Center for Pharmacogenetics, University of Pittsburgh, Pittsburgh, PA 15261, USA; Department of Pharmaceutical Sciences, School of Pharmacy, University of Pittsburgh, Pittsburgh, PA 15261, USA; University of Pittsburgh Cancer Institute, University of Pittsburgh, Pittsburgh, PA 15261, USA.
Department of Pharmaceutical Sciences, School of Pharmacy, University of Pittsburgh, Pittsburgh, PA 15261, USA.
J Control Release. 2018 Oct 28;288:212-226. doi: 10.1016/j.jconrel.2018.09.011. Epub 2018 Sep 14.
In order to improve the efficacy of chemotherapy for cancers, we have developed a novel prodrug micellar formulation to co-deliver ceramide-generating anticancer agents and ceramide degradation inhibitor (PPMP). The prodrug nanocarrier is based on a well-defined POEG-b-PPPMP diblock copolymer. The hydrophilic block of POEG-b-PPPMP is POEG, and the hydrophobic block is composed of a number of PPMP units, which could work synergistically with loaded anticancer drugs. POEG-b-PPPMP was readily synthesized via a one-step reversible addition-fragment transfer (RAFT) polymerization from a PPMP monomer. The newly synthesized polymers were self-assembled into micelles and served as a carrier for several hydrophobic anticancer drugs including DOX, PTX and C6-ceramide. POEG-b-PPPMP prodrug polymer exhibited intrinsic antitumor activity in vitro and in vivo. In addition, POEG-b-PPPMP prodrug polymer was comparable to free PPMP in selectively enhancing the production of pro-apoptotic ceramide species as well as down-regulating the mRNA expression of GCS. DOX-loaded POEG-b-PPPMP micelles exhibited an excellent stability of 42 days at 4 °C. Moreover, DOX loaded in POEG-b-PPPMP micelles showed higher levels of cytotoxicity than DOX loaded in a pharmacologically inert polymer (POEG-b-POM) and Doxil formulation in several tumor cell lines. Consistently, in a 4T1.2 murine breast cancer model, the tumor inhibition followed the order of DOX/POEG-b-PPPMP > DOX/POEG-b-POM ≥ Doxil > POEG-b-PPPMP > POEG-b-POM. Our data suggest that POEG-b-PPPMP micelles are a promising dual-functional carrier that warrants more studies in the future.
为了提高癌症化疗的疗效,我们开发了一种新型前药胶束制剂,以共同递送产生神经酰胺的抗癌剂和神经酰胺降解抑制剂(PPMP)。前药纳米载体基于一种定义明确的 POEG-b-PPPMP 两亲嵌段共聚物。POEG-b-PPPMP 的亲水嵌段为 POEG,疏水性嵌段由多个 PPMP 单元组成,可与负载的抗癌药物协同作用。POEG-b-PPPMP 通过一步可逆加成-断裂链转移(RAFT)聚合从 PPMP 单体容易地合成。新合成的聚合物自组装成胶束,并作为几种疏水性抗癌药物(包括 DOX、PTX 和 C6-神经酰胺)的载体。POEG-b-PPPMP 前药聚合物在体外和体内均表现出内在的抗肿瘤活性。此外,POEG-b-PPPMP 前药聚合物在选择性增强促凋亡神经酰胺种类的产生以及下调 GCS 的 mRNA 表达方面与游离 PPMP 相当。载 DOX 的 POEG-b-PPPMP 胶束在 4°C 下具有长达 42 天的优异稳定性。此外,与载药惰性聚合物(POEG-b-POM)和 Doxil 制剂相比,载 DOX 的 POEG-b-PPPMP 胶束在几种肿瘤细胞系中表现出更高水平的细胞毒性。一致地,在 4T1.2 小鼠乳腺癌模型中,肿瘤抑制遵循以下顺序:DOX/POEG-b-PPPMP>DOX/POEG-b-POM≥Doxil>POEG-b-PPPMP>POEG-b-POM。我们的数据表明,POEG-b-PPPMP 胶束是一种有前途的双重功能载体,值得在未来进行更多研究。