亚洲免费av电影一区二区三区,日韩爱爱视频,51精品视频一区二区三区,91视频爱爱,日韩欧美在线播放视频,中文字幕少妇AV,亚洲电影中文字幕,久久久久亚洲av成人网址,久久综合视频网站,国产在线不卡免费播放

        ?

        From nerve to blood vessel:a new role of Olfm2 in smooth muscle differentiation from human embryonic stem cell-derived mesenchymal cells

        2015-02-12 06:29:50NingShiShiYouChen
        THE JOURNAL OF BIOMEDICAL RESEARCH 2015年4期

        Ning Shi,Shi-You Chen

        Department of Physiology&Pharmacology,University of Georgia,Athens,GA 30602,USA.

        From nerve to blood vessel:a new role of Olfm2 in smooth muscle differentiation from human embryonic stem cell-derived mesenchymal cells

        Ning Shi,Shi-You Chen?

        Department of Physiology&Pharmacology,University of Georgia,Athens,GA 30602,USA.

        Vascular smooth muscle cell(SMC)differentiation is an important process in vasculogenesis and angiogenesis during embryonic development.The alterations in the differentiated state in SMCs contribute to a variety of major cardiovascular diseases such as atherosclerosis,hypertension,restenosis and vascular aneurysm[1-2].A better understanding of the cellular and molecular mechanisms that control SMC differentiation is essential to help develop new approaches to both prevent and treat these diseases.Therefore,development of reliable and reproducible in vitro cellular models in order to study the differentiation mechanisms is important although it has been challenging because of intrinsic peculiarities of SMC.

        SMCs originate from at least eight different progenitors during embryonic development including neural crest,proepicardium,mesothelium,splanchnic mesoderm,secondary heart field,mesoangioblasts,somites and various stem/progenitor cells[1].SMC populations from different embryological origins are observed in different vessels as well as within the same vessel segments although showing sharp boundaries with no intermixing of cells from different lineages[3]. Importantly,SMCs from different origins are regulated differentially and can exhibit a wide range of different phenotypes.Even in adult organs,SMCs are not terminally differentiated because the cells may undergo phenotypic modulation in response to alterations in local environmental cues including growth factors/inhibitors,mechanical influences,inflammatory mediators,cell-cell and cell-matrix interactions[2].

        SMC differentiation is a complex but poorly defined process although much progress has been made in identifying molecular mechanisms controlling the expression of SMC specific genes.Accumulating evidence has shown that a precisely coordinated molecular network orchestrates the SMC differentiation program involved in a range of signaling pathways including TGF-β,retinoid,extracellular matrix, Notch,reactive oxygen species,histone deacetylase and microRNA signaling[4].

        Several in vitro model systems have been developed to mimic the SMC differentiation in vivo including using C3H10T1/2 cells,neural crest cells,A404,embryoid body and embryonic stem cells.Although these models have significantly contributed to our understanding of SMC differentiation,each of these models has its limitations.In addition,human embryonic stem cell can differentiate to both endothelial cell(EC)and SMC populations in the same differentiation conditions. Though the cells are excellent for in vivo neoangiogenesis and regeneration of blood vessels,they may not be ideal for precisely dissecting the molecular mechanism governing SMC differentiation because SMCs differentiated from embryonic stems cells are heterogenic and thus contain a mixed population.

        We recently developed a novel in vitro model for TGF-β-induced SMC differentiation from human embryonic stem cell-derived mesenchymal cells (hES-MCs).hES-MCs,derived from H9 human embryonic stem cells,are natural SMC progenitors for mesoderm-derived SMCs that account for most of

        the vascular SMCs[1].hES-MCs have the capacity to produce the three lineages associated with mesenchymal stem cells including osteogenic,chondrogenic and SMC lineages.We found that hES-MCs can be robustly differentiated to SMC phenotype upon TGF-β stimulation and exhibit a morphology resembling functional SMCs.hES-MCs have the potential to be used for tissue engineering for regeneration of human SMCs due to their mesodermal origin.

        Interestingly,the nervous and the vascular systems share many common features including a similar and often overlapping anatomy characterized by highly branched and ramified layouts,and common signaling pathways.Many similarities can also be found at the cellular and even extend to the molecular levels.There is strong evidence for coordination between the two systems[5].In some cases this coordination may be achieved by utilizing the same cues or signals,suggesting that common molecules may regulate the development of both nervous and vascular systems.

        Olfactomedin 2(Olfm2),first found in the frog olfactory neuroepithelium,belongs to the family of Olfactomedin domain-containing proteins consisting of at least 13 members in mammals.Olfm2 expression is developmentally regulated.Blockade of Olfm2 reduces eye size,hinders optic nerve extension,and disrupts anterior central nerve system and head development including neural crest cell-derived cartilaginous structures of the pharyngeal arches in zebrafish[6].In humans,a R144Q substitution in Olfm2 protein is thought to be the disease-causing mutation in Japanese patients with open-angle glaucoma.Effects of Olfm2 on eye development in developing zebrafish appear to be related to Pax6 signaling[6].Pax6 is a master transcriptional factor for eye development and functions.Importantly,Pax6 has been shown to physically interact with TGF-β,which contributes to maintaining functional status of eyes.These results suggest a possible role of Olfm2 in the TGF-β signaling cascade during early eye development.Our recent study has shown that Olfm2 plays a role in vascular development,especially in TGF-β-induced SMC differentiation[7].

        Olfm2 is dramatically upregulated during TGF-βinduced SMC differentiation of hES-MCs.Olfm2 knockdown suppresses TGF-β-induced expression of SMC markers while Olfm2 overexpression promotes the marker gene expression.Interestingly, TGF-β induces Olfm2 nuclear accumulation,consistent with our finding that Olfm2 is abundantly expressed in nuclei of SMC in normal human aorta. Olfm2 expression is Smad2/3-dependent.In addition,Olfm2 acts as a nuclear cofactor binding to serum response factor(SRF)to promote SRF/CArG box interaction,leading to an enhanced transcription and expression of SMC marker genes.Olfm2 promotes SRF binding to SMC marker promoters through inhibiting the expression of HERP1(Hrt2, Hey2,Hesr2,and CHF1)and thus attenuating the SRF association with HERP1,which is a downstream target of Notch signaling and a transcriptional repressor involved in SMC differentiation[8-9].Our study indicates that the homeostatic balance between Olfm2 and HERP1 expression may be one of the factors that determine whether or not SMC marker genes can be effectively induced by TGF-β after the initial phase of SMC differentiation.

        Interestingly,in addition to SMC differentiation, both SRF and HERP1 are also essential for nerve cell differentiation[10].Our study identifies Olfm2 as a novel contributor that can regulate both processes.Further indepth analysis of the Olfm2-SRF-HERP1 axis may provide new insights into the molecular networks coordinately regulating the neural and vascular development during embryogenesis.Moreover,identification of additional new factors that regulate both nervous and vascular systems is likely to unravel additional common mechanisms underlying the unique interaction between nerve and blood vessel.

        Acknowledgement

        This work was supported by grants from National Institutes of Health(HL107526,HL119053,and HL123302 to SYC).

        [1] Majesky MW.Developmental basis of vascular smooth muscle diversity[J].Arterioscler Thromb Vasc Biol, 2007,27(6):1248--1258.

        [2] Owens GK,Kumar MS,Wamhoff BR.Molecular regulation of vascular smooth muscle cell differentiation in development and disease[J].Physiol Rev,2004,849(3): 767--801.

        [3] Wasteson P,Johansson BR,Jukkola T,et al.Developmental origin of smooth muscle cells in the descending aorta in mice[J].Development,2008,135(10):1823--1832.

        [4] Schickel R,Boyerinas B,Park SM,et al.Key players in the immune system,differentiation,tumorigenesis and cell death[J].Oncogene,2008,27(45):5959--5974.

        [5] Melani M,Weinstein BM.Common factors regulating patterning of the nervous and vascular systems[J].Annu Rev Cell Dev Biol,2010,26:639--665.

        [6] LeeJA,AnholtRR,ColeGJ.Olfactomedin-2mediatesdevelopment of the anterior central nervous system and head structures in zebrafish[J].Mech Dev,2008,125(1--2): 167--181.

        [7] Shi N,Guo X,Chen SY.Olfactomedin 2,a novel regulator for transforming growth factor-beta-induced smooth muscle differentiation of human embryonic stem cellderived mesenchymal cells[J].Mol Biol Cell,2014, 25(25):4106--4114.

        [8] Miano JM.Myocardin in biology and disease[J].J Biomed Res,2015,29(1):3--19.

        [9] Shi N,Chen SY.Mechanisms simultaneously regulate smooth muscle proliferation and differentiation[J].J Biomed Res,2014,28(1):40--46.

        [10]Stritt C,Stern S,Harting K,et al.Paracrine control of oligodendrocyte differentiation by srf-directed neuronal gene expression[J].Nat Neurosci,2009, 12(4):418--427.

        ?Corresponding author:Shi-You Chen,PhD,Department of Physiology &Pharmacology,The University of Georgia,501 D.W.Brooks Drive, Athens,GA 30602,USA.Tel/Fax:706-542-8284/706-542-3015, E-mail:sc229@uga.edu.

        Received 23 February 2015,Accepted 08 March 2015,Epub 12 March 2015

        R394.1,Document code:B

        The authors reported no conflict of interests.

        日本a级片免费网站观看| 亚洲精品AⅤ无码精品丝袜无码| 伊人亚洲综合影院首页| 亚洲国产综合人成综合网站| 国产精品久久久久久福利| 精品一区二区久久久久久久网站| 北岛玲日韩精品一区二区三区| 国产成人美涵人妖视频在线观看| 麻豆亚洲一区| 在线精品一区二区三区 | 三级国产女主播在线观看| 国产一区二区三区精品成人爱| 精品国产一区二区三区色搞| 国产精品无码av一区二区三区 | 国产va免费精品高清在线观看| 久操视频新免费伊人| 91亚洲色图在线观看| 中文字幕av长濑麻美| 亚洲中文字幕在线第二页| 久久精品国产亚洲vr| 午夜在线观看一区二区三区四区| 国产精品激情自拍视频| 桃花色综合影院| 99久久综合狠狠综合久久一区| 国产爽快片一区二区三区| 欧美综合天天夜夜久久| 免费无码肉片在线观看| 日韩人妻高清福利视频| 开心五月婷婷激情综合网| 全球中文成人在线| 国产亚洲第一精品| 精品麻豆一区二区三区乱码| 伊人精品久久久久中文字幕| 精品高潮呻吟99av无码视频| 亚洲精品视频免费在线| 国产精品蝌蚪九色av综合网| 青青草97国产精品免费观看| 亚洲色www无码| 人妻少妇艳情视频中文字幕| 亚洲精品无人区| 国产系列丝袜熟女精品视频|