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碳化条件对氮掺杂碳点发光及基因递送性能的影响

Influence of carbonization conditions on luminescence and gene delivery properties of nitrogen-doped carbon dots.

作者信息

Mickaël Claudel, Jiahui Fan, Mickaël Rapp, Françoise Pons, Luc Lebeau

机构信息

Laboratoire de Conception et Application de Molécules Bioactives, UMR 7199 CNRS - Université de Strasbourg, Faculté de Pharmacie 74 route du Rhin - BP 60024, 67401 Illkirch France

出版信息

RSC Adv. 2019 Jan 25;9(6):3493-3502. doi: 10.1039/c8ra09651a. eCollection 2019 Jan 22.

DOI:10.1039/c8ra09651a
PMID:35518969
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9060250/
Abstract

Carbon dots (CDs) have been intensively investigated due to their unique photoluminescence (PL) properties that are improved through surface passivation with nitrogen-containing groups. Recently, gene delivery applications emerged as passivation of CDs may yield positively charged nanoparticles that can interact with negatively charged nucleic acids. However previous work in the field focused on the use of high molecular weight polyamines for CD passivation, posing the problem of the separation of nanoparticles from residual polymer that is harmful to cells. In this work, cationic CDs were prepared by pyrolysis of citric acid/bPEI600 (1/4, w/w) so unreacted low molecular weight reagents could be conveniently eliminated by extensive dialysis. Various reaction conditions and activation modes were evaluated and eleven CDs that exhibited superior solubility in water were produced. All the nanoparticles were characterized with respect to their physical, optical and PL properties and their ability to deliver plasmid DNA to mammal cells was evaluated. Despite their similar physical properties, the CDs displayed marked differences in their gene delivery efficiency. CDs produced under microwave irradiation in a domestic oven were revealed to be superior to all the other nanoparticles produced in this study and compared to the gold standard transfection reagent bPEI25k, with an optimal CD/pDNA w/w ratio that was significantly down shifted, as was the associated cytotoxicity.

摘要

碳点(CDs)因其独特的光致发光(PL)特性而受到广泛研究,通过含氮基团进行表面钝化可改善这些特性。最近,由于CDs的钝化可能产生带正电荷的纳米颗粒,这些纳米颗粒可与带负电荷的核酸相互作用,基因传递应用应运而生。然而,该领域以前的工作主要集中在使用高分子量多胺对CDs进行钝化,这就带来了纳米颗粒与残留聚合物分离的问题,而残留聚合物对细胞有害。在这项工作中,通过柠檬酸/bPEI600(1/4,w/w)的热解制备了阳离子CDs,这样未反应的低分子量试剂可以通过广泛透析方便地去除。评估了各种反应条件和活化模式,制备出了11种在水中具有优异溶解性的CDs。对所有纳米颗粒的物理、光学和PL特性进行了表征,并评估了它们将质粒DNA递送至哺乳动物细胞的能力。尽管这些CDs具有相似的物理性质,但它们在基因传递效率上表现出显著差异。结果表明,在家用烤箱中微波辐射下制备的CDs优于本研究中制备的所有其他纳米颗粒,与金标准转染试剂bPEI25k相比,其最佳CD/pDNA w/w比显著降低,相关细胞毒性也降低。

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本文引用的文献

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Multifunctional Carbon-Based Nanomaterials: Applications in Biomolecular Imaging and Therapy.多功能碳基纳米材料:在生物分子成像与治疗中的应用
ACS Omega. 2018 Aug 15;3(8):9126-9145. doi: 10.1021/acsomega.8b01071. eCollection 2018 Aug 31.
2
Photoluminescent Cationic Carbon Dots as efficient Non-Viral Delivery of Plasmid SOX9 and Chondrogenesis of Fibroblasts.基于光致发光的阳离子碳点作为高效非病毒递送质粒 SOX9 载体和促进成纤维细胞软骨分化的研究
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Multifunctional Photonic Nanomaterials for Diagnostic, Therapeutic, and Theranostic Applications.
表面电荷密度是预测阳离子碳纳米颗粒毒性的更具预测性的因素,而非zeta 电位。
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Nanobiotechnology of Carbon Dots: A Review.碳点的纳米生物技术:综述
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Nano Lett. 2017 Dec 13;17(12):7710-7716. doi: 10.1021/acs.nanolett.7b03863. Epub 2017 Dec 1.
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Facile approach to synthesize highly fluorescent multicolor emissive carbon dots via surface functionalization for cellular imaging.通过表面功能化简便合成具有高荧光多色发射的碳点用于细胞成像。
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Carbonization conditions influence the emission characteristics and the stability against photobleaching of nitrogen doped carbon dots.碳化条件会影响氮掺杂碳点的发射特性和光漂白稳定性。
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