Catalase-peroxidase (KatG): a potential frontier in tuberculosis drug development.

IF 6.2 2区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Aimin Liu
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引用次数: 0

Abstract

Mycobacterium tuberculosis (Mtb) depends on the bifunctional enzyme catalase-peroxidase (KatG) for survival within the host. KatG exhibits both catalase and peroxidase activities, serving distinct yet critical roles. While its peroxidase activity is essential for activating the frontline tuberculosis drug isoniazid, its catalase activity protects Mtb from oxidative stress. This bifunctional enzyme is equipped with a unique, protein-derived cofactor, methionine-tyrosine-tryptophan (MYW), which enables catalase activity to efficiently disproportionate hydrogen peroxide in phagocytes. Recent studies reveal that the MYW cofactor naturally exists in a hydroperoxylated form (MYW-OOH) when cell cultures are grown under ambient conditions. New findings highlight a dynamic regulation of KatG activity, wherein the modification of the protein cofactor is removable-from MYW-OOH to MYW-at body temperature or in the presence of micromolar concentrations of hydrogen peroxide. This reversible modification modulates KatG's dual activities: MYW-OOH inhibits catalase activity while enhancing peroxidase activity, demonstrating the chemical accessibility of the cofactor. Such duality positions KatG as a unique target for tuberculosis drug development. Therapeutic strategies that exploit cofactor modification could hold promise, particularly against drug-resistant strains with impaired peroxidase activity. By selectively inhibiting catalase activity, these approaches would render Mtb more vulnerable to oxidative stress while enhancing isoniazid activation-a double-edged strategy for combating tuberculosis.

过氧化氢酶-过氧化物酶(KatG):结核病药物开发的潜在前沿。
结核分枝杆菌(Mtb)依靠双功能酶过氧化氢酶-过氧化物酶(KatG)在宿主内存活。KatG具有过氧化氢酶和过氧化物酶活性,具有不同但重要的作用。虽然其过氧化物酶活性对于激活一线结核病药物异烟肼至关重要,但其过氧化氢酶活性可保护结核杆菌免受氧化应激。这种双功能酶配备了一种独特的,蛋白质衍生的辅助因子,蛋氨酸-酪氨酸-色氨酸(MYW),使过氧化氢酶活性有效地在吞噬细胞中不成比例的过氧化氢。最近的研究表明,当细胞培养物在环境条件下生长时,MYW辅因子自然以氢化过氧形式(MYW- ooh)存在。新的研究结果强调了KatG活性的动态调节,其中蛋白质辅因子的修饰在体温或微摩尔浓度的过氧化氢存在下是可去除的-从MYW-OOH到myw -。这种可逆修饰调节KatG的双重活性:MYW-OOH抑制过氧化氢酶活性,同时增强过氧化物酶活性,证明了辅助因子的化学可及性。这种双重性使KatG成为结核病药物开发的独特靶点。利用辅因子修饰的治疗策略可能会带来希望,特别是针对过氧化物酶活性受损的耐药菌株。通过选择性地抑制过氧化氢酶活性,这些方法将使结核分枝杆菌更容易受到氧化应激的影响,同时增强异烟肼的激活——这是对抗结核病的双刃剑策略。
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来源期刊
CiteScore
14.90
自引率
0.00%
发文量
6
期刊介绍: As the discipline of biochemistry and molecular biology have greatly advanced in the last quarter century, significant contributions have been made towards the advancement of general medicine, genetics, immunology, developmental biology, and biophysics. Investigators in a wide range of disciplines increasingly require an appreciation of the significance of current biochemical and molecular biology advances while, members of the biochemical and molecular biology community itself seek concise information on advances in areas remote from their own specialties. Critical Reviews in Biochemistry and Molecular Biology believes that well-written review articles prove an effective device for the integration and meaningful comprehension of vast, often contradictory, literature. Review articles also provide an opportunity for creative scholarship by synthesizing known facts, fruitful hypotheses, and new concepts. Accordingly, Critical Reviews in Biochemistry and Molecular Biology publishes high-quality reviews that organize, evaluate, and present the current status of high-impact, current issues in the area of biochemistry and molecular biology. Topics are selected on the advice of an advisory board of outstanding scientists, who also suggest authors of special competence. The topics chosen are sufficiently broad to interest a wide audience of readers, yet focused enough to be within the competence of a single author. Authors are chosen based on their activity in the field and their proven ability to produce a well-written publication.
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