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瞄准目标:创伤性脑损伤中的线粒体药物递送。

Aiming for the target: Mitochondrial drug delivery in traumatic brain injury.

机构信息

Department of Critical Care Medicine, Safar Center for Resuscitation Research, Children's Hospital of Pittsburgh, Pittsburgh, PA, USA; Department of Environmental and Occupational Health, Center for Free Radical and Antioxidant Health, University of Pittsburgh, Pittsburgh, PA, USA.

Department of Critical Care Medicine, Safar Center for Resuscitation Research, Children's Hospital of Pittsburgh, Pittsburgh, PA, USA.

出版信息

Neuropharmacology. 2019 Feb;145(Pt B):209-219. doi: 10.1016/j.neuropharm.2018.07.014. Epub 2018 Jul 30.

Abstract

Mitochondria are a keystone of neuronal function, serving a dual role as sustainer of life and harbinger of death. While mitochondria are indispensable for energy production, a dysregulated mitochondrial network can spell doom for both neurons and the functions they provide. Traumatic brain injury (TBI) is a complex and biphasic injury, often affecting children and young adults. The primary pathological mechanism of TBI is mechanical, too rapid to be mitigated by anything but prevention. However, the secondary injury of TBI evolves over hours and days after the initial insult providing a window of opportunity for intervention. As a nexus point of both survival and death during this second phase, targeting mitochondrial pathology in TBI has long been an attractive strategy. Often these attempts are mired by efficacy-limiting unintended off-target effects. Specific delivery to and enrichment of therapeutics at their submitochondrial site of action can reduce deleterious effects and increase potency. Mitochondrial drug localization is accomplished using (1) the mitochondrial membrane potential, (2) affinity of a carrier to mitochondria-specific components (e.g. lipids), (3) piggybacking on the cells own mitochondria trafficking systems, or (4) nanoparticle-based approaches. In this review, we briefly consider the mitochondrial delivery strategies and drug targets that illustrate the promise of these mitochondria-specific approaches in the design of TBI pharmacotherapy. This article is part of the Special Issue entitled "Novel Treatments for Traumatic Brain Injury".

摘要

线粒体是神经元功能的关键,具有维持生命和预示死亡的双重作用。虽然线粒体对于能量产生是不可或缺的,但失调的线粒体网络可能对神经元及其提供的功能造成致命影响。创伤性脑损伤(TBI)是一种复杂的双相损伤,常影响儿童和年轻人。TBI 的主要病理机制是机械性的,太快而无法通过任何预防措施来缓解。然而,TBI 的继发性损伤在初始损伤后数小时和数天内发展,为干预提供了机会。作为这第二阶段生存和死亡的交汇点,靶向 TBI 中的线粒体病理学一直是一种有吸引力的策略。这些尝试常常因疗效有限的意外非靶向作用而受阻。特定的递送至并在其亚线粒体作用部位富集治疗剂可以减少有害影响并提高效力。线粒体药物定位是通过以下方法实现的:(1)线粒体膜电位,(2)载体与线粒体特异性成分(例如脂质)的亲和力,(3)利用细胞自身的线粒体运输系统,或(4)基于纳米颗粒的方法。在这篇综述中,我们简要考虑了线粒体递药策略和药物靶点,这些策略说明了这些线粒体特异性方法在设计 TBI 药物治疗中的应用前景。本文是“创伤性脑损伤的新治疗方法”特刊的一部分。

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Mitochondrial specific therapeutic targets following brain injury.脑损伤后的线粒体特异性治疗靶点。
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