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Mouse molecular embryology

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Cover of 'Mouse molecular embryology'

Table of Contents

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    Book Overview
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    Chapter 1 In Situ Hybridization Methods for Mouse Whole Mounts and Tissue Sections with and Without Additional β-Galactosidase Staining
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    Chapter 2 Two-color in situ hybridization of whole-mount mouse embryos.
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    Chapter 3 Detection and Monitoring of MicroRNA Expression in Developing Mouse Brain and Fixed Brain Cryosections
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    Chapter 4 Laser Capture Microdissection of Embryonic Cells and Preparation of RNA for Microarray Assays
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    Chapter 5 EMAGE: Electronic Mouse Atlas of Gene Expression.
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    Chapter 6 Real-Time PCR Quantification of Gene Expression in Embryonic Mouse Tissue
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    Chapter 7 Identifying Essential Genes in Mouse Development via an ENU-Based Forward Genetic Approach
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    Chapter 8 Generation of Mouse Embryos with Small Hairpin RNA-Mediated Knockdown of Gene Expression
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    Chapter 9 Generation of Tissue Organoids by Compaction Reaggregation
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    Chapter 10 Ultrarapid vitrification of mouse oocytes and embryos.
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    Chapter 11 Mouse Molecular Embryology
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    Chapter 12 Serum-Free Culture of Mid-gestation Mouse Embryos: A Tool for the Study of Endoderm-Derived Organs.
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    Chapter 13 Genetically encoded probes provide a window on embryonic arrhythmia.
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    Chapter 14 Microscopic Computed Tomography-Based Skeletal Phenotyping for Genetic Model Organisms
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    Chapter 15 Gene Transfer Techniques in Whole Embryo Cultured Post-implantation Mouse Embryos
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    Chapter 16 Segmentation and quantitative analysis of individual cells in developmental tissues.
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    Chapter 17 Protein/Peptide transduction in metanephric explant culture.
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    Chapter 18 Detection of Cells Programmed to Die in Mouse Embryos
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    Chapter 19 Microscopic Computed Tomography-Based Virtual Histology of Embryos
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    Chapter 20 Collection and Preparation of Rodent Embryonic Samples for Transcriptome Study
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    Chapter 21 The Latest Improvements in the Mouse Sperm Preservation
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    Chapter 22 Analyzing Gene Function in Whole Mouse Embryo and Fetal Organ In Vitro
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    Chapter 23 Using the Textpresso Site-Specific Recombinases Web Server to Identify Cre Expressing Mouse Strains and Floxed Alleles
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    Chapter 24 Live Imaging Mouse Embryonic Development: Seeing Is Believing and Revealing
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    Chapter 25 Genetic Cell Ablation
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    Chapter 26 Essentials of Recombinase-Based Genetic Fate Mapping in Mice
Attention for Chapter 13: Genetically encoded probes provide a window on embryonic arrhythmia.
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Chapter title
Genetically encoded probes provide a window on embryonic arrhythmia.
Chapter number 13
Book title
Mouse Molecular Embryology
Published in
Methods in molecular biology, January 2014
DOI 10.1007/978-1-60327-292-6_13
Pubmed ID
Book ISBNs
978-1-60327-290-2, 978-1-60327-292-6
Authors

Yvonne Norine Tallini, Kai Su Greene, Bo Shui, Calum William Russell, Jane Constance Lee, Robert Michael Doran, Junichi Nakai, Michael I Kotlikoff, Michael I. Kotlikoff, Tallini, Yvonne Norine, Greene, Kai Su, Shui, Bo, Russell, Calum William, Lee, Jane Constance, Doran, Robert Michael, Nakai, Junichi, Kotlikoff, Michael I.

Abstract

Supraventricular tachycardias are the most prevalent group of arrhythmias observed in the fetus and infant and their incidence increases through early childhood. The molecular pathogenesis of embryonic cardiac dysfunction is poorly understood, due in part to the absence of imaging techniques that provide functional information at the cellular and molecular levels in the developing mammalian heart, particularly during early heart formation. The combination of protein engineering, genetic specification, and high-resolution optical imaging enables new insights into cardiac function and dysfunction during cardiac development. Here we describe the use of GCaMP2, a genetically encoded Ca(2+) indicator (GECI), to determine the processes of cardiac electrical activation during cardiac organogenesis. Transgenic specification of GCaMP2 in mice allows sufficient expression for Ca(2+) imaging as early as embryonic day (e.d.) 9.5, just after the heart begins to function at e.d. 8.5. Crosses with knockout lines in which lethality occurs due to cardiac dysfunction will enable precise determination of the conduction or excitation-contraction coupling phenotypes and thereby improve the understanding of the genetic basis of heart development and the consequence of gene mutations. Moreover, lineage-specific targeting of these sensors of cell signaling provides a new window on the molecular specification of the heart conduction system. We describe mouse lines and imaging methods used to examine conduction in the pre-septated heart (e.d. 10.5), which occurs through dramatically slowed atrioventricular (AV) canal conduction, producing a delay between atrial and ventricular activation prior to the development of the AV node. Genetic constructs including single and bi-allelic minimal promoter systems, and single allele BAC transgenes, enable general or lineage-specific targeting of GCaMP2. High-resolution imaging of embryonic heart conduction provides a new window on one of the most complex events in the mammalian body plan.

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Mendeley readers

The data shown below were compiled from readership statistics for 7 Mendeley readers of this research output. Click here to see the associated Mendeley record.

Geographical breakdown

Country Count As %
Unknown 7 100%

Demographic breakdown

Readers by professional status Count As %
Student > Ph. D. Student 2 29%
Researcher 1 14%
Other 1 14%
Student > Master 1 14%
Unknown 2 29%
Readers by discipline Count As %
Biochemistry, Genetics and Molecular Biology 2 29%
Agricultural and Biological Sciences 1 14%
Neuroscience 1 14%
Medicine and Dentistry 1 14%
Unknown 2 29%