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Merino, R.

Publications and source records attributed to Merino, R..

2 recordsLinked to original sources

Ultrastable and Versatile FoxP3 Ensembles on Microsatellites

Microsatellites are essential genomic components increasingly linked to transcriptional regulation. FoxP3, a transcription factor critical for regulatory T cell (Treg) development, recognizes TTTG repeat microsatellites by forming multimers along DNA. However, FoxP3 also binds a broader range of TnG repeats (n=2-5), often at the edges of accessible chromatin regions. This raises questions about how FoxP3 adapts to sequence variability and the potential role of nucleosomes. Using cryo-electron microscopy and single-molecule analyses, we show that FoxP3 assembles into distinct supramolecular structures depending on DNA sequence. This structural plasticity enables FoxP3 to bridge 2-4 DNA duplexes, forming ultrastable structures that coordinate multiple genomic loci. Nucleosomes further facilitate FoxP3 assembly by inducing local DNA bending, creating a nucleus that recruits distal DNA elements through multiway bridging. Our findings thus reveal FoxP3s unusual ability to shapeshift to accommodate evolutionarily dynamic microsatellites and its potential to reinforce chromatin boundaries and three-dimensional genomic architecture.

biochemistry↗

MYC directly transactivates CR2/CD21, the receptor of the Epstein-Barr virus, and enhances the viral infection of Burkitt lymphoma cells

The molecular hallmark of Burkitt lymphoma (BL) is a chromosomal translocation that results in deregulated expression of MYC oncogene. This translocation is present in virtually all BL. MYC is an oncogenic transcription factor deregulated in about half of total human tumors, by translocation or other mechanisms. Transcriptomic studies reveal more than 1000 genes regulated by MYC but a much smaller fraction of these genes is directly activated by MYC. All the endemic BL and many sporadic BL cells are associated to the Epstein-Barr virus (EBV) infection. The currently accepted mechanism for the MYC and BL association is that EBV is the causing agent inducing MYC translocation. Complement receptor 2 or CR2 (also called CD21) is a membrane protein that serves as EBV receptor in lymphoid cells. Here we show that CR2 is a direct MYC target gene. This conclusion is based on several evidences. First, MYC downregulation is linked to CR2 downregulation both in proliferating and in arrested cells. Second, MYC binds human CR2 promoter and this binding depends on E-box elements. Third, MYC activates CR2 promoter in an E-box dependent manner. Four, MYC activates CR2 transcription in the absence of protein synthesis. Importantly, MYC also induces CR2 expression in mouse primary B cells. Thus, CR2 is a bona fide MYC direct target gene. Moreover, higher MYC expression levels in Burkitt lymphoma-derived cells result in a more efficient EBV infection. We propose an alternative mechanism compatible with the correlation between EBV infection and MYC translocation observed in endemic BL, i.e., that deregulated MYC in BL cells occurs first and favors the EBV infection.

cancer biology↗