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The physics of protein structure and...
~
Schweitzer-Stenner, Reinhard.
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The physics of protein structure and dynamics : = when and why proteins fold or don't fold /
紀錄類型:
書目-語言資料,印刷品 : Monograph/item
正題名/作者:
The physics of protein structure and dynamics :/ Reinhard Schweitzer-Stenner.
其他題名:
when and why proteins fold or don't fold /
作者:
Schweitzer-Stenner, Reinhard.
出版者:
London, England :Academic Press, : c2025.,
面頁冊數:
xii, 314 p. :ill. (some col.) ;24 cm.
標題:
Protein folding. -
ISBN:
9780443159640
The physics of protein structure and dynamics : = when and why proteins fold or don't fold /
Schweitzer-Stenner, Reinhard.
The physics of protein structure and dynamics :
when and why proteins fold or don't fold /Reinhard Schweitzer-Stenner. - London, England :Academic Press,c2025. - xii, 314 p. :ill. (some col.) ;24 cm.
Includes bibliographical references and index.
Looks at various aspects of protein structure and dynamics from a physico-chemical point of view. It goes into some depth regarding the description of non-covalent forces that determine the relative stability of folded and unfolded proteins. Anharmonic protein dynamics involving motions between different minima of a rugged Gibbs energy landscape is described in great detail. The book combines various aspects of the protein folding/unfolding processes with an overview of intrinsically disordered proteins, which have attracted considerable interest of the protein community over the last 25 years but are thus far underrepresented in classroom-oriented textbooks. The book looks at protein folding and intrinsically disordered proteins as heavily interrelated topics that need to be viewed together. Furthermore, it presents some basic physico-chemical aspects of protein/peptide self-assembly into nanoscale fibrils. Intrinsically disordered peptides and proteins play a major role particularly in aggregation and self-assembly processes that lead to various diseases (Alzheimer, Parkinson, Huntington, Mad-Cow). Therefore, the relevance of protein disorder for protein self-assembly deserves a closer look. Protein self-assembly cannot be separated from protein folding since it is frequently the product of misfolding. With regard to modern theories, the folding processes are linked to insights on protein dynamics and the discovered relationship between proteins and spin glasses.
ISBN: 9780443159640US170.00Subjects--Topical Terms:
661545
Protein folding.
LC Class. No.: QP551 / .S394 2025
Dewey Class. No.: 572.633
The physics of protein structure and dynamics : = when and why proteins fold or don't fold /
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when and why proteins fold or don't fold /
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Looks at various aspects of protein structure and dynamics from a physico-chemical point of view. It goes into some depth regarding the description of non-covalent forces that determine the relative stability of folded and unfolded proteins. Anharmonic protein dynamics involving motions between different minima of a rugged Gibbs energy landscape is described in great detail. The book combines various aspects of the protein folding/unfolding processes with an overview of intrinsically disordered proteins, which have attracted considerable interest of the protein community over the last 25 years but are thus far underrepresented in classroom-oriented textbooks. The book looks at protein folding and intrinsically disordered proteins as heavily interrelated topics that need to be viewed together. Furthermore, it presents some basic physico-chemical aspects of protein/peptide self-assembly into nanoscale fibrils. Intrinsically disordered peptides and proteins play a major role particularly in aggregation and self-assembly processes that lead to various diseases (Alzheimer, Parkinson, Huntington, Mad-Cow). Therefore, the relevance of protein disorder for protein self-assembly deserves a closer look. Protein self-assembly cannot be separated from protein folding since it is frequently the product of misfolding. With regard to modern theories, the folding processes are linked to insights on protein dynamics and the discovered relationship between proteins and spin glasses.
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