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51.
Hans Breider 《Molecular & general genetics : MGG》1935,68(1):265-299
Ohne ZusammenfassungMit 17 Textfiguren 相似文献
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Planta - Kulturen vonAspergillus niger, in denen dem Pilz gleichzeitig gestaffelte Mengen von Kali und Phosphat geboten wurden, ergaben, daß dasMitscherlich-Baulesche Wirkungsgesetz der... 相似文献
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Gene 32 protein (g32P), the single-stranded DNA binding protein from bacteriophage T4, contains 1 mol of Zn(II)/mol of protein. This intrinsic zinc is retained within the DNA-binding core fragment, g32P-(A+B) (residues 22-253), obtained by limited proteolysis of the intact protein. Ultraviolet circular dichroism provides evidence that Zn(II) binding causes significant changes in the conformation of the peptide chain coupled with alterations in the microenvironments of tryptophan and tyrosine side chains. NMR spectroscopy of the 113Cd(II) derivative of g32P-(A+B) at both 44.4 and 110.9 MHz shows a single 113Cd resonance, delta 637, a chemical shift consistent with coordination to three of the four sulfhydryl groups in the protein. In vitro mutagenesis of Cys166 to Ser166 creates a mutant g32P that still contains 1 Zn(II)/molecule. This mutant protein when substituted with 113Cd(II) shows a 113Cd signal with a delta and a line width the same as those observed for the wild-type protein. Thus, the S-ligands to the metal ion appear to be contributed by Cys77, Cys87, and Cys90. Relaxation data suggest that chemical shift anisotropy is the dominant, but not exclusive, mechanism of relaxation of the 113Cd nucleus in g32P, since a dipolar modulation from ligand protons is observed at 44.4 MHz but not at 110.9 MHz. Complexation of core 113Cd g32P with d(pA)6 or Co(II) g32P with poly(dT) shows only minor perturbation of the NMR signal or d-d electronic transitions, respectively, suggesting that the metal ion in g32P does not add a ligand from the bound DNA.(ABSTRACT TRUNCATED AT 250 WORDS) 相似文献
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E P Geiduschek M C Armelin R Petrusek C Bread J J Duffy G Johnson 《Journal of molecular biology》1977,117(4):825-842
The uptake of a homologous single-stranded fragment by superhelical DNA produces a complex that contains a stable displacement loop. When the circular DNA was relaxed by the random action of pancreatic DNAase, complexes dissociated by a process which requires that the single-stranded arm of the D-loop be intact. We attribute the dissociation to branch migration, the exchange of like strands at a branch point. The kinetics of dissociation were biphasic. A fraction of the nicked complexes dissociated in a few seconds, the rest dissociated much more slowly. The fraction of molecules that dissociated slowly was directly related to the length of the third strand, and inversely related to temperature. Salt also inhibited dissociation. Under physiological conditions, 37 °C and 0.15 m-NaCl, more than half of complexes containing a third strand of 1000-nucleotide residues survived for at least one minute. These observations provide a guide to handling certain natural or synthetic branched derivatives of DNA. Analyzing our data by the method of Thompson et al. (1976), we have estimated that the time for the exchange of one nucleotide for another at a single-stranded branch is 12 microseconds; but the calculated value depends strongly upon the assumption that single-strand branch migration occurs by a random walk. 相似文献
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U. M. X. Sangodkar T. L. Aldrich R. A. Haugland J. Johnson R. K. Rothmel P. J. Chapman A. M. Chakrabarty 《Engineering in Life Science》1989,9(4):301-316
Chlorinated aromatic hydrocarbons are widely used in industry and agriculture, and comprise the bulk of environmental pollutants. Although simple aromatic compounds are biodegradable by a variety of degradative pathways, their halogenated counterparts are more resistant to bacterial attack and often necessitate evolution of novel pathways. An understanding of such evolutionary processes is essential for developing genetically improved strains capable of mineralizing highly chlorinated compounds. This article provides an overview of the genetic aspects of dissimilation of chloroaromatic compounds and discusses the potential of gene manipulation to promote enhanced evolution of the degradative pathways. 相似文献
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