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  • Redox Signaling via Lipid Peroxidation Regulates Retinal Progenitor Cell Differentiation.

Redox Signaling via Lipid Peroxidation Regulates Retinal Progenitor Cell Differentiation.

Developmental cell (2019-06-11)
Shahad Albadri, Federica Naso, Marion Thauvin, Carole Gauron, Carola Parolin, Karine Duroure, Juliette Vougny, Jessica Fiori, Carla Boga, Sophie Vriz, Natalia Calonghi, Filippo Del Bene
ABSTRACT

Reactive oxygen species (ROS) and downstream products of lipid oxidation are emerging as important secondary messengers in tissue homeostasis. However, their regulation and mechanism of action remain poorly studied in vivo during normal development. Here, we reveal that the fine regulation of hydrogen peroxide (H2O2) levels by its scavenger Catalase to mediate the switch from proliferation to differentiation in retinal progenitor cells (RPCs) is crucial. We identify 9-hydroxystearic acid (9-HSA), an endogenous downstream lipid peroxidation product, as a mediator of this effect in the zebrafish retina. We show that the 9-HSA proliferative effect is due to the activation of Notch and Wnt pathways through the inhibition of the histone deacetylase 1. We show that the local and temporal manipulation of H2O2 levels in RPCs is sufficient to trigger their premature differentiation. We finally propose a mechanism that links H2O2 homeostasis and neuronal differentiation via the modulation of lipid peroxidation.

MATERIALS
Product Number
Brand
Product Description

Sigma-Aldrich
Monoclonal Anti-Proliferating Cell Nuclear Antigen antibody produced in mouse, clone PC 10, ascites fluid
Sigma-Aldrich
Anti-hyperacetylated Histone H4 (Penta) Antibody, serum, Upstate®
Sigma-Aldrich
Anti-Glutamine Synthetase Antibody, clone GS-6, clone GS-6, Chemicon®, from mouse
Sigma-Aldrich
Anti-Parvalbumin Antibody, ascites fluid, clone PARV-19, Chemicon®
Sigma-Aldrich
Anti-phospho-Histone H3 (Ser10) Antibody, Mitosis Marker, Upstate®, from rabbit