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  • About
  • The Global ETD Search service is a free service for researchers to find electronic theses and dissertations. This service is provided by the Networked Digital Library of Theses and Dissertations.
    Our metadata is collected from universities around the world. If you manage a university/consortium/country archive and want to be added, details can be found on the NDLTD website.
41

Estudos de aspectos estruturais importantes na montagem de filamentos de septinas humanas / Investigation of Aspects Important in the Structural Assembly of Human Septin Filaments

Sabrina Matos de Oliveira da Silva 12 August 2016 (has links)
Septinas compreendem uma conservada família de proteínas de ligação a nucleotídeo de guanina, capazes de formar filamentos. No entanto, apesar de sua importância em vários eventos celulares, ainda há pouca informação disponível no que diz respeita aos detalhes de suas funções moleculares e o mecanismo que conduz a formação de hetero-oligômeros. O objetivo desta tese foi a clonagem, co-expressão e cristalização de septinas e seus complexos (SEPT9-SEPT11-SEPT7; SEPT2-SEPT6-SEPT7-SEPT9; SEPT4-SEPT6-SEPT7 e SEPT4- SEPT8-SEPT7) seguidas por análise estrutural comparativa. Os cDNAs que codificam para as proteínas SEPT9, SEPT6, SEPT2, SEPT11, SEPT8, SEPT4, SEPT9GCα0 (resíduos 262-568) e SEPT9GC (resíduos 279-568) foram clonadas com sucesso em vetores de transferências ou de expressão. O complexo que foi melhor caracterizado, foi o composto por SEPT2-SEPT6-SEPT7-SEPT9GCα0, o qual foi confirmado por LC-MS/MS após digestão tríptica, revelando a produção in vitro de um complexo de septina tetramérico. Além disso, caracterizou-se o hetero dímero formado por SEPT7NGc-SEPT9GC. No entanto, as proteínas que foram mais plenamente investigadas foram as construções SEPT9GCα0 e SEPT9GC que foram estudados individualmente para caracterizações biofísicos e estruturais. SEPT9GCα0 apresentou-se bastante instável, porém, SEPT9GC foi eficientemente produzida e caracterizada. O estado oligomérico da proteína (monômero) foi confirmado por cromatografia de exclusão molecular. A proteína foi produzida na forma apo, e foi incapaz de hidrolisar GTP. A finidade de SEPT9GC pelos nucleotídeos GDP e GTPγS, foi avaliada por Calorimetria de Titulação Isotérmica -ITC, revelando que SEPT9GC possui uma maior afinidade por GTPγS, com Kd de 25,9 µM, o qual é dependente do íon Mg2+. Foram realizados estudos de cristalização dessa proteína, que resultou em cristais de alta resolução, com a proteína complexada a GDP e GTPγS. Interessantemente, a estrutura do complexo de SEPT9GC com o nucleotídeo GTPγS foi obtido por soaking de um cristal previamente obtido complexado com GDP. Este é o primeiro relatório da aplicação deste método para septinas. Finalmente, obtivemos três conjuntos de dados cristalográficos, dois para SEPT9GC-GDP, com resolução de 2.8 Å e 2.1Å e um conjunto de dados de SEPT9GC-GTPγS obtido a 2.8 Å. Dentre as principais características observadas na estrutura de SEPT9GC, tem-se a interface NC responsável pela polimerização dos filamentos, a qual se mostrou diferente dependendo do tipo de nucleotídeo ligado, com encurtamento do filamento na presença de GTPγS. Isso indica a comunicação entre as interfaces consecutivas G e NC ao longo do filamento. A mudança conformacional na interface envolve o rearranjo dos resíduos que são altamente conservados em todas as septinas, bem como alguns que são específicos do grupo de SEPT9 e podem ter implicações para a montagem de filamentos e de associação da membrana. / Septins belong to a highly conserved family of guanine nucleotide binding proteins, capable of forming filaments. Despite their importance for several critical cellular events including cell division, little information is available about their molecular functions and the mechanism which leads to the formation of hetero-oligomers. The aim of this thesis was the cloning, co-expression and crystallization of septins and their complexes (SEPT9-SEPT11-SEPT7; SEPT2-SEPT6-SEPT7-SEPT9; SEPT4-SEPT6-SEPT7 and SEPT4-SEPT8-SEPT7), followed by comparative structural analysis. The cDNAs coding for the proteins SEPT9, SEPT6, SEPT2, SEPT11, SEPT8, SEPT4, SEPT9GCα0 (residues 262-568) and SEPT9GC (residues 279-568) were successfully cloned into transferable or expression vectors. The best characterized complex was that composed of SEPT2-SEPT6-SEPT7-SEPT9GCα0, which was confirmed by LC-MS/MS analysis after triptic digestion, unveiling the in vitro production of a tetrameric septin complex. Additionally, we characterized the hetero-dimer formed by SEPT7NGc-SEPT9GC. However, the most fully investigated proteins were the constructs SEPT9GCα0 and SEPT9GC which were studied individually for biophysical and structural characterizations. SEPT9GCα0 was highly unstable contrasting with SEPT9GC that was efficiently produced and characterized. The presence of the oligomeric state of SEPT9GC (monomer) was confirmed by molecular exclusion chromatography. The protein was produced in the apo form and was capable of hydrolyzing GTP. The affinity of SEPT9GC for GDP and GTPγS nucleotides was evaluated by Isothermal Titration Calorimetry (ITC) revealing that SEPT9GC has a higher affinity for GTPγS, with a Kd of 25.9 µM, which is dependent on the presence of Mg2+. Crystallization studies of this protein were performed, obtaining high quality crystals of protein complexes with GDP and GTPγS. Interestingly, the structure of the complex of SEPT9GC with the nucleotide GTPγS was obtained by soaking a previously grown crystal of the GDP complex. This is the first report of the application of this method for septins. Finally, we have obtained three sets of crystallographic data, two for SEPT9GC-GDP, at resolutions of 2.8 Å and 2.1 Å, and one set of data for SEPT9GC-GTPγS at 2.8 Å. Among the main characteristics observed in the SEPT9GC structure is the NC interface responsible for filament polymerization, which is shown to vary according to the type of bound nucleotide, with foreshortening of the filament in the presence of GTPγS. This indicates communication between consecutive G and NC interfaces along the filament. The conformational change at the interface involves the rearrangement of residues which are highly conserved in all septins as well as several which are SEPT9 group specific and may have implications for filament assembly and membrane association.
42

Spindle Assembly Checkpoint Stability Depends on Integrity of the Nucleolus and Septins in <i>Saccharomyces cerevisiae</i>

Rai, Urvashi 05 June 2017 (has links)
No description available.
43

Phenotypic Characterization and Gene Expression Analyses of a Penicillium marneffei Septin Mutant

Kennedy, Daniel Edward, II 28 June 2012 (has links)
No description available.
44

Especificidade na montagem de filamentos de Septinas: o caso da interface G entre SEPT5 e SEPT8 / Specificity in the assembly of Septins filaments: the case of the G interface between SEPT5 and SEPT8

Diego Antonio Leonardo Cabrejos 27 June 2016 (has links)
Septinas abrangem uma família conservada de proteínas que ligam e hidrolisam GTP e formam heterofilamentos, anéis e redes para realizar as suas funções. Apresentam três domínios estruturais: o domínio N-terminal contendo uma sequência polibásica (para ligar membranas), o domínio de ligação ao nucleotídeo (G) e o domínio C-terminal que inclui uma sequência predita de formar um coiled-coil. Em humanos, as 13 septinas são classificadas em quatro grupos (I, II, III e IV) baseadas nas sequências de aminoácidos. O único filamento caracterizado estruturalmente, até hoje, é o formado por SEPT2-SEPT6-SEPT7, mostrando que as subunidades interagem através de duas interfaces (chamadas G e NC). Os determinantes estruturais da montagem correta do filamento são pouco conhecidos, sendo o estudo limitado pela complexidade em purificar e cristalizar complexos triméricos ou tetraméricos. Uma abordagem alternativa é estudar interfaces individuais de um filamento (G e/ou NC) por separado. Assim, o presente projeto objetivou estudar, utilizando uma abordagem biofísica e estrutural, a interface G formada por SEPT5 e SEPT8 para elucidar os fatores importantes em determinar a sua especificidade. Os domínios GTPase de SEPT5 e SEPT8 foram clonadas em vetor de expressão bicistrônico pET-Duet, co-expressas e co-purificadas. Estudos de análise do estado oligomérico e homogeneidade foram conduzidos utilizando cromatografia de exclusão molecular, espalhamento dinâmico de luz e ultracentrifugação analítica, revelando um complexo dimérico e monodisperso. O complexo apresenta uma mistura aproximadamente equimolar de nucleotídeos (GTP e GDP) ligados enquanto SEPT8(G) sozinha é incapaz de ligar qualquer um dos dois. Além disto o complexo apresenta uma termoestabilidade maior que SEPT8(G), verificado por um aumento em Tm de 5&deg;C. Com o intuito de observar os determinantes estruturais da especificidade, ensaios de cristalização foram conduzidos e assim, cristais do complexo SEPT5-SEPT8(G) que difrataram apenas a muito baixa resolução foram obtidos. Na ausência de uma estrutura cristalográfica, modelagem por homologia foi realizada para analisar as interfaces G entre diferentes combinações de septinas. Identificamos uma interação entre aminoácidos característicos (aminoácidos únicos para cada grupo de septinas) para o complexo formado entre membros do grupo III, (incluindo SEPT5) e membros do grupo II, (incluindo SEPT8). Esta interação entre Phe131 (grupo III) e Thr19 (grupo II) pode explicar a especificidade na formação de uma interface G entre septinas destes grupos durante a formação do filamento e além disso, a importância da presença do GTP ligado ao septina do grupo II. Com isto, propomos pela primeira vez uma explicação plausível da relevância da perda de atividade catalítica das septinas deste grupo, um fato inexplicado até o momento. Mutação dos resíduos identificados levou a uma mudança no seu perfil de eluição do complexo durante purificação por exclusão molecular indicando alterações na formação do complexo mutante. / Septins are a conserved family of proteins that bind and hydrolyze GTP and form heterofilaments, rings and networks in order to carry out their functions. They have three structural domains: an N-terminal domain containing a polybasic sequence (for membrane binding), a nucleotide-binding (G) domain and a C-terminal domain including a sequence predicted to form a coiled-coil. In humans, 13 septins have been classified into four groups (I, II, III and IV) based on their amino acid sequences. The only structurally characterized filament described to date is formed by SEPT2-SEPT6-SEPT7, which reveals that the subunits interact through two different interfaces (G and NC). The structural determinants of correct filament assembly are poorly known, and this is limited by the complexity of purifying and crystallizing trimeric or tetrameric complexes. An alternative approach is to study a single filament interface (G or NC) on its own. Here, we aimed to study, using biophysical and structural approaches, the G interface formed between SEPT5 and SEPT8 to elucidate the factors relevant to determining its specificity. The GTPase domain of SEPT5 and SEPT8, were cloned into the bicistronic expression vector pET-Duet, co-expressed and co-purified. Studies to determine the oligomeric state and homogeneity of the complex were conducted using size exclusion chromatography, dynamic light scattering and analytical ultracentrifugation, revealing a monodisperse dimer for SEPT5-SEPT8(G). The complex elutes with an approximately equimolar mixture of bound nucleotides (GTP and GDP) whereas SEPT8(G) alone is shown to be unable to bind either. Furthermore, the complex has a greater thermostability than SEPT8(G), demonstrated by an increase of 5&deg;C in Tm. In order to determine the structural determinants of specificity, crystallization trials were conducted and crystals of the SEPT5-SEPT8(G) complex were obtained, but these diffracted to only very low resolution. In the absence of a crystal structure, homology modeling was performed to analyze the potential G interfaces between different septin combinations. An interaction between characteristic amino acids (those which are unique to given septin group) was identified for the complex formed between group III septins (including SEPT5) and group II septins (including SEPT8). This interaction, between Phe131 (group II) and Thr19 (group III) may explain the specificity in the formation of a G interface between septins of these groups during filament formation and furthermore the importance of GTP bound to the group II septin. These observations allow us to propose for the first time a plausible explanation for relevance of the loss of catalytic activity by this septin group, an unexplained fact up until now. Mutation of the identified residues resulted in a change in the elution profile of the complex from the size exclusion column suggesting structural alterations in the mutants.
45

Especificidade na montagem de filamentos de Septinas: o caso da interface G entre SEPT5 e SEPT8 / Specificity in the assembly of Septins filaments: the case of the G interface between SEPT5 and SEPT8

Cabrejos, Diego Antonio Leonardo 27 June 2016 (has links)
Septinas abrangem uma família conservada de proteínas que ligam e hidrolisam GTP e formam heterofilamentos, anéis e redes para realizar as suas funções. Apresentam três domínios estruturais: o domínio N-terminal contendo uma sequência polibásica (para ligar membranas), o domínio de ligação ao nucleotídeo (G) e o domínio C-terminal que inclui uma sequência predita de formar um coiled-coil. Em humanos, as 13 septinas são classificadas em quatro grupos (I, II, III e IV) baseadas nas sequências de aminoácidos. O único filamento caracterizado estruturalmente, até hoje, é o formado por SEPT2-SEPT6-SEPT7, mostrando que as subunidades interagem através de duas interfaces (chamadas G e NC). Os determinantes estruturais da montagem correta do filamento são pouco conhecidos, sendo o estudo limitado pela complexidade em purificar e cristalizar complexos triméricos ou tetraméricos. Uma abordagem alternativa é estudar interfaces individuais de um filamento (G e/ou NC) por separado. Assim, o presente projeto objetivou estudar, utilizando uma abordagem biofísica e estrutural, a interface G formada por SEPT5 e SEPT8 para elucidar os fatores importantes em determinar a sua especificidade. Os domínios GTPase de SEPT5 e SEPT8 foram clonadas em vetor de expressão bicistrônico pET-Duet, co-expressas e co-purificadas. Estudos de análise do estado oligomérico e homogeneidade foram conduzidos utilizando cromatografia de exclusão molecular, espalhamento dinâmico de luz e ultracentrifugação analítica, revelando um complexo dimérico e monodisperso. O complexo apresenta uma mistura aproximadamente equimolar de nucleotídeos (GTP e GDP) ligados enquanto SEPT8(G) sozinha é incapaz de ligar qualquer um dos dois. Além disto o complexo apresenta uma termoestabilidade maior que SEPT8(G), verificado por um aumento em Tm de 5&deg;C. Com o intuito de observar os determinantes estruturais da especificidade, ensaios de cristalização foram conduzidos e assim, cristais do complexo SEPT5-SEPT8(G) que difrataram apenas a muito baixa resolução foram obtidos. Na ausência de uma estrutura cristalográfica, modelagem por homologia foi realizada para analisar as interfaces G entre diferentes combinações de septinas. Identificamos uma interação entre aminoácidos característicos (aminoácidos únicos para cada grupo de septinas) para o complexo formado entre membros do grupo III, (incluindo SEPT5) e membros do grupo II, (incluindo SEPT8). Esta interação entre Phe131 (grupo III) e Thr19 (grupo II) pode explicar a especificidade na formação de uma interface G entre septinas destes grupos durante a formação do filamento e além disso, a importância da presença do GTP ligado ao septina do grupo II. Com isto, propomos pela primeira vez uma explicação plausível da relevância da perda de atividade catalítica das septinas deste grupo, um fato inexplicado até o momento. Mutação dos resíduos identificados levou a uma mudança no seu perfil de eluição do complexo durante purificação por exclusão molecular indicando alterações na formação do complexo mutante. / Septins are a conserved family of proteins that bind and hydrolyze GTP and form heterofilaments, rings and networks in order to carry out their functions. They have three structural domains: an N-terminal domain containing a polybasic sequence (for membrane binding), a nucleotide-binding (G) domain and a C-terminal domain including a sequence predicted to form a coiled-coil. In humans, 13 septins have been classified into four groups (I, II, III and IV) based on their amino acid sequences. The only structurally characterized filament described to date is formed by SEPT2-SEPT6-SEPT7, which reveals that the subunits interact through two different interfaces (G and NC). The structural determinants of correct filament assembly are poorly known, and this is limited by the complexity of purifying and crystallizing trimeric or tetrameric complexes. An alternative approach is to study a single filament interface (G or NC) on its own. Here, we aimed to study, using biophysical and structural approaches, the G interface formed between SEPT5 and SEPT8 to elucidate the factors relevant to determining its specificity. The GTPase domain of SEPT5 and SEPT8, were cloned into the bicistronic expression vector pET-Duet, co-expressed and co-purified. Studies to determine the oligomeric state and homogeneity of the complex were conducted using size exclusion chromatography, dynamic light scattering and analytical ultracentrifugation, revealing a monodisperse dimer for SEPT5-SEPT8(G). The complex elutes with an approximately equimolar mixture of bound nucleotides (GTP and GDP) whereas SEPT8(G) alone is shown to be unable to bind either. Furthermore, the complex has a greater thermostability than SEPT8(G), demonstrated by an increase of 5&deg;C in Tm. In order to determine the structural determinants of specificity, crystallization trials were conducted and crystals of the SEPT5-SEPT8(G) complex were obtained, but these diffracted to only very low resolution. In the absence of a crystal structure, homology modeling was performed to analyze the potential G interfaces between different septin combinations. An interaction between characteristic amino acids (those which are unique to given septin group) was identified for the complex formed between group III septins (including SEPT5) and group II septins (including SEPT8). This interaction, between Phe131 (group II) and Thr19 (group III) may explain the specificity in the formation of a G interface between septins of these groups during filament formation and furthermore the importance of GTP bound to the group II septin. These observations allow us to propose for the first time a plausible explanation for relevance of the loss of catalytic activity by this septin group, an unexplained fact up until now. Mutation of the identified residues resulted in a change in the elution profile of the complex from the size exclusion column suggesting structural alterations in the mutants.
46

Lyz2-Cre-Mediated Genetic Deletion of Septin7 Reveals a Role of Septins in Macrophage Cytokinesis and Kras-Driven Tumorigenesis

Menon, Manoj B., Yakovleva, Tatiana, Ronkina, Natalia, Suwandi, Abdulhadi, Odak, Ivan, Dhamija, Sonam, Sandrock, Inga, Hansmann, Florian, Baumgärtner, Wolfgang, Förster, Reinhold, Kotlyarov, Alexej, Gaestel, Matthias 03 April 2023 (has links)
By crossing septin7-floxed mice with Lyz2-Cre mice carrying the Cre recombinase inserted in the Lysozyme-M (Lyz2) gene locus we aimed the specific deletion of septin7 in myeloid cells, such as monocytes, macrophages and granulocytes. Septin7flox/flox:Lyz2-Cre mice show no alterations in the myeloid compartment. Septin7-deleted macrophages (BMDMs) were isolated and analyzed. The lack of Septin7 expression was confirmed and a constitutive double-nucleation was detected in Septin7-deficient BMDMs indicating a defect in macrophage cytokinesis. However, phagocytic function of macrophages as judged by uptake of labelled E. coli particles and LPS-stimulated macrophage activation as judged by induction of TNF mRNA expression and TNF secretion were not compromised. In addition to myeloid cells, Lyz2-Cre is also active in type II pneumocytes (AT2 cells). We monitored lung adenocarcinoma formation in these mice by crossing them with the conditional knock-in Kras-LSL-G12D allele. Interestingly, we found that control mice without septin7 depletion die after 3–5 weeks, while the Septin7-deficient animals survived 11 weeks or even longer. Control mice sacrificed in the age of 4 weeks display a bronchiolo-alveolar hyperplasia with multiple adenomas, whereas the Septin7-deficient animals of the same age are normal or show only a weak multifocal brochiolo-alveolar hyperplasia. Our findings indicate an essential role of Septin7 in macrophage cytokinesis but not in macrophage function. Furthermore, septin7 seems absolutely essential for oncogenic Kras-driven lung tumorigenesis making it a potential target for anti-tumor interventions.
47

Studium vlivu analogů vitamínu E na maligní mezoteliom / The study of the influence of vitamin E analogues on malignant mesothelioma

Kovářová, Jaromíra January 2013 (has links)
Cancer is a leading cause of death in the western world and is increasing in frequency world-wide. Although diagnosis, treatment and therapeutic approaches to cancer have improved, many types of cancer are still lethal due to the lack of radical treatment. One of the fatal neoplastic disease types with poor prognosis is represented by malignant mesothelioma (MM). MM is characterised by very high mortality rate and limited therapeutic options. The etiology of the disease is mainly associated with exposure to asbestos fibres. The incidence of MM is increasing in many countries. The search for novel molecular targets, anti-cancer strategies and drugs, which would considerably improve the treatment is of great importance. Certain new drugs, especially those with specific molecular targets, show high selectivity in their action to cancer cells, and have considerably increased the cure rate in some types of cancer. Mitochondria have recently emerged as a very promising target for anti-cancer agents. A group of compounds with anti-cancer activity that induce apoptosis by way of mitochondrial destabilisation, termed 'mitocans', have been a recent focus of research. Several mitocans have been shown to selectively induce apoptosis in cancer cells and suppress the growth of many types of carcinomas in...
48

Le transporteur anionique TAT1 (SLC26A8) : rôle physiologique et implication dans les asthénozoospermies humaines / Anion transporter TAT1 (SLC26A8) : physiological role and involvement in human asthenozoospermia

Dirami, Thassadite 13 December 2012 (has links)
La protéine TAT1 (Testis Anion Transporter 1 ; SLC26A8) appartient à la famille des SLC26, une famille de transporteurs d’anions qui contribuent dans différents épithelia à l’homéostasie cellulaire. La protéine TAT1 s’exprime exclusivement dans les cellules germinales mâles, chez l’homme et chez la souris. Sur le spermatozoïde mature, la protéine TAT1 est localisée à la jonction des pièces intermédiaire (PI) et principale (PP) du flagelle, au niveau de l’annulus, une structure en forme d’anneau composée de différents polymères de Septines (1, 4, 6, 7 et 12).Le modèle murin d’invalidation du gène Tat1 présente une infertilité mâle par asthénozoospermie totale (absence de mobilité des spermatozoïdes) et des défauts de capacitation associés à des anomalies structurales du flagelle (plicature du flagelle, disjonction entre la PI et la PP, atrophie de l’annulus). Ce modèle indique que la protéine TAT1 pourrait avoir un rôle structural dans le maintien de l’annulus et dans la mise en place du flagelle. Par ailleurs, la protéine TAT1 possédant une activité de transport d’anions, il est vraisemblable qu’elle puisse influer directement sur la régulation de la mobilité et de la capacitation puisqu’il est bien établi que les échanges ioniques sont essentiels au contrôle de ces deux processus.En effet, les ions chlorure, bicarbonate et calcium participent à l’activation de la voie de signalisation AMPc/PKA, au cours des processus de mobilité et de capacitation (i.e. processus de maturation ayant lieu dans le tractus génital féminin et conférant au spermatozoïde un mouvement hyperactivé et la capacité à interagir avec l’ovocyte).Plusieurs travaux ont montré une interaction physique et fonctionnelle des membres de la famille SLC26 avec le canal chlorure/bicarbonate CFTR (Cystic Fibrosis Transmembrane conductance Regulator) dont les mutations sont responsables de la mucoviscidose. De manière intéressante des données récentes ont montré l’expression de CFTR dans le spermatozoïde et son rôle dans la régulation des flux de chlorure au cours de la capacitation. Au cours de ma thèse, nous avons testé la coopération entre les protéines TAT1 et CFTR ; nous avons pu montrer que la protéine TAT1 est capable d’interagir physiquement avec CFTR et de stimuler son activité de transport d’anions, suggérant qu’in vivo les deux protéines forment un complexe moléculaire impliqué dans la régulation des flux de chlorure et de bicarbonate dans le spermatozoïde.Tout comme TAT1, plusieurs membres de la famille SLC26 ont une expression tissulaire spécifique. Par ailleurs, les mutations génétiques de certains SLC26 sont associées à des pathologies humaines (surdité, diarrhée chlorurée congénitale et chondrodysplasie). De par le phénotype du modèle murin Tat1 et l’importance des SLC26 en pathologie humaine, TAT1 constitue un bon candidat dans la recherche des causes génétiques des asthénozoospermies humaines.Le laboratoire a mis en place au cours de ma thèse, un projet de recherche de mutations du gène TAT1 dans les asthénozoospermies humaines. Le séquençage des régions codantes du gène TAT1 dans une cohorte de 147 hommes infertiles par asthénozoospermie a ainsi permis d’identifier des variations de séquence inédites du gène chez 7 sujets. L’étude in vitro de certains variants indique pour trois d’entre eux une instabilité des formes mutantes associée à un défaut de stimulation du canal CFTR, in vitro. Par ailleurs, les spermatozoïdes de ces patients présentent d’importantes anomalies flagellaires dans la mise en place de la pièce intermédiaire, compatible avec un rôle de la protéine TAT1 et de ses partenaires (les septines) dans la genèse du flagelle / TAT1 (Testis Anion Transporter 1 ; SLC26A8) belongs to the SLC26 family of anion transporters, which is implicated in cellular homeostasis of different epithelia. TAT1 is exclusively expressed in male germ cells, in human and mouse. On mature spermatozoa, TAT1 is located at the annulus, a ring-shaped structure composed of different septins polymers (1, 4, 6, 7 and 12), at the junction of the midpiece (MP) and principal piece (PP) of the flagellum.The knock-out mouse model of Tat1 gene shows a male infertility by complete asthenozoospermia (lack of sperm motility) and capacitation defects combined with flagellar structural abnormalities (flagella bending, MP and PP disjunction and atrophy of the annulus). This model suggests that the TAT1 protein could fulfill structural roles in the annulus and during flagellum biogenesis. Moreover TAT1 displayind an anion transport activity, it could also be implicated in the control of sperm motility and capacitation by regulating anions exchannges, which are well known to be essential for both processes.Indeed, chloride, bicarbonate and calcium ions are involved in the activation of the cAMP/PKA pathway, controlling sperm motility and capacitation processes (i.e. maturation events occuring in the female genital tract and providing the spermatozoa an hyperactivation movement and the ability to interact with oocyte).Several publications have reported a physical and functionnal interaction between SLC26 family members and the chloride/bicarbonate CFTR channel (Cystic Fibrosis Transmembrane conductance Regulator), which mutations are responsible of cystic fibrosis. Interestingly, recent data showed CFTR expression in spermatozoa and its role in the regulation of chloride fluxes during capacitation. During my thesis, we tested TAT1 and CFTR cooperation; we showed that TAT1 can interact physically with CFTR and stimulate its anion transport activity, suggesting that in vivo they form a molecular complex involved in the regulation of chloride and bicarbonate fluxes during sperm capacitation.Like TAT1, several SLC26 family members have a tissue specific expression. Furthermore genetic mutations in several SLC26 members result in human pathology such as deafness, congenital chloride diarrhea and chondrodysplasia. According to the phenotype of the KO Tat1 mouse model and the role of SLC26 members in human pathology, TAT1 constitutes a good candidate for the search of genetic causes of human asthenozoospermia.During my thesis, the laboratory has set up, a research project aiming at identifying mutations in the TAT1 gene that are responsible for human asthenozoospermia.Sequencing of the TAT1 gene coding regions in a cohort of 147 infertile men presenting with asthenozoospermia allowed us to identify several new sequence variations in in the TAT1 gene. In vitro study of these variants shows that 3 of them are associated with protein instability and abrogate CFTR stimulation. Besides, patients sperm show important flagellar abnormalities in the midpiece, consistent with a role of TAT1 and its partners (septins) in flagellum biogenesis.

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