FP7Реинтеграция2012–2016

REMITODED · Regulating the Mitochondrial Decision to Die

7РП — „Хора“ (Действия „Мария Кюри“)

Период
2012-12-01 → 2016-11-30
Финансиране от ЕС
100 000 €
Участници
1
Схема
MC-CIG

Линиите свързват координатора с партньорите.

Накратко на български

Митохондриите контролират процеса по самоунищожение на клетката, като при определени нива на стрес могат да увредят ДНК, вместо да убият клетката. Разбирането на този механизъм помага да се разбере как раковите клетки оцеляват и стават устойчиви на терапия.

Този кратък обзор е генериран от изкуствен интелект

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

Резултати накратко

Regulating the Mitochondrial Decision to Die

Mitochondria are tiny organelles present in every cell in our body. They are essential for energy production, generated in the form of a molecule called ATP. However, mitochondria are also often essential to kill a cell, through a form of cell suicide called apoptosis. During apoptosis, mitochondria become leaky, releasing proteins that actively kill cells. Apoptosis is key to keeping humans healthy. In cancer, apoptosis can be inhibited allowing cells to become cancerous and also allowing them to become resistant to conventional chemo- and/or radiotherapy. As such, intense interest surrounds mechanisms regulating mitochondrial permeabilisation in order to target this process in health and disease. This Marie Curie project was aimed at further understanding if differences in the speed and extent of mitochondrial permeabilisation can impact on cell death. During our research we developed a new way to detect mitochondrial permeabilisation making use of fluorescent fusion proteins. In this method, GFP re-localises onto RFP labelled mitochondria when they are permeabilised, this leads to mitochondria turning yellow – we can detect this by microscopy. Using this approach we have found that sub-lethal stresses can engage mitochondrial permeabilisation in a minority of mitochondria, a process we call minority MOMP. Importantly minority MOMP does not lead to cell death but instead triggers DNA-damage. These data argue that apoptosis signalling is not always anti-cancer per se and instead may promote cancer in some circumstances – we are investigating this further. Intense interest surrounds that targeting of proteins, called Bcl-2 proteins, that prevent mitochondrial permeabilisation. Indeed, recently developed drugs called BH3-mimetics target Bcl-2 proteins and in doing so, sensitise to apoptosis. The BH3-mimetic compound called Venetoclax has recently been clinically approved for the treatment of specific type of leukaemia. Unfortunately, the Bcl-2 protein family is relatively diverse such that no-one inhibitor can inhibit them all – this represents a source of resistance. The ability to screen for specific new inhibitors, as well as investigate resistance mechanisms is therefore key. Driven by this, and the desire to develop a clean-system to trigger mitochondrial apoptosis we developed a method we call “mito-priming” 2 . In this we co-express a pair of proteins, one a pro-apoptotic killer BH3- only protein the other an anti-apoptotic Bcl-2 protein. Cells expressing this combination are viable but highly sensitive to the addition of BH3-mimetic compounds. Following treatment, cells rapidly succumb to cell death. The specific combination of killer and protector can be altered. This method serves both as a powerful research tool as well as a means to rapidly screen for new and specific Bcl-2 targeting inhibitors.

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

Цел на проекта

The mitochondrial pathway of apoptosis is the major form of programmed cell death in vertebrates. In this pathway, pro-apoptotic members of the Bcl-2 protein family cause mitochondrial outer membrane permeabilisation (MOMP) leading to the release of mitochondrial intermembrane space proteins that activate caspase proteases and apoptosis. Regulation of MOMP has been intensively investigated because it represents a crucial, and potentially targetable, process that determines cell survival.Upon initiation, MOMP has previously been shown to occur synchronously and quickly in all mitochondria in less than ten minutes. However, using a new approach that mimics cancer cells that are primed to die, I find that the duration of MOMP can take over one hour in some cells (termed here slow MOMP). Importantly, cells that undergo slow MOMP fail to display overt signs of caspase activity and survive in the short-term, strongly indicating that caspase activity and kinetics of MOMP are tightly linked. My first objectives are to understand what controls differential MOMP kinetics and define how these regulate caspase activity and cell survival.Furthermore, I have recently found that some mitochondria can remain intact upon MOMP. This suggests that under normal or stressed conditions a minority of mitochondria can undergo MOMP without triggering apoptosis (termed here accidental MOMP). A second objective will be to investigate the occurrence of accidental MOMP and understand its impact upon caspase activity and cell viability. To meet both objectives I will use a variety of biochemical and cell biological methods including extensive and novel live-cell imaging techniques.This project will provide new insight into how MOMP and cell survival are regulated. It is expected that results and knowledge obtained from this work will contribute towards efforts to therapeutically target MOMP in various diseases such as cancer.

Оригинален текст от CORDIS (на английски).

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Данни: CORDIS, © Европейски съюз