Rb-Mediated Neuronal Differentiation through Cell-Cycle–Independent Regulation of E2f3a
Open Access
- 3 July 2007
- journal article
- research article
- Published by Public Library of Science (PLoS) in PLoS Biology
- Vol. 5 (7) , e179
- https://doi.org/10.1371/journal.pbio.0050179
Abstract
It has long been known that loss of the retinoblastoma protein (Rb) perturbs neural differentiation, but the underlying mechanism has never been solved. Rb absence impairs cell cycle exit and triggers death of some neurons, so differentiation defects may well be indirect. Indeed, we show that abnormalities in both differentiation and light-evoked electrophysiological responses in Rb-deficient retinal cells are rescued when ectopic division and apoptosis are blocked specifically by deleting E2f transcription factor (E2f) 1. However, comprehensive cell-type analysis of the rescued double-null retina exposed cell-cycle–independent differentiation defects specifically in starburst amacrine cells (SACs), cholinergic interneurons critical in direction selectivity and developmentally important rhythmic bursts. Typically, Rb is thought to block division by repressing E2fs, but to promote differentiation by potentiating tissue-specific factors. Remarkably, however, Rb promotes SAC differentiation by inhibiting E2f3 activity. Two E2f3 isoforms exist, and we find both in the developing retina, although intriguingly they show distinct subcellular distribution. E2f3b is thought to mediate Rb function in quiescent cells. However, in what is to our knowledge the first work to dissect E2f isoform function in vivo we show that Rb promotes SAC differentiation through E2f3a. These data reveal a mechanism through which Rb regulates neural differentiation directly, and, unexpectedly, it involves inhibition of E2f3a, not potentiation of tissue-specific factors. The retinoblastoma protein (Rb), an important tumor suppressor, blocks division and death by inhibiting the E2f transcription factor family. In contrast, Rb is thought to promote differentiation by potentiating tissue-specific transcription factors, although differentiation defects in Rb null cells could be an indirect consequence of E2f-driven division and death. Here, we resolve different mechanisms by which Rb controls division, death, and differentiation in the retina. Removing E2f1 rescues aberrant division of differentiating Rb-deficient retinal neurons, as well as death in cells prone to apoptosis, and restores both normal differentiation and function of major cell types, such as photoreceptors. However, Rb-deficient starburst amacrine neurons differentiate abnormally even when E2f1 is removed, providing an unequivocal example of a direct role for Rb in neuronal differentiation. Rather than potentiating a cell-specific factor, Rb promotes starburst cell differentiation by inhibiting another E2f, E2f3a. This cell-cycle–independent activity broadens the importance of the Rb–E2f pathway, and suggests we should reassess its role in the differentiation of other cell types.Keywords
This publication has 69 references indexed in Scilit:
- Unique Requirement for Rb/E2F3 in Neuronal Migration: Evidence for Cell Cycle-Independent FunctionsMolecular and Cellular Biology, 2007
- Hedgehog-regulated localization of Vax2 controls eye developmentGenes & Development, 2006
- p27kip1 independently promotes neuronal differentiation and migration in the cerebral cortexGenes & Development, 2006
- Native E2F/RBF Complexes Contain Myb-Interacting Proteins and Repress Transcription of Developmentally Controlled E2F Target GenesCell, 2004
- Genetic analysis of the homeodomain transcription factor Chx10 in the retina using a novel multifunctional BAC transgenic mouse reporterDevelopmental Biology, 2004
- Conditional Mutation of Rb Causes Cell Cycle Defects without Apoptosis in the Central Nervous SystemMolecular and Cellular Biology, 2003
- The proliferative and apoptotic activities of E2F1 in the mouse retinaOncogene, 2001
- Dual roles of the retinoblastoma protein in cell cycle regulation and neuron differentiation.Genes & Development, 1994
- Mice deficient for Rb are nonviable and show defects in neurogenesis and haematopoiesisNature, 1992
- Effects of an Rb mutation in the mouseNature, 1992