de la Torre Cristina, Domínguez-Berrocal Leticia, Murguía José R, Marcos M Dolores, Martínez-Máñez Ramón, Bravo Jerónimo, Sancenón Félix
Instituto Interuniversitario de Investigación de Reconocimiento, Molecular y Desarrollo Tecnológico (IDM), Universitat Politècnica de, Valencia, Universitat de València, Valencia Camino de Vera s/n, 46022, Valencia, Spain.
CIBER de Bioingeniería, Biomateriales y Nanomedicina, Madrid, Spain.
Chemistry. 2018 Feb 6;24(8):1890-1897. doi: 10.1002/chem.201704161. Epub 2018 Jan 4.
Apoptotic signaling pathways are altered in numerous pathologies such as cancer. In this scenario, caspase-9/PP2Acα interaction constitutes a key target with pharmacological interest to re-establish apoptosis in tumor cells. Very recently, a short peptide (C9h) known to disrupt caspase-9/PP2Acα interaction with subsequent apoptosis induction was described. Here, we prepared two sets of mesoporous silica nanoparticles loaded with safranin O (S2) or with C9h peptide (S4) and functionalized with ϵ-polylysine as capping unit. Aqueous suspensions of both nanoparticles showed negligible cargo release whereas in the presence of pronase, a marked delivery of safranin O or C9h was observed. Confocal microscopy studies carried out with HeLa cells indicated that both materials were internalized and were able to release their entrapped cargos. Besides, a marked decrease in HeLa cell viability (ca. 50 %) was observed when treated with C9h-loaded S4 nanoparticles. Moreover, S4 provides peptide protection from degradation additionally allowing for a dose reduction to observe an apoptotic effect when compared with C9h alone or in combination with a cell-penetrating peptide (i.e., Mut3DPT-C9h). Flow cytometry studies, by means of Annexin V-FITC staining, showed the activation of apoptotic pathways in HeLa as a consequence of S4 internalization, release of C9h peptide and disruption of caspase-9/PP2Acα interaction.
凋亡信号通路在许多病理状况如癌症中会发生改变。在这种情况下,半胱天冬酶-9/蛋白磷酸酶2Aα(caspase-9/PP2Acα)相互作用构成了一个具有药理学意义的关键靶点,可用于恢复肿瘤细胞中的凋亡。最近,一种已知能破坏caspase-9/PP2Acα相互作用并随后诱导凋亡的短肽(C9h)被报道。在此,我们制备了两组负载番红O(S2)或C9h肽(S4)并用ε-聚赖氨酸作为封端单元进行功能化修饰的介孔二氧化硅纳米颗粒。两种纳米颗粒的水悬浮液显示出可忽略不计的货物释放,而在链霉蛋白酶存在的情况下,观察到番红O或C9h有显著的释放。用HeLa细胞进行的共聚焦显微镜研究表明,两种材料都被内化并且能够释放其包裹的货物。此外,用负载C9h的S4纳米颗粒处理时,观察到HeLa细胞活力显著下降(约50%)。此外,与单独的C9h或与细胞穿透肽(即Mut3DPT-C9h)联合使用相比,S4提供了对肽降解的保护,还允许降低剂量以观察到凋亡效应。通过膜联蛋白V-异硫氰酸荧光素(Annexin V-FITC)染色进行的流式细胞术研究表明,由于S4的内化、C9h肽的释放以及caspase-9/PP2Acα相互作用的破坏,HeLa细胞中的凋亡途径被激活。