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1.
Nat Rev Neurosci ; 23(10): 596-610, 2022 10.
Artigo em Inglês | MEDLINE | ID: mdl-35831443

RESUMO

The perception of nociceptive signals, which are translated into pain, plays a fundamental role in the survival of organisms. Because pain is linked to a negative sensation, animals learn to avoid noxious signals. These signals are detected by receptors, which include some members of the transient receptor potential (TRP) family of ion channels that act as transducers of exogenous and endogenous noxious cues. These proteins have been in the focus of the field of physiology for several years, and much knowledge of how they regulate the function of the cell types and organs where they are expressed has been acquired. The last decade has been especially exciting because the 'resolution revolution' has allowed us to learn the molecular intimacies of TRP channels using cryogenic electron microscopy. These findings, in combination with functional studies, have provided insights into the role played by these channels in the generation and maintenance of pain.


Assuntos
Canais de Potencial de Receptor Transitório , Animais , Dor , Sensação/fisiologia , Canais de Potencial de Receptor Transitório/genética , Canais de Potencial de Receptor Transitório/metabolismo
2.
Annu Rev Physiol ; 85: 293-316, 2023 02 10.
Artigo em Inglês | MEDLINE | ID: mdl-36763971

RESUMO

The ability to detect stimuli from the environment plays a pivotal role in our survival. The molecules that allow the detection of such signals include ion channels, which are proteins expressed in different cells and organs. Among these ion channels, the transient receptor potential (TRP) family responds to the presence of diverse chemicals, temperature, and osmotic changes, among others. This family of ion channels includes the TRPV or vanilloid subfamily whose members serve several physiological functions. Although these proteins have been studied intensively for the last two decades, owing to their structural and functional complexities, a number of controversies regarding their function still remain. Here, we discuss some salient features of their regulation in light of these controversies and outline some of the efforts pushing the field forward.


Assuntos
Canais Iônicos , Canais de Potencial de Receptor Transitório , Humanos , Canais de Potencial de Receptor Transitório/química , Canais de Potencial de Receptor Transitório/metabolismo
3.
J Physiol ; 601(9): 1655-1673, 2023 05.
Artigo em Inglês | MEDLINE | ID: mdl-36625071

RESUMO

The Transient Receptor Potential Vanilloid 4 (TRPV4) channel has been shown to function in many physiological and pathophysiological processes. Despite abundant information on its importance in physiology, very few endogenous agonists for this channel have been described, and very few underlying mechanisms for its activation have been clarified. TRPV4 is expressed by several types of cells, such as vascular endothelial, and skin and lung epithelial cells, where it plays pivotal roles in their function. In the present study, we show that TRPV4 is activated by lysophosphatidic acid (LPA) in both endogenous and heterologous expression systems, pinpointing this molecule as one of the few known endogenous agonists for TRPV4. Importantly, LPA is a bioactive glycerophospholipid, relevant in several physiological conditions, including inflammation and vascular function, where TRPV4 has also been found to be essential. Here we also provide mechanistic details of the activation of TRPV4 by LPA and another glycerophospholipid, lysophosphatidylcholine (LPC), and show that LPA directly interacts with both the N- and C-terminal regions of TRPV4 to activate this channel. Moreover, we show that LPC activates TRPV4 by producing an open state with a different single-channel conductance to that observed with LPA. Our data suggest that the activation of TRPV4 can be finely tuned in response to different endogenous lipids, highlighting this phenomenon as a regulator of cell and organismal physiology. KEY POINTS: The Transient Receptor Potential Vaniloid (TRPV) 4 ion channel is a widely distributed protein with important roles in normal and disease physiology for which few endogenous ligands are known. TRPV4 is activated by a bioactive lipid, lysophosphatidic acid (LPA) 18:1, in a dose-dependent manner, in both a primary and a heterologous expression system. Activation of TRPV4 by LPA18:1 requires residues in the N- and C-termini of the ion channel. Single-channel recordings show that TRPV4 is activated with a decreased current amplitude (conductance) in the presence of lysophosphatidylcholine (LPC) 18:1, while LPA18:1 and GSK101 activate the channel with a larger single-channel amplitude. Distinct single-channel amplitudes produced by LPA18:1 and LPC18:1 could differentially modulate the responses of the cells expressing TRPV4 under different physiological conditions.


Assuntos
Canais de Potencial de Receptor Transitório , Canais de Cátion TRPV/metabolismo , Lisofosfatidilcolinas/farmacologia , Lisofosfolipídeos/farmacologia
4.
Protein Expr Purif ; 201: 106172, 2023 01.
Artigo em Inglês | MEDLINE | ID: mdl-36115641

RESUMO

Heterologous expression systems have been used as a powerful experimental strategy to study the function of many proteins, particularly ion transporters. For this experiment, it is fundamental to prepare an expression vector encoding a protein of interest. However, we encountered problems in vector preparation of the voltage sensor domain (VSD) of murine sperm-specific Na+/H+ exchanger (sNHE) due to its severe toxicity to bacteria. We overcame the problems by insertion of an amber stop codon or a synthetic intron into the coding sequence of the VSD in the expression vectors. Both methods allowed us to express the protein of interest in HEK293 cells (combined with a stop codon suppression system for amber codon). The VSD of mouse sNHE generates voltage-dependent outward ionic currents, which is a probable cause of toxicity to bacteria. We propose these two strategies as practical solutions to study the function of any protein toxic to bacteria.


Assuntos
Prótons , Sêmen , Animais , Bactérias/metabolismo , Códon de Terminação/metabolismo , Células HEK293 , Humanos , Masculino , Camundongos , Sêmen/metabolismo , Sódio/metabolismo , Trocadores de Sódio-Hidrogênio/genética , Trocadores de Sódio-Hidrogênio/metabolismo , Espermatozoides/metabolismo
5.
Proc Natl Acad Sci U S A ; 115(7): E1657-E1666, 2018 02 13.
Artigo em Inglês | MEDLINE | ID: mdl-29378958

RESUMO

The Transient Receptor Potential Vanilloid 1 (TRPV1) ion channel is expressed in nociceptors where, when activated by chemical or thermal stimuli, it functions as an important transducer of painful and itch-related stimuli. Although the interaction of TRPV1 with proteins that regulate its function has been previously explored, their modulation by chaperones has not been elucidated, as is the case for other mammalian TRP channels. Here we show that TRPV1 physically interacts with the Sigma 1 Receptor (Sig-1R), a chaperone that binds progesterone, an antagonist of Sig-1R and an important neurosteroid associated to the modulation of pain. Antagonism of Sig-1R by progesterone results in the down-regulation of TRPV1 expression in the plasma membrane of sensory neurons and, consequently, a decrease in capsaicin-induced nociceptive responses. This is observed both in males treated with a synthetic antagonist of Sig-1R and in pregnant females where progesterone levels are elevated. This constitutes a previously undescribed mechanism by which TRPV1-dependent nociception and pain can be regulated.


Assuntos
Dor/metabolismo , Receptores sigma/metabolismo , Canais de Cátion TRPV/metabolismo , Animais , Capsaicina/metabolismo , Linhagem Celular , Membrana Celular/genética , Membrana Celular/metabolismo , Feminino , Humanos , Masculino , Camundongos , Camundongos Endogâmicos C57BL , Dor/genética , Progesterona/metabolismo , Ligação Proteica , Células Receptoras Sensoriais/metabolismo , Canais de Cátion TRPV/genética , Receptor Sigma-1
6.
Biophys J ; 118(4): 836-845, 2020 02 25.
Artigo em Inglês | MEDLINE | ID: mdl-31757360

RESUMO

The TRPV1 cation nonselective ion channel plays an essential role in thermosensation and perception of other noxious stimuli. TRPV1 can be activated by low extracellular pH, high temperature, or naturally occurring pungent molecules such as allicin, capsaicin, or resiniferatoxin. Its noxious thermal sensitivity makes it an important participant as a thermal sensor in mammals. However, details of the mechanism of channel activation by increases in temperature remain unclear. Here, we used a combination of approaches to try to understand the role of the ankyrin repeat domain (ARD) in channel behavior. First, a computational modeling approach by coarse-grained molecular dynamics simulation of the whole TRPV1 embedded in a phosphatidylcholine and phosphatidylethanolamine membrane provides insight into the dynamics of this channel domain. Global analysis of the structural ensemble shows that the ARD is a region that sustains high fluctuations during dynamics at different temperatures. We then performed biochemical and thermal stability studies of the purified ARD by the means of circular dichroism and tryptophan fluorescence and demonstrate that this region undergoes structural changes at similar temperatures that lead to TRPV1 activation. Our data suggest that the ARD is a dynamic module and that it may participate in controlling the temperature sensitivity of TRPV1.


Assuntos
Repetição de Anquirina , Canais de Cátion TRPV , Animais , Capsaicina , Temperatura Alta , Humanos , Simulação de Dinâmica Molecular , Canais de Cátion TRPV/metabolismo
7.
J Neurophysiol ; 120(3): 1198-1211, 2018 09 01.
Artigo em Inglês | MEDLINE | ID: mdl-29947596

RESUMO

Lysophosphatidic acid (LPA) is a bioactive phospholipid that exhibits a wide array of functions that include regulation of protein synthesis and adequate development of organisms. LPA is present in the membranes of cells and in the serum of several mammals and has also been shown to participate importantly in pathophysiological conditions. For several decades it was known that LPA produces some of its effects in cells through its interaction with specific G protein-coupled receptors, which in turn are responsible for signaling pathways that regulate cellular function. Among the target proteins for LPA receptors are ion channels that modulate diverse aspects of the physiology of cells and organs where they are expressed. However, recent studies have begun to unveil direct effects of LPA on ion channels, highlighting this phospholipid as a direct agonist and adding to the knowledge of the field of lipid-protein interactions. Moreover, the roles of LPA in pathophysiological conditions associated with the function of some ion channels have also begun to be clarified, and molecular mechanisms have been identified. This review focuses on the effects of LPA on ion channel function under normal and pathological conditions and highlights our present knowledge of the mechanisms by which it regulates the function and expression of N- and T-type Ca++ channels; M-type K+ channel and inward rectifier K+ channel subunit 2.1; transient receptor potential (TRP) melastatin 2, TRP vanilloid 1, and TRP ankyrin 1 channels; and TWIK-related K+ channel 1 (TREK-1), TREK-2, TWIK-related spinal cord K+ channel (TRESK), and TWIK-related arachidonic acid-stimulated K+ channel (TRAAK).


Assuntos
Canais Iônicos/metabolismo , Lisofosfolipídeos/metabolismo , Dor/metabolismo , Receptores de Ácidos Lisofosfatídicos/metabolismo , Convulsões/metabolismo , Animais , Humanos , Lisofosfolipídeos/química , Receptores Acoplados a Proteínas G/metabolismo , Transdução de Sinais
8.
J Biol Chem ; 291(43): 22472-22481, 2016 Oct 21.
Artigo em Inglês | MEDLINE | ID: mdl-27587391

RESUMO

The thiazide-sensitive Na-Cl cotransporter (NCC) is the major pathway for salt reabsorption in the mammalian distal convoluted tubule. NCC plays a key role in the regulation of blood pressure. Its inhibition with thiazides constitutes the primary baseline therapy for arterial hypertension. However, the thiazide-binding site in NCC is unknown. Mammals have only one gene encoding for NCC. The eel, however, contains a duplicate gene. NCCα is an ortholog of mammalian NCC and is expressed in the kidney. NCCß is present in the apical membrane of the rectum. Here we cloned and functionally characterized NCCß from the European eel. The cRNA encodes a 1043-amino acid membrane protein that, when expressed in Xenopus oocytes, functions as an Na-Cl cotransporter with two major characteristics, making it different from other known NCCs. First, eel NCCß is resistant to thiazides. Single-point mutagenesis supports that the absence of thiazide inhibition is, at least in part, due to the substitution of a conserved serine for a cysteine at position 379. Second, NCCß is not activated by low-chloride hypotonic stress, although the unique Ste20-related proline alanine-rich kinase (SPAK) binding site in the amino-terminal domain is conserved. Thus, NCCß exhibits significant functional differences from NCCs that could be helpful in defining several aspects of the structure-function relationship of this important cotransporter.


Assuntos
Resistência a Medicamentos/efeitos dos fármacos , Enguias/metabolismo , Proteínas de Peixes/metabolismo , Inibidores de Simportadores de Cloreto de Sódio/farmacologia , Simportadores de Cloreto de Sódio/metabolismo , Animais , Enguias/genética , Proteínas de Peixes/genética , Humanos , Oócitos , Ratos , Simportadores de Cloreto de Sódio/genética , Xenopus laevis
10.
J Biol Chem ; 288(41): 29506-17, 2013 Oct 11.
Artigo em Inglês | MEDLINE | ID: mdl-23965996

RESUMO

The transient receptor potential vanilloid 1 ion channel is responsible for the perception of high temperatures and low extracellular pH, and it is also involved in the response to some pungent compounds. Importantly, it is also associated with the perception of pain and noxious stimuli. Here, we attempt to discern the molecular organization and location of the N and C termini of the transient receptor potential vanilloid 1 ion channel by measuring FRET between genetically attached enhanced yellow and cyan fluorescent protein to the N or C terminus of the channel protein, expressed in transfected HEK 293 cells or Xenopus laevis oocytes. The static measurements of the domain organization were mapped into an available cryo-electron microscopy density of the channel with good agreement. These measurements also provide novel insights into the organization of terminal domains and their proximity to the plasma membrane.


Assuntos
Membrana Celular/fisiologia , Transferência Ressonante de Energia de Fluorescência/métodos , Ativação do Canal Iônico/fisiologia , Canais de Cátion TRPV/metabolismo , Algoritmos , Animais , Membrana Celular/química , Membrana Celular/ultraestrutura , Microscopia Crioeletrônica , Feminino , Células HEK293 , Humanos , Cinética , Proteínas Luminescentes/genética , Proteínas Luminescentes/metabolismo , Potenciais da Membrana/fisiologia , Modelos Moleculares , Oócitos/metabolismo , Oócitos/fisiologia , Técnicas de Patch-Clamp , Multimerização Proteica , Estrutura Terciária de Proteína , Ratos , Canais de Cátion TRPV/química , Canais de Cátion TRPV/genética , Xenopus laevis
11.
Curr Top Membr ; 74: 1-17, 2014.
Artigo em Inglês | MEDLINE | ID: mdl-25366231

RESUMO

Temperature is one of the key parameters that controlled the origin and evolution of life on earth and it continues to be a principal regulator of the functions of organisms. Some aspects of the response of simple and complex organisms to temperature variations are encoded in the physical properties of the cell components, with the all-important plasma membrane playing a principal role. Other responses to temperature are more specific and through evolution, specialized receptors with particular temperature sensitivities have appeared to mediate this signaling. While some of these receptors are ancient and can be found in very primitive organisms, it seems that the mechanisms used by prokaryotes and eukaryotes are very different, indicating that temperature sensitivity has evolved in more than one occasion during evolution.


Assuntos
Membrana Celular/metabolismo , Sensação Térmica , Animais , Membrana Celular/efeitos da radiação , Eletricidade , Raios Infravermelhos , Canais Iônicos/metabolismo , Fluidez de Membrana/efeitos da radiação
12.
J Gen Physiol ; 156(1)2024 Jan 01.
Artigo em Inglês | MEDLINE | ID: mdl-38055192

RESUMO

The transient receptor vanilloid 1 (TRPV1) is a non-selective ion channel, which is activated by several chemical ligands and heat. We have previously shown that activation of TRPV1 by different ligands results in single-channel openings with different conductance, suggesting that the selectivity filter is highly dynamic. TRPV1 is weakly voltage dependent; here, we sought to explore whether the permeation of different monovalent ions could influence the voltage dependence of this ion channel. By using single-channel recordings, we show that TRPV1 channels undergo rapid transitions to closed states that are directly connected to the open state, which may result from structural fluctuations of their selectivity filter. Moreover, we demonstrate that the rates of these transitions are influenced by the permeant ion, suggesting that ion permeation regulates the voltage dependence of these channels. Our data could be the basis for more detailed MD simulations exploring the permeation mechanism and how the occupancy of different ions alters the three-dimensional structure of the pore of TRPV1 channels.


Assuntos
Canais de Cátion TRPV , Cátions , Canais de Cátion TRPV/fisiologia
13.
Biophys J ; 104(10): 2160-9, 2013 May 21.
Artigo em Inglês | MEDLINE | ID: mdl-23708356

RESUMO

Thermo-transient receptor potential channels display outstanding temperature sensitivity and can be directly gated by low or high temperature, giving rise to cold- and heat-activated currents. These constitute the molecular basis for the detection of changes in ambient temperature by sensory neurons in animals. The mechanism that underlies the temperature sensitivity in thermo-transient receptor potential channels remains unknown, but has been associated with large changes in standard-state enthalpy (ΔH(o)) and entropy (ΔS(o)) upon channel gating. The magnitude, sign, and temperature dependence of ΔH(o) and ΔS(o), the last given by an associated change in heat capacity (ΔCp), can determine a channel's temperature sensitivity and whether it is activated by cooling, heating, or both, if ΔCp makes an important contribution. We show that in the presence of allosteric gating, other parameters, besides ΔH(o) and ΔS(o), including the gating equilibrium constant, the strength- and temperature dependence of the coupling between gating and the temperature-sensitive transitions, as well as the ΔH(o)/ΔS(o) ratio associated with them, can also determine a channel's temperature-dependent activity, and even give rise to channels that respond to both cooling and heating in a ΔCp-independent manner.


Assuntos
Ativação do Canal Iônico , Canais de Potencial de Receptor Transitório/química , Regulação Alostérica , Animais , Simulação por Computador , Entropia , Células HEK293 , Humanos , Cinética , Temperatura
14.
Nat Chem Biol ; 8(1): 78-85, 2011 Nov 20.
Artigo em Inglês | MEDLINE | ID: mdl-22101604

RESUMO

Since 1992, there has been growing evidence that the bioactive phospholipid lysophosphatidic acid (LPA), whose amounts are increased upon tissue injury, activates primary nociceptors resulting in neuropathic pain. The TRPV1 ion channel is expressed in primary afferent nociceptors and is activated by physical and chemical stimuli. Here we show that in control mice LPA produces acute pain-like behaviors, which are substantially reduced in Trpv1-null animals. Our data also demonstrate that LPA activates TRPV1 through a unique mechanism that is independent of G protein-coupled receptors, contrary to what has been widely shown for other ion channels, by directly interacting with the C terminus of the channel. We conclude that TRPV1 is a direct molecular target of the pain-producing molecule LPA and that this constitutes, to our knowledge, the first example of LPA binding directly to an ion channel to acutely regulate its function.


Assuntos
Lisofosfolipídeos/metabolismo , Canais de Cátion TRPV/metabolismo , Animais , Sítios de Ligação , Camundongos , Camundongos Endogâmicos C57BL , Dor/metabolismo , Receptores de Ácidos Lisofosfatídicos/metabolismo , Canais de Cátion TRPV/deficiência
15.
Elife ; 122023 01 25.
Artigo em Inglês | MEDLINE | ID: mdl-36695566

RESUMO

Voltage-dependent gating of the voltage-gated proton channels (HV1) remains poorly understood, partly because of the difficulty of obtaining direct measurements of voltage sensor movement in the form of gating currents. To circumvent this problem, we have implemented patch-clamp fluorometry in combination with the incorporation of the fluorescent non-canonical amino acid Anap to monitor channel opening and movement of the S4 segment. Simultaneous recording of currents and fluorescence signals allows for direct correlation of these parameters and investigation of their dependence on voltage and the pH gradient (ΔpH). We present data that indicate that Anap incorporated in the S4 helix is quenched by an aromatic residue located in the S2 helix and that motion of the S4 relative to this quencher is responsible for fluorescence increases upon depolarization. The kinetics of the fluorescence signal reveal the existence of a very slow transition in the deactivation pathway, which seems to be singularly regulated by ΔpH. Our experiments also suggest that the voltage sensor can move after channel opening and that the absolute value of the pH can influence the channel opening step. These results shed light on the complexities of voltage-dependent opening of human HV1 channels.


Assuntos
Ativação do Canal Iônico , Prótons , Humanos , Ativação do Canal Iônico/fisiologia , Aminoácidos
16.
Life Sci Alliance ; 6(3)2023 03.
Artigo em Inglês | MEDLINE | ID: mdl-36549871

RESUMO

The transient receptor potential vanilloid 4 (TRPV4) ion channel is present in different tissues including those of the airways. This channel is activated in response to stimuli such as changes in temperature, hypoosmotic conditions, mechanical stress, and chemicals from plants, lipids, and others. TRPV4's overactivity and/or dysfunction has been associated with several diseases, such as skeletal dysplasias, neuromuscular disorders, and lung pathologies such as asthma and cardiogenic lung edema and COVID-19-related respiratory malfunction. TRPV4 antagonists and blockers have been described; nonetheless, the mechanisms involved in achieving inhibition of the channel remain scarce, and the search for safe use of these molecules in humans continues. Here, we show that the widely used bronchodilator salbutamol and other ligands of ß-adrenergic receptors inhibit TRPV4's activation. We also demonstrate that inhibition of TRPV4 by salbutamol is achieved through interaction with two residues located in the outer region of the pore and that salbutamol leads to channel closing, consistent with an allosteric mechanism. Our study provides molecular insights into the mechanisms that regulate the activity of this physiopathologically important ion channel.


Assuntos
COVID-19 , Canais de Potencial de Receptor Transitório , Humanos , Canais de Cátion TRPV/química , Receptores Adrenérgicos beta , Ligantes , Albuterol/farmacologia
17.
J Biol Chem ; 286(18): 16414-25, 2011 May 06.
Artigo em Inglês | MEDLINE | ID: mdl-21454671

RESUMO

The Kv2.1 channel generates a delayed-rectifier current in neurons and is responsible for modulation of neuronal spike frequency and membrane repolarization in pancreatic ß-cells and cardiomyocytes. As with other tetrameric voltage-activated K(+)-channels, it has been proposed that each of the four Kv2.1 voltage-sensing domains activates independently upon depolarization, leading to a final concerted transition that causes channel opening. The mechanism by which voltage-sensor activation is coupled to the gating of the pore is still not understood. Here we show that the carbon-monoxide releasing molecule 2 (CORM-2) is an allosteric inhibitor of the Kv2.1 channel and that its inhibitory properties derive from the CORM-2 ability to largely reduce the voltage dependence of the opening transition, uncoupling voltage-sensor activation from the concerted opening transition. We additionally demonstrate that CORM-2 modulates Shaker K(+)-channels in a similar manner. Our data suggest that the mechanism of inhibition by CORM-2 may be common to voltage-activated channels and that this compound should be a useful tool for understanding the mechanisms of electromechanical coupling.


Assuntos
Ativação do Canal Iônico/efeitos dos fármacos , Compostos Organometálicos/farmacologia , Bloqueadores dos Canais de Potássio/farmacologia , Canais de Potássio Shab/antagonistas & inibidores , Canais de Potássio Shab/metabolismo , Superfamília Shaker de Canais de Potássio/antagonistas & inibidores , Superfamília Shaker de Canais de Potássio/metabolismo , Regulação Alostérica/efeitos dos fármacos , Regulação Alostérica/fisiologia , Animais , Células Secretoras de Insulina/metabolismo , Ativação do Canal Iônico/fisiologia , Potenciais da Membrana/efeitos dos fármacos , Estrutura Terciária de Proteína , Ratos , Canais de Potássio Shab/genética , Superfamília Shaker de Canais de Potássio/genética , Xenopus laevis
18.
J Biol Chem ; 286(28): 24966-76, 2011 Jul 15.
Artigo em Inglês | MEDLINE | ID: mdl-21555515

RESUMO

The TRPV1 ion channel serves as an integrator of noxious stimuli with its activation linked to pain and neurogenic inflammation. Cholesterol, a major component of cell membranes, modifies the function of several types of ion channels. Here, using measurements of capsaicin-activated currents in excised patches from TRPV1-expressing HEK cells, we show that enrichment with cholesterol, but not its diastereoisomer epicholesterol, markedly decreased wild-type rat TRPV1 currents. Substitutions in the S5 helix, rTRPV1-R579D, and rTRPV1-F582Q, decreased this cholesterol response and rTRPV1-L585I was insensitive to cholesterol addition. Two human TRPV1 variants, with different amino acids at position 585, had different responses to cholesterol with hTRPV1-Ile(585) being insensitive to this molecule. However, hTRPV1-I585L was inhibited by cholesterol addition similar to rTRPV1 with the same S5 sequence. In the absence of capsaicin, cholesterol enrichment also inhibited TRPV1 currents induced by elevated temperature and voltage. These data suggest that there is a cholesterol-binding site in TRPV1 and that the functions of TRPV1 depend on the genetic variant and membrane cholesterol content.


Assuntos
Membrana Celular/metabolismo , Colesterol/metabolismo , Potenciais da Membrana/fisiologia , Canais de Cátion TRPV/metabolismo , Motivos de Aminoácidos , Substituição de Aminoácidos , Animais , Sítios de Ligação , Capsaicina/farmacologia , Membrana Celular/genética , Colesterol/genética , Células HEK293 , Humanos , Potenciais da Membrana/efeitos dos fármacos , Mutação de Sentido Incorreto , Ratos , Fármacos do Sistema Sensorial/farmacologia , Especificidade da Espécie , Canais de Cátion TRPV/genética
19.
Nat Neurosci ; 11(3): 255-61, 2008 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-18297068

RESUMO

Some members of the transient receptor potential (TRP) family of cation channels mediate sensory responses to irritant substances. Although it is well known that TRPA1 channels are activated by pungent compounds found in garlic, onion, mustard and cinnamon extracts, activation of TRPV1 by these extracts remains controversial. Here we establish that TRPV1 is activated by pungent extracts from onion and garlic, as well as by allicin, the active compound in these preparations, and participates together with TRPA1 in the pain-related behavior induced by this compound. We found that in TRPV1 these agents act by covalent modification of cysteine residues. In contrast to TRPA1 channels, modification of a single cysteine located in the N-terminal region of TRPV1 was necessary and sufficient for all the effects we observed. Our findings point to a conserved mechanism of activation in TRP channels, which provides new insights into the molecular basis of noxious stimuli detection.


Assuntos
Allium/química , Dor/induzido quimicamente , Dor/metabolismo , Extratos Vegetais/farmacologia , Canais de Cátion TRPV/efeitos dos fármacos , Canais de Cátion TRPV/metabolismo , Sequência de Aminoácidos/fisiologia , Animais , Linhagem Celular , Sequência Conservada , Cisteína/química , Dissulfetos , Evolução Molecular , Feminino , Alho/química , Humanos , Masculino , Potenciais da Membrana/efeitos dos fármacos , Potenciais da Membrana/genética , Camundongos , Camundongos Endogâmicos C57BL , Camundongos Knockout , Nociceptores/efeitos dos fármacos , Nociceptores/metabolismo , Cebolas/química , Estrutura Terciária de Proteína , Ácidos Sulfínicos/farmacologia , Canais de Cátion TRPV/química
20.
Elife ; 102021 08 06.
Artigo em Inglês | MEDLINE | ID: mdl-34355697

RESUMO

Voltage-dependent proton-permeable channels are membrane proteins mediating a number of important physiological functions. Here we report the presence of a gene encoding Hv1 voltage-dependent, proton-permeable channels in two species of reef-building corals. We performed a characterization of their biophysical properties and found that these channels are fast-activating and modulated by the pH gradient in a distinct manner. The biophysical properties of these novel channels make them interesting model systems. We have also developed an allosteric gating model that provides mechanistic insight into the modulation of voltage-dependence by protons. This work also represents the first functional characterization of any ion channel in scleractinian corals. We discuss the implications of the presence of these channels in the membranes of coral cells in the calcification and pH-regulation processes and possible consequences of ocean acidification related to the function of these channels.


Assuntos
Antozoários/metabolismo , Canais Iônicos/metabolismo , Prótons , Animais , Recifes de Corais , Concentração de Íons de Hidrogênio , Canais Iônicos/genética , Água do Mar/química
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