Document npdYe45k1vZkNVGv9G7q5RrkG
S^O^0,
British Journal of Industrial Medicine 1980;37:147-151
JLrfbJjjL1 o ir+weP & '
?
Lung function in workers exposed to polyvinyl' chloride dust
"v*vgy;grs
C P CHIVERS*. C LAWRENCE-JONESt, AND G M PADDLE From Imperial Chemical Industries Ltd, Wilmslow, Cheshire SK9 1QB, UK
i abstract Several reported studies on the effects of polyvinyl chloride (PVC) dust in animals and man have been conflicting. The present study of the ventilatory function of 509 male workers
exposed to PVC dust was made in 1977. Altogether 104 men exposed to PVC dust only, 112 men exposed to non-chlorinated solvents only, and 293 men exposed to a mixture of both completed the I MRC questionnaire on respiratory function and performed simple spirometrictests (forced expiratory volume in one second and forced vital capacity). No differences were found between the three groups after allowance was made for age, height, and smoking. When exposure and smoking effects were considered separately, the latter was shown to be the dominant cause of reduced lung function^fn
this study work with PVC dust has not produced deleterious effects on ventilatory function^
i
Polyvinyl chloride (PVC), a large tonnage raw PVC caused deaths of cells similar in amount to
material of fundamental importance to the plastics kaolin, magnesium trisilicate, and polyethylene.
industry, is a white powder that was until recently These materials produced less than 2% fibrogenicity
considered to be inert. The basic material is formed compared with over 10% for asbestos.
from its monomer, the gas vinyl chloride (VCM).
On such evidence PVC had been considered inert
Although VCM and PVC have been synthesised for and therefore incapable of producing lung changes.
over 30 years, it is only in the past 10 years that the Szende el al,* however, reported radiological and
sinister nature of VCM has become apparent. VCM clinical evidence of a moderately diffuse fibrosis in a
has been found to produce a wide spectrum of man aged 31 who had been exposed to PVC dust
clinical conditions, the most important being for only one year. This clinical information led angiosarcoma of the liver in workers exposed to Frongia et aP to carry out an experimental long-term
high concentrations of the gas in PVC production study ofthe effect on guinea pigs and rats of breathing
plants. This was discovered in 1974 and because a the same PVC dust as workers in the same area of
small quantity of the gas is carried forward with the the bagging plant of a factory. In this area the PVC powder to its containers, and thus to the PVC concentration averaged 10,000 particles/cm3,
formulating industries the effects, if any, of the gradings being around one micron. The animals were
PVC powder came into question. The chance of exposed for 24 hours a day for periods between two
finding effects similar to those associated with and seven months continually. Lung histology in
VCM is considered remote, since the concentrations the two types of animals showed differing responses
are greatly reduced. The possibility of pulmonary to the dust at the beginning of the tests, but subse
: changes being caused by inhalation of the dust quently a granulomatous reaction was reported in
however, has led to experimental and clinical research. The cytotoxicity of various polymer dusts,
both species. Similar experimental studies in white rats also
suggested a chronic pneumonia followed later by
` including PVC, to suspensions of rat alveolar and . peritoneal macrophages in culture1 indicated that
inflammation of the bronchial tree with mild fibrotic processes in the lung.4 This study among others prompted Vertkin and Mamontov5 to
`Now retired. fPresent appointment: Division Medical Officer, 1CI Ltd, Millbank, London.
examine workers manufacturing PVC products. There were no abnormal clinical findings in the overwhelming majority of patients. Estimations of
Received 20 December 1978 Accepted 14 August 1979
vital capacity, forced expiratory volume in one second (FEVj), and maximal voluntary ventilation
147
N
H* 10
00
-4
O O
148 Chivers, Lawrence-Jones, andPaddle
were performed on 64 workers. Only one vital capacity was excessively low, 50% being at least 15% better than noimal. Long-exposure employees (6-12 years) were found to have FEVi/forced vita) capacity (FVC) ratios less than 70% with clinical
manifestations of bronchitis and emphysema. In at least 50% of cases the maximum voluntary ventila. tion exceeded standard values. Hydrogen chloride gas as a possible factor in these effects was considered, and the importance of functional changes must be judged on the results of further observations. There was no mention of smoking as a factor.
In 1975 Miller et al6 examined the lung function of 267 workers currently employed and 87 previously employed in work exposed to both VCM and PVC. FVC and FEVi together with mid-expiratory flow (MMF) were measured and compared with the predicted values of Morris et al.1 Smoking habits were also recorded. Non-smokers were defined as those who smoked less than one cigarette a day, had smoked less than 10 cigarettes a day for up to six months more than two years ago, or had smoked only cigars and pipes. Although prevalence of impaired lung function was statistically different between smokers and non-smokers for those aged 39 and younger, smoking was not found to be a significant factor above this age. In both smokers and non-smokers when exposed to PVC dust for more than 20 years the FEVi/FVC ratio was reduced. Though impaired flow was more frequent with increasing duration of exposure, volume impairment was not so related. Since there were only seven non-smokers in the group, any de ductions about their performance were not thought to be justified.
In 1978 Arnaud et al8 described pneumoconiosis in a 53-year-old man who had been exposed for 23 years to PVC in the bagging area of a vinyl chloride polymerisation plant. The histological findings from the lung biopsy specimen of moderate diffuse fibrosis and several small focal lesions were identical to those reported by Szende et aft and those produced experimentally by Frongia et al? Despite the radio logical changes the patient had only a slight reduction in his vital capacity and no reduction in gas transfer factor, which suggested that the fibrosis was not of much functional significance.
Exposure to PVC and VCM together was thought to be important by Lilis et al,9 who found greater effect on lung function when these were combined than with either substance by itself. They studied workers in three plants, all of whom had mixed exposure to differing concentrations. Radiological lung fibrosis and altered pulmonary function tests were found in 96 workers exposed to PVC dust, the changes being more pronounced in people with long
exposure. Smoking histories were related to abnormal chest radiographs, but no consistent link was found between these and abnormal lung function. Smoking and age were both related to obstructive lung function changes and because of this it was difficult to isolate the specific effect of occupational vital capacity and exposure to PVC.
In view of this conflicting evidence about a material generally accepted as inert, and because of the large number of people in contact with it in so many industries, it was thought that a large-scale study should be initiated to investigate lung function in workers handling PVC.
Material and methods
FACTORY
The works used PVC for over 30 years, originally to manufacture coated fabrics, and recently also for plastic-coated wall coverings. The PVC powder is mixed with several additives such as plasticisers, stabilisers, and pigments. Thus this is a user study in which there may be exposure to low concentrations of other chemicals. Whether the final product is rigid or flexible, spread on to or laminated with supporting sheet, calendered or extruded, the fundamental technology is the same.
JOBS
Jobs range from handling raw materials and minding machines that formulate the PVC mixes to attending to the printing process for wall coverings. A few jobs, which include manual handling of raw materials, are physically demanding for short periods but generally they are semi-sedentary. Once plasticised, the covering or formed sheet is machined in various ways. During these operations, employees are exposed to minimal amounts of dust but also to some solvent vapour. In the final stages of the process employees are exposed to no dust and to minimal amounts of solvent vapour.
DUST EXPOSURE
Potential exposure levels to PVC can be gauged from the following annual tonnages: 1951, 1502; 1956, 2622; 1961, 3671; 1966, 6735; 1971, 12 218; and 1974,13 957
Nevertheless, although these figures give an impression of the size and growth of the operation, it is considered that the present conditions with fewer manual operations are much better than formerly, despite the higher tonnage of PVC used. There is little quantitative information on which to base this judgement as records of atmospheric levels of PVC dust have been kept only since 1975.
1
t
t
I I!;
j;
i
t
N co
ss
oo
Lungj
Table
Poor!*
mix,1 WeD-v
mix; Bag d) LoadiJ
venj Backg;
In, area}' toriri table Test dete<
pul!
Luni in tf. solve part 23 lx one comj com; conti thosi in th grou expc the i the t give
PRO
All mor leas Cot thre ject
Tab (De
Si:e
00_ >1 >: >: >: >n
Lung function in workers exposed to polyvinyl chloride dust
149
Table 1 Mean dust concentrations
ms
Imslm)
1976 (mg/m1)
ms
Aespirable fraction (mg/m*)
Poorly-ventilated
mixing room
5-9
40
0-4 (0-3)
Well-ventilated
mixing room
--
1*5
0 2 (003)
Bag disposal
--
0-9
0-2 (0 09)
Loading without
ventilation
___
--
M-50D
Background level --
--
0-2 CO 02)
Table 3 Exposure to dust, solvents, or both. (Percentages in parentheses)
Exposure level
Continuous Regular Occasional Tout
Exposure group
Solvents
Dust
It (66) 22 (20) 16 (14)
112(100)
45 (43> 25 (24) 34 (33)
104 (100)
i Both
120 (41) 64 02) 109 on 293 (100)
Total
239 111 159 509
In 1975,1976, and i978 studies of the PVC mixing areas were carried out using static personal moni toring devices. Table 1 summarises the results while table 2 shows particle size distribution and density. Tests for VCM almost invariably showed "none detectable," but occasionally 1-3 ppm were found.
PULMONARY FUNCTION STUDY
Lung function tests were offered to all men working in the production areas associated with PVC and solvents. Of these 557 employees, 17 refused to take part and 31 were unavailable at the time of the tests, 23 being sick, four on holiday, three having left, and one being due for retirement. Since the population comprised the largest group in the works, leaving no comparable static non-exposed group available as controls, it was thought justified to use as controls those exposed to low levels of solvents. Therefore in the analyses the population is divided into three groups: those exposed only to PVC dust, those exposed to solvents, and those exposed to both. All the men were of the same racial origin. Table 3 shows the type of exposure of the three groups, and table 4 gives their exposure in years.
PROCEDURE
All the 509 volunteers were examined within one month in early summer 1977. Each rested for at least 15 minutes while he filled in a Medical Research Council (MRC) questionnaire with help from one of three trained State registered nurses. When the sub ject was completely rested, ventilatory function was
measured with a calibrated Vitalograph following a standard routine. Measurement of barometric pressure and temperature were made at each session. All readings were recorded on the ATPS scale and corrected to BTPS by the calculation given by Cotes.10 Eleven subjects unable to complete the trials for psychological or physiological reasons were excused three sample readings, and estimates of. the FEVi and FVC were obtained from those tracings performed.
In analysing the pulmonary function data the heights, ages, and smoking habits of the individuals were taken into account. Height and age were allowed for by expressing the recorded figures as percentages of the prediction equation given by Cotes et al.11 As this equation was derived from data for healthy non-smokers, it would not be expected that the study population in which there was a majority of smokers would achieve an average of 100%. Smoking habits have been allowed for by dividing the population into three categories according to their replies to 'the MRC smoking questionnaire: those who had never smoked; heavy smokers who smoked, or who had only recently ceased smoking 15 or more cigarettes a day; and all others, whether smokers or ex-smokers. The three groups have been called non-smokers, heavy smokers, and others.
Results
The results for the three exposure groups irrespective of smoking habits are summarised in table 5. As the average heights and ages of the three groups are
Table 2 Particle size distribution by percentage, {Density ofPVC particles = 1-4)
5/re <M)
>1 >2 >3 >5 >10
Non-operaring conditions
19-3 8-5 1*9 0-2 003
Operating conditions
26-6 9-8 3-6 03 003
Table 4 Years ofexposure. (Percentages in parentheses')
Years in plant
<5 5-9 10-14
>15 Total
Exposure group
Solvents
Dust
43 (38)
29 (26)
18 (16) 22 (20)
112(100)
45 (43)
28 an
20 (19)
u no
104 (100)
Both
111 (38)
82 (28)
60 (20) 40 (14)
S3 (100)
Total
199 139 98 73 509
i
150 Chivers, Lawrence-Jones, and Paddle
Table 5 Comparison of exposure groups
Table 7 Comparisons of exposure and smoking classifications
f
Dust
No1 Age: Mean (SD)
Height (cm): mean (SD)
FEV, (ml): mean FVC (ml): mean
FEV, (*/ predicted): mean (SD)
FVC predicted): mean (SD)
Yean in plant: mean (SD)
104 44-8 (115)
173*0 (7-4) 3439 4313
98-9 (17-2)
98-5 (15 0)
7*0 (6 0)
Solvents
112 43-6 (12-8)
174-2 (6-4) 3436 4441
i 95-6(23 0)
98-7 (18-4)
9-5 (9-6)
Both
293 43-0(11-2)
174-5 (6-9) 3533 4502
98-2 (19*4)
99-5 (18-5)
8-5 (7-0)
so similar the absence of a dust effect is illustrated both by the recorded data and by their conversion to percentages of predicted. The extent of exposure can be gauged from the data for the duration of employment in the plants.
The smoking effect, irrespective ofexposure group, is clearly shown in table 6, in which, because of age differences between groups, only converted figures are shown. There is a very pronounced disparity between the results for non-smokers and heavy smokers, and the results for the others are interme diate.
As this large smoking effect may conceal an
Dust
i Solvents
No Age: mean (SD) Height (cm):
mean (SD) FEV, t% predicted):
mean (SD) FVC (% predicted):
mean (SD) Years in plant;
mean (SD)
No Age: mean (SD) Height (an):
mean (SD) FEV, (% predicted):
mean (SD) FVC predicted):
mean (SD) Years in plant:
mean (SD)
No Age: mean (SD) Height (cm):
mean (SD) FEV, (% predicted):
mean (SD) FVC (% predicted):
mean (SD) Years in plant:
mean (SD)
Non-smokers 16 38-9 (11-3)
174-2 (9-1)
18 42-5 (.151)
176 0 (5*1)
107-5 01-8) 103-9 (12-6)
101-0 (25-0) 101-3 (18-8)
5*8 (4*8)
8-8 (9-6)
Heavy smokers
37 46
43*6 (12*1) 42*7(12 7)
172 2 (6-6) 174*0 (6*6)
95-0 (17-7)
91*4 (23*7)
98-4 (14-9)
97*1 (17*6)
7-5 (5-5) Other smokers
51 47-7 (10-4)
8-9 (8-0)
48 44*9 (12*2)
173-2 (7-4) 99 0 (17*5) 96-9 (15-6)
7-1 (6-7)
174-0 (6-6) 97*7 (21*2) 99*3 (19*3) 10*4 (11*0)
Both
53 39-8 (10-7) 174*2 (6*9)
102-6 (17-5) 102-7 (18-1)
8-1 (6-2) 132 43-3(11*4) 174*2 (6*9) 95*0 (19*8) 97*3 (19 0)
8-5 (7-3) 108 44*3 (11*0) 175*0 (6*6) 100 0 (19-2) 100*6 (17*9)
8*7 (6*9)
4 I !
1
exposure effect, and as there may be a synergistic
effect of smoking and exposure, smoking and expo
sure effects were compared (table 7). Although two of the non-smoking groups are quite small, there is no deleterious effect of dust evident in any of the smoking groups, and the smoking effect is the same in each exposure group.
Finally, the effect of duration of exposure to PVC
Although it is difficult to draw conclusions from cross-sectional studies of lung abnormalities,18 this investigation of ventilatory function in workers exposed to PVC dust over a prolonged period has provided no evidence of lung damage.
I
|
dust was considered when the effects of age, height, and smoking, typified by cumulative cigarette consumption, had been taken into account. Analysis
We thank Mr S B Rawlinson, industrial hygiene officer, and Mr D J Seaborn (Central Toxicological Laboratory) for carrying out the environmental
showed that length of service had a negligible effect monitoring and the medical staff who assisted with
on the ventilatory function of those exposed to PVC this work.
dust, and supported the conclusion that their respira tory health is better than that of the controls.
II
References
1 Styles JA, Wilson J. Comparison between in vitro toxicity
Table 6 Comparison of smoking groups
of polymer and mineral dusts and tbeir fiblogcnicitv.
Ann Occup Hyg 1973;16:241-50.
Non-smokers Heavy smokers Others
* Szcndc B, Lapis K, Nernes A, Pinter A. Pneumoconiosis
caused by inhalation of polyvinylchloride dust. MedLav
j
No Age: mean (SD)'
Height (cm): mean (SD)
87 40-2(11-8)
174*5 (71)
215 43-3(11-8)
173-7 (6-9)
207 45-2(11-2)
174-2 (6-9)
1970;61:433-6. * Frongia N, Spinazzola A, Bucarelli A. Experimental
pulmonary lesions from prolonged inhalations of PVC
FEV, (V. predicted):
dust in a work environment. Med Lav 1974;65:321-42.
mean (SD)
103-2 (18 4)
94-2 (20-4)
99-2 (19-2)
* Golovatyuk AP. The effect of PVC dust in industry and
FVC (% predicted): mean (SD)
Years in plant:
mean (SD)
102*6 (17*2) 7-8 (6-8)
97*5(180) 8-4 (7-2)
99 4 (17-7) 8 7 (8-0)
experimental conditions. Vrach delo 1963;11:107. * Vertkin YI, Mamontov JR. On the state of the broncho
pulmonary system in workers engaged in the manufacture of PVC products. Gig Tr ProfZabol 1970;14:29-32.
N (0
00
-oa
Lung function in workers exposed to polyvinyl chloride dust
151
Miller A, Tierstein AS, Chuang M, Selikoff IJ. Changes
AS, Selikoff IJ. Prevalence of disease amongst vinyl
r
in pulmonary function in workers exposed to vinyl
chloride and polwinvl chloride workers. Ann NYAcad
chloride and polyvinyl chloride. Ann NY Acad Sci 1975;
Set 1975;246:22-41.
246:42-52.
16 Cotes JE. Lung function. 3rd ed. Oxford: Blackwell, 1975:
' Moms JF, Kosk A, Johnson LC. Spirometric standards for healthy non-smoking adults. Am Rev Resplr Dis 1971;103:57-67.
21. 7 11 Cotes JE, Rissiter CE, Higgins ITT, Gilson JC. Average
norma] values for forced respirator}- volume in white
Amaud A, Pommier de Santi P, Garbe L, Payan H, Charpin J. Polyvinyl chloride pneumoconiosis. Thorax 1978;33:19-25.
Lilis R, Anderson H, Nicholson WJ, Daum S, Fishbein
Caucasian males. Br Med J 1966;1:1016-9. ** Fletcher C, Pe:o R, Tinker C, Speizer FE. The natural
history of chronic bronchitis and emphysema. London: Oxford University Press, 1976:35-51.
4
1
if;
|
)
j i i
* \
)
I
i I
.X4 -&s:Tz
^9R55E9SEGR*
_.V
3? J; \ -
y
.
oo
UI ; F
BFG17419