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基于导电构筑块的可适应微孔水凝胶的无线充电介导的血管生成和神经修复。

Wireless charging-mediated angiogenesis and nerve repair by adaptable microporous hydrogels from conductive building blocks.

机构信息

Department of Biomedical Engineering and Environmental Sciences, National Tsing Hua University, Hsinchu, 300044, Taiwan.

Department of Biomedical Engineering, National Yang Ming Chiao Tung University, Taipei, 112304, Taiwan.

出版信息

Nat Commun. 2022 Sep 2;13(1):5172. doi: 10.1038/s41467-022-32912-x.

Abstract

Traumatic brain injury causes inflammation and glial scarring that impede brain tissue repair, so stimulating angiogenesis and recovery of brain function remain challenging. Here we present an adaptable conductive microporous hydrogel consisting of gold nanoyarn balls-coated injectable building blocks possessing interconnected pores to improve angiogenesis and recovery of brain function in traumatic brain injury. We show that following minimally invasive implantation, the adaptable hydrogel is able to fill defects with complex shapes and regulate the traumatic brain injury environment in a mouse model. We find that placement of this injectable hydrogel at peri-trauma regions enhances mature brain-derived neurotrophic factor by 180% and improves angiogenesis by 250% in vivo within 2 weeks after electromagnetized stimulation, and that these effects facilitate neuron survival and motor function recovery by 50%. We use blood oxygenation level-dependent functional neuroimaging to reveal the successful restoration of functional brain connectivity in the corticostriatal and corticolimbic circuits.

摘要

创伤性脑损伤会引发炎症和神经胶质瘢痕,从而阻碍脑组织修复,因此刺激血管生成和恢复大脑功能仍然具有挑战性。在这里,我们提出了一种适应性导电微孔水凝胶,它由金纳米线球涂覆的可注射构建块组成,具有相互连接的孔,以改善创伤性脑损伤中的血管生成和大脑功能的恢复。我们表明,在微创植入后,适应性水凝胶能够用复杂形状填充缺陷,并在小鼠模型中调节创伤性脑损伤环境。我们发现,在创伤周围区域放置这种可注射水凝胶可使成熟的脑源性神经营养因子增加 180%,并在电刺激后 2 周内体内的血管生成增加 250%,这些作用可使神经元存活率和运动功能恢复提高 50%。我们使用血氧水平依赖功能神经影像学来揭示皮质纹状体和皮质边缘回路中功能连接的成功恢复。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6132/9440098/a33c059020d8/41467_2022_32912_Fig1_HTML.jpg

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