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Biology subjects

Fancher, I. S.

Publications and source records attributed to Fancher, I. S..

3 recordsLinked to original sources

Flow-sensitive K+ channels link flow to piezo1/PI3K/Akt1 pathway

BackgroundEndothelial response to flow is key to vascular function in health and disease. Our earlier studies demonstrated that endothelial Kir2.1 is essential for flow-induced Akt1/eNOS signaling and for flow-induced vasodilation (FIV) but the mechanistic integration between Kir and other flow signaling pathways remained poorly understood. MethodsWe use a combination of electrophysiological recordings in real time of flow exposure, Ca2+ imaging, pressure myography of resistance arteries, and echocardiography. ResultsWe demonstrate that Kir2.1 is essential for flow-induced PI3K phosphorylation, whereas expression of myristoylated Akt1, which bypasses PI3K-dependent membrane recruitment, restores flow-induced Akt1/eNOS phosphorylation in Kir2.1-deficient endothelium. It also restores FIV in Kir2.1-deficient mesenteric arteries. We further demonstrate that Kir2.1 is essential for flow-induced Ca{superscript 2} influx mediated by Piezo1 and TRPV4 channels, whereas Ca{superscript 2} influx induced by pharmacological activation of these channels is Kir2.1 independent. Deficiency of Piezo1 does not affect endothelial Kir2.1 channels. We also discover that flow activation of endothelial Kir2.1 requires Syndecan1, thus creating a link between glycocalyx and downstream effects. Physiologically, we find that endothelial Kir2.1 is suppressed by infusion of Angiotensin-II and by advanced aging, resulting in significant impairment of FIV. In both cases, FIV is fully restored by endothelium-specific over-expression of Kir2.1. ConclusionsOur study reveals that Kir2.1 serves as a mechanistic linker between endothelial glycocalyx to Piezo1-mediated Ca2+ influx and downstream signaling suggesting a new integrated model of endothelial mechanotransduction. A functional loss of endothelial Kir2.1 is shown to play a significant role in FIV impairment in Angiotensin-induced hypertension and aging.

physiology↗

Protection against diet-induced obesity by a single-point mutation in Kir2.1 channels

High-fat diet (HFD)-induced obesity remains a significant global health challenge. In this study, we show that a global knock-in CRISPR mouse with the Kir2.1L222I single-point mutation exhibits remarkable resistance to HFD-induced obesity. We identify palmitic acid (PA), a prevalent long-chain fatty acid in obesity, as a novel negative regulator of Kir2.1. Kir2.1L222I previously shown to protect against cholesterol-mediated inhibition of Kir2.1, also confers protection against PA-induced suppression. Moreover, PA-induced suppression of Kir2.1 results in a significant loss of flow-induced vasodilation (FIV), while the L222I mutation exerts a protective effect. Notably, Kir2.1L222I mice display significant protection against HFD-induced weight gain and adiposity independent of caloric intake. Specifically, the mutant mice show increased lean mass and decreased fat mass, specifically in both visceral and subcutaneous white adipose tissue (WAT) and intrascapular brown adipose tissue (BAT). Importantly, visceral-to-subcutaneous white adipose ratios decrease while BAT/WAT tissue ratios increase, suggesting a metabolically favorable fat distribution. This protection correlates with enhanced physical activity and increased energy expenditure. Metabolomic analysis reveals elevated TCA cycle metabolites in adipose tissue of Kir2.1L222I mice, consistent with their enhanced energy expenditure. These findings highlight Kir2.1 channels as potential therapeutic targets for obesity and related metabolic disorders.

physiology↗

A Single Mutation in TRPC6 Protects Mice from Acute Lung Injury by Regenerating Endothelium

Regenerating vascular endothelium under sepsis, trauma, and viral infections is vital for promoting the resolution of inflammatory diseases such as acute lung injury (ALI). Transient receptor potential canonical (TRPC) channels mediated Ca2+ entry compromises organ functions and survival from lung injury. Through decoding the domain in TRPC6 responsible for vascular injury, we unveiled the intricate molecular mechanisms underlying vascular regeneration in injured tissue. We found that the substitution of isoleucine111 within the Ist ankyrin domain of TRPC6 for its isomer 111leucine (I111L-TRPC6) altered channel localization at the membrane, blocked TRPC6-mediated Ca2+ entry and cation currents without affecting TRPC6 protein expression. Next, we delivered WT-TRPC6 and I111L-TRPC6 to the endothelial cells (ECs) of TRPC6 knockout mice using liposomes and found that while WT-TRPC6 induced lung vascular inflammatory injury and EC death these responses were blocked in lungs expressing I111L-TRPC6 mutant. Instead, the I111L-TRPC6 mutant promoted lung EC proliferation and prevented vascular injury. These responses were recapitulated in a preclinical mouse model of ALI after injection of engineered TRPC6-blocking peptide, suggesting a novel strategy for regenerating anti-inflammatory vascular niche and preventing ALI therapeutically.

cell biology↗