HEИндивидуална стипендия2022–2024

DiBDEV · Differentiation and characterisation of brain-derived extracellular vesicles from the peripheral blood for understanding the neuropathophysiological mechanisms of migraine.

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

Период
2022-06-13 → 2024-06-12
Финансиране от ЕС
148 478 €
Участници
1
Схема
HORIZON-TMA-MSCA-PF-EF

Линиите свързват координатора с партньорите.

Накратко на български

Вънтоклетъчните везикули от мозъка, които пренасят молекулни съобщения в кръвта, се анализират, за да се разберат механизмите при мигрена. Това е важно, защото позволява проследяване на процесите в мозъка чрез обикновен кръвен тест, вместо чрез животни или изображения.

Този кратък обзор е генериран от изкуствен интелект

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

Резултати накратко

Differentiation and characterisation of brain-derived extracellular vesicles from the peripheral blood for understanding the neuropathophysiological mechanisms of migraine.

Migraine is a neurological condition with symptoms such as severe headache which lasts up to 72 hours. 15-25% of adults aged 18-65 experience migraines and accordingly migraine ranks sixth in the diseases that cause the most years lived with disability globally. The mechanisms triggering migraine in a healthy brain are poorly understood but it is thought that the extracellular vesicles released by cells in the brain might help us to understand the molecular events that occur during migraine attacks. Extracellular vesicles are very small parcels of molecules (including protein and RNA) enclosed in a membrane that are released by cells into their environment. These extracellular vesicles act like a cellular postal service, carrying molecular messages from the original cell through the body’s fluids, then delivering the messages to their target cell. Therefore, if we could intercept and capture these molecular messages in the extracellular vesicles, we could read what the cells are saying to each other and learn why they are behaving in a particular way (e.g., to cause migraine). It is thought that some of the extracellular vesicles from brain cells enter the bloodstream, creating an opportunity in that if we could capture these brain-derived extracellular vesicles from the blood outside the brain (e.g. taken in a standard clinical blood test), we could find out what the cells in the brain are saying to each other and what is happening at the molecular level. This is important because current methods to study the brain during migraine rely on animal models (which may not translate to humans) or imaging techniques, which do not have the resolution to tell us what is happening with molecules in the brain. One principal challenge of capturing brain-derived extracellular vesicles in the blood is that they are very rare – most extracellular vesicles in the blood actually come from other cells in the body which are also sending out messages. What’s more, all these extracellular vesicles look very similar, so it is difficult to tell which come from the brain or elsewhere. With this crowded environment in the blood, it is still possible to pick out brain-derived extracellular vesicles by targeting specific molecules on the vesicle surface which belong to brain cells but are not found in other parts of the body. However, the body is very complex and there are very few molecules unique to the brain, with most also being found in other areas. Therefore, by using multiple molecules to identify brain-derived extracellular vesicles, we can be more confident that they have come from the brain and not elsewhere, and thus that the brain is the origin of the messages they extracellular vesicles carry. The main aim of this project is to capture extracellular vesicles (EVs) originating from individual brain cell types (neurons, astrocytes and microglia) from the peripheral blood so that brain-derived EVs (BDEVs) of migraine patients can be analysed. From this, we could gain a better understanding of the cellular and molecular processes during migraine attacks, with possible treatment derivations, as well as if there is a role played by extracellular vesicles in migraine pathology.

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

Цел на проекта

Migraine is a major disease burden on society but remains poorly understood. The onset of migraine with aura has been linked to cortical spreading depolarisation (CSD) and Professor Turgay Dalkara (the supervisor) found that inducing CSD in animal models led neurons to release inflammatory proteins in extracellular vesicles (EVs). Because brain-derived (BD)EVs cross the blood-brain barrier and their composition reflects their cellular and temporal origin, they represent biomarkers that, if isolated from the peripheral blood of migraine patients, could give an unparalleled insight into cell-specific neuroinflammation in migraine. However, current methods to isolate cell type-specific BDEVs from the blood insufficiently distinguish them from EVs of other tissues, obscuring crucial insights into cell-specific processes. Here, I (Adam Bennett, the researcher) will develop a workflow to isolate cell type-specific BDEVs from the blood of migraine patients then temporally characterise them to gain a cell-type specific molecular signature during migraine with aura. This will firstly involve the optimisation and validation of isolating neuron, astrocyte and microglia EVs (using a panel of specific markers) from the brains and peripheral blood of rats. Secondly, cell type-specific EVs isolated at different time points post-CSD evocation in rats will be characterised using proteomics to generate temporal cell type-specific data on the pathological processes post-CSD. Thirdly, with optimised time points, cell type-specific EVs will be isolated from the blood of patients after migraine with aura onset and characterised. In doing so, I will (1) identify previously unknown biomarkers to deepen our understanding of migraine with aura, with possible treatment derivations; (2) create a tool for researchers to investigate other neurological conditions through analysing cell type-specific BDEVs; (3) develop my skillset, publication record, visibility and networks to advance my career.

Оригинален текст от CORDIS (на английски).

Участници

  • HACETTEPE UNIVERSITESI · Cankaya AnkaraКоординаторТурция

Връзки

Данни: CORDIS, © Европейски съюз