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药物递送系统背景下的混沌(生物)打印

Chaotic (bio)printing in the context of drug delivery systems.

作者信息

Alvarez Mario Moisés, Cantoral-Sánchez Ariel, Trujillo-de Santiago Grissel

机构信息

Centro de Biotecnología-FEMSA, Escuela de Ingeniería y Ciencias, Tecnologico de Monterrey, Monterrey, NL 64849, Mexico; Departamento de Ingeniería Mecatrónica y Eléctrica, Escuela de Ingeniería y Ciencias, Tecnologico de Monterrey, Monterrey, NL 64849, Mexico; Departamento de Bioingeniería, Escuela de Ingeniería y Ciencias, Tecnologico de Monterrey, Monterrey, NL 64849, Mexico.

Centro de Biotecnología-FEMSA, Escuela de Ingeniería y Ciencias, Tecnologico de Monterrey, Monterrey, NL 64849, Mexico; Departamento de Bioingeniería, Escuela de Ingeniería y Ciencias, Tecnologico de Monterrey, Monterrey, NL 64849, Mexico.

出版信息

Adv Drug Deliv Rev. 2025 Jan;216:115475. doi: 10.1016/j.addr.2024.115475. Epub 2024 Nov 17.

Abstract

Chaotic (bio)printing, an innovative fabrication technique that uses chaotic flows to create highly ordered microstructures within materials, may be transformative for drug delivery systems. This review explores the principles underlying chaotic flows and their application in fabricating complex, multi-material constructs designed for advanced drug delivery and controlled release. Chaotic printing enables the precise layering of different active ingredients-a feature that may greatly facilitate the development of polypills with customizable release profiles. Recently, chaos-assisted fabrication has been extended to produce micro-architected hydrogel spheres in a high-throughput manner, potentially enhancing the versatility and efficiency of drug delivery methods. In addition, chaotic bioprinting enables the creation of evolved tissue models that more accurately emulate physiological systems, providing a more relevant platform for drug testing. This review also highlights the unique advantages of chaotic printing, including the ability to fabricate tissues with organized porosity and pre-vascularized structures, addressing critical challenges in tissue engineering. Despite its promising capabilities, challenges remain, particularly in expanding the range of materials compatible with chaotic printing. Continued research and development in this area are essential to fully realize the potential of chaotic (bio)printing in advancing drug delivery, paving the way for the next generation of smart drug delivery systems and functional tissue models for drug testing.

摘要

混沌(生物)打印是一种创新的制造技术,它利用混沌流在材料内部创建高度有序的微观结构,可能会给药物递送系统带来变革。本综述探讨了混沌流背后的原理及其在制造用于先进药物递送和控释的复杂多材料结构中的应用。混沌打印能够精确地分层不同的活性成分,这一特性可能极大地促进具有可定制释放曲线的复方药丸的开发。最近,混沌辅助制造已扩展到以高通量方式生产微结构水凝胶球,有可能提高药物递送方法的通用性和效率。此外,混沌生物打印能够创建更准确模拟生理系统的进化组织模型,为药物测试提供更相关的平台。本综述还强调了混沌打印的独特优势,包括制造具有有组织孔隙率和预血管化结构的组织的能力,解决了组织工程中的关键挑战。尽管其具有令人期待的能力,但挑战依然存在,尤其是在扩大与混沌打印兼容的材料范围方面。该领域持续的研发对于充分实现混沌(生物)打印在推进药物递送方面的潜力至关重要,为下一代智能药物递送系统和用于药物测试的功能性组织模型铺平道路。

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