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Rezende Pabst, F.

Publications and source records attributed to Rezende Pabst, F..

3 recordsLinked to original sources

Mitochondrial stress signaling shapes the nuclear response to loss of the chromatin reader MRG-1

Perinuclear sequestration of heterochromatin is a major conserved feature of nuclear architecture. In Caenorhabditis elegans, the euchromatic reader MRG-1 was previously shown to promote peripheral localization of heterochromatin through an indirect mechanism that remained largely unknown. Here, we show that loss of MRG-1 activates a mitochondrial stress response. Genetic ablation of the PMK-3/MAPK mitochondrial stress regulator CBP-3 reveals that this pathway contributes to both detachment of a heterochromatic reporter from the nuclear periphery and approximately one-third of the transcriptional changes induced by mrg-1 depletion. Strikingly, loss of cbp-3 in MRG-1-deficient animals exacerbates mitochondrial dysfunction, fertility defects and embryonic lethality, indicating that part of the nuclear response induced by MRG-1 loss contributes to adaptation to mitochondrial stress rather than constituting a defect in heterochromatin 3D organization as previously thought. Together, our findings identify mitochondrial stress signaling as an unexpected mediator of the nuclear response to MRG-1 loss, demonstrating its contribution to gene regulation while supporting the idea that stress-induced changes in cellular physiology can also shape nuclear organization.

cell biology↗

Aquarius RNA helicase Protects Pluripotent Stem Cell Identity

Pluripotent stem cells must reconcile rapid replication with a highly dynamic transcriptional program, creating an inherent susceptibility to transcription-replication conflicts (TRCs). We demonstrate that embryonic stem cells (ESCs) operate in a "resilient" replication mode, tolerating high genomic traffic through the constitutive upregulation of R-loop and TRC resolution pathways. Through a targeted functional screen, we identify the RNA helicase Aquarius (AQR) as an essential safeguard of this state. AQR depletion downregulates these resolution factors, collapsing this stress-resistant program and driving ESCs into unstable, heterogenous states, marked by increased transcriptional entropy and cell-to-cell noise. Mechanistically, we show that key identity-defining genes are preferentially located within R-loop and TRC prone regions, making them uniquely vulnerable to AQR depletion. Our findings establish AQR as a critical governor of transcriptional fidelity, demonstrating that genomic resilience is fundamental to maintaining pluripotent cell identity.

cell biology↗

Methionine synthase reductase regulates heterochromatin independently of methionine synthesis through mitochondrial homeostasis

Metabolic enzymes can influence chromatin organization by modulating the availability of key metabolites, yet how specific metabolic reactions affect chromatin function remains poorly understood. Here, we show that in Caenorhabditis elegans, the methionine-cycle enzyme methionine synthase reductase (MTRR-l/MSR) regulates heterochromatin independently of methionine synthesis. Loss of MTRR-1, but not of the methionine synthase METR-l/MS, specifically reduces heterochromatic histone methylation, derepresses repetitive elements, and causes developmental delay. Multi-omics profiling revealed that mtrr-1 mutants activate transcriptional programs associated with mitochondrial stress and accumulate long-chain acylcamitines, indicating disrupted mitochondrial homeostasis. Functional assays confirmed altered mitochondrial respiration in mtrr-1 mutants, while genetic suppression of the PMK-3/MAPK mitochondrial retrograde signaling pathway partially restored repeat silencing. Consistently, direct perturbation of mitochondrial function was sufficient to induce heterochromatin derepression in wild type animals. Together, our results reveal a previously unrecognized mitochondria-to-chromatin axis controlled by the methionine-cycle enzyme MTRR-l/MSR, demonstrating that mitochondrial homeostasis is required for heterochromatin maintenance independently of canonical methionine metabolism.

cell biology↗