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PCL-PDMS-PCL Copolymer-Based Microspheres Mediate Cardiovascular Differentiation from Embryonic Stem Cells

机译:基于PCL-PDMS-PCL共聚物的微球从胚胎干细胞中介导心血管分化

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Poly--caprolactone (PCL) based microspheres have received much attention as drug or growth factor delivery carriers and tissue engineering scaffolds due to their biocompatibility, biodegradability, and tunable biophysical properties. In addition, PCL and polydimethylsiloxane (PDMS) can be fabricated into thermoresponsive shape memory polymers for various biomedical applications (e.g., smart sutures and vascular stents). However, the influence of biophysical properties of PCL-PDMS based microspheres on stem cell lineage commitment has not been well understood. In this study, PDMS was used as soft segments of varying length to tailor the elastic modulus of PCL-based copolymers. It was found that lower elastic modulus (<10kPa) of the tri-block copolymer PCL-PDMS-PCL promoted vascular differentiation of embryonic stem cells, but the range of 60-100MPa PCL-PDMS-PCL had little influence on cardiovascular differentiation. Then different sizes (30-140m) of PCL-PDMS-PCL microspheres were fabricated and incorporated with embryoid bodies (EBs). Differential expression of KDR, CD31, and VE-cadherin was observed for the EBs containing microspheres of different sizes. Higher expression of KDR was observed for the condition with small size of microspheres (32m), while higher CD31 and VE-cadherin expression was observed for the group of medium size of microspheres (94m). Little difference in cardiac marker -actinin was observed for different microspheres. This study indicates that the biophysical properties of PCL-PDMS-PCL microspheres impact vascular lineage commitment and have implications for drug delivery and tissue engineering.
机译:由于其生物相容性,生物分解性和可调谐生物物理性质,聚己内酯(PCL)基础的微球作为药物或生长因子输送载体和组织工程支架。此外,PCL和聚二甲基硅氧烷(PDMS)可以制造成用于各种生物医学应用的热响应形状记忆聚合物(例如,智能缝合线和血管支架)。然而,没有很好地理解PCL-PDMS基微球对干细胞谱系承诺的影响。在该研究中,PDMS被用作不同长度的软段,以定制基于PCL的共聚物的弹性模量。结果发现,三嵌段共聚物PCL-PCL-PDMS-PCL的较低弹性模量(<10kPa)促进了胚胎干细胞的血管分化,但是60-100MPa PCL-PDMS-PCL的范围对心血管分化几乎没有影响。然后制造不同尺寸(30-140米)的PCL-PDMS-PCL微球并掺入胚胎体(EBS)。对于含有不同尺寸的微球的EBS观察到KDR,CD31和Ve-Cadherin的差异表达。对于小尺寸的微球(32M)的条件,观察到KDR的更高表达,而Microshes(94m)的中等尺寸组观察到更高的CD31和Ve-Cadherin表达。针对不同的微球观察到心脏标记物差异很小。本研究表明,PCL-PDMS-PCL微球的生物物理性质影响血管谱系承诺,对药物递送和组织工程有影响。

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