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Background: Deficiencies of iron-sulfur (Fe-S) clusters, metal complexes that control redox state and mitochondrial metabolism, have been linked to pulmonary hypertension (PH), a deadly vascular disease with poorly defined molecular origins. BOLA3 (BolA Family Member 3) regulates Fe-S biogenesis, and mutations in BOLA3 result in multiple mitochondrial dysfunction syndrome, a fatal disorder associated with PH. The mechanistic role of BOLA3 in PH remains undefined.
Methods: In vitro assessment of BOLA3 regulation and gain- and loss-of-function assays were performed in human pulmonary artery endothelial cells using siRNA and lentiviral vectors expressing the mitochondrial isoform of BOLA3. Polymeric nanoparticle 7C1 was used for lung endothelium-specific delivery of BOLA3 siRNA oligonucleotides in mice. Overexpression of pulmonary vascular BOLA3 was performed by orotracheal transgene delivery of adeno-associated virus in mouse models of PH.
Results: In cultured hypoxic pulmonary artery endothelial cells, lung from human patients with Group 1 and 3 PH, and multiple rodent models of PH, endothelial BOLA3 expression was downregulated, which involved hypoxia inducible factor-2α-dependent transcriptional repression via histone deacetylase 1-mediated histone deacetylation. In vitro gain- and loss-of-function studies demonstrated that BOLA3 regulated Fe-S integrity, thus modulating lipoate-containing 2-oxoacid dehydrogenases with consequent control over glycolysis and mitochondrial respiration. In contexts of siRNA knockdown and naturally occurring human genetic mutation, cellular BOLA3 deficiency downregulated the glycine cleavage system protein H, thus bolstering intracellular glycine content. In the setting of these alterations of oxidative metabolism and glycine levels, BOLA3 deficiency increased endothelial proliferation, survival, and vasoconstriction while decreasing angiogenic potential. In vivo, pharmacological knockdown of endothelial BOLA3 and targeted overexpression of BOLA3 in mice demonstrated that BOLA3 deficiency promotes histological and hemodynamic manifestations of PH. Notably, the therapeutic effects of BOLA3 expression were reversed by exogenous glycine supplementation.
Conclusions: BOLA3 acts as a crucial lynchpin connecting Fe-S-dependent oxidative respiration and glycine homeostasis with endothelial metabolic reprogramming critical to PH pathogenesis. These results provide a molecular explanation for the clinical associations linking PH with hyperglycinemic syndromes and mitochondrial disorders. These findings also identify novel metabolic targets, including those involved in epigenetics, Fe-S biogenesis, and glycine biology, for diagnostic and therapeutic development.
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http://dx.doi.org/10.1161/CIRCULATIONAHA.118.035889 | DOI Listing |
Int Immunopharmacol
September 2025
School of Pharmacy, Xianning Medical College, Hubei University of Science and Technology, Xianning, Hubei, China; Hubei Engineering Research Center of Traditional Chinese Medicine of South Hubei Province, Xianning Medical College, Hubei University of Science and Technology, Xianning, Hubei, China; H
Int Immunopharmacol
August 2025
School of Pharmacy, Xianning Medical College, Hubei University of Science and Technology, Xianning, Hubei, China; Hubei Engineering Research Center of Traditional Chinese Medicine of South Hubei Province, Xianning Medical College, Hubei University of Science and Technology, Xianning, Hubei, China; H
Objective: Skeletal muscle is crucial for glucose metabolism, but diabetes impairs this function, leading to muscle atrophy. Although the mutation of BOLA Family Member 3 (BOLA3) resulted in disease Multiple Mitochondrial Dysfunctions Syndrome, the role of which in diabetic muscle atrophy is unclear.
Methods: Firstly, datasets were downloaded and assessed from skeletal muscle tissue with diabetic individuals in GEO database and key genes were screened using weighted gene co-expression network analysis (WGCNA) and machine learning algorithms.
Mol Genet Metab
June 2025
Department of Clinical Genomics, Saitama Medical University, Saitama, Japan.
BOLA3 is one of the proteins involved in the assembly and transport of [4Fe-4S] clusters, which are incorporated into mitochondrial respiratory chain complexes I and II, aconitase, and lipoic acid synthetase. Pathogenic variants in the BOLA3 gene cause a rare condition known as multiple mitochondrial dysfunctions syndrome 2 with hyperglycinemia, characterized by life-threatening lactic acidosis, nonketotic hyperglycinemia, and hypertrophic cardiomyopathy. The aim of this study was to elucidate the biochemical characteristics of patients with BOLA3 variants and to clarify the role of BOLA3 protein in humans.
View Article and Find Full Text PDFUrologia
May 2025
Department of Urology, IPGMER and SSKM Hospital, Kolkata, West Bengal, India.
Background: Exploring the potential of as a diagnostic biomarker in prostate cancer.
Methods: Expression of the lncRNA was analyzed between normal and tumor samples in the GDC TCGA PRAD (Genomic Data Commons: The Cancer Genome Atlas Prostate Adenocarcinoma Collection) dataset. Disease progression-related clinicopathological parameters such as serum PSA level (ng/ml) and Gleason score were associated with the expression of using the same GDC TCGA PRAD dataset.
J Biol Chem
December 2024
Broad Institute of MIT and Harvard, Cambridge, Massachusets, USA; Department of Pathology, Beth Israel Deaconess Medical Center, Harvard Medical School, Boston, Massachusetts, USA. Electronic address:
Protein lipoylation, a vital lysine post-translational modification, plays a crucial role in the function of key mitochondrial tricarboxylic acid cycle enzymatic complexes. In eukaryotes, lipoyl post-translational modification synthesis occurs exclusively through de novo pathways, relying on lipoyl synthesis/transfer enzymes, dependent upon mitochondrial fatty acid and Fe-S cluster biosynthesis. Dysregulation in any of these pathways leads to diminished cellular lipoylation.
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