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The effect of hyperglycemia on neurovascular coupling and cerebrovascular patterning in zebrafish.
Chhabria, Karishma; Plant, Karen; Bandmann, Oliver; Wilkinson, Robert N; Martin, Chris; Kugler, Elisabeth; Armitage, Paul A; Santoscoy, Paola Lm; Cunliffe, Vincent T; Huisken, Jan; McGown, Alexander; Ramesh, Tennore; Chico, Tim Ja; Howarth, Clare.
Afiliação
  • Chhabria K; Neuroimaging in Cardiovascular Disease (NICAD) Network, University of Sheffield, Sheffield, UK.
  • Plant K; Department of Infection, Immunity and Cardiovascular Disease, University of Sheffield Medical School, Sheffield, UK.
  • Bandmann O; The Bateson Centre, University of Sheffield, Sheffield, UK.
  • Wilkinson RN; Department of Infection, Immunity and Cardiovascular Disease, University of Sheffield Medical School, Sheffield, UK.
  • Martin C; The Bateson Centre, University of Sheffield, Sheffield, UK.
  • Kugler E; The Bateson Centre, University of Sheffield, Sheffield, UK.
  • Armitage PA; Department of Neuroscience, University of Sheffield Medical School, Sheffield, UK.
  • Santoscoy PL; Department of Infection, Immunity and Cardiovascular Disease, University of Sheffield Medical School, Sheffield, UK.
  • Cunliffe VT; The Bateson Centre, University of Sheffield, Sheffield, UK.
  • Huisken J; Neuroimaging in Cardiovascular Disease (NICAD) Network, University of Sheffield, Sheffield, UK.
  • McGown A; Department of Psychology, University of Sheffield, Sheffield, UK.
  • Ramesh T; Department of Infection, Immunity and Cardiovascular Disease, University of Sheffield Medical School, Sheffield, UK.
  • Chico TJ; The Bateson Centre, University of Sheffield, Sheffield, UK.
  • Howarth C; Neuroimaging in Cardiovascular Disease (NICAD) Network, University of Sheffield, Sheffield, UK.
J Cereb Blood Flow Metab ; 40(2): 298-313, 2020 02.
Article em En | MEDLINE | ID: mdl-30398083
ABSTRACT
Neurovascular coupling (through which local cerebral blood flow changes in response to neural activation are mediated) is impaired in many diseases including diabetes. Current preclinical rodent models of neurovascular coupling rely on invasive surgery and instrumentation, but transgenic zebrafish coupled with advances in imaging techniques allow non-invasive quantification of cerebrovascular anatomy, neural activation, and cerebral vessel haemodynamics. We therefore established a novel non-invasive, non-anaesthetised zebrafish larval model of neurovascular coupling, in which visual stimulus evokes neuronal activation in the optic tectum that is associated with a specific increase in red blood cell speed in tectal blood vessels. We applied this model to the examination of the effect of glucose exposure on cerebrovascular patterning and neurovascular coupling. We found that chronic exposure of zebrafish to glucose impaired tectal blood vessel patterning and neurovascular coupling. The nitric oxide donor sodium nitroprusside rescued all these adverse effects of glucose exposure on cerebrovascular patterning and function. Our results establish the first non-mammalian model of neurovascular coupling, offering the potential to perform more rapid genetic modifications and high-throughput screening than is currently possible using rodents. Furthermore, using this zebrafish model, we reveal a potential strategy to ameliorate the effects of hyperglycemia on cerebrovascular function.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Encéfalo / Circulação Cerebrovascular / Acoplamento Neurovascular / Hiperglicemia / Neovascularização Patológica Limite: Animals Idioma: En Ano de publicação: 2020 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Encéfalo / Circulação Cerebrovascular / Acoplamento Neurovascular / Hiperglicemia / Neovascularização Patológica Limite: Animals Idioma: En Ano de publicação: 2020 Tipo de documento: Article