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Growing a backbone - functional biomaterials and structures for intervertebral disc (IVD) repair and regeneration: challenges, innovations, and future directions

机译:生长骨干 - 功能性生物材料和椎间盘(IVD)修理和再生的结构:挑战,创新和未来方向

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摘要

Back pain and associated maladies can account for an immense amount of healthcare cost and loss of productivity in the workplace. In particular, spine related injuries in the US affect upwards of 5.7 million people each year. The degenerative disc disease treatment almost always arises due to a clinical presentation of pain and/or discomfort. Preferred conservative treatment modalities include the use of non-steroidal anti-inflammatory medications, physical therapy, massage, acupuncture, chiropractic work, and dietary supplements like glucosamine and chondroitin. Artificial disc replacement, also known as total disc replacement, is a treatment alternative to spinal fusion. The goal of artificial disc prostheses is to replicate the normal biomechanics of the spine segment, thereby preventing further damage to neighboring sections. Artificial functional disc replacement through permanent metal and polymer-based components continues to evolve, but is far from recapitulating native disc structure and function, and suffers from the risk of unsuccessful tissue integration and device failure. Tissue engineering and regenerative medicine strategies combine novel material structures, bioactive factors and stem cells alone or in combination to repair and regenerate the IVD. These efforts are at very early stages and a more in-depth understanding of IVD metabolism and cellular environment will also lead to a clearer understanding of the native environment which the tissue engineering scaffold should mimic. The current review focusses on the strategies for a successful regenerative scaffold for IVD regeneration and the need for defining new materials, environments, and factors that are so finely tuned in the healthy human intervertebral disc in hopes of treating such a prevalent degenerative process.
机译:背部疼痛和相关疫苗可以占工作场所的巨大医疗保健成本和生产力损失。特别是,美国的脊柱相关伤害每年影响570万人。由于临床呈现疼痛和/或不适而临床呈现,退行性椎间盘疾病治疗几乎总是出现。优选的保守治疗方式包括使用非甾体类抗炎药,物理治疗,按摩,针灸,膀胱催碱性工作和葡萄糖胺和软骨素等膳食补充剂。人造盘替代品,也称为总盘替代品,是脊柱融合的治疗方法。人造光盘假体的目标是复制脊柱段的正常生物力学,从而防止对周边部分的进一步损坏。通过永久金属和基于聚合物的组件更换人工功能圆盘更换,并且远远不断发展,但远远远非重新承载天然盘结构和功能,并且遭受不成功的组织集成和器件故障的风险。组织工程和再生医学策略结合了新颖的材料结构,生物活性因子和干细胞,或组合修复和再生IVD。这些努力处于非常早期的阶段,更深入地了解IVD新陈代谢和细胞环境也将导致对组织工程支架应该模仿的原生环境的了解。目前的审查重点关注用于IVD再生成功的再生脚手架的战略,并且需要定义在健康人椎间盘中如此精细调整的新材料,环境和因素的需要,希望治疗这种普遍的退行性过程。

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