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载光敏剂的树枝状介孔有机硅纳米粒子用于细胞成像、siRNA 递送和蛋白质负载。

Dendritic Mesoporous Organosilica Nanoparticles with Photosensitizers for Cell Imaging, siRNA Delivery and Protein Loading.

机构信息

Chemistry Department, Collage of Science, Alfaisal University, Riyadh 11533, Saudi Arabia.

IBMM, University Montpellier, CNRS, ENSCM, 34193 Montpellier, France.

出版信息

Molecules. 2023 Jul 11;28(14):5335. doi: 10.3390/molecules28145335.

Abstract

Dendritic mesoporous organosilica nanoparticles (DMON) are a new class of biodegradable nanoparticles suitable for biomolecule delivery. We studied the photochemical internalization (PCI) and photodynamic therapy (PDT) of DMON to investigate new ways for DMON to escape from the endosomes-lysosomes and deliver biomolecules into the cytoplasm of cells. We added photosensitizers in the framework of DMON and found that DMON were loaded with siRNA or FVIII factor protein. We made four formulations with four different photosensitizers. The photosensitizers allowed us to perform imaging of DMON in cancer cells, but the presence of the tetrasulfide bond in the framework of DMON quenched the formation of singlet oxygen. Fortunately, one formulation allowed us to efficiently deliver proapoptotic siRNA in MCF-7 cancer cells leading to 31% of cancer cell death, without irradiation. As for FVIII protein, it was loaded in two formulations with drug-loading capacities (DLC) up to 25%. In conclusion, DMON are versatile nanoparticles capable of loading siRNA and delivering it into cancer cells, and also loading FVIII protein with good DLC. Due to the presence of tetrasulfide, it was not possible to perform PDT or PCI.

摘要

树枝状介孔有机硅纳米粒子(DMON)是一类新型的可生物降解纳米粒子,适合生物分子的传递。我们研究了 DMON 的光化学内化(PCI)和光动力疗法(PDT),以探索 DMON 从内涵体-溶酶体逃逸并将生物分子递送到细胞细胞质的新方法。我们在 DMON 的框架中添加了光敏剂,发现 DMON 负载了 siRNA 或 FVIII 因子蛋白。我们用四种不同的光敏剂制成了四种配方。光敏剂使我们能够在癌细胞中对 DMON 进行成像,但 DMON 框架中的四硫键抑制了单线态氧的形成。幸运的是,有一种配方能够在 MCF-7 癌细胞中有效地传递促凋亡 siRNA,导致 31%的癌细胞死亡,而无需照射。对于 FVIII 蛋白,它被负载在两种载药能力(DLC)高达 25%的配方中。总之,DMON 是多功能的纳米粒子,能够负载 siRNA 并将其递送到癌细胞中,还能够负载 FVIII 蛋白,具有良好的 DLC。由于存在四硫键,无法进行 PDT 或 PCI。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e140/10385246/060b98b7bfcb/molecules-28-05335-g001.jpg

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