INPP5E Preserves Genomic Stability through Regulation of Mitosis

Author:

Sierra Potchanant Elizabeth A.1,Cerabona Donna12,Sater Zahi Abdul1,He Ying1,Sun Zejin1,Gehlhausen Jeff12,Nalepa Grzegorz1234ORCID

Affiliation:

1. Department of Pediatrics, Herman B Wells Center for Pediatric Research, Indiana University School of Medicine, Indianapolis, Indiana, USA

2. Department of Biochemistry and Molecular Biology, Indiana University School of Medicine, Indianapolis, Indiana, USA

3. Department of Medical and Molecular Genetics, Indiana University School of Medicine, Indianapolis, Indiana, USA

4. Division of Pediatric Hematology-Oncology, Riley Hospital for Children, Indianapolis, Indiana, USA

Abstract

ABSTRACT The partially understood phosphoinositide signaling cascade regulates multiple aspects of cellular metabolism. Previous studies revealed that INPP5E, the inositol polyphosphate-5-phosphatase that is mutated in the developmental disorders Joubert and MORM syndromes, is essential for the function of the primary cilium and maintenance of phosphoinositide balance in nondividing cells. Here, we report that INPP5E further contributes to cellular homeostasis by regulating cell division. We found that silencing or genetic knockout of INPP5E in human and murine cells impairs the spindle assembly checkpoint, centrosome and spindle function, and maintenance of chromosomal integrity. Consistent with a cell cycle regulatory role, we found that INPP5E expression is cell cycle dependent, peaking at mitotic entry. INPP5E localizes to centrosomes, chromosomes, and kinetochores in early mitosis and shuttles to the midzone spindle at mitotic exit. Our findings identify the previously unknown, essential role of INPP5E in mitosis and prevention of aneuploidy, providing a new perspective on the function of this phosphoinositide phosphatase in health and development.

Funder

Jeff Gordon Foundation

Riley Children's Foundation

Heroes Foundation

NIH NHLBI R54

St. Baldrick's Foundation

HHS | National Institutes of Health

Publisher

American Society for Microbiology

Subject

Cell Biology,Molecular Biology

Reference64 articles.

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