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Kuznetsov, N. V.

Publications and source records attributed to Kuznetsov, N. V..

2 recordsLinked to original sources

AID facilitates TET2 demethylation of Irf4 for plasma cell fate in germinal center B cells

Activation-induced cytidine deaminase (AID) is essential for B cell affinity maturation. We investigated why AID deficiency gives rise to giant germinal centers (GC) using the AIDR112H mouse model that is devoid of AID activity. The increased GC response was associated with accumulation of GC B cells in the light zone in immunized AIDR112H mice. AIDR112H GC B cells had reduced capacity to up-regulate IRF4 to initiate plasma cell differentiation, leading to accumulation of a transitional GC population with reduced GL7 expression. Genetic introduction of a high affinity B cell receptor (BCR) was unable to restore plasma cell differentiation of AIDR112H B cells while ectopic expression of catalytic active AID rescued plasma cell generation. AIDR112H impaired recruitment of AID to the Irf4 promoter/enhancer and disrupted the interaction with Ten-eleven Translocation 2 (TET2). Consequently, DNA demethylation at the Irf4 promoter/enhancer was reduced in AIDR112H GC B cells and impeded high Irf4 expression for transition into plasma cells. This data reveals a B cell-intrinsic mechanism that governs the plasma cell fate decision through epigenetic remodeling mediated by AID in cooperation with TET2. Key messagesO_LIAID deficiency leads to accumulation of a transitional (t)GC population of B cells with low expression of GL7 and failure to up-regulate IRF4 C_LIO_LIAID deamination activity is needed to promote up-regulation of IRF4 for plasma cell differentiation. C_LIO_LICo-operation between TET2 and AID facilitates demethylation of the Irf4 enhancer/promoter. C_LI

immunology↗

Expression of the p53 Network Aging-associated Genes shaken, not stirred in a 3-Week Microgravity Simulation Human Study

BackgroundThe hostile space environment affects human health and aging. NASA has named five main hazards astronauts will face in space, including space radiation and changes in gravity. However, the contribution of each of these factors, along with others, to the overall impact on biomolecular and cellular processes is not always clear. ObjectiveTo explore the effects of microgravity on the transcriptomes of healthy volunteers, with a focus on aging-related gene expression in p53 cell signaling pathways. MethodsTen healthy young men were exposed to simulated microgravity (SMG) for three weeks and blood samples were collected at five time point before, during and after the course of SMG. T cells were purified from the peripheral blood samples and total RNA was isolated and sequenced followed by bioinformatics analysis of volunteers global transcriptomes. ResultsA differential expression of p53 network genes was observed. The expression of nearly 30 genes involved in p53 gene network was affected during a 3-week course of simulated microgravity environment in dry immersion including classic p53 downstream target genes involved in cellular senescence: GADD45, p21, PUMA, IGF1 and other targets and potential target genes. ConclusionFor the first time, the p53-associated cell signaling pathways and gene network in human T cells were reported to be affected in vivo by dry immersion SMG. It is evident that the relatively mild effects of simulated weightlessness on the human body are sufficient to activate these pathways and influence aging-related genes in the p53 gene network. These findings should not be dismissed, as they could open the door to the discovery of a novel category of drugs - MG-senolytics.

molecular biology↗