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Intracellular Lipophilic Network Transformation Induced by Protease-specific Endocytosis of Fluorescent Au Nanoclusters

Overview
Journal Nano Converg
Specialty Biotechnology
Date 2023 Jun 9
PMID 37296273
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Abstract

The understanding of the endocytosis process of internalized nanomedicines through membrane biomarker is essential for the development of molecular-specific nanomedicines. In various recent reports, the metalloproteases have been identified as important markers during the metastasis of cancer cells. In particular, MT1-MMP has provoked concern due to its protease activity in the degradation of the extracellular matrix adjacent to tumors. Thus, in the current work, we have applied fluorescent Au nanoclusters which present strong resistance to chemical quenching to the investigation of MT1-MMP-mediated endocytosis. We synthesized protein-based Au nanocluster (PAuNC) and MT1-MMP-specific peptide was conjugated with PAuNC (pPAuNC) for monitoring protease-mediated endocytosis. The fluorescence capacity of pPAuNC was investigated and MT1-MMP-mediated intracellular uptake of pPAuNC was subsequently confirmed by a co-localization analysis using confocal microscopy and molecular competition test. Furthermore, we confirmed a change in the intracellular lipophilic network after an endocytosis event of pPAuNC. The identical lipophilic network change did not occur with the endocytosis of bare PAuNC. By classification of the branched network between the lipophilic organelles at the nanoscale, the image-based analysis of cell organelle networking allowed the evaluation of nanoparticle internalization and impaired cellular components after intracellular accumulation at a single-cell level. Our analyses suggest a methodology to achieve a better understanding of the mechanism by which nanoparticles enter cells.

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Yun Y, Kim S, Lee S, Cho H, Choi J Nano Converg. 2024; 11(1):56.

PMID: 39671082 PMC: 11645384. DOI: 10.1186/s40580-024-00466-x.

References
1.
Zhuang Q, Jia H, Du L, Li Y, Chen Z, Huang S . Targeted surface-functionalized gold nanoclusters for mitochondrial imaging. Biosens Bioelectron. 2013; 55:76-82. DOI: 10.1016/j.bios.2013.12.003. View

2.
Foroozandeh P, Abdul Aziz A . Insight into Cellular Uptake and Intracellular Trafficking of Nanoparticles. Nanoscale Res Lett. 2018; 13(1):339. PMC: 6202307. DOI: 10.1186/s11671-018-2728-6. View

3.
Schutz I, Lopez-Hernandez T, Gao Q, Puchkov D, Jabs S, Nordmeyer D . Lysosomal Dysfunction Caused by Cellular Accumulation of Silica Nanoparticles. J Biol Chem. 2016; 291(27):14170-14184. PMC: 4933175. DOI: 10.1074/jbc.M115.710947. View

4.
Pyo K, Ly N, Han S, Hatshan M, Abuhagr A, Wiederrecht G . Unique Energy Transfer in Fluorescein-Conjugated Au Nanoclusters Leading to 160-Fold pH-Contrasting Photoluminescence. J Phys Chem Lett. 2018; 9(18):5303-5310. DOI: 10.1021/acs.jpclett.8b02130. View

5.
Dong L, Li M, Zhang S, Li J, Shen G, Tu Y . Cytotoxicity of BSA-Stabilized Gold Nanoclusters: In Vitro and In Vivo Study. Small. 2015; 11(21):2571-81. DOI: 10.1002/smll.201403481. View