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Volume-regulated anion channels (VRACs) are almost ubiquitously expressed plasma membrane (PM) channels of vertebrate cells with roles in cell volume regulation and signaling. Besides conducting anions such as chloride, VRACs transport metabolites, neurotransmitters, immunomodulators, and drugs irrespective of their electrical charge. VRAC-mediated transport of these molecules has profound (patho)physiological significance. The recent identification of VRACs as heteromers of up to five different LRRC8 proteins allowed the roles of VRACs to be addressed with genetic and molecular tools. Cryogenic electron microscopy (cryo-EM) and mutagenesis yielded insights into the structure and function of VRACs, yet their activation mechanisms remain enigmatic. Here we focus on new developments and suggest that the ability of VRAC to transport metabolites and signaling molecules may be physiologically more important than its role in cell volume regulation.
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http://dx.doi.org/10.1016/j.tibs.2025.07.001 | DOI Listing |
Eur J Nucl Med Mol Imaging
September 2025
Nuclear Medicine and Molecular Imaging, Department of Imaging and Pathology, KU Leuven, Leuven, Belgium.
Purpose: Cardiac noradrenergic denervation visualized by meta-[I]iodobenzylguanidine ([I]MIBG) imaging supports the diagnosis of Parkinson's disease (PD). Recently, meta-[F] fluorobenzylguanidine ([F]MFBG) PET demonstrated favorable imaging characteristics compared with [I]MIBG scintigraphy for neuroendocrine tumors. We assessed [F]MFBG dosimetry and myocardial pharmacokinetics in healthy controls and PD patients.
View Article and Find Full Text PDFInquiry
September 2025
Northwestern University, Chicago, IL, USA.
Risk-based firearm laws are a firearm injury prevention strategy. However, evidence for their efficacy in reducing firearm injury is mixed. There is agreement that the magnitude of their effect depends on implementation and efficacy would improve with better implementation.
View Article and Find Full Text PDFJ Cardiovasc Pharmacol
September 2025
Graduate School of Cardiology, Bengbu Medical University, Bengbu 233000, Anhui, China.
Chronic stress-induced cardiac hypertrophy remains a critical precursor to heart failure, with current therapies limited by incomplete mechanistic targeting. Cyclin-dependent kinases (CDKs), pivotal regulators of cell cycle and stress signaling, are emerging therapeutic targets in cardiovascular pathologies. Using bioinformatics analysis of human hypertrophic cardiomyopathy datasets (GSE5500, GSE136308) and a murine transverse aortic constriction (TAC) model, we investigated the therapeutic effects of the CDK inhibitor R547 (10 mg/kg, intraperitoneal every 3 days) on pressure overload-induced cardiac remodeling.
View Article and Find Full Text PDFPlant Cell Rep
September 2025
Department of Agricultural, Food and Environmental Sciences, University of Perugia, Borgo XX Giugno 74, 06121, Perugia, Italy.
Genome doubling did not enhance drought tolerance in alfalfa, but may set the stage for long-term adaptation to drought through a novel transcriptional landscape. Whole genome duplication (WGD) has been shown to enhance stress tolerance in plants. Cultivated alfalfa is autotetraploid, but diploid wild relatives are important sources of genetic variation for breeding.
View Article and Find Full Text PDFBiochem Pharmacol
September 2025
Department of Anesthesiology, Tongren Hospital, Shanghai Jiao Tong University School of Medicine, 1111 XianXia Road, Shanghai 200336, China; Hongqiao International Institute of Medicine, Tongren Hospital, Shanghai Jiao Tong University School of Medicine, 1111 XianXia Road, Shanghai 200336, China. El
Hypoxic-ischemic brain damage (HIBD) is a severe condition leading to extensive neuronal loss and functional impairments, representing a significant challenge in neonatal care. PFGA12, a peptide derived from fibrinogen alpha chain (FGA), which is notably downregulated in the umbilical cord blood of hypoxic-ischemic encephalopathy (HIE) infants. We demonstrate that PFGA12 significantly enhances cell viability and mitigates oxygen-glucose deprivation/reperfusion (OGD/R)-induced neuronal cell death.
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