NIOBMT · Nanomechanical intervention of bacterial mechanotransduction
„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“
- Период
- 2021-08-01 → 2023-07-31
- Финансиране от ЕС
- 212 934 €
- Участници
- 1
- Схема
- MSCA-IF
Линиите свързват координатора с партньорите.
Накратко на български
Наномеханиката на протеина PilY1 при бактерията Pseudomonas aeruginosa разкрива как микробите разпознават повърхностите на човешките тъкани. Разбирането на този процес помага за разработване на терапии, които да попречат на бактериите да колонизират организма и да предизвикат инфекция.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Nanomechanical intervention of bacterial mechanotransduction
Pathogenic bacteria possess a vast array of resources that enable the colonization of host epithelial tissues. The continuous appearance of bacterial strains resistant to most antibiotic treatments—the so-called “superbugs”—is a pressing public health problem that requires urgent efforts to tackle the life-threatening infections caused by these pathogens. One of the main events that initiate tissue colonization and the onset of an infection is the recognition of surfaces—host tissues—by the pathogenic bacteria. Bacteria cells swim free in liquid media and the proximity or direct contact with the host tissues (respiratory tract, urinary tract, etc.) provide mechanical cues that trigger cell responses that lead to tissue colonization and the onset of an infection process (Summary Image, 1 and 2). This mechanically induced detection of host tissues depends on proteins—mechanosensors—located on the surface of the bacteria cells. Understanding how these proteins respond to mechanical forces and how the bacterium processes this information to decide to start an infection offers an ideal target for developing therapeutic strategies that combat the first stages of bacterial colonization. For instance, drugs that alter the mechanical properties of these proteins responsible for surface detection would render the bacteria “blind” to the host tissue, abolishing colonization, and the subsequent infection. With these premises, this project aimed to delve into the process of bacterial surface detection and adhesion by focusing on the nanomechanics of the protein PilY1, whose mechanical activation has been suggested as a key event in the process that leads to host tissue colonization (Summary Image, 3). We focused on the PilY1 protein of Pseudomonas aeruginosa, an opportunistic pathogen that causes recurrent infections in cystic fibrosis patients. PilY1 is a complex protein that possesses a mechanosensitive role (detection of surfaces), and an adhesive role (binding to host tissue proteins). To interrogate the role of mechanical forces on the functions of PilY1, we employed single-molecule force spectroscopy techniques. These techniques allow the manipulation with the force of single PilY1 proteins and determine their mechanical properties in the nanoscale—nanomechanics—which provides key information about proteins that carry out their functions under mechanical loads. Certain molecules bind to PilY1 and modulate the processes of surface recognition and adhesion, and conducting measurements in the absence and presence of these molecules can give insights into how they regulate PilY1 behavior under force and, more importantly, they provide knowledge for the development of strategies that interfere with colonization and pathogenesis (Summary Image, 4). Therefore, the objectives of this project aimed to identify and dissect the effect of mechanical forces on the functions of PilY1 and identify potential molecular strategies to interfere with them.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
Mechanical force is a ubiquitous perturbation that operates at all levels of life, from single molecules to organs. At the tissue level, cells are constantly exposed to forces exerted by their surrounding environment—body fluids, neighboring cells, or the extracellular matrix. The process by which cells sense and convert physical stimuli into a biochemical signal is known as mechanotransduction. When mechanical forces reach the nucleus, they can activate several force-induced transcriptional pathways that control cell functionality. The failure of these pathways has been linked to several human pathologies, such as cancer. While most of our knowledge in mechanobiology is focused on mammalian cells, comparatively little is known on how prokaryotes detect, interpret, and generate a response to physical inputs. Understanding how bacteria sense mechanical forces and how these signals are integrated to promote colonization, biofilm formation, or virulence development is crucial to develop therapeutic strategies that target the pathogenesis onset. Here we propose a cross-scale approach that first employs single-molecule force spectroscopy techniques to study in vitro the dynamics under force of PilY1 —from the Gram-negative opportunistic pathogen Pseudomonas aeruginosa— and how antibody binding affects its mechanical stability. Our goal is to implement a molecular-based strategy that disrupts the PilY-triggered mechanotransduction pathway, which we will probe at the cellular level. Using a combination of optical microscopy and single-cell mechanical techniques, we will monitor in vivo the downstream events that lead to the expression of genes that promote virulence after PilY1 mechanical stimulation in the absence and presence of antibodies that disrupt the activity of this protein.
Оригинален текст от CORDIS (на английски).
Участници
- KING'S COLLEGE LONDON · LondonКоординаторОбединеното кралство
Връзки
Данни: CORDIS, © Европейски съюз
