Scientific Center for Translation Medicine, Sirius University of Science and Technology, 354340 Sochi, Russia.
Institute of Molecular Medicine, Sechenov First Moscow State Medical University, 119991 Moscow, Russia.
Int J Mol Sci. 2023 Jun 16;24(12):10245. doi: 10.3390/ijms241210245.
Proteolytic activity is pivotal in maintaining cell homeostasis and function. In pathological conditions such as cancer, it covers a key role in tumor cell viability, spreading to distant organs, and response to the treatment. Endosomes represent one of the major sites of cellular proteolytic activity and very often represent the final destination of internalized nanoformulations. However, little information about nanoparticle impact on the biology of these organelles is available even though they represent the major location of drug release. In this work, we generated albumin nanoparticles with a different resistance to proteolysis by finely tuning the amount of cross-linker used to stabilize the carriers. After careful characterization of the particles and measurement of their degradation in proteolytic conditions, we determined a relationship between their sensitivity to proteases and their drug delivery properties. These phenomena were characterized by an overall increase in the expression of cathepsin proteases regardless of the different sensitivity of the particles to proteolytic degradation.
蛋白水解活性对维持细胞内环境平衡和功能至关重要。在癌症等病理条件下,它在肿瘤细胞活力、向远处器官扩散以及对治疗的反应中起着关键作用。内体是细胞蛋白水解活性的主要部位之一,通常是内化纳米制剂的最终归宿。然而,尽管它们是药物释放的主要部位,但关于纳米颗粒对这些细胞器生物学特性的影响的信息却很少。在这项工作中,我们通过精细调整用于稳定载体的交联剂的量,生成了具有不同抗蛋白水解能力的白蛋白纳米颗粒。在对颗粒进行仔细表征并测量其在蛋白水解条件下的降解后,我们确定了它们对蛋白酶的敏感性与其药物传递特性之间的关系。这些现象的特征是组织蛋白酶蛋白酶的表达总体增加,而与颗粒对蛋白水解降解的不同敏感性无关。