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CONFORMATIONAL STABILITY OF GLOBULAR PROTEINS

CONFORMATIONAL STABILITY OF GLOBULAR PROTEINS
球状蛋白质的构象稳定性
批准号:
3291902
负责人:
CARLOS N PACE
金额:
$11.47万
依托单位国家:
美国
项目类别:
财政年份:
1986
资助国家:
美国
项目状态:
已结题
起止时间:
1986-07-01 至 1994-06-30

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中文摘要
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英文摘要
Proteins can now be constructed with any desired amino acid sequence. The potential applications of this technology in health and other areas are almost unlimited. Consequently, it is essential that we learn to predict how changes in the amino acid sequence will affect the function, folding, and stability of a protein. To this end, we plan to study the effect of single changes in the amino acid sequence on the conformations of the folded and unfolded states, in the conformational stability, and on the thermodynamics of folding of ribonuclease T1 (RNase T1). Our primary goal is to gain a better understanding of the folded and unfolded conformations and of the forces which contribute to the conformational stability of proteins. RNase T1 is an excellent model for protein folding studies. It is the smallest enzyme known with just 104 residues, and folds to a compact globular conformation in which the hydrophobic core is sandwiched between a 4.5 turn alpha-helix and a 4-strand anti- parallel Beta-sheet. Folding can be studied with the two disulfide bonds intact or broken, and the unfolded molecule can be studied in water at 25 degrees C both disulfide bonds broken. Site-directed mutagenesis will be used to prepare mutants designed to give insight into the contribution of hydrogen bonding, and hydrophobic and electrostatic interactions to the conformational stability of RNase T1. The conformational stability of these mutant will be measured using urea and thermal unfolding experiments. The thermodynamics of folding will be studied using a differential scanning microcalori-meter. For the most interesting mutants, the three-dimensional structure of the folded protein will be determined using x-ray crystallography (In collaboration with Drs. Wolfram Saenger and Udo Heinemann), and the structure of the unfolded protein will be studied using a variety of physical techniques. The unfolded conformations of wild type RNase T1 will be studied in detail because we have evidence that the protein retains some structure after unfolding in urea. These unfolded states will be compared with the thermally unfolded states and the unfolded states that exist under physiological conditions. The influence of the disulfide bonds on the unfolded conformations will also be studied.
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4th European Symposium of The Protein Society
  • 批准号:
    6359259
  • 项目类别:
  • 资助金额:
    $0.5万
  • 财政年份:
    2001
  • 负责人:
    CARLOS N PACE
  • 依托单位:
RELATIONSHIP BETWEEN ENZYME STABILITY & ENZYME FUNCTION
RELATIONSHIP BETWEEN ENZYME STABILITY & ENZYME FUNCTION
RELATIONSHIP BETWEEN ENZYME STABILITY & ENZYME FUNCTION
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