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直接的胶质细胞向神经元转分化产生一对雄性特异性神经元,确保雄性灵活交配。

Direct glia-to-neuron transdifferentiation gives rise to a pair of male-specific neurons that ensure nimble male mating.

作者信息

Molina-García Laura, Lloret-Fernández Carla, Cook Steven J, Kim Byunghyuk, Bonnington Rachel C, Sammut Michele, O'Shea Jack M, Gilbert Sophie Pr, Elliott David J, Hall David H, Emmons Scott W, Barrios Arantza, Poole Richard J

机构信息

Department of Cell and Developmental Biology, University College London, London, United Kingdom.

Dominick P. Purpura Department of Neuroscience, Albert Einstein College of Medicine, New York, United States.

出版信息

Elife. 2020 Nov 3;9:e48361. doi: 10.7554/eLife.48361.

Abstract

Sexually dimorphic behaviours require underlying differences in the nervous system between males and females. The extent to which nervous systems are sexually dimorphic and the cellular and molecular mechanisms that regulate these differences are only beginning to be understood. We reveal here a novel mechanism by which male-specific neurons are generated in through the direct transdifferentiation of sex-shared glial cells. This glia-to-neuron cell fate switch occurs during male sexual maturation under the cell-autonomous control of the sex-determination pathway. We show that the neurons generated are cholinergic, peptidergic, and ciliated putative proprioceptors which integrate into male-specific circuits for copulation. These neurons ensure coordinated backward movement along the mate's body during mating. One step of the mating sequence regulated by these neurons is an alternative readjustment movement performed when intromission becomes difficult to achieve. Our findings reveal programmed transdifferentiation as a developmental mechanism underlying flexibility in innate behaviour.

摘要

两性异形行为需要雄性和雌性神经系统存在潜在差异。神经系统两性异形的程度以及调节这些差异的细胞和分子机制才刚刚开始被理解。我们在此揭示了一种新机制,通过性别共享神经胶质细胞的直接转分化,在[具体部位]产生雄性特异性神经元。这种神经胶质细胞向神经元的细胞命运转变发生在雄性性成熟过程中,受性别决定途径的细胞自主控制。我们表明,产生的神经元是胆碱能、肽能和有纤毛的假定本体感受器,它们整合到雄性特异性的交配回路中。这些神经元确保在交配时沿着配偶身体进行协调的向后运动。由这些神经元调节的交配序列的一个步骤是在插入难以实现时进行的一种替代调整运动。我们的发现揭示了程序性转分化是先天行为灵活性的一种发育机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/45d8/7609048/c94d4bd5d9d9/elife-48361-fig1.jpg

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