首页> 美国卫生研究院文献>Tissue Engineering. Part A >Periodontal Ligament Cells Cultured Under Steady-Flow Environments Demonstrate Potential for Use in Heart Valve Tissue Engineering
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Periodontal Ligament Cells Cultured Under Steady-Flow Environments Demonstrate Potential for Use in Heart Valve Tissue Engineering

机译:在稳定流动环境下培养的牙周膜细胞显示出在心脏瓣膜组织工程中使用的潜力

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摘要

A major drawback of mechanical and prosthetic heart valves is their inability to permit somatic growth. By contrast, tissue-engineered pulmonary valves potentially have the capacity to remodel and integrate with the patient. For this purpose, adult stem cells may be suitable. Previously, human periodontal ligament cells (PDLs) have been explored as a reliable and robust progenitor cell source for cardiac muscle regeneration (Pelaez, D. Electronic Thesis and Dissertation Database, Coral Gables, FL, May 2011). Here, we investigate the potential of PDLs to support the valve lineage, specifically the concomitant differentiation to both endothelial cell (EC) and smooth muscle cell (SMC) types. We were able to successfully promote PDL differentiation to both SMC and EC phenotypes through a combination of stimulatory approaches using biochemical and mechanical flow conditioning (steady shear stress of 1 dyne/cm2), with flow-based mechanical conditioning having a predominant effect on PDL differentiation, particularly to ECs; in addition, strong expression of the marker FZD2 and an absence of the marker MLC1F point toward a unique manifestation of smooth muscle by PDLs after undergoing steady-flow mechanical conditioning alone, possible by only the heart valve and pericardium phenotypes. It was also determined that steady flow (which was performed using a physiologically relevant [for heart valves] magnitude of ∼5–6 dynes/cm2) augmented the synthesis of the extracellular matrix collagen proteins. We conclude that under steady-flow dynamic culture environments, human PDLs can differentiate to heterogeneous cell populations that are relevant to heart valve tissue engineering. Further exploration of human PDLs for this purpose is thus warranted.
机译:机械和人工心脏瓣膜的主要缺点是它们不能允许体细胞生长。相比之下,组织工程化的肺动脉瓣可能具有重塑患者并与患者融合的能力。为此目的,成体干细胞可能是合适的。以前,人类牙周膜细胞(PDL)已被研究为可用于心肌再生的可靠且健壮的祖细胞来源(Pelaez,D. Electronic Thesis and Dissertation Database,Coral Gables,FL,2011年5月)。在这里,我们研究了PDLs支持瓣膜谱系的潜力,特别是同时分化为内皮细胞(EC)和平滑肌细胞(SMC)类型。通过使用生化和机械流调节(稳态剪切应力为1达因/ cm 2 )的刺激方法,我们能够成功地通过刺激方法的组合成功地促进PDL分化为SMC和EC表型对PDL分化,特别是对EC的分化具有主要影响的调节;此外,标记FZD2的强表达和标记MLC1F的缺失表明仅在接受稳定流机械调节后,PDL才能使平滑肌具有独特的表现,这仅可能由心脏瓣膜和心包表型所致。还确定了稳定流动(这是使用生理相关的(对于心脏瓣膜而言)约5-6达因/ cm 2 的量执行的)增加了细胞外基质胶原蛋白的合成。我们得出的结论是,在稳定流动态培养环境下,人PDL可以分化为与心脏瓣膜组织工程相关的异种细胞群体。因此,需要进一步探索人类PDL。

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