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Biologic scaffolds for regenerative medicine: mechanisms of in vivo remodeling.用于再生医学的生物支架:体内重塑机制
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2
Shear stress and VEGF enhance endothelial differentiation of human adipose-derived stem cells.剪切应力和血管内皮生长因子可增强人脂肪来源干细胞的内皮分化。
Growth Factors. 2014 Oct;32(5):139-49. doi: 10.3109/08977194.2014.945642. Epub 2014 Aug 12.
3
Basic mechanisms of calcific aortic valve disease.钙化性主动脉瓣疾病的基本机制。
Can J Cardiol. 2014 Sep;30(9):982-93. doi: 10.1016/j.cjca.2014.03.029. Epub 2014 Mar 27.
4
The living aortic valve: From molecules to function.有活力的主动脉瓣:从分子到功能。
Glob Cardiol Sci Pract. 2014 Jan 29;2014(1):52-77. doi: 10.5339/gcsp.2014.11. eCollection 2014.
5
The performance of cross-linked acellular arterial scaffolds as vascular grafts; pre-clinical testing in direct and isolation loop circulatory models.交联脱细胞动脉支架作为血管移植物的性能;在直接和隔离环循环模型中的临床前测试。
Biomaterials. 2014 Aug;35(24):6311-22. doi: 10.1016/j.biomaterials.2014.04.062. Epub 2014 May 9.
6
The host response to allogeneic and xenogeneic biological scaffold materials.宿主对同种异体和异种生物支架材料的反应。
J Tissue Eng Regen Med. 2015 May;9(5):504-11. doi: 10.1002/term.1874. Epub 2014 Feb 18.
7
Conserved transcriptional regulatory mechanisms in aortic valve development and disease.主动脉瓣发育和疾病中的保守转录调控机制。
Arterioscler Thromb Vasc Biol. 2014 Apr;34(4):737-41. doi: 10.1161/ATVBAHA.113.302071.
8
Decellularized allogeneic and xenogeneic tissue as a bioscaffold for regenerative medicine: factors that influence the host response.脱细胞异体和异种组织作为再生医学的生物支架:影响宿主反应的因素
Ann Biomed Eng. 2014 Jul;42(7):1517-27. doi: 10.1007/s10439-013-0963-7. Epub 2014 Jan 9.
9
Fibrocalcific aortic valve disease: opportunity to understand disease mechanisms using mouse models.纤维性钙化主动脉瓣疾病:利用小鼠模型了解疾病机制的机会。
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10
Molecular and cellular aspects of calcific aortic valve disease.钙化性主动脉瓣疾病的分子和细胞方面。
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用成体干细胞在内部接种的瓣膜支架的生物反应器调节

Bioreactor Conditioning of Valve Scaffolds Seeded Internally with Adult Stem Cells.

作者信息

Kennamer Allison, Sierad Leslie, Pascal Richard, Rierson Nicholas, Albers Christopher, Harpa Marius, Cotoi Ovidiu, Harceaga Lucian, Olah Peter, Terezia Preda, Simionescu Agneta, Simionescu Dan

机构信息

Biocompatibility and Tissue Regeneration Laboratories, Department of Bioengineering, Clemson University, Clemson, SC, USA.

Tissue Engineering and Regenerative Medicine Laboratory, Department of Anatomy, University of Medicine and Pharmacy, Targu Mures, Romania.

出版信息

Tissue Eng Regen Med. 2016 Oct;13(5):507-515. doi: 10.1007/s13770-016-9114-1. Epub 2016 Oct 20.

DOI:10.1007/s13770-016-9114-1
PMID:30337944
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6170839/
Abstract

The goal of this study was to test the hypothesis that stem cells, as a response to valve-specific extracellular matrix "niches" and mechanical stimuli, would differentiate into valvular interstitial cells (VICs). Porcine aortic root scaffolds were prepared by decellularization. After verifying that roots exhibited adequate hemodynamics , we seeded human adipose-derived stem cells (hADSCs) within the interstitium of the cusps and subjected the valves to pulsatile bioreactor testing in pulmonary pressures and flow conditions. As controls we incubated cell-seeded valves in a rotator device which allowed fluid to flow through the valves ensuring gas and nutrient exchange without subjecting the cusps to significant stress. After 24 days of conditioning, valves were analyzed for cell phenotype using immunohistochemistry for vimentin, alpha-smooth muscle cell actin (SMA) and prolyl-hydroxylase (PHA). Fresh native valves were used as immunohistochemistry controls. Analysis of bioreactor-conditioned valves showed that almost all seeded cells had died and large islands of cell debris were found within each cusp. Remnants of cells were positive for vimentin. Cell seeded controls, which were only rotated slowly to ensure gas and nutrient exchange, maintained about 50% of cells alive; these cells were positive for vimentin and negative for alpha-SMA and PHA, similar to native VICs. These results highlight for the first time the extreme vulnerability of hADSCs to valve-specific mechanical forces and also suggest that careful, progressive mechanical adaptation to valve-specific forces might encourage stem cell differentiation towards the VIC phenotype.

摘要

本研究的目的是验证以下假设

干细胞作为对瓣膜特异性细胞外基质“微环境”和机械刺激的反应,会分化为瓣膜间质细胞(VIC)。通过去细胞化制备猪主动脉根部支架。在验证根部具有足够的血流动力学性能后,我们将人脂肪来源干细胞(hADSC)接种到瓣叶间质中,并使瓣膜在肺压力和血流条件下进行脉动生物反应器测试。作为对照,我们将接种细胞的瓣膜置于旋转装置中孵育,该装置可使液体流过瓣膜,确保气体和营养物质交换,同时不会使瓣叶承受显著应力。经过24天的处理后,使用波形蛋白、α平滑肌肌动蛋白(SMA)和脯氨酰羟化酶(PHA)的免疫组织化学方法对瓣膜的细胞表型进行分析。新鲜的天然瓣膜用作免疫组织化学对照。对生物反应器处理后的瓣膜分析显示,几乎所有接种的细胞都已死亡,并且在每个瓣叶内都发现了大片细胞碎片。细胞残余物波形蛋白呈阳性。仅缓慢旋转以确保气体和营养物质交换的接种细胞对照组,约50%的细胞存活;这些细胞波形蛋白呈阳性,α-SMA和PHA呈阴性,与天然VIC相似。这些结果首次突出了hADSC对瓣膜特异性机械力的极端脆弱性,也表明对瓣膜特异性力进行仔细、渐进的机械适应可能会促进干细胞向VIC表型分化。