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电纺纳米纤维:用于骨组织修复的构建单元

Electrospun nanofibers: building blocks for the repair of bone tissue.

作者信息

Serim Tuğrul Mert, Amasya Gülin, Eren-Böncü Tuğba, Şengel-Türk Ceyda Tuba, Özdemir Ayşe Nurten

机构信息

Ankara University, Faculty of Pharmacy, Department of Pharmaceutical Technology, 06560 Ankara, Turkey.

Erciyes University, Faculty of Pharmacy, Department of Pharmaceutical Technology, 38280 Kayseri, Turkey.

出版信息

Beilstein J Nanotechnol. 2024 Jul 25;15:941-953. doi: 10.3762/bjnano.15.77. eCollection 2024.

Abstract

Bone, one of the hardest structures of the body, is the basic constituent of the skeletal system, which gives the shape to the body, provides mechanical support for muscles and soft tissues, and provides movement. Even if there is no damage, bone remodeling is a permanent process to preserve and renew the structural, biochemical, and biomechanical integrity of bone tissue. Apart from the remodeling, bone healing is the highly complicated process of repairing deficiencies of bone tissue by the harmonious operation of osteoblasts, osteocytes, osteoclasts, and bone lining cells. Various materials can be used to both trigger the bone healing process and to provide mechanical support to damaged bone. Nanofiber scaffolds are at the forefront of these types of systems because of their extremely large surface area-to-volume ratio, small pore size, and high porosity. Nanofibers are known to be highly functional systems with the ability to mimic the structure and function of the natural bone matrix, facilitating osteogenesis for cell proliferation and bone regeneration. Electrospinning is an easy and fast method to produce non-woven structures consisting of continuous ultrafine fibers with diameters ranging from micrometers down to nanometers. The simplicity and cost-effectiveness of the electrospinning technique, its ability to use a wide variety of synthetic, natural, and mixed polymers, and the formation of highly porous and continuous fibers are the remarkable features of this method. The importance of nanofiber-based scaffolds in bone tissue regeneration is increasing because of suitable pore size, high porosity, osteoinduction, induction of bone growth with osteoconduction, adaptability to the target area, biodegradation, and appropriate mechanical properties, which are among the main parameters that are important in the design of polymeric bone grafts. The aim of this review is to cast light on the increasing use of nanofiber-based scaffolds in bone tissue regeneration and give an insight about bone regeneration, production techniques of the electrospun nanofibers, and varying formulation parameters in order to reach different drug delivery goals. This review also provides an extensive market research of electrospun nanofibers and an overview on scientific research and patents in the field.

摘要

骨骼是人体最坚硬的结构之一,是骨骼系统的基本组成部分,它赋予身体形状,为肌肉和软组织提供机械支撑,并实现运动功能。即使没有损伤,骨重塑也是一个永久性的过程,以维持和更新骨组织的结构、生化和生物力学完整性。除了重塑之外,骨愈合是一个高度复杂的过程,通过成骨细胞、骨细胞、破骨细胞和骨衬细胞的协调运作来修复骨组织的缺陷。各种材料可用于触发骨愈合过程并为受损骨骼提供机械支撑。纳米纤维支架因其极大的表面积与体积比、小孔径和高孔隙率而处于这类系统的前沿。众所周知,纳米纤维是具有高度功能性的系统,能够模拟天然骨基质的结构和功能,促进细胞增殖的骨生成和骨再生。静电纺丝是一种简单快速的方法,可生产由直径从微米到纳米的连续超细纤维组成的非织造结构。静电纺丝技术的简单性和成本效益、使用多种合成、天然和混合聚合物的能力以及形成高度多孔和连续纤维的特性是该方法的显著特点。基于纳米纤维的支架在骨组织再生中的重要性日益增加,这是因为其合适的孔径、高孔隙率、骨诱导性、通过骨传导诱导骨生长、对目标区域的适应性、生物降解性以及适当的机械性能,这些都是聚合物骨移植设计中重要的主要参数。本综述的目的是阐明基于纳米纤维的支架在骨组织再生中日益增加的应用,并深入了解骨再生、电纺纳米纤维的生产技术以及为实现不同药物递送目标而变化的配方参数。本综述还提供了对电纺纳米纤维的广泛市场研究以及该领域的科学研究和专利概述。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6d13/11285077/e3619225596d/Beilstein_J_Nanotechnol-15-941-g002.jpg

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