FTO Knockout Causes Chromosome Instability and G2/M Arrest in Mouse GC-1 Cells

N6-methyladenosine (m6A) is the most abundant modification on eukaryotic mRNA. m6A plays important roles in the regulation of post-transcriptional RNA splicing, translation, and degradation. Increasing studies have uncovered the significance of m6A in various biological processes such as stem cell f...

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Main Authors: Tao Huang, Qiang Gao, Tongying Feng, Yi Zheng, Jiayin Guo, Wenxian Zeng
Format: Article
Language:English
Published: Frontiers Media S.A. 2019-01-01
Series:Frontiers in Genetics
Subjects:
FTO
Online Access:https://www.frontiersin.org/article/10.3389/fgene.2018.00732/full
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spelling doaj-42e3228382714501a181599c58013a622020-11-24T23:13:30ZengFrontiers Media S.A.Frontiers in Genetics1664-80212019-01-01910.3389/fgene.2018.00732422288FTO Knockout Causes Chromosome Instability and G2/M Arrest in Mouse GC-1 CellsTao HuangQiang GaoTongying FengYi ZhengJiayin GuoWenxian ZengN6-methyladenosine (m6A) is the most abundant modification on eukaryotic mRNA. m6A plays important roles in the regulation of post-transcriptional RNA splicing, translation, and degradation. Increasing studies have uncovered the significance of m6A in various biological processes such as stem cell fate determination, carcinogenesis, adipogenesis, stress response, etc, which put forwards a novel conception called epitranscriptome. However, functions of the fat mass and obesity-associated protein (FTO), the first characterized m6A demethylase, in spermatogenesis remains obscure. Here we reported that depletion of FTO by CRISPR/Cas9 induces chromosome instability and G2/M arrest in mouse spermatogonia, which was partially rescued by expression of wild type FTO but not demethylase inactivated FTO. FTO depletion significantly decreased the expression of mitotic checkpoint complex and G2/M regulators. We further demonstrated that the m6A modification on Mad1, Mad2, Bub1b, Cdk1, and Ccnb2 were directly targeted by FTO. Therefore, FTO regulates cell cycle and mitosis checkpoint in spermatogonia because of its m6A demethylase activity. The findings give novel insights into the role of RNA methylation in spermatogenesis.https://www.frontiersin.org/article/10.3389/fgene.2018.00732/fullN6-methyladenosineFTOspermatogoniacell cyclechromosome instabilitymitotic checkpoint
collection DOAJ
language English
format Article
sources DOAJ
author Tao Huang
Qiang Gao
Tongying Feng
Yi Zheng
Jiayin Guo
Wenxian Zeng
spellingShingle Tao Huang
Qiang Gao
Tongying Feng
Yi Zheng
Jiayin Guo
Wenxian Zeng
FTO Knockout Causes Chromosome Instability and G2/M Arrest in Mouse GC-1 Cells
Frontiers in Genetics
N6-methyladenosine
FTO
spermatogonia
cell cycle
chromosome instability
mitotic checkpoint
author_facet Tao Huang
Qiang Gao
Tongying Feng
Yi Zheng
Jiayin Guo
Wenxian Zeng
author_sort Tao Huang
title FTO Knockout Causes Chromosome Instability and G2/M Arrest in Mouse GC-1 Cells
title_short FTO Knockout Causes Chromosome Instability and G2/M Arrest in Mouse GC-1 Cells
title_full FTO Knockout Causes Chromosome Instability and G2/M Arrest in Mouse GC-1 Cells
title_fullStr FTO Knockout Causes Chromosome Instability and G2/M Arrest in Mouse GC-1 Cells
title_full_unstemmed FTO Knockout Causes Chromosome Instability and G2/M Arrest in Mouse GC-1 Cells
title_sort fto knockout causes chromosome instability and g2/m arrest in mouse gc-1 cells
publisher Frontiers Media S.A.
series Frontiers in Genetics
issn 1664-8021
publishDate 2019-01-01
description N6-methyladenosine (m6A) is the most abundant modification on eukaryotic mRNA. m6A plays important roles in the regulation of post-transcriptional RNA splicing, translation, and degradation. Increasing studies have uncovered the significance of m6A in various biological processes such as stem cell fate determination, carcinogenesis, adipogenesis, stress response, etc, which put forwards a novel conception called epitranscriptome. However, functions of the fat mass and obesity-associated protein (FTO), the first characterized m6A demethylase, in spermatogenesis remains obscure. Here we reported that depletion of FTO by CRISPR/Cas9 induces chromosome instability and G2/M arrest in mouse spermatogonia, which was partially rescued by expression of wild type FTO but not demethylase inactivated FTO. FTO depletion significantly decreased the expression of mitotic checkpoint complex and G2/M regulators. We further demonstrated that the m6A modification on Mad1, Mad2, Bub1b, Cdk1, and Ccnb2 were directly targeted by FTO. Therefore, FTO regulates cell cycle and mitosis checkpoint in spermatogonia because of its m6A demethylase activity. The findings give novel insights into the role of RNA methylation in spermatogenesis.
topic N6-methyladenosine
FTO
spermatogonia
cell cycle
chromosome instability
mitotic checkpoint
url https://www.frontiersin.org/article/10.3389/fgene.2018.00732/full
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AT qianggao ftoknockoutcauseschromosomeinstabilityandg2marrestinmousegc1cells
AT tongyingfeng ftoknockoutcauseschromosomeinstabilityandg2marrestinmousegc1cells
AT yizheng ftoknockoutcauseschromosomeinstabilityandg2marrestinmousegc1cells
AT jiayinguo ftoknockoutcauseschromosomeinstabilityandg2marrestinmousegc1cells
AT wenxianzeng ftoknockoutcauseschromosomeinstabilityandg2marrestinmousegc1cells
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