Document 3eYZz0X0xByBNjK5G1KVZ99Oy
MESOTHELIOMAS IN RATS
FOLLOWING THE INTRA-PLEURAL INOCULATION OF ASBESTOS
J. C. Wagner, G. Berry and V. Timbrell Pneumoconiosis Research Unit of the Medical Research Council, Penarth, Glamorgan
Epidemiological studies have suggested that mesotheliomas of the pleura and peritoneum are related to exposure to asbestos dust. Pleural mesotheliomas may be produced in rats following intra-pleural inoculation of asbestos dust and experiments in animals may help in the determination of the factors influencing the occurrence of such tumours. In this paper the results of three experiments in which asbestos was inoculated intra pleurally into rats will be given.
Experiments
Experiment A: Comparison of Types of Asbestos
The treatments were amosite, chrysotile, crocidolite, oil-extracted crocidolite and a saline control. There were 96 S.P.F. rats per treatment and the experi ment was duplicated with a similar number of Standard rats. The dose was 20 mg. of dust per rat and the experiment was started at the end of 1962.
Experiment B; Varying Dose Experiment
This experiment involved only chrysotile and crocidolite each at 5 doses, o.j, t, 2, 4 and 8 mg. per rat with 12 rats per dose per dust. Injection was during March 1965.
Experiment C: Comparison of Canadian Chrysottles
Samples of chrysotile from seven Canadian mines were used, the same chrysotile as in experiments A and B and a saline control. The dose was 20 mg. per rat, and there were 16 rats per Canadian chrysotile, 32 for the original sample of chrysotile and 48 controls. Injection was during December 1966.
All the experiments were survival experiments, i.e. the animals were only idled if they appeared to be distressed. Experiments A and B are com plete but 20i of the rats in Experiment C were still living at the end of January 1969 so that the results presented of this experiment are not final
A necropsy examination was carried out on each animal. Of the rats inoculated with asbestos 2n appreciable proportion developed mesotheliomas in all the experiments but we have never found this type of tumour with the control treatments.
Thus a mesothelioma can be said to be a direct result of inoculation with asbestos.
Method of Analysis
The treatment comparisons to be given are based on the incidence of mesotheliomas. The proportion of animals developing meso theliomas may be used for comparison within an experiment but it has to be realized that tills proportion is the result of two factors, the first being the natural mortality experienced by a group of animals whether injected with asbestos or not, and the second the increased mortality due to the risk of developing a mesothelioma. It is the latter component we are interested in and we would like to separate it from the former. With large groups of animals such as in experiment A this can be achieved by life table methods and the result of the calcula tions depicted by a survival curve showing the proportion of animals alive at a given time when the animals were at risk of developing a mesothelioma but the risk of natural death has been eliminated. If we knew the mathematical form of this curve we could estimate its parameters and effectively produce a smoother version of the survival curve. This would be particularly useful for experiments B and C where small groups of animals were used and it would be expected that the calcu lated survival curves would show large irregularities.
A model relating the induction rate of tumours with time was given by Nordling (1953) and developed by Armitage & DoS (1954) and Pike (1966) and has been used both for analysing epidemiological data and animal experiments. In our situation, if m is the age-specific death rate of animals dying with a mesothelioma at time t after inocula tion the model is
m = ck(t--w)*`l for t > w
where c, k and w are constants. Two theoretical approaches lead to this form. First it may be considered as the third asymptotic extreme value distribution arising if a large
216
1
OF ASBESTOS
Penarth, Glamorgan
;-\n be said to be a direa ith asbestos.
of Analysis
arisons to be giveo are e of mesotheliomas. The iak developing mesod for comparison within
has to be realized that e result of two factors, the natural mortality oup of animals whether 3 or not, and the second lity due to the risk of eiioma. It is the latter
interested in and we te it from the former, of animals such as in an be achieved by life he result of the calcula-
survival curve showing aals alive at a given time re at risk of developing the risk of natural death d. If we knew the f this curve we could a and effectively produce " the survival curve. This y useful for experiments l groups of animals were expected that the calcues would show large
the induction rate or was given by Nordling d by Armitage & Doll ;66) and has been used pidemiological data and In our situation, if m is h rate of animals dying
at time t after inocula-
w)k'1 for o w
a are constants. Two 3 lead to this form. First as the third asymptotic bution arising if a large
Mesotheliomas in Rats
217
number of cells are considered at risk of malignancy and a cancer cell is formed when the first such cell succumbs. Secondly the model would hold if a cancer cell was the end result of k successive cellular changes. With both approaches the constant c is related to the dose and tu is the induction or iatent period. In our analysis we will also describe the age-specific natural death rate as exp(<i + bt) which gives a satisfactory fit to our control groups and has been used in epidemiological studies.
Results
Experiment <4, The percentages of rats developing mesotheliomas are given in Table r. We note that the SPF and Standard rats
crocidoiite. For each dust the pattern was similar, consisting of an initial period during which no mesotheliomas were found followed by a rapid onset of cases. However, the length of the initial period, i.e. the induction period, was dependent oa the dust. For Standard rats similar results were obtained but the difference between chrysotile and crocidoiite was smaller.
The model given earlier has been fitted to this experiment and generally gave good fits. The constant k had values near to 3 and may be taken as 3 without any loss of precision (this value has been assumed to hold for experiments B and C also). As an
Table i : Percentage of Rats Developing Meso thelioma--Experiment A
SPF
Amosite.............................................40 Chrysotile...................................... 64 Cioddolite................................. 59 Oil-extracted Crocidoiite . . S9
Standard
31 69 68 64
gave similar results, that amosite gave fewest mesotheliomas and that the oil-extracted crocidoiite gave similar values to the natural crocidoiite. Calculation of the survival curve eliminating natural death, i.e. considering only
SOOr ------ .
Fig. 2. Experiment A: Comparison of observed and expected distribution of deaths for crod-
dolite in Standard rats. The expected deaths are calculated from the model given in the text with a = --10-44, b = 0-00586, c = 154 x
to-", k = 3, w - 332.
250 50C 750 ,000 Dajrs after Injection
I HO
Fig. i. Experiment A: Survival of S.P.F. rats with mesotheliomas after eliminating effect
of mortality due to other causes.
mesotheliomas as causing death, gives Fig. x for SPF rats. For convenience of presentation the oil-extracted crocidoiite has been excluded since its results were so similar to the natural
illustration of the fit of the model, Fig. 2 shows the cumulative number of deaths with and without mesotheliomas for crocidoiite in Standard rats; there is close agreement between the observed and expected distribu
tions. Experiment B. Averaged over doses, 36%
and 19 of rats developed mesotheliomas for chrysotile and crocidolice respectively. For each dust the constant w was assumed independent of dose. This is required on theoretical grounds but with such a small experiment the data cannot be used to check this assumption very rigorously. There is a relationship between the estimate of the constant c and dose. With only 12 rats per dose the scatter is large but it has been shown that the relationship may be taken as linear, i.e. at any age the risk of developing a mesothelioma is proportional to amount of dust injected. The induction period was zoo days longer for crocidoiite than chrysotile.
218 J. C. Wagner, G. Berry and V. Timbrell
Fig. 3 shows the observed and expected numbers of mesotheliomas. If we extrapolate the results of this experiment to a dose of 20 mg. we find that for both dusts this would lead to a higher rate of mesotheliomas than actually occurred in experiment A, the difference being significant for chrysotile but
not for crocidolite.
of c but an average cobalt content, does not fit into the same trend as the other mines. In fact the correlation is significant only if mine C is excluded. The correlation between c and chromium does not suffer from this dis advantage since mine C has a low chromium content. The relationship between c and
Table 2: Values of c and Brucite Content Experiment C
Mine
B D F E A H C
c x /0s
9-1 8-7 8-5 6-9 54 4'3 2-0
Brucite Content
20% Trace Trace Trace to 5% Trace to 5% Trace Absent
chromium is shown in Table 3. The correla tion is high (0,91) and significant (p < 0.01). Nickel, scandium and iron have also been looked at. Nickel gives a similar pattern to cobalt except that mine C is even more diver gent from the relationship shown by the other 6 mines. The relationships of c with scandium and iron showed nothing of interest. Mine C is in western Canada, the other 6 in a relatively small area of eastern Canada.
Table 3: Tntra-Pleural Inoculation of Canadian Chrysotiles
Values of c (Carcinogenicity) and Chemical Properties
on the basis that the risk of developing a mesothelioma at any age is proportional to
amount injected.
Experiment G. At this stage 69% of the rats injected with the original chrysotile have developed mesotheliomas and between 19 and 56% for the 7 samples from different Canadian mills.
Again w was assumed constant for the different forms of chrysotile and in fact the best value was almost identical with that of experiment B. Comparing the treatments in terms of the parameter c, this parameter was significantly larger for the original chrysotile than the Canadian samples and the value fitted in with what would be extrapolated from experiment B.
In Table 2 are shown the values of c, and the brucite, cobait and chromium contents of the dusts. There is correlation between cobalt and c, but mine C, which has the lowest value
Brucite Mine c x ro* Content
Original Sample
B D F E
17-7
9-i 8-7 8-5 6-9
A 5`4
H 4'3 C 2'0
--
20% Trace Trace Trace to 5\ Trace to 5-., Trace Absent
Cobalt (ppm)
--
no 78 78 S7
63
43 So
Chromium (ppm)
--
780 930 730 44
520
48c F20
Discussion
All these experiments were started before the U.I.C.C. Reference Samples became available but the seven Canadian dusts used in experiment C came from 7 of the 8 mines from which material was supplied to form the Canadian chrysotile sample. Also, the sample of chrysotile used in all three experiments was a super-fine grade from one of these
, G. Berry and V. TimbreJI
cobalt content, does not d as the other mines. In
significant only if mine irrdauon between c and
suffer from this dis C has a low chromium rnship between c and
c and Brucite Content J.MENT C
ICP
I
7 5 9 4 3 o
Brucite Concent
20% Trace Trace
Trace to 5% Trace to 5%
Trace Absent
n Table 3. The correlad significant (p < o.ox). d iron have also been , es a similar pattern to .e C is even more diveriship shown by the other shins of c with scandium ling of interest. Mine C the other 6 in a relatively Canada.
Inoculation of Canadian
vsotiles
KSErncirr) and Chemical
FERTIES
cite Cobalt Chromium
ent {ppm)
'ppm)
--
no e 78 e 78 ) > 57 e 63 t c 43 nc 60
--
780 930 730 440
520
480 120
UbSION
. were started before the amples became available nadian dusts used in from 7 of the 8 mines ,vas supplied to form the ample. Also, the sample 1 all three experiments ide from one of these
Mesotheliomas in Rats
219
mines (D). The difference observed between the original chrysotile and the sample from mine D in experiment C is therefore of interest and could be due to different milling procedures or since the samples were obtained several years apart due to coming from a different pan of the mine. It is also of interest to note that the mesothelioma rate due to the original chrysotile in experiment B and C is greater than in experiment A. This could be due to a change in the susceptibility of the rats or a change in the dust during storage. An injection experiment was started in 1967 using the U.I.C.C. Reference Samples, repeating the separate Canadian samples and including a pure brucite treatment, this last treatment being of interest in view of the results of experiment C.
The procedure of intra-pleural inoculation
is unrealistic when compared with human experience and results obtained from inhalation experiments would be more infor mative. Chrysotile has been shown to be a biologically active dust but epidemiological studies suggest that croddolite is more dangerous. This may be because the spiral like shape of chrysotile fibres inhibits their inhalation. In 1967 rats were exposed in chambers to dust douds of the reference
samples and 3 months ago another inhalation experiment was started.
Summary
Rats have been inoculated intrapleurally with samples of asbestos. With all types of asbestos an appredable proportion of animals developed mesotheliomas. There was no difference in effect between the natural and oil-extracted forms of croddolite. Amosite produced fewer mesotheliomas than did chrysotile and croddolite, this being a result of a longer induction period.
When different doses were applied the risk of devdoping a mesothelioma at a given age could be taken as proportional to the dose.
Samples of chrysotfie from seven different Canadian mines all produced mesotheliomas.
We are grateful for the help we have received from our colleagues, Mr. D. E. Munday, Mr. W. H. Roberts and Mr. J. W. Skidmore.
The trace element results were determined by Mr. A. Morgan and his co-workers.
References
Armitage, P. and Doll, R. (1954): Brit. J. Cancer, 8, r.
Nordling, C. O. (1953): Brit. J. Cancer, 7. 68. Pike, M. C. (1966): Biometrics, 22, 142.