Aggregation-Induced Emission Luminogen with Near-Infrared-II Excitation and Near-Infrared-I Emission for Ultradeep Intravital Two-Photon Microscopy

红外线的 红外显微镜 聚集诱导发射 激发 材料科学 显微镜 双光子激发显微术 纳米技术 光学 物理 荧光 量子力学
作者
Ji Qi,Chaowei Sun,Dongyu Li,Hequn Zhang,Wenbin Yu,Abudureheman Zebibula,Jacky W. Y. Lam,Xi Wang,Liang Zhu,Fuhong Cai,Peifa Wei,Chunlei Zhu,Ryan T. K. Kwok,Lina L. Streich,Robert Prevedel,Jun Qian,Ben Zhong Tang
出处
期刊:ACS Nano [American Chemical Society]
卷期号:12 (8): 7936-7945 被引量:218
标识
DOI:10.1021/acsnano.8b02452
摘要

Currently, a serious problem obstructing the large-scale clinical applications of fluorescence technique is the shallow penetration depth. Two-photon fluorescence microscopic imaging with excitation in the longer-wavelength near-infrared (NIR) region (>1100 nm) and emission in the NIR-I region (650–950 nm) is a good choice to realize deep-tissue and high-resolution imaging. Here, we report ultradeep two-photon fluorescence bioimaging with 1300 nm NIR-II excitation and NIR-I emission (peak ∼810 nm) based on a NIR aggregation-induced emission luminogen (AIEgen). The crab-shaped AIEgen possesses a planar core structure and several twisting phenyl/naphthyl rotators, affording both high fluorescence quantum yield and efficient two-photon activity. The organic AIE dots show high stability, good biocompatibility, and a large two-photon absorption cross section of 1.22 × 103 GM. Under 1300 nm NIR-II excitation, in vivo two-photon fluorescence microscopic imaging helps to reconstruct the 3D vasculature with a high spatial resolution of sub-3.5 μm beyond the white matter (>840 μm) and even to the hippocampus (>960 μm) and visualize small vessels of ∼5 μm as deep as 1065 μm in mouse brain, which is among the largest penetration depths and best spatial resolution of in vivo two-photon imaging. Rational comparison with the AIE dots manifests that two-photon imaging outperforms the one-photon mode for high-resolution deep imaging. This work will inspire more sight and insight into the development of efficient NIR fluorophores for deep-tissue biomedical imaging.
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