Mechanobiology and diseases of mechanotransduction

被引:603
作者
Ingber, DE
机构
[1] Childrens Hosp, Vasc Biol Program, Dept Surg, Boston, MA 02115 USA
[2] Childrens Hosp, Vasc Biol Program, Dept Pathol, Boston, MA 02115 USA
[3] Harvard Univ, Sch Med, Boston, MA 02115 USA
基金
美国国家航空航天局; 美国国家卫生研究院;
关键词
cytoskeleton; disease; extracellular matrix; integrin; mechanical forces; mechanotransduction; stress-activated ion channels; tissue engineering;
D O I
10.1080/07853890310016333
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
The current focus of medicine on molecular genetics ignores the physical basis of disease even though many of the problems that lead to pain and morbidity, and bring patients to the doctor's office, result from changes in tissue structure or mechanics. The main goal of this article is therefore to help integrate mechanics into our understanding of the molecular basis of disease. This article first reviews the key roles that physical forces, extracellular matrix and cell structure play in the control of normal development, as well as in the maintenance of tissue form and function. Recent insights into cellular mechanotransduction - the molecular mechanism by which cells sense and respond to mechanical stress - also are described. Re-evaluation of human pathophysiology in this context reveals that a wide range of diseases included within virtually all fields of medicine and surgery share a common feature: their etiology or clinical presentation results from abnormal mechanotransduction. This process may be altered by changes in cell mechanics, variations in extracellular matrix structure, or by deregulation of the molecular mechanisms by which cells sense mechanical signals and convert them into a chemical or electrical response. Molecules that mediate mechanotransduction, including extracellular matrix molecules, transmembrane integrin receptors, cytoskeletal structures and associated signal transduction components, may therefore represent targets for therapeutic intervention in a variety of diseases. Insights into the mechanical basis of tissue regulation also may lead to development of improved medical devices, engineered tissues, and biologically-inspired materials for tissue repair and reconstruction.
引用
收藏
页码:564 / 577
页数:14
相关论文
共 171 条
[1]  
*AC RESP DISTR SYN, 2000, NEW ENGL J MED, V342, P1301, DOI DOI 10.1056/NEJM200005043421801
[2]   Analysis of cell mechanics in single vinculin-deficient cells using a magnetic tweezer [J].
Alenghat, FJ ;
Fabry, B ;
Tsai, KY ;
Goldmann, WH ;
Ingber, DE .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2000, 277 (01) :93-99
[3]  
ALENGHAT FJ, 2002, SCI STKE
[4]   An antagonist of osteoclast integrins prevents experimental osteoporosis [J].
Anderson, HC .
JOURNAL OF CLINICAL INVESTIGATION, 1997, 99 (09) :2059-2059
[5]  
[Anonymous], 1952, GROWTH FORM
[6]   SURFACTANT REPLACEMENT [J].
AVERY, ME ;
TAEUSCH, HW ;
FLOROS, J .
NEW ENGLAND JOURNAL OF MEDICINE, 1986, 315 (13) :825-826
[7]   Force and focal adhesion assembly: a close relationship studied using elastic micropatterned substrates [J].
Balaban, NQ ;
Schwarz, US ;
Riveline, D ;
Goichberg, P ;
Tzur, G ;
Sabanay, I ;
Mahalu, D ;
Safran, S ;
Bershadsky, A ;
Addadi, L ;
Geiger, B .
NATURE CELL BIOLOGY, 2001, 3 (05) :466-472
[8]   Hearts from mice lacking desmin have a myopathy with impaired active force generation and unaltered wall compliance [J].
Balogh, J ;
Merisckay, M ;
Li, Z ;
Paulin, D ;
Arner, A .
CARDIOVASCULAR RESEARCH, 2002, 53 (02) :439-450
[9]   Local measurements of viscoelastic parameters of adherent cell surfaces by magnetic bead microrheometry [J].
Bausch, AR ;
Ziemann, F ;
Boulbitch, AA ;
Jacobson, K ;
Sackmann, E .
BIOPHYSICAL JOURNAL, 1998, 75 (04) :2038-2049
[10]   CELL CELL AND CELL MATRIX INTERACTIONS DIFFERENTIALLY REGULATE THE EXPRESSION OF HEPATIC AND CYTOSKELETAL GENES IN PRIMARY CULTURES OF RAT HEPATOCYTES [J].
BENZEEV, A ;
ROBINSON, GS ;
BUCHER, NLR ;
FARMER, SR .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1988, 85 (07) :2161-2165