INTRON-ENCODED ENDONUCLEASE I-TEVI BINDS AS A MONOMER TO EFFECT SEQUENTIAL CLEAVAGE VIA CONFORMATIONAL-CHANGES IN THE TD HOMING SITE

被引:61
作者
MUELLER, JE
SMITH, D
BRYK, M
BELFORT, M
机构
[1] NEW YORK STATE DEPT HLTH,WADSWORTH CTR,MOLEC GENET PROGRAM,ALBANY,NY 12201
[2] NEW YORK STATE DEPT HLTH,SCH PUBL HLTH,ALBANY,NY 12201
关键词
DNA BENDING; DOUBLE-STRAND INTRON ENDONUCLEASE; MINOR GROOVE INTERACTION; NICKED SUBSTRATE; PHAGE T4;
D O I
10.1002/j.1460-2075.1995.tb00259.x
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
I-TevI, the intron-encoded endonuclease from the thymidylate synthase (td) gene of bacteriophage T4, binds its DNA substrate across the minor groove in a sequence-tolerant fashion, We demonstrate here that the 28 kDa I-TevI binds the extensive 37 bp tn homing site as a monomer and significantly distorts its substrate, In situ cleavage assays and phasing analyses indicate that upon nicking the bottom strand of the rd homing site, I-TevI induces a directed bend of 38 degrees towards the major groove near the cleavage site, Formation of the bent I-TeVI-DNA complex is proposed to promote top-strand cleavage of the homing site. Furthermore, reductions in the degree of distortion and in the efficiency of binding base-substitution variants of the fd homing site indicate that sequences flanking the cleavage site contribute to the I-TevI-induced conformational change, These results, combined with genetic, physical and computer-modeling studies, form the basis of a model, wherein I-TevI acts as a hinged monomer to induce a distortion that widens the minor groove, facilitating access to the top-strand cleavage site, The model is compatible with both unmodified DNA and glucosylated hydroxymethylcytosine-containing DNA, as exists in the T-even phages.
引用
收藏
页码:5724 / 5735
页数:12
相关论文
共 54 条
[41]   THE GAMMA-DELTA RESOLVASE BENDS THE RES SITE INTO A RECOMBINOGENIC COMPLEX [J].
SALVO, JJ ;
GRINDLEY, NDF .
EMBO JOURNAL, 1988, 7 (11) :3609-3616
[42]   EFFECTS OF MUTATIONS AT AMINO ACID-61 IN THE ARM OF TF1 ON ITS DNA-BINDING PROPERTIES [J].
SAYRE, MH ;
GEIDUSCHEK, EP .
JOURNAL OF MOLECULAR BIOLOGY, 1990, 216 (04) :819-833
[43]   DNA-BENDING PROPERTIES OF TF1 [J].
SCHNEIDER, GJ ;
SAYRE, MH ;
GEIDUSCHEK, EP .
JOURNAL OF MOLECULAR BIOLOGY, 1991, 221 (03) :777-794
[44]   DNA-BINDING SPECIFICITY OF THE MU NER PROTEIN [J].
STRZELECKA, TE ;
HAYES, JJ ;
CLORE, GM ;
GRONENBORN, AM .
BIOCHEMISTRY, 1995, 34 (09) :2946-2955
[45]   STRUCTURE REFINED TO 2A OF A NICKED DNA OCTANUCLEOTIDE COMPLEX WITH DNASE-I [J].
SUCK, D ;
LAHM, A ;
OEFNER, C .
NATURE, 1988, 332 (6163) :464-468
[46]   STEREOCHEMICAL BASIS OF DNA BENDING BY TRANSCRIPTION FACTORS [J].
SUZUKI, M ;
YAGI, N .
NUCLEIC ACIDS RESEARCH, 1995, 23 (12) :2083-2091
[47]   DISCRIMINATION BETWEEN DNA-SEQUENCES BY THE ECORV RESTRICTION ENDONUCLEASE [J].
TAYLOR, JD ;
HALFORD, SE .
BIOCHEMISTRY, 1989, 28 (15) :6198-6207
[48]   EMPIRICAL ESTIMATION OF PROTEIN-INDUCED DNA BENDING ANGLES - APPLICATIONS TO LAMBDA-SITE-SPECIFIC RECOMBINATION COMPLEXES [J].
THOMPSON, JF ;
LANDY, A .
NUCLEIC ACIDS RESEARCH, 1988, 16 (20) :9687-9705
[49]   MOLECULAR-BASIS OF HUMAN 46X,Y SEX REVERSAL REVEALED FROM THE 3-DIMENSIONAL SOLUTION STRUCTURE OF THE HUMAN SRY-DNA COMPLEX [J].
WERNER, MH ;
RUTH, JR ;
GRONENBORN, AM ;
CLORE, GM .
CELL, 1995, 81 (05) :705-714
[50]   A PROTEIN STRUCTURAL MOTIF THAT BENDS DNA [J].
WHITE, SW ;
APPELT, K ;
WILSON, KS ;
TANAKA, I .
PROTEINS-STRUCTURE FUNCTION AND GENETICS, 1989, 5 (04) :281-288