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Selection of sporophytic and gametophytic self-incompatibility in the absence of a superlocus

机译:在没有超级基因座的情况下孢子和配子体自交不亲和性的选择

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摘要

Self-incompatibility (SI) is a complex trait that enforces outcrossing in plant populations. SI generally involves tight linkage of genes coding for the proteins that underlie self-pollen detection and pollen identity specification. Here, we develop two-locus genetic models to address the question of whether sporophytic SI (SSI) and gametophytic SI (GSI) can invade populations of self-compatible plants when there is no linkage or weak linkage of the underlying pollen detection and identity genes (i.e., no S-locus supergene). The models assume that SI evolves as a result of exaptation of genes formerly involved in functions other than SI. Model analysis reveals that SSI and GSI can invade populations even when the underlying genes are loosely linked, provided that inbreeding depression and selfing rate are sufficiently high. Reducing recombination between these genes makes conditions for invasion more lenient. These results can help account for multiple, independent evolution of SI systems as seems to have occurred in the angiosperms.
机译:自我不相容性(SI)是一种复杂的性状,会在植物种群中引起异源杂交。 SI通常涉及编码构成自花粉检测和花粉同一性指标基础的蛋白质的基因的紧密连接。在这里,我们开发了两基因座遗传模型,以解决在没有潜在的花粉检测和同一性基因的联系或弱联系的情况下,孢子性SI(SSI)和配子体性SI(GSI)是否可以入侵自相容植物群体的问题(即,没有S基因座超基因)。这些模型假定SI的进化是由于先前与SI以外的功能有关的基因被解脱。模型分析表明,即使近亲抑郁和自交率足够高,即使基础基因之间的联系松散,SSI和GSI也可以入侵种群。减少这些基因之间的重组使入侵的条件更加宽松。这些结果可以帮助解释被子植物中SI系统的多个独立进化过程。

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