FP7Индивидуална стипендия2014–2017

TROJAN-LIPID-SENSOR · Trojan-Lipid-Sensor

7РП — „Хора“ (Действия „Мария Кюри“)

Период
2014-09-16 → 2017-09-15
Финансиране от ЕС
359 082 €
Участници
1
Схема
MC-IOF

Линиите свързват координатора с партньорите.

Накратко на български

RNA сензори се разработват, за да разпознават липидите в клетъчните мембрани чрез светлинни сигнали. Това помага за разбирането на молекулярните механизми, които контролират движението и закрепването на клетките.

Този кратък обзор е генериран от изкуствен интелект

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

Резултати накратко

Trojan-Lipid-Sensor

The aim of my project is to design and produce an RNA sensor capable of recognizing membrane phospholipids to study cellular dynamics and the molecular mechanisms that control cell adhesion and movement. These RNA molecules bind to conditionally fluorescent molecules that are structurally related to the GFP Chromophore and are called Spinach. Spinach can be used to create small molecule sensors. If a small molecule–binding aptamer and Spinach share the critical stem required for Spinach fluorescence, small-molecule can fold the aptamer and stabilize the stem, resulting in fluorescence. Spinach can therefore function as a sensor that becomes fluorescent only upon binding to specific target molecules, in my case lipid molecules. Since the cell membrane is the first structure that connects the inside of the cell with the outside, it is clear that the proteins and lipids contained therein not only play a fundamental structural role, but also play a role as transductor of cellular messages and external stimuli. During the outgoing phase I had the opportunity to work at Cornell Medicine in New York City, in the lab of prof. Jaffrey, a luminaire in the field of the development of RNA sensors. During my time at Prof Jaffrey's lab I achieved several experiential and training goals I had planned during the drafting of the project. First, I gained experience with SELEX technology that allows RNA to be selected based on its binding properties to a target molecule. Subsequently, I became an expert on Circular Dichroism and Thermo Isothermal Calorimetry, analytical techniques that allow the study of conformational changes occurring on macromolecules. Finally, I participated in numerous seminars and meetings, creating a network of knowledge that will help me build my career in the future. In the second year of my experience at Prof Jaffrey's lab, I spent a collaborative time with Professor Foster, Hunter College, New York City. Prof Foster is a world expert in Phospholipase D, Phosphatidic Acid and Cancer biology. During the collaboration with Prof. Foster, under the supervision of Prof Jaffrey, I was able to study and develop a GFP-Based sensor for Phosphatidic Acid (GFP-PASS). During the third and final year of my project, which was held in the laboratory of Prof. Alessandra Cambi, I could use the PASS-GFP phosphatidic acid sensor. This sensor was found to be very promising for the dynamics of Membrane Phosphatidic Acid. In fact, this sensor has helped me to obtain valuable data for the completion of my scientific work on the role of PLD1 and PLD2 in controlling podosomes in dendritic cells. Hence, I imaged phosphatidic acid dynamic in live cell imaging and I was able to image accumulation of Phosphatidic acid at membrane level Actomyosin-mediated reorganization of the cells cytoskeleton is the primary mechanism of cell migration and invasion. Podosome are actin structures involved in extracellular matrix adhesion and invasion found in several cell types. For the first time using Total Internal Reflection (TIRF) microscopy, I was able to image the accumulation of Phosphatidic acid islet at the site of podosome formation. Moreover, during the final part of my project, my research goals included broadening my understanding of a wide range of topics in the fields of molecular and chemical biology. Additionally, I expanded my repertoire of technical skills and I became familiar with the most cutting-edge research in microscopy and cell biology field. Finally, I build on my training in grant writing, public speaking, and paper drafting that expected my long-term goal of establishing a successful career as the principle investigator of a research lab. Overall my experience in the outgoing host institution was very prolific in terms of professional experience and acquired scientific data. I also managed to complete the paper I will submit shortly.

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

Цел на проекта

Modulation of leukocyte adhesiveness is critical to leukocyte function during the immune response. In order to extravasate from the blood stream, leukocyte rolling must be followed by integrin-mediated rapid arrest. Intergins play a crucial role on chemokine-induced arrest of leukocytes on blood vessels. Signaling events mediating adhesion are extensively studied. Increasing evidence underlays the essential role of lipid second messenger as important fine regulators of signaling cascade leading to integrin affinity modulation. To date, no technology has ever been developed to monitor intracellular production and localization of specific lipids in the context of leukocyte recruitment. Imaging of small molecules in real time in living cells is usually accomplished with genetically encoded sensors, which are typically fluorescent proteins flanking a ligand-binding domain. However, sensor development is difficult since proteins undergoing conformational changes upon binding a desired target molecule are minimally available. In this scenario, my project aims to produce sensors for fluorescence imaging of small molecules using RNA. These RNA-based sensors comprise a ligand-binding RNA aptamer and Spinach, an aptamer that binds and switches on the fluorescence of a small- molecule fluorophore allowing imaging of the dynamic changes and cell-to-cell variation in the intracellular levels of phosphatidic acid (PA) and phosphatidil-inositol-4,5-biphospate (PIP4,5P2). This tool could be the first of this kind and could be useful to study many aspects of signaling cascade events, not only for leukocyte recruitments. By using lipid Nano-Biosensor I could be able to make FRET and FRAP studies in order to obtain in vivo qualitative and quantitative data allowing topological and dynamic reconstruction of signaling networks. Moreover lipid Nano-Biosensors could be developed as innovative new markers for cell sorting in FACS and in ImageStream Technology.

Оригинален текст от CORDIS (на английски).

Участници

Връзки

Данни: CORDIS, © Европейски съюз