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Arterial membrane potential () is set by an active interplay among ion channels whose principal function is to set contractility through the gating of voltage-operated Ca channels. To garner an understanding of this electrical parameter, the activity of each channel must be established under near-physiological conditions, a significant challenge given their small magnitude. The inward rectifying K (K) channel is illustrative of the problem, as its outward "physiological" component is almost undetectable. This study describes a stepwise approach to dissect small ionic currents at physiological using endothelial and smooth muscle cells freshly isolated from rat cerebral arteries. We highlight three critical steps, beginning with the voltage clamping of vascular cells bathed in physiological solutions while maintaining a giga-ohm seal. K channels are then inhibited (micromolar Ba) so that a difference current can be created, once Ba traces are corrected for the changing seal resistance and subtle instrument drift, pulling the reversal potential rightward. The latter is a new procedure and entails the alignment of whole cell current traces at a voltage where K is silent and other channels exhibit limited activity. We subsequently introduced corrected and uncorrected currents into computer models of the arterial wall to show how these subtle adjustments markedly impact the importance of K in and arterial tone regulation. We argue that this refined approach can be used on an array of vascular ion channels to build a complete picture of how they dynamically interact to set arterial tone in key organs like the brain. This work describes a stepwise approach to resolve small ionic currents involved in controlling in resistance arteries. Using this new methodology, we particularly resolved the outward component of the K current in native vascular cells, voltage clamped in near-physiological conditions. This novel approach can be applied to any other vascular currents and used to better interpret how vascular ion channels cooperate to control arterial tone.
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http://dx.doi.org/10.1152/ajpheart.00628.2019 | DOI Listing |
Front Cardiovasc Med
December 2024
Department of Cardiology, INSERM UMR 1295, Toulouse University Hospital, Toulouse, France.
Cerebrotendinous xanthomatosis (CTX) is a rare but treatable inherited neurometabolic disorder that can lead to severe sequelae if left untreated. Chenodeoxycholic acid is a safe and effective treatment for CTX. Early diagnosis is essential to improve patient outcomes.
View Article and Find Full Text PDFWorld Neurosurg
December 2024
Department of Neurosurgery, Zhongshan Hospital of Xiamen University, School of Medicine, Xiamen University, Xiamen, Fu Jian, China. Electronic address:
Objective: This study aims to elucidate the anatomical principles governing the surrounding venous structures (VS) of the horizontal part of the third segment of the vertebral artery (V3h) and develop a safe and bloodless surgical technique for exposing V3h.
Methods: This study used ten formalin-infused cadaveric head specimens. The dissections were performed stepwise to simulate the far lateral approach process, exposing the V3h with a novel technique.
Int J Impot Res
December 2024
Guy's and St Thomas' NHS Foundation Trust, London, UK.
Sleep Related Painful Erections (SRPE) are parasomnias exclusive to Rapid Eye Movement (REM) sleep, causing sleep disturbances, daytime fatigue, and impaired quality of life. Due to a lack of standardized management, we developed a diagnostic and treatment pathway for this rare condition at our institution. Patients diagnosed with SRPE from 2017-2024 by strict criteria were recruited into our novel pathway.
View Article and Find Full Text PDFAngew Chem Int Ed Engl
December 2024
Hubei University, School of Materials Science and Engineering, 368, Youyi Street, 430062, Wuhan, CHINA.
Polynuclear Au(I) cluster photocatalysts, known for their high activity and stability, hold substantial potential in organic synthetic chemistry. This study synthesized two Au(I) supramolecular cluster catalysts with different nuclearities: a tetranuclear cluster, C1 ([(dppmAu2)2L1]•PF6-), and a hexadecanuclear cluster, C2 [(dppmAu2)6(Au4)(L1)4]•4PF6-, through a multicomponent stepwise self-assembly approach. Both cluster structures feature aurophilicity interaction motifs that endow them with exceptional photocatalytic performance, exhibiting optical band gaps of 2.
View Article and Find Full Text PDFAngew Chem Int Ed Engl
December 2024
Sun Yat-sen University - Shenzhen Campus, Schoolof Materials, Shenzhen, Guangdong 518107, P. R. China, 518000, Shenzhen, CHINA.
Morphology control of the photoactive layer is crucial for achieving high-performance organic solar cells (OSCs), yet it remains a significant challenge in this field. One effective approach is the additive strategy, which fine-tunes the morphology of the photoactive layer. However, the underlying mechanisms governing the impact of different types of additives from liquid, solid, to volatile solid, on the bulk heterojunction morphology and device performance are not fully understood.
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