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Ait-Ammar, A.

Publications and source records attributed to Ait-Ammar, A..

2 recordsLinked to original sources

Mass spectrometry and CLIP-seq analysis reveal BCL11b interactions with RNA processing pathways

BCL11b (B-cell lymphoma/leukemia 11B, CTIP2) is a C2H2 zinc-finger transcription regulator and tumor suppressor. BCL11b is involved in lymphomagenesis and in fetal, central nervous system (CNS) and immune system developments. Therefore, it may contribute in congenital disorders and cancers (e.g. leukemia). BCL11b favors persistence of HIV latency in microglia, CNS macrophages. BCL11b contributes to control cell cycle, differentiation and apoptosis in multiple organisms and cell models; however exact mechanisms are unknown. Although BCL11b recruits non-coding RNA and epigenetic enzymes to regulate gene expression, BCL11b-associated ribonucleoprotein complexes are unknown. Here, using immunoprecipitation of BCL11b-binding RNA and proteins (CLIP-seq and quantitative LC-MS/MS mass spectrometry) complemented with systems biology validations, we show that BCL11b interacts with RNA splicing and nonsense-mediated decay proteins, including FUS, SMN1, UPF1 and Drosha, which may contribute in isoform selection of protein-coding RNA isoforms from noncoding-RNAs isoforms (retained introns or nonsense mediated RNA). Interestingly, BCL11b binds to RNA transcripts and proteins encoded by the same genes (FUS, ESWR1, CHD and Tubulin). Our study highlights that BCL11b targets RNA processing and splicing proteins, and RNAs that implicate cell cycle, development, neurodegenerative, and cancer pathways. These findings will help future mechanistic understanding of developmental disorders. IMPORTANCEFirst genome-wide BCL11b-protein and RNA interactome BCL11b interacts with RNA processing and splicing proteins BCL11b interacts with neurodegenerative genes and sarcoma genes BCL11b targets during cell proliferation and disease pathways

developmental biology

Inhibition of HIV-1 gene transcription by KAP1 in myeloid lineage

HIV-1 latency generates reservoirs that prevent viral eradication by the current therapies. To find strategies toward an HIV cure, detailed understandings of the molecular mechanisms underlying establishment and persistence of the reservoirs are needed. The cellular transcription factor KAP1 is known as a potent repressor of gene transcription. Here we report that KAP1 represses HIV-1 gene expression in myeloid cells including microglial cells, the major reservoir of the central nervous system. Mechanistically, KAP1 interacts and colocalizes with the viral transactivator Tat to promote its degradation via the proteasome pathway and repress HIV-1 gene expression. In myeloid models of latent HIV-1 infection, the depletion of KAP1 increased viral gene elongation and reactivated HIV-1 expression. Bound to the latent HIV-1 promoter, KAP1 associates and cooperates with CTIP2, a key epigenetic silencer of HIV-1 expression in microglial cells. In addition, Tat and CTIP2 compete for KAP1 binding suggesting a dynamic modulation of the KAP1 cellular partners upon HIV-1 infection. Altogether, our results suggest that KAP1 contributes to the establishment and the persistence of HIV-1 latency in myeloid cells.

molecular biology