Contacts between Bacillus subtilis catabolite regulatory protein CcpA and amyO target site

被引:33
作者
Kim, JH [1 ]
Chambliss, GH [1 ]
机构
[1] UNIV WISCONSIN,DEPT BACTERIOL,MADISON,WI 53706
关键词
D O I
10.1093/nar/25.17.3490
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
Catabolite control protein A (CcpA) is a global regulatory protein involved in catabolite repression and glucose activation in Gram-positive bacteria, cis-Acting DNA sequences, catabolite response elements teres), involved in this regulatory system contain a 14 base pair (bp) region of dyad symmetry, CcpA, a repressor of the Lad family, has been shown to bind specifically to cres, To better understand cre recognition by CcpA, we have focused on the interaction between CcpA and the amyE cre, called amyO, which is located at the transcription start site of the cx-amylase gene, DNA-protein complexes were probed with dimethylsulfate (DMS) and N-ethylnitrosourea (EtNU) to identify guanines and phosphates that participate in complex formation. Interaction between amyO and CcpA visualized through methylation protection and interference showed that CcpA contacts guanine residues at the outer bounds of amyO with higher affinity than near the dyad axis, From ethylation interference studies, it was found that CcpA contacts three phosphate groups at each end of amyO, and one or two phosphate groups near the dyad axis, Exonuclease III protection revealed that CcpA protects a 26 bp region centered around the dyad axis of amyO, The isolated N-terminal fragment still specifically bound to the sequence resembling the half sites of the amyO sequence. Considering these findings and the helical structure of B-DNA, our results suggest that each of the two monomers of the CcpA molecule contact the major groove in each half of the region of dyad symmetry and that the contacts are on the same face of the DNA helix, which is typical of bacterial repressor-operator interactions, However, the absence of strong contacts near the dyad axis by CcpA is in contrast to the situation with the gal repressor, another member of the Lad family of repressors.
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页码:3490 / 3496
页数:7
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共 36 条
[1]  
BARKLEY MD, 1978, OPERON, P177
[2]   COMPLEX OF LAC REPRESSOR HEADPIECE WITH A 14 BASE-PAIR LAC OPERATOR FRAGMENT STUDIED BY TWO-DIMENSIONAL NUCLEAR-MAGNETIC-RESONANCE [J].
BOELENS, R ;
SCHEEK, RM ;
VANBOOM, JH ;
KAPTEIN, R .
JOURNAL OF MOLECULAR BIOLOGY, 1987, 193 (01) :213-216
[3]   ROLE OF THE PURINE REPRESSOR HINGE SEQUENCE IN REPRESSOR FUNCTION [J].
CHOI, KY ;
ZALKIN, H .
JOURNAL OF BACTERIOLOGY, 1994, 176 (06) :1767-1772
[4]   STRUCTURE OF THE COMPLEX OF LAC REPRESSOR HEADPIECE AND AN 11 BASE-PAIR HALF-OPERATOR DETERMINED BY NUCLEAR-MAGNETIC-RESONANCE SPECTROSCOPY AND RESTRAINED MOLECULAR-DYNAMICS [J].
CHUPRINA, VP ;
RULLMANN, JAC ;
LAMERICHS, RMJN ;
VANBOOM, JH ;
BOELENS, R ;
KAPTEIN, R .
JOURNAL OF MOLECULAR BIOLOGY, 1993, 234 (02) :446-462
[5]   CATABOLITE REPRESSION OF THE BACILLUS-SUBTILIS GNT OPERON MEDIATED BY THE CCPA PROTEIN [J].
FUJITA, Y ;
MIWA, Y .
JOURNAL OF BACTERIOLOGY, 1994, 176 (02) :511-513
[6]   ESCHERICHIA-COLI LACTOSE REPRESSOR - ISOLATION OF 2 DIFFERENT HOMOGENEOUS HEADPIECES AND EXISTENCE OF A HINGE REGION BETWEEN RESIDUES 50 AND 60 IN REPRESSOR MOLECULE [J].
GEISLER, N ;
WEBER, K .
FEBS LETTERS, 1978, 87 (02) :215-218
[7]   REGULATION OF THE BACILLUS-SUBTILIS ACETATE KINASE GENE BY CCPA [J].
GRUNDY, FJ ;
WATERS, DA ;
ALLEN, SHG ;
HENKIN, TM .
JOURNAL OF BACTERIOLOGY, 1993, 175 (22) :7348-7355
[8]   DNA RECOGNITION BY PROTEINS WITH THE HELIX-TURN-HELIX MOTIF [J].
HARRISON, SC ;
AGGARWAL, AK .
ANNUAL REVIEW OF BIOCHEMISTRY, 1990, 59 :933-969
[9]   CONTINUOUS CULTURE STUDIES ON BIOSYNTHESIS OF ALKALINE PROTEASE, NEUTRAL PROTEASE AND ALPHA-AMYLASE BY BACILLUS-SUBTILIS NRRL-B3411 [J].
HEINEKEN, FG ;
OCONNOR, RJ .
JOURNAL OF GENERAL MICROBIOLOGY, 1972, 73 (NOV) :35-&
[10]   CATABOLITE REPRESSION OF ALPHA-AMYLASE GENE-EXPRESSION IN BACILLUS-SUBTILIS INVOLVES A TRANS-ACTING GENE-PRODUCT HOMOLOGOUS TO THE ESCHERICHIA-COLI LACL AND GALR REPRESSORS [J].
HENKIN, TM ;
GRUNDY, FJ ;
NICHOLSON, WL ;
CHAMBLISS, GH .
MOLECULAR MICROBIOLOGY, 1991, 5 (03) :575-584