[PDF][PDF] Pseudotemporal ordering of single cells reveals metabolic control of postnatal β cell proliferation

C Zeng, F Mulas, Y Sui, T Guan, N Miller, Y Tan, F Liu… - Cell metabolism, 2017 - cell.com
C Zeng, F Mulas, Y Sui, T Guan, N Miller, Y Tan, F Liu, W Jin, AC Carrano, MO Huising
Cell metabolism, 2017cell.com
Pancreatic β cell mass for appropriate blood glucose control is established during early
postnatal life. β cell proliferative capacity declines postnatally, but the extrinsic cues and
intracellular signals that cause this decline remain unknown. To obtain a high-resolution
map of β cell transcriptome dynamics after birth, we generated single-cell RNA-seq data of β
cells from multiple postnatal time points and ordered cells based on transcriptional similarity
using a new analytical tool. This analysis captured signatures of immature, proliferative β …
Summary
Pancreatic β cell mass for appropriate blood glucose control is established during early postnatal life. β cell proliferative capacity declines postnatally, but the extrinsic cues and intracellular signals that cause this decline remain unknown. To obtain a high-resolution map of β cell transcriptome dynamics after birth, we generated single-cell RNA-seq data of β cells from multiple postnatal time points and ordered cells based on transcriptional similarity using a new analytical tool. This analysis captured signatures of immature, proliferative β cells and established high expression of amino acid metabolic, mitochondrial, and Srf/Jun/Fos transcription factor genes as their hallmark feature. Experimental validation revealed high metabolic activity in immature β cells and a role for reactive oxygen species and Srf/Jun/Fos transcription factors in driving postnatal β cell proliferation and mass expansion. Our work provides the first high-resolution molecular characterization of state changes in postnatal β cells and paves the way for the identification of novel therapeutic targets to stimulate β cell regeneration.
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