4.6 Article

Nano-bio interaction between human immunoglobulin G and nontoxic, near-infrared emitting water-borne silicon quantum dot micelles

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RSC ADVANCES
卷 13, 期 9, 页码 6051-6064

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ROYAL SOC CHEMISTRY
DOI: 10.1039/d3ra00552f

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In recent years, the field of nanomaterials has rapidly developed for various biological applications. However, the lack of knowledge about the interaction between nanomaterials and the biological microenvironment poses a challenge for their clinical application. This study investigated the conformation changes of human immunoglobulin G (IgG) upon interaction with silicon quantum dots functionalized with 1-decene, Pluronic-F127 (SiQD-De/F127 micelles) using various techniques. The results demonstrated strong binding between SiQD-De/F127 micelles and IgG, and showed enhanced uptake and minimal cytotoxicity in cell lines and medaka fish. This study suggests that engineered quantum dots can maintain protein conformation and exhibit good bioefficacy.
In recent years, the field of nanomaterials has exponentially expanded with versatile biological applications. However, one of the roadblocks to their clinical translation is the critical knowledge gap about how the nanomaterials interact with the biological microenvironment (nano-bio interactions). When nanomaterials are used as drug carriers or contrast agents for biological imaging, the nano-bio interaction-mediated protein conformational changes and misfolding could lead to disease-related molecular alterations and/or cell death. Here, we studied the conformation changes of human immunoglobulin G (IgG) upon interaction with silicon quantum dots functionalized with 1-decene, Pluronic-F127 (SiQD-De/F127 micelles) using UV-visible, fluorescence steady state and excited state kinetics, circular dichroism, and molecular modeling. Decene monolayer terminated SiQDs are accumulated inside the Pluronic F127 shells to form SiQD-De/F127 micelles and were shown to bind strongly with IgG. In addition, biological evaluation studies in cell lines (HeLa, Fibroblast) and medaka fish (eggs and larvae) showed enhanced uptake and minimal cytotoxicity. Our results substantiate that engineered QDs obviating the protein conformational changes could have adept bioefficacy.

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