减数分裂驱动程序劫持了表观遗传阅读器,从而破坏了非载体后代的有丝分裂。

IF 9.4 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES Proceedings of the National Academy of Sciences of the United States of America Pub Date : 2024-11-05 Epub Date: 2024-11-01 DOI:10.1073/pnas.2408347121
Yu Hua, Jianxiu Zhang, Man-Yun Yang, Fan-Yi Zhang, Jing-Yi Ren, Xiao-Hui Lyu, Yan Ding, Fang Suo, Guang-Can Shao, Jun Li, Meng-Qiu Dong, Keqiong Ye, Li-Lin Du
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引用次数: 0

摘要

减数分裂驱动因子(Killer meiotic drivers,KMDs)是一种自私的遗传因子,它通过选择性地杀死缺乏KMD元件的减数分裂产物来扭曲孟德尔遗传,从而促进自身的繁殖。尽管在多种真核生物中都发现了 KMDs,但只有有限的 KMDs 在分子水平上得到了表征,而且它们的杀伤机制在很大程度上仍然未知。在本研究中,我们发现之前被认为是裂殖酵母细胞存活所必需的一个基因是单基因 KMD。在tdk1+ × tdk1Δ杂交中,该基因tdk1几乎杀死了所有tdk1Δ后代。通过分析天然菌株中tdk1的多态性,我们发现了一种抗性单倍型--HT3。这种单倍型缺乏杀伤能力,但却能抵抗野生型tdk1的杀伤。 接近标记实验揭示了tdk1的蛋白产物Tdk1与表观遗传阅读器Bdf1之间的相互作用。 有趣的是,无杀伤力的Tdk1-HT3变体并不与Bdf1相互作用。冷冻电镜进一步阐明了 Tdk1 和 Bdf1 之间的结合界面,确定了 Tdk1-HT3 中破坏该界面的突变。在有性生殖过程中,Tdk1 在减数分裂后的所有孢子中形成稳定的 Bdf1 结合核病灶。这些病灶持续存在于发芽的tdk1Δ后代中,并在有丝分裂过程中通过产生异常的染色体粘连阻碍染色体分离。本研究发现了一种伪装成重要基因的 KMD,并揭示了这种 KMD 劫持细胞机制执行杀伤的分子机制。此外,我们还揭示了失去劫持能力是这种单基因 KMD 演化成非杀伤性抗性单倍型的进化途径。
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A meiotic driver hijacks an epigenetic reader to disrupt mitosis in noncarrier offspring.

Killer meiotic drivers (KMDs) are selfish genetic elements that distort Mendelian inheritance by selectively killing meiotic products lacking the KMD element, thereby promoting their own propagation. Although KMDs have been found in diverse eukaryotes, only a limited number of them have been characterized at the molecular level, and their killing mechanisms remain largely unknown. In this study, we identify that a gene previously deemed essential for cell survival in the fission yeast Schizosaccharomyces pombe is a single-gene KMD. This gene, tdk1, kills nearly all tdk1Δ progeny in a tdk1+ × tdk1Δ cross. By analyzing polymorphisms of tdk1 among natural strains, we identify a resistant haplotype, HT3. This haplotype lacks killing ability yet confers resistance to killing by the wild-type tdk1. Proximity labeling experiments reveal an interaction between Tdk1, the protein product of tdk1, and the epigenetic reader Bdf1. Interestingly, the nonkilling Tdk1-HT3 variant does not interact with Bdf1. Cryoelectron microscopy further elucidated the binding interface between Tdk1 and Bdf1, pinpointing mutations within Tdk1-HT3 that disrupt this interface. During sexual reproduction, Tdk1 forms stable Bdf1-binding nuclear foci in all spores after meiosis. These foci persist in germinated tdk1Δ progeny and impede chromosome segregation during mitosis by generating aberrant chromosomal adhesions. This study identifies a KMD that masquerades as an essential gene and reveals the molecular mechanism by which this KMD hijacks cellular machinery to execute killing. Additionally, we unveil that losing the hijacking ability is an evolutionary path for this single-gene KMD to evolve into a nonkilling resistant haplotype.

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来源期刊
CiteScore
19.00
自引率
0.90%
发文量
3575
审稿时长
2.5 months
期刊介绍: The Proceedings of the National Academy of Sciences (PNAS), a peer-reviewed journal of the National Academy of Sciences (NAS), serves as an authoritative source for high-impact, original research across the biological, physical, and social sciences. With a global scope, the journal welcomes submissions from researchers worldwide, making it an inclusive platform for advancing scientific knowledge.
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