Pokharel Deep, Padula Matthew P, Lu Jamie F, Jaiswal Ritu, Djordjevic Steven P, Bebawy Mary
Discipline of Pharmacy, The Graduate School of Health, University of Technology Sydney, Sydney NSW 2007, Australia.
Proteomics Core Facility, University of Technology Sydney, Sydney NSW 2007, Australia.
Molecules. 2016 Mar 1;21(3):290. doi: 10.3390/molecules21030290.
Multidrug resistance (MDR) is often attributed to the over-expression of P-glycoprotein (P-gp), which prevents the accumulation of anticancer drugs within cells by virtue of its active drug efflux capacity. We have previously described the intercellular transfer of P-gp via extracellular vesicles (EVs) and proposed the involvement of a unique protein complex in regulating this process. In this paper, we investigate the role of these mediators in the regulation of P-gp functionality and hence the acquisition of MDR following cell to cell transfer. By sequentially silencing the FERM domain-binding proteins, Ezrin, Radixin and Moesin (ERM), as well as CD44, which we also report a selective packaging in breast cancer derived EVs, we have established a role for these proteins, in particular Radixin and CD44, in influencing the P-gp-mediated MDR in whole cells. We also report for the first time the role of ERM proteins in the vesicular transfer of functional P-gp. Specifically, we demonstrate that intercellular membrane insertion is dependent on Ezrin and Moesin, whilst P-gp functionality is governed by the integrity of all ERM proteins in the recipient cell. This study identifies these candidate proteins as potential new therapeutic targets in circumventing MDR clinically.
多药耐药性(MDR)通常归因于P-糖蛋白(P-gp)的过度表达,P-gp凭借其主动药物外排能力阻止抗癌药物在细胞内蓄积。我们之前描述了P-gp通过细胞外囊泡(EVs)进行的细胞间转移,并提出一种独特的蛋白质复合物参与调节这一过程。在本文中,我们研究了这些介质在调节P-gp功能以及细胞间转移后获得MDR方面的作用。通过依次沉默FERM结构域结合蛋白埃兹蛋白、根蛋白和膜突蛋白(ERM)以及CD44(我们还报道其在乳腺癌来源的EVs中有选择性包装),我们确定了这些蛋白,特别是根蛋白和CD44,在影响全细胞中P-gp介导的MDR方面的作用。我们还首次报道了ERM蛋白在功能性P-gp的囊泡转移中的作用。具体而言,我们证明细胞间膜插入依赖于埃兹蛋白和膜突蛋白,而P-gp功能则由受体细胞中所有ERM蛋白的完整性决定。这项研究将这些候选蛋白确定为临床上规避MDR的潜在新治疗靶点。