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用于脑缺血先进间充质干细胞治疗的 SPECT/光声成像/抗氧化应激三功能纳米探针的工程构建。

Engineering of SPECT/Photoacoustic Imaging/Antioxidative Stress Triple-Function Nanoprobe for Advanced Mesenchymal Stem Cell Therapy of Cerebral Ischemia.

机构信息

Department of Medical Ultrasound, Shanghai General Hospital, School of Medicine, Shanghai Jiaotong University, Shanghai 200080, China.

Med-X Research Institute and School of Biomedical Engineering, Shanghai Jiaotong University, Shanghai 200030, China.

出版信息

ACS Appl Mater Interfaces. 2020 Aug 26;12(34):37885-37895. doi: 10.1021/acsami.0c10500. Epub 2020 Aug 18.

DOI:10.1021/acsami.0c10500
PMID:32806884
Abstract

The precise transplantation, long-term tracking, and maintenance of stem cells with maximizing therapeutic effect are significant challenges in stem cell-based therapy for stroke treatment. In this study, a unique core-shell labeling nanoagent was prepared by encapsulating a cobalt protoporphyrin IX (CoPP)-loaded mesoporous silica nanoparticle (CPMSN) into a I-conjugated/spermine-modified dextran polymer (I-SD) by microfluidics for mesenchymal stem cell (MSC) tracking and activity maintenance. The CPMSN core not only exhibits excellent photoacoustic (PA) imaging performance induced by the intermolecular aggregation of CoPP within the mesopores but also protects the MSCs against oxidative stress by sustained release of CoPP. Meanwhile, the addition of a I-SD shell can increase the uptake efficiency in MSCs without inducing cell variability and enable the single-photon-emission computed tomography (SPECT) nuclear imaging. results indicated that CPMSN@I-SD labeling could allow for an optimal combination of instant imaging of MSCs, with PA to guide intracerebral injection, followed by multiple time point SPECT imaging to consecutively track the cell homing. Importantly, the sustained release of CoPP from CPMSN@I-SD significantly increased the survival of MSCs after injection into an ischemic mouse brain and promoted neurobehavioral recovery in ischemic mice. Thus, CPMSN@I-SD represents a robust theranostic probe for both MSC tracking and maintaining their therapeutic effect in the treatment of brain ischemia.

摘要

精确移植、长期跟踪和维持具有最大化治疗效果的干细胞是基于干细胞的中风治疗的重大挑战。在这项研究中,通过微流控技术将载钴原卟啉 IX(CoPP)的介孔硅纳米颗粒(CPMSN)封装到共轭 / 聚精氨酸修饰的葡聚糖聚合物(I-SD)中,制备了一种独特的核壳标记纳米试剂,用于间充质干细胞(MSC)跟踪和活性维持。CPMSN 核不仅表现出优异的光声(PA)成像性能,这是由介孔内 CoPP 分子间聚集引起的,而且还通过持续释放 CoPP 来保护 MSC 免受氧化应激。同时,添加 I-SD 壳可以增加 MSC 的摄取效率,而不会引起细胞变异,并实现单光子发射计算机断层扫描(SPECT)核成像。结果表明,CPMSN@I-SD 标记可以实现 MSC 的即时成像的最佳组合,PA 可用于引导脑内注射,然后进行多次 SPECT 成像以连续跟踪细胞归巢。重要的是,CPMSN@I-SD 中 CoPP 的持续释放显著提高了注射到缺血性小鼠大脑后的 MSC 存活率,并促进了缺血性小鼠的神经行为恢复。因此,CPMSN@I-SD 代表了一种强大的治疗诊断探针,可用于 MSC 跟踪,并维持其在治疗脑缺血中的治疗效果。

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