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三苯基膦包覆纳米槲皮素经口服递送:减轻大鼠年龄相关性全脑中度脑缺血再灌注损伤的神经保护作用。

Triphenyl phosphonium coated nano-quercetin for oral delivery: Neuroprotective effects in attenuating age related global moderate cerebral ischemia reperfusion injury in rats.

机构信息

Drug Development, Diagnostics and Biotechnology Division, CSIR-Indian Institute of Chemical Biology, Kolkata, India.

Drug Development, Diagnostics and Biotechnology Division, CSIR-Indian Institute of Chemical Biology, Kolkata, India.

出版信息

Nanomedicine. 2017 Nov;13(8):2439-2450. doi: 10.1016/j.nano.2017.08.002. Epub 2017 Aug 16.

Abstract

Cerebral ischemia-reperfusion is a classic example of reactive oxygen species (ROS) mediated acute damage to brain. Post-ischemic reperfusion induced oxygen free radicals production causes damage to brain cell mitochondria. Antioxidants like quercetin (Qc) have potentials to manage oxidative stress related pathophysiology. However low oral bioavailability and poor cell membrane permeability restrict its therapeutic efficacy. To overcome these hurdles mitochondria specific delivery of Qc nanocapsules was designed to efficiently counteract cerebral ischemia-reperfusion induced cell death and neurodegeneration in young and aged rats. The orally deliverable quercetin loaded polymeric nanocapsules (N1QC) were made mitochondria specific by using triphenylphosphonium cation as one of the matrix components. N1QC demonstrated higher brain uptake and remarkable mitochondrial localization post cerebral ischemia-reperfusion. This unique controlled mitochondrial delivery of quercetin ameliorated histopathological severity by preserving mitochondrial structural and functional integrity through sequestering ROS thus modulating mitochondrial ROS mediated apoptotic cell death in young and aged rats.

摘要

脑缺血再灌注是活性氧(ROS)介导的急性脑损伤的典型范例。缺血后再灌注诱导氧自由基的产生会导致脑细胞线粒体损伤。槲皮素(Qc)等抗氧化剂具有管理与氧化应激相关病理生理学的潜力。然而,口服生物利用度低和细胞膜通透性差限制了其治疗效果。为了克服这些障碍,设计了线粒体特异性递送 Qc 纳米胶囊,以有效地抵抗年轻和老年大鼠脑缺血再灌注诱导的细胞死亡和神经退行性变。使用三苯基膦阳离子作为基质成分之一,使可口服给予的载有槲皮素的聚合物纳米胶囊(N1QC)具有线粒体特异性。N1QC 在脑缺血再灌注后表现出更高的脑摄取和显著的线粒体定位。这种独特的线粒体控制递送槲皮素通过隔离 ROS 来改善组织病理学严重程度,从而调节年轻和老年大鼠中线粒体 ROS 介导的凋亡性细胞死亡,从而保持线粒体结构和功能的完整性。

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