Chromatin evolution and molecular drive in speciation.

Kyoichi Sawamura
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引用次数: 21

Abstract

Are there biological generalities that underlie hybrid sterility or inviability? Recently, around a dozen "speciation genes" have been identified mainly in Drosophila, and the biological functions of these genes are revealing molecular generalities. Major cases of hybrid sterility and inviability seem to result from chromatin evolution and molecular drive in speciation. Repetitive satellite DNAs within heterochromatin, especially at centromeres, evolve rapidly through molecular drive mechanisms (both meiotic and centromeric). Chromatin-binding proteins, therefore, must also evolve rapidly to maintain binding capability. As a result, chromatin binding proteins may not be able to interact with chromosomes from another species in a hybrid, causing hybrid sterility and inviability.

Abstract Image

物种形成中的染色质进化和分子驱动。
杂交不育或不育是否存在生物学上的共性?近年来,主要在果蝇中发现了十几个“物种形成基因”,这些基因的生物学功能揭示了分子共性。杂交不育和不育的主要原因似乎是染色质进化和物种形成中的分子驱动。异染色质内的重复卫星dna,特别是在着丝粒上,通过分子驱动机制(减数分裂和着丝粒)快速进化。因此,染色质结合蛋白也必须快速进化以保持结合能力。因此,染色质结合蛋白可能无法与杂种中其他物种的染色体相互作用,从而导致杂种不育和不育。
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