Lipid and Polarity · The diffusion and nanoclustering of a polarity module in the lipid environment
„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“
- Период
- 2016-04-01 → 2018-03-31
- Финансиране от ЕС
- 185 076 €
- Участници
- 1
- Схема
- MSCA-IF-EF-ST
Линиите свързват координатора с партньорите.
Накратко на български
Протеинът Cdc42 и начинът, по който той се групира в малки клъстери върху клетъчната мембрана, са в центъра на анализа. Разбирането на тези процеси помага за откриването на нови мишени за лекарства срещу рак.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
The diffusion and nanoclustering of a polarity module in the lipid environment
According to the World Health Organization, cancer is the second most important cause of death and morbidity in Europe. Understanding the mechanisms by which cancer cells proliferate and disseminate will identify new treatments. Aberrant regulation and activation of Ras-family GTPases, a network of proteins that control cell proliferation and migration, has been linked to tumorogenesis in diverse cancers. This study focused on one family member, Cdc42. Recent work demonstrated that Cdc42 activation by oncogenic Ras is crucial for Ras-mediated tumorogenesis. Thus, understanding how Cdc42 is activated may provide drug targets aimed at blocking oncogenic Ras signaling (1, 2). The project's objective was to understand how Cdc42 activation is controlled. Recent work highlights the importance of protein diffusion on membranes and the organization of proteins in discrete, nanometer-scale signaling hubs on the plasma membrane (PM) that serve as reaction centers. The best-studied example of this nanoclustering, is that of Ras-family proteins. Ras forms nanoclusters in cell membranes that contain the active GTPase, hence, mutants affecting nanoclustering also perturb Ras signaling (3). At the outset of the project, it was unknown if Cdc42 was also organized in nanoclusters, what function this serves, and what may regulate Cdc42 nanoclustering at the PM. Studying the nanoclustering and diffusion of proteins on the PM presents formidable technical challenges due to the short spatial and temporal scales at which these processes occur. We developed super-resolution microscopy technology, combining very high-speed imaging of fluorescently-tagged Cdc42 with powerful tracking software to facilitate single molecule localization of Cdc42. This enabled us to measure Cdc42 diffusion in live cells and nanoclustering in fixed cells. The experiments were performed in budding yeast, a model organism used to understand fundamental mechanisms of signaling. In budding yeast, Cdc42 is concentrated and activated at a unique site on the PM, the pole, which is the site used to establish a polarity axis for cell growth and division during the cell cycle. Cdc42 activation at the pole of the cell is controlled by its activating GDP-GTP Exchange Factor (GEF), Cdc24, and the associated scaffold protein Bem1. Cdc42 activation and localization have also been shown to be influenced by the lipid composition of the PM, particularly the negatively charged lipid phosphatidylserine (PS), which is also enriched at the cell pole relative to the non-pole of the cell. The objectives of this project were to understand how the diffusion of Cdc42 relates to its activation; whether Cdc42 is organized in nanoclusters; and whether the lipid environment plays a role in this regulation. Collectively, the results would provide insight into the organization and activation of a critical polarity protein and, more generally, how signaling at the PM is controlled by Ras-family members.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
Cellular polarity is a universal feature of eukaryotic biology. Failure to control cell orientation has dramatic consequences on embryogenesis and diseases including cancer. The establishment of cellular polarity often entails the asymmetric distribution of plasma membrane (PM) lipids signaling proteins and vesicle trafficking. The function of Rho proteins in cell polarity has been demonstrated from mammalian cells to yeast. The small GTPase Cdc42 is a pivotal regulator of polarity establishment and maintenance. A central feature of Cdc42 function is its ability to interact with membrane. In budding yeast, Cdc42 localizes asymmetrically at the PM, at the pole of the cell, along with the scaffold protein Bem1 and the Cdc42 activating GEF Cdc24. The asymmetric distribution of lipids in the internal leaflet of the membrane play a crucial role in the regulation of Cdc42 activity and localization, though the mechanisms are not completely understood.The organization of lipids in the PM influences the spatial distribution and activity of key signaling proteins as Ras family proteins. Ras forms nanoclusters in cell membranes that are essential for signaling and Phosphatidylserine lipids have been shown to play a role in the assembly of K-Ras nanoclusters in mammalian cells.In this work, we will study Cdc42, Cdc24 and Bem1 dynamics in the membrane and particularly at the polar cap. To address these challenging questions, we will be using lipid mutants (cho1∆, psd1∆ psd2∆…) in Saccharomyces cerevisiae. We are tracking Cdc42 polarity module components in these mutants at the single molecule level by super-resolution imaging in live cells. This system enables the quantification of the diffusion and clustering of individual molecules at the PM, and the contribution that the lipid environment imparts in vivo. In addition, using this powerful system, we will analyze the nano-organization of different phospholipids involved in signaling (PS, PE, P(I4,5)P2, PI4P).
Оригинален текст от CORDIS (на английски).
Участници
- CENTRE NATIONAL DE LA RECHERCHE SCIENTIFIQUE CNRS · ParisКоординаторФранция
Връзки
Данни: CORDIS, © Европейски съюз
