MECHANICAL PROCESSES IN BIOCHEMISTRY
Mechanical processes are involved in nearly every facet of the cell cycle. Mechanical forces are generated in the cell during processes as diverse as chromosomal segregation, replication, transcription, translation, translocation of proteins across membranes, cell locomotion, and catalyzed protein a...
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Published in | Annual review of biochemistry Vol. 73; no. 1; pp. 705 - 748 |
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Main Authors | , , , |
Format | Journal Article |
Language | English |
Published |
Palo Alto, CA 94303-0139
Annual Reviews
01.01.2004
4139 El Camino Way, P.O. Box 10139 Annual Reviews, Inc USA |
Subjects | |
Online Access | Get full text |
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Abstract | Mechanical processes are involved in nearly every facet of the cell cycle.
Mechanical forces are generated in the cell during processes as diverse as
chromosomal segregation, replication, transcription, translation, translocation
of proteins across membranes, cell locomotion, and catalyzed protein and
nucleic acid folding and unfolding, among others. Because force is a product of
all these reactions, biochemists are beginning to directly apply external
forces to these processes to alter the extent or even the fate of these
reactions hoping to reveal their underlying molecular mechanisms. This review
provides the conceptual framework to understand the role of mechanical force in
biochemistry. |
---|---|
AbstractList | Mechanical processes are involved in nearly every facet of the cell cycle. Mechanical forces are generated in the cell during processes as diverse as chromosomal segregation, replication, transcription, translation, translocation of proteins across membranes, cell locomotion, and catalyzed protein and nucleic acid folding and unfolding, among others. Because force is a product of all these reactions, biochemists are beginning to directly apply external forces to these processes to alter the extent or even the fate of these reactions hoping to reveal their underlying molecular mechanisms. This review provides the conceptual framework to understand the role of mechanical force in biochemistry. ▪ Abstract Mechanical processes are involved in nearly every facet of the cell cycle. Mechanical forces are generated in the cell during processes as diverse as chromosomal segregation, replication, transcription, translation, translocation of proteins across membranes, cell locomotion, and catalyzed protein and nucleic acid folding and unfolding, among others. Because force is a product of all these reactions, biochemists are beginning to directly apply external forces to these processes to alter the extent or even the fate of these reactions hoping to reveal their underlying molecular mechanisms. This review provides the conceptual framework to understand the role of mechanical force in biochemistry. Mechanical processes are involved in nearly every facet of the cell cycle. Mechanical forces are generated in the cell during processes as diverse as chromosomal segregation, replication, transcription, translation, translocation of proteins across membranes, cell locomotion, and catalyzed protein and nucleic acid folding and unfolding, among others. Because force is a product of all these reactions, biochemists are beginning to directly apply external forces to these processes to alter the extent or even the fate of these reactions hoping to reveal their underlying molecular mechanisms. This review provides the conceptual framework to understand the role of mechanical force in biochemistry. [PUBLICATION ABSTRACT] Mechanical processes are involved in nearly every facet of the cell cycle. Mechanical forces are generated in the cell during processes as diverse as chromosomal segregation, replication, transcription, translation, translocation of proteins across membranes, cell locomotion, and catalyzed protein and nucleic acid folding and unfolding, among others. Because force is a product of all these reactions, biochemists are beginning to directly apply external forces to these processes to alter the extent or even the fate of these reactions hoping to reveal their underlying molecular mechanisms. This review provides the conceptual framework to understand the role of mechanical force in biochemistry. Mechanical processes are involved in nearly every facet of the cell cycle. Mechanical forces are generated in the cell during processes as diverse as chromosomal segregation, replication, transcription, translation, translocation of proteins across membranes, cell locomotion, and catalyzed protein and nucleic acid folding and unfolding, among others. Because force is a product of all these reactions, biochemists are beginning to directly apply external forces to these processes to alter the extent or even the fate of these reactions hoping to reveal their underlying molecular mechanisms. This review provides the conceptual framework to understand the role of mechanical force in biochemistry.Mechanical processes are involved in nearly every facet of the cell cycle. Mechanical forces are generated in the cell during processes as diverse as chromosomal segregation, replication, transcription, translation, translocation of proteins across membranes, cell locomotion, and catalyzed protein and nucleic acid folding and unfolding, among others. Because force is a product of all these reactions, biochemists are beginning to directly apply external forces to these processes to alter the extent or even the fate of these reactions hoping to reveal their underlying molecular mechanisms. This review provides the conceptual framework to understand the role of mechanical force in biochemistry. |
Author | Bustamante, Carlos Chemla, Yann R Forde, Nancy R Izhaky, David |
AuthorAffiliation | 1 Molecular and Cell Biology, and 2 3 nforde@alice.berkeley.edu Howard Hughes Medical Institute and the Departments of carlos@alice.berkeley.edu Physics, University of California, Berkeley, California 94720-3206; email ychemla@socrates.berkeley.edu izhaky@alice.berkeley.edu |
AuthorAffiliation_xml | – name: 3 – name: Howard Hughes Medical Institute and the Departments of – name: nforde@alice.berkeley.edu – name: izhaky@alice.berkeley.edu – name: carlos@alice.berkeley.edu – name: ychemla@socrates.berkeley.edu – name: 2 – name: Molecular and Cell Biology, and – name: Physics, University of California, Berkeley, California 94720-3206; email – name: 1 |
Author_xml | – sequence: 1 givenname: Carlos surname: Bustamante fullname: Bustamante, Carlos – sequence: 2 givenname: Yann R surname: Chemla fullname: Chemla, Yann R – sequence: 3 givenname: Nancy R surname: Forde fullname: Forde, Nancy R – sequence: 4 givenname: David surname: Izhaky fullname: Izhaky, David |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/15189157$$D View this record in MEDLINE/PubMed |
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CODEN | ARBOAW |
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Snippet | Mechanical processes are involved in nearly every facet of the cell cycle.
Mechanical forces are generated in the cell during processes as diverse as... ▪ Abstract Mechanical processes are involved in nearly every facet of the cell cycle. Mechanical forces are generated in the cell during processes as diverse... Mechanical processes are involved in nearly every facet of the cell cycle. Mechanical forces are generated in the cell during processes as diverse as... |
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StartPage | 705 |
SubjectTerms | Animals Biochemical Phenomena Biochemistry Biomechanical Phenomena Catalysis Cells Chromosomes enzyme catalysis Enzymes - chemistry Kinetics Life cycles mechanical forces mechanical unfolding Molecular Conformation Molecular Motor Proteins - chemistry molecular motors Molecules Nucleic acids Proteins single-molecule manipulation Thermodynamics Translocation |
Title | MECHANICAL PROCESSES IN BIOCHEMISTRY |
URI | http://dx.doi.org/10.1146/annurev.biochem.72.121801.161542 https://www.ncbi.nlm.nih.gov/pubmed/15189157 https://www.proquest.com/docview/223692099 https://www.proquest.com/docview/72004624 |
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