miR-31-mediated local translation at the mitotic spindle is important for early development

Author:

Remsburg Carolyn M.1ORCID,Konrad Kalin D.12ORCID,Testa Michael D.1,Stepicheva Nadezda13,Lee Kelvin45ORCID,Choe Leila H.45,Polson Shawn6ORCID,Bhavsar Jaysheel7,Huang Hongzhan7,Song Jia L.1ORCID

Affiliation:

1. University of Delaware 1 Department of Biological Sciences , , Newark, DE 19716 , USA

2. Columbia University 2 Department of Neurology , , New York, NY 10032 , USA

3. University of Pittsburgh 3 Department of Ophthalmology , , Pittsburgh, PA 15224 , USA

4. University of Delaware 4 Department of Chemical and Biomolecular Engineering , , Newark, DE 19716 , USA

5. National Institute for Innovation in Manufacturing Biopharmaceuticals 5 , Newark, DE 19716 , USA

6. University of Delaware 6 Department of Computer and Informational Sciences; Plant & Soil Sciences; Biological Sciences, CBCB Bioinformatics Core Facility; Bioinformatics, Healthcare Informatics, and Data Science Network of Delaware , , Newark, DE 19716 , USA

7. University of Delaware 7 Department of Computer and Informational Sciences , , DE 19716 , USA

Abstract

ABSTRACT miR-31 is a highly conserved microRNA that plays crucial roles in cell proliferation, migration and differentiation. We discovered that miR-31 and some of its validated targets are enriched on the mitotic spindle of the dividing sea urchin embryo and mammalian cells. Using the sea urchin embryo, we found that miR-31 inhibition led to developmental delay correlated with increased cytoskeletal and chromosomal defects. We identified miR-31 to directly suppress several actin remodeling transcripts, including β-actin, Gelsolin, Rab35 and Fascin. De novo translation of Fascin occurs at the mitotic spindle of sea urchin embryos and mammalian cells. Importantly, miR-31 inhibition leads to a significant a increase of newly translated Fascin at the spindle of dividing sea urchin embryos. Forced ectopic localization of Fascin transcripts to the cell membrane and translation led to significant developmental and chromosomal segregation defects, highlighting the importance of the regulation of local translation by miR-31 at the mitotic spindle to ensure proper cell division. Furthermore, miR-31-mediated post-transcriptional regulation at the mitotic spindle may be an evolutionarily conserved regulatory paradigm of mitosis.

Funder

National Science Foundation

National Institutes of Health

Delaware IDeA Network of Biomedical Research Excellence

Sigma Xi

Publisher

The Company of Biologists

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