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近年来,生物疗法在椎间盘退变治疗方面的进展:纤维环、髓核和整个椎间盘的组织工程。

Recent advances in biological therapies for disc degeneration: tissue engineering of the annulus fibrosus, nucleus pulposus and whole intervertebral discs.

机构信息

Department of Biomedical Engineering, Cornell University, Ithaca, NY, United States.

出版信息

Curr Opin Biotechnol. 2013 Oct;24(5):872-9. doi: 10.1016/j.copbio.2013.04.012. Epub 2013 Jun 14.

Abstract

Advanced intervertebral disc (IVD) degeneration, a major cause of back pain in the United States, is treated using invasive surgical intervention which may cause further degeneration is the future. Because of the limitations of traditional solutions, tissue engineering therapies have become increasingly popular. IVDs have two distinct regions, the inner nucleus pulposus (NP) which is jelly-like and rich in glycosaminoglycans (GAGs) and the outer annulus fibrosus (AF) which is organized into highly collagenous lamellae. Tissue engineered scaffolds, as well as whole organ culture systems have been developed. These culture systems may help elucidate the initial causes of disc degeneration. To create an effective tissue engineered therapy, researchers have focused on designing materials that mimic the properties of these two regions to be used independently or in concert. The few in vivo studies show promise in retaining disc height and MRI T2 signal intensity, the gold standard in determining disc health.

摘要

先进的椎间盘(IVD)退变是美国背痛的主要原因,采用侵袭性手术干预治疗,这可能导致未来进一步退变。由于传统解决方案的局限性,组织工程疗法越来越受到欢迎。IVD 有两个明显的区域,内部核髓(NP)呈果冻状,富含糖胺聚糖(GAG),外部纤维环(AF)组织成高度胶原质的薄片。已经开发出组织工程支架和整个器官培养系统。这些培养系统可能有助于阐明椎间盘退变的最初原因。为了创建有效的组织工程治疗方法,研究人员专注于设计模仿这两个区域特性的材料,以单独或协同使用。少数体内研究显示出保持椎间盘高度和 MRI T2 信号强度的潜力,这是确定椎间盘健康的金标准。

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