Laboratory of Microbiology, Parasitology and Hygiene (LMPH), Faculty of Pharmaceutical, Biomedical and Veterinary Sciences, University of Antwerp, Universiteitsplein 1, B-2610, Wilrijk, Belgium.
Laboratory of Microbiology, Parasitology and Hygiene (LMPH), Faculty of Pharmaceutical, Biomedical and Veterinary Sciences, University of Antwerp, Universiteitsplein 1, B-2610, Wilrijk, Belgium.
Eur J Med Chem. 2019 Nov 1;181:111549. doi: 10.1016/j.ejmech.2019.07.052. Epub 2019 Jul 19.
Tuberculosis (TB) still has a major impact on public health. In order to efficiently eradicate this life-threatening disease, the exploration of novel anti-TB drugs is of paramount importance. As part of our program to design new 2-azaanthraquinones with anti-mycobacterial activity, various "out-of-plane" tetrahydro- and octahydrobenzo[j]phenanthridinediones were synthesized. In this study, the scaffold of the most promising hits was further optimized in an attempt to improve the bioactivity and to decrease enzymatic degradation. The rudiment bio-evaluation of a small library of fluorinated tetrahydrobenzo[j]phenanthridine-7,12-dione derivatives indicated no significant improvement of the bio-activity against intracellular and extracellular Mycobacterium tuberculosis (Mtb). Though, the derivatives showed an acceptable toxicity against J774A.1 macrophages and early signs of genotoxicity were absent. All derivatives showed to be metabolic stabile in the presence of both phase I and phase II murine or human microsomes. Finally, the onset of reactive oxygen species within Mtb after exposure to the derivatives was measured by electron paramagnetic resonance (EPR). Results showed that the most promising fluorinated derivative is still a possible candidate for the subversive inhibition of mycothione reductase.
结核病(TB)仍然对公共卫生有重大影响。为了有效地消除这种危及生命的疾病,探索新型抗结核药物至关重要。作为我们设计具有抗分枝杆菌活性的新型 2-氮杂蒽醌的计划的一部分,合成了各种“离域”四氢和八氢苯并[j]菲啶二酮。在这项研究中,进一步优化了最有前途的化合物的骨架,试图提高生物活性并降低酶促降解。一小部分氟化四氢苯并[j]菲啶-7,12-二酮衍生物的初步生物评估表明,它们对细胞内和细胞外结核分枝杆菌(Mtb)的活性没有显著提高。尽管如此,这些衍生物对 J774A.1 巨噬细胞的毒性可以接受,并且没有出现遗传毒性的早期迹象。所有衍生物在存在 I 相和 II 相鼠或人微粒体的情况下均显示出代谢稳定性。最后,通过电子顺磁共振(EPR)测量了衍生物暴露后 Mtb 内活性氧的产生。结果表明,最有前途的氟化衍生物仍然是一种可能的候选物,可用于颠覆性抑制麦硫因还原酶。