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Functionalizing biomaterials to promote neurovascular regeneration following skeletal muscle injury

机译:官能化生物材料以促进骨骼肌损伤后的神经血管再生

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摘要

During embryogenesis, blood vessels and nerves develop with similar branching structure in response to shared signaling pathways guiding network growth. With both systems integral to physiological homeostasis, dual targeting of blood vessels and nerves to promote neurovascular regeneration following injury is an emerging therapeutic approach in biomedical engineering. A limitation to this strategy is that the nature of cross talk between emergent vessels and nerves during regeneration in an adult is poorly understood. Following peripheral nerve transection, intraneural vascular cells infiltrate the site of injury to provide a migratory pathway for mobilized Schwann cells of regenerating axons. As Schwann cells demyelinate, they secrete vascular endothelial growth factor, which promotes angiogenesis. Recent advances point to concomitant restoration of neurovascular architecture and function through simultaneous targeting of growth factors and guidance cues shared by both systems during regeneration. In the context of traumatic injury associated with volumetric muscle loss, we consider the nature of biomaterials used to engineer three-dimensional scaffolds, functionalization of scaffolds with molecular signals that guide and promote neurovascular growth, and seeding scaffolds with progenitor cells. Physiological success is defined by each tissue component of the bioconstruct (nerve, vessel, muscle) becoming integrated with that of the host. * Advances in microfabrication, cell culture techniques, and progenitor cell biology hold great promise for engineering bio-constructs able to restore organ function after volumetric muscle loss.
机译:在胚胎发生过程中,血管和神经以类似的分支结构发育,以响应引导网络生长的共享信号通路。由于这两个系统都是生理内环境平衡的组成部分,血管和神经的双重靶向性促进损伤后的神经血管再生是生物医学工程中一种新兴的治疗方法。这种策略的一个局限性是,对成人再生过程中出现的血管和神经之间的相互作用的性质知之甚少。周围神经切断后,神经内血管细胞浸润损伤部位,为再生轴突的动员雪旺细胞提供迁移途径。当雪旺细胞脱髓鞘时,它们分泌血管内皮生长因子,促进血管生成。最近的进展表明,通过同时瞄准再生过程中两个系统共享的生长因子和引导线索,同时恢复神经血管结构和功能。在创伤性损伤与体积肌肉损失有关的情况下,我们考虑的生物材料的性质,用于设计三维支架,功能化支架的分子信号,引导和促进神经血管生长,和种子支架与祖细胞。生理上的成功取决于生物结构的每个组织成分(神经、血管、肌肉)与宿主的组织成分的结合。*微加工技术、细胞培养技术和祖细胞生物学的进步为工程化生物结构在肌肉体积损失后恢复器官功能带来了巨大希望。

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