High RhoA activity maintains the undifferentiated mesenchymal cell phenotype, whereas RhoA down-regulation by laminin-2 induces smooth muscle myogenesis
Open Access
- 4 March 2002
- journal article
- Published by Rockefeller University Press in The Journal of cell biology
- Vol. 156 (5) , 893-903
- https://doi.org/10.1083/jcb.200107049
Abstract
Round embryonic mesenchymal cells have the potential to differentiate into smooth muscle (SM) cells upon spreading/elongation (Yang, Y., K.C. Palmer, N. Relan, C. Diglio, and L. Schuger. 1998. Development. 125:2621–2629; Yang, Y., N.K. Relan, D.A. Przywara, and L. Schuger. 1999. Development. 126:3027–3033; Yang, Y., S. Beqaj, P. Kemp, I. Ariel, and L. Schuger. 2000. J. Clin. Invest. 106:1321–1330). In the developing lung, this process is stimulated by peribronchial accumulation of laminin (LN)-2 (Relan, N.K., Y. Yang, S. Beqaj, J.H. Miner, and L. Schuger. 1999. J. Cell Biol. 147:1341–1350). Here we show that LN-2 stimulates bronchial myogenesis by down-regulating RhoA activity. Immunohistochemistry, immunoblotting, and reverse transcriptase–PCR indicated that RhoA, a small GTPase signaling protein, is abundant in undifferentiated embryonic mesenchymal cells and that its levels decrease along with SM myogenesis. Functional studies using agonists and antagonists of RhoA activation and dominant positive and negative plasmid constructs demonstrated that high RhoA activity was required to maintain the round undifferentiated mesenchymal cell phenotype. This was in part achieved by restricting the localization of the myogenic transcription factor serum response factor (SRF) mostly to the mesenchymal cell cytoplasm. Upon spreading on LN-2 but not on other main components of the extracellular matrix, the activity and level of RhoA decreased rapidly, resulting in translocation of SRF to the nucleus. Both cell elongation and SRF translocation were prevented by overexpression of dominant positive RhoA. Once the cells underwent SM differentiation, up-regulation of RhoA activity induced rather than inhibited SM gene expression. Therefore, our studies suggest a novel mechanism whereby LN-2 and RhoA modulate SM myogenesis.Keywords
This publication has 65 references indexed in Scilit:
- βl integrin and organized actin filaments facilitate cardiomyocyte‐specific RhoA‐dependent activation of the skeletal α‐actin promoterThe FASEB Journal, 2001
- Smooth Muscle Differentiation Marker Gene Expression Is Regulated by RhoA-mediated Actin PolymerizationJournal of Biological Chemistry, 2001
- Physiological Control of Smooth Muscle-specific Gene Expression through Regulated Nuclear Translocation of Serum Response FactorPublished by Elsevier ,2000
- Skeletal Muscle CaMKII Enriches in Nuclei and Phosphorylates Myogenic Factor SRF at Multiple SitesBiochemical and Biophysical Research Communications, 2000
- Integrin SignalingScience, 1999
- Laminin α1 Chain Synthesis in the Mouse Developing Lung: Requirement for Epithelial–Mesenchymal Contact and Possible Role in Bronchial Smooth muscle DevelopmentThe Journal of cell biology, 1997
- Differential Translocation of Rho Family GTPases by Lysophosphatidic Acid, Endothelin-1, and Platelet-derived Growth FactorJournal of Biological Chemistry, 1996
- Prostaglandin E Receptor EP3 Subtype Induces Neurite Retraction via Small GTPase RhoPublished by Elsevier ,1996
- Merosin and laminin in myogenesis; specific requirement for merosin in myotube stability and survival.The Journal of cell biology, 1996
- Localization of merosin-negative congenital muscular dystrophy to chromosome 6q2 by homozygosity mappingHuman Molecular Genetics, 1994