Shahriar S M Shatil, Mondal Jagannath, Hasan Mohammad Nazmul, Revuri Vishnu, Lee Dong Yun, Lee Yong-Kyu
Department of Chemical and Biological Engineering, Korea National University of Transportation, Chungju 27469, Korea.
Department of Green Bio Engineering, Korea National University of Transportation, Chungju 27469, Korea.
Nanomaterials (Basel). 2019 Apr 3;9(4):532. doi: 10.3390/nano9040532.
The limitations of conventional therapeutic drugs necessitate the importance of developing novel therapeutics to treat diverse diseases. Conventional drugs have poor blood circulation time and are not stable or compatible with the biological system. Nanomaterials, with their exceptional structural properties, have gained significance as promising materials for the development of novel therapeutics. Nanofibers with unique physiochemical and biological properties have gained significant attention in the field of health care and biomedical research. The choice of a wide variety of materials for nanofiber fabrication, along with the release of therapeutic payload in sustained and controlled release patterns, make nanofibers an ideal material for drug delivery research. Electrospinning is the conventional method for fabricating nanofibers with different morphologies and is often used for the mass production of nanofibers. This review highlights the recent advancements in the use of nanofibers for the delivery of therapeutic drugs, nucleic acids and growth factors. A detailed mechanism for fabricating different types of nanofiber produced from electrospinning, and factors influencing nanofiber generation, are discussed. The insights from this review can provide a thorough understanding of the precise selection of materials used for fabricating nanofibers for specific therapeutic applications and also the importance of nanofibers for drug delivery applications.
传统治疗药物的局限性使得开发新型治疗方法来治疗各种疾病变得至关重要。传统药物血液循环时间短,且不稳定或与生物系统不兼容。纳米材料凭借其独特的结构特性,作为开发新型治疗方法的有前景材料而受到重视。具有独特物理化学和生物学特性的纳米纤维在医疗保健和生物医学研究领域受到了极大关注。用于制造纳米纤维的材料种类繁多,以及治疗载荷以持续和可控的方式释放,使得纳米纤维成为药物递送研究的理想材料。静电纺丝是制造具有不同形态纳米纤维的传统方法,常用于纳米纤维的大规模生产。本综述重点介绍了纳米纤维在治疗药物、核酸和生长因子递送方面的最新进展。讨论了通过静电纺丝制造不同类型纳米纤维的详细机制以及影响纳米纤维生成的因素。本综述的见解可以提供对用于特定治疗应用的纳米纤维制造材料精确选择的全面理解,以及纳米纤维在药物递送应用中的重要性。