Parvin Nargish, Joo Sang Woo, Jung Jae Hak, Mandal Tapas K
School of Mechanical Engineering, Yeungnam University, Gyeongsan 38541, Republic of Korea.
School of Chemical Engineering, Yeungnam University, Gyeongsan 38541, Republic of Korea.
Micromachines (Basel). 2025 Mar 31;16(4):419. doi: 10.3390/mi16040419.
The rapid evolution of micro- and nano-architectures is revolutionizing biomedical engineering, particularly in the fields of therapeutic and diagnostic micromechanics. This review explores the recent innovations in micro- and nanostructured materials and their transformative impact on healthcare applications, ranging from drug delivery and tissue engineering to biosensing and diagnostics. Key advances in fabrication techniques, such as lithography, 3D printing, and self-assembly, have enabled unprecedented control over material properties and functionalities at microscopic scales. These engineered architectures offer enhanced precision in targeting and controlled release in drug delivery, foster cellular interactions in tissue engineering, and improve sensitivity and specificity in diagnostic devices. We examine critical design parameters, including biocompatibility, mechanical resilience, and scalability, which influence their clinical efficacy and long-term stability. This review also highlights the translational potential and current limitations in bringing these materials from the laboratory research to practical applications. By providing a comprehensive overview of the current trends, challenges, and future perspectives, this article aims to inform and inspire further development in micro- and nano-architectures that hold promise for advancing personalized and precision medicine.
微米和纳米结构的快速发展正在彻底改变生物医学工程,尤其是在治疗和诊断微力学领域。本综述探讨了微纳结构材料的最新创新及其对医疗保健应用的变革性影响,涵盖从药物递送、组织工程到生物传感和诊断等领域。制造技术的关键进展,如光刻、3D打印和自组装,实现了在微观尺度上对材料特性和功能前所未有的控制。这些工程结构在药物递送中的靶向和控释方面提供了更高的精度,促进了组织工程中的细胞相互作用,并提高了诊断设备的灵敏度和特异性。我们研究了关键设计参数,包括生物相容性、机械弹性和可扩展性,这些参数会影响它们的临床疗效和长期稳定性。本综述还强调了将这些材料从实验室研究转化为实际应用的潜力和当前局限性。通过全面概述当前趋势、挑战和未来前景,本文旨在为推进个性化和精准医学有望取得进展的微纳结构的进一步发展提供信息并激发灵感。