FUNCTIONAL-ANALYSIS OF BOX-II MUTATIONS IN YEAST SITE-SPECIFIC RECOMBINASES FLP AND R - SIGNIFICANCE OF AMINO-ACID CONSERVATION WITHIN THE INT FAMILY AND THE YEAST SUBFAMILY

被引:24
作者
LEE, J
SERRE, MC
YANG, SH
WHANG, I
ARAKI, H
OSHIMA, Y
JAYARAM, M
机构
[1] UNIV TEXAS,DEPT MICROBIOL,AUSTIN,TX 78712
[2] OSAKA UNIV,FAC ENGN,DEPT BIOTECHNOL,SUITA,OSAKA 565,JAPAN
关键词
SITE-SPECIFIC RECOMBINATION; STEP-ARREST MUTANTS; HALF-SITE RECOMBINATION; COMPLEMENTATION; RECOMBINATION MECHANISM;
D O I
10.1016/0022-2836(92)90317-D
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 site-specific recombinases Flp and R from Saccharomyces cerevisiae and Zygosaccharomyces rouxii, respectively, are related proteins that share approximately 30% amino acid matches. They exhibit a common reaction mechanism that appears to be conserved within the larger Integrase family of site-specific recombinases. Two regions of the proteins, designated as Box I and Box II, harbor, in addition to amino acid conservation, a significantly high degree of nucleotide sequence homology within their coding segments. Box II also contains two amino acids, a histidine and an arginine, that are invariant throughout the Int family. We have performed functional analysis of Flp and R variants carrying point mutations within the Box II segment. Several positions within Box II can tolerate substitutions with no effect, or only modest effects on recombination. Alterations of the Int family residues, His305 and Arg3O8, in the R protein lead to the arrest of recombination at the strand cleavage or the strand exchange step. This is very similar to previously observed "step-arrest" phenotypes in Flp variants altered at these positions and has strong implications for the catalytic mechanism of recombination. Flp and R variants at His305 and His309 can be complemented in half-site strand transfer by a corresponding Tyr343 to phenylalanine variant. In contrast to Arg308 Flp variants, which are efficiently complemented in half-site strand transfer by Flp(Y343F), no strong complementation has been observed between Arg308 variants of R and R (Y343F). © 1992.
引用
收藏
页码:1091 / 1103
页数:13
相关论文
共 26 条
[1]   EVIDENCE FOR A 2ND CONSERVED ARGININE RESIDUE IN THE INTEGRASE FAMILY OF RECOMBINATION PROTEINS [J].
ABREMSKI, KE ;
HOESS, RH .
PROTEIN ENGINEERING, 1992, 5 (01) :87-91
[2]   SITE-SPECIFIC RECOMBINASE, R, ENCODED BY YEAST PLASMID PSR1 [J].
ARAKI, H ;
NAKANISHI, N ;
EVANS, BR ;
MATSUZAKI, H ;
JAYARAM, M ;
OSHIMA, Y .
JOURNAL OF MOLECULAR BIOLOGY, 1992, 225 (01) :25-37
[3]   THE INTEGRASE FAMILY OF SITE-SPECIFIC RECOMBINASES - REGIONAL SIMILARITIES AND GLOBAL DIVERSITY [J].
ARGOS, P ;
LANDY, A ;
ABREMSKI, K ;
EGAN, JB ;
HAGGARDLJUNGQUIST, E ;
HOESS, RH ;
KAHN, ML ;
KALIONIS, B ;
NARAYANA, SVL ;
PIERSON, LS ;
STERNBERG, N ;
LEONG, JM .
EMBO JOURNAL, 1986, 5 (02) :433-440
[4]   DEOXYNUCLEOSIDE PHOSPHORAMIDITES - A NEW CLASS OF KEY INTERMEDIATES FOR DEOXYPOLYNUCLEOTIDE SYNTHESIS [J].
BEAUCAGE, SL ;
CARUTHERS, MH .
TETRAHEDRON LETTERS, 1981, 22 (20) :1859-1862
[5]   TYR60 VARIANTS OF FLP RECOMBINASE GENERATE CONFORMATIONALLY ALTERED PROTEIN DNA COMPLEXES - DIFFERENTIAL ACTIVITY IN FULL-SITE AND HALF-SITE RECOMBINATIONS [J].
CHEN, JW ;
EVANS, BR ;
ZHENG, L ;
JAYARAM, M .
JOURNAL OF MOLECULAR BIOLOGY, 1991, 218 (01) :107-118
[6]   DOMAIN OF A YEAST SITE-SPECIFIC RECOMBINASE (FLP) THAT RECOGNIZES ITS TARGET SITE [J].
CHEN, JW ;
EVANS, BR ;
YANG, SH ;
TEPLOW, DB ;
JAYARAM, M .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1991, 88 (14) :5944-5948
[7]   FUNCTIONAL-ANALYSIS OF BOX-I MUTATIONS IN YEAST SITE-SPECIFIC RECOMBINASE-FLP AND RECOMBINASE-R - PAIRWISE COMPLEMENTATION WITH RECOMBINASE VARIANTS LACKING THE ACTIVE-SITE TYROSINE [J].
CHEN, JW ;
EVANS, BR ;
YANG, SH ;
ARAKI, H ;
OSHIMA, Y ;
JAYARAM, M .
MOLECULAR AND CELLULAR BIOLOGY, 1992, 12 (09) :3757-3765
[8]   DNA CLEAVAGE IN TRANS BY THE ACTIVE-SITE TYROSINE DURING FLP RECOMBINATION - SWITCHING PROTEIN PARTNERS BEFORE EXCHANGING STRANDS [J].
CHEN, JW ;
LEE, J ;
JAYARAM, M .
CELL, 1992, 69 (04) :647-658
[9]  
Cox M. M., 1989, MOBILE DNA, P661
[10]  
EVANS BR, 1990, J BIOL CHEM, V265, P18504