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A Pipeline to Characterize Structural Heart Defects in the Fetal Mouse.
Guzman-Moreno, Carla; Zhang, Peizhao; Phillips, Olivia R; Block, Mathias; Glennon, Benjamin J; Holbrook, Meghan; Weigand, Lauren; Lo, Cecilia W; Lin, Jiuann-Huey I.
Afiliación
  • Guzman-Moreno C; Department of Developmental Biology, University of Pittsburgh.
  • Zhang P; Department of Biological Sciences, University of Pittsburgh.
  • Phillips OR; Department of Developmental Biology, University of Pittsburgh.
  • Block M; Département de Biologie, École Normale Supérieure de Lyon.
  • Glennon BJ; Department of Developmental Biology, University of Pittsburgh.
  • Holbrook M; Department of Biological Sciences, University of Pittsburgh.
  • Weigand L; Department of Biological Sciences, University of Pittsburgh.
  • Lo CW; Department of Developmental Biology, University of Pittsburgh.
  • Lin JI; Department of Developmental Biology, University of Pittsburgh; Department of Critical Care Medicine, University of Pittsburgh; jiuannhuey.lin5@upmc.edu.
J Vis Exp ; (190)2022 12 16.
Article en En | MEDLINE | ID: mdl-36591976
ABSTRACT
Congenital heart diseases (CHDs) are major causes of infant death in the United States. In the 1980s and earlier, most patients with moderate or severe CHD died before adulthood, with the maximum mortality during the first week of life. Remarkable advances in surgical techniques, diagnostic approaches, and medical management have led to marked improvements in outcomes. To address the critical research needs of understanding congenital heart defects, murine models have provided an ideal research platform, as they have very similar heart anatomy to humans and short gestation rates. The combination of genetic engineering with high-throughput phenotyping tools has allowed for the replication and diagnosis of structural heart defects to further elucidate the molecular pathways behind CHDs. The use of noninvasive fetal echocardiography to screen the cardiac phenotypes in mouse models coupled with the high fidelity of Episcopic fluorescence image capture (EFIC) using Episcopic confocal microscopy (ECM) histopathology with three-dimensional (3D) reconstructions enables a detailed view into the anatomy of various congenital heart defects. This protocol outlines a complete workflow of these methods to obtain an accurate diagnosis of murine congenital heart defects. Applying this phenotyping protocol to model organisms will allow for accurate CHD diagnosis, yielding insights into the mechanisms of CHD. Identifying the underlying mechanisms of CHD provide opportunities for potential therapies and interventions.
Asunto(s)

Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Asunto principal: Cardiopatías Congénitas Tipo de estudio: Guideline Límite: Adult / Animals / Humans / Infant Idioma: En Revista: J Vis Exp Año: 2022 Tipo del documento: Article

Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Asunto principal: Cardiopatías Congénitas Tipo de estudio: Guideline Límite: Adult / Animals / Humans / Infant Idioma: En Revista: J Vis Exp Año: 2022 Tipo del documento: Article