ISPADMEC · Integrin specificity in rigidity sensitive proliferation, activation and directional migration of endothelial cells
„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“
- Период
- 2015-09-01 → 2018-06-26
- Финансиране от ЕС
- 171 461 €
- Участници
- 1
- Схема
- MSCA-IF-EF-ST
Линиите свързват координатора с партньорите.
Накратко на български
Ендотелните клетки и техните рецептори се изследват чрез специална платформа, която имитира механичните и химичните свойства на тъканите. Това помага да се разбере как клетъчното прилепване влияе върху процеси като заздравяването на рани и развитието на тумори.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Integrin specificity in rigidity sensitive proliferation, activation and directional migration of endothelial cells
The main purpose of this proposal was the development of a multifunctional synthetic platform which allows precise regulation of both biochemical and mechanical parameters in order to isolate their contribution on fundamental endothelial cells (EC) functions. The proposed work exploited advances in materials science and nanotechnology to modulate with high precision the presentation of highly selective ligands at the nanometer and micrometer length scales, on substrates with tuneable viscoelasticity and mechanics. In particular, our project addressed the fundamental questions of how differential integrin engagement affects endothelial cell adhesion. The great interest in understanding the role of cell adhesion on the provisional ECM protein fibronectin is better appreciated if we consider its essential role in both physiological (e.g. development, wound healing) and pathological (e.g. tumour metastasis, fibrosis) situations, and the consideration of both a5b1 and avb3 integrin receptors as clinical targets for medical applications. In particular, the observation that integrin avb3 is upregulated in proliferating endothelial cells during angiogenesis and tumour growth, concurrently with fibronectin deposition, has led to clinical trials targeting avb3 which unfortunately have not yet delivered their promise, partly due to our lack of detailed understanding on integrin-related functions and cross-talk. This project allowed us to precisely regulate both biochemical and mechanical parameters in order to isolate their contribution on fundamental endothelial cell functions and to successfully establish the combined effects of ligand presentation, integrins specifity and substrate mechanics on EC physiology in an in vitro setting. Specifically, by using this well-defined nano-patterned platform with highly-selective peptidomimetics we could decouple individual integrin contributions and reveal an intriguing integrin cross-talk event at early stages of adhesion cluster formation, namely the recruitment of avb3 integrins onto a5b1-based FAs. We demonstrate that adhesion clusters assembled upon integrin a5b1 engagement are able to recruit avb3 integrins to these clusters, but not vice-versa, and show that this recruitment is critical for allowing efficient focal adhesion assembly and coherent cell spreading on integrin-selective susbtrates. This type of integrin cross-talk has not been previously appreciated, primarily due to the lack of approapiate tools to separate the function of each integrin. Most studies relied on genetic manipulation to alter integrin expression, but were limited by the use of ligands that bind several receptors or the lack of desired selectivity. Within this project, we could exploit the advantages of well-defined nano-patterned susbtrates and highly selective integrin antagonists to elucidate the role of each integrin and unravel their contribution in the fundamental process of cell adhesion.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
Cells have the extraordinary ability to regulate their morphology, functions and fate to minimal changes in the extracelullar microenvironment. Through multi-protein, cell-matrix adhesions they are able to recognize and respond not only to the chemical diversity of the extracellular matrix (ECM), but also to its physical and topographical features. Mechanical and structural cues encoded in the ECM have an essential role in healthy tissue function where contractility, spreading and proliferation are intricately regulated by cell-cell and cell-matrix adhesion and tension. Unsurprisingly, abnormal ECM mechanics are directly associated with disease and tissue malformation (atherosclerosis, wound healing and tumor formation). Understanding the mechanisms cells use to sense and transduce mechanical signals, as well as the contribution of key players in the process is a pressing, unmet challenge. To achieve this goal, I here propose the development of an in vitro strategy that allows precise regulation of both biochemical and mechanical parameters in order to isolate their contribution on fundamental endothelial cell (EC) functions. The proposed work will exploit advances in materials science and nanotechnology to modulate with high precision the presentation of highly selective integrin ligands at the nanometer and micrometer length scales, on substrates with tunable viscoelasticity and mechanics. The anticipated effects of integrin engagement and substrate mechanics on ECs will shed light on how the microenvironment affects their proliferation, activation and directional migration, and help correlate these finding with pathological scenarios where blood vessel mechanics and EC integrin expression are deregulated. In summary, the proposed interdisciplinary approach will contribute both advanced tools to study cells in vitro and crucial answers for specific questions relating to EC biology.
Оригинален текст от CORDIS (на английски).
Участници
- MAX-PLANCK-GESELLSCHAFT ZUR FORDERUNG DER WISSENSCHAFTEN EV · MUNCHENКоординаторГермания
Връзки
Данни: CORDIS, © Европейски съюз
