Tenascin-C and mechanotransduction in the development and diseases of cardiovascular system.

PubWeight™: 0.86‹?›

🔗 View Article (PMC 4114189)

Published in Front Physiol on July 29, 2014

Authors

Kyoko Imanaka-Yoshida1, Hiroki Aoki2

Author Affiliations

1: Department of Pathology and Matrix Biology, Mie University Graduate School of Medicine Tsu, Japan ; Mie University Research Center for Matrix Biology Tsu, Japan.
2: Cardiovascular Research Institute, Kurume University Kurume, Japan.

Articles cited by this

(truncated to the top 100)

The small GTP-binding protein rho regulates the assembly of focal adhesions and actin stress fibers in response to growth factors. Cell (1992) 30.02

Actin dynamics control SRF activity by regulation of its coactivator MAL. Cell (2003) 7.43

The molecular elasticity of the extracellular matrix protein tenascin. Nature (1998) 6.98

Mechanotransduction at a distance: mechanically coupling the extracellular matrix with the nucleus. Nat Rev Mol Cell Biol (2009) 5.41

Matricellular proteins: extracellular modulators of cell function. Curr Opin Cell Biol (2002) 4.23

Tenascin: an extracellular matrix protein involved in tissue interactions during fetal development and oncogenesis. Cell (1986) 4.10

Tenascin-C is an endogenous activator of Toll-like receptor 4 that is essential for maintaining inflammation in arthritic joint disease. Nat Med (2009) 3.87

A possible unifying principle for mechanosensation. Nature (2005) 3.09

Vascular extracellular matrix and arterial mechanics. Physiol Rev (2009) 3.05

Molecular regulation of atrioventricular valvuloseptal morphogenesis. Circ Res (1995) 2.98

Central blood pressure measurements and antihypertensive therapy: a consensus document. Hypertension (2007) 2.94

Extracellular matrix remodeling and organization in developing and diseased aortic valves. Circ Res (2006) 2.91

Cell biology of cardiac cushion development. Int Rev Cytol (2005) 2.75

A vinculin-containing cortical lattice in skeletal muscle: transverse lattice elements ("costameres") mark sites of attachment between myofibrils and sarcolemma. Proc Natl Acad Sci U S A (1983) 2.55

Extracellular proteins that modulate cell-matrix interactions. SPARC, tenascin, and thrombospondin. J Biol Chem (1991) 2.47

Heart valve development: regulatory networks in development and disease. Circ Res (2009) 2.41

Mice develop normally without tenascin. Genes Dev (1992) 2.35

TGF-beta activity protects against inflammatory aortic aneurysm progression and complications in angiotensin II-infused mice. J Clin Invest (2010) 2.32

Tenascin-C induced signaling in cancer. Cancer Lett (2006) 2.21

From mechanotransduction to extracellular matrix gene expression in fibroblasts. Biochim Biophys Acta (2009) 2.10

The collagen network of the heart. Lab Invest (1979) 2.08

Costameres, focal adhesions, and cardiomyocyte mechanotransduction. Am J Physiol Heart Circ Physiol (2005) 2.05

Overexpression of transforming growth factor-beta1 stabilizes already-formed aortic aneurysms: a first approach to induction of functional healing by endovascular gene therapy. Circulation (2005) 2.02

Transforming growth factor-betas and vascular disorders. Arterioscler Thromb Vasc Biol (2006) 1.99

Genome-wide promoter analysis of the SOX4 transcriptional network in prostate cancer cells. Cancer Res (2009) 1.97

Development of heart valve leaflets and supporting apparatus in chicken and mouse embryos. Dev Dyn (2004) 1.96

Heart valve structure and function in development and disease. Annu Rev Physiol (2011) 1.80

Vinculin is a component of an extensive network of myofibril-sarcolemma attachment regions in cardiac muscle fibers. J Cell Biol (1983) 1.73

The role of tenascin-C in tissue injury and tumorigenesis. J Cell Commun Signal (2009) 1.72

Mechanical loading regulates the expression of tenascin-C in the myotendinous junction and tendon but does not induce de novo synthesis in the skeletal muscle. J Cell Sci (2003) 1.71

TGF-beta in the pathogenesis and prevention of disease: a matter of aneurysmic proportions. J Clin Invest (2010) 1.65

Hearts and bones: shared regulatory mechanisms in heart valve, cartilage, tendon, and bone development. Dev Biol (2006) 1.65

The extracellular matrix: at the center of it all. J Mol Cell Cardiol (2009) 1.64

The collagen matrix of the heart. Fed Proc (1981) 1.58

Incorporation of tenascin-C into the extracellular matrix by periostin underlies an extracellular meshwork architecture. J Biol Chem (2009) 1.57

Costameres are sites of force transmission to the substratum in adult rat cardiomyocytes. J Cell Biol (1992) 1.53

Mechanotransduction: the role of mechanical stress, myocyte shape, and cytoskeletal architecture on cardiac function. Pflugers Arch (2011) 1.52

RPEL motifs link the serum response factor cofactor MAL but not myocardin to Rho signaling via actin binding. Mol Cell Biol (2007) 1.51

Advances in tenascin-C biology. Cell Mol Life Sci (2011) 1.50

Periostin regulates atrioventricular valve maturation. Dev Biol (2008) 1.49

BMP and FGF regulatory pathways control cell lineage diversification of heart valve precursor cells. Dev Biol (2006) 1.46

Mechanical stress-induced sarcomere assembly for cardiac muscle growth in length and width. J Mol Cell Cardiol (2010) 1.45

Combinatorial control of smooth muscle-specific gene expression. Arterioscler Thromb Vasc Biol (2003) 1.42

Fgf4 positively regulates scleraxis and tenascin expression in chick limb tendons. Dev Biol (2002) 1.42

Skin wounds and severed nerves heal normally in mice lacking tenascin-C. Proc Natl Acad Sci U S A (1996) 1.38

Expression of tenascin by vascular smooth muscle cells. Alterations in hypertensive rats and stimulation by angiotensin II. Am J Pathol (1992) 1.36

Tenascin-C is a novel RBPJkappa-induced target gene for Notch signaling in gliomas. Cancer Res (2009) 1.34

Tenascin-X: a novel extracellular matrix protein encoded by the human XB gene overlapping P450c21B. J Cell Biol (1993) 1.29

Tenascins and the importance of adhesion modulation. Cold Spring Harb Perspect Biol (2011) 1.29

Mechanical regulation of the proangiogenic factor CCN1/CYR61 gene requires the combined activities of MRTF-A and CREB-binding protein histone acetyltransferase. J Biol Chem (2009) 1.28

Transcriptional regulation of the endogenous danger signal tenascin-C: a novel autocrine loop in inflammation. J Immunol (2010) 1.25

Central pulse pressure is a major determinant of ascending aorta dilation in Marfan syndrome. Circulation (1999) 1.25

Mechanical stretch modulates the promoter activity of the profibrotic factor CCN2 through increased actin polymerization and NF-kappaB activation. J Biol Chem (2006) 1.24

Tenascin-C upregulation by transforming growth factor-beta in human dermal fibroblasts involves Smad3, Sp1, and Ets1. Oncogene (2004) 1.24

Tenascin-C modulates adhesion of cardiomyocytes to extracellular matrix during tissue remodeling after myocardial infarction. Lab Invest (2001) 1.22

BMP-2 induces cell migration and periostin expression during atrioventricular valvulogenesis. Dev Biol (2007) 1.17

Interfering with the connection between the nucleus and the cytoskeleton affects nuclear rotation, mechanotransduction and myogenesis. Int J Biochem Cell Biol (2010) 1.17

Periostin as a heterofunctional regulator of cardiac development and disease. Curr Genomics (2008) 1.16

Tenascin-X, collagen, elastin, and the Ehlers-Danlos syndrome. Am J Med Genet C Semin Med Genet (2005) 1.16

Tenascin C induces epithelial-mesenchymal transition-like change accompanied by SRC activation and focal adhesion kinase phosphorylation in human breast cancer cells. Am J Pathol (2011) 1.16

The regulation of tenascin expression by tissue microenvironments. Biochim Biophys Acta (2008) 1.15

Fibronectin and tenascin-C: accomplices in vascular morphogenesis during development and tumor growth. Int J Dev Biol (2011) 1.13

Dance band on the Titanic: biomechanical signaling in cardiac hypertrophy. Circ Res (2002) 1.12

Sequenced response of extracellular matrix deadhesion and fibrotic regulators after muscle damage is involved in protection against future injury in human skeletal muscle. FASEB J (2011) 1.12

Interaction between cell and extracellular matrix in heart disease: multiple roles of tenascin-C in tissue remodeling. Histol Histopathol (2004) 1.11

Matricellular proteins: an overview. J Cell Commun Signal (2009) 1.11

Tenascin-C may aggravate left ventricular remodeling and function after myocardial infarction in mice. Am J Physiol Heart Circ Physiol (2010) 1.08

Restrictin: a chick neural extracellular matrix protein involved in cell attachment co-purifies with the cell recognition molecule F11. Development (1991) 1.07

Periostin promotes a fibroblastic lineage pathway in atrioventricular valve progenitor cells. Dev Dyn (2009) 1.07

Extracellular matrix and heart development. Birth Defects Res A Clin Mol Teratol (2011) 1.07

Modulation of cell-fibronectin matrix interactions during tissue repair. J Investig Dermatol Symp Proc (2006) 1.07

Mechanobiology of adult and stem cells. Int Rev Cell Mol Biol (2008) 1.07

Signals regulating tendon formation during chick embryonic development. Dev Dyn (2004) 1.06

Epithelial-mesenchymal transformation in the embryonic heart is mediated through distinct pertussis toxin-sensitive and TGFbeta signal transduction mechanisms. Dev Dyn (1999) 1.05

Expression and immune function of tenascin-C. Crit Rev Immunol (2011) 1.04

Matricellular proteins: new molecular targets to prevent heart failure. Cardiovasc Ther (2011) 1.04

Blood flow dynamics of one cardiac cycle and relationship to mechanotransduction and trabeculation during heart looping. Am J Physiol Heart Circ Physiol (2011) 1.04

Role of the actin cytoskeleton in tuning cellular responses to external mechanical stress. Scand J Med Sci Sports (2009) 1.03

The dynamic expression of tenascin-C and tenascin-X during early heart development in the mouse. Differentiation (2003) 1.03

Tenascin-C induction by cyclic strain requires integrin-linked kinase. Biochim Biophys Acta (2008) 1.02

Formation and early morphogenesis of endocardial endothelial precursor cells and the role of endoderm. Dev Biol (1996) 1.01

Phylogenetic analysis of the tenascin gene family: evidence of origin early in the chordate lineage. BMC Evol Biol (2006) 1.01

Tenascin-C enhances crosstalk signaling of integrin αvβ3/PDGFR-β complex by SRC recruitment promoting PDGF-induced proliferation and migration in smooth muscle cells. J Cell Physiol (2011) 1.01

Analysis of differential gene expression in stretched podocytes: osteopontin enhances adaptation of podocytes to mechanical stress. FASEB J (2002) 0.97

Mechanical strain activates a program of genes functionally involved in paracrine signaling of angiogenesis. Physiol Genomics (2008) 0.97

BMP and FGF regulatory pathways in semilunar valve precursor cells. Dev Dyn (2007) 0.97

Role of RhoA/ROCK-dependent actin contractility in the induction of tenascin-C by cyclic tensile strain. Exp Cell Res (2006) 0.97

The extracellular matrix glycoproteins BM-90 and tenascin are expressed in the mesenchyme at sites of endothelial-mesenchymal conversion in the embryonic mouse heart. Differentiation (1993) 0.96

Tenascin-C in cardiovascular tissue remodeling: from development to inflammation and repair. Circ J (2012) 0.96

The c-Jun-induced transformation process involves complex regulation of tenascin-C expression. Mol Cell Biol (1997) 0.95

Binding of αvβ1 and αvβ6 integrins to tenascin-C induces epithelial-mesenchymal transition-like change of breast cancer cells. Oncogenesis (2013) 0.95

Induction of tenascin-C by cyclic tensile strain versus growth factors: distinct contributions by Rho/ROCK and MAPK signaling pathways. Biochim Biophys Acta (2004) 0.93

Rapid and reciprocal regulation of tenascin-C and tenascin-Y expression by loading of skeletal muscle. J Cell Sci (2000) 0.93

Periostin links mechanical strain to inflammation in abdominal aortic aneurysm. PLoS One (2013) 0.92

Influence of perfusion and cyclic compression on proliferation and differentiation of bone marrow stromal cells in 3-dimensional culture. J Biomech (2008) 0.91

Mechanical strain increases SPARC levels in podocytes: implications for glomerulosclerosis. Am J Physiol Renal Physiol (2005) 0.91

Fluid flow forces and rhoA regulate fibrous development of the atrioventricular valves. Dev Biol (2012) 0.91

How do tenascins influence the birth and life of a malignant cell? J Cell Mol Med (2012) 0.90

Tenascins in stem cell niches. Matrix Biol (2014) 0.89

Gene regulation by mechanotransduction in fibroblasts. Appl Physiol Nutr Metab (2007) 0.89