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Growth factor sequestration and enzyme-mediated release from genipin-crosslinked gelatin microspheres

机译:生长素螯合和酶介导的Genipin交联明胶微球释放

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摘要

Controlled release of growth factors allows the efficient, localized, and temporally-optimized delivery of bioactive molecules to potentiate natural physiological processes. This concept has been applied to treatments for pathological states, including chronic degeneration, wound healing, and tissue regeneration. Peptide microspheres are particularly suited for this application because of their low cost, ease of manufacture, and interaction with natural remodeling processes active during healing. The present study characterizes gelatin microspheres for the entrapment and delivery of growth factors, with a focus on tailored protein affinity, loading capacity, and degradation-mediated release. Genipin crosslinking in PBS and CHES buffers produced average microsphere sizes ranging from 15 to 30 microns with population distributions ranging from about 15 to 60 microns. Microsphere formulations were chosen based on properties important for controlled transient and spatial delivery, including size, consistency, and stability. The microsphere charge affinity was found to be dependent on gelatin type, with type A (GelA) carriers consistently having a lower negative charge than equivalent type B (GelB) carriers. A higher degree of crosslinking, representative of primary amine consumption, resulted in a greater negative net charge. Gelatin type was found to be the strongest determinant of degradation, with GelA carriers degrading at higher rates versus similarly crosslinked GelB carriers. Growth factor release was shown to depend upon microsphere degradation by proteolytic enzymes, while microspheres in inert buffers showed long-term retention of growth factors. These studies illuminate fabrication and processing parameters that can be used to control spatial and temporal release of growth factors from gelatin-based microspheres.
机译:生长因子的受控释放允许生物活性分子的有效,局部和时间优化传递,以增强自然生理过程。该概念已应用于病理状态的治疗,包括慢性变性,伤口愈合和组织再生。肽微球因其低成本,易于制造以及与在愈合过程中活跃的自然重塑过程的相互作用而特别适合于此应用。本研究表征明胶微球的生长因子的诱捕和传递,重点是定制的蛋白亲和力,负载能力和降解介导的释放。 PBS和CHES缓冲液中的Genipin交联产生的平均微球尺寸为15至30微米,群体分布范围为约15至60微米。选择微球制剂的依据是对受控的瞬态和空间传递至关重要的特性,包括大小,稠度和稳定性。发现微球电荷亲和力取决于明胶类型,其中A型(GelA)载体始终具有比同等B型(GelB)载体更低的负电荷。较高的交联度(代表伯胺的消耗量)导致较大的负净电荷。发现明胶类型是降解的最强决定因素,与类似交联的GelB载体相比,GelA载体降解的速率更高。已显示生长因子的释放取决于蛋白水解酶对微球的降解,而惰性缓冲液中的微球则显示出生长因子的长期保留。这些研究阐明了可用于控制明胶基微球中生长因子的时空释放的制造和加工参数。

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