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In silico Metabolic Pathway Analysis Identifying Target Against Leishmaniasis – A Kinetic Modeling Approach

机译:在硅藻中,代谢途径分析识别Leishmaniaisis的目标 - 一种动力学建模方法

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The protozoan Leishmania donovani , from trypanosomatids family is a deadly human pathogen responsible for causing Visceral Leishmaniasis. Unavailability of proper treatment in the developing countries has served as a major threat to the people. The absence of vaccines has made treatment possibilities to rely solely over chemotherapy. Also, reduced drug efficacy due to emerging resistant strains magnifies the threat. Despite years of formulations for an effective drug therapy, complexity of the disease is also unfortunately increasing. Absence of potential drug targets has worsened the scenario. Therefore exploring new therapeutic approach is a priority for the scientific community to combat the disease. One of the most reliable ways to alter the adversities of the infection is finding new biological targets for designing potential drugs. An era of computational biology allows identifying targets, assisting experimental studies. It includes sorting the parasite’s metabolic pathways that pins out proteins essential for its survival. We have directed our study towards a computational methodology for determining targets against L. donovani from the “purine salvage” pathway. This is a mainstay pathway towards the maintenance of purine amounts in the parasitic pool of nutrients proving to be mandatory for its survival. This study represents an integration of metabolic pathway and Protein-Protein Interactions analysis. It consists of incorporating the available experimental data to the theoretical methods with a prospective to develop a kinetic model of Purine salvage pathway. Simulation data revealed the time course mechanism of the enzymes involved in the synthesis of the metabolites. Modeling of the metabolic pathway helped in marking of crucial enzymes. Additionally, the PPI analysis of the pathway assisted in building a static interaction network for the proteins. Topological analysis of the PPI network through centrality measures (MCC and Closeness) detected targets found common with Dynamic Modeling. Therefore our analysis reveals the enzymes ADSL (Adenylosuccinate lyase) and IMPDH (Inosine-5′-monophosphate dehydrogenase) to be important having a central role in the modeled network based on PPI and kinetic modeling techniques. Further the available three dimensional structure of the enzyme “ADSL” aided towards the search for potential inhibitors against the protein. Hence, the study presented the significance of integrating methods to identify key proteins which might be putative targets against the treatment of Visceral Leishmaniasis and their potential inhibitors.
机译:来自锥虫的原生动物Leishmania Donovani,来自Terpyoosomatids家族是一种致命的人类病原,负责导致内脏LeishManiaisis。在发展中国家的适当待遇不可用成为对人民的重大威胁。没有疫苗已经使依赖于化疗的治疗可能性。此外,由于出现抗性菌株引起的药物功效减少了威胁。尽管有多年的配方进行了有效的药物治疗,但疾病的复杂性也不幸增加了。没有潜在的药物目标已经恶化了这种情况。因此,探索新的治疗方法是科学界对抗这种疾病的优先事项。改变感染逆境的最可靠的方法之一是寻找用于设计潜在药物的新的生物学目标。计算生物学的时代允许识别目标,协助实验研究。它包括对寄生虫的代谢途径进行分类,这些途径引出蛋白质的生存蛋白质。我们旨在我们朝着从“嘌呤救生”途径中针对L. Dovovani的靶标的计算方法的研究。这是朝向营养物质寄生池中维持嘌呤量的负载途径,证明是其存活率的强制性。该研究代表了代谢途径和蛋白质 - 蛋白质相互作用分析的整合。它包括将可用的实验数据纳入理论方法,具有前瞻性,以开发嘌呤救生途径的动力学模型。仿真数据揭示了参与代谢物合成的酶的时间过程机制。新陈代谢途径的建模有助于标记关键酶。另外,途径的PPI分析辅助构建蛋白质的静态相互作用网络。通过中心度测量(MCC和近距离)对PPI网络的拓扑分析检测到与动态建模共同的目标。因此,我们的分析显示了基于PPI和动力学建模技术的建模网络中的核心作用,揭示了酶AdSL(腺苷-5'-一磷酸酶)和IMPHDH(InoSine-5'-一磷酸脱氢酶)。此外,酶“AdSL”的可用三维结构辅导朝向对蛋白质的潜在抑制剂进行搜索。因此,该研究表明,整合方法鉴定键蛋白的方法意义,这可能是针对内脏利什曼病和其潜在抑制剂的拟议靶标的靶向的。

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