Infiltrating MDR Gram-negative bacteria using an innovative antibiotic-assisted translocation approach
Infiltrating MDR Gram-negative bacteria using an innovative antibiotic-assisted translocation approach
批准号:
133480
负责人:
金额:
$4.97万
依托单位国家:
英国
项目类别:
Feasibility Studies
财政年份:
2018
资助国家:
英国
项目状态:
已结题
起止时间:
2018 至 --
中文摘要
“耐药性感染已经导致全球每年大量死亡。其中,由MDR革兰氏阴性病原体如肠杆菌科、不动杆菌属、假单胞菌属和克雷伯氏菌属引起的那些是最严重的健康威胁。一般来说,革兰氏阴性菌对大量抗生素具有内在耐药性,并可能导致难以治疗的感染。几乎所有具有抗革兰氏阴性菌活性的新类别的进展都停滞不前的一个主要缺点是实现全细胞活性。革兰氏阴性菌具有内置的防御机制,包括不易被药物和/或抗生素穿透的外细胞膜和内细胞膜,以及可以排出设法穿过细胞膜的药物的多个细胞表面外排泵,增强现有或新的抗生素对耐多药革兰氏菌的抗菌活性,阴性病原体将为这些原本有效和有益的抗生素提供相当大的价值。因此,需要克服细菌防御机制的策略,以使这些抗生素具有持续的治疗效果,本项目旨在提供一种绕过MDR革兰氏阴性病原体中的这些细菌防御机制的方法。一种基于非铁载体的创新方法,用于介导抗菌剂快速促进递送到细菌细胞质中,从而绕过外膜,并发现了流出机制。它采用了一种必需的和非冗余的摄取途径,该途径在革兰氏阴性菌(和革兰氏阳性菌)中高度保守和组成型表达,并且对细菌生长和存活所必需的特定碳水化合物具有高度选择性。该项目旨在证明,将这种生物辅助易位平台技术与药物结合,可以针对两种新型但经过验证的细菌靶标,这两种靶标由于细菌防御机制导致的全细胞活性低下而被终止,将提供一种有效的解决方案,显着降低这些新型抑制剂抑制多种类型MDR细菌细菌生长所需的剂量和MIC(最小抑制浓度)。这些靶点包括LPxC,负责脂质A生物合成中第一个关键步骤的酶,脂质A是外膜的关键组分,以及MurC,参与肽聚糖生物合成的四种氨基酸添加酶中的第一种。
英文摘要
"Drug-resistant infections are already responsible for a significant number of deaths globally each year. Of these, those caused by MDR Gram-negative pathogens such as Enterobacteriaceae, Acinetobacter, Pseudomonas and _Klebsiella_ are amongst the most serious health threats. Gram-negative bacteria, in general, are intrinsically resistant to a significant number of antibiotics and can cause infections that are difficult to treat. A major drawback that has stalled progress on nearly all new classes with potential for activity against Gram-negative bacteria has been achieving whole-cell activity. Gram-negative bacteria have built-in defence mechanisms, including an outer and inner cell membrane that is not easily penetrated by drugs and/or antibiotics, and multiple cell-surface efflux pumps that can expel drugs that do manage to cross the cell membrane, out of the cell before it has the chance to kill the bacteria.Enhancing the antibacterial activity of current or new antibiotics against MDR Gram-negative pathogens would provide considerable value to these otherwise effective and beneficial antibiotics. Therefore there exists a need for strategies which will overcome the defence mechanisms of bacteria to allow these antibiotics to have a sustained therapeutic effect and the present project aims to provide a means by which to bypass these bacterial defence mechanisms in MDR Gram-negative pathogens.An innovative non-siderophore-based approach to mediate fast facilitated delivery of an antibacterial agent into the cytoplasm of bacteria, thereby bypassing the outer membrane and efflux mechanism(s) has been discovered. It employs an essential and non-redundant uptake pathway that is highly conserved and constitutively expressed across Gram-negative bacteria (and Gram-positive) and is highly selective for a specific carbohydrate that is essential for bacterial growth and survival. Selective enzymatic cleavage within the cytoplasm results in the release of the active anti-bacterial agent.The project will aim to demonstrate that combinations of this antibiotic-assisted translocation platform technology with drugs against two novel but validated bacterial targets that have been terminated due to poor whole-cell activity caused by bacterial defence mechanisms, will provide an effective solution in significantly lowering the dose and MIC (minimum inhibitory concentration) that is required to inhibit bacterial growth of multiple types of MDR bacteria with these novel inhibitors. These targets include LPxC, the enzyme responsible for the first committed step in the biosynthesis of lipid A, a key component of the outer membrane, as well as MurC, the first of four amino-acid adding enzymes involved in the biosynthesis of the peptidoglycan,"
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