:17:17 UTC Thu, 21st Sep 2023 13:22:36 UTC Thu, 21st Sep 2023 13:22:35 UTC Thu, 21st Sep 2023 13:18:42 UTC Thu, 21st Sep 2023 13:17:55 UTC Thu, 21st Sep 2023 11:26:49 UTC Thu, 21st Sep 2023 11:24:57 UTC Thu, 21st Sep 2023 11:24:56 UTC Thu, 21st Sep 2023 11:22:31 UTC Thu, 21st Sep 2023 11:21:55 UTC Thu, 21st Sep 2023 11:18:51 UTC Thu, 21st Sep 2023 9:52:09 UTC Thu, 21st Sep 2023 9:52:08 UTC Thu, 21st Sep 2023 9:49:07 UTC Thu, 21st Sep 2023 9:48:47 UTC Thu, 21st Sep 2023 9:46:58 UTC Thu, 21st Sep 2023 9:25:42 UTC Thu, 21st Sep 2023 9:25:42 UTC Thu, 21st Sep 2023 9:25:41 UTC Thu, 21st Sep 2023 9:25:41 UTC Thu, 21st Sep 2023 9:25:41 UTC Thu, 21st Sep 2023 9:25:41 UTC
Thu, 21st Sep 2023 9:25:41 UTC
Thu, 21st Sep 2023 9:25:41 UTC Thu, 21st Sep 2023 9:25:41 UTC
Thu, 21st Sep 2023 9:25:41 UTC
Justus Felix Wehmer viewed the envelope. (80.187.66.142)
Justus Felix Wehmer opened the document email. (80.187.66.142)
Pierre Billardon viewed the envelope. (84.241.199.108)
Pierre Billardon opened the document email. (84.241.199.108)
Pierre Billardon opened the document email. (84.241.199.108)
Document emailed to
@moria-int.com (35.178.167.33)
Document emailed to
@zeiss.com (35.177.174.82)
Document emailed to
@dorcglobal.com (13.40.50.81)
Sent Bruno Chermette a reminder to sign the document. (95.144.71.154)
Sent Justus Felix Wehmer a reminder to sign the document.
(95.144.71.154)
Sent Pierre Billardon a reminder to sign the document. (95.144.71.154)
Luc Bonnefoy viewed the envelope. (206.165.25.130)
Luc Bonnefoy signed the envelope (206.165.25.130)
Luc Bonnefoy viewed the envelope. (40.94.30.213)
Luc Bonnefoy viewed the envelope. (206.165.25.130)
Denis Hinaut viewed the envelope. (104.28.42.25)
Denis Hinaut viewed the envelope. (104.28.42.21)
Denis Hinaut signed the envelope (104.28.42.21)
Denis Hinaut viewed the envelope. (104.28.42.21)
Denis Hinaut viewed the envelope. (104.28.42.21)
Denis Hinaut viewed the envelope. (104.28.42.21)
Dirk-Henning Menz viewed the envelope. (109.43.177.26)
Dirk-Henning Menz signed the envelope (109.43.177.26)
Dirk-Henning Menz viewed the envelope. (109.43.177.26)
Dirk-Henning Menz opened the document email. (104.28.62.41)
Denis Hinaut opened the document email. (104.28.42.23)
Document emailed to
@moria-int.com (35.176.230.76)
Document emailed to
@pharmpur.de (18.133.196.94)
Document emailed to
@zeiss.com (13.42.32.152)
Document emailed to
@bausch.com (13.40.111.161)
Document emailed to
@bvimedical.com (35.177.221.75)
Sent the envelope to Denis Hinaut (
@bvimedical.com) for signing
(95.144.71.154)
Sent the envelope to Bruno Chermette
@moria-int.com) for
signing (95.144.71.154)
Document emailed to
@dorcglobal.com (35.177.221.75)
Sent the envelope to Justus Felix Wehmer
@zeiss.com) for
signing (95.144.71.154)
Sent the envelope to Dirk-Henning Menz (
@pharmpur.de) for
signing (95.144.71.154)
Thu, 21st Sep 2023 9:25:41 UTC
Thu, 21st Sep 2023 9:25:40 UTC
Thu, 21st Sep 2023 9:20:13 UTC Thu, 21st Sep 2023 9:20:13 UTC Thu, 21st Sep 2023 9:20:13 UTC Thu, 21st Sep 2023 9:20:13 UTC Thu, 21st Sep 2023 9:20:13 UTC Thu, 21st Sep 2023 9:20:13 UTC Thu, 21st Sep 2023 9:16:55 UTC
Thu, 21st Sep 2023 9:16:41 UTC
Sent the envelope to Pierre Billardon (
@dorcglobal.com) for
signing (95.144.71.154)
Sent the envelope to Luc Bonnefoy (
@bausch.com) for
signing (95.144.71.154)
Denis Hinaut has been assigned to this envelope (95.144.71.154)
Bruno Chermette has been assigned to this envelope (95.144.71.154)
Justus Felix Wehmer has been assigned to this envelope (95.144.71.154)
Dirk-Henning Menz has been assigned to this envelope (95.144.71.154)
Pierre Billardon has been assigned to this envelope (95.144.71.154)
Luc Bonnefoy has been assigned to this envelope (95.144.71.154)
Document generated with fingerprint
8653c8411be2e02e0fd0c8b5e6088533 (95.144.71.154)
Envelope generated by Clare Foy (95.144.71.154)