An RNA-binding protein, Qki5, regulates embryonic neural stem cells through pre-mRNA processing in cell adhesion signaling

Author:

Hayakawa-Yano Yoshika,Suyama Satoshi,Nogami Masahiro,Yugami Masato,Koya Ikuko,Furukawa Takako,Zhou Li,Abe Manabu,Sakimura Kenji,Takebayashi Hirohide,Nakanishi Atsushi,Okano Hideyuki,Yano Masato

Abstract

Cell type-specific transcriptomes are enabled by the action of multiple regulators, which are frequently expressed within restricted tissue regions. In the present study, we identify one such regulator, Quaking 5 (Qki5), as an RNA-binding protein (RNABP) that is expressed in early embryonic neural stem cells and subsequently down-regulated during neurogenesis. mRNA sequencing analysis in neural stem cell culture indicates that Qki proteins play supporting roles in the neural stem cell transcriptome and various forms of mRNA processing that may result from regionally restricted expression and subcellular localization. Also, our in utero electroporation gain-of-function study suggests that the nuclear-type Qki isoform Qki5 supports the neural stem cell state. We next performed in vivo transcriptome-wide protein–RNA interaction mapping to search for direct targets of Qki5 and elucidate how Qki5 regulates neural stem cell function. Combined with our transcriptome analysis, this mapping analysis yielded a bona fide map of Qki5–RNA interaction at single-nucleotide resolution, the identification of 892 Qki5 direct target genes, and an accurate Qki5-dependent alternative splicing rule in the developing brain. Last, our target gene list provides the first compelling evidence that Qki5 is associated with specific biological events; namely, cell–cell adhesion. This prediction was confirmed by histological analysis of mice in which Qki proteins were genetically ablated, which revealed disruption of the apical surface of the lateral wall in the developing brain. These data collectively indicate that Qki5 regulates communication between neural stem cells by mediating numerous RNA processing events and suggest new links between splicing regulation and neural stem cell states.

Funder

Global X Silver Miners ETF

Research Fund

Takeda Pharmaceutical Company, Ltd.

Grant-in-Aid for Scientific Research on Innovative Areas

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

Grants-in-Aid for Scientific Research

Japan Society for the Promotion of Science

Takeda Science Foundation for Medical Science Research

Keio Gijuku Academic Development Funds

Mochida Memorial Foundation for Medical and Pharmaceutical Research

Basic Science Research Projects

Sumitomo Foundation

GSK Japan Research

Kanae Foundation

General Insurance Association of Japan

Initiative for the Implementation of the Diversity Research Environment

Niigata University

Grant-in-Aid for JSPS Research Fellow RPD

Grant-in-Aid for JSPS Research Fellow DC1

Publisher

Cold Spring Harbor Laboratory

Subject

Developmental Biology,Genetics

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