μ-Conotoxins Targeting the Human Voltage-Gated Sodium Channel Subtype NaV1.7

被引:4
|
作者
McMahon, Kirsten L. [1 ]
Tran, Hue N. T. [1 ]
Deuis, Jennifer R. [1 ]
Craik, David J. [1 ]
Vetter, Irina [1 ,2 ]
Schroeder, Christina, I [1 ,3 ,4 ]
机构
[1] Univ Queensland, Inst Mol Biosci, Brisbane, Qld 4072, Australia
[2] Univ Queensland, Sch Pharm, Woolloongabba, Qld 4102, Australia
[3] NCI, Ctr Canc Res, NIH, Frederick, MD 21702 USA
[4] Genentech Inc, Dept Peptide Therapeut, 1 DNA Way, San Francisco, CA 94080 USA
基金
澳大利亚国家健康与医学研究理事会; 英国医学研究理事会; 澳大利亚研究理事会;
关键词
mu-conotoxins; voltage-gated sodium channels; structure-activity relationships; disulfide-rich peptides; Cys frameworks; POTENT INHIBITOR; SKELETAL-MUSCLE; MOLECULAR-BASIS; AMINO-ACIDS; BLOCK; KIIIA; DESIGN; CONOPEPTIDE; SPECIFICITY; PEPTIDES;
D O I
10.3390/toxins14090600
中图分类号
TS2 [食品工业];
学科分类号
0832 ;
摘要
mu-Conotoxins are small, potent, peptide voltage-gated sodium (Na-V) channel inhibitors characterised by a conserved cysteine framework. Despite promising in vivo studies indicating analgesic potential of these compounds, selectivity towards the therapeutically relevant subtype Na(V)1.7 has so far been limited. We recently identified a novel mu-conotoxin, SxIIIC, which potently inhibits human Na(V)1.7 (hNa(V)1.7). SxIIIC has high sequence homology with other mu-conotoxins, including SmIIIA and KIIIA, yet shows different Na-V channel selectivity for mammalian subtypes. Here, we evaluated and compared the inhibitory potency of mu-conotoxins SxIIIC, SmIIIA and KIIIA at hNa(V) channels by whole-cell patch-clamp electrophysiology and discovered that these three closely related mu-conotoxins display unique selectivity profiles with significant variations in inhibitory potency at hNa(V)1.7. Analysis of other mu-conotoxins at hNa(V)1.7 shows that only a limited number are capable of inhibition at this subtype and that differences between the number of residues in loop 3 appear to influence the ability of mu-conotoxins to inhibit hNa(V)1.7. Through mutagenesis studies, we confirmed that charged residues in this region also affect the selectivity for hNa(V)1.4. Comparison of mu-conotoxin NMR solution structures identified differences that may contribute to the variance in hNa(V)1.7 inhibition and validated the role of the loop 1 extension in SxIIIC for improving potency at hNa(V)1.7, when compared to KIIIA. This work could assist in designing mu-conotoxin derivatives specific for hNa(V)1.7.
引用
收藏
页数:16
相关论文
共 50 条
  • [41] Voltage-Gated Sodium Channel β1 Gene: An Overview
    Al-Ward, Hisham
    Liu, Chun-Yang
    Liu, Ning
    Shaher, Fahmi
    Al-Nusaif, Murad
    Mao, Jing
    Xu, Hui
    HUMAN HEREDITY, 2021, 85 (3-6) : 101 - 109
  • [42] The voltage-gated sodium channel Nav1.8 blocker A-803467 inhibits cough in the guinea pig
    Brozmanova, M.
    Svajdova, S.
    Pavelkova, N.
    Muroi, Y.
    Undem, B. J.
    Kollarik, M.
    RESPIRATORY PHYSIOLOGY & NEUROBIOLOGY, 2019, 270
  • [43] Systematic Study of Binding of μ-Conotoxins to the Sodium Channel NaV1.4
    Mahdavi, Somayeh
    Kuyucak, Serdar
    TOXINS, 2014, 6 (12): : 3454 - 3470
  • [44] Interactions of disulfide-deficient selenocysteine analogs of μ-conotoxin BuIIIB with the α-subunit of the voltage-gated sodium channel subtype 1.3
    Green, Brad R.
    Zhang, Min-Min
    Chhabra, Sandeep
    Robinson, Samuel D.
    Wilson, Michael J.
    Redding, Addison
    Olivera, Baldomero M.
    Yoshikami, Doju
    Bulaj, Grzegorz
    Norton, Raymond S.
    FEBS JOURNAL, 2014, 281 (13) : 2885 - 2898
  • [45] Role of hydrophobic residues in the voltage sensors of the voltage-gated sodium channel
    Bendahhou, Saied
    O'Reilly, Andrias O.
    Duclohier, Herve
    BIOCHIMICA ET BIOPHYSICA ACTA-BIOMEMBRANES, 2007, 1768 (06): : 1440 - 1447
  • [46] Effects of acidosis on neuronal voltage-gated sodium channels: Nav1.1 and Nav1.3
    Ghovanloo, Mohammad-Reza
    Peters, Colin H.
    Ruben, Peter C.
    CHANNELS, 2018, 12 (01) : 367 - 377
  • [47] Lacosamide Inhibition of NaV1.7 Channels Depends on its Interaction With the Voltage Sensor Domain and the Channel Pore
    Labau, Julie I. R.
    Alsaloum, Matthew
    Estacion, Mark
    Tanaka, Brian
    Dib-Hajj, Fadia B.
    Lauria, Giuseppe
    Smeets, Hubert J. M.
    Faber, Catharina G.
    Dib-Hajj, Sulayman
    Waxman, Stephen G.
    FRONTIERS IN PHARMACOLOGY, 2021, 12
  • [48] Specificity, affinity and efficacy of iota-conotoxin RXIA, an agonist of voltage-gated sodium channels NaV1.2, 1.6 and 1.7
    Fiedler, Brian
    Zhang, Min-Min
    Buczek, A.
    Azam, Layla
    Bulaj, Grzeorz
    Norton, Raymond S.
    Olivera, Baldomero M.
    Yoshikami, Doju
    BIOCHEMICAL PHARMACOLOGY, 2008, 75 (12) : 2334 - 2344
  • [49] α- And β-subunit composition of voltage-gated sodium channels investigated with μ-conotoxins and the recently discovered μO-conotoxin GVIIJ
    Wilson, Michael J.
    Zhang, Min-Min
    Gajewiak, Joanna
    Azam, Layla
    Rivier, Jean E.
    Olivera, Baldomero M.
    Yoshikami, Doju
    JOURNAL OF NEUROPHYSIOLOGY, 2015, 113 (07) : 2289 - 2301
  • [50] Fenestropathy of Voltage-Gated Sodium Channels
    Gamal El-Din, Tamer M.
    Lenaeus, Michael J.
    FRONTIERS IN PHARMACOLOGY, 2022, 13