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NANOFIBROUS COMPOSITE SCAFFOLDS OF POLY (ESTER AMIDES) WITH TUNABLE PHYSICOCHEMICAL AND DEGRADATION PROPERTIES

机译:具有可调节的理化和降解特性的聚(酯酰胺)的纳米纤维复合脚手架

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摘要

Polymeric elastomers like Poly (1,3-diamino-2-hydroxypropane-co-polyol sebacate) (APS) have gained importance in soft tissue engineering applications due to their tunable mechanical properties and biodegradability. The fabrication of extracellular matrix (ECM)-mimetic nanofibrous scaffolds using APS is however limited due to its poor solubility in commonly used solvents, low viscosity and high temperatures required for thermal curing. In this study, we have overcome these limitations of APS by blending un-crosslinked APS pre-polymer with polycaprolactone (PCL), and have successfully fabricated ECM-mimetic nanofibrous APS scaffolds for the first time. The developed fibrous scaffolds were further characterized for their physicochemical, thermal, mechanical and degradation properties. Effects of APS:PCL weight ratios (0:1, 1:1, 2:1 and 4:1) and total polymer concentration (15-30% w/v) on the fiber morphology, tensile properties, chemical and thermal properties of the APS-PCL composite scaffolds were investigated. Higher APS concentrations in the polymer blend resulted in formation of fused fibers and thus, increased fiber diameters. The degree of hydration and consequently, degradation rate of the scaffolds increased with the APS concentration. The FTIR and DSC studies showed selective loss of APS polymer from composite scaffolds after degradation. Scaffolds with 1:1 APS:PCL ratio exhibited maximum elastic modulus (EM) of 30 ± 2.5 MPa compared to 0:1, 2:1 and 4:1 ratios. Increasing total polymer concentrations (15-30% w/v) at constant (2:1) APS:PCL ratio increased stiffness and tensile strength of the electrospunudNANOFIBROUS COMPOSITE SCAFFOLDS OF POLY(ESTER AMIDES) WITH TUNABLE PHYSICOCHEMICAL AND DEGRADATION PROPERTIESudFNU Shilpaa Mukundan, M.S.udUniversity of Pittsburgh, 2015udvudscaffolds. Biocompatibility studies using C2C12 mouse myoblast cells showed enhanced cell spreading on APS containing scaffolds after 6h as compared to PCL-only scaffolds. Thus, the present study demonstrates successful development of APS-based thermoset elastomeric nanofibrous scaffolds by blending with semicrystalline PCL polymer for the first time. Tunable physicochemical, mechanical and degradation properties of these composite APS-PCL scaffolds will be further exploited for skeletal muscle tissue engineering applications.udKeywords Poly(1,3-diamino-2-hydroxypropane-co-polyol sebacate)(APS); Polycaprolactone (PCL), myoblasts, electrospinning, nanofibrous scaffolds
机译:诸如聚(1,3-二氨基-2-羟基丙烷-癸二酸酯共聚多元醇癸二酸酯)(APS)之类的聚合弹性体由于其可调节的机械性能和可生物降解性而在软组织工程应用中变得越来越重要。然而,由于其在常用溶剂中的溶解性差,热固化所需的低粘度和高温,使用APS制备模拟细胞外基质(ECM)的纳米纤维支架受到了限制。在这项研究中,我们通过将未交联的APS预聚物与聚己内酯(PCL)混合克服了APS的这些局限性,并且首次成功地制造了模拟ECM的纳米纤维APS支架。发达的纤维支架的理化,热,机械和降解特性得到进一步表征。 APS:PCL重量比(0:1、1:1、2:1和4:1)和总聚合物浓度(15-30%w / v)对纤维形态,拉伸性能,化学和热性能的影响研究了APS-PCL复合支架。聚合物共混物中较高的APS浓度导致形成熔融纤维,从而增加了纤维直径。随APS浓度的增加,水合度和因此支架的降解率增加。 FTIR和DSC研究表明,降解后复合支架会选择性损失APS聚合物。与0:1、2:1和4:1的比率相比,具有1:1的APS:PCL比率的支架表现出30±2.5 MPa的最大弹性模量(EM)。在恒定(2:1)的APS:PCL比下,增加总聚合物浓度(15-30%w / v)可提高具有可调节物理化学和降解特性的聚(酯酰胺)电纺纳米纤维复合脚手架的刚度和拉伸强度 udFNU Shilpaa Mukundan,MS ud匹兹堡大学,2015 udv udscaffolds。使用C2C12小鼠成肌细胞的生物相容性研究显示,与仅使用PCL的支架相比,在6h后,含有APS的支架的细胞扩散增强。因此,本研究证明了通过与半结晶PCL聚合物的首次混合成功开发了基于APS的热固性弹性体纳米纤维支架。这些复合APS-PCL支架的可调节的理化,机械和降解特性将进一步用于骨骼肌组织工程应用。 ud关键字聚(1,3-二氨基-2-羟基丙烷-共聚癸二酸酯共聚物)(APS);聚己内酯(PCL),成肌细胞,静电纺丝,纳米纤维支架

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    Shilpaa Mukundan FNU;

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