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Biology subjects

Katona, M.

Publications and source records attributed to Katona, M..

3 recordsLinked to original sources

CYB5R3 Controls Sex-Specific Stress Erythropoiesis via Heme-Biosynthesis

Cytochrome b5 reductase 3 (CYB5R3) or met-hemoglobin reductase is an oxidoreductase that maintains hemoprotein and cellular redox balance, yet its contribution to erythropoiesis under stress conditions remains unclear. Motivated by prior observations that the hypomorphic CYB5R3 T117S blunts hydroxyurea-induced fetal hemoglobin responses in patients with sickle cell disease, we tested whether CYB5R3 contributes to the regulation of erythropoiesis. Hematopoietic lineage-specific CYB5R3 knockout mice exhibited markedly impaired erythropoietic induction in response to chronic hypoxia compared to controls, with males showing a more pronounced deficit, and splenectomy further exacerbating this impairment. Genetic deletion of CYB5R3 in human CD34 progenitors reduced globin expression and disrupted terminal erythroid differentiation. Meanwhile, CYB5R3 knockdown in K562 cells produced a heme-deficient state whereby only exogenous heme but not hydroxyurea, iron, or upstream precursors restored globin synthesis. Transcriptomic profiling revealed coordinated downregulation of erythroid transcription factors and multiple enzymes in the heme biosynthetic pathway, which was reversed with heme treatment. Together, these results reveal an unexpected function for CYB5R3 beyond met-hemoglobin reduction, positioning it as a central metabolic regulator of sex-specific stress erythropoiesis and unveiling a heme-restricted vulnerability that may augment disease severity in anemia, hemoglobinopathies, and individuals carrying CYB5R3 loss-of-function variants. Key pointsO_LICYB5R3 is required for effective stress erythropoietic induction, with a more pronounced impact in males. C_LIO_LIErythroid-specific CYB5R3 deficiency creates a heme-limited state, impairing erythroblast differentiation and maturation. C_LI

molecular biology↗

Endothelial CYB5R3 couples store-operated calcium entry to TRPV2 activation and vascular fitness

NADH-cytochrome b5 reductase 3 (CYB5R3) is a flavoprotein that governs nitric oxide (NO) signaling and supports NADPH oxidase 4-derived hydrogen peroxide production via coenzyme Q reduction in endothelium. While CYB5R3 expression is decreased during aging, the downstream consequences of CYB5R3 loss are not understood. Here, we demonstrate that depletion of CYB5R3 in primary human aortic endothelial cells activates a Ca2+ influx network characterized by the upregulation of calcium release-activated calcium (CRAC) channel subunits ORAI2 and ORAI3, as well as the non-selective cation channel transient receptor potential vanilloid 2 (TRPV2). When endoplasmic-reticulum Ca2+ stores were depleted, CYB5R3-deficient cells had increased Ca2+ entry through the plasma membrane, part of which was insensitive to classical store-operated Ca2+ entry (SOCE) blockers and was mediated by TRPV2, as demonstrated by genetic knockdown and pharmacologic inhibition. Mechanistically, loss of CYB5R3 increased Ca2+-dependent NO production through elevated CRAC channel activity, which oxidatively inhibited the protein tyrosine phosphatase non-receptor type 1 (PTPN1). This prevented TRPV2 dephosphorylation, thereby maintaining Janus kinase 1 (JAK1)-dependent channel activation downstream of SOCE. It also enhanced the responsiveness of TRPV2 to physiological heat stimuli. Thus, CYB5R3 normally acts as a brake, limiting NO-dependent PTPN1 oxidation and restraining TRPV2 activity. In vivo, endothelial-specific Cyb5r3 deletion enhanced acetylcholine-induced vasorelaxation and improved exercise capacity, demonstrating a physiological function for this pathway in vascular adaptation. Together, these findings identify a CYB5R3-NO-SOCE- PTPN1-TRPV2 signaling axis that couples endothelial redox balance to Ca2+ dynamics and vascular function. SIGNIFICANCEEndothelial cells rely on receptor-regulated Ca2+ signals to produce vasodilators and control vascular function; however, the molecular mechanisms coordinating these pathways are incompletely understood. We identify CYB5R3 as a key redox switch that couples store-operated Ca2+ entry to the non-selective cation channel TRPV2. Loss of CYB5R3 enhances TRPV2 activity downstream of SOCE through NO-dependent oxidative inhibition of the phosphatase PTPN1, sustaining Janus kinase-mediated TRPV2 channel activation. This novel mechanism expands the physiological scope of CYB5R3 by redefining how redox enzymes intersect with Ca2+ signaling, linking endothelial CYB5R3 to vascular relaxation and exercise capacity in vivo. This positions CYB5R3 as a central regulator of vascular function with broad implications for cardiovascular health and disease.

cell biology↗

Systematic mapping of MCU-mediated mitochondrial calcium signaling networks

The Mitochondrial Ca2+ Uniporter Channel (MCUC) allows calcium entry into the mitochondrial matrix to regulate energy metabolism but also cell death. Although, several MCUC components have been identified, the molecular basis of mitochondrial Ca2+ signaling networks and their remodeling upon changes in uniporter activity have not been systematically assessed. Using an unbiased and quantitative proteomic approach, we map the MCUC interactome in HEK293 cells under physiological conditions and upon chronic loss or gain of mitochondrial Ca2+ uptake. Besides all previously known subunits of the uniporter, we identify 89 high-confidence interactors linking MCUC to several mitochondrial complexes and pathways, half of which are currently linked to metabolic, neurological, and immunological diseases. As a proof-of-concept, we validate EFHD1 as a binding partner of MCU, EMRE and MCUB with a MICU1-dependent inhibitory effect on Ca2+ uptake. To investigate compensatory mechanisms and functional consequences of mitochondrial Ca2+ dyshomeostasis, we systematically survey the MCU interactome upon silencing of EMRE, MCUB, MICU1 or MICU2. We observe profound changes in the MCU interconnectivity, whereby downregulation of EMRE reduces the number of MCU interactors of over 10-fold, while silencing of MCUB leads to a wider functional network linking MCU to mitochondrial stress response pathways and cell death. Altogether our study provides a comprehensive map of MCUC protein-protein interactions and a rich, high-confidence resource that can be explored to gain insights into the players and mechanisms involved in calcium signal transduction cascades and their relevance in human diseases.

cell biology↗