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1.
J Biol Chem ; 299(9): 105095, 2023 09.
Article En | MEDLINE | ID: mdl-37507022

Many transcripts are targeted by nonsense-mediated decay (NMD), leading to their degradation and the inhibition of their translation. We found that the protein SUZ domain-containing protein 1 (SZRD1) interacts with the key NMD factor up-frameshift 1. When recruited to NMD-sensitive reporter gene transcripts, SZRD1 increased protein production, at least in part, by relieving translational inhibition. The conserved SUZ domain in SZRD1 was required for this effect. The SUZ domain is present in only three other human proteins besides SZRD1: R3H domain-containing protein 1 and 2 (R3HDM1, R3HDM2) and cAMP-regulated phosphoprotein 21 (ARPP21). We found that ARPP21, similarly to SZRD1, can increase protein production from NMD-sensitive reporter transcripts in an SUZ domain-dependent manner. This indicated that the SUZ domain-containing proteins could prevent translational inhibition of transcripts targeted by NMD. Consistent with the idea that SZRD1 mainly prevents translational inhibition, we did not observe a systematic decrease in the abundance of NMD targets when we knocked down SZRD1. Surprisingly, knockdown of SZRD1 in two different cell lines led to reduced levels of the NMD component UPF3B, which was accompanied by increased levels in a subset of NMD targets. This suggests that SZRD1 is required to maintain normal UPF3B levels and indicates that the effect of SZRD1 on NMD targets is not limited to a relief from translational inhibition. Overall, our study reveals that human SUZ domain-containing proteins play a complex role in regulating protein output from transcripts targeted by NMD.


Nonsense Mediated mRNA Decay , RNA-Binding Proteins , Humans , Cell Line , RNA-Binding Proteins/genetics , RNA-Binding Proteins/metabolism , Protein Domains , HeLa Cells , HEK293 Cells
2.
Life Sci Alliance ; 2(5)2019 10.
Article En | MEDLINE | ID: mdl-31570513

Eukaryotic superfamily (SF) 1 helicases have been implicated in various aspects of RNA metabolism, including transcription, processing, translation, and degradation. Nevertheless, until now, most human SF1 helicases remain poorly understood. Here, we have functionally and biochemically characterized the role of a putative SF1 helicase termed "helicase with zinc-finger," or HELZ. We discovered that HELZ associates with various mRNA decay factors, including components of the carbon catabolite repressor 4-negative on TATA box (CCR4-NOT) deadenylase complex in human and Drosophila melanogaster cells. The interaction between HELZ and the CCR4-NOT complex is direct and mediated by extended low-complexity regions in the C-terminal part of the protein. We further reveal that HELZ requires the deadenylase complex to mediate translational repression and decapping-dependent mRNA decay. Finally, transcriptome-wide analysis of Helz-null cells suggests that HELZ has a role in the regulation of the expression of genes associated with the development of the nervous system.


RNA Helicases/genetics , RNA Helicases/metabolism , Receptors, CCR4/chemistry , Receptors, CCR4/metabolism , Animals , Cell Line , Drosophila melanogaster , Gene Expression Profiling , Gene Expression Regulation, Developmental , HEK293 Cells , Humans , Nervous System/growth & development , Nervous System/metabolism , Protein Binding , Protein Biosynthesis , RNA Stability , TATA Box
3.
CNS Neurosci Ther ; 24(5): 404-411, 2018 05.
Article En | MEDLINE | ID: mdl-29318784

BACKGROUND & AIMS: Spinocerebellar ataxia type 3 (SCA3), also known as Machado-Joseph disease (MJD), is an autosomal dominantly inherited neurodegenerative disorder and the most common form of SCA worldwide. It is caused by the expansion of a polyglutamine (polyQ) tract in the ataxin-3 protein. Nuclear localization of the affected protein is a key event in the pathology of SCA3 via affecting nuclear organization, transcriptional dysfunction, and seeding aggregations, finally causing neurodegeneration and cell death. So far, there is no effective therapy to prevent or slow the progression of SCA3. METHODS: In this study, we explored the effect of divalproex sodium as an HDACi in SCA3 cell models and explored how divalproex sodium interferes with pathogenetic processes causing SCA3. RESULTS: We found that divalproex sodium rescues the hypoacetylation levels of histone H3 and attenuates cellular cytotoxicity induced by expanded ataxin-3 partly via preventing nuclear transport of ataxin-3 (particularly heat shock-dependent). CONCLUSION: Our study provides novel insights into the mechanisms of action of divalproex sodium as a possible treatment for SCA3, beyond the known regulation of transcription.


Active Transport, Cell Nucleus/drug effects , Ataxin-3/metabolism , Neuroprotective Agents/pharmacology , Repressor Proteins/metabolism , Valproic Acid/pharmacology , Acetylation/drug effects , Animals , CHO Cells , Cell Survival/drug effects , Cell Survival/physiology , Cricetulus , HEK293 Cells , Heat-Shock Response/drug effects , Heat-Shock Response/physiology , Histones/metabolism , Humans , Protein Aggregates/drug effects
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