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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.
51

Validation des effets antidiabétiques de Rhododendron groenlandicum, une plante médicinale des Cri de la Baie James, dans le modèle in vitro et in vivo : élucidation des mécanismes d’action et identification des composés actifs

Ouchfoun, Meriem 12 1900 (has links)
Le diabète est un syndrome métabolique caractérisé par une hyperglycémie chronique due à un défaut de sécrétion de l’insuline, de l’action de l’insuline (sensibilité), ou une combinaison des deux. Plus d'un million de canadiens vivent actuellement avec le diabète. La prévalence de cette maladie est au moins trois fois plus élevée chez les autochtones que dans la population canadienne en général. Notre équipe vise à étudier les effets potentiellement antidiabétiques de certaines plantes médicinales utilisées par les Cris d'Eeyou Istchee (Baie James, Québec) où l’adhérence aux traitements médicamenteux est faible, en partie à cause de la déconnection culturelle de ces derniers. Grâce à une approche ethnobotanique, notre équipe a identifié 17 plantes médicinales utilisées par cette population pour traiter des symptômes du diabète. Parmi ces plantes, l’extrait éthanolique de Rhododendron groenlandicum (Thé du Labrador) a montré un fort potentiel antidiabétique chez plusieurs lignées cellulaires, notamment les adipocytes (3T3-L1). Cette plante induit la différenciation adipocytaire probablement par l’activation du peroxisome proliferator-activated receptor gamma (PPAR γ). Cette stimulation améliore la résistance à l’insuline et constitue un mécanisme privilégié pour une classe de médicaments antidiabétiques, les thiazolidinediones. Le but de la présente étude est de valider l’efficacité et l’innocuité de R. groenlandicum in vivo, dans un modèle animal de résistance à l’insuline, d’élucider les mécanismes par lesquels cet extrait exerce ses effets antidiabétiques et d’identifier les principes actifs responsables de son activité. L'isolation et l'identification des constituants actifs ont été réalisées à l’aide d'une approche de fractionnement guidé par bioessai; en l'occurrence, l'adipogénèse. Cette approche, réalisée dans la lignée adipocytaire 3T3-L1, a pour but de mesurer leur teneur en triglycérides. Des études in vivo ont été réalisées sur le modèle de souris DIO (diet induced obesity). L'extrait éthanolique du R. groenlandicum a été incorporé à la nourriture grasse (35% d’apport calorique lipidique) à trois doses différentes (125, 250 et 500 mg / kg) sur une période de 8 semaines. Des tissus cibles de l’insuline (foie, muscle squelettique et tissus adipeux) ont été récoltés afin de faire des analyses d’immunobuvardage de type western. La quercétine, la catéchine et l’épicatéchine ont été identifiées comme étant les composés actifs responsables de l'effet antidiabétique du R. groenlandicum. Seules la catéchine et l’épicatéchine activent l’adipogénèse uniquement à forte concentration (125-150 M), tandis que la quercétine l’inhibe. L’étude in vivo a montré que le traitement avec R. groenlandicum chez les souris DIO réduit le gain de poids de 6%, diminue l'hyperglycémie de 13% et l’insulinémie plasmatique de 65% et prévient l’apparition des stéatoses hépatiques (diminution de 42% de triglycéride dans le foie) sans être toxique. Les analyses d’immunobuvardage ont montré que R. groenlandicum stimule la voie de l’insuline via la phosphorylation de l’Akt et a augmenté le contenu protéique en Glut 4 dans les muscles des souris traitées. Par contre, dans le foie, le R. groenlandicum passerait par deux voies différentes, soit la voie insulino-dépendante par l’activation de l’AKT, soit la voie insulino-indépendante par la stimulation de l’AMPK. L’amélioration observée des stéatoses hépatiques chez les souris DIO traitées, a été confirmée par une baisse du facteur de transcription, SREBP-1, impliqué dans la lipogénèse de novo, ainsi qu’une diminution de l’inflammation hépatique (diminution de l’activité d’IKK α/β). En conclusion, l’ensemble de ces résultats soutiennent le potentiel thérapeutique de Rhododendron groenlandicum et de ses composants actifs dans le traitement et la prévention du diabète de type 2. Nous avons validé l'innocuité et l'efficacité de cette plante issue de la médecine traditionnelle Cri, qui pourrait être un traitement alternatif du diabète de type 2 dans une population ayant une faible adhérence au traitement pharmacologique existant. / Diabetes is a metabolic syndrome characterized by chronic hyperglycemia due to a defect in insulin secretion, insulin action (sensitivity), or both. More than one million Canadians are currently living with diabetes. The prevalence of this disease is at least three times higher among indigenous people than in the general Canadian population. Our team studied the potential effects of certain anti-diabetic medicinal plants used by the Cree nation of Eeyou Istchee (James Bay, Quebec) where compliance to western treatment is low due in part to the cultured disconnect of the latter. Using an ethnobotanical approach, we identified 17 medicinal plants used by this population to treat symptoms of diabetes. Among these plants, the ethanol extract of Rhododendron groenlandicum (Labrador Tea) showed strong anti-diabetic potential in several cell lines, including adipocytes (3T3-L1) where it induced differentiation probably by stimulating the peroxisome proliferator-activated receptor gamma (PPAR γ). Such stimulation has been shown to improve insulin resistance, a mechanism used by a class of anti-diabetic drugs, the thiazolidinediones. The aim of the present study is to validate the effectiveness and the safety of R. groenlandicum in vivo in a mouse model of insulin resistance, to elucidate the mechanisms by which it exerts its effects and to identify the active principles responsible for its activity. Isolation and identification of active constituents of R. groenlandicum were performed using a fractionation approach guided by the increase of triglyceride content in the adipocyte (3T3-L1). In vivo studies were performed on a DIO (diet induced obesity) mouse model. The ethanolic extract of R. groenlandicum was incorporated into the high fat diet (35% energy derived from lipids) at three different doses (125, 250 and 500 mg / kg) over a period of 8 weeks. Western immunoblot analysis was performed on different tissues (liver, skeletal muscle, adipose tissue) collected at the end of the study. Quercetin, catechin and epicatechin were identified as the active compounds responsible for the anti-diabetic effect of R. groenlandicum. Alone, catechin and epicatechin activate adipogenesis only at high concentrations (125-150 M) while quercetin inhibits it. In vivo, treatment of DIO mice with R. groenlandicum diminished weight gain by 6 %, reduced blood glucose by 13%, insulin plasma by 65% and prevented hepatic steatosis (triglycerides levels decreased by 42%) without significant toxicity. Western blot analysis showed that R. groenlandicum increased Glut 4 protein content in skeletal muscle by activating the insulin dependent pathway implicating Akt. Effects of R. groenlandicum on hepatic steatosis seems to involve both pathways; the insulin dependent Akt and insulin independent AMPK pathways. This correlated with decreased SREBP-1 hepatic content, a transcription factor involved in de novo lipogenesis, and with a reduction of inflammation (decrease in the activity of IKK alpha / beta). Taken together, these results support the therapeutic potential of Rhododendron groenlandicum and its active compounds in the treatment and prevention of type 2 diabetes. We validated the safety and efficacy of this plant from traditional Cree medicine. It could represent an alternative treatment of type 2 diabetes in a population that has a poor compliance to pharmacological treatments.
52

Ilhotas pancreáticas humanas viáveis para o transplante através do aumento da massa de células e do imunoisolamento com microcápsulas biocompatíveis / Obtention of human pancreatic islets for transplantation through an increase in cell mass and an immunoisolation with biocompatible microcapsules

Ana Carolina Vale Campos-Lisbôa 06 March 2009 (has links)
O transplante de ilhotas pancreáticas humanas representa uma estratégia promissora para a cura do diabetes mellitus tipo 1 (DM1), mas a aplicação a todos os pacientes diabéticos ainda é impraticável devido à limitada disponibilidade de ilhotas ou células β e à necessidade de utilização de drogas imunossupressoras pelo paciente transplantado. O tratamento com imunossupressores após o transplante de ilhotas pode ser abolido quando se realiza o microencapsulamento das ilhotas pancreáticas. Neste trabalho investigou-se um novo biomaterial, Biodritina® (alginato/sulfato de condroitina) adequado ao microencapsulamento que gelifica na presença de íons de cálcio ou bário. A biocompatibilidade das microcápsulas tem sido avaliada segundo o grau de pureza do alginato utilizado na sua confecção. Amostras de alginato comercial purificado foram analisadas, comprovando-se a presença de impurezas (polifenóis, endotoxinas, proteínas) em níveis elevados, que impedem sua aplicação clínica. Optou-se, portanto pela utilização do alginato comercial ultrapurificado nos experimentos descritos neste trabalho. Das formulações de biomateriais avaliadas, as microcápsulas de bário-Biodritina apresentaram o melhor desempenho em testes de estabilidade físico-química. Estas microcápsulas mantiveram sua morfologia e estabilidade estrutural após permanecerem 30 dias na cavidade peritoneal de camundongos, conforme demonstrado por microscopia eletrônica de varredura (MEV). Análises histológicas mostraram que microcápsulas de bário-Biodritina explantadas, não possuíam adesão celular em sua superfície. Estudos de permeabilidade demonstraram que o tamanho médio dos poros das microcápsulas de bário-Biodritina permite passagem de proteínas de até 70 kDa, enquanto os poros daquelas de cálcio-Biodritina comportam proteínas de até 100 kDa. Experimentos de coResumo | x cultivo de macrófagos peritoneais com ilhotas de rato microencapsuladas demonstraram uma capacidade imunoprotetora maior das microcápsulas de bário-Biodritina em relação às de cálcio- Biodritina, sendo que as primeiras não ativaram os macrófagos. A manutenção da viabilidade e função de ilhotas humanas microencapsuladas com bário-Biodritina foi confirmada através de ensaio funcional in vitro, no qual ilhotas microencapsuladas apresentaram níveis de secreção de insulina idênticos aos de ilhotas nuas. A prova de conceito do biomaterial foi realizada através do implante de ilhotas humanas microencapsuladas em bário-Biodritina em camundongos com DM1 induzido por estreptozotocina. A hiperglicemia desses animais foi corrigida pelo implante por um período superior a 60 dias, durante os quais o teste oral de tolerância à glicose mostrou-se normal, demonstrando completa funcionalidade e eficiência das ilhotas microencapsuladas com bário-Biodritina. Partindo de observações de que animais inoculados com a peçonha do escorpião Tityus serrulatus apresentam nesidioblastose, foi realizado o fracionamento do veneno por HPLC de fase reversa e 24 frações obtidas foram submetidas a ensaios de proliferação celular através da incorporação de 3H-timidina em células de insulinoma de rato RINm5F. Uma dessas frações foi capaz de induzir a proliferação das células RINm5F e quando aplicada a ilhotas humanas isoladas, elevou o índice de secreção de insulina e induziu um aumento da expressão dos mRNAs de insulina e PCNA. Portanto, demonstrou-se que o biomaterial bário-Biodritina possui as características necessárias para microencapsular células/ilhotas com eficiência e que a \"fração ativa\" do veneno do escorpião T. serrulatus induz proliferação de células RINm5F e melhora a secreção de insulina de ilhotas humanas. / Islet transplantation has been proposed as a promising therapeutic strategy for the cure of type 1 diabetes mellitus (DM), however, its application to all diabetic patients is still not possible due to the limited source of islets or β cells and to the need of an immunosuppressive treatment of the recipient to avoid graft rejection. The use of immunosupressors may be abolished when pancreatic islets are microencapsulated prior to transplantation. Here, we investigated the use of a new biomaterial suitable for cell microencapsulation, namely, Biodritin®, composed of alginate and chondroitin sulphate, which is capable of gelation in the presence of barium or calcium ions. Microcapsules biocompatibility has been evaluated according to the purity of the alginate used in its production. Samples of purified commercial alginate were analyzed, but the high levels of contaminants (proteins, endotoxins and polyphenols) detected prevented its use in clinical applications. On the other hand, also commercially available ultrapure alginate fulfills the requirements for this application, therefore, this biomaterial was chosen for our experiments. Among the different biomaterial formulations evaluated, barium-Biodritin microcapsules displayed the best performance in the physico-chemical tests. Scanning electronic microscopy revealed that barium-Biodritin microcapsules maintained their morphology and structural stability after being implanted for 30 days in the peritoneal cavity of mice. No cellular adhesion was detected on the surface of explanted barium-Biodritin microcapsules by histological analysis. Permeability studies determined the medium pore size of barium-Biodritin microcapsules, which allows proteins of up to 70 kDa to pass through the biomaterial, while calcium-Biodritin pores accomodate proteins of up to 100 kDa. Co-culture of peritoneal macrophages with microencapsulated rat islets, revealed a superior immunoprotective capacity of barium-Biodritin microcapsules, which were capable of protecting the islets with no macrophage activation. Microencapsulated and naked human islets presented identical insulin secretion levels upon stimulation with glucose in vitro, confirming that barium-Biodritin microencapsulation maintains the function and viability of human islets. Proof-of-concept experiments in which barium-Biodritin microencapsulated human islets were implanted into chemically-induced diabetic mice, showed that these animals maintained normal blood glucose levels for more than 60 days, during which oral glucose tolerance tests were normal, demonstrating the complete functionality and efficiency of barium-Biodritin microencapsulated human islets. From the observation that animals inoculated with the venom of the scorpion Tityus serrulatus presented nesidioblastosis, we decided to fractionate the venom to isolate the active principle. The venom was fractionated by reversed phase HPLC and 24 fractions were obtained and submitted to cellular proliferation assays, in which rat insulinoma RINm5F cells evaluated for 3H-timidina incorporation. One of these fractions was capable of inducing cell proliferation and was also applied to isolated human islets. Treated islets presented a higher insulin secretion index and an increase in insulin and PCNA mRNA expression. In conclusion, we demonstrated that the barium-Biodritin biomaterial possesses all characteristics required for efficient cell/islet microencapsulation and that the active fraction of Tityus serrulatus venom induces the proliferation of RINm5F cells and improves insulin secretion in human islets.

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