Author
Listed:
- Nozomu Takata
(Northwestern University
Northwestern University)
- Jason M. Miska
(Northwestern University Feinberg School of Medicine
Northwestern University)
- Marc A. Morgan
(Northwestern University Feinberg School of Medicine
St. Jude Children’s Research Hospital)
- Priyam Patel
(Northwestern University)
- Leah K. Billingham
(Northwestern University Feinberg School of Medicine)
- Neha Joshi
(Northwestern University)
- Matthew J. Schipma
(Northwestern University)
- Zachary J. Dumar
(Northwestern University Feinberg School of Medicine)
- Nikita R. Joshi
(Northwestern University, Feinberg School of Medicine)
- Alexander V. Misharin
(Northwestern University, Feinberg School of Medicine)
- Ryan B. Embry
(Northwestern University)
- Luciano Fiore
(Northwestern University
National Atomic Energy Commission (CNEA))
- Peng Gao
(Northwestern University Feinberg School of Medicine)
- Lauren P. Diebold
(Northwestern University, Feinberg School of Medicine)
- Gregory S. McElroy
(Northwestern University, Feinberg School of Medicine
Duke University School of Medicine)
- Ali Shilatifard
(Northwestern University Feinberg School of Medicine)
- Navdeep S. Chandel
(Northwestern University, Feinberg School of Medicine
Northwestern University Feinberg School of Medicine)
- Guillermo Oliver
(Northwestern University)
Abstract
Mammalian retinal metabolism favors aerobic glycolysis. However, the role of glycolytic metabolism in retinal morphogenesis remains unknown. We report that aerobic glycolysis is necessary for the early stages of retinal development. Taking advantage of an unbiased approach that combines the use of eye organoids and single-cell RNA sequencing, we identify specific glucose transporters and glycolytic genes in retinal progenitors. Next, we determine that the optic vesicle territory of mouse embryos displays elevated levels of glycolytic activity. At the functional level, we show that removal of Glucose transporter 1 and Lactate dehydrogenase A gene activity from developing retinal progenitors arrests eye morphogenesis. Surprisingly, we uncover that lactate-mediated upregulation of key eye-field transcription factors is controlled by the epigenetic modification of histone H3 acetylation through histone deacetylase activity. Our results identify an unexpected bioenergetic independent role of lactate as a signaling molecule necessary for mammalian eye morphogenesis.
Suggested Citation
Nozomu Takata & Jason M. Miska & Marc A. Morgan & Priyam Patel & Leah K. Billingham & Neha Joshi & Matthew J. Schipma & Zachary J. Dumar & Nikita R. Joshi & Alexander V. Misharin & Ryan B. Embry & Luc, 2023.
"Lactate-dependent transcriptional regulation controls mammalian eye morphogenesis,"
Nature Communications, Nature, vol. 14(1), pages 1-17, December.
Handle:
RePEc:nat:natcom:v:14:y:2023:i:1:d:10.1038_s41467-023-39672-2
DOI: 10.1038/s41467-023-39672-2
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