From wild to domestic: Single-cell transcriptomic perspectives on hippocampal regulation and evolution

生物 神经发生 海马结构 驯化 转录组 神经科学 背景(考古学) 人口 脊椎动物 基因 适应(眼睛) 进化生物学 电池类型 神经干细胞 祖细胞 海马体 遗传学 哺乳动物大脑 神经可塑性 祖细胞 基因表达调控 功能(生物学) 基因表达 细胞生物学 基因组学 基因调控网络 表型 转录因子 再生(生物学)
作者
Lirong Hu,Yun-Mei Wang,Jingyi Xie,Li‐Jiao Gu,Si Si,Zheng-Xi Liu,Lan Long,Tingting Yin,Ali Esmailizadeh,Fei Wu,Xing Guo,Nicolas Alexandre,Yang-Qing Lu,Mingli Li,Mingshan Wang
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 (36)
标识
DOI:10.1073/pnas.2602503123
摘要

How domestication shapes brain evolution remains an open question. In this study, we integrated single-nucleus RNA sequencing (snRNA-seq), population genomics, and machine learning to investigate the hippocampal evolution under domestication. Across-species comparisons revealed that hippocampal cell type profiles are largely conserved across vertebrate species, while supporting the presence of adult hippocampal neurogenesis in birds. We further found that domestication and selective breeding likely influence the cellular composition and molecular regulation of the hippocampus. Our findings provide cellular evidence supporting the hypothesis that domestication affects adult hippocampal neurogenesis. Additionally, we showed that genes associated with neural progenitor cells (NPC) states and cell-marker programs are enriched for signatures of selection. Many of these genes function as regulators of neurogenesis and pathways mediating stress and fear reduction. Specifically, we identified selection at the FKBP5 promoter that may influence its expression in the NPC lineage, potentially contributing to stress-response regulation during domestication. Collectively, these results suggest that domestication is associated with hippocampal remodeling as part of an adaptive response to human-managed environments. This study provides a cellular and genetic perspective on how domestication reshapes the brain and offers a basis for further investigation into the mechanisms of neural evolution within the context of microevolution.

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