Longwei He
30 Papers
Longwei He is an academic researcher. The author has contributed to research in topics: Medicine & Chemistry. The author has an hindex of 3, co-authored 18 publications.
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Papers
Cysteine-Activatable Near-Infrared Fluorescent Probe for Dual-Channel Tracking Lipid Droplets and Mitochondria in Epilepsy.
TL;DR: Wang et al. as discussed by the authors introduced a cysteine-responsive and near-infrared (NIR) emissive AIEgen (named TSQC) with good biocompatibility to dual-channel monitor Cys in mitochondria and lipid droplets (LDs) during cell apoptosis through wash-free fluorescence bio-imaging.
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Construction of HClO activated near-infrared fluorescent probe for imaging hepatocellular carcinoma.
TL;DR: Wang et al. as discussed by the authors designed and synthesized a NIR hepatocyte-specific fluorescent probe (MBH-MT) that displayed excellent optical properties for detecting HClO in biological samples.
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Redox-Reversible Near-Infrared Fluorescent Probe for Imaging of Acute Kidney Oxidative Injury and Remedy.
TL;DR: In this paper , a reversible fluorescence probe, NRN, was used to monitor the ONOO/GSH in an acute kidney injury model, which showed that kidney injury caused by combined drugs might be more serious and irreversible under certain conditions.
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γ-Glutamyltransferase-Activatable Fluoro-Photoacoustic Reporter for Highly Sensitive Diagnosis of Acute Liver Injury and Tumor.
Qian Liu,Jie Yuan,Renfeng Jiang,Longwei He,Xuefeng Yang,Lin Yuan,Dan Cheng +6 more
TL;DR: In this paper , an activated probe (NIR-GGT) for the imaging of GGT activity was prepared, which consists of a stable NIR fluorophore with the tunable amino group decorated with the γglutamate group as a GGT-sensing unit linked by a self-elimination group.
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Aggregation enhanced FRET: A simple but efficient strategy for the ratiometric detection of uranyl ion.
Dan Wang,Lijie Zhang,Ming Li,Fangfang Du,Ze-Ya Shen,Longwei He,Li-Li Wang +6 more
TL;DR: In this article , a rhodamine-functionalized carbon dots (o-CDs-Rho) was synthesized and applied for UO22+ sensing through a simple but novel aggregation-enhanced FRET strategy.
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