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急性脑损伤后利用诱导生物支架促进内源性原位组织修复的路线图。

A roadmap for promoting endogenous in situ tissue restoration using inductive bioscaffolds after acute brain injury.

机构信息

University of Pittsburgh, McGowan Institute for Regenerative Medicine, Pittsburgh, Pennsylvania, USA; University of Pittsburgh, Department of Bioengineering, Pittsburgh, PA, USA; University of Pittsburgh, Department of Radiology, Pittsburgh, PA, USA.

University of Pittsburgh, McGowan Institute for Regenerative Medicine, Pittsburgh, Pennsylvania, USA; University of Pittsburgh, Department of Bioengineering, Pittsburgh, PA, USA; University of Pittsburgh, Department of Surgery, Pittsburgh, PA, USA.

出版信息

Brain Res Bull. 2019 Aug;150:136-149. doi: 10.1016/j.brainresbull.2019.05.013. Epub 2019 May 22.

Abstract

The regeneration of brain tissue remains one of the greatest unsolved challenges in medicine and by many is considered unfeasible. Indeed, the adult mammalian brain does not regenerate tissue, but there is ongoing endogenous neurogenesis, which is upregulated after injury and contributes to tissue repair. This endogenous repair response is a conditio sine que non for tissue regeneration. However, scarring around the lesion core and cavitation provide unfavorable conditions for tissue regeneration in the brain. Based on the success of using extracellular matrix (ECM)-based bioscaffolds in peripheral soft tissue regeneration, it is plausible that the provision of an inductive ECM-based hydrogel inside the volumetric tissue loss can attract neural cells and create a de novo viable tissue. Following perturbation theory of these successes in peripheral tissues, we here propose 9 perturbation parts (i.e. requirements) that can be solved independently to create an integrated series to build a functional and integrated de novo neural tissue. Necessities for tissue formation, anatomical and functional connectivity are further discussed to provide a new substrate to support the improvement of behavioral impairments after acute brain injury. We also consider potential parallel developments of this tissue engineering effort that can support therapeutic benefits in the absence of de novo tissue formation (e.g. structural support to veterate brain tissue). It is envisaged that eventually top-down inductive "natural" bioscaffolds composed of decellularized tissues (i.e. ECM) will be replaced by bottom-up synthetic designer hydrogels that will provide very defined structural and signaling properties, potentially even opening up opportunities we currently do not envisage using natural materials.

摘要

脑组织的再生仍然是医学领域最大的未解难题之一,许多人认为这是不可能实现的。事实上,成年哺乳动物的大脑不会再生组织,但存在持续的内源性神经发生,这种神经发生在受伤后被上调,并有助于组织修复。这种内源性修复反应是组织再生的必要条件。然而,损伤核心周围的瘢痕和空洞化为大脑中的组织再生提供了不利条件。基于细胞外基质(ECM)基生物支架在外周软组织再生中的成功应用,提供一个容积组织缺失内的诱导性 ECM 基水凝胶可以吸引神经细胞并创建一个新的可行组织是合理的。基于这些在外周组织中取得成功的扰动理论,我们在这里提出了 9 个可以独立解决的扰动部分(即要求),以创建一个集成的系列来构建一个功能性和集成的新的神经组织。还进一步讨论了组织形成、解剖和功能连接的必要性,以提供新的基质来支持急性脑损伤后行为障碍的改善。我们还考虑了这种组织工程努力的潜在平行发展,这些发展可以在没有新组织形成的情况下支持治疗益处(例如为衰老的脑组织提供结构支持)。可以设想,最终由去细胞组织(即 ECM)组成的自上而下的诱导性“天然”生物支架将被自下而上的合成设计水凝胶所取代,这些水凝胶将提供非常明确的结构和信号特性,甚至可能开辟我们目前使用天然材料无法想象的机会。

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