DELETION MUTAGENESIS OF TN10 TET REPRESSOR - LOCALIZATION OF REGIONS IMPORTANT FOR DIMERIZATION AND INDUCIBILITY IN-VIVO

被引:16
作者
BERENS, C
PFLEIDERER, K
HELBL, V
HILLEN, W
机构
[1] Lehrstuhl für Mikrobiologie, Inst. F. Mikrobiol., Biochem. G., Friedrich-Alexander Univ. E., 91058 Erlangen
关键词
D O I
10.1111/j.1365-2958.1995.mmi_18030437.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
The gene for the Tn10 Tet repressor (TetR) was subjected to deletion mutagenesis. Screening for a transdominant operator-binding negative phenotype yielded 10 mutants with internal deletions. Three deletions extend from residue D5 to residues L41, W75, or Q76, respectively, and two contain deletions of the alpha-helix-turn-alpha-helix DNA-binding motif. Five deletions range from residue K84 to residues between R87 and K98. Since residues from the N-terminus up to position 98 are not necessary for dimerization, this must take place in the C-terminal half of the protein. Ability to dimerize was probed by introducing ochre nonsense codons (oc) at residues G138, H151, E159, I174, or K202. Koc202 shows wild-type in vivo operator-binding and inducibility by tetracycline indicating that the six C-terminal residues of TetR are not important for activity. Mutants with longer C-terminal truncations are inactive and not transdominant. They show reduced steady-state protein levels and are probably impaired in folding and degraded in vivo. Two mutants (Delta 151-166, Delta 164-166) with deletions in a region variable in primary structure and length among Tet repressors from different resistance determinants bind tet operator efficiently, but are not inducible by tetracycline. This result indicates that these residues are not important for dimer formation in the operator-binding form.
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页码:437 / 448
页数:12
相关论文
共 44 条
[1]   SEQUENCE OF A CLASS-E TETRACYCLINE RESISTANCE GENE FROM ESCHERICHIA-COLI AND COMPARISON OF RELATED TETRACYCLINE EFFLUX PROTEINS [J].
ALLARD, JD ;
BERTRAND, KP .
JOURNAL OF BACTERIOLOGY, 1993, 175 (14) :4554-4560
[2]   NUCLEOTIDE-SEQUENCE OF CLASS-D TETRACYCLINE RESISTANCE GENES FROM SALMONELLA-ORDONEZ [J].
ALLARD, JD ;
GIBSON, ML ;
VU, LH ;
NGUYEN, TT ;
BERTRAND, KP .
MOLECULAR & GENERAL GENETICS, 1993, 237 (1-2) :301-305
[3]   A THREONINE TO ALANINE EXCHANGE AT POSITION-40 OF TET REPRESSOR ALTERS THE RECOGNITION OF THE 6TH BASE PAIR OF TET OPERATOR FROM GC TO AT [J].
ALTSCHMIED, L ;
BAUMEISTER, R ;
PFLEIDERER, K ;
HILLEN, W .
EMBO JOURNAL, 1988, 7 (12) :4011-4017
[4]   FUNCTIONAL ROLES OF AMINO-ACID-RESIDUES INVOLVED IN FORMING THE ALPHA-HELIX-TURN-ALPHA-HELIX OPERATOR DNA-BINDING MOTIF OF TET REPRESSOR FROM TN10 [J].
BAUMEISTER, R ;
MULLER, G ;
HECHT, B ;
HILLEN, W .
PROTEINS-STRUCTURE FUNCTION AND GENETICS, 1992, 14 (02) :168-177
[5]   CONTACTS BETWEEN TET REPRESSOR AND TET OPERATOR REVEALED BY NEW RECOGNITION SPECIFICITIES OF SINGLE AMINO-ACID REPLACEMENT MUTANTS [J].
BAUMEISTER, R ;
HELBL, V ;
HILLEN, W .
JOURNAL OF MOLECULAR BIOLOGY, 1992, 226 (04) :1257-1270
[6]   A MULTIFUNCTIONAL GENE (TETR) CONTROLS TN10-ENCODED TETRACYCLINE RESISTANCE [J].
BECK, CF ;
MUTZEL, R ;
BARBE, J ;
MULLER, W .
JOURNAL OF BACTERIOLOGY, 1982, 150 (02) :633-642
[7]  
BERENS C, 1992, J BIOL CHEM, V267, P1945
[8]   CONSTRUCTION AND CHARACTERIZATION OF NEW CLONING VEHICLES .2. MULTIPURPOSE CLONING SYSTEM [J].
BOLIVAR, F ;
RODRIGUEZ, RL ;
GREENE, PJ ;
BETLACH, MC ;
HEYNEKER, HL ;
BOYER, HW ;
CROSA, JH ;
FALKOW, S .
GENE, 1977, 2 (02) :95-113
[9]  
CHOTHIA C, 1985, EMBO J, V5, P823
[10]   A COMPREHENSIVE SET OF SEQUENCE-ANALYSIS PROGRAMS FOR THE VAX [J].
DEVEREUX, J ;
HAEBERLI, P ;
SMITHIES, O .
NUCLEIC ACIDS RESEARCH, 1984, 12 (01) :387-395