H2020Индивидуална стипендия2017–2019

PACEMech · The structure and molecular mechanism of transport proteins within the PACE family of multidrug efflux pumps

„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“

Период
2017-01-09 → 2019-01-08
Финансиране от ЕС
195 455 €
Участници
1
Схема
MSCA-IF

Линиите свързват координатора с партньорите.

Накратко на български

Протеините от семейството PACE действат като помпи, които изхвърлят антибиотици извън бактерии като Salmonella и Pseudomonas. Разбирането на техния механизъм и структура помага при бъдещата разработка на лекарства, които да блокират тази бактериална устойчивост.

Този кратък обзор е генериран от изкуствен интелект

Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.

Резултати накратко

The structure and molecular mechanism of transport proteins within the PACE family of multidrug efflux pumps

What was the problem/issue being addressed? Bacterial pathogens that infect the most vulnerable patients in hospitals worldwide are becoming increasingly resistant to antibiotics. Drug efflux is a primary mechanism of resistance intrinsic to bacteria and is mediated by integral membrane transport proteins. These proteins act as ‘pumps’ and lower the concentration of antimicrobial drugs within a cell by moving them across the cell membrane and out of the cell. Most drug efflux pumps recognise a wide range of structurally dissimilar antimicrobial compounds. Consequently, the increased expression of just one of these ‘multidrug’ efflux pumps in a bacterial strain in response to antimicrobial selective pressures can result in resistance to a swathe of antibiotics. We recently identified a new family of bacterial multidrug efflux pumps, which we called the Proteobacterial Antimicrobial Compound Efflux (PACE) family of efflux pumps. This was the first new family of drug efflux pumps to be described in 15 years. Members of the PACE family confer efflux mediated resistance to structurally distinct biocides and are highly conserved in the genomes of several major human pathogens including Acinetobacter, Pseudomonas, Klebsiella, Salmonella and Burkholderia species. Due to their recent identification, we had little mechanistic or structural information for proteins classified in the PACE family. This proposal aimed to provide fundamental details of the transport reaction and structure of PACE family proteins, with the view that this information may be used in future drug development projects to interfere with their resistance functions. Why was it important for society? Drug resistance in bacterial pathogens is one of the major challenges to human health worldwide. The occurrence of multidrug and pan-drug resistant bacterial pathogens in hospitals continues to rise.In 2017, the World Health Organisation (WHO) published its first ever list of drug resistant bacterial pathogens for which new antibiotics are urgently needed to guide drug development efforts. All of the pathogens in the top category (Priority 1 “CRITICAL” targets) were Gram-negative bacteria, including strains of Acinetobacter baumannii, Pseudomonas aeruginosa and Enterobacteriaceae. PACE family proteins are encoded by all of the Priority 1 pathogens listed by the WHO and could be contributing to their high levels of antimicrobial resistance. What were the overall objectives and what conclusions have been made? This project applied a combination of sophisticated research technologies available in the Astbury Centre for Structural and Molecular Biology at the University of Leeds, and drew on the diverse collective expertise of the Fellow, Dr Karl Hassan, the Fellowship Supervisor, Prof Peter Henderson, and other Faculty members within the Astbury Centre. The broad research objectives were: 1) To investigate the transport mechanism of PACE family transport proteins. Many elements of PACE transport function needed to be clarified. For example, active transport proteins require energy to mediate the transport of substrates against a concentration gradient (usually chemical energy or the energy held in another concentration gradient). The energy source for PACE proteins was unknown. Additionally, the spectrum of compounds that can be transported by PACE family proteins had not been fully elucidated. It has been shown that several biocides are transported, but we suspected that PACE proteins also recognised other substrates. Finally, previous experiments of PACE family proteins had been conducted in whole bacterial cells. Therefore, it had been questioned whether they were able to function independently in the absence of all other cellular proteins. 2) to generate structural information for a PACE family pump. Structural information for a catalytic protein provides huge insights into how it operates and how we might be able to influence or perturb its function. Transport proteins exist within biological membranes and are very difficult to produce at a high level and to manipulate for the purposes of obtaining structural information. This project aimed to explore several distinct approaches to obtaining structural data for PACE family proteins.

Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз

Цел на проекта

Antimicrobial resistance is recognised as one of the greatest threats to human health worldwide. Multidrug efflux pumps play a major role in the development of drug resistance in bacterial pathogens. These pumps are able to actively export remarkably broad collections antibiotics and biocides out of the cell. Multidrug efflux pumps have classically been organised into five distinct families or superfamilies. Due to their importance, representative proteins from each of these families have been extensively studied.Using a combination of functional genomics and biochemical methods to study antimicrobial resistance in the hospital pathogen Acinetobacter baumannii, I recently identified AceI, the founding member of a sixth family of multidrug efflux pumps called the Proteobacterial Antimicrobial Compound Efflux (PACE) family. The PACE family is the first new family of efflux pumps to be described in 15 years. In light of its recent identification, there is a paucity of fundamental data describing how PACE family pumps mediate drug efflux. This proposal will apply in vitro biochemical, biophysical and structural analyses to reveal molecular details of the structure and functional transport mechanism operating in PACE family pumps.This proposal will draw on the diverse collective expertise of my Fellowship Supervisor Prof Peter Henderson and his expert colleagues in membrane protein structural analyses and biophysics. In conducting this research I will build lasting collaborative links with these experts that will extend beyond the duration of this fellowship. I will receive specialised training in powerful membrane protein analysis methods that are essential to my career goal of establishing a leading research laboratory examining membrane transport proteins, from regulation to molecular mechanisms. My laboratory vision is to develop novel strategies to interfere with drug efflux pump function and so overcome resistance conferred by this important class of proteins.

Оригинален текст от CORDIS (на английски).

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Данни: CORDIS, © Европейски съюз