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Genomic evolution reshapes cell-type diversification in the amniote brain

  • Duoyuan Chen
  • , Zhenkun Zhuang
  • , Maolin Huang
  • , Yunqi Huang
  • , Yuting Yan
  • , Yanru Zhang
  • , Youning Lin
  • , Xiaoying Jin
  • , Yuanmei Wang
  • , Jinfeng Huang
  • , Wenbo Xu
  • , Jingfang Pan
  • , Hong Wang
  • , Fubaoqian Huang
  • , Kuo Liao
  • , Mengnan Cheng
  • , Zhiyong Zhu
  • , Yinqi Bai
  • , Zhiwei Niu
  • , Ze Zhang
  • Ya Xiang, Xiaofeng Wei, Tao Yang, Tao Zeng, Yuliang Dong, Ying Lei, Yangang Sun, Jian Wang, Huanming Yang, Yidi Sun, Gang Cao, Muming Poo, Longqi Liu, Robert K. Naumann, Chun Xu, Zhenlong Wang, Xun Xu, Shiping Liu
  • BGI Research
  • BGI Research
  • South China University of Technology
  • Zhengzhou University
  • University of Chinese Academy of Sciences
  • Chinese Academy of Sciences
  • Shenzhen Institute of Advanced Technology
  • Northwest University China
  • China National GeneBank
  • BGl Research
  • Shanxi Medical University
  • CAS Center for Excellence in Brain Science and Intelligence Technology
  • Zhejiang University

Research output: Contribution to journalArticlepeer-review

5 Scopus citations

Abstract

Over 320 million years of evolution, amniotes have developed complex brains and cognition through largely unexplored genetic and gene expression mechanisms. We created a comprehensive single-cell atlas of over 1.3 million cells from the telencephalon and cerebellum of turtles, zebra finches, pigeons, mice, and macaques, employing single-cell resolution spatial transcriptomics to validate gene expression patterns across species. Our study identifies significant species-specific variations in cell types, highlighting their conservation and diversification in evolution. We found pronounced differences in telencephalon excitatory neurons (EXs) and cerebellar cell types between birds and mammals. Birds predominantly express SLC17A6 in EX, whereas mammals express SLC17A7 in the neocortex and SLC17A6 elsewhere, possibly due to loss of function of SLC17A7 in birds. Additionally, we identified a bird-specific Purkinje cell subtype (SVIL+), implicating the lysine-specific demethylase 11 (LSD1)/KDM1A pathway in learning and circadian rhythms and containing numerous positively selected genes, which suggests an evolutionary optimization of cerebellar functions for ecological and behavioral adaptation. Our findings elucidate the complex interplay between genetic evolution and environmental adaptation, underscoring the role of genetic diversification in the development of specialized cell types across amniotes.

Original languageEnglish
Pages (from-to)1900-1915.e5
JournalDevelopmental Cell
Volume60
Issue number13
DOIs
StatePublished - 7 Jul 2025
Externally publishedYes

Keywords

  • amniote
  • brain science
  • cerebellum
  • evolution of cell types
  • single-nucleus RNA-seq
  • telencephalon

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