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Raheja, M.

Publications and source records attributed to Raheja, M..

2 recordsLinked to original sources

A microprotein encoded by FERMT3 modulates endothelial cell protein catabolism and induces p53-mediated cell cycle arrest and senescence

BackgroundHuman endothelial cells express numerous microproteins (miPs) encoded by small open reading frames (smORFs) distributed throughout the genome, yet the biological functions of most remain unknown. This study set out to characterize a novel 69 amino acid miP encoded by a smORF located within the coding sequence of the FERM domain containing kindlin-3 transcript (miP-FERMT3). MethodsConfocal microscopy was used to determine the subcellular localization of miP-FERMT3 in endothelial cells and its interaction partners were determined by mass spectrometry and immunoblotting. RNA sequencing identified transcriptional alterations induced by miP-FERMT3 overexpression. Cell proliferation and cell cycle stages were assessed by live cell imaging, EdU incorporation and flow cytometry, while senescence was examined by senescence-associated {beta}-galactosidase staining, live cell imaging and RT-qPCR-based measurement of telomere length. ResultsIn endothelial cells miP-FERMT3 localized mainly to centriole subdistal appendages, where it interacted with proteins involved in ubiquitin- and proteasome-dependent protein catabolism, including PSMD9, CUL2 and TRIM8. Consistent with these interactions, cells expressing miP-FERMT3 exhibited increased global protein ubiquitination, enhanced centrosomal neddylation and elevated proteasomal activity. MiP-FERMT3 also promoted the nuclear accumulation of p53, which subsequently repressed FOXM1 expression, leading to the downregulation of genes required for cell-cycle progression and upregulation of genes involved in cell cycle inhibition, resulting in cell-cycle arrest. Cells expressing the miP also demonstrated multiple hallmarks of cellular senescence, including enlarged size, DNA damage, increased senescence-associated {beta}-galactosidase activity, telomere shortening and paracrine pro-inflammatory activation of naive endothelial cells. Analyses of independent murine and human transcriptomic and proteomic aging datasets further revealed that FERMT3 expression and protein abundance increase with age. ConclusionsThese findings identify miP-FERMT3 as a novel regulator of protein catabolism and p53-dependent cell cycle arrest and cellular senescence in endothelial cells. Given the aging-associated upregulation of FERMT3 in mouse and human endothelial cells, increased miP-FERMT3 expression may contribute to the onset of vascular senescence as a hallmark of aging.

cell biology↗

Microprotein miP-PSTPIP2 affects cytoskeleton dynamics to modulate endothelial cell endocytosis, barrier function and migration

BackgroundA large number of microproteins (miPs) encoded by small open reading frames (smORFs) are expressed in endothelial cells, yet their function remains largely unknown. In this study, we characterized a novel 46-amino-acid miP encoded by a smORF within the proline-serine-threonine phosphatase interacting protein 2 (PSTPIP2) transcript that was upregulated under inflammatory conditions and we refer to as miP-PSTPIP2. MethodsImmunoprecipitation coupled with mass spectrometry-based proteomics, immunoblotting, immunofluorescence and proximity ligation assays were used to identify and validate miP-PSTPIP2 interacting proteins in human endothelial cells. The impact of adenovirus-mediated overexpression of miP-PSTPIP2 on endocytosis, cytoskeleton dynamics and abundance of proteins involved in these processes was investigated by confocal microscopy and immunoblotting. Live cell imaging was used to assess endothelial cell migration and vascular permeability. ResultsmiP-PSTPIP2 physically associated with caveolar proteins, proteins involved in the regulation of cytoskeleton dynamics, intracellular transport, clathrin adaptor activity, as well as nuclear proteins. Human endothelial cells overexpressing miP-PSTPIP2 demonstrated enhanced endocytosis and transcytosis of transferrin as well as low-density lipoprotein. Mechanistically, miP-PSTPIP2 modulated Arp2/3-mediated actin nucleation and branching, which are required for dynamic cytoskeleton rearrangements. Moreover, altered cytoskeleton dynamics in miP-PSTPIP2-expressing endothelial cells resulted in impaired cell migration as well as increased permeability and monocyte trans-endothelial migration. ConclusionsmiP-PSTPIP2 is an inflammation-induced endothelial miP that regulates Arp2/3-dependent actin dynamics, thereby enhancing lipid uptake and leukocyte permeability. Its upregulation under inflammatory conditions suggests a contributory role in endothelial dysfunction and vascular inflammation.

cell biology↗