A reciprocal translocation involving Aspergillus nidulans snxAHrb1/Gbp2 and gyfA uncovers a new regulator of the G2–M transition and reveals a role in transcriptional repression for the setBSet2 histone H3-lysine-36 methyltransferase

Author:

James Steven W1ORCID,Palmer Jonathan2ORCID,Keller Nancy P3ORCID,Brown Morgan L4ORCID,Dunworth Matthew R5ORCID,Francisco Sarah G6ORCID,Watson Katherine G7,Titchen Breanna8ORCID,Achimovich Alecia9,Mahoney Andrew10ORCID,Artemiou Joseph P11,Buettner Kyra G12,Class Madelyn13,Sydenstricker Andrew L14,Anglin Sarah Lea15ORCID

Affiliation:

1. Department of Biology, Gettysburg College , Gettysburg, PA 17325, USA

2. Genencor Technology Center Data Analytics, , IFF, Palo Alto, CA, 94306, USA

3. Department of Medical Microbiology and Immunology, University of Wisconsin—Madison , Madison, WI 53726, USA

4. University of Pennsylvania Department of Cell and Developmental Biology, , Philadelphia, PA 19104, USA

5. Department of Cell Biology, Johns Hopkins School of Medicine , Baltimore, MD 21218, USA

6. Department of Otolaryngology, Boston Children’s Hospital , Boston, MA 02115, USA

7. Noorda College of Osteopathic Medicine School of Medicine, , Provo, UT 84606, USA

8. Harvard University Department of Biological and Biomedical Sciences, , Cambridge, MA 02138, USA

9. Department of Chemistry, Gettysburg College , Gettysburg, PA 17325, USA

10. Department of Chemistry, Emory University , Atlanta, GA 30322, USA

11. Columbia University School of Nursing, , New York, NY 10032, USA

12. Thomas Jefferson University School of Medicine, , Philadelphia, PA 19144, USA

13. Temple University School of Medicine, , Philadelphia, PA 19140, USA

14. US Forest Service NYC Urban Field Station, , Bayside, NY 11359, USA

15. Department of Biology, Millsaps College , Jackson, MS 39210, USA

Abstract

Abstract Aspergillus nidulans snxA, an ortholog of Saccharomyces cerevisiae Hrb1/Gbp2 messenger RNA shuttle proteins, is—in contrast to budding yeast—involved in cell cycle regulation, in which snxA1 and snxA2 mutations as well as a snxA deletion specifically suppress the heat sensitivity of mutations in regulators of the CDK1 mitotic induction pathway. snxA mutations are strongly cold sensitive, and at permissive temperature snxA mRNA and protein expression are strongly repressed. Initial attempts to identify the causative snxA mutations revealed no defects in the SNXA protein. Here, we show that snxA1/A2 mutations resulted from an identical chromosome I–II reciprocal translocation with breakpoints in the snxA first intron and the fourth exon of a GYF-domain gene, gyfA. Surprisingly, a gyfA deletion and a reconstructed gyfA translocation allele suppressed the heat sensitivity of CDK1 pathway mutants in a snxA+ background, demonstrating that 2 unrelated genes, snxA and gyfA, act through the CDK1–CyclinB axis to restrain the G2–M transition, and for the first time identifying a role in G2–M regulation for a GYF-domain protein. To better understand snxA1/A2-reduced expression, we generated suppressors of snxA cold sensitivity in 2 genes: (1) loss of the abundant nucleolar protein Nsr1/nucleolin bypassed the requirement for snxA and (2) loss of the Set2 histone H3 lysine36 (H3K36) methyltransferase or a nonmethylatable histone H3K36L mutant rescued hypomorphic snxA mutants by restoring full transcriptional proficiency, indicating that methylation of H3K36 acts normally to repress snxA transcription. These observations are in line with known Set2 functions in preventing excessive and cryptic transcription of active genes.

Funder

National Institutes of Health

Publisher

Oxford University Press (OUP)

Subject

Genetics

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