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Sikora, J.

Publications and source records attributed to Sikora, J..

4 recordsLinked to original sources

APOBEC3A deaminase catalyzes site-specific editing of transfer RNAs

APOBEC3A is a cytidine deaminase that plays a crucial role in innate immunity; however, it can also drive oncogenesis when dysregulated. While its DNA editing activity is well-studied, the impact of APOBEC3A on RNA has only recently gained attention. Previous studies revealed that APOBEC3A deaminates mRNA stem-loop structures, however, its activity on other RNA classes remains unexplored. Given its likely evolutionary origin from tRNA adenosine deaminases and the prevalence of stem-loop structures in tRNA, we investigated APOBEC3As activity on tRNAs. We found that in vitro APOBEC3A efficiently deaminates a large spectrum of tRNA isoacceptors, primarily at anticodon positions. To assess whether the editing sites identified in vitro can be detected in tumor tissues, we analyzed data from The Cancer Genome Atlas. We identified six editing sites present in numerous patient samples. Our results point to a possible impact of APOBEC3A on tRNA decoding capacity, with potential relevance to mistranslation and cancer development.

molecular biology↗

Age-associated inflammatory monocytes are increased in menopausal females and reversed by Hormone Replacement Therapy

Biological sex is a crucial, but poorly understood variable in age-related susceptibility to infections and chronic inflammation - inflammageing. Monocytes are important immune cells responsible for initiating and resolving inflammatory responses to infection. While changes in monocyte populations result in increased susceptibility to infection, there is limited research on the impact of age and sex on human monocyte phenotype and function. The aim of this work was to dissect the impact of increasing age and biological sex on human monocyte phenotype and function. Here we show that older females have increased inflammatory intermediate and non-classical monocytes compared to young. These monocyte subsets were the most inflammatory ex vivo and their frequency correlated with markers of systemic inflammation. Proteomic analysis of sorted monocyte populations demonstrated that the three human monocyte subsets have largely distinct phenotypes. Additionally, proteomic analysis identified key age-associated protein pathways, including complement cascade and phagocytosis, downregulated in monocytes from older compared to younger individuals. We confirmed the proteomics findings showing that circulating C3 concentrations were reduced with age in females but not males. This decrease in complement in older females resulted in reduced monocyte phagocytosis. Crucially, we demonstrate that in peri/menopausal females, Hormone Replacement Therapy (HRT) reversed this expansion in intermediate monocytes and decreased circulating CRP as compared to age matched controls. Importantly peri/menopausal females on HRT had increased C3 serum concentrations and significantly improved monocyte phagocytosis. The data presented here indicate the importance of menopause in ageing monocyte phenotype and function. This data highlights the potential use of HRT in restoring monocyte function in females during ageing.

immunology↗

AGAL misprocessing-induced ER stress and the unfolded protein response: lysosomal storage-independent mechanism of Fabry disease pathogenesis?

BackgroundClassic Fabry disease (FD) is caused by GLA mutations that result in enzymatic deficiency of alpha-galactosidase A (AGAL), lysosomal storage of globotriaosylceramide, and a resulting multisystemic disease. In non-classic later-onset FD, patients have some preserved AGAL activity and a milder disease course, though female carriers may also be affected. While FD pathogenesis has been mostly attributed to catalytic deficiency of mutated AGAL, lysosomal storage and impairment of lysosomal functions, other pathogenic factors may be important, especially in non-classic later-onset FD. MethodsWe characterized the clinical, biochemical, genetic, molecular, cellular and organ pathology correlates of the p.L394P AGAL variant that was identified in six individuals with end-stage kidney disease by the Czech national screening program for FD and by further screening of 25 family members. ResultsClinical findings revealed a milder clinical course with ~15% residual AGAL activity. Laboratory investigations documented intracellular retention of mutated AGAL with resulting ER stress and the unfolded protein response (UPR). Kidney biopsies did not show lysosomal storage. We observed similar findings of ER stress and UPR with several other classic and non-classic FD missense GLA variants. ConclusionsWe identified defective proteostasis of mutated AGAL resulting in chronic ER stress and UPR of AGAL expressing cells (hereafter referred to as AGALopathy) as an important contributor to FD pathogenesis. These findings provide insight into non-classic later-onset FD and may better explain clinical manifestations with implications for pathogenesis, clinical characterization and treatment of all FD forms. Significance statementCatalytic deficiency of mutated AGAL is responsible for classicFabry disease (FD) pathogenesis but does not fully explain the findings in non-classic later-onset FD, in which affected individuals and female carriers develop clinical manifestations despite some AGAL activity and variably mitigated lysosomal storage. In this investigation of individuals with the p.L394P AGAL variant, we identified defective proteostasis of mutated AGAL resulting in chronic endoplasmic reticulum stress and the unfolded protein response as significant contributors to pathogenesis of non-classic later-onset FD. Similar effects were documented also in other AGAL variants identified in classic and non-classicFD. Endoplasmic reticulum stress and the unfolded protein response therefore play an important role in FD.

molecular biology↗

A novel multifunctional role for Hsp70 in binding post-translational modifications on clients

Hsp70 interactions are critical for cellular viability and the response to stress. Previous attempts to characterize Hsp70 interactions have been limited by their transient nature and inability of current technologies to distinguish direct vs bridged interactions. We report the novel use of cross-linking mass spectrometry (XL-MS) to comprehensively characterize the budding yeast Hsp70 protein interactome. Using this approach, we have gained fundamental new insights into Hsp70 function, including definitive evidence of Hsp70 self-association as well as multi-point interaction with its client proteins. In addition to identifying a novel set of direct Hsp70 interactors which can be used to probe chaperone function in cells, we have also identified a suite of PTM-associated Hsp70 interactions. The majority of these PTMs have not been previously reported and appear to be critical in the regulation of client protein function. These data indicate that one of the mechanisms by which PTMs contribute to protein function is by facilitating interaction with chaperones. Taken together, we propose that XL-MS analysis of chaperone complexes may be used as a unique way to identify biologically-important PTMs on client proteins. O_LIIn vivo confirmation of Hsp70 dimerization C_LIO_LIComprehensive direct interactome of Hsp70 C_LIO_LIMulti-domain interactions between Hsp70 and client proteins C_LIO_LIIdentification of novel biologically-important client protein PTMs C_LI

molecular biology↗