期刊文献+

Differentiation of smooth muscle progenitor cells in peripheral blood and its application in tissue engineered blood vessels 被引量:5

Differentiation of smooth muscle progenitor cells in peripheral blood and its application in tissue engineered blood vessels
下载PDF
导出
摘要 Background: A major shortcoming in tissue engineered blood vessels (TEBVs) is the lack of healthy and easily attainable smooth muscle cells (SMCs). Smooth muscle progenitor cells (SPCs), especially from peripheral blood, may offer an alternative cell source for tissue engineering involving a less invasive harvesting technique. Methods: SPCs were isolated from 5-ml fresh rat peripheral blood by density-gradient centrifugation and cultured for 3 weeks in endothelial growth medium-2-MV (EGM-2-MV) medium containing platelet-derived growth factor-BB (PDGF BB). Before seeded on the synthesized scaffold, SPC-derived smooth muscle outgrowth cell (SOC) phenotypes were assessed by immuno-fluorescent staining, Western blot analysis, and reverse transcription polymerase chain reaction (RT-PCR). The cells were seeded onto the silk fibroin-modified poly(3-hydroxybutyrate-co-3-hydroxyhexanoate) (SF-PHBHHx) scaffolds by 6×104 cells/cm2 and cultured under the static con- dition for 3 weeks. The growth and proliferation of the seeded cells on the scaffold were analyzed by 3-(4,5-dimethylthiazol-2-yl)- diphenyltetrazolium bromide (MTT) assay, scanning electron microscope (SEM), and 4,6-diamidino-2-phenylindole (DAPI) staining. Results: SOCs displayed specific "hill and valley" morphology, expressed the specific markers of the SMC lineage: smooth muscle (SM) α-actin, calponin and smooth muscle myosin heavy chain (SM MHC) at protein and messenger ribonucleic acid (mRNA) levels. RT-PCR results demonstrate that SOCs also expressed smooth muscle protein 22α (SM22α), a contractile protein, and extracellular matrix components elastin and matrix Gla protein (MGP), as well as vascular endothelial growth factor (VEGF). After seeded on the SF-PHBHHx scaffold, the cells showed excellent metabolic activity and proliferation. Conclusion: SPCs isolated from peripheral blood can be differentiated into the SMCs in vitro and have an impressive growth potential in the biodegradable synthesized scaffold. Thus, SPCs may be a promising cell source for constructing TEBVs. Background: A major shortcoming in tissue engineered blood vessels (TEBVs) is the lack of healthy and easily attainable smooth muscle cells (SMCs). Smooth muscle progenitor cells (SPCs), especially from peripheral blood, may offer an alternative cell source for tissue engineering involving a less invasive harvesting technique. Methods: SPCs were isolated from 5-ml fresh rat peripheral blood by density-gradient centrifugation and cultured for 3 weeks in endothelial growth medium-2-MV (EGM-2-MV) medium containing platelet-derived growth factoroBB (PDGF BB). Before seeded on the synthesized scaffold, SPC-derived smooth muscle outgrowth cell (SOC) phenotypes were assessed by immuno-fluorescent staining, Western blot analysis, and reverse transcription polymerase chain reaction (RT-PCR). The cells were seeded onto the silk fibroin-modified poly(3-hydroxybutyrate-co-3-hydroxyhexanoate) (SF-PHBHHx) scaflblds by 6× 10^4 cells/cm^2 and cultured under the static condition for 3 weeks. The growth and proliferation of the seeded cells on the scaffold were analyzed by 3-(4,5-dimethylthiazol-2-yl)-diphenyltetrazolium bromide (MTT) assay, scanning electron microscope (SEM), and 4,6-diamidino-2-phenylindole (DAPI) staining. Results: SOCs displayed specific "hill and valley" morphology, expressed the specific markers of the SMC lineage: smooth muscle (SM) a-actin, calponin and smooth muscle myosin heavy chain (SM MHC) at protein and messenger ribonucleic acid (mRNA) levels. RT-PCR results demonstrate that SOCs also expressed smooth muscle protein 22a (SM22a, a contractile protein, and extracellular matrix components elastin and matrix Gla protein (MGP), as well as vascular endothelial growth factor (VEGF). After seeded on the SF-PHBHHx scaffold, the cells showed excellent metabolic activity and proliferation. Conclusion: SPCs isolated from peripheral blood can be differentiated the SMCs in vitro and have an impressive growth potential in the biodegradable synthesized scaffold. Thus, SPCs may be a promising cell sointo urce for constructing TEBVs.
出处 《Journal of Zhejiang University-Science B(Biomedicine & Biotechnology)》 SCIE CAS CSCD 2008年第12期923-930,共8页 浙江大学学报(英文版)B辑(生物医学与生物技术)
基金 supported by Shanghai Science Committee Fund for Key Research Project (No. 04JC14012) Fudan University Med-X Fund, China
关键词 细胞分子生物学 单元细胞 工程师 经验 Smooth muscle progenitor cells (SPCs), Tissue-engineered blood vessels (TEBVs), Silk fibroin (SF), Poly(3-hydroxybutyrate-co-3-hydroxyhexanoate) (PHBHHx)
  • 相关文献

参考文献13

  • 1Shannon L. M. Dahl,Caroline Rhim,Ying C. Song,Laura E. Niklason.Mechanical Properties and Compositions of Tissue Engineered and Native Arteries[J].Annals of Biomedical Engineering.2007(3)
  • 2Na Mei,Ping Zhou,Luan-Feng Pan,Guang Chen,Chun-Gen Wu,Xin Chen,Zheng-Zhong Shao,Guo-Qiang Chen.Biocompatibility of poly (3-hydroxybutyrate-co-3-hydroxyhexanoate) modified by silk fibroin[J].Journal of Materials Science: Materials in Medicine.2006(8)
  • 3Guang Chen,Ping Zhou,Na Mei,Xin Chen,Zhengzhong Shao,Luanfeng Pan*,Chungen Wu.Silk fibroin modified porous poly(ε-caprolactone) scaffold for human fibroblast culture in vitro[J].Journal of Materials Science: Materials in Medicine.2004(6)
  • 4FANG Ning-tao XIE Shang-zhe WANG Song-mei GAO Hong-yang WU Chun-gen PAN Luan-feng.Construction of tissue-engineered heart valves by using decellularized scaffolds and endothelial progenitor cells[J].Chinese Medical Journal,2007(8):696-702. 被引量:13
  • 5Gao, J,Crapo, P,Nerem, R,Wang, Y.Co-expression of elastin and collagen leads to highly compliant engi-neered blood vessels[].J Biomed Mater Res A.2008
  • 6Jevon, M,Dorling, A,Hornick, P.I.Progenitor cells and vascular disease[].Cell Proliferation.2008
  • 7Liu, J.Y,Swartz, D.D,Peng, H.F,Gugino, S.F,Russell, J.A,Andreadis, S.T.Functional tissue-engineered blood vessels from bone marrow progenitor cells[].Car-diovasc Res.2007
  • 8Liu, J.Y,Peng, H.F,Andreadis, S.T.Contractile smooth muscle cells derived from hair-follicle stem cells[].Cardiovascular Research.2008
  • 9Mei, N,Zhou, P,Pan, L.F,Chen, G,Wu, C.G,Chen, X,Shao, Z.Z,Chen, G.Q.Biocompatibility of poly (3-hydroxybutyrate-co-3-hydroxyhexanoate) modified by silk fibroin[].J Mater Sci Mater Med.2006
  • 10Stegemann, J.P,Hong, H,Nerem, R.M.Mechanical, biochemical, and extracellular matrix effects on vascular smooth muscle cell phenotype[].Journal of Applied Physiology.2005

二级参考文献10

  • 1Narine K,Ing EC,Cornelissen M,Desomer F,Beele H,Vanlangenhove L,et al.Readily available porcine aortic valve matrices for use in tissue valve engineering.Is cryopreservation an option[].Cryobiology.2006
  • 2Goto S,Tamura N,Ishida H,Ruggeri ZM.Dependence of platelet thrombus stability on sustained glycoprotein Ⅱb/Ⅲa activation through adenosine 5‘-diphosphate receptor stimulation and cyclic calcium signaling[].Journal of the American College of Cardiology.2006
  • 3Wu X,Rabkin-Aikawa E,Guleserian KJ,et al.Tissue-engineered microvessels on three-dimensional biodegradable scaffolds using human endothelial progenitor cells[].American Journal of Physiology Heart and Circulatory Physiology.2004
  • 4Schoen,F. J.,Levy,R. J.Calcification of tissue heart valve substitutes: progress toward understanding and prevention[].The Annals of Thoracic Surgery.2005
  • 5Lichtenberg,A,Tudorache,I,Cebotari,S,Ringes-Lichtenberg,S,Sturz,G,Hoeffler,K,Hurscheler,C,Brandes,G,Hilfiker,A,Haverich,A.In vitro re-endothelialization of detergent decellularized heart valves under simulated physiological dynamic conditions[].Biomaterials.2006
  • 6Rieder E,,Kasimir MT,Silberhumer G,et al.Decellularization proto- cols of porcine heart valves differ importantly in efficiency of cell re- moval and susceptibility of the matrix to recellularization with human vascular cells[].Journal of Thoracic and Cardiovascular Surgery.2004
  • 7Vesely I.Heart valve tissue engineering[].Circulation Research.2005
  • 8Sutherland,F. W.,Perry,T. E.,Yu,Y.,Sherwood,M. C.,Rabkin,E.,Masuda,Y.,Garcia,G. A.,McLellan,D. L.,Jr.,Engelmayr,G. C.,Sacks,M. S.,Schoen,F. J.,Jr.,Mayer,J. E.From stem cells to viable autologous semilunar heart valve[].Circulation.2005
  • 9Kasimir M T,Weigel G,Sharma J,et al.The decellularized porcine heart valve matrix in tissue engineering:platelet adhe- sion and activation[].Thrombosis and Haemostasis.2005
  • 10Schmidt D,Breymann C,Weber A.Umbilical Cord Blood Derived Endothelial Progenitor Cells for Tissue Engineering of Vascular Grafts[].The Annals of Thoracic Surgery.2004

共引文献12

同被引文献7

引证文献5

二级引证文献5

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部