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Tutak, K.

Publications and source records attributed to Tutak, K..

3 recordsLinked to original sources

The RNA helicase DDX53 (CAGE) contributes to RNA metabolism in a human germ cell model

DDX53 (DEAD-box helicase 53, known also as CAGE) is an intronless gene on the X chromosome, which expression shows strong testis specificity. It belongs to the group of cancer-testis (CT) antigens, with most studies to date focusing on its role in cancer, but the precise biological function of DDX53 remains unclear. Previous reports identifying rare DDX53 variants in infertile men provided the rationale for investigating the role of DDX53 in the context of human spermatogenesis. By using the human seminoma cell line (TCam-2) as an in vitro male germline model, we aimed to investigate the function and molecular targets of DDX53 protein. Our eCLIP and RNA-seq data show that DDX53 protein directly interacts with numerous RNA molecules, drives transcriptome changes in human cells, and is involved in alternative splicing of RNA. Moreover, we identified potential DDX53 protein interactors using Co-IP-MS approach. Subcellular localization analysis by confocal microscopy indicated a predominantly cytoplasmic distribution of DDX53, with partial nuclear presence in TCam-2 cells. We also identified DDX53-positive structures that may correspond to germ granule-like assemblies, although their precise nature remains to be determined. Additionally, we confirmed DDX53 presence in human testis using a specific, commercially available anti-DDX53 antibody. Our data indicate that DDX53 protein acts as a regulator of RNA metabolism in human cells. Collectively, we show that DDX53 participates in transcriptome regulation (including splicing) in male germ cells and exhibits transcriptomewide RNA interactions, but its wider biological role remains to be clarified.

molecular biology↗

Multi-omic screening identifies RBMXL3 as a primate-specific RNA-binding protein and candidate regulator of RNA metabolism in human spermatogenesis

BackgroundRBMXL3 is a primate-specific gene localized on the X chromosome, which expression is detectable mainly in the male gonad. So far, very little is known about the RBMXL3 protein function and its molecular interactions. However, recent reports mention the RBMXL3 gene in the context of human spermatogenesis, cancer, and a breathing disorder that affects newborns. In this study, we investigate the RBMXL3s molecular network on a genome-wide scale using the human seminoma cell line (TCam-2) as a male germline in vitro model. MethodsBy using transcriptomic (RNA sequencing (RNA-seq) and enhanced crosslinking and immunoprecipitation (eCLIP)) and proteomic (Co-immunoprecipitation coupled with Mass Spectrometry, (Co-IP-MS)) approaches we show RBMXL3 importance in RNA metabolism. Additionally, Western Blot, qRT-PCR, immunostaining, and confocal imaging were used in order to investigate the function of RBMXL3. Finally, we used a plasmid-based L1 retrotransposition assay to demonstrate the suppressive effect of RBMXL3 on human Long Interspersed Nuclear Element-1 (LINE-1, L1) retrotransposition. ResultsOur RNA-seq data show that RBMXL3 expression drives gene expression changes and influence alternative splicing in human cells. Moreover, by performing eCLIP we provide a proof that RBMXL3 binds to a wide range of RNA transcripts. Additionally, we confirmed the nuclear localization of RBMXL3 in TCam-2 cells and its presence in spermatogonia and spermatocytes within the human testis. Finally, we report for the first time that RBMXL3 restricts human LINE-1 retrotransposition. ConclusionsOur findings for the first time identify primate-specific RBMXL3 protein as a new upstream regulator of RNA metabolism, characterized by broad RNA-binding activity in human TCam-2 cells. Finally, we show that RBMXL3 expression heavily reduces LINE-1 retrotransposition in human cells, underlying RBMXL3 importance in maintaining genome integrity. Our data suggest that RBMXL3 may contribute to the regulation of transcriptome dynamics in male germ cells, while its broader functional implications remain to be determined. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=56 SRC="FIGDIR/small/677621v3_ufig1.gif" ALT="Figure 1"> View larger version (21K): org.highwire.dtl.DTLVardef@8bf116org.highwire.dtl.DTLVardef@180fe82org.highwire.dtl.DTLVardef@1c52960org.highwire.dtl.DTLVardef@11f7519_HPS_FORMAT_FIGEXP M_FIG C_FIG Created with BioRender.com

cell biology↗

Ribosomal composition affects the noncanonical translation and toxicity of polyglycine-containing proteins in fragile X-associated conditions

Expansion of CGG repeats (CGGexp) in the 5 untranslated region (5UTR) of the FMR1 gene underlies the fragile X premutation-associated conditions including tremor/ataxia syndrome, a late-onset neurodegenerative disease and fragile X-associated primary ovarian insufficiency. One common pathomechanism of these conditions is the repeat-associated non-AUG-initiated (RAN) translation of CGG repeats of mutant FMR1 mRNA, resulting in production of FMRpolyG, a toxic protein containing long polyglycine tract. To identify novel modifiers of RAN translation we used an RNA-tagging system and mass spectrometry-based screening. It revealed proteins enriched on CGGexp-containing FMR1 RNA in cellulo, including a ribosomal protein RPS26, a component of the 40S subunit. We demonstrated that depletion of RPS26 and its chaperone TSR2, modulates FMRpolyG production and its toxicity. We also found that the RPS26 insufficiency impacted translation of limited number of proteins, and 5UTRs of mRNAs encoding these proteins were short and guanosine and cytosine-rich. Moreover, the silencing of another component of the 40S subunit, the ribosomal protein RPS25, also induced repression of FMRpolyG biosynthesis. Results of this study suggest that the two 40S ribosomal proteins and chaperone TSR2 play an important role in noncanonical CGGexp-related RAN translation.

molecular biology↗