Phutane Prasanna, Telange Darshan, Agrawal Surendra, Gunde Mahendra, Kotkar Kunal, Pethe Anil
Department of Pharmaceutics, Datta Meghe Institute of Higher Education and Research, Datta Meghe College of Pharmacy, Wardha 442004, MH, India.
Department of Pharmaceutical Chemistry, Datta Meghe Institute of Higher Education and Research, Datta Meghe College of Pharmacy, Wardha 442004, MH, India.
Polymers (Basel). 2023 Feb 27;15(5):1202. doi: 10.3390/polym15051202.
The limited ability of most human tissues to regenerate has necessitated the interventions namely autograft and allograft, both of which carry the limitations of its own. An alternative to such interventions could be the capability to regenerate the tissue in vivo.Regeneration of tissue using the innate capacity of the cells to regenerate is studied under the discipline of tissue engineering and regenerative medicine (TERM). Besides the cells and growth-controlling bioactives, scaffolds play the central role in TERM which is analogous to the role performed by extracellular matrix (ECM) in the vivo. Mimicking the structure of ECM at the nanoscale is one of the critical attributes demonstrated by nanofibers. This unique feature and its customizable structure to befit different types of tissues make nanofibers a competent candidate for tissue engineering. This review discusses broad range of natural and synthetic biodegradable polymers employed to construct nanofibers as well as biofunctionalization of polymers to improve cellular interaction and tissue integration. Amongst the diverse ways to fabricate nanofibers, electrospinning has been discussed in detail along with advances in this technique. Review also presents a discourse on application of nanofibers for a range of tissues, namely neural, vascular, cartilage, bone, dermal and cardiac.
大多数人体组织再生能力有限,因此需要自体移植和异体移植等干预措施,但这两种方法都有其自身的局限性。这种干预措施的一种替代方法可能是在体内再生组织的能力。利用细胞的固有再生能力进行组织再生的研究属于组织工程与再生医学(TERM)学科范畴。除了细胞和生长控制生物活性物质外,支架在组织工程与再生医学中起着核心作用,这类似于细胞外基质(ECM)在体内所起的作用。在纳米尺度上模拟细胞外基质的结构是纳米纤维所具备的关键特性之一。这种独特的特性及其可定制的结构以适应不同类型的组织,使纳米纤维成为组织工程的有力候选材料。这篇综述讨论了用于构建纳米纤维的多种天然和合成可生物降解聚合物,以及聚合物的生物功能化以改善细胞相互作用和组织整合。在制造纳米纤维的多种方法中,静电纺丝已被详细讨论及其技术进展。综述还论述了纳米纤维在一系列组织中的应用,即神经、血管、软骨、骨、皮肤和心脏组织。