Articles

< Previous         Next >  
Single-cell analyses identify distinct and intermediate states of zebrafish pancreatic islet development
Chong-Jian Lu1 , Xiao-Ying Fan2 , Yue-Feng Guo1 , Zhen-Chao Cheng1 , Ji Dong2, Jin-Zi Chen3, Lian-Yan Li1, Mei-Wen Wang1, Ze-Kai Wu1, Fei Wang4, Xiang-Jun Tong1, Ling-Fei Luo3, Fu-Chou Tang 1,2 , Zuo-Yan Zhu1, and Bo Zhang 1,*
1 Key Laboratory of Cell Proliferation and Differentiation of the Ministry of Education, College of Life Sciences, Peking University, Beijing 100871, China
2 Beijing Advanced Innovation Center for Genomics (ICG), College of Life Sciences, Peking University, Beijing 100871, China
3 Key Laboratory of Freshwater Fish Reproduction and Development, Ministry of Education, Laboratory of Molecular Developmental Biology, School of Life Sciences, Southwest University, Chongqing 400715, China
4 National Center for Protein Sciences, Peking University, Beijing 100871, China
*Correspondence to:Bo Zhang, E-mail: bzhang@pku.edu.cn
J Mol Cell Biol, Volume 11, Issue 6, June 2019, 435-447,  https://doi.org/10.1093/jmcb/mjy064
Keyword: single-cell RNA-seq, zebrafish, pancreas, islet, precursor cell, progenitor cell
Pancreatic endocrine islets are vital for glucose homeostasis. However, the islet developmental trajectory and its regulatory network are not well understood. To define the features of these specification and differentiation processes, we isolated individual islet cells from TgBAC(neurod1:EGFP) transgenic zebrafish and analyzed islet developmental dynamics across four different embryonic stages using a single-cell RNA-seq strategy. We identified proliferative endocrine progenitors, which could be further categorized by different cell cycle phases with the G1/S subpopulation displaying a distinct differentiation potential. We identified endocrine precursors, a heterogeneous intermediate-state population consisting of lineage-primed alpha, beta and delta cells that were characterized by the expression of lineage-specific transcription factors and relatively low expression of terminally differentiation markers. The terminally differentiated alpha, beta, and delta cells displayed stage-dependent differentiation states, which were related to their functional maturation. Our data unveiled distinct states, events and molecular features during the islet developmental transition, and provided resources to comprehensively understand the lineage hierarchy of islet development at the single-cell level.