TSPO & BRAIN · Role of the mitochondrial Translocator Protein (mTSPO) in Brain Cellular Physiology: a Neglected Pathway in Signalling and Self-conservation Mechanisms
7РП — „Хора“ (Действия „Мария Кюри“)
- Период
- 2012-12-01 → 2017-07-02
- Финансиране от ЕС
- 100 000 €
- Участници
- 2
- Схема
- MC-CIG
Линиите свързват координатора с партньорите.
Накратко на български
Протеинът TSPO в невроните и глиалните клетки пречи на почистването на увредените митохондрии, което води до клетъчно увреждане. Разбирането на този механизъм помага да се разбере как се развиват патологии в стареющий мозък при стрес.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Role of the mitochondrial Translocator Protein (mTSPO) in Brain Cellular Physiology: a Neglected Pathway in Signalling and Self-conservation Mechanisms
The outcome of the years of work possible via this grant is that the 18kDa protein TSPO acts as efficient limiting factor of the mitochondrial quality control process in specialised cell models such as neurons and glia. It operates by inhibiting the PARK2-mediated ubiquitination of mitochondria meant to be disposed via targeted autophagy (or mitophagy). Along with this core mechanistic finding we also found that TSPO is overexpressed in stressed neuronal cells (e.g. following glutamate treatment) leading to deregulation of mitochondrial Ca2+ handling and increased redox-stress which induces subtle, detrimental citotoxicity. The TSPO mediated impairment of mitochondrial Ca2+ signaling and consequently homeostasis of the Reactive Oxygen Species (ROS) is the means –according to our findings- via which the efficiency of mitochondrial poly-ubiquitination is limited thus blocking mitochondrial quality control and therefore underlying cellular pathology. These data have therefore the merit to describe TSPO as a novel element in the regulation of mitochondrial response to neurotoxicity and suggest this to be mediated by a selective limitation of the targeted autophagy and consequent impaired cell signalling. This outcome aligns though the clinical evidences on increased TSPO expression in aged brain indicating that toxicity caused by impaired homeostasis of neurotransmitters can be both primed and detected via TSPO. The work develops in this way a fundamental understanding of cellular processes linked to TSPO, which will underpin the development of future studies and targeted interventions in human conditions. It warrented successfully testing of the hypotheses paved in the program of work by achieving the following scientific goals: I. In neuronal cells, the onset and progression of mitochondrial autophagy is regulated by TSPO level of expression. II. Both mitochondrial coupling efficiency and structural remodeling are affected by the molecular and pharmacological modulation of TSPO. III. TSPO didactics mitochondrial and hence cellular commitment to demise by indirectly modifying VDAC function IV. TSPO stands as molecular regulator of the mitochondrial mechanisms to neurotoxocity. Namely we succeeded to: a. Manipulate the endogenous expression of TSPO by recombinant overexpression (+TSPO) and transient deletion (-TSPO) in U-87MG and SY-SH5Y. b. Evaluate the level of basal and triggered autophagy c. Assess mitochondrialCa2+ signaling d. Measure the rate of cytosolic ROS generation e. Test the TSPO role in regulating the neuroglial cells’ susceptibility to glutamate-induced toxicity. f,g. Furthermore, we could also generate a U-87MG line stably downregulated for TSPO and testing the direct contribution in Apoptotic cell death. h, i. Finally proved the relation between TSPO and neurotoxicity. Our findings will have a tangible benefit for european science since the advanced understanding of framed molecular cell biology of the mitochondrial quality control pivotal for an improved clinical understanding of TSPO in health and disease states of the brain. An impact beyond the most immediate academic beneficiaries could therefore be foreseen.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
Balanced energy homeostasis and correct functioning of regulatory processes are the basis of cellular health. The impaired interplay between these is thus responsible for the pathology of tissues especially for those undergoing stress and unable to regenerate such as the Brain. An exhaustive comprehension of the physiology of molecules intimately involved in these phenomena is therefore essential both to increase our understanding of Brain fundamental physiology and to delineate novel approaches to tackle pathologies at their origin. The mitochondrial Translocator Protein (mTSPO) is one of these molecules as critically located on the outer membrane of the mitochondrion and in close association with the multi-functional protein Voltage Dependent Anion Channel (VDAC). mTSPO is increases during brain inflammation but, in spite of this, its cell biology and the underlying events associated to changes in its expression are still obscure.The research program I propose here aims to elucidate this pathway for mitochondrial and cellular physiology and so finalize an understating on a neglected molecule upon which the homeostasis of the cell dependents.We will address the mTSPO role in mitochondrial and cell metabolism and to the processes guarding cell integrity such as Apoptosis and Autophagy; we will do so by ascertaining how mTSPO ratio of expression with that of VDAC defines the signalling of Ca2+, dynamics of the Reactive Oxygen Species (ROS), ATP rationing and Redox State. How modifications in ROS impinge on downstream kinases will be also determined. Pharmacological tools to modulate mTSPO activity will be employed as a further means of investigation and finally the relation between mTSPO/VDAC ratio of expression and pathological behaviour of tissues will be scrutinized.These results will shed light on an important molecular player and form a conceptual and experimental framework for future investigations in the Physio-Pathology of the Brain.
Оригинален текст от CORDIS (на английски).
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Данни: CORDIS, © Европейски съюз
