Programming the rous sarcoma virus protease to cleave new substrate sequences

被引:19
作者
Ridky, TW
BizubBender, D
Cameron, CE
Weber, IT
Wlodawer, A
Copeland, T
Skalka, AM
Leis, J
机构
[1] CASE WESTERN RESERVE UNIV,SCH MED,DEPT BIOCHEM,CLEVELAND,OH 44106
[2] FOX CHASE CANC CTR,INST CANC RES,PHILADELPHIA,PA 19111
[3] THOMAS JEFFERSON UNIV,JEFFERSON CANC INST,PHILADELPHIA,PA 19107
[4] NCI,FREDERICK CANC RES & DEV CTR,MACROMOL STRUCT LAB,ABL BASIC RES PROGRAM,FREDERICK,MD 21702
关键词
D O I
10.1074/jbc.271.18.10538
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
The Rous sarcoma virus protease displays a high degree of specificity and catalyzes the cleavage of only a limited number of amino acid sequences. This specificity is governed by interactions between side chains of eight substrate amino acids and eight corresponding subsite pockets within the homodimeric enzyme, We have examined these complex interactions in order to learn how to introduce changes into the retroviral protease (PR) that direct it to cleave new substrates. Mutant enzymes with altered substrate specificity and wild-type or greater catalytic rates have been constructed previously by substituting single key amino acids in each of the eight enzyme subsites with those residues found in structurally related positions of human immunodeficiency virus (HIV)-1 PR. These individual amino acid substitutions have now been combined into one enzyme, resulting in a highly active mutant Rous sarcoma virus (RSV) protease that displays many characteristics associated with the HIV-1 enzyme, The hybrid protease is capable of catalyzing the cleavage of a set of HIV-1 viral polyprotein substrates that are not recognized by the wild-type RSV enzyme. Additionally, the modified PR is inhibited completely by the HIV-1 PR-specific inhibitor KNI-272 at concentrations where wild-type RSV PR is unaffected, These results indicate that the major determinants that dictate RSV and HIV-1 PR substrate specificity have been identified, Since the viral protease is a homodimer, the rational design of enzymes with altered specificity also requires a thorough understanding of the importance of enzyme symmetry in substrate selection, We demonstrate here that the enzyme homodimer acts symmetrically in substrate selection with each enzyme subunit being capable of recognizing both halves of a peptide substrate equally.
引用
收藏
页码:10538 / 10544
页数:7
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