Dosage compensation and meiotic sex chromosome inactivation are maintained under relaxed selection

剂量补偿 生物 减数分裂 遗传学 孤雌生殖 基因剂量 生殖系 X-失活 基因 染色体 体细胞 选择(遗传算法) 进化生物学 X染色体 歪斜X-失活 基因组 表型 减数分裂驱动 谱系(遗传) Y染色体 倍性 基因表达 种系突变
作者
Darren J. Parker,Zoé Dumas,Rocío Gómez,Jean-Marc Aury,Marjorie Labedan,Patrick Tran Van,Benjamin Istace,Corinne Cruaud,Karine Labadie,Benjamin Noel,Susana Freitas,Jelisaveta Djordjevic,Tanja Schwander
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [National Academy of Sciences]
卷期号:123 (29): e2531501123-e2531501123
标识
DOI:10.1073/pnas.2531501123
摘要

Dosage compensation and meiotic sex chromosome inactivation (MSCI) are key mechanisms regulating gene expression from the X chromosome in male-heterogametic species. While the convergent evolution of these mechanisms is well documented, their evolutionary fate under relaxed selection remains poorly understood. Here, we test whether dosage compensation and MSCI persist following three independent transitions to parthenogenesis in stick insects, where selection on male phenotypes is relaxed. Using rare males occasionally produced by parthenogenetic females, chromosome-level genome assemblies, RNA-seq from multiple tissues, and immunocytochemistry, we find that dosage compensation is fully conserved across all seven studied somatic tissues. This is even the case in the oldest, approximately 1.5 My old all-female lineage and for tissue-specific genes for which dosage variation is not expected to be very deleterious. Meiotic X inactivation in the germline is also conserved. Surprisingly, however, expression data and cytological markers indicate that MSCI signatures are even stronger in parthenogenetic males, a pattern likely driven by prolonged autosomal transcription during meiosis. These results indicate that X-targeting dosage compensation and MSCI are highly stable over evolutionary time and may be maintained in all-female lineages by a combination of evolutionary constraint, pleiotropy, or very weak selection, whereas autosomal expression during meiosis shifts rapidly under relaxed selection.
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