Center for Theragnosis, Biomedical Research Institute , Korea Institute of Science and Technology (KIST) , 5 Hwarang-ro 14-gil , Seongbuk-gu, Seoul , 02792 , Republic of Korea.
School of Chemical and Biological Engineering , Seoul National University , 1 Gwanak-ro , Gwanak-gu, Seoul , 08826 , Republic of Korea.
ACS Nano. 2019 Oct 22;13(10):10991-11007. doi: 10.1021/acsnano.9b02173. Epub 2019 Oct 11.
Noninvasive and precise stem cell tracking after transplantation in living subject is very important to monitor both stem cell destinations and their fate, which is closely related to their therapeutic efficacy. Herein, we developed bicyclo[6.1.0]nonyne (BCN)-conjugated glycol chitosan nanoparticles (BCN-NPs) as a delivery system of dual-modal stem cell imaging probes. Near-infrared fluorescent (NIRF) dye Cy5.5 was chemically conjugated to the BCN-NPs, and then oleic acid-coated superparamagnetic iron oxide nanoparticles (OA-FeO NPs) were encapsulated into BCN-NPs, resulting in Cy5.5-labeled and OA-FeO NP-encapsulated BCN-NPs (BCN-dual-NPs). For bioorthogonal labeling of human adipose-derived mesenchymal stem cells (hMSCs), first, hMSCs were treated with tetra-acetylated -azidoacetyl-d-mannosamine (AcManNAz) for generating azide (-N) groups onto their surface metabolic glycoengineering. Second, azide groups on the cell surface were successfully chemically labeled with BCN-dual-NPs bioorthogonal click chemistry . This bioorthogonal labeling of hMSCs could greatly increase the cell labeling efficiency, safety, and imaging sensitivity, compared to only nanoparticle-derived labeling technology. The dual-modal imaging-guided precise tracking of bioorthogonally labeled hMSCs was tested in the photothrombotic stroke mouse model intraparenchymal injection. Finally, BCN-dual-NPs-labeled hMSCs could be effectively tracked by their migration from the implanted site to the brain stroke lesion using NIRF/-weighted magnetic resonance (MR) dual-modal imaging for 14 days. Our observation would provide a potential application of bioorthogonally labeled stem cell imaging in regenerative medicine by providing safety and high labeling efficiency and .
在活体动物中进行移植后的非侵入性和精确的干细胞追踪对于监测干细胞的去向及其命运非常重要,因为这与它们的治疗效果密切相关。在这里,我们开发了双环[6.1.0]壬炔(BCN)-修饰的乙二醇壳聚糖纳米颗粒(BCN-NPs)作为双模态干细胞成像探针的递送系统。近红外荧光(NIRF)染料 Cy5.5 被化学连接到 BCN-NPs 上,然后将油酸包覆的超顺磁性氧化铁纳米颗粒(OA-FeO NPs)包封到 BCN-NPs 中,得到 Cy5.5 标记和 OA-FeO NP 包封的 BCN-NPs(BCN-双 NPs)。为了对人脂肪间充质干细胞(hMSCs)进行生物正交标记,首先,用四乙酰化-叠氮乙酰基-d-甘露胺(AcManNAz)处理 hMSCs,在其表面进行代谢糖基工程生成叠氮(-N)基团。其次,细胞表面的叠氮基团通过生物正交点击化学被成功地化学标记上 BCN-双 NPs。与仅基于纳米颗粒的标记技术相比,这种 hMSCs 的生物正交标记可以大大提高细胞标记效率、安全性和成像灵敏度。在光血栓性中风小鼠模型中进行了体内注射,通过双模态成像引导对生物正交标记的 hMSCs 进行了精确追踪。最后,通过 NIRF/-加权磁共振(MR)双模态成像,可以有效地追踪到 BCN-双 NPs 标记的 hMSCs 从植入部位向脑中风病变的迁移,在 14 天内进行追踪。我们的观察结果为生物正交标记的干细胞成像在再生医学中的应用提供了一个潜在的途径,提供了安全性和高效率的标记,并。