双活性氟喹诺酮-转运蛋白10偶联物在造血细胞移植期间提供替代白血病治疗。

IF 3.2 3区 医学 Q2 PHARMACOLOGY & PHARMACY Molecular Pharmacology Pub Date : 2023-12-15 DOI:10.1124/molpharm.123.000735
Jan Jakub Lica, Mateusz Heldt, Milosz Wieczór, Pawel Chodnicki, Natalia Ptaszyńska, Natalia Maciejewska, Anna Łęgowska, Wioletta Brankiewicz, Katarzyna Gucwa, Anna Stupak, Bhaskar Pradhan, Agata Gitlin-Domagalska, Dawid Dębowski, Sławomir Milewski, Maria Bieniaszewska, Grzegorz Jan Grabe, Andrzej Hellmann, Krzysztof Rolka
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引用次数: 0

摘要

造血细胞移植(HCT)通常被认为是白血病治疗的最后手段,但由于微生物感染(白血病患者死亡的主要原因),治疗成功率有限。为了解决这一关键问题,我们探索了一种新的方法,即合成含有抗菌物质的抗白血病药物。这一创新策略包括将环丙沙星(CIP)或左氧氟沙星(LVX)等氟喹诺酮类抗生素与细胞穿透肽(CPP)转运蛋白10 (TP10)偶联。在这里,我们证明了合成的化合物在临床前研究中显示出有希望的生物活性。这些新型缀合物不仅表现出强大的抗菌作用,而且对白血病细胞也有选择性。细胞毒性机制涉及快速破坏细胞膜不对称导致膜损伤。重要的是,这些偶联物穿透哺乳动物细胞,在核膜内积累,对细胞结构或线粒体功能没有显著影响。分子模拟揭示了TP10偶联物在脂质双层内的聚集倾向,导致膜破坏和渗透。此外,质谱分析证实了TP10偶联物中二硫键的有效还原,促进了氟喹诺酮类衍生物的释放和活化。有趣的是,这些化合物抑制人类拓扑异构酶,使它们与传统的氟喹诺酮类药物区别开来。值得注意的是,与CIP和LVX相比,TP10偶联物产生的细胞内活性氧(ROS)水平较低。抗菌和抗白血病特性的结合,加上选择性细胞抑制作用和对健康细胞的最小毒性,使TP10衍生物成为抗白血病HCT创新治疗方法的有希望的候选者。这项研究强调了它们在寻找更有效的白血病治疗方法方面的潜力。氟喹诺酮类药物是常用的抗生素,而TP10是一种具有抗癌特性的CPP。在艾滋病毒感染中,微生物感染是致病和死亡的主要原因。TP10与氟喹诺酮类药物联合使用对不同类型细胞的作用增强。这些缀合物的双重药理作用为接受HCT的白血病患者提供了一个有希望的概念验证解决方案。战略性设计的治疗方法,结合具有抗菌特性的CPPs,有可能减少恶性肿瘤治疗中的微生物感染。
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Dual-Activity Fluoroquinolone-Transportan 10 Conjugates Offer Alternative Leukemia Therapy during Hematopoietic Cell Transplantation.

Hematopoietic cell transplantation (HCT) is often considered a last resort leukemia treatment, fraught with limited success due to microbial infections, a leading cause of mortality in leukemia patients. To address this critical issue, we explored a novel approach by synthesizing antileukemic agents containing antibacterial substances. This innovative strategy involves conjugating fluoroquinolone antibiotics, such as ciprofloxacin (CIP) or levofloxacin (LVX), with the cell-penetrating peptide transportan 10 (TP10). Here, we demonstrate that the resultant compounds display promising biologic activities in preclinical studies. These novel conjugates not only exhibit potent antimicrobial effects but are also selective against leukemia cells. The cytotoxic mechanism involves rapid disruption of cell membrane asymmetry leading to membrane damage. Importantly, these conjugates penetrated mammalian cells, accumulating within the nuclear membrane without significant effect on cellular architecture or mitochondrial function. Molecular simulations elucidated the aggregation tendencies of TP10 conjugates within lipid bilayers, resulting in membrane disruption and permeabilization. Moreover, mass spectrometry analysis confirmed efficient reduction of disulfide bonds within TP10 conjugates, facilitating release and activation of the fluoroquinolone derivatives. Intriguingly, these compounds inhibited human topoisomerases, setting them apart from traditional fluoroquinolones. Remarkably, TP10 conjugates generated lower intracellular levels of reactive oxygen species compared with CIP and LVX. The combination of antibacterial and antileukemic properties, coupled with selective cytostatic effects and minimal toxicity toward healthy cells, positions TP10 derivatives as promising candidates for innovative therapeutic approaches in the context of antileukemic HCT. This study highlights their potential in search of more effective leukemia treatments. SIGNIFICANCE STATEMENT: Fluoroquinolones are commonly used antibiotics, while transportan 10 (TP10) is a cell-penetrating peptide (CPP) with anticancer properties. In HCT, microbial infections are the primary cause of illness and death. Combining TP10 with fluoroquinolones enhanced their effects on different cell types. The dual pharmacological action of these conjugates offers a promising proof-of-concept solution for leukemic patients undergoing HCT. Strategically designed therapeutics, incorporating CPPs with antibacterial properties, have the potential to reduce microbial infections in the treatment of malignancies.

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来源期刊
Molecular Pharmacology
Molecular Pharmacology 医学-药学
CiteScore
7.20
自引率
2.80%
发文量
50
审稿时长
3-6 weeks
期刊介绍: Molecular Pharmacology publishes findings derived from the application of innovative structural biology, biochemistry, biophysics, physiology, genetics, and molecular biology to basic pharmacological problems that provide mechanistic insights that are broadly important for the fields of pharmacology and toxicology. Relevant topics include: Molecular Signaling / Mechanism of Drug Action Chemical Biology / Drug Discovery Structure of Drug-Receptor Complex Systems Analysis of Drug Action Drug Transport / Metabolism
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