FP7Реинтеграция2011–2015

DISC1 & AXOGENESIS · In vivo analysis of DISC1 function in synaptogenesis and axonal transport

7РП — „Хора“ (Действия „Мария Кюри“)

Период
2011-04-01 → 2015-03-31
Финансиране от ЕС
100 000 €
Участници
1
Схема
MC-IRG

Линиите свързват координатора с партньорите.

Накратко на български

Протеинът DISC1 се изследва чрез зелени рибки, за да се разбере как влияе върху връзките между невроните и транспорта в тях. Това помага за разясняване на молекулярните причини за появата на шизофренията, което е важно за разработването на по-ефективни терапии.

Този кратък обзор е генериран от изкуствен интелект

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

Резултати накратко

In vivo analysis of DISC1 function in synaptogenesis and axonal transport

Schizophrenia is a highly heritable mental disorder that affects up to 1% of the world population. Multiple genes and environmental factors interact to cause the highly complex schizophrenic phenotype. Although a number of effective drug treatments currently exist, a clear mechanism for the drugs’ action has not been established, and the clinical outcomes remain variable. Eventually, a detailed understanding of the disease etiology at the cellular and molecular level will be required to develop a broader and more effective set of therapies. To this end, the most effective approach is perhaps the study of the physiological function of the proteins encoded by the genes identified to be associated with the disorder. Disrupted in Schizophrenia 1 (DISC1) is perhaps one of the best candidate susceptibility genes for schizophrenia. DISC1 was initially identified at the breaking point of a balanced t(1;11) chromosomal translocation that co-segregates with a broad diagnosis of psychiatric illness in a large Scottish family. Its linkage with schizophrenia has been successively confirmed by numerous studies. Given the great significance of DISC1 as a candidate gene for schizophrenia susceptibility, a great number of studies have focused on trying to elucidate its biological role in brain development and neuronal function. We have investigated the role of DISC-1 in vivo using the zebrafish retinotectal system as a model. In particular we focused on DISC1 function in anterograde and retrograde transport, synaptogenesis, axonal branches dynamics and synaptic function. The use of zebrafish to understand the molecular etiology of schizophrenic disorder should be seen as tool to dissect the molecular basis of this pathology, rather than a model of the disease in its entirety. Obviously zebrafish lack the complex behavioral repertoire present in humans and cannot be used to model this aspect of the disorder. Nevertheless, some of its unique features as a model organism make zebrafish an exciting system to analyze many biological processes at a molecular and cellular level in a whole living vertebrate. We have developed nove genetic approaches to disrupt in a temporal and spatial controlled manner the function of DISC1 in single neurons in the retinotectal neural circuit. Using in vivo imaging tools generated for this project we where able to analyze the role of DISC1 in axonal transport, synapses formation and function in vivo.

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

Цел на проекта

Schizophrenia is a highly hereditable psychological disease that affects up to 1% of the world population. This pathology causes devastating neurological symptoms. A great advance in understanding the basic biological processes affected in schizophrenia came from the discovery of some of the genes that when mutated represent a risk factor for the development of the disease, most likely acting in combination among each other and with environmental factors. One of the best established of these susceptibility genes is a called Disrupted-in-schizophrenia-1 (DISC1). DISC1 has been implicated in many fundamental process and it likely to perform many tasks during the normal development and function of neurons. I am proposing to investigate the involvement of DISC1 in the transport of cargoes along the neuronal axon. This phenomenon is of crucial importance for normal brain function since it allows the trafficking of proteins and organelles between the cell body of the neurons and the synapses at the periphery, and vice versa. There are indications that DISC1 may be regulating this bidirectional transport by interacting with microtubule associated motors and that this process may be altered in schizophrenic patients. Using zebrafish I will be able to observe this phenomenon in vivo, with a detail resolution that is not possible in humans or other mammals. Using a combination of experimental tools including, zebrafish mutants for the DISC1 locus, dominant negative approaches and shRNA knock down, I will assay the function of DISC1 in single neurons separating its later role in neuronal function from early ones. The brain of zebrafish larvae is in fact transparent and small enough to allow the direct observations of fluorescent proteins in single axons. Furthermore, these dynamic processes are highly conserved between fish and humans and what we learn from the fish model will tell us more about DISC1 function in humans as well.

Оригинален текст от CORDIS (на английски).

Участници

Връзки

Данни: CORDIS, © Европейски съюз