生物医学应用中的聚赖氨酸:从复合材料到突破。

Deepak Arun Annamalai, Erina Hilaj, Manisha Singh, Manjunath C, Ahmed Raheem Rayshan, Manish Sharma, Pankaj Nainwal, Ambati Vijay Kumar, Alka N Choudhary
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引用次数: 0

摘要

聚赖氨酸基复合材料因其多功能性、生物兼容性和可调特性,已成为生物医学应用中颇具前景的材料。在给药方面,聚赖氨酸基复合材料为治疗药物的定向和控制释放提供了一个新平台。聚赖氨酸基复合材料的高负载能力和封装多种药物的能力使其成为解决药物稳定性和控释动力学等难题的理想候选材料。此外,它们的生物相容性确保了最小的细胞毒性,这对生物医学应用至关重要。它们还能提供具有可调机械特性和表面性质的支架,支持细胞粘附、增殖和分化,因此在组织工程方面具有巨大的潜力。此外,它们的生物活性还有利于细胞相互作用,促进组织再生和整合。伤口愈合是聚赖氨酸基复合材料大有可为的另一个领域。聚赖氨酸的抗菌特性有助于防止感染,而其促进细胞迁移和增殖的能力则可加速伤口愈合过程。加入生长因子或其他生物活性分子可进一步提高其治疗效果。在生物传感应用中,它们是固定生物分子和传感元件的坚固基底。它们的高表面积体积比和出色的生物相容性提高了传感器的灵敏度和选择性,从而能够准确检测生物样本中的生物标记物或分析物。总之,聚赖氨酸基复合材料是一种多功能平台,在生物医学研究和临床实践中有多种应用,在应对各种医疗挑战方面大有可为。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Polylysine in biomedical applications: from composites to breakthroughs.

Polylysine-based composites have emerged as promising materials in biomedical applications due to their versatility, biocompatibility, and tunable properties. In drug delivery, polylysine-based composites furnish a novel platform for targeted and controlled release of therapeutic agents. Their high loading capacity and capability to encapsulate diverse drugs make them ideal candidates for addressing challenges such as drug stability and controlled release kinetics. Additionally, their biocompatibility ensures minimal cytotoxicity, vital for biomedical applications. They also hold substantial potential in tissue engineering by providing a scaffold with tunable mechanical characteristics and surface properties, and can support cell adhesion, proliferation, and differentiation. Furthermore, their bioactive nature facilitates cellular interactions, promoting tissue regeneration and integration. Wound healing is another area where polylysine-based composites show promise. Their antimicrobial properties help prevent infections, while their ability to foster cell migration and proliferation accelerates the wound healing procedure. Incorporation of growth factors or other bioactive molecules further enhances their therapeutic effectiveness. In biosensing applications, they serve as robust substrates for immobilizing biomolecules and sensing elements. Their high surface area-to-volume ratio and excellent biocompatibility improve sensor sensitivity and selectivity, enabling accurate detection of biomarkers or analytes in biological samples. Polylysine-based composites offer potential as contrast agents in bioimaging, aiding in diagnosis and monitoring of diseases. Overall, polylysine-based composites represent a versatile platform with diverse applications in biomedical research and clinical practice, holding great promise for addressing various healthcare challenges. .

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