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Micelle Delivery of Parthenolide to Acute Myeloid Leukemia Cells

机译:苯丙氨酚的胶束递送至急性髓样白血病细胞

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摘要

Parthenolide (PTL) has shown great promise as a novel anti-leukemia agent as it selectively eliminates acute myeloid leukemia (AML) blast cells and leukemia stem cells (LSCs) while sparing normal hematopoietic cells. This success has not yet translated to the clinical setting because PTL is rapidly cleared from blood due to its hydrophobicity. To increase the aqueous solubility of PTL, we previously developed micelles formed from predominantly hydrophobic amphiphilic diblock copolymers of poly(styrene-alt-maleic anhydride)-b-poly(styrene) (e.g., PSMA100-b-PS258) that exhibit robust PTL loading (75%efficiency, 11% w/w capacity) and release PTL over 24 h. Here, PTL-loaded PSMA-b-PS micelles were thoroughly characterized in vitro for PTL delivery to MV4-11 AML cells. Additionally, the mechanisms governing micelle-mediated cytotoxicity were examined in comparison to free PTL. PSMA-b-PS micelles were taken up by MV4-11 cells as evidenced by transmission electron microscopy and flow cytometry. Specifically, MV4-11 cells relied on clathrin-mediated endocytosis, rather than caveolae-mediated endocytosis and macropinocytosis. In addition, PTL-loaded PSMA-b-PS micelles exhibited a dose-dependent cytotoxicity towards AML cells and were capable of reducing cell viability by 75% at 10 μM PTL, while unloaded micelles were nontoxic. At 10 μM PTL, the cytotoxicity of PTL-loaded micelles increased gradually over 24 h while free PTL achieved maximal cytotoxicity between 2 and 4 h, demonstrating micelle-mediated delivery of PTL to AML cells and stability of the drug-loaded micelle even in the presence of cells. Both free PTL and PTL-loaded micelles induced NF-κB inhibition at 10 μM PTL doses, demonstrating some mechanistic similarities in cytotoxicity. However, free PTL relied more heavily on exofacial free thiol interactions to induce cytotoxicity than PTL-loaded micelles; free PTL cytotoxicity was reduced by over twofold when cell surface free thiols were depleted, where PTL-loaded micelle doses were unaffected by cell surface thiol modulation. The physical properties, stability, and efficacy of PTL-loaded PSMA-b-PS micelles support further development of a leukemia therapeutic with greater bioavailability and the potential to eliminate LSCs.
机译:Parthenolide(PTL)作为一种新型抗白血病药已显示出巨大的希望,因为它可以选择性地消除急性骨髓性白血病(AML)原始细胞和白血病干细胞(LSC),同时保留正常的造血细胞。这种成功尚未转化为临床应用,因为PTL由于其疏水性而迅速从血液中清除。为了增加PTL在水中的溶解度,我们先前开发了由主要表现为强大的PTL负载的聚苯乙烯-丙二酸-马来酸酐-b-聚苯乙烯(例如PSMA100-b-PS258)的疏水两亲性二嵌段共聚物形成的胶束(效率为75%,容量为11%w / w),并在24小时内释放了PTL。在这里,PTL负载的PSMA-b-PS胶束在体外彻底表征了PTL递送至MV4-11 AML细胞的能力。另外,与游离PTL相比,检查了控制胶束介导的细胞毒性的机制。透射电镜和流式细胞术证明,MV4-11细胞吸收了PSMA-b-PS胶束。具体而言,MV4-11细胞依赖网格蛋白介导的内吞作用,而不是小窝介导的内吞作用和巨胞饮作用。此外,载有PTL的PSMA-b-PS胶束对AML细胞表现出剂量依赖性的细胞毒性,并能够在10μMPTL下将细胞活力降低75%,而未载有胶束则无毒。在10μMPTL下,负载PTL的胶束的细胞毒性在24小时内逐渐增加,而游离PTL在2-4小时之间达到最大的细胞毒性,这表明胶束介导的PTL向AML细胞的递送和负载药物的胶束的稳定性,即使在细胞的存在。游离PTL和载有PTL的胶束均以10μMPTL剂量诱导了NF-κB抑制作用,证明了细胞毒性的一些机制相似性。然而,与载有PTL的胶束相比,游离PTL更依赖于颜面游离硫醇相互作用来诱导细胞毒性。耗尽细胞表面游离巯基后,游离PTL细胞毒性降低了两倍以上,其中PTL负载的胶束剂量不受细胞表面巯基调节的影响。负载PTL的PSMA-b-PS胶束的物理性质,稳定性和功效支持进一步开发具有更高生物利用度和消除LSC潜力的白血病治疗药物。

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