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Batlle-Morera, L.

Publications and source records attributed to Batlle-Morera, L..

2 recordsLinked to original sources

Nuclear MTHFD2 secures mitosis progression by preserving centromere integrity

Subcellular compartmentalization of metabolic enzymes may elicit specific cellular functions by establishing a unique metabolic environment. Indeed, the nuclear translocation of certain metabolic enzymes is required for epigenetic regulation and gene expression control. Here, we reveal that, in cancer cells, the mitochondrial enzyme methylenetetrahydrofolate dehydrogenase 2 (MTHFD2) localizes in the nucleus during the G2-M phase of the cell cycle to secure mitosis progression. Nuclear MTHFD2 interacts with proteins involved in mitosis regulation and centromere stability, including the methyltransferases KMT5A and DNMT3B. Loss of MTHFD2 induces centromere overexpression and severe methylation defects and impedes correct mitosis completion. As a consequence, MTHFD2 deficient cells accumulate chromosomal aberrations arising from chromosome congression and segregation defects. Blocking the catalytic nuclear function of MTHFD2 recapitulates the phenotype observed in MTHFD2 deficient cells, attributing to nuclear MTHFD2 an enzymatic active role in controlling mitosis. Our discovery uncovers a nuclear moonlighting role for the cancer target MTHFD2, and emphasizes that cancer metabolism rewiring may encompass the relocation of metabolic enzymes to alternative subcellular compartments.

cell biology↗

Dynamic association of IκBα to chromatin is regulated by acetylation and cleavage of histone H4

I{kappa}Bs exert a principal function as cytoplasmic inhibitors of the NF-kB transcription factors. Additional functions for I{kappa}B homologues have been described including association to chromatin and transcriptional regulatioin. Phosphorylated and SUMOylated I{kappa}B (pS-I{kappa}B) binds histones H2A and H4 in the stem and progenitor compartment of skin and intestine, but the mechanisms controlling its recruitment to chromatin are largely unstudied. We here show that serine 32-36 phosphorylation of I{kappa}B favors its binding with nucleosomes and demonstrated that p-I{kappa}B association to H4 is favored by acetylation at specific H4 lysine residues. N-terminal tail of H4 is lost during intestinal cell differentiation by proteolytic cleavage at residues 17-19 imposed ny trypsin or chymotrypsin, which interferes p-I{kappa}B binding. Paradoxically, inhibition of trypsin and chymotrypsin activity in HT29 cells increased p-I{kappa}B chromatin binding and impaired goblet cell differentiation, comparable to I{kappa}B deletion. Together our results indicate that dynamic binding of I{kappa}B to chromatin is a requirement for intestinal cell differentiation and provide a molecular base for the restricted nuclear distribution of p-I{kappa}B at specific stem cell compartments.

molecular biology↗