MUTATIONS THAT AFFECT NEURAL CELL LINEAGES AND CELL FATES DURING THE DEVELOPMENT OF THE NEMATODE CAENORHABDITIS-ELEGANS
MUTATIONS THAT AFFECT NEURAL CELL LINEAGES AND CELL FATES DURING THE DEVELOPMENT OF THE NEMATODE CAENORHABDITIS-ELEGANS
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DOI:
10.1101/sqb.1983.048.01.050
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发表时间:
1983-01-01
期刊:
影响因子:
--
通讯作者:
ELLIS, HM
中科院分区:
文献类型:
--
作者:
HORVITZ, HR;STERNBERG, PW;ELLIS, HM
Genetics provides one approach toward a molecular understanding of the structure, functioning, and development of the nervous system. For example, the isolation and characterization of mutant animals can indicate when and where particular molecules are utilized in the nervous system as well as what functions those molecules perform. More specifically, since the primary effect of a mutation is to disrupt the action of a gene, the determination of the defect (s) induced by that mutation can reveal the time (s) and site (s) at which that gene--and thus, in general, the RNA or protein product of that gene--functions. In principle, an examination of mutants should reveal whether there are molecules that are specifically involved in the development of particular neuron types, of particular sets of neuron types, or of neurons in general. Such information should indicate how molecules that function during development are partitioned either within the nervous system or within both nervous and nonnervous tissue. As pointed out by Brenner (1973), one organism appropriate for a genetic analysis of the nervous system is the nematode Caenorhabditis elegans. This nematode is small (adults are about 1 mm long) and consists of few cells. For example, the nervous system of the adult C. elegans hermaphrodite contains 302 neurons (White et al., this volume), of which just 8 are dopaminergic (Sulston et al. 1975) and only 2 are serotonergic Horvitz et al. 1982b). The number, positions, and morphologies of these 302 neurons are essentially invariant among individuals, so that every neuron in C. elegans can be considered to be an" identified neuron." In addition, the complete circuitry of the C. elegans nervous system has been established from electron micrographs of serial sections (Albertson and Thomson 1976; White et al. 1976 and this volume; Sulston et al. 1980). That the neuroanatomy of C. elegans is simple, invariant, and known provides an important basis for the detailed determination of the cellular defects of mutant animals. C. elegans is well suited for genetic research (Brenner 1974; Herman and Horvitz 1980). Its rapid generation time (3 days from conception to maturity), large number of progeny (300 per parent), and small size facilitate the production and handling of large numbers of animals; these features enable the isolation of the rare mutant or recombinant individuals needed for detailed genetic analyses. Because C. elegans generally reproduces as an internally self-fertilizing hermaphro-