40 C.F.R. § 799.9537
(c)
Definitions. The definitions in
section 3 of TSCA and in
40 CFR Part 792—Good Laboratory Practice Standards apply to this test guideline. The following definitions also apply to this test guideline.
Chromatid-type aberration is structural chromosome damage expressed as breakage of single chromatids or breakage and reunion between chromatids.
Chromosome-type aberration is structural chromosome damage expressed as breakage, or breakage and reunion, of both chromatids at an identical site.
Endoreduplication is a process in which after an S period of DNA replication, the nucleus does not go into mitosis but starts another S period. The result is chromosomes with 4, 8, 16,...chromatids.
Gap is an achromatic lesion smaller than the width of one chromatid, and with minimum misalignment of the chromatid(s).
Mitotic index is the ratio of cells in metaphase divided by the total number of cells observed in a population of cells; an indication of the degree of proliferation of that population.
Numerical aberration is a change in the number of chromosomes from the normal number characteristic of the cells utilized.
Polyploidy is a multiple of the haploid chromosome number (n) other than the diploid number (i.e., 3n, 4n, and so on).
Structural aberration is a change in chromosome structure detectable by microscopic examination of the metaphase stage of cell division, observed as deletions and fragments, intrachanges, and interchanges.
(i)
References. For additional background information on this test guideline, the following references should be consulte. These references are available at the addresses in §
700.17(b)(1) and
(2) of this chapter.
(1)
Evans, H.J. Cytological Methods for Detecting Chemical Mutagens. Chemical Mutagens, Principles and Methods for their Detection, Vol. 4, Hollaender, A. Ed. Plenum Press, New York and London, pp. 1-29 (1976).
(2)
Ishidate, M. Jr. and Sofuni, T. The In Vitro Chromosomal Aberration Test Using Chinese Hamster Lung (CHL) Fibroblast Cells in Culture. Progress in Mutation Research, Vol. 5, Ashby, J. et al., Eds. Elsevier Science Publishers, Amsterdam-New York-Oxford, pp. 427-432 (1985).
(3)
Galloway, S.M. et al. Chromosome aberration and sister chromatid exchanges in Chinese hamster ovary cells: Evaluation of 108 chemicals. Environmental and Molecular Mutagenesis 10 (suppl. 10), 1-175 (1987).
(4)
Scott, D. et al. Genotoxicity under Extreme Culture Conditions. A report from ICPEMC Task Group 9. Mutation Research 257, 147-204 (1991).
(5)
Morita, T. et al. Clastogenicity of Low pH toVarious Cultured Mammalian Cells. Mutation Research 268, 297-305 (1992).
(6)
Ames, B.N., McCann, J. and Yamasaki, E. Methods for Detecting Carcinogens and Mutagens with the Salmonella/Mammalian Microsome Mutagenicity Test. Mutation Research 31, 347-364 (1975).
(7)
Maron, D.M. and Ames, B.N. Revised Methods for the Salmonella Mutagenicity Test. Mutation Research 113, 173-215 (1983).
(8)
Natarajan, A.T. et al. Cytogenetic Effects of Mutagens/Carcinogens after Activation in a Microsomal System In Vitro, I. Induction of Chromosome Aberrations and Sister Chromatid Exchanges by Diethylnitrosamine (DEN) and Dimethylnitrosamine (DMN) in CHO Cells in the Presence of Rat-Liver Microsomes. Mutation Research 37, 83-90 (1976).
(9)
Matsuoka, A., Hayashi, M. and Ishidate, M., Jr. Chromosomal Aberration Tests on 29 Chemicals Combined with S9 Mix In Vitro. Mutation Research 66, 277-290 (1979).
(10)
Elliot, B.M. et al. Report of UK Environmental Mutagen Society Working Party. Alternatives to Aroclor 1254-induced S9 in In Vitro Genotoxicity Assays. Mutagenesis 7, 175-177 (1992).
(11)
Matsushima, T. et al. A Safe Substitute for Polychlorinated Biphenyls as an Inducer of Metabolic Activation Systems. de Serres, F.J., Fouts, J.R., Bend, J.R. and Philpot, R.M. Eds. In Vitro Metabolic Activation in Mutagenesis Testing, Elsevier, North-Holland, pp. 85-88 (1976).
(12)
Galloway, S.M. et al. Report from Working Group on In Vitro Tests for Chromosomal Aberrations. Mutation Research 312, 241-261 (1994).
(13)
Richardson, C. et al. Analysis of Data from In Vitro Cytogenetic Assays. Statistical Evaluation of Mutagenicity Test Data. Kirkland, D.J., Ed. Cambridge University Press, Cambridge, pp. 141-154 (1989).
(14)
Soper, K.A. and Galloway S.M. Replicate Flasks are not Necessary for In Vitro Chromosome Aberration Assays in CHO Cells. Mutation Research 312, 139-149 (1994).
(15)
Krahn, D.F., Barsky, F.C. and McCooey, K.T. CHO/HGPRT Mutation Assay: Evaluation of Gases and Volatile Liquids. Tice, R.R., Costa, D.L., Schaich, K.M. Eds. Genotoxic Effects of Airborne Agents. New York, Plenum, pp. 91-103 (1982).
(16)
Zamora, P.O. et al. Evaluation of an Exposure System Using Cells Grown on Collagen Gels for Detecting Highly Volatile Mutagens in the CHO/HGPRT Mutation Assay. Environmental Mutagenesis 5, 795-801 (1983).
(17)
Locke-Huhle, C. Endoreduplication in Chinese hamster cells during alpha-radiation induced G2 arrest. Mutation Research 119, 403-413 (1983).
(18)
Huang, Y., Change, C. and Trosko, J.E. Aphidicolin—induced endoreduplication in Chinese hamster cells. Cancer Research 43, 1362-1364 (1983).
Notes, amendments, and revision history
Amendments
[65 FR 78807, Dec. 15, 2000, as amended at 77 FR 46294, Aug. 3, 2012]
Source
Source: 62 FR 43824, Aug. 15, 1997, unless otherwise noted.
Authority
Authority: 15 U.S.C. 2603, 2611, 2625.
Source
Source: 49 FR 39817, Oct. 10, 1984, unless otherwise noted.
Amendments
[65 FR 78807, Dec. 15, 2000, as amended at 77 FR 46294, Aug. 3, 2012]