Molecular mechanisms underlying the breakdown of gametophytic self-incompatibility

被引:73
作者
Stone, JL [1 ]
机构
[1] Colby Coll, Dept Biol, Waterville, ME 04901 USA
关键词
Nicotiana; population genetics; self-compatibility; self-incompatibility; Solanaceae; S-RNase;
D O I
10.1086/339200
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
The breakdown of self-incompatibility has occurred repeatedly throughout the evolution of flowering plants and has profound impacts on the genetic structure of populations. Recent advances in understanding of the molecular basis of self-incompatibility have provided insights into the mechanisms of its loss in natural populations, especially in the tomato family, the Solanaceae. In the Solanaceae, the gene that controls self-incompatibility in the style codes for a ribonuclease that causes the degradation of RNA in pollen tubes bearing an allele at the S-locus that matches either of the two alleles held by the maternal plant, The pollen component of the S-locus has yet to be identified. Loss of self-incompatibility can be attributed to three types of causes: duplication of the S-locus, mutations that cause loss of S-RNase activity, and mutations that do not cause loss of S-RNase activity. Duplication of the S-locus has been well studied in radiation-induced mutants but may be a relatively rare cause of the breakdown of self-incompatibility in nature. Point mutations within the S-locus that disrupt the production of S-RNase have been documented in natural populations. There are also a number of mutants in which S-RNase production is unimpaired, yet self-incompatibility is disrupted. The identity and function of these mutations is not well understood. Careful work on a handful of model organisms will enable population. biologists to better understand the breakdown of self-incompatibility in nature.
引用
收藏
页码:17 / 32
页数:16
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