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Delivery of Chemically Glycosylated Cytochrome c Immobilized in Mesoporous Silica Nanoparticles Induces Apoptosis in HeLa Cancer Cells

机译:固定在介孔二氧化硅纳米粒子中的化学糖基化细胞色素c的交付诱导HeLa癌细胞的凋亡

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摘要

Cytochrome c (Cyt c) is a small mitochondrial heme protein involved in the intrinsic apoptotic pathway. Once Cyt c is released into the cytosol, the caspase mediated apoptosis cascade is activated resulting in programmed cell death. Herein, we explore the covalent immobilization of Cyt c into mesoporous silica nanoparticles (MSN) to generate a smart delivery system for intracellular drug delivery to cancer cells aiming at affording subsequent cell death. Cyt c was modified with sulfosuccinimidyl-6-[3′-(2-pyridyldithio)-propionamido] hexanoate (SPDP) and incorporated into SH-functionalized MSN by thiol-disulfide interchange. Unfortunately, delivery of Cyt c from the MSN was not efficient in inducing apoptosis in human cervical cancer HeLa cells. We tested whether chemical Cyt c glycosylation could be useful in overcoming the efficacy problems by potentially improving Cyt c thermodynamic stability and reducing proteolytic degradation. Cyt c lysine residues were modified with lactose at a lactose-to-protein molar ratio of 3.7±0.9 using mono-(lactosylamido)-mono-(succinimidyl) suberate linker chemistry. Circular dichroism (CD) spectra demonstrated that part of the activity loss of Cyt c was due to conformational changes upon its modification with the SPDP linker. These conformational changes were prevented in the glycoconjugate. In agreement with the unfolding of Cyt c by the linker, a proteolytic assay demonstrated that the Cyt c-SPDP conjugate was more susceptible to proteolysis than Cyt c. Attachment of the four lactose molecules reversed this increased susceptibility and protected Cyt c from proteolytic degradation. Furthermore, a cell-free caspase-3 assay revealed 47% and 87% of relative caspase activation by Cyt c-SPDP and the Cyt c-lactose bioconjugate, respectively, when compared to Cyt c. This again demonstrates the efficiency of the glycosylation to improve maintaining Cyt c structure and thus function. To test for cytotoxicity, HeLa cells were incubated with Cyt c loaded MSN at different Cyt c concentrations (12.5, 25.0, and 37.5 μg/mL) for 24 to 72 h and cellular metabolic activity determined by a cell proliferation assay. While MSN-SPDP-Cyt c did not induced cell death, the Cyt c-lactose bioconjugate induced significant cell death after 72 h, reducing HeLa cell viability to 67% and 45% at the 25 μg/mL and 37.5 μg/mL concentrations, respectively. Confocal microscopy confirmed that the MSN immobilized Cyt c-lactose bioconjugate was internalized by HeLa cells and that the bioconjugate was capable of endosomal escape. The results clearly demonstrate that chemical glycosylation stabilized Cyt c upon formulation of a smart drug delivery system and upon delivery into cancer cells and highlight the general potential of chemical protein glycosylation to improve the stability of protein drugs.
机译:细胞色素c(Cyt c)是参与内在凋亡途径的一种小的线粒体血红素蛋白。一旦Cyt c释放到细胞质中,胱天蛋白酶介导的凋亡级联反应就被激活,导致程序性细胞死亡。在本文中,我们探讨了将Cyt c共价固定到介孔二氧化硅纳米粒子(MSN)中以生成智能递送系统,用于将细胞内药物递送至癌细胞,从而提供后续的细胞死亡。 Cyt c用磺基琥珀酰亚胺基-6- [3'-(2-吡啶基二硫代)-丙酰胺基]己酸酯(SPDP)修饰,并通过硫醇-二硫键互换掺入SH官能化MSN中。不幸的是,从MSN递送Cyt c不能有效诱导人宫颈癌HeLa细胞凋亡。我们测试了化学Cyt c糖基化是否可以通过潜在地改善Cyt c热力学稳定性和减少蛋白水解降解来解决功效问题。使用单-(乳糖酰胺基)-单-(琥珀酰亚胺基)辛二酸酯连接子化学方法,以乳糖与蛋白质的摩尔比为3.7±0.9的乳糖修饰细胞c赖氨酸残基。圆二色性(CD)光谱表明Cyt c的部分活性损失是由于SPDP接头修饰后其构象变化所致。在糖缀合物中防止了这些构象变化。与通过接头使Cyt c展开一致,蛋白水解测定表明,Cyt c-SPDP偶联物比Cyt c更容易受到蛋白水解作用。四个乳糖分子的附着逆转了这种增加的敏感性,并保护了Cyt c免受蛋白水解降解。此外,与Cyt c相比,无细胞caspase-3分析分别显示Cyt c-SPDP和Cyt c-乳糖生物缀合物的相对caspase活化分别为47%和87%。这再次证明了糖基化改善维持Cyt c结构从而起作用的效率。为了测试细胞毒性,将HeLa细胞与不同浓度Cyt c(12.5、25.0和37.5μg/ mL)的Cyt c载MSN孵育24至72 h,并通过细胞增殖测定法测定细胞代谢活性。尽管MSN-SPDP-Cyt c不会诱导细胞死亡,但Cyt c-乳糖生物共轭物在72小时后诱导了明显的细胞死亡,在25μg/ mL和37.5μg/ mL的浓度下,HeLa细胞活力降低到67%和45%,分别。共聚焦显微镜证实,MSN固定的Cyt c-乳糖生物共轭物已被HeLa细胞内在化,并且该生物共轭物能够进行内体逃逸。结果清楚地表明,化学糖基化在配制智能药物递送系统时和递送到癌细胞中后稳定了Cyt c,并突出了化学蛋白质糖基化改善蛋白质药物稳定性的一般潜力。

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