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两种转录上不同的途径驱动具有遗传和温度依赖性性别决定的爬行动物的雌性发育。

Two transcriptionally distinct pathways drive female development in a reptile with both genetic and temperature dependent sex determination.

机构信息

Institute for Applied Ecology, University of Canberra, Canberra, Australia.

Australian National Wildlife Collection CSIRO National Research Collections Australia, Canberra, Australia.

出版信息

PLoS Genet. 2021 Apr 15;17(4):e1009465. doi: 10.1371/journal.pgen.1009465. eCollection 2021 Apr.

Abstract

How temperature determines sex remains unknown. A recent hypothesis proposes that conserved cellular mechanisms (calcium and redox; 'CaRe' status) sense temperature and identify genes and regulatory pathways likely to be involved in driving sexual development. We take advantage of the unique sex determining system of the model organism, Pogona vitticeps, to assess predictions of this hypothesis. P. vitticeps has ZZ male: ZW female sex chromosomes whose influence can be overridden in genetic males by high temperatures, causing male-to-female sex reversal. We compare a developmental transcriptome series of ZWf females and temperature sex reversed ZZf females. We demonstrate that early developmental cascades differ dramatically between genetically driven and thermally driven females, later converging to produce a common outcome (ovaries). We show that genes proposed as regulators of thermosensitive sex determination play a role in temperature sex reversal. Our study greatly advances the search for the mechanisms by which temperature determines sex.

摘要

温度如何决定性别仍然未知。最近的一个假设提出,保守的细胞机制(钙和氧化还原;'CaRe'状态)感知温度,并识别可能参与驱动性发育的基因和调控途径。我们利用模式生物 Pogona vitticeps 独特的性别决定系统来评估这一假设的预测。P. vitticeps 有 ZZ 雄性:ZW 雌性性染色体,其影响可以在遗传雄性中被高温所掩盖,导致雄性到雌性的性反转。我们比较了 ZWf 雌性和温度性别反转的 ZZf 雌性的发育转录组系列。我们证明,遗传驱动和热驱动的雌性之间的早期发育级联差异巨大,后来趋同产生共同的结果(卵巢)。我们表明,作为热敏性别决定调节因子的基因在温度性别反转中发挥作用。我们的研究极大地推动了寻找温度决定性别机制的研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b472/8049264/412c254d09b1/pgen.1009465.g001.jpg

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