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Journal Article
2012, 2nd ed., Methods in molecular biology, ISBN 1617799912, Volume 917.
Web Resource
1999, Methods in molecular biology, ISBN 0896037908, Volume 127, xii, 217
In Molecular Methods in Developmental Biology: Xenopus and Zebrafish, Matthew Guille assembles a hands-on collection of basic and essential molecular and... 
Xenopus | Vertebrates | Embryology | Zebra danio | Technique | Molecular biology | Embryos | Laboratory manuals | Developmental biology | Life Sciences | Developmental Biology
Book
Journal Article
PLoS ONE, ISSN 1932-6203, 2012, Volume 7, Issue 9, p. e44231
The endothermic state of mammals and birds requires high heart rates to accommodate the high rates of oxygen consumption. These high heart rates are driven by... 
ELECTRICAL ACTIVATION | AVIAN HEART | ELECTROCARDIOGRAPHY | MOUSE HEART | HEART DEVELOPMENT | MULTIDISCIPLINARY SCIENCES | ATRIOVENTRICULAR-CANAL FORMATION | TISSUES | T-BOX GENES | CHAMBER FORMATION | EXPRESSION | Xenopus - genetics | Humans | Heart Ventricles - embryology | Lizards - genetics | Zebrafish - embryology | Xenopus - embryology | Heart Conduction System - embryology | Gene Expression Regulation, Developmental | Ultrasonography | Heart Conduction System - diagnostic imaging | Imaging, Three-Dimensional | Atrioventricular Node - embryology | Atrioventricular Node - anatomy & histology | Heart Conduction System - metabolism | T-Box Domain Proteins - genetics | T-Box Domain Proteins - metabolism | Zebrafish - genetics | Biological Evolution | Phenotype | Animals | Lizards - embryology | Models, Biological | Heart Conduction System - anatomy & histology | Heart Ventricles - anatomy & histology | Heart Ventricles - metabolism | Frogs | Heart | Protection and preservation | Genetic markers | Heart beat | Conduction | Cardiac arrhythmia | Biological evolution | Activation | Reptiles & amphibians | Contraction | Nerve conduction | Embryology | Temperature effects | Rodents | Physiology | Heart diseases | Systems design | Buildings | Septum | Muscles | Oxygen consumption | Zebrafish | Birds | Anatomy & physiology | Mammals | Embryos | Vertebrates | Hypotheses | Morphology | Adults | Ventricle | Gene mapping
Journal Article
Genes and Development, ISSN 0890-9369, 07/2017, Volume 31, Issue 13, pp. 1325 - 1338
Deciphering the fundamental mechanisms controlling cardiac specification is critical for our understanding of how heart formation is initiated during embryonic... 
CRISPR/Cas9-mediated quadruple knockout | Cardiac progenitors | Platform for cardiac disease modeling and drug discovery | Cardiac mesoderm specification | Id proteins | Heartless | MESP1 | heartless | MYOCARDIAL-CELLS | DEVELOPMENTAL BIOLOGY | CELL BIOLOGY | MAMMALIAN HEART | XENOPUS-LAEVIS | cardiac mesoderm specification | MESODERM | EMBRYONIC STEM-CELLS | GENETICS & HEREDITY | platform for cardiac disease modeling and drug discovery | MOUSE GASTRULATION | PROTEINS | WNT | CARDIOVASCULAR PROGENITOR CELLS | cardiac progenitors | Embryo, Nonmammalian - cytology | Embryonic Stem Cells - cytology | Seeds | Heart - embryology | Humans | Gene Expression Regulation, Developmental - genetics | Inhibitor of Differentiation Proteins - genetics | Embryo, Nonmammalian - embryology | Mesoderm - cytology | Cell Differentiation - genetics | Heart Defects, Congenital - genetics | Cell Lineage - genetics | Cell Line | Basic Helix-Loop-Helix Transcription Factors - genetics | Xenopus laevis - embryology | Inhibitor of Differentiation Proteins - metabolism | Embryonic Stem Cells - physiology | Gene Editing | Animals | Embryo, Mammalian - embryology | Embryo, Mammalian - cytology | Organogenesis - genetics | Mesoderm - physiology | Mice | Mutation | Embryo | Research | Drug discovery | Stem cells | Life Sciences | Development Biology | Biochemistry, Molecular Biology | Genomics | Embryology and Organogenesis | CRISPR | Research Paper | Cas9-mediated quadruple knockout
Journal Article
Developmental Biology, ISSN 0012-1606, 09/2017, Volume 429, Issue 1, pp. 213 - 224
Journal Article