USE OF BINDING-ENERGY BY AN RNA ENZYME FOR CATALYSIS BY POSITIONING AND SUBSTRATE DESTABILIZATION

被引:76
|
作者
NARLIKAR, GJ
GOPALAKRISHNAN, V
MCCONNELL, TS
USMAN, N
HERSCHLAG, D
机构
[1] STANFORD UNIV, DEPT CHEM, STANFORD, CA 94305 USA
[2] STANFORD UNIV, DEPT BIOCHEM, STANFORD, CA 94305 USA
[3] UNIV COLORADO, DEPT CHEM & BIOCHEM, BOULDER, CO 80309 USA
[4] RIBOZYME PHARMACEUT INC, BOULDER, CO 80301 USA
关键词
D O I
10.1073/pnas.92.9.3668
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
A fundamental catalytic principle for protein enzymes is the use of binding interactions away from the site of chemical transformation for catalysis, We have compared the binding and reactivity of a series of oligonucleotide substrates and products of the Tetrahymena ribozyme, which catalyzes a site-specific phosphodiester cleavage reaction: CCCUCUpA + G reversible arrow CCCUCU-OH + GpA. The results suggest that this RNA enzyme, like protein enzymes, can utilize binding interactions to achieve substantial catalysis via entropic fixation and substrate destabilization, The stronger binding of the all-ribose oligonucleotide product compared to an analog with a terminal 3' deoxyribose residue gives an effective concentration of 2200 M for the 3' hydroxyl group, a value approaching those obtained with protein enzymes and suggesting the presence of a structurally well defined active site capable of precise positioning. The stabilization from tertiary binding interactions is 40-fold less for the oligonucleotide substrate than the oligonucleotide product, despite the presence of the reactive phosphoryl group in the substrate, This destabilization is accounted for by a model in which tertiary interactions away from the site of bond cleavage position the electron-deficient 3' bridging phosphoryl oxygen of the oligonucleotide substrate next to an electropositive Mg ion. As the phosphodiester bond breaks and this 3' oxygen atom develops a negative charge in the transition state, the weak interaction of the substrate with Mg2+ becomes strong. These strategies of ''substrate destabilization'' and ''transition state stabilization'' provide estimated rate enhancements of approximate to 280- and approximate to 60-fold, respectively, Analogous substrate destabilization by a metal ion or hydrogen bond donor may be used more generally by RNA and protein enzymes catalyzing reactions of phosphate esters.
引用
收藏
页码:3668 / 3672
页数:5
相关论文
共 50 条
  • [41] Binding energy and catalysis by orotidine 5\′-phosphate decarboxylase: The mechanism for activation of the enzyme by dianions
    Richard, John P.
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2011, 242
  • [42] STRUCTURE-ACTIVITY-RELATIONSHIPS IN ENGINEERED PROTEINS - ANALYSIS OF USE OF BINDING-ENERGY BY LINEAR FREE-ENERGY RELATIONSHIPS
    FERSHT, AR
    LEATHERBARROW, RJ
    WELLS, TNC
    BIOCHEMISTRY, 1987, 26 (19) : 6030 - 6038
  • [43] Binding Induced RNA Conformational Changes Control Substrate Recognition and Catalysis by the Thiostrepton Resistance Methyltransferase (Tsr)
    Kuiper, Emily G.
    Conn, Graeme L.
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2014, 289 (38) : 26189 - 26200
  • [44] Evidence for the involvement of Glu-274 in binding and positioning of the substrate guanidinium group for efficient catalysis by Escherichia coli agmatinase
    Carvajal, N
    Orellana, MS
    Salas, M
    Enriquez, P
    Alarcón, R
    López, V
    Uribe, E
    FASEB JOURNAL, 2004, 18 (08): : C237 - C237
  • [45] SUBSTRATE BINDING AND CATALYSIS BY GLUTATHIONE-REDUCTASE AS DERIVED FROM REFINED ENZYME - SUBSTRATE CRYSTAL-STRUCTURES AT 2A RESOLUTION
    KARPLUS, PA
    SCHULZ, GE
    JOURNAL OF MOLECULAR BIOLOGY, 1989, 210 (01) : 163 - 180
  • [46] Thermodynamic analysis of remote substrate binding energy in 3α-hydroxysteroid dehydrogenase/carbonyl reductase catalysis
    Hwang, Chi-Ching
    Chang, Pei-Ru
    Hsieh, Chia-Lin
    Chou, Yun-Hao
    Wang, Tzu-Pin
    CHEMICO-BIOLOGICAL INTERACTIONS, 2019, 302 : 183 - 189
  • [47] ENZYME-SUBSTRATE BINDING REACTION - DETERMINATION OF ACTIVATION-ENERGY AND ENTHALPY CHANGE USING IMMOBILIZED SUBSTRATE
    HAIGIS, E
    HAUPTLE, MT
    GITZELMANN, R
    EXPERIENTIA, 1978, 34 (07): : 910 - 911
  • [48] Strain energy in enzyme-substrate binding: An energetic insight into the flexibility versus rigidity of enzyme active site
    Guo, Xinchun
    He, Deyong
    Huang, Ling
    Liu, Limin
    Liu, Lijun
    Yang, Huijuan
    COMPUTATIONAL AND THEORETICAL CHEMISTRY, 2012, 995 : 17 - 23
  • [49] Crystal structure of the branching enzyme I (BEI) from Oryza sativa L with implications for catalysis and substrate binding
    Noguchi, Junji
    Chaen, Kimiko
    Nhuan Thi Vu
    Akasaka, Taiki
    Shimada, Hiroaki
    Nakashima, Takashi
    Nishi, Aiko
    Satoh, Hikaru
    Omori, Toshiro
    Kakuta, Yoshimitsu
    Kimura, Makoto
    GLYCOBIOLOGY, 2011, 21 (08) : 1108 - 1116
  • [50] CONTRIBUTIONS OF 2'-HYDROXYL GROUPS OF THE RNA SUBSTRATE TO BINDING AND CATALYSIS BY THE TETRAHYMENA RIBOZYME - AN ENERGETIC PICTURE OF AN ACTIVE-SITE COMPOSED OF RNA
    HERSCHLAG, D
    ECKSTEIN, F
    CECH, TR
    BIOCHEMISTRY, 1993, 32 (32) : 8299 - 8311