醌还原酶2在吲哚酮类衍生物抗疟疾性质中的作用

Laure-Estelle Cassagnes, Nambinina V. Rakotoarivelo, S. Sirigu, P. Pério, Ennaji Najahi, L. Chavas, A. Thompson, R. Gayon, G. Ferry, J. Boutin, A. Valentin, K. Reybier, F. Nepveu
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引用次数: 6

摘要

吲哚酮- n -氧化物在红细胞阶段对恶性疟原虫具有抗疟原虫特性,IC50值在纳摩尔范围内。吲哚酮衍生物的作用机制涉及自由基的产生,自由基的产生是通过一种未知的机制进行生物还原的。在这项研究中,我们假设人类醌还原酶2 (hQR2)可能参与氧化还原活性吲哚酮衍生物的活性。众所周知,人类醌还原酶2在与广泛使用的抗疟疾药物氯喹结合时起黄素氧化还原开关的作用。因此,我们研究了hQR2在吲哚酮衍生物还原中的作用。我们通过酶促动力学、x射线衍射分析底物/蛋白质复合物结构和电子顺磁共振分析自由基的产生来分析hQR2与几种吲哚酮类衍生物的相互作用。将过表达hQR2的细胞中每种化合物的减少量与其在naïve细胞中的减少量进行比较。特异性hQR2抑制剂S29434可以抑制这一过程。这些结果证实,吲哚酮类衍生物的抗疟疾活性与它们作为hQR2底物的能力有关,而不是像氯喹那样作为hQR2抑制剂,这可能导致hQR2底物被认为是设计新的抗疟疾化合物的新途径。
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Role of Quinone Reductase 2 in the Antimalarial Properties of Indolone-Type Derivatives
Indolone-N-oxides have antiplasmodial properties against Plasmodium falciparum at the erythrocytic stage, with IC50 values in the nanomolar range. The mechanism of action of indolone derivatives involves the production of free radicals, which follows their bioreduction by an unknown mechanism. In this study, we hypothesized that human quinone reductase 2 (hQR2), known to act as a flavin redox switch upon binding to the broadly used antimalarial chloroquine, could be involved in the activity of the redox-active indolone derivatives. Therefore, we investigated the role of hQR2 in the reduction of indolone derivatives. We analyzed the interaction between hQR2 and several indolone-type derivatives by examining enzymatic kinetics, the substrate/protein complex structure with X-ray diffraction analysis, and the production of free radicals with electron paramagnetic resonance. The reduction of each compound in cells overexpressing hQR2 was compared to its reduction in naïve cells. This process could be inhibited by the specific hQR2 inhibitor, S29434. These results confirmed that the anti-malarial activity of indolone-type derivatives was linked to their ability to serve as hQR2 substrates and not as hQR2 inhibitors as reported for chloroquine, leading to the possibility that substrate of hQR2 could be considered as a new avenue for the design of new antimalarial compounds.
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