TY - JOUR
T1 - Comprehensive single cell mRNA profiling reveals a detailed roadmap for pancreatic endocrinogenesis
AU - Bastidas-Ponce, Aimée
AU - Tritschler, Sophie
AU - Dony, Leander
AU - Scheibner, Katharina
AU - Tarquis-Medina, Marta
AU - Salinno, Ciro
AU - Schirge, Silvia
AU - Burtscher, Ingo
AU - Böttcher, Anika
AU - Theis, Fabian J.
AU - Lickert, Heiko
AU - Bakhti, Mostafa
N1 - Publisher Copyright:
© 2019. Published by The Company of Biologists Ltd.
PY - 2019/6
Y1 - 2019/6
N2 - Deciphering mechanisms of endocrine cell induction, specification and lineage allocation in vivo will provide valuable insights into how the islets of Langerhans are generated. Currently, it is ill defined how endocrine progenitors segregate into different endocrine subtypes during development. Here, we generated a novel neurogenin 3 (Ngn3)-Venus fusion (NVF) reporter mouse line, that closely mirrors the transient endogenous Ngn3 protein expression. To define an in vivo roadmap of endocrinogenesis, we performed single cell RNA sequencing of 36,351 pancreatic epithelial and NVF+ cells during secondary transition. This allowed Ngn3low endocrine progenitors, Ngn3high endocrine precursors, Fev+ endocrine lineage and hormone+ endocrine subtypes to be distinguished and timeresolved, and molecular programs during the step-wise lineage restriction steps to be delineated. Strikingly, we identified 58 novel signature genes that show the same transient expression dynamics as Ngn3 in the 7260 profiled Ngn3-expressing cells. The differential expression of these genes in endocrine precursors associated with their cell-fate allocation towards distinct endocrine cell types. Thus, the generation of an accurately regulated NVF reporter allowed us to temporally resolve endocrine lineage development to provide a fine-grained single cell molecular profile of endocrinogenesis in vivo.
AB - Deciphering mechanisms of endocrine cell induction, specification and lineage allocation in vivo will provide valuable insights into how the islets of Langerhans are generated. Currently, it is ill defined how endocrine progenitors segregate into different endocrine subtypes during development. Here, we generated a novel neurogenin 3 (Ngn3)-Venus fusion (NVF) reporter mouse line, that closely mirrors the transient endogenous Ngn3 protein expression. To define an in vivo roadmap of endocrinogenesis, we performed single cell RNA sequencing of 36,351 pancreatic epithelial and NVF+ cells during secondary transition. This allowed Ngn3low endocrine progenitors, Ngn3high endocrine precursors, Fev+ endocrine lineage and hormone+ endocrine subtypes to be distinguished and timeresolved, and molecular programs during the step-wise lineage restriction steps to be delineated. Strikingly, we identified 58 novel signature genes that show the same transient expression dynamics as Ngn3 in the 7260 profiled Ngn3-expressing cells. The differential expression of these genes in endocrine precursors associated with their cell-fate allocation towards distinct endocrine cell types. Thus, the generation of an accurately regulated NVF reporter allowed us to temporally resolve endocrine lineage development to provide a fine-grained single cell molecular profile of endocrinogenesis in vivo.
KW - Endocrine cell allocation
KW - Endocrine progenitor-precursor
KW - Endocrinogenesis
KW - Mouse
KW - Neurog3
KW - Single cell RNA sequencing
UR - http://www.scopus.com/inward/record.url?scp=85068430052&partnerID=8YFLogxK
U2 - 10.1242/dev.173849
DO - 10.1242/dev.173849
M3 - Article
C2 - 31160421
AN - SCOPUS:85068430052
SN - 0950-1991
VL - 146
JO - Development (Cambridge)
JF - Development (Cambridge)
IS - 12
M1 - dev173849
ER -