小鼠嗅觉皮层的单细胞基因组学揭示了与新皮层和祖先细胞类型进化特征的对比

IF 21.2 1区 医学 Q1 NEUROSCIENCES
Sara Zeppilli, Alonso O. Gurrola, Pinar Demetci, David H. Brann, Tuan M. Pham, Robin Attey, Noga Zilkha, Tali Kimchi, Sandeep R. Datta, Ritambhara Singh, Maria A. Tosches, Anton Crombach, Alexander Fleischmann
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引用次数: 0

摘要

了解皮层细胞类型多样性的分子逻辑,有助于阐明皮层回路的功能和进化。在这里,我们进行了单核转录组和染色质可及性分析,以比较成年小鼠和四足动物物种的三层和六层皮质区域的神经元。我们发现,与六层新皮层相比,三层小鼠嗅觉(梨状)皮层的谷氨酸能神经元在转录组谱中表现出连续而不是离散的变化。梨状和新皮质谷氨酸能细胞亚群具有保守的转录组谱,可通过不同的区域特异性表观遗传状态来区分。此外,我们在梨状皮质中发现了一个突出的未成熟神经元群体,并观察到,与新皮质相反,实验室小鼠和野生小鼠的梨状皮质在谷氨酸能细胞之间表现出差异。最后,我们发现梨状神经元与海龟、蜥蜴和蝾螈皮层神经元的转录组相似性大于与新皮层神经元的转录组相似性。总之,尽管与新皮层共同进化超过2亿年,但嗅觉皮层神经元保留了祖先皮层的分子特征。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Single-cell genomics of the mouse olfactory cortex reveals contrasts with neocortex and ancestral signatures of cell type evolution

Single-cell genomics of the mouse olfactory cortex reveals contrasts with neocortex and ancestral signatures of cell type evolution

Understanding the molecular logic of cortical cell-type diversity can illuminate cortical circuit function and evolution. Here, we performed single-nucleus transcriptome and chromatin accessibility analyses to compare neurons across three- to six-layered cortical areas of adult mice and across tetrapod species. We found that, in contrast to the six-layered neocortex, glutamatergic neurons of the three-layered mouse olfactory (piriform) cortex displayed continuous rather than discrete variation in transcriptomic profiles. Subsets of piriform and neocortical glutamatergic cells with conserved transcriptomic profiles were distinguished by distinct, area-specific epigenetic states. Furthermore, we identified a prominent population of immature neurons in piriform cortex and observed that, in contrast to the neocortex, piriform cortex exhibited divergence between glutamatergic cells in laboratory versus wild-derived mice. Finally, we showed that piriform neurons displayed greater transcriptomic similarity to cortical neurons of turtles, lizards and salamanders than to those of the neocortex. In summary, despite over 200 million years of coevolution alongside the neocortex, olfactory cortex neurons retain molecular signatures of ancestral cortical identity.

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来源期刊
Nature neuroscience
Nature neuroscience 医学-神经科学
CiteScore
38.60
自引率
1.20%
发文量
212
审稿时长
1 months
期刊介绍: Nature Neuroscience, a multidisciplinary journal, publishes papers of the utmost quality and significance across all realms of neuroscience. The editors welcome contributions spanning molecular, cellular, systems, and cognitive neuroscience, along with psychophysics, computational modeling, and nervous system disorders. While no area is off-limits, studies offering fundamental insights into nervous system function receive priority. The journal offers high visibility to both readers and authors, fostering interdisciplinary communication and accessibility to a broad audience. It maintains high standards of copy editing and production, rigorous peer review, rapid publication, and operates independently from academic societies and other vested interests. In addition to primary research, Nature Neuroscience features news and views, reviews, editorials, commentaries, perspectives, book reviews, and correspondence, aiming to serve as the voice of the global neuroscience community.
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