TRPC5 channel is a nonselective cation channel that participates in diverse physiological processes. TRPC5 inhibitors show promise in the treatment of anxiety disorder, depression, and kidney disease. However, the binding sites and inhibitory mechanism of TRPC5 inhibitors remain elusive. Here, we present the cryo-EM structures of human TRPC5 in complex with two distinct inhibitors, namely clemizole and HC-070, to the resolution of 2.7 Å. The structures reveal that clemizole binds inside the voltage sensor-like domain of each subunit. In contrast, HC-070 is wedged between adjacent subunits and replaces the glycerol group of a putative diacylglycerol molecule near the extracellular side. Moreover, we found mutations in the inhibitor binding pockets altered the potency of inhibitors. These structures suggest that both clemizole and HC-070 exert the inhibitory functions by stabilizing the ion channel in a nonconductive closed state. These results pave the way for further design and optimization of inhibitors targeting human TRPC5.
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http://dx.doi.org/10.7554/eLife.63429 | DOI Listing |
Bioorg Chem
January 2025
School of Chinese Materia Medica, Nanjing University of Chinese Medicine, Nanjing 210023 China; State Key Laboratory of Drug Research, Shanghai Institute of Materia Medica, Chinese Academy of Sciences, Shanghai 201203 China; University of the Chinese Academy of Sciences, Beijing 100049 China; National Clinical Research Center for Aging and Medicine, Huashan Hospital, Fudan University, Shanghai 200040 China. Electronic address:
The TRPC5 channel plays an important role in regulating various physiological processes, which is related to various human diseases, especially psychiatric and kidney diseases. Although the TRPC5 channel is one of the essential potential target, no drugs against TRPC5 channels have been granted in the market to date. In this study, based on the structure of hit compound ph1, we further synthesied 49 compounds of novel quinazolinone and heterocyclic fusion pyrimidinone derivatives, and their activities were evaluated by electrophysiological assays.
View Article and Find Full Text PDFCells
December 2024
Department of Anatomy, Cell Biology & Physiology, Indiana University School of Medicine, Indianapolis, IN 46202, USA.
Background: TRPC5 proteins form plasma membrane cation channels and are expressed in the nervous and cardiovascular systems. TRPC5 activation leads to cell depolarization and increases neuronal excitability, whereas a homologous TRPC1 inhibits TRPC5 function via heteromerization. The mechanism underlying the inhibitory effect of TRPC1 in TRPC5/TRPC1 heteromers remains unknown.
View Article and Find Full Text PDFEMBO J
December 2024
Department of Drug Science, Lab of Cell Physiology and Molecular Neuroscience, University of Torino, Torino, Italy.
Regulation of glucose levels during insulin-evoked hypoglycemia is impaired in patients with diabetes and can lead to a condition called hypoglycemia-associated autonomic failure (HAAF). The underlying mechanism of the reduced sympathoadrenal response in HAAF patients to counteract hypoglycemia is not yet clarified. In this issue of , Bröker-Lai et al, show that mice lacking TRPC5 channels possess an impaired response to insulin-induced hypoglycemia similar to humans with HAAF.
View Article and Find Full Text PDFFront Physiol
September 2024
Department of Physiology and Biomedical Sciences, Seoul National University College of Medicine, Seoul, Republic of Korea.
Transient receptor potential canonical (TRPC)5 channel is a non-selective cation channel that plays a significant role in membrane depolarization and calcium influx. TRPC5 not only forms homotetramers itself but also heterotetramers with TRPC1. However, accurately testing and confirming these heterotetrameric channels at specific ratios has proven challenging.
View Article and Find Full Text PDFPharmacol Ther
November 2024
Department of Anesthesiology, Friedrich Alexander Universität Erlangen-Nürnberg, Erlangen, Germany. Electronic address:
The transient receptor potential canonical (TRPC) channels are a group of highly homologous nonselective cation channels from the larger TRP channel family. They have the ability to form homo- and heteromers with varying degrees of calcium (Ca) permeability and signalling properties. TRPC5 is the one cold-sensitive among them and likewise facilitates the influx of extracellular Ca into cells to modulate neuronal depolarization and integrate various intracellular signalling pathways.
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