Prdm16 is critical for progression of the multipolar phase during neural differentiation of the developing neocortex

Author:

Inoue Mayuko1,Iwai Ryota1,Tabata Hidenori2,Konno Daijiro3,Komabayashi-Suzuki Mariko1,Watanabe Chisato1,Iwanari Hiroko4,Mochizuki Yasuhiro4,Hamakubo Takao4,Matsuzaki Fumio3,Nagata Koh-ichi2,Mizutani Ken-ichi15ORCID

Affiliation:

1. Laboratory of Neural Differentiation, Graduate School of Brain Science, Doshisha University, Kyoto, Japan 6190225

2. Department of Molecular Neurobiology, Institute for Developmental Research, Kasugai, Aichi, Japan 4800392

3. Laboratory for Cell Asymmetry, Center for Developmental Biology, RIKEN Kobe Institute, 2-2-3 Minatojima-minamimachi, Chuo-ku, Kobe, Hyogo 650-0047, Japan

4. Department of Quantitative Biology and Medicine, RCAST, The University of Tokyo, Tokyo, Japan 1538904

5. PRESTO “Development and Function of Neural Networks”, Japan Science and Technology Agency, Saitama, Japan 3320012

Abstract

The precise control of neuronal migration and morphological changes during differentiation is essential for neocortical development. We hypothesized that the transition of progenitors through progressive stages of differentiation involves dynamic changes in mitochondrial reactive oxygen species (mtROS) levels, depending on cell requirements. We found that progenitors had higher levels of mtROS, but that these levels were significantly decreased with differentiation. The Prdm16 gene was identified as a candidate modulator of mtROS using microarray analysis, and was specifically expressed by progenitors in the ventricular zone. However, Prdm16 expression declined during the transition into NeuroD1-positive multipolar cells. Subsequently, repression of Prdm16 expression by NeuroD1 on the periphery of ventricular zone was crucial for appropriate progression of the multipolar phase and was required for normal cellular development. Furthermore, time-lapse imaging experiments revealed abnormal migration and morphological changes in Prdm16-overexpressing and -knockdown cells. Reporter assays and mtROS determinations demonstrated that PGC-1α is a major downstream effector of Prdm16 and NeuroD1, and is required for regulation of the multipolar phase and characteristic modes of migration. Taken together, these data suggest that Prdm16 plays an important role in dynamic cellular redox changes in developing neocortex during neural differentiation.

Funder

Japan Science and Technology Agency

Ministry of Education, Culture, Sports, Science, and Technology

Takeda Science Foundation

Publisher

The Company of Biologists

Subject

Developmental Biology,Molecular Biology

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