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Etude du mecanisme de regulation de la senescence et de p53 par la proteine SOCS1

Posted on:2013-09-14Degree:Ph.DType:Thesis
University:Universite de Montreal (Canada)Candidate:Calabrese, VivianeFull Text:PDF
GTID:2454390008963468Subject:Chemistry
Abstract/Summary:PDF Full Text Request
In response to different stress, three anti-proliferative mechanisms, namely apoptosis, also called programmed cell death, transient growth arrest and senescence, prevent the cells from cumulating mutations that can lead to uncontrolled proliferation and, eventually, to tumor development. Regulation of these mechanisms requires the activation of proteins called tumor suppressors. One of them, p53, is a transcription factor whose stabilization and activation lead to an increase in expression of genes directly implicated in cell cycle arrest. In the past years, studies about p53 showed how much its function is complex and with how many signaling pathways and proteins it cooperates to maintain genome integrity. Thus, studying the activation mechanisms of p53 is essential to understand its regulation and, thereby, to prevent tumor development and to elaborate new strategies for cancer treatment.;The first aim of this thesis is to show a new activation mechanism of p53 and of senescence by the protein SOCS1, a suppressor of cytokine signaling. This mechanism implies a direct interaction between the two proteins, specifically between the SH2 domain of SOCS1 and the N-terminal transactivation domain of p53. SOCS1 also interacts with the DNA damage-regulated kinases ATM and ATR via its C-terminal domain, which contains a SOCS Box, to facilitate the phosphorylation of p53 on its serine 15. Thus, by interacting at the same time with p53 and ATM, SOCS1 contributes to stabilization and activation of p53. In accordance with this model, SOCS1 inhibition in human normal fibroblasts decreases the number of senescent cells in which the activated oncogene STAT5A is expressed and reduces p53 nuclear accumulation in these cells. In the same way, T cells from Socs1-/-Ifngamma -/- mice are less likely to undergo apoptosis than T cells from Socs1+/+Ifn gamma+/+ mice, after exposure to gamma radiation. In both contexts, the expression of p53 target genes is decreased, which indicates that SOCS1 is implicated in p53 activation in vivo.;This thesis also aims to show the role of SOCS1 in the activation of other transcription factors and, thereby, to show that it can act as a more general regulator of transcription. A detailed study of the interaction between SOCS1 and p53 showed that the transactivation domain II of p53 (amino acids 36-67) is sufficient for the interaction. Specifically, it seems that tryptophan 53 (W53) and phenylalanine 54 (F54) are essential for the interaction. A structural analysis of this p53 region highlights an acid transactivation domain actually conserved in many others transcription factors, such as p63, p73 and E2F1. In accordance with this observation, SOCS1 is able to interact with both proteins. Thus, the capacity of SOCS1 to interact with p53 and to regulate its activity may extend to other transcription factors.;The mechanism showed in this thesis contributes to the understanding of p53 regulation and highlights a new function for the SOCS1 protein. Indeed, until now, SOCS1 was mostly known to be a negative regulator of the JAK/STAT pathway. Moreover, this new role for SOCS1 explains how an aberrant cytokine signaling can trigger senescence or apoptosis. Finally, the fact that SOCS1 can regulate different transcription factors allows us to consider it as a general regulator of transcription factors containing an acid transactivation domain.;Keywords : p53, SOCS1, cellular senescence, cancer, ATM, ATR, DNA damage response, JAK/STAT pathway, STAT5A, protein-protein interaction...
Keywords/Search Tags:SOCS1, P53, Senescence, Transactivation domain, Regulation, ATM, Transcription factors, Interaction
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