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result(s) for
"Transient Receptor Potential Channels - classification"
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Comparison of transcriptomes from two chemosensory organs in four decapod crustaceans reveals hundreds of candidate chemoreceptor proteins
2020
Crustaceans express genes for at least three classes of putative chemosensory proteins. These are: Ionotropic Receptors (IRs), derived from the heterotetrameric ionotropic glutamate receptors (iGluRs); Transient Receptor Potential (TRP) channels, a diverse set of sensor-channels that include several families of chemoreceptor channels; and Gustatory Receptor Like receptors (GRLs), ionotropic receptors that are homologues of Gustatory Receptors (GRs) of insects and are expressed sparingly in most crustaceans so far studied. IRs are typically numerically the most dominant of these receptor proteins in crustaceans and include two classes: co-receptor IRs, which are necessary for making a functional receptor-channel; and tuning IRs, whose specific combination in the IR subunits in the heterotetramer confers chemical specificity. Previous work showed that the transcriptomes from two major chemosensory organs-the lateral flagellum of the antennule (LF) and the tips of the legs (dactyls)-of the Caribbean spiny lobster Panulirus argus express four co-receptor IRs and over 100 tuning IRs. In this paper, we examined and compared the transcriptomes from the LF and dactyls of P. argus and three other decapod crustaceans-the clawed lobster Homarus americanus, red swamp crayfish Procambarus clarkii, and the blue crab Callinectes sapidus. Each species has at least ca. 100 to 250 IRs, 1 to 4 GRLs, and ca. 15 TRP channels including those shown to be involved in chemoreception in other species. The IRs show different degrees of phylogenetic conservation: some are arthropod-conserved, others are pancrustacean-conserved, others appear to be crustacean-conserved, and some appear to be species-specific. Many IRs appear to be more highly expressed in the LF than dactyl. Our results show that decapod crustaceans express an abundance of genes for chemoreceptor proteins of different types, phylogenetic conservation, and expression patterns. An understanding of their functional roles awaits determining their expression patterns in individual chemosensory neurons and the central projections of those neurons.
Journal Article
Organellar TRP channels
by
Zhang, Xiaoli
,
Hu, Meiqin
,
Yang, Yexin
in
Calcium channels
,
Calcium channels (voltage-gated)
,
Calcium ions
2018
Mammalian transient receptor potential (TRP) channels mediate Ca2+ flux and voltage changes across membranes in response to environmental and cellular signals. At the plasma membrane, sensory TRPs act as neuronal detectors of physical and chemical environmental signals, and receptor-operated (metabotropic) TRPs decode extracellular neuroendocrine cues to control body homeostasis. In intracellular membranes, such as those in lysosomes, organellar TRPs respond to compartment-derived signals to control membrane trafficking, signal transduction, and organelle function. Complementing mouse and human genetics and high-resolution structural approaches, physiological studies employing natural agonists and synthetic inhibitors have become critical in resolving the in vivo functions of metabotropic, sensory, and organellar TRPs.
Journal Article
A Systematical Survey on the TRP Channels Provides New Insight into Its Functional Diversity in Zhikong Scallop (Chlamys farreri)
2021
Transient receptor potential (TRP) channel plays a significant role in mediating various sensory physiological functions. It is widely present in the vertebrate and invertebrate genomes and can be activated by multiple compounds, messenger molecules, temperature, and mechanical stimulation. Mollusks are the second largest phylum of the animal kingdom and are sensitive to environmental factors. However, the molecular underpinnings through which mollusks sense and respond to environmental stimulus are unknown. In this study, we systematically identified and characterized 17 TRP channels (C.FA TRPs, seven subfamilies) in the genome of the Zhikong scallop (Chlamys farreri). All C.FA TRPs had six transmembrane structures (TM1–TM6). The sequences and structural features of C.FA TRPs are highly conserved with TRP channels of other species. Spatiotemporal expression profiling suggested that some C.FA TRPs participated in the early embryonic development of scallops and the sensory process of adult tissues. Notably, the expression of C.FA TRPM3 continuously increased during developmental stages and was highest among all C.FA TRPs. C.FA TRPC-α was specifically expressed in eyes, which may be involved in light transmission of scallop eyes. Under high temperature stress, C.FA TRPA1 and C.FA TRPA1-homolog upregulated significantly, which indicated that the TRPA subfamily is the thermoTRPs channel of scallops. Our results provided the first systematic study of TRP channels in scallops, and the findings will provide a valuable resource for a better understanding of TRP evolution and function in mollusks.
Journal Article
Dissection of the components for PIP₂ activation and thermosensation in TRP channels
by
Brauchi, Sebastian
,
Urbina, Hector
,
Rosenmann, Eduardo
in
Amino Acid Sequence
,
Amino acids
,
Animals
2007
Phosphatidylinositol 4,5-bisphosphate (PIP₂) plays a central role in the activation of several transient receptor potential (TRP) channels. The role of PIP₂ on temperature gating of thermoTRP channels has not been explored in detail, and the process of temperature activation is largely unexplained. In this work, we have exchanged different segments of the C-terminal region between cold-sensitive (TRPM8) and heat-sensitive (TRPV1) channels, trying to understand the role of the segment in PIP₂ and temperature activation. A chimera in which the proximal part of the C-terminal of TRPV1 replaces an equivalent section of TRPM8 C-terminal is activated by PIP₂ and confers the phenotype of heat activation. PIP₂, but not temperature sensitivity, disappears when positively charged residues contained in the exchanged region are neutralized. Shortening the exchanged segment to a length of 11 aa produces voltage-dependent and temperature-insensitive channels. Our findings suggest the existence of different activation domains for temperature, PIP₂, and voltage. We provide an interpretation for channel-PIP₂ interaction using a full-atom molecular model of TRPV1 and PIP₂ docking analysis.
Journal Article
Sensing with TRP channels
by
Voets, Thomas
,
Nilius, Bernd
,
Talavera, Karel
in
Animals
,
Biochemical Engineering
,
Biochemistry
2005
Drosophila melanogaster
flies carrying the
trp
(transient receptor potential) mutation are rapidly blinded by bright light, because of the absence of a Ca
2+
-permeable ion channel in their photoreceptors. The identification of the
trp
gene and the search for homologs in yeast, flies, worms, zebrafish and mammals has led to the discovery of a large superfamily of related cation channels, named TRP channels. Activation of TRP channels is highly sensitive to a variety of chemical and physical stimuli, allowing them to function as dedicated biological sensors that are essential in processes such as vision, taste, tactile sensation and hearing.
Journal Article
Systematic and quantitative mRNA expression analysis of TRP channel genes at the single trigeminal and dorsal root ganglion level in mouse
by
Voets, Thomas
,
Vandewauw, Ine
,
Owsianik, Grzegorz
in
Animal Models
,
Animals
,
Biomedical and Life Sciences
2013
Background
Somatosensory nerve fibres arising from cell bodies within the trigeminal ganglia (TG) in the head and from a string of dorsal root ganglia (DRG) located lateral to the spinal cord convey endogenous and environmental stimuli to the central nervous system. Although several members of the transient receptor potential (TRP) superfamily of cation channels have been implicated in somatosensation, the expression levels of TRP channel genes in the individual sensory ganglia have never been systematically studied.
Results
Here, we used quantitative real-time PCR to analyse and compare mRNA expression of all TRP channels in TG and individual DRGs from 27 anatomically defined segments of the spinal cord of the mouse. At the mRNA level, 17 of the 28 TRP channel genes, TRPA1, TRPC1, TRPC3, TRPC4, TRPC5, TRPM2, TRPM3, TRPM4, TRPM5, TRPM6, TRPM7, TRPM8, TRPV1, TRPV2, TRPV4, TRPML1 and TRPP2, were detectable in every tested ganglion. Notably, four TRP channels, TRPC4, TRPM4, TRPM8 and TRPV1, showed statistically significant variation in mRNA levels between DRGs from different segments, suggesting ganglion-specific regulation of TRP channel gene expression. These ganglion-to-ganglion differences in TRP channel transcript levels may contribute to the variability in sensory responses in functional studies.
Conclusions
We developed, compared and refined techniques to quantitatively analyse the relative mRNA expression of all TRP channel genes at the single ganglion level. This study also provides for the first time a comparative mRNA distribution profile in TG and DRG along the entire vertebral column for the mammalian TRP channel family.
Journal Article
Transient receptor potential (TRP) gene superfamily encoding cation channels
2011
Transient receptor potential (TRP) non-selective cation channels constitute a superfamily, which contains 28 different genes. In mammals, this superfamily is divided into six subfamilies based on differences in amino acid sequence homology between the different gene products. Proteins within a subfamily aggregate to form heteromeric or homomeric tetrameric configurations. These different groupings have very variable permeability ratios for calcium versus sodium ions. TRP expression is widely distributed in neuronal tissues, as well as a host of other tissues, including epithelial and endothelial cells. They are activated by environmental stresses that include tissue injury, changes in temperature, pH and osmolarity, as well as volatile chemicals, cytokines and plant compounds. Their activation induces, via intracellular calcium signalling, a host of responses, including stimulation of cell proliferation, migration, regulatory volume behaviour and the release of a host of cytokines. Their activation is greatly potentiated by phospholipase C (PLC) activation mediated by coupled GTP-binding proteins and tyrosine receptors. In addition to their importance in maintaining tissue homeostasis, some of these responses may involve various underlying diseases. Given the wealth of literature describing the multiple roles of TRP in physiology in a very wide range of different mammalian tissues, this review limits itself to the literature describing the multiple roles of TRP channels in different ocular tissues. Accordingly, their importance to the corneal, trabecular meshwork, lens, ciliary muscle, retinal, microglial and retinal pigment epithelial physiology and pathology is reviewed.
Journal Article
TRP channels in mechanosensation: direct or indirect activation?
by
Christensen, Adam P.
,
Corey, David P.
in
Animal Genetics and Genomics
,
Animals
,
Behavioral Sciences
2007
Key Points
Although many ion channels are implicated in mechanosensation, it is hard to be sure that such channels are directly gated by mechanical force. Criteria that help to establish direct gating include specific tests such as: does mechanosensation involve direct activation of a channel? does the candidate protein participate in mechanical transduction? is the candidate protein mechanically sensitive? is the candidate protein a pore-forming subunit? and is the candidate protein a force-sensing subunit?
Various transient receptor potential (TRP) channels are involved in mechanosensation in non-neural cells — including TRPC1 in oocytes, TRPC3 and TRPC6 in myogenic tone, TRPV1 in bladder, PKD1 and PKD2 in flow-sensing in kidney and TRPV4 in osmosensing. It is difficult to establish direct gating for most of these, partly because the stimuli are slow; evidence suggests that many of them are activated by second messengers.
Forward genetics has revealed a role for TRP channels in
Caenorhabditis elegans
mechanosensation, specifically, for the worm homologues of PKD1 and PKD2 in male sensation of vulva location and for OSM-9 and OCR-2 in nose touch and osmosensation. Remarkably, the vertebrate TRPV4 can rescue mutations in the worm OSM-9, when expressed in worm sensory neurons.
The ability of
Drosophila melanogaster
to respond to painful heat and touch stimuli involves painless, a TRP channel expressed in multidendritic neurons, and TRPN1, a bristle deflection sensor. Bristle deflection almost certainly involves a directly gated channel, which may be TRPN1 itself.
Three TRP channels (TRPN1, Nanchung and Inactive) are required for proper hearing in
Drosophila
, a process that involves mechanosensation of the sound-evoked rotation of the antenna, but it is not clear which is the direct sensor and which have the necessary supporting roles.
A variety of TRP channels that sense sound and head movements are expressed by hair cells of the vertebrate inner ear; these include TRPV4, TRPML3 and TRPA1. There is some evidence that supports a role for each of them in mechanosensation, but there is more evidence that casts doubt on a direct involvement. At present there is no good candidate for the hair-cell transduction channel.
The short latency of the receptor current in vertebrate touch and proprioceptive neurons suggests direct gating of a still unidentified mechanosensory channel. One TRP channel, TRPA1, is involved in sensing painful mechanical stimuli but it may be activated downstream of the true force sensor or simply control the environment of the true transduction channel.
Transient receptor potential (TRP) channels contribute to mechanosensation in several systems, yet direct channel gating by mechanical stimuli has been difficult to prove. Christensen and Corey consider the criteria that aim to establish direct channel gating and apply these to potential mechanosensory TRP channels.
Ion channels of the transient receptor potential (TRP) superfamily are involved in a wide variety of neural signalling processes, most prominently in sensory receptor cells. They are essential for mechanosensation in systems ranging from fruitfly hearing, to nematode touch, to mouse mechanical pain. However, it is unclear in many instances whether a TRP channel directly transduces the mechanical stimulus or is part of a downstream signalling pathway. Here, we propose criteria for establishing direct mechanical activation of ion channels and review these criteria in a number of mechanosensory systems in which TRP channels are involved.
Journal Article
A Forward Genetic Screen and Whole Genome Sequencing Identify Deflagellation Defective Mutants in Chlamydomonas, Including Assignment of ADF1 as a TRP Channel
2016
With rare exception, ciliated cells entering mitosis lose their cilia, thereby freeing basal bodies to serve as centrosomes in the formation of high-fidelity mitotic spindles. Cilia can be lost by shedding or disassembly, but either way, it appears that the final release may be via a coordinated severing of the nine axonemal outer doublet microtubules linking the basal body to the ciliary transition zone. Little is known about the mechanism or regulation of this important process. The stress-induced deflagellation response of Chlamydomonas provides a basis to identifying key players in axonemal severing. In an earlier screen we uncovered multiple alleles for each of three deflagellation genes, ADF1, FA1, and FA2. Products of the two FA genes localize to the site of axonemal severing and encode a scaffolding protein and a member of the NIMA-related family of ciliary-cell cycle kinases. The identity of the ADF1 gene remained elusive. Here, we report a new screen using a mutagenesis that yields point mutations in Chlamydomonas, an enhanced screening methodology, and whole genome sequencing. We isolated numerous new alleles of the three known genes, and one or two alleles each of at least four new genes. We identify ADF1 as a TRP ion channel, which we suggest may reside at the flagellar transition zone.
Journal Article
Molecular Convergence of Infrared Vision in Snakes
2011
It has been discovered that the transient receptor potential ankyrin 1 (TRPA1) proteins of Boidae (boas), Pythonidae (pythons), and Crotalinae (pit vipers) are used to detect infrared radiation, but the molecular mechanism for detecting the infrared radiation is unknown. Here, relating the amino acid substitutions in their TRPA1 proteins and the functional differentiations, we propose that three parallel amino acid changes (L330M, Q391H, and S434T) are responsible for the development of infrared vision in the three groups of snakes. Protein modeling shows that the three amino acid changes alter the structures of the central region of their ankyrin repeats.
Journal Article