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Chou, R.

Publications and source records attributed to Chou, R..

3 recordsLinked to original sources

Harnessing Protein Unfolding for Thermosensing: Structural Insights from TRPV3

How proteins sense temperature with high precision is a fundamental biological challenge. Here, we structurally elucidate a dynamics-based mechanism for thermoTRPs, termed suicidal gating, in which extreme thermosensitivity arises from intrinsic instability and concerted protein dynamics, coupling channel opening to partial protein unfolding. Using cryo-EM, we directly capture heat-induced partial unfolding within the channels central pore domain, a structural core of gating. Analysis of mutant structures capturing intermediate activated states reveals no large domain shifts despite high temperature dependence, only subtle interfacial changes between domains. Both mutation and heat treatment consistently impact a critical network of thermolabile "latch" interactions along the S6-TRP helix-proximal N-terminus axis, driving receptor activation from a stable closed structure to progressively decoupled states and eventual disintegration. These findings provide direct structural evidence for a new receptor mechanism and establish a broader paradigm in which distributed structural flexibility, rather than localized dedicated sensors, drives extreme biological functions.

physiology↗

Targeting PIEZO1-TMEM16F Coupling to Mitigate Sickle Cell Disease Complications

A deeper understanding of sickle cell disease (SCD) pathophysiology is critical for identifying novel therapeutic targets. A hallmark of SCD is abnormal phosphatidylserine (PS) exposure on sickle red blood cells (RBCs), which contributes to anemia, thrombosis, and vaso-occlusive crises (VOC). However, the mechanisms underlying this excessive PS exposure remain unclear. Here, we identify TMEM16F, a Ca2+-activated lipid scramblase, as a key mediator of PS exposure downstream of Ca2+ influx through the mechanosensitive channel PIEZO1 in sickle RBCs. Electrophysiology, imaging and flow cytometry reveal that deoxygenation-induced sickling promotes PIEZO1 activation, triggering Ca2+ entry, TMEM16F activation, and PS exposure. This cascade enhances PS+ microparticle release, thrombin generation, and RBC adhesion to endothelial cells. Notably, partial PIEZO1 inhibition with benzbromarone, an anti-gout drug, suppresses these changes. Our findings thus define a previously unrecognized mechanotransduction pathway in sickle RBCs and propose a unique therapeutic strategy to mitigate hypercoagulability and vaso-occlusion associated with SCD. Brief SummaryEnhanced PIEZO1 activation in sickle red blood cells promotes TMEM16F scramblase-mediated phosphatidylserine exposure and subsequent sickle cell disease complications. Disrupting this coupling presents a potential therapeutic strategy.

physiology↗

Protein Dynamics Underlies Strong Temperature Dependence of Heat Receptors

Ion channels are generally allosteric proteins, involving specialized stimulus sensor domains conformationally linked to the gate to drive channel opening. Temperature receptors are a group of ion channels from the transient receptor potential (TRP) family. They exhibit an unprecedentedly strong temperature dependence and are responsible for temperature sensing in mammals. Despite intensive studies, however, the nature of the temperature sensor domain in these channels remains elusive. By direct calorimetry of TRPV1 proteins, we have recently provided a proof of principle that temperature sensing by ion channels may diverge from the conventional allosterity theory; rather it is intimately linked to inherent thermal instability of channel proteins. Here we tackle the generality of the hypothesis and provide key molecular evidences on the coupling of thermal transitions in the channels. We show that while wild-type channels possess a single concerted thermal transition peak, the chimera, in which strong temperature dependence becomes disrupted, results in multi-transition peaks, and the activation enthalpies are accordingly reduced. The data show that the coupling with protein unfolding drives up the energy barrier of activation, leading to a strong temperature dependence of opening. Furthermore, we pinpoint the proximal N-terminus of the channels as a linchpin in coalescing different parts of the channels into concerted activation. Thus, we suggest that coupled interaction networks in proteins underlie the strong temperature dependence of temperature receptors. SignificanceDecoding receptor mechanisms requires understanding receptor activation at molecular levels. Whereas structural studies can unravel critical residues participating in activation, functional measurements are ultimately needed to pinpoint their mechanistic roles. Temperature receptors are gateways to thermosensation and pain. Despite intensive studies, how they detect temperature remains elusive. Here, by directly measuring heat flow in the most temperature-sensitive, high-threshold noxious heat receptor TRPV2, we show that channel activation is accompanied with a heat uptake sufficient to induce protein unfolding. We present molecular evidence that heat activation and unfolding are coupled, and propose a new mechanism based on concerted activation of different parts of channels to drive up temperature sensitivity. Our findings provide a mechanistic framework for understanding thermal biological processes.

biophysics↗