4 resultados para Análise funcional

em SAPIENTIA - Universidade do Algarve - Portugal


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The vertebral column and its units, the vertebrae, are fundamental features, characteristic of all vertebrates. Developmental segregation of the vertebral bodies as articulated units is an intrinsic requirement to guarantee the proper function of the spine. Whenever these units become fused either during development or postsegmentation, movement is affected in a more or less severe manner, depending on the number of vertebrae affected. Nevertheless, fusion may occur as part of regular development and as a physiological requirement, like in the tetrapod sacrum or in fish posterior vertebrae forming the urostyle. In order to meet the main objective of this PhD project, which aimed to better understand the molecular and cellular events underlying vertebral fusion under physiological and pathological conditions, a detailed characterization of the vertebral fusion occurring in zebrafish caudal fin region was conducted. This showed that fusion in the caudal fin region comprised 5 vertebral bodies, from which, only fusion between [PU1++U1] and ural2 [U2+] was still traceable during development. This involved bone deposition around the notochord sheath while fusion within the remaining vertebral bodies occur at the level of the notochord sheath, as during the early establishment of the vertebral bodies. A comparison approach between the caudal fin vertebrae and the remaining vertebral column showed conserved features such as the presence of mineralization related proteins as Osteocalcin were identified throughout the vertebral column, independently on the mineralization patterns. This unexpected presence of Osteocalcin in notochord sheath, here identified as Oc1, suggested that this gene, opposing to Oc2, generally associated with bone formation and mature osteoblast activity, is potentially associated with early mineralization events including chordacentrum formation. Nevertheless, major differences between caudal fin region and anterior vertebral bodies considering arch histology and mineralization patterns, led us to use RA as an inductive factor for vertebral fusion, allowing a direct comparison of equivalent structures under normal and fusion events. This fusion phenotype was associated with notochord sheath ectopic mineralization instead of ectopic perichordal bone formation related with increased osteoblast activity, as suggested in previous reports. Additionally, alterations in ECM content, cell adhesion and blood coagulation were discussed as potentially related with the fusion phenotype. Finally, Matrix gla protein, upregulated upon RA treatment and shown to be associated with chordacentrum mineralization sites in regular development, was further described considering its potential function in vertebral formation and pathological fusion. Therefore with this work we propose zebrafish caudal fin vertebral fusion as a potential model to study both congenital and postsegmentation fusion and we present candidate factors and genes that may be further explored in order to clarify whether we can prevent vertebral fusion.

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Tese de doutoramento, Ciências Biomédicas, Departamento de Ciências Biomédicas e Medicina, Universidade do Algarve, 2014

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Dissertação de Mestrado, Biotecnologia, Faculdade de Engenharia de Recursos Naturais, Universidade do Algarve, 2009

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A bomba de cálcio de retículo sarcoplasmático é uma das proteínas mais extensivamente estudadas, capaz de interagir com várias espécies e compostos de vanádio. Combinando-se estudos de fluorescência com ensaios cinéticos de transporte e ligação de 45Ca à ATPase, avaliou-se o efeito de três complexos de vanádio na função bioenergética e estrutural de Ca2+-ATPase. Demonstrou-se que concentrações próximas dos valores de IC50 (para a hidrólise de ATP) de BMOV-V(IV) e de PDC-V(V) não inibem significativamente a acumulação de 45Ca por sarcovesículas. Por outro lado, o complexo PDC-V(V) mostrou ser capaz de estimular a ligação de 45Ca ao retículo sarcoplasmático, sugerindo que este complexos pode interagir com o domínio de ligação de cálcio à bomba. Vários estudos de fluorescência mostraram que BMOV-V(IV) e PDC-V(V) poderão ser capazes de induzir a conformação E2 (tal como soluções de “decavanadato” e de “monovanadato”) e E1 de Ca2+-ATPase (tal como soluções de “metavanadato”), respectivamente. Apesar de o composto HAIDA-V(IV) previlegiar a conformação E1 (devido à sua elevada afinidade para iões Ca2+), inibiu significativamente o transporte e a ligação de 45Ca, o que sugere que possa interagir com os locais de união de cálcio. Os resultados obtidos são consistentes com a formação de um aducto entre o composto de vanádio e a proteína, o que sugere um efeito na homeostasia intracelular de cálcio, nos sistemas de contracção muscular e, inclusive, nas vias de acção de insulina. Cada um dos três complexos promoveu respostas distintas na Ca2+-ATPase, sugerindo uma evidencia de actividades biológicas diversas em função da espécie química de V e do ambiente de coordenação.