Wang Qilong, Liu Kai, Cao Xia, Rong Wanjin, Shi Wenwan, Yu Qintong, Deng Wenwen, Yu Jiangnan, Xu Ximing
Department of Pharmaceutics School of Pharmacy, Centre for Nano Drug/Gene Delivery and Tissue Engineering, Jiangsu University Zhenjiang People's Republic of China.
Medicinal Function Development of New Food Resources Jiangsu Provincial Research Center Zhenjiang People's Republic of China.
Bioeng Transl Med. 2024 Jan 30;9(4):e10646. doi: 10.1002/btm2.10646. eCollection 2024 Jul.
Plant-derived exosomes (PEs) possess an array of therapeutic properties, including antitumor, antiviral, and anti-inflammatory capabilities. They are also implicated in defensive responses to pathogenic attacks. Spinal cord injuries (SCIs) regeneration represents a global medical challenge, with appropriate research concentration on three pivotal domains: neural regeneration promotion, inflammation inhibition, and innovation and application of regenerative scaffolds. Unfortunately, the utilization of PE in SCI therapy remains unexplored. Herein, we isolated PE from the traditional Chinese medicinal herb, L. and discovered their inflammatory inhibition and neuronal differentiation promotion capabilities. Compared with exosomes derived from ectomesenchymal stem cells (EMSCs), PE demonstrated a substantial enhancement in neural differentiation. We encapsulated isoliquiritigenin (ISL)-loaded plant-derived exosomes (ISL@PE) from L. within a 3D-printed bionic scaffold. The intricate construct modulated the inflammatory response following SCI, facilitating the restoration of damaged axons and culminating in ameliorated neurological function. This pioneering investigation proposes a novel potential route for insoluble drug delivery via plant exosomes, as well as SCI repair. The institutional animal care and use committee number is UJS-IACUC-2020121602.
植物来源的外泌体(PEs)具有一系列治疗特性,包括抗肿瘤、抗病毒和抗炎能力。它们也参与对病原体攻击的防御反应。脊髓损伤(SCI)的再生是一项全球性的医学挑战,目前的研究主要集中在三个关键领域:促进神经再生、抑制炎症以及再生支架的创新与应用。遗憾的是,PE在SCI治疗中的应用仍未得到探索。在此,我们从传统中药甘草中分离出PE,并发现了它们的抗炎和促进神经元分化的能力。与外胚间充质干细胞(EMSCs)来源的外泌体相比,PE在神经分化方面表现出显著增强。我们将负载异甘草素(ISL)的甘草植物来源外泌体(ISL@PE)封装在3D打印的仿生支架中。这种复杂的结构调节了SCI后的炎症反应,促进了受损轴突的修复,最终改善了神经功能。这项开创性的研究为通过植物外泌体进行不溶性药物递送以及SCI修复提出了一条新的潜在途径。机构动物护理和使用委员会编号为UJS-IACUC-2020121602。