Literature DB >> 30737258

Defining multistep cell fate decision pathways during pancreatic development at single-cell resolution.

Xin-Xin Yu1,2, Wei-Lin Qiu1,3, Liu Yang1,2, Yu Zhang1,2, Mao-Yang He1,3, Lin-Chen Li1,2, Cheng-Ran Xu4.   

Abstract

The generation of terminally differentiated cell lineages during organogenesis requires multiple, coordinated cell fate choice steps. However, this process has not been clearly delineated, especially in complex solid organs such as the pancreas. Here, we performed single-cell RNA-sequencing in pancreatic cells sorted from multiple genetically modified reporter mouse strains at embryonic stages E9.5-E17.5. We deciphered the developmental trajectories and regulatory strategies of the exocrine and endocrine pancreatic lineages as well as intermediate progenitor populations along the developmental pathways. Notably, we discovered previously undefined programs representing the earliest events in islet α- and β-cell lineage allocation as well as the developmental pathway of the "first wave" of α-cell generation. Furthermore, we demonstrated that repressing ERK pathway activity is essential for inducing both α- and β-lineage differentiation. This study provides key insights into the regulatory mechanisms underlying cell fate choice and stepwise cell fate commitment and can be used as a resource to guide the induction of functional islet lineage cells from stem cells in vitro.
© 2019 The Authors.

Entities:  

Keywords:  MAPK/ERK; cell fate choice; fate map; pancreatic lineage; single‐cell RNA‐seq

Mesh:

Year:  2019        PMID: 30737258      PMCID: PMC6463266          DOI: 10.15252/embj.2018100164

Source DB:  PubMed          Journal:  EMBO J        ISSN: 0261-4189            Impact factor:   11.598


  81 in total

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Authors:  P Jacquemin; S M Durviaux; J Jensen; C Godfraind; G Gradwohl; F Guillemot; O D Madsen; P Carmeliet; M Dewerchin; D Collen; G G Rousseau; F P Lemaigre
Journal:  Mol Cell Biol       Date:  2000-06       Impact factor: 4.272

Review 2.  The endocrine pancreas: insights into development, differentiation, and diabetes.

Authors:  Teresa L Mastracci; Lori Sussel
Journal:  Wiley Interdiscip Rev Dev Biol       Date:  2012-03-14       Impact factor: 5.814

3.  neurogenin3 is required for the development of the four endocrine cell lineages of the pancreas.

Authors:  G Gradwohl; A Dierich; M LeMeur; F Guillemot
Journal:  Proc Natl Acad Sci U S A       Date:  2000-02-15       Impact factor: 11.205

4.  Distinct requirements for beta-catenin in pancreatic epithelial growth and patterning.

Authors:  Brett K Baumgartner; Gabriela Cash; Hillary Hansen; Shawn Ostler; L Charles Murtaugh
Journal:  Dev Biol       Date:  2014-04-08       Impact factor: 3.582

Review 5.  Developmental biology of the pancreas: a comprehensive review.

Authors:  George K Gittes
Journal:  Dev Biol       Date:  2008-10-31       Impact factor: 3.582

6.  Direct evidence for the pancreatic lineage: NGN3+ cells are islet progenitors and are distinct from duct progenitors.

Authors:  Guoqiang Gu; Jolanta Dubauskaite; Douglas A Melton
Journal:  Development       Date:  2002-05       Impact factor: 6.868

7.  HTSeq--a Python framework to work with high-throughput sequencing data.

Authors:  Simon Anders; Paul Theodor Pyl; Wolfgang Huber
Journal:  Bioinformatics       Date:  2014-09-25       Impact factor: 6.937

8.  The Spatiotemporal Pattern of Glis3 Expression Indicates a Regulatory Function in Bipotent and Endocrine Progenitors during Early Pancreatic Development and in Beta, PP and Ductal Cells.

Authors:  Hong Soon Kang; Yukimasa Takeda; Kilsoo Jeon; Anton M Jetten
Journal:  PLoS One       Date:  2016-06-07       Impact factor: 3.240

9.  Slingshot: cell lineage and pseudotime inference for single-cell transcriptomics.

Authors:  Kelly Street; Davide Risso; Russell B Fletcher; Diya Das; John Ngai; Nir Yosef; Elizabeth Purdom; Sandrine Dudoit
Journal:  BMC Genomics       Date:  2018-06-19       Impact factor: 3.969

10.  Endocrine lineage biases arise in temporally distinct endocrine progenitors during pancreatic morphogenesis.

Authors:  Marissa A Scavuzzo; Matthew C Hill; Jolanta Chmielowiec; Diane Yang; Jessica Teaw; Kuanwei Sheng; Yuelin Kong; Maria Bettini; Chenghang Zong; James F Martin; Malgorzata Borowiak
Journal:  Nat Commun       Date:  2018-08-22       Impact factor: 14.919

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  16 in total

1.  Pancreatic development: one cell at a (pseudo)time.

Authors:  Zhe Liu; Julie B Sneddon
Journal:  EMBO J       Date:  2019-03-26       Impact factor: 11.598

2.  Spatial and transcriptional heterogeneity of pancreatic beta cell neogenesis revealed by a time-resolved reporter system.

Authors:  Shugo Sasaki; Michelle Y Y Lee; Yuka Wakabayashi; Luka Suzuki; Helena Winata; Miwa Himuro; Taka-Aki Matsuoka; Iichiro Shimomura; Hirotaka Watada; Francis C Lynn; Takeshi Miyatsuka
Journal:  Diabetologia       Date:  2022-03-03       Impact factor: 10.122

3.  Modeling HNF1B-associated monogenic diabetes using human iPSCs reveals an early stage impairment of the pancreatic developmental program.

Authors:  Ranna El-Khairi; Evelyn Olszanowski; Daniele Muraro; Pedro Madrigal; Katarzyna Tilgner; Mariya Chhatriwala; Sapna Vyas; Crystal Y Chia; Ludovic Vallier; Santiago A Rodríguez-Seguí
Journal:  Stem Cell Reports       Date:  2021-08-26       Impact factor: 7.765

4.  Single-cell transcriptome and accessible chromatin dynamics during endocrine pancreas development.

Authors:  Eliza Duvall; Cecil M Benitez; Krissie Tellez; Martin Enge; Philip T Pauerstein; Lingyu Li; Songjoon Baek; Stephen R Quake; Jason P Smith; Nathan C Sheffield; Seung K Kim; H Efsun Arda
Journal:  Proc Natl Acad Sci U S A       Date:  2022-06-22       Impact factor: 12.779

5.  Cancer Cells Retrace a Stepwise Differentiation Program during Malignant Progression.

Authors:  Sadegh Saghafinia; Iacovos P Michael; Krisztian Homicsko; Annunziata Di Domenico; Stephan Wullschleger; Aurel Perren; Ilaria Marinoni; Giovanni Ciriello; Douglas Hanahan
Journal:  Cancer Discov       Date:  2021-04-28       Impact factor: 39.397

6.  SOX9+/PTF1A+ Cells Define the Tip Progenitor Cells of the Human Fetal Pancreas of the Second Trimester.

Authors:  Valentina Villani; Matthew E Thornton; Heather N Zook; Christiana J Crook; Brendan H Grubbs; Giuseppe Orlando; Roger De Filippo; Hsun Teresa Ku; Laura Perin
Journal:  Stem Cells Transl Med       Date:  2019-10-21       Impact factor: 6.940

Review 7.  Monogenic Diabetes Modeling: In Vitro Pancreatic Differentiation From Human Pluripotent Stem Cells Gains Momentum.

Authors:  Juan Ignacio Burgos; Ludovic Vallier; Santiago A Rodríguez-Seguí
Journal:  Front Endocrinol (Lausanne)       Date:  2021-07-06       Impact factor: 5.555

Review 8.  Stem Cells in the Exocrine Pancreas during Homeostasis, Injury, and Cancer.

Authors:  Sophie C Lodestijn; Sanne M van Neerven; Louis Vermeulen; Maarten F Bijlsma
Journal:  Cancers (Basel)       Date:  2021-06-30       Impact factor: 6.639

9.  Sequential progenitor states mark the generation of pancreatic endocrine lineages in mice and humans.

Authors:  Xin-Xin Yu; Wei-Lin Qiu; Liu Yang; Yan-Chun Wang; Mao-Yang He; Dan Wang; Yu Zhang; Lin-Chen Li; Jing Zhang; Yi Wang; Cheng-Ran Xu
Journal:  Cell Res       Date:  2021-03-10       Impact factor: 46.297

10.  Characterizing pancreatic β-cell heterogeneity in the streptozotocin model by single-cell transcriptomic analysis.

Authors:  Ye Feng; Wei-Lin Qiu; Xin-Xin Yu; Yu Zhang; Mao-Yang He; Lin-Chen Li; Li Yang; Weiyi Zhang; Michael Franti; Junqing Ye; Joerg D Hoeck; Cheng-Ran Xu
Journal:  Mol Metab       Date:  2020-04-02       Impact factor: 7.422

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