分枝杆菌核糖核酸酶的比较分析:寻找新的治疗药物靶点。

IF 2.6 4区 医学 Q3 INFECTIOUS DISEASES Infection Genetics and Evolution Pub Date : 2024-07-26 DOI:10.1016/j.meegid.2024.105645
Lav Kumar Jaiswal , Rakesh Kumar Singh , Tanmayee Nayak , Anuja Kakkar , Garima Kandwal , Vijay Shankar Singh , Ankush Gupta
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引用次数: 0

摘要

细菌对不断变化的环境的反应是通过在转录启动、RNA 处理和/或衰变水平上调节基因表达来实现的。核糖核酸酶(RNase)是一种水解或磷酸化酶,参与了大多数 RNA 代谢反应。RNase 在 RNA 降解过程中发挥着至关重要的作用,既可独立作用,也可与各种反式调节因子协同作用。分枝杆菌属由五个亚属组成:分枝杆菌属由五个亚属组成:分枝杆菌亚属、分枝杆菌亚属、分枝杆菌亚属、分枝杆菌亚属和分枝杆菌亚属,迄今已包括 63 个完全测序的物种(致病/非致病)。它们包括 13 种不同的 RNase,其中 5 种是外核酶(RNase PH、PNPase、RNase D、纳米 RNase 和 RNase AS),8 种是内核酶(RNase J、RNase H、RNase P、RNase III、RNase BN、RNase Z、RNase G 和 RNase E),尽管后来发现 RNase J 和 RNase BN 也具有外核酶功能。在这里,我们对大肠杆菌和分枝杆菌 RNase 的类型、系统发育、结构、功能、调控和作用机制进行了详细的比较研究,重点是 RNase E。RNase E 也是一种重要的内切酶,在许多细菌中含量丰富,可形成 RNA 降解体复合物,控制中央 RNA 处理/降解,其 RNase 结构域中有一个类似于 5'传感器结构域/DNase-I 的保守区域。分枝杆菌的基本 RNase(尤其是 RNase E)提供了潜在的药物靶点,可用于筛选抑制剂/调节剂,以防治多种致命的分枝杆菌疾病。
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A comparative analysis of mycobacterial ribonucleases: Towards a therapeutic novel drug target

Bacterial responses to continuously changing environments are addressed through modulation of gene expression at the level of transcription initiation, RNA processing and/or decay. Ribonucleases (RNases) are hydrolytic or phosphorolytic enzymes involved in a majority of RNA metabolism reactions. RNases play a crucial role in RNA degradation, either independently or in collaboration with various trans-acting regulatory factors. The genus Mycobacterium consists of five subgenera: Mycobacteroides, Mycolicibacterium, Mycobacterium, Mycolicibacter and Mycolicibacillus, which include 63 fully sequenced species (pathogenic/non-pathogenic) to date. These include 13 different RNases, among which 5 are exonucleases (RNase PH, PNPase, RNase D, nano-RNases and RNase AS) and 8 are endonucleases (RNase J, RNase H, RNase P, RNase III, RNase BN, RNase Z, RNase G and RNase E), although RNase J and RNase BN were later identified to have exoribonuclease functions also. Here, we provide a detailed comparative insight into the Escherichia coli and mycobacterial RNases with respect to their types, phylogeny, structure, function, regulation and mechanism of action, with the main emphasis on RNase E. Among these 13 different mycobacterial RNases, 10 are essential for cell survival and have diverse structures hence, they are promising drug targets. RNase E is also an essential endonuclease that is abundant in many bacteria, forms an RNA degradosome complex that controls central RNA processing/degradation and has a conserved 5′ sensor domain/DNase-I like region in its RNase domain. The essential mycobacterial RNases especially RNase E provide a potential repertoire of drug targets that can be exploited for inhibitor/modulator screening against many deadly mycobacterial diseases.

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来源期刊
Infection Genetics and Evolution
Infection Genetics and Evolution 医学-传染病学
CiteScore
8.40
自引率
0.00%
发文量
215
审稿时长
82 days
期刊介绍: (aka Journal of Molecular Epidemiology and Evolutionary Genetics of Infectious Diseases -- MEEGID) Infectious diseases constitute one of the main challenges to medical science in the coming century. The impressive development of molecular megatechnologies and of bioinformatics have greatly increased our knowledge of the evolution, transmission and pathogenicity of infectious diseases. Research has shown that host susceptibility to many infectious diseases has a genetic basis. Furthermore, much is now known on the molecular epidemiology, evolution and virulence of pathogenic agents, as well as their resistance to drugs, vaccines, and antibiotics. Equally, research on the genetics of disease vectors has greatly improved our understanding of their systematics, has increased our capacity to identify target populations for control or intervention, and has provided detailed information on the mechanisms of insecticide resistance. However, the genetics and evolutionary biology of hosts, pathogens and vectors have tended to develop as three separate fields of research. This artificial compartmentalisation is of concern due to our growing appreciation of the strong co-evolutionary interactions among hosts, pathogens and vectors. Infection, Genetics and Evolution and its companion congress [MEEGID](http://www.meegidconference.com/) (for Molecular Epidemiology and Evolutionary Genetics of Infectious Diseases) are the main forum acting for the cross-fertilization between evolutionary science and biomedical research on infectious diseases. Infection, Genetics and Evolution is the only journal that welcomes articles dealing with the genetics and evolutionary biology of hosts, pathogens and vectors, and coevolution processes among them in relation to infection and disease manifestation. All infectious models enter the scope of the journal, including pathogens of humans, animals and plants, either parasites, fungi, bacteria, viruses or prions. The journal welcomes articles dealing with genetics, population genetics, genomics, postgenomics, gene expression, evolutionary biology, population dynamics, mathematical modeling and bioinformatics. We also provide many author benefits, such as free PDFs, a liberal copyright policy, special discounts on Elsevier publications and much more. Please click here for more information on our author services .
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