Document B5bVB1z64p4K3y8yqqq04OQOm
22632
Federal Register / Vol. 51, No. 119 / Friday, June 20, 1986 / Rules and Regulations
excess disease risk has been observed
are the product of well designed and
comments and testimony submitted
at cumulative exposures at or below
conducted studies of relevant human
regarding the quantitative assessment of
those permitted by the existing OSHA 8hour permissible exposure limit of 2 f/ cc. In addition, OSHA has made risk 1 estimates of the excess mortality from lung cancer, mesothelioma,
populations. . . . When an occupational hazard has been identified, useful
epidemiologic study results will determine the quantitative relationship between the dose of exposure to the causative agent and the risk of the adverse health response in the
risk for asbestos. OSHA's proposed estimates of risk may be found in Ex. 84-392, the emergency temporary standard ("the November proposal", 48 FR 51086|. and in the April proposal [49
gastrointestinal cancer, and the
exposed population. The product is Ihc
FR 14116|.
incidence of asbestosis using mathematical models that describe the data observed in epidemiologic studies conducted in various industrial populations.
In many cases, the elevated risks seen in.worker populations reflect past exposures that were higher than those permitted today. OSHA's quantitative risk assessment entails using the directly observed risks from these past exposures to estimate risk at lower exposure levels. OSHA believes this is a scientifically appropriate and valid
procedure. In some instances, OSHA estimated risks using studies which actually observed risks at or below cumulative exposures permitted by the existing standard. The range of studies used by OSHA covers many different work situations and exposure levels. Where possible, OSHA has quantified the ranges of uncertainties in the estimates. These numerical estimates, as well as those risks observed at low
exposure-response relationship, which together with a valid eslimnte of the size of Ihc exposed population, the extent of that exposure and accurate indicators of the disease outcome, give characterization of the
risk [Ex. 99, p. 8).
The potency coefficients for lung cancer and mesothelioma (Ki. and KM, respectively) used to define the doseresponse relationship were calculated for each study so that cancer mortality was estimated for various exposure levels and exposure durations. A number of well-conducted and high quality epidemiologic studies were available that contained sufficient information on which to base a quantitative risk assessment. Some of these studies did not contain exposure data, but could be coupled with exposure information from other sources in order to obtain an estimate of KE and
K,,. OSHA chose not to use animal studies
to predict quantitative estimates of risk from asbestos exposure because of the
I. Estimates of Risk for Lung Cancer
A. The Model. As discussed in the November proposal, OSHA chose a linear model to describe the relationship between the excess relative risk of lung cancer and asbestos exposure (dose). Relative risk is defined as the ratio of the mortality rate of exposed persons to the mortality rate of equivalent nonexposed persons. Relative risk is frequently approximated by the standardized mortality ratio (SMR). which is the observed number of deaths in the exposed population divided by the number of deaths that would be expected in the exposed population. The number of expected deaths is usually derived from the specific age, sex. and calendar year mortality rates in the comparison population.
Asbestos exposure is generally measured in terms of total or cumulative dose. Total dose, also referred to as cumulative exposure or cumulative
exposures, were evaluated to determine many high quality human studies
dose, is a measure of the amount of
the significance of the risk and to determine whether the new standards will lead to a substantial reduction in
available that were conducted in actual workplace situations. As is often the case with animal studies, laboratory
asbestos inhaled; it is the product of the duration of exposure (in years |y|) and the intensity of exposure (which is
risk.
conditions may not precisely parallel
workplace air concentration in millions
OSHA's critical evaluation of all
actual worksite exposures. In the case of of particles per cubic foot [mppcf] or
relevant animal and epidemiological
asbestos, for example, is it not clear in fibers per cubic centimeter [f/cc|).
studies resulted in the selection of eight all instances whether laboratory
Under this definition of exposure, a
studies that contain good data for the
animals have been exposed to fiber size person exposed to airborne asbestos at
calculation of the dose-response
distributions similar to those found in
2 f/cc for 20 years (40 fiber-years/cc [f-
relationship for lung cancer for this final workplaces. In addition, asbestos
y/cc]) has the same total dose as a
rule [Selikoff et al,, 1979. Ex. 84-90:
appears to multiply the underlying lung person who is exposed to asbestos at 4
Seidman. 1984. Ex. 261-A; Henderson
cencer risk of smoking and nonsmoking f/cc for 10 years (40 f-y/cc).
and Enterline. 1979, Ex. 84-48; Weill et workers: laboratory animals generally
The relative risk model used by
at.. 1979, Ex. 84-206; Finkelstein, 1983.
do not have any underlying risk of lung OSHA in assessing the risk of
Ex. 84-240: Peto. 1980, Ex. 84-169;
cancer. Instead of relying on the animal developing lung cancer from asbestos,
Dement et al., 1982, Ex. 84-35; Berry and studies to estimate risk, OSHA has
exposure is described by the following
Newhouse. 1983, Ex. 84-21) and six for supplemented the human data with
equation:
mesothelioma [Selikoff et al.. 1979, Ex. results from animal studies when
84-90; Seidman et al., 19B4, Ex 261-A;
evaluating the health information and
RL=Rt(i-KM fxd,-,<,))
(Eq. i)
Finkelstein. 1983. Ex. 84-240; Peto. 1980, determining the significance of the risk;
Ex. 84-169; Weill et al., 1979, Ex. 84-206; OSHA believes that the animal studies where RL is the lung cancer mortality
and Dement et al,, 1982, Ex. 84-35]. In
can provide valuable qualitative
resulting from the asbestos exposure, RE
general, studies of human cohorts in the information on asbestos-related disease. is the expected mortality in the absence
workplace should provide a better basis For example, the animal studies show
of exposure, f is the intensity of
for quantitative risk assessment than
that all commercial asbestos types can exposure in fibers/cc. d is the duration
studies of experimental animals because cause cancer and pulmonary fibrosis.
of exposure in years, t is the time from
of the similarities in the populations at Animal studies also indicate that longer, the onset of asbestos exposure in years
risk and the populations from which the thinner fibers may have greater
(minus 10 years to allow for a minimum
risk'1 estimates are derived. As Dr. Hans carcinogenic potency than short, coarse latent period) and Ku is the
Weill, testifying on behalf of OSHA,
fibers.
proportionality constant that is a
noted:
The paragraphs below provide a
measure of the carcinogenic potency of
: .The greatest public confidence in decision synopsis of OSHA's quantitative risk
making to reduce an environmental or
estimates derived from mathematical
the asbestos exposure (slope of the dose-response curve).
occupational risk results when the data used models and a discussion of the
The equation can be rewritten as
GLEASON-000880