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ION CHANNEL DIVERSITY and CHARACTERIZATION
ION CHANNEL DIVERSITY and CHARACTERIZATION Voltage clamp techniques K channels Na channels Ca channels Ligand-gated channels Channelopathies OUTLINE Voltage clamp techniques whole cell, single channel, gating K channels Na channels Ca channels Cardiac AP Na nerve vs cardiac Ica: L vs T type; drugs (BayK, nitrendipine) Ito: inactivation, subtypes Kv1.4, Kv4.2/3, accessory subunits Ikr,Iks, Ikur (drugs dofetilide) IK1 – rectification Cardiac channelopathies (LQTS, SQTS, Brugada syndrome) Ligand-gated channels (AChR) Pancreatic beta cell channels (KATP, ICa) Voltage clamp techniques Capacitance currents (Ic) and ionic currents (Ii) are activated by rapid changes in membrane potential using voltage clamp Variable Vtest can be applied with voltage clamp 2.0 sec 40 duration 20 (10 sec between each pulse) 0 -20 mV test -40 V -60 -80 Simplified schematic of voltage clamp circuit Original patch clamp recordings (1981) Pflugers Arch 391: 85-100 Four modes of patch clamp technique High-throughput, automated patch clamp instruments EVOLUTION and Ion channel diversity Diversity of ion channels Example: nematode C. elegans 73 K channels (20 6 TM, 3 IRK, 50 TWIK) 89 ligand-gated channels (42 ACh, 37 inhibitory GABAA or glutamate, 10 excitatory glutamate) 5 voltage-gated Ca channels 6 chloride channels 24 gap junction channels (connexins) 22 mechanosensitive channels 6 cyclic-nucleotide gated channels 11 TRP-related channels Total: 236 channel subunit genes Origin of ion channel diversity 1) gene duplication & divergence 2) alternative mRNA splicing 3) -
1 TRP About Online
a TR P to Spain International Workshop on Transient Receptor Potential Channels 12th – 14th September 2012 Valencia, Spain www.trp2012.com SCHEDULE and ABSTRACTS BOOK September 2012 Dear participants, Travelling to faraway places in search of spiritual or cultural enlightenment is a millennium old human activity. In their travels, pilgrims brought with them news, foods, music and traditions from distant lands. This friendly exchange led to the cultural enrichment of visitors and the economic flourishing of places, now iconic, such as Rome, Santiago, Jerusalem, Mecca, Varanasi or Angkor Thom. The dissemination of science and technology also benefited greatly from these travels to remote locations. The new pilgrims of the Transient Receptor Potential (TRP) community are also very fond of travelling. In the past years they have gathered at various locations around the globe: Breckenridge (USA), Eilat (Israel), Stockholm (Sweden) and Leuven (Belgium) come to mind. These meetings, each different and exciting, have been very important for the dissemination of TRP research. We are happy to welcome you in Valencia (Spain) for TRP2012. The response to our call has been extraordinary, surpassing all our expectations. The speakers, the modern bards, readily attended our request to communicate their new results. At last count we were already more than 170 participants, many of them students, and most presenting their recent work in the form of posters or short oral presentations. At least 25 countries are sending TRP ambassadors to Valencia, making this a truly international meeting. We like to thank the staff of the Cátedra Santiago Grisolía, Fundación Ciudad de las Artes y las Ciencias for their dedication and excellence in handling the administrative details of the workshop. -
Advancing Basic Pain Research
The Rita Allen Foundation AWARD IN PAIN SCHOLARS: ADVANCING BASIC PAIN RESEARCH AWARD IN PAIN SCHOLARS: ADVANCING BASIC PAIN RESEARCH 1 COVER: Tuan Trang, a 2014 Rita Allen Foundation Scholar, has investigated mechanisms of opioid tolerance and withdrawal. Trang and his research group have found that immune cells in the central nervous system, known as microglia, play a key role in the development of morphine tolerance in an animal model. This image, a compilation of spinal microglia forming a cross section of the lumbar spinal cord, appeared on the cover of the October 18, 2017, issue of The Journal of Neuroscience in conjunction with the research article “Site-Specific Regulation of P2X7 Receptor Function in Microglia Gates Morphine Analgesic Tolerance.” (Image by Heather Leduc-Pessah, Trang Laboratory) A NETWORK OF HOPE Created in 2009 to expand the reach of the Rita Allen Foundation Scholars program, the Award in Pain has now supported 29 pioneering early-career Pain Scholars. Each year, as we welcome our newest class of Scholars, we reflect on the accomplishments of this growing community of researchers and the profound questions that drive them forward to new discoveries. These scientists are leading efforts to understand the complex neurobiological mechanisms that underlie pain—including mapping the neural circuits of chronic pain, defining the Elizabeth G. Christopherson roles of immune signals, and examining the connections President and between pain and itch. Their findings point to approaches for Chief Executive Officer combating opioid tolerance and withdrawal, interventions Rita Allen Foundation to interrupt the transition from acute to chronic pain after injury, and targets for completely novel pain therapies with the potential to improve safety and specificity. -
The Structural Basis for an On–Off Switch Controlling Gβγ-Mediated Inhibition of TRPM3 Channels
The structural basis for an on–off switch controlling Gβγ-mediated inhibition of TRPM3 channels Marc Behrendta,b,1,2, Fabian Grussc,1,3, Raissa Enzerotha,b, Sandeep Demblaa,b, Siyuan Zhaod, Pierre-Antoine Crassousd, Florian Mohra, Mieke Nysc, Nikolaos Lourose, Rodrigo Gallardoe,4, Valentina Zorzinif,5, Doris Wagnera, Anastassios Economou (Αναστάσιoς Οικoνόμoυ)f, Frederic Rousseaue, Joost Schymkowitze, Stephan E. Philippg, Tibor Rohacsd, Chris Ulensc,6, and Johannes Oberwinklera,b,6 aInstitut für Physiologie und Pathophysiologie, Philipps-Universität Marburg, 35037 Marburg, Germany;bCenter for Mind, Brain and Behavior (CMBB), Philipps-Universität Marburg and Justus-Liebig-Universität Giessen, 35032 Marburg, Germany; cLaboratory of Structural Neurobiology, Department of Cellular and Molecular Medicine, KU Leuven, 3000 Leuven, Belgium; dDepartment of Pharmacology, Physiology and Neuroscience, Rutgers New Jersey Medical School, Newark, NJ 07103; eSwitch Laboratory, VIB Center for Brain and Disease Research, Department of Cellular and Molecular Medicine, KU Leuven, 3000 Leuven, Belgium; fLaboratory of Molecular Bacteriology, Department of Microbiology and Immunology, Rega Institute for Medical Research, KU Leuven, 3000 Leuven, Belgium; and gExperimentelle und Klinische Pharmakologie und Toxikologie, Universität des Saarlandes, 66421 Homburg, Germany Edited by László Csanády, Semmelweis University, Budapest, Hungary, and accepted by Editorial Board Member David E. Clapham August 27, 2020 (received for review February 13, 2020) TRPM3 channels play important roles in the detection of noxious also subject to inhibition by activated μORsorotherGPCRs(6, heat and in inflammatory thermal hyperalgesia. The activity of 24–28), a process that has been shown to take place in peripheral these ion channels in somatosensory neurons is tightly regulated by endings of nociceptive neurons since locally applied μOR or μ βγ -opioid receptors through the signaling of G proteins, thereby GABA receptor agonists inhibit TRPM3-dependent pain (24–26). -
Table 2. Significant
Table 2. Significant (Q < 0.05 and |d | > 0.5) transcripts from the meta-analysis Gene Chr Mb Gene Name Affy ProbeSet cDNA_IDs d HAP/LAP d HAP/LAP d d IS Average d Ztest P values Q-value Symbol ID (study #5) 1 2 STS B2m 2 122 beta-2 microglobulin 1452428_a_at AI848245 1.75334941 4 3.2 4 3.2316485 1.07398E-09 5.69E-08 Man2b1 8 84.4 mannosidase 2, alpha B1 1416340_a_at H4049B01 3.75722111 3.87309653 2.1 1.6 2.84852656 5.32443E-07 1.58E-05 1110032A03Rik 9 50.9 RIKEN cDNA 1110032A03 gene 1417211_a_at H4035E05 4 1.66015788 4 1.7 2.82772795 2.94266E-05 0.000527 NA 9 48.5 --- 1456111_at 3.43701477 1.85785922 4 2 2.8237185 9.97969E-08 3.48E-06 Scn4b 9 45.3 Sodium channel, type IV, beta 1434008_at AI844796 3.79536664 1.63774235 3.3 2.3 2.75319499 1.48057E-08 6.21E-07 polypeptide Gadd45gip1 8 84.1 RIKEN cDNA 2310040G17 gene 1417619_at 4 3.38875643 1.4 2 2.69163229 8.84279E-06 0.0001904 BC056474 15 12.1 Mus musculus cDNA clone 1424117_at H3030A06 3.95752801 2.42838452 1.9 2.2 2.62132809 1.3344E-08 5.66E-07 MGC:67360 IMAGE:6823629, complete cds NA 4 153 guanine nucleotide binding protein, 1454696_at -3.46081884 -4 -1.3 -1.6 -2.6026947 8.58458E-05 0.0012617 beta 1 Gnb1 4 153 guanine nucleotide binding protein, 1417432_a_at H3094D02 -3.13334396 -4 -1.6 -1.7 -2.5946297 1.04542E-05 0.0002202 beta 1 Gadd45gip1 8 84.1 RAD23a homolog (S. -
A Computational Approach for Defining a Signature of Β-Cell Golgi Stress in Diabetes Mellitus
Page 1 of 781 Diabetes A Computational Approach for Defining a Signature of β-Cell Golgi Stress in Diabetes Mellitus Robert N. Bone1,6,7, Olufunmilola Oyebamiji2, Sayali Talware2, Sharmila Selvaraj2, Preethi Krishnan3,6, Farooq Syed1,6,7, Huanmei Wu2, Carmella Evans-Molina 1,3,4,5,6,7,8* Departments of 1Pediatrics, 3Medicine, 4Anatomy, Cell Biology & Physiology, 5Biochemistry & Molecular Biology, the 6Center for Diabetes & Metabolic Diseases, and the 7Herman B. Wells Center for Pediatric Research, Indiana University School of Medicine, Indianapolis, IN 46202; 2Department of BioHealth Informatics, Indiana University-Purdue University Indianapolis, Indianapolis, IN, 46202; 8Roudebush VA Medical Center, Indianapolis, IN 46202. *Corresponding Author(s): Carmella Evans-Molina, MD, PhD ([email protected]) Indiana University School of Medicine, 635 Barnhill Drive, MS 2031A, Indianapolis, IN 46202, Telephone: (317) 274-4145, Fax (317) 274-4107 Running Title: Golgi Stress Response in Diabetes Word Count: 4358 Number of Figures: 6 Keywords: Golgi apparatus stress, Islets, β cell, Type 1 diabetes, Type 2 diabetes 1 Diabetes Publish Ahead of Print, published online August 20, 2020 Diabetes Page 2 of 781 ABSTRACT The Golgi apparatus (GA) is an important site of insulin processing and granule maturation, but whether GA organelle dysfunction and GA stress are present in the diabetic β-cell has not been tested. We utilized an informatics-based approach to develop a transcriptional signature of β-cell GA stress using existing RNA sequencing and microarray datasets generated using human islets from donors with diabetes and islets where type 1(T1D) and type 2 diabetes (T2D) had been modeled ex vivo. To narrow our results to GA-specific genes, we applied a filter set of 1,030 genes accepted as GA associated. -
The TRPP2-Dependent Channel of Renal Primary Cilia Also Requires TRPM3
The TRPP2-dependent channel of renal primary cilia also requires TRPM3 Steven J. Kleene1, Brian J. Siroky2, Julio A. Landero-Figueroa3, Bradley P. Dixon4, Nolan W. Pachciarz2, Lu Lu2, and Nancy K. Kleene1 1Department of Pharmacology and Systems Physiology, University of Cincinnati, Cincinnati, Ohio; 2Division of Nephrology and Hypertension, Cincinnati Children's Hospital Medical Center, Cincinnati, Ohio; 3Department of Chemistry, University of Cincinnati, Cincinnati, Ohio; 4Renal Section, Department of Pediatrics, University of Colorado School of Medicine, Aurora, Colorado IntroductIon Primary cilia of renal epithelial cells express several members of the transient receptor potential (TRP) class of cation-conducting channel, including TRPC1, TRPM3, TRPM4, TRPP2, and TRPV4. Some cases of autosomal dominant polycystic kidney disease (ADPKD) are caused by defects in TRPP2 (also called polycystin-2, PC2, or PKD2). A large-conductance, TRPP2- dependent channel in renal cilia has been well described, but it is not known whether this channel includes any other protein subunits. Methods To study this question, we investigated the pharmacology of the TRPP2-dependent channel through electrical recordings from the cilia of mIMCD-3 cells, a murine cell line of renal epithelial origin, results The pharmacology was found to match that of TRPM3 channels. The ciliary TRPP2-dependent channel is known to be activated by depolarization and/or increasing cytoplasmic Ca2+. This activation was greatly enhanced by external pregnenolone sulfate, an agonist of TRPM3 channels. Pregnenolone sulfate did not change the current-voltage relation of the channel. CIM0216, another TRPM3 agonist, modestly increased the activity of the ciliary channels. The channels were effectively blocked by isosakuranetin, a specific inhibitor of TRPM3 channels. -
Src Regulation of Cx43 Phosphorylation and Gap Junction Turnover
biomolecules Article Src Regulation of Cx43 Phosphorylation and Gap Junction Turnover Joell L. Solan 1 and Paul D. Lampe 1,2,* 1 Translational Research Program, Fred Hutchinson Cancer Research Center, Seattle, WA 98109, USA; [email protected] 2 Department of Global Health, Pathobiology Program, University of Washington, Seattle, WA 98109, USA * Correspondence: [email protected] Received: 27 October 2020; Accepted: 22 November 2020; Published: 24 November 2020 Abstract: The gap junction protein Connexin43 (Cx43) is highly regulated by phosphorylation at over a dozen sites by probably at least as many kinases. This Cx43 “kinome” plays an important role in gap junction assembly and turnover. We sought to gain a better understanding of the interrelationship of these phosphorylation events particularly related to src activation and Cx43 turnover. Using state-of-the-art live imaging methods, specific inhibitors and many phosphorylation-status specific antibodies, we found phospho-specific domains in gap junction plaques and show evidence that multiple pathways of disassembly exist and can be regulated at the cellular and subcellular level. We found Src activation promotes formation of connexisomes (internalized gap junctions) in a process involving ERK-mediated phosphorylation of S279/282. Proteasome inhibition dramatically and rapidly restored gap junctions in the presence of Src and led to dramatic changes in the Cx43 phospho-profile including to increased Y247, Y265, S279/282, S365, and S373 phosphorylation. Lysosomal inhibition, on the other hand, nearly eliminated phosphorylation on Y247 and Y265 and reduced S368 and S373 while increasing S279/282 phosphorylation levels. We present a model of gap junction disassembly where multiple modes of disassembly are regulated by phosphorylation and can have differential effects on cellular signaling. -
Interplay Between Gating and Block of Ligand-Gated Ion Channels
brain sciences Review Interplay between Gating and Block of Ligand-Gated Ion Channels Matthew B. Phillips 1,2, Aparna Nigam 1 and Jon W. Johnson 1,2,* 1 Department of Neuroscience, University of Pittsburgh, Pittsburgh, PA 15260, USA; [email protected] (M.B.P.); [email protected] (A.N.) 2 Center for Neuroscience, University of Pittsburgh, Pittsburgh, PA 15260, USA * Correspondence: [email protected]; Tel.: +1-(412)-624-4295 Received: 27 October 2020; Accepted: 26 November 2020; Published: 1 December 2020 Abstract: Drugs that inhibit ion channel function by binding in the channel and preventing current flow, known as channel blockers, can be used as powerful tools for analysis of channel properties. Channel blockers are used to probe both the sophisticated structure and basic biophysical properties of ion channels. Gating, the mechanism that controls the opening and closing of ion channels, can be profoundly influenced by channel blocking drugs. Channel block and gating are reciprocally connected; gating controls access of channel blockers to their binding sites, and channel-blocking drugs can have profound and diverse effects on the rates of gating transitions and on the stability of channel open and closed states. This review synthesizes knowledge of the inherent intertwining of block and gating of excitatory ligand-gated ion channels, with a focus on the utility of channel blockers as analytic probes of ionotropic glutamate receptor channel function. Keywords: ligand-gated ion channel; channel block; channel gating; nicotinic acetylcholine receptor; ionotropic glutamate receptor; AMPA receptor; kainate receptor; NMDA receptor 1. Introduction Neuronal information processing depends on the distribution and properties of the ion channels found in neuronal membranes. -
Submicroscopic Distribution of Ruthenium Red in Human Glioblastoma Multiforme*
I. Neurosurg. / Volume 32 / February, 1970 Submicroscopic Distribution of Ruthenium Red in Human Glioblastoma Multiforme* WILLIAM BONDAREFF, M.D., PH.D. Department of Biostructure,. Northwestern University Medical School, Chicago, Illinois LECTRON microscope studies have forme is well documented,24 and more recent suggested the presence of a poly- electron microscope studies further demon- anionic intercellular substance in strate this complexity.8,11,13,18,19 The ultra- mammalian central nervous tissue. 3-6,~ The structure of the intercellular matrix of glio- composition of this material, which appears blastoma multiforme has not been described to occupy the extracellular space of the previously, but light microscope studies sug- brain, is not known, but chemical studies in- gest an intercellular matrix with staining dicate the presence of an acid mucopolysac- properties similar to those of connective charide. 2~ Its intercellular distribution has tissue. 11 been demonstrated by visualization in the electron microscope of electron-opaque Materials and Methods metal complexes (for example, of phospho- Specimens of nine suspected gliomas were tungstic acid '-'~ and ruthenium redO, but the obtained during operation at the Neurosurgi- relation of these complexes to plasma mem- cal Clinic, Sahlgrenska Hospital, Gothen- branes is obscured in central nervous tissue burg, Sweden. After surgical exposure of the by the sparsity of intercellular space. The di- neoplasm, a specimen was taken by sharp mensions of the extracellular space in brain dissection from an area thought not to be are not known with certainty, and the stain- necrotic. Electrocautery was avoided and able material localized within the intercellu- special care was exercised in the use of lar spaces may be either a plasma mem- clamps and hemostats. -
1 UST College of Science Department of Biological Sciences
UST College of Science Department of Biological Sciences 1 Pharmacogenomics of Myofascial Pain Syndrome An Undergraduate Thesis Submitted to the Department of Biological Sciences College of Science University of Santo Tomas In Partial Fulfillment of the Requirements for the Degree of Bachelor of Science in Biology Jose Marie V. Lazaga Marc Llandro C. Fernandez May 2021 UST College of Science Department of Biological Sciences 2 PANEL APPROVAL SHEET This undergraduate research manuscript entitled: Pharmacogenomics of Myofascial Pain Syndrome prepared and submitted by Jose Marie V. Lazaga and Marc Llandro C. Fernandez, was checked and has complied with the revisions and suggestions requested by panel members after thorough evaluation. This final version of the manuscript is hereby approved and accepted for submission in partial fulfillment of the requirements for the degree of Bachelor of Science in Biology. Noted by: Asst. Prof. Marilyn G. Rimando, PhD Research adviser, Bio/MicroSem 602-603 Approved by: Bio/MicroSem 603 panel member Bio/MicroSem 603 panel member Date: Date: UST College of Science Department of Biological Sciences 3 DECLARATION OF ORIGINALITY We hereby affirm that this submission is our own work and that, to the best of our knowledge and belief, it contains no material previously published or written by another person nor material to which a substantial extent has been accepted for award of any other degree or diploma of a university or other institute of higher learning, except where due acknowledgement is made in the text. We also declare that the intellectual content of this undergraduate research is the product of our work, even though we may have received assistance from others on style, presentation, and language expression. -
Molecular Biology of Neuronal Voltage-Gated Calcium Channels
EXPERIMENTAL and MOLECULAR MEDICINE, Vol. 30, No 3, 123-130, September 1998 Molecular biology of neuronal voltage-gated calcium channels Hemin Chin and is capable of directing expression of calcium channel activity in heterologous expression systems. In the central Genetics Research Branch, Division of Basic and Clinical Neuroscience Research, nervous system (CNS), VGCCs are expressed by five National Institute of Mental Health, National Institutes of Health, Bethesda, Maryland, distinct a1 subunit genes (α1A, α1B, α1C, α1D and α1E), U.S.A. which exhibit further variations due to alternative splicing of the primary RNA transcripts. The α1C and, α1D su b u n i t Accepted 3 August 1998 genes encode dihydropyridine (DHP)-sensitive L-type channels, while the three other α1 subunit genes (α1A, α1B and α1E) give rise to DHP-insensitive P/Q-, N- and R-type channels, respectively. The α2 and δ s u b u n i t proteins are produced by proteolytic cleavage of a larger precursor produced by the single α2-δ gene (Table 1). Introduction Three alternatively spliced variants of the α2 subunit are expressed in a tissue-specific manner. Two variants Calcium ions are important intracellular messengers have been isolated from the brain and skeletal muscle mediating a number of neuronal functions including neuro- (Kim et al., 1992; Williams et al., 1992), and a distinct transmitter release, neurosecretion, neuronal excitation, third splice variant which is expressed in glial cells has survival of eurons, and regulation of gene expression. been recently identified (Puro et al., 1996). In addition to The entry of calcium across the plasmamembrane in the gene encoding the skeletal muscle β subunit, three response to membrane depolarization or activation of 1 other β subunit genes (β2, β3 and β4) have been isolated neurotransmitter receptors represents a major pathway thus far.