ACETYLCHOLINESTERASE AS POLYELECTROLYTE - INTERACTION WITH MULTIVALENT CATIONIC INHIBITORS

被引:4
|
作者
TOUGU, V [1 ]
KESVATERA, T [1 ]
LAANE, A [1 ]
AAVIKSAA, A [1 ]
机构
[1] ESTONIAN ACAD SCI,INST CHEM PHYS & BIOPHYS,TALLINN EE0026,ESTONIA
关键词
ACETYLCHOLINESTERASE; SALT EFFECT; POLYELECTROLYTE;
D O I
10.1016/0304-4165(93)90065-G
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Influence of inorganic salts on the interaction of cobra venom acetylcholinesterase (EC 3.1.1.7) with hexamethonium and gallamine has been studied. The observed negative electrostatic salt effect in the dissociation constant of the enzyme-ligand complex, K(D), has been described by equation pK(D) = pK(D)-degrees - Z(L) psi(+Z) log[Me(+Z)] following from Manning's polyelectrolyte theory, where psi(+Z) is the fraction of condensed counterions Me(+Z) per one negative charge of the polyanionic enzyme. The Z(L)psi(+Z) values for the complex formation between native acetylcholinesterase and hexamethonium (Z(L) = +2) or gallamine (Z(L) = +3) were in quantitative agreement with those predicted by the theory making use of psi+1 = 0.50 found earlier from the influence of salts upon the hydrolysis of acetylcholine by the enzyme. Increase in the number of negative charges in acetylcholinesterase by its modification with pyromellitic, dianhydride resulted in an increase of psi+1 to 0.6. The data show that the influence of salts on the electrostatic contribution to the energy of binding of cationic substrates and inhibitors by acetylcholinesterase can be quantitavely described proceeding from the counterion condensation model of Manning by using only one empirical parameter psi+1 for a given subtype or modified form of the enzyme.
引用
收藏
页码:199 / 203
页数:5
相关论文
共 50 条
  • [31] Effects of Multivalent Counterions on Cylindrical Polyelectrolyte Brushes
    Qu, Li-jian
    Fu, Jie
    ACTA POLYMERICA SINICA, 2015, (02): : 181 - 185
  • [32] Polyelectrolyte brushes in monovalent and multivalent salt solutions
    Guptha, Vijeth Sathyanarayana
    Hsiao, Pai-Yi
    POLYMER, 2014, 55 (12) : 2900 - 2912
  • [33] Structure of Polyelectrolyte Brushes in the Presence of Multivalent Counterions
    Yu, Jing
    Mao, Jun
    Yuan, Guangcui
    Satija, Sushil
    Jiang, Zhang
    Chen, Wei
    Tirrell, Matthew
    MACROMOLECULES, 2016, 49 (15) : 5609 - 5617
  • [34] Effect of multivalent ions on hydrated polyelectrolyte multilayers
    Reid, Dariya
    Kavarthapu, Avanti
    Lutkenhaus, Jodie
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2015, 250
  • [35] ACETYLCHOLINESTERASE INHIBITORS
    NAUMANN, K
    PROGRESS AND PROSPECTS IN INSECT CONTROL, 1989, 43 : 21 - 41
  • [36] Multivalent cationic conduction in crystalline solids
    Köhler, J
    Imanaka, N
    Adachi, GY
    CHEMISTRY OF MATERIALS, 1998, 10 (12) : 3790 - 3812
  • [37] INTERACTION OF NEW ACETYLCHOLINESTERASE INHIBITORS WITH M1 MUSCARINIC RECEPTORS
    Sepsova, V
    Soukup, O.
    Marek, J.
    Karasova, Zdarova J.
    Kuca, K.
    BASIC & CLINICAL PHARMACOLOGY & TOXICOLOGY, 2014, 115 : 267 - 267
  • [38] Cationic cellulose and its interaction with chondroitin sulfate. Rheological properties of the polyelectrolyte complex
    Bierbrauer, Karim L.
    Alasino, Roxana V.
    Strumia, Miriam C.
    Beltramo, Dante M.
    EUROPEAN POLYMER JOURNAL, 2014, 50 : 142 - 149
  • [39] Microgel and coacervate formation in polyelectrolyte/multivalent ion mixtures
    Lapitsky, Yakov
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2017, 254
  • [40] Multivalent Ion-Mediated Polyelectrolyte Association and Structure
    Glisman, Alec
    Mantha, Sriteja
    Yu, Decai
    Wasserman, Eric Paul
    Backer, Scott
    Wang, Zhen-Gang
    MACROMOLECULES, 2024, 57 (05) : 1941 - 1949