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Biology subjects

Ries, C.

Publications and source records attributed to Ries, C..

2 recordsLinked to original sources

Direct interaction between miR-210-5p and HIF-1α regulates HIF-dependent transcription

Hypoxia-inducible factors (HIFs) coordinate cellular adaptation to oxygen deprivation, yet whether hypoxia-induced microRNAs directly regulate HIF-dependent transcription remains unknown. Here, we identify miR-210-5p as a nuclear hypoxamiR that directly binds HIF-1 and enhances HIF-dependent transcription. Hypoxia induced rapid, HIF-dependent nuclear accumulation of mature miR-210-5p across multiple cell types. Biophysical analyses demonstrated direct interaction between miR-210-5p and the HIF-1 bHLH-PAS domain, while mutational studies identified a conserved 5'motif required for HIF-1 binding but dispensable for repression of the canonical cytoplasmic target ISCU. Functionally, transcriptional activity closely correlated with HIF-1-binding affinity, as binding-deficient variants failed to activate HIF reporters or endogenous target genes. Although AGO2 contributed to hypoxic transcriptional responses, miR-210-5p interacted directly with HIF-1 independently of AGO2. In ischemic myocardium, nuclear enrichment of miR-210-5p and its proximity to HIF-1 support the physiological relevance of this mechanism, revealing a previously unrecognized RNA-mediated layer of HIF transcriptional regulation.

molecular biology↗

Neuropeptide CRH prevents premature differentiation of OPCs following CNS injury and in early postnatal development

The role of neuropeptides and their receptors in oligodendrocyte progenitor cells (OPCs) has largely been overlooked so far. Here, we describe a new subpopulation of corticotropin-releasing hormone (CRH)-expressing OPCs that aggregate around acute brain injuries and exhibit an elevated capacity to differentiate into myelinating oligodendrocytes (OLs). We found that CRH expression in OPCs is rapidly induced de novo as a transient response within the first 72 hours after injury. As target cells, we identified CRH receptor type 1 (CRHR1)-expressing OPCs which show a decreased differentiation velocity. We demonstrate that CRH/CRHR1 system inactivation increases the speed of OL generation compromising the long-term survival of OLs after acute injury. Furthermore, we prove that a CRH/CRHR1 system deficiency under non-injury conditions leads to increased early postnatal oligodendrogenesis and alterations in adult myelination. Altogether, we show that OPC-derived CRH not only actively influences the injury environment through the interaction with CRHR1-expressing OPCs, but also identify the G-protein coupled receptor CRHR1 as a critical modulator of oligodendrogenesis at early postnatal stages with lasting effects on adult myelination.

neuroscience↗