Expressional regulation of smooth muscle cell-specific genes in association with phenotypic modulation

被引:14
作者
Kenji Sobue
Ken'ichiro Hayashi
Wataru Nishida
机构
[1] Osaka University Medical School,Department of Neurochemistry and Neuropharmacology, Biomedical Research Centre
来源
Molecular and Cellular Biochemistry | 1999年 / 190卷
关键词
smooth muscle cell; smooth muscle cell-specific markers; phenotypic modulation; transcription; splicing;
D O I
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学科分类号
摘要
Phenotypic modulation of smooth muscle cells (SMCs) plays an integral role in atherosclerosis, hypertension and leiomyogenic tumorigenicity. The morphological, functional, and biochemical characteristics of SMCs in different phenotypes such as differentiated and dedifferentiated states have been well studied. Recent researches have focused on the expressional regulation of SMC-specific marker genes in association with phenotypic modulation of SMCs. The SMC-specific marker genes are regulated at the levels of transcription and splicing. The caldesmon, smooth muscle myosin heavy chain, α-smooth muscle actin, calponin, SM22, α- and β-tropomyosins, and a1 integrin genes are transcriptionally regulated; transcription of these genes except for the α-smooth muscle actin gene is upregulated in differentiated SMCs, but is downregulated in dedifferentiated SMCs. The expression pattern of α-smooth muscle actin is opposite in vascular and visceral SMCs. In almost all promoter regions of these genes, the CArG box and serum response factor (SRF) are involved in as the positive cis-element and the trans-acting factor, respectively. Isoform changes of caldesmon, α-tropomyosin, vinculin/metavinculin, and smooth muscle myosin heavy chain are regulated by alternative splicing in a SMC phenotype-dependent manner. Among them, isoform interconversions of caldesmon and α-tropomyosin are completely coordinated with phenotype of SMCs. The purpose of this paper is to summarize current knowledge of the expressional regulation of SMC-specific marker genes in different phenotypes of SMCs.
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页码:105 / 118
页数:13
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共 511 条
[1]  
Poole V(1989)Vasculogenesis and angiogenesis: Two distinct morphogenetic mechanisms establish embryonic vascular pattern J Exp Zool 251 224-231
[2]  
Coffin JD(1989)Embryonic origins and assembly of blood vessels Am Rev Respir Dis 140 1097-1103
[3]  
Noden DM(1991)Control of growth and differentiation of vascular cells by extracellular matrix proteins Annu Rev Physiol 53 161-177
[4]  
Carey DJ(1988)Changes in the vascular extracellular matrix during embryonic vasculogenesis and angiogenesis Dev Biol 125 441-450
[5]  
Risau W(1981)Immunoelectron microscope studies of membrane-microfilament interactions: distributions of alpha-actinin, tropomyosin, and vinculin in intestinal epithelial brush border and chicken gizzard smooth muscle cells J Cell Biol 91 614-628
[6]  
Lemmon V(1989)Unique geometry of actin-membrane anchorage sites in avian gizzard smooth muscle cells J Cell Sci 94 703-711
[7]  
Geiger B(1985)The mechanism of regulation of smooth muscle myosin by phosphorylation Curr Top Cell Regul 27 51-62
[8]  
Dutton AH(1991)Caldesmon, a novel regulatory protein in smooth muscle and noninusele actomyosin systems J Biol Chem 266 12115-12118
[9]  
Tokuyasu KT(1989)Differential modulation of actin-severing activity of gelsolin by multiple isoforms of cultured rat cell tropomyosin. Potentiation of protective ability of tropomyosins by 83-kDa nonmuscle caldesmon J Biol Chem 264 7490-7497
[10]  
Singer SJ(1996)Calponin Curr Top Cell Regul 34 33-61