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Biology subjects

Jaykar, M.

Publications and source records attributed to Jaykar, M..

2 recordsLinked to original sources

HIF1α controls steroidogenesis under acute hypoxic stress

BackgroundHypoxia is a critical physiological and pathological condition known to influence various cellular processes, including steroidogenesis. While previous studies, including our own, have highlighted the regulatory effects of Hypoxia-Inducible Factor 1 (HIF1) on steroid production, the specific molecular mechanisms remain poorly understood. This study investigates the role of hypoxia and HIF1 in steroid biosynthesis across multiple experimental models during acute exposure to low oxygen levels. MethodsTo assess the extent to which acute hypoxia modulates steroidogenesis, we employed several approaches, including the Y1 adrenocortical cell line, an ex vivo adrenal gland explant model, and a conditional HIF1-deficient mouse line in the adrenal cortex. We focused on various regulatory patterns that may critically suppress steroidogenesis. ResultsIn Y1 cells and adrenal gland explants, hypoxia induced the upregulation of specific microRNAs, leading to the suppression of mRNA levels of key steroidogenic enzymes and reduced steroid hormone production. The hypoxia/HIF1-dependent induction of these microRNAs and the consequent modulation of steroid production were confirmed in vivo. Notably, using our conditional HIF1-deficient mouse line, we found that the increase in miRNA expression under hypoxic conditions is directly dependent on HIF1. Furthermore, the regulation of steroidogenic enzymes (e.g., StAR and Cyp11a1) and steroid production occurred at the level of protein translation, revealing an unexpected layer of control under hypoxic conditions in vivo. ConclusionsThese findings elucidate the molecular mechanisms underlying acute hypoxia-induced changes in steroid biosynthesis and may also be useful in developing new strategies for various steroid hormone pathologies.

molecular biology↗

Endoglin regulates the integrity of the bone marrow vasculature

Endoglin (Eng) is an accessory receptor for transforming growth factor-{beta} (TGF-{beta}) that is critical for maintaining vascular integrity. Mutations in Eng cause hereditary hemorrhagic telangiectasia (HHT), resulting in arteriovenous malformations (AVMs) and blood abnormalities. Despite the known association between Eng deficiency and AVMs, the underlying mechanisms are unclear. In addition, the role of the bone marrow (BM), a major source of immune and blood cells, in endothelial Eng (EC-Eng) deficiency is unexplored. We show that BM blood vessels conditionally deficient in Eng (cKO) undergo a structured remodeling process over four weeks, with distinct proliferative and resolution phases. These phases involve angiogenic set points, the involvement of integrins, and the modulation of vascular integrity. In addition, we observe changes in hematopoietic stem and progenitor cells (HSPC) and circulating granulocytes, along with reduced red blood cells and platelets due to splenic sequestration. Using a conditional heterozygous EC-Eng deficient mouse model, reflecting the genetics of HHT patients, we identify vascular changes similar to those in the cKO model. Taken together, using multiple in vivo approaches, we suggest that reduced Eng expression in the endothelium drives significant BM vascular remodeling, sharing mechanisms with early vascular processes associated with AVM formation. Explanation of NoveltyOur findings reveal that BM blood vessels deficient in endoglin undergo an orchestrated remodeling process with distinct proliferative and resolution phases over several weeks. We identify specific angiogenic set points and profound alterations in vascular integrity, along with hematopoietic changes starting at the level of hematopoietic stem and progenitor cells. These findings advance our understanding of the role of Eng in vascular remodeling and may provide novel therapeutic targets for HHT. Key PointsO_LIConditional EC-Eng deficiency leads to vascular remodeling in the BM of mice in a temporally orchestrated manner. C_LIO_LIEC-Eng facilitates vascular integrity, hematopoietic homeostasis, and immune cell mobilization. C_LI

molecular biology↗