Environmental Genomics, Christian-Albrechts University of Kiel, Kiel, Germany.
Max Planck Institute for Evolutionary Biology, Plön, Germany.
Chromosome Res. 2022 Sep;30(2-3):241-253. doi: 10.1007/s10577-022-09691-8. Epub 2022 Jul 26.
Non-Mendelian transmission has been reported for various genetic elements, ranging from small transposons to entire chromosomes. One prime example of such a transmission pattern are B chromosomes in plants and animals. Accessory chromosomes in fungi are similar to B chromosomes in showing presence/absence polymorphism and being non-essential. How these chromosomes are transmitted during meiosis is however poorly understood-despite their often high impact on the fitness of the host. For several fungal organisms, a non-Mendelian transmission or a mechanistically unique meiotic drive of accessory chromosomes have been reported. In this review, we provide an overview of the possible mechanisms that can cause the non-Mendelian transmission or meiotic drives of fungal accessory chromosomes. We compare processes responsible for the non-Mendelian transmission of accessory chromosomes for different fungal eukaryotes and discuss the structural traits of fungal accessory chromosomes affecting their meiotic transmission. We conclude that research on fungal accessory chromosomes, due to their small size, ease of sequencing, and epigenetic profiling, can complement the study of B chromosomes in deciphering factors that influence and regulate the non-Mendelian transmission of entire chromosomes.
非孟德尔遗传已在各种遗传元件中得到报道,范围从小的转座子到整个染色体。这种遗传模式的一个主要例子是动植物中的 B 染色体。真菌中的附加染色体与 B 染色体相似,表现出存在/缺失多态性和非必需性。然而,这些染色体在减数分裂期间如何传递的却知之甚少——尽管它们经常对宿主的适应性有很大影响。对于几种真菌生物,已经报道了附加染色体的非孟德尔传递或机制上独特的减数分裂驱动。在这篇综述中,我们提供了可能导致真菌附加染色体非孟德尔传递或减数分裂驱动的机制概述。我们比较了不同真菌真核生物中导致附加染色体非孟德尔传递的过程,并讨论了影响其减数传递的真菌附加染色体的结构特征。我们的结论是,由于真菌附加染色体体积小、测序容易和表观遗传分析,它们的研究可以补充 B 染色体的研究,以揭示影响和调节整个染色体非孟德尔传递的因素。