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Paromov, V.

Publications and source records attributed to Paromov, V..

2 recordsLinked to original sources

Identification of HIV Tat and NF-κB binding proteins associated with semen-derived extracellular vesicles

Semen-derived extracellular vesicles (SEVs) have been shown to inhibit transactivation of the long terminal repeat (LTR) in human immunodeficiency virus type 1 (HIV-1, or HIV) and, hence, viral replication by blocking the interaction of the viruss transcriptional activator Tat and host transcription factors NF-{kappa}B and Sp1. The ability of SEVs to regulate the activities of transcription factors suggests that SEVs may contain transcription activators and repressors. Here, we identified host proteins in human SEVs that interacted with the Tat and NF-{kappa}B subunit p65. Integrative network and pathway enrichment analyses of these complexes revealed associations with an array of biological functions regulating genome transcription. In particular, several proteins in SEVs could bind to both Tat and NF-{kappa}B: the scaffolding and cell signaling regulatory protein AKAP9, the G protein signaling regulator ARHGEF28, the small nuclear RNA processor INTS1, the epigenetic reader BRD2, and the transcription elongation inhibitor NELFB. NF-{kappa}B p65-bound NELFB also interacted with HEXIM1, another transcription elongation inhibitor, suggesting that SEVs may inhibit HIV propagation through networks of transcriptional regulation and repression. One Sentence SummaryProteins in vesicles shed from human semen may repress HIV by targeting transcription factors.

molecular biology↗

Unique interactions and functions of the mitochondrial small Tims in Trypanosoma brucei

Trypanosoma brucei is an early divergent parasitic protozoan that causes a fatal disease, African trypanosomiasis. T. brucei possesses a unique and essential translocase of the mitochondrial inner membrane, the TbTIM17 complex. TbTim17 associates with 6 small TbTims, (TbTim9, TbTim10, TbTim11, TbTim12, TbTim13, and TbTim8/13). However, the interaction pattern of the small TbTims with each other and TbTim17 are not clear. Here, we demonstrated by yeast two-hybrid (Y2H) analysis that all six small TbTims interact with each other, but stronger interactions were found among TbTim8/13, TbTim9, and TbTim10. Each of the small TbTims also interact directly with the C-terminal region of TbTim17. RNAi studies indicated that among all small TbTims, TbTim13 is most crucial to maintain the steady-state levels of the TbTIM17 complex. Co-immunoprecipitation analyses from T. brucei mitochondrial extracts also showed that TbTim10 has a stronger association with TbTim9 and TbTim8/13, but a weaker association with TbTim13, whereas TbTim13 has a stronger connection with TbTim17. Analysis of the small TbTim complexes by size exclusion chromatography revealed that each small TbTim, except TbTim13, is present in [~]70 kDa complexes, which could be heterohexameric forms of the small TbTims. However, TbTim13 is primarily present in the larger complex (>800 kDa) and co-fractionated with TbTim17. Altogether, our results demonstrated that TbTim13 is a part of the TbTIM complex and the smaller complexes of the small TbTims likely interact with the larger complex dynamically. Therefore, relative to other eukaryotes, the architecture and function of the small TbTim complexes are specific in T. brucei.

cell biology↗