聚氨基胺
树枝状大分子
荧光
生物相容性
氨基胺
纳米技术
体内
体内分布
中枢神经系统
药物输送
生物物理学
血脑屏障
生物医学工程
荧光寿命成像显微镜
材料科学
神经科学
医学
生物
物理
量子力学
冶金
生物技术
高分子化学
作者
Guoying Wang,Xiaowei Zhao,Haigang Wu,David B. Lovejoy,Meng Zheng,Albert Lee,Libing Fu,Kaiting Miao,Yi An,Nima Sayyadi,Kunjie Ding,Roger S. Chung,Yiqing Lu,Jia Li,Marco Morsch,Bingyang Shi
出处
期刊:Small
[Wiley]
日期:2020-09-02
卷期号:16 (39): e2003654-e2003654
被引量:236
标识
DOI:10.1002/smll.202003654
摘要
Intrinsically fluorescent poly(amidoamine) dendrimers (IF-PAMAM) are an emerging class of versatile nanoplatforms for in vitro tracking and bio-imaging. However, limited tissue penetration of their fluorescence and interference due to auto-fluorescence arising from biological tissues limit its application in vivo. Herein, a green IF-PAMAM (FGP) dendrimer is reported and its biocompatibility, circulation, biodistribution and potential role for traceable central nervous system (CNS)-targeted delivery in zebrafish is evaluated, exploring various routes of administration. Key features of FGP include visible light excitation (488 nm), high fluorescence signal intensity, superior photostability and low interference from tissue auto-fluorescence. After intravenous injection, FGP shows excellent imaging and tracking performance in zebrafish. Further conjugating FGP with transferrin (FGP-Tf) significantly increases its penetration through the blood-brain barrier (BBB) and prolongs its circulation in the blood stream. When administering through local intratissue microinjection, including intracranial and intrathecal injection in zebrafish, both FGP and FGP-Tf exhibit excellent tissue diffusion and effective cellular uptake in the brain and spinal cord, respectively. This makes FGP/FGP-Tf attractive for in vivo tracing when transporting to the CNS is desired. The work addresses some of the major shortcomings in IF-PAMAM and provides a promising application of these probes in the development of drug delivery in the CNS.
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