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Insight into the rheological behaviors of a polyanionic collagen fabricated with poly(gamma-glutamic acid)-NHS ester

机译:深入了解用聚(γ-谷氨酸)制备的多变胶原的流变行为-NHS酯

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摘要

The rheological behaviors of a polyanionic collagen, fabricated using poly(gamma-glutamic acid)-N-hydroxysuccinimide (gamma-PGA-NHS) as a novel modifier, were investigated in this study. It was found that both of the native and modified collagen solutions were pseudoplastic fluids, as shown from the steady-shear tests. While the storage modulus and loss modulus of collagen increased with increasing the amount of gamma-PGA-NHS, or with increasing the degree of esterification of gamma-PGA-NHS; meanwhile, the dynamic denaturation temperature determined by dynamic temperature sweep was also increased, indicating an improved thermal stability of collagen solution modified by gamma-PGA-NHS. The creep-recovery measurements showed that the resistance to deformation was enhanced for modified collagen, probably due to the cross-linking occurred between the epsilon-amino groups of collagen molecules and alpha-COOH groups of gamma-PGA-NHS, as well as the electrostatic interaction and hydrogen-bond interactions between the two molecules. Furthermore, the aggregation of collagen fibers was promoted due to these interactions between collagen and gamma-PGA-NHS as observed by atomic force morphology. In addition, the modified collagen exhibited good cytocompatibility as demonstrated by cell growth culturing. The obtained information was expected to give valuable clues to the design and fabrication of controlled stable collagen-based products for applications in various biomedical fields.
机译:在本研究中研究了使用聚(γ-谷氨酸)-N-羟基琥珀酰亚胺(Gamma-PGA-NHS)制造的聚阴离子胶原的流变行为作为新型改性剂。发现两种天然和改性的胶原溶液是假塑性的液体,如稳定剪切试验所示。虽然胶原蛋白的储存模量和损失模量随着γ-PGA-NHS的量增加而增加,或者随着γ-PGA-NHS的酯化程度的增加而增加;同时,通过动态温度扫描确定的动态变性温度也增加,表明通过γ-PGA-NHS改性的胶原溶液的热稳定性提高。蠕变恢复测量表明,改性胶原蛋白增强了对变形的抗性,可能是由于胶原蛋白分子和γ-PGA-NHS的α-CoOH基团的ε-氨基之间发生的交联以及两种分子之间的静电相互作用和氢键相互作用。此外,由于原子能形态观察到的胶原和γ-PGA-NHS之间的这些相互作用,促进了胶原纤维的聚集。此外,通过细胞生长培养证明,改性胶原蛋白表现出良好的细胞组成性。所获得的信息预计将为各种生物医学领域的应用提供控制稳定的胶原产品的设计和制造的有价值的线索。

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