SERBP1 interacts with PARP1 and is present in PARylation-dependent protein complexes regulating splicing, cell division, and ribosome biogenesis

Author:

Breunig Kira1,Lei Xiufen1,Montalbano Mauro23,Guardia Gabriela D. A.4,Ostadrahimi Shiva15,Alers Victoria156,Kosti Adam15,Chiou Jennifer7,Klein Nicole1,Vinarov Corina1,Wang Lily1,Li Mujia1,Song Weidan8,Kraus W. Lee8ORCID,Libich David S.16ORCID,Tiziani Stefano7910,Weintraub Susan T.6,Galante Pedro A. F.4,Penalva Luiz O. F.15

Affiliation:

1. Children’s Cancer Research Institute, UT Health San Antonio

2. Mitchell Center for Neurodegenerative Diseases, University of Texas Medical Branch

3. Department of Neurology, University of Texas Medical Branch

4. Centro de Oncologia Molecular, Hospital Sírio-Libanês

5. Department of Cell Systems and Anatomy, UT Health San Antonio

6. Department of Biochemistry and Structural Biology, UT Health San Antonio

7. Department of Nutritional Sciences, College of Natural Sciences, University of Texas at Austin

8. Laboratory of Signaling and Gene Regulation, Cecil H. and Ida Green Center for Reproductive Biology Sciences, The University of Texas Southwestern Medical Center

9. Department of Pediatrics, Dell Medical School, University of Texas at Austin

10. Department of Oncology, Dell Medical School, University of Texas at Austin

Abstract

RNA binding proteins (RBPs) containing intrinsically disordered regions (IDRs) are present in diverse molecular complexes where they function as dynamic regulators. Their characteristics promote liquid-liquid phase separation (LLPS) and the formation of membraneless organelles such as stress granules and nucleoli. IDR-RBPs are particularly relevant in the nervous system and their dysfunction is associated with neurodegenerative diseases and brain tumor development. SERBP1 is a unique member of this group, being mostly disordered and lacking canonical RNA-binding domains. Using a proteomics approach followed by functional analysis, we defined SERBP1’s interactome. We uncovered novel SERBP1 roles in splicing, cell division, and ribosomal biogenesis and showed its participation in pathological stress granules and Tau aggregates in Alzheimer’s disease brains. SERBP1 preferentially interacts with other G-quadruplex (G4) binders, implicated in different stages of gene expression, suggesting that G4 binding is a critical component of SERBP1 function in different settings. Similarly, we identified important associations between SERBP1 and PARP1/polyADP-ribosylation (PARylation). SERBP1 interacts with PARP1 and its associated factors and influences PARylation. Moreover, protein complexes in which SERBP1 participates contain mostly PARylated proteins and PAR binders. Based on these results, we propose a feedback regulatory model in which SERBP1 influences PARP1 function and PARylation, while PARylation modulates SERBP1 functions and participation in regulatory complexes.

Publisher

eLife Sciences Publications, Ltd

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