Chemotherapeutics Against Multi-Drug Resistant Tuberculosis
Chemotherapeutics Against Multi-Drug Resistant Tuberculosis
批准号:
7668026
负责人:
PETER J TONGE
金额:
$85.46万
依托单位国家:
美国
项目类别:
财政年份:
2006
资助国家:
美国
项目状态:
已结题
起止时间:
2006-08-15 至 2011-07-31
关键词:
Animal ModelAnti-Bacterial AgentsBacteriaBindingBiologicalBiological AvailabilityCategoriesCellsChemicalsClinicalClinical TreatmentDrug KineticsDrug resistanceDrug resistance in tuberculosisEmerging Communicable DiseasesEnzyme InhibitionEnzymesGene DosageGoalsGrowthHalf-LifeIn VitroInfectionInhibitory Concentration 50Isoniazid resistanceLeadLibrariesLifeMeasurementModificationMultidrug-Resistant TuberculosisMusMycobacterium tuberculosisPatientsPenetrationPharmacodynamicsPropertyResearchSeriesSolubilityToxic effectUnited States National Institutes of HealthX-Ray Crystallographyadductbasecytotoxicitydesigndrug discoveryenoyl reductaseimprovedin vitro activityin vivoinhibitor/antagonistmeetingsmycobacterialnovelpathogenphenyl etherpreclinical studyresearch studyresistant strainresponsescaffoldtuberculosis drugs
中文摘要
描述(申请人提供):耐多药结核病(MDR-TB)是一种新出现的传染病威胁,被美国国立卫生研究院列为C类优先病原体。目前,已经设计和合成了一系列化合物,这些化合物是结核分枝杆菌(MTB)Ennoyl还原酶INHA的纳米分子抑制剂,INHA是结核病药物发现的有效靶点。这些先导化合物抑制敏感和耐药结核分枝杆菌菌株的生长,具有相似的抗菌效力(1-2微克/毫升),与不需要分枝杆菌KatG酶激活的化合物将对耐异烟肼临床菌株具有活性的假设一致。作为对RFA-AI-05-019的回应,该提案的目标是优化现有的先导化合物,使其能够用于治疗耐药结核病患者的临床前试验。拟议的研究包括以下具体目标。目的1:对现有的先导化合物进行合理的修饰,以提高其体内外活性。所提出的结构修饰旨在(I)减少酶抑制的KI,(Ii)改善体内关键参数,如溶解度和生物半衰期,以及(Iii)改善对MTB细胞的渗透。目的2:合成有针对性的化合物文库,以(I)探索现有先导化合物周围的化学空间;(Ii)生成具有不同化学骨架的化合物,以扩大inha抑制剂的化学多样性。目的3:测定AIMS 1和AIMS 2化合物的体内外活性。主要筛查将包括IC50(INHA)、MIC(敏感和耐多药结核菌株)和细胞毒性测量。在评估体内抗菌活性之前,二次筛查将提供毒性(MTD)和生物利用度估计。将评估活细菌中的复合作用模式和酶抑制的机制。三级筛查将确定短期(GKO)和长期结核病感染动物模型的抗菌活性。将对选定的化合物进行详细的药代动力学和药效学研究。来自AIM 3中屏幕的信息将用于指导进一步化合物的合成。
英文摘要
DESCRIPTION (provided by applicant): Multi-drug resistant tuberculosis (MDR-TB) is an emerging infectious disease threat classified as a category C priority pathogen by NIH. Currently, a series of compounds have been designed and synthesized that are nanomolar inhibitors of the M. tuberculosis (MTB) enoyl reductase enzyme, InhA, a validated target for TB drug discovery. These lead compounds inhibit the growth of both sensitive and drug resistant MTB strains with similar antibacterial potency (1-2 ug/mL), consistent with the hypothesis that compounds that do not require activation by the mycobacterial KatG enzyme will be active against isoniazid-resistant clinical strains. In response to RFA-AI-05-019, the goal of this proposal is to optimize the existing lead compounds to the point at which they can be used in preclinical trials for the treatment of patients infected with drug resistant TB. The proposed research includes the following specific aims. Aim 1: The existing lead compounds will be rationally modified to improve their in vitro and in vivo activity. Proposed structural modifications are designed to (i) decrease in the Ki for enzyme inhibition, (ii) improve critical in vivo parameters such as solubility and biological half-life and (iii) improve penetration into MTB cells. Aim 2: Focused compound libraries will be synthesized to (i) explore chemical space around the existing lead compounds and (ii) generate compounds with different chemical scaffolds in order to expand the chemical diversity of the InhA inhibitors. Aim 3: The in vitro and in vivo activity of compounds from Aims 1 and 2 will be determined. Primary screens will involve IC50 (InhA), MIC (sensitive and MDR TB strains) and cytotoxicity measurements. Secondary screens will provide toxicity (MTD) and bioavailability estimates, prior to assessing in vivo antibacterial activity. The mode of compound action in live bacteria and the mechanism of enzyme inhibition will be assessed. Tertiary screens will determine antibacterial activity in short (GKO) and long term animal models of TB infection. Detailed pharmacokinetic and pharmacodynamic studies will be performed on select compounds. Information from the screens in Aim 3 will be used to direct the synthesis of further compounds.
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