FP7Reintegration grant2008–2011

NEUROTROPHINS-ARMS · Molecular mechanisms underlying BDNF functions in the brain: role of ARMS protein

FP7 — People (Marie Curie Actions)

Duration
2008-01-01 → 2011-12-31
EU contribution
€100,000
Participants
1
Scheme
MC-IRG

Lines connect the coordinator with its partners.

Results in brief

Molecular mechanisms underlying BDNF functions in the brain: role of ARMS protein

Neurodegenerative diseases such as Alzheimer's, Huntington's and Parkinson's disease as well as different neuropsychiatric disorders, mood disorders, depression, bipolar disease, and schizophrenia are becoming prevalent in aging societies from developing countries. Neurotrophins are a family of growth factors that have been directly implicated in these human pathologies as there is now abundant evidence indicating that alterations on function / expression of one neurotrophin, named brain-derived neurotrophic factor (BDNF), have been linked to different human neurodegenerative and psychiatric diseases. Neurotrophins are important for cell survival, differentiation, apoptosis, axonal and dendritic growth, and synaptic plasticity in the nervous system. They bind to two different sets of receptors, Trk and p75 neurotrophin receptors, to mediate their functions. Upon activation, Trk neurotrophin receptors function as docking sites for different adaptor proteins triggering different signalling pathways. Understanding the molecular mechanisms by which neurotrophins exert their functions may help to develop efficient treatments for brain diseases. Recently, an ankyrin repeat-rich membrane spanning protein, (ARMS / Kidins220) has been linked to neurotrophin signalling as ARMS is associated with Trk neurotrophin receptors and is modulated in response to neurotrophins. We have studied the role of ARMS in BDNF-mediated functions. We have observed that ARMS expression is very high during the development (embryonic stages) of the nervous system and declines short after birth. During nervous system development there is a massive dendritic growth and synapse formation in which BDNF participates. Using a mouse model in which ARMS expression was reduced, we have observed that ARMS is important for the proper morphological development of dendritic arbours and spines during an activity- and BDNF-dependent developmental period. In addition, ARMS protein protects two brain cortical areas implicated in neurodegenerative and psychiatric disorders that depend on BDNF. Furthermore, ARMS regulates the trafficking of glutamate channels that are crucial players in the functioning of the synapse. In conclusion, our results suggest that ARMS protein plays a pivotal role on BDNF-dependent functions in the brain that may be relevant on the etiology of different brain diseases. Further studies will be required to address this possibility.

Data: CORDIS, © European Union

Project objective

Neurotrophins are growth factors including NGF, BDNF, NT-3 and NT-4, which function in cell survival, differentiation, apoptosis, axonal and dendritic growth, and plasticity in the nervous system. Additionally, BDNF has been implicated in human brain pathologies, such as depression, Alzheimer, Huntington, Parkinson, etc. Neurotrophins bind to two different sets of receptors, Trk and p75 receptors, to mediate their functions. Trk activation leads to its phosphorylation in tyrosine and the phosphorylated residues work as docking sites for different adaptor molecules, such as Shc, PLC-γ, FRS-2, SH2B and APS. Recently, a new molecule, ARMS/Kidins220, has been described in association with Trk receptors. ARMS is tyrosine phosphorylated in primary hippocampal and cortical neurons in response to neurotrophins, and is involved in the sustained MAPK mediated by neurotrophins. My work hypothesis is that ARMS/Kidins220 may be an important molecule in neurotrophin functions. For this reason, we propose the study of ARMS/Kidins220 in the differentiation, dendritic branching and neuronal synaptic plasticity mediated by BDNF. The study will be carried out using biochemical and cellular techniques together with molecular biology and genetic approaches. The detailed study of ARMS/Kidins220 will provide a better understanding of the neurotrophin functions as well as the molecular mechanisms that regulate neurotrophin actions and its potential role in nervous system pathologies.

Original text from CORDIS.

Participants

  • UNIVERSIDAD DE SALAMANCA · SalamancaCoordinatorSpain

Links

Data: CORDIS, © European Union