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Zebrafish: Cellular and Developmental Biology, Part B Developmental Biology 4th edition, Volume 134 [Kietas viršelis]

Volume editor (Professor, Department of Biology, Institute of Neuroscience, University of Oregon, Eugene, OR, USA), Volume editor (Boston Children's Hospital / HHMI, Boston, MA, USA), Volume editor (Professor of Biochemistry and Marine Biology at Northeastern University)
  • Formatas: Hardback, 660 pages, aukštis x plotis: 235x191 mm, weight: 1610 g
  • Serija: Methods in Cell Biology
  • Išleidimo metai: 20-Jun-2016
  • Leidėjas: Academic Press Inc
  • ISBN-10: 0128050551
  • ISBN-13: 9780128050552
Kitos knygos pagal šią temą:
  • Formatas: Hardback, 660 pages, aukštis x plotis: 235x191 mm, weight: 1610 g
  • Serija: Methods in Cell Biology
  • Išleidimo metai: 20-Jun-2016
  • Leidėjas: Academic Press Inc
  • ISBN-10: 0128050551
  • ISBN-13: 9780128050552
Kitos knygos pagal šią temą:

The Zebrafish: Cellular and Developmental Biology: Part B, Fourth Edition, the second volume on the topic in the Methods in Cell Biology series, looks at methods for analyzing cellular and developmental biology of zebrafish. Chapters cover such topics as cell biology and developmental and neural biology.

  • Covers sections on model systems and functional studies, imaging-based approaches, and emerging studies
  • Chapters written by experts in the field
  • Contains cutting-edge material on the topic of zebrafish and developments relating to their cellular and developmental biology
  • New, two part Fourth Edition in this important volume

Recenzijos

Praise for the Series: "The series is invaluable for workers at all levels of cell biology." --Nature

Daugiau informacijos

This new Fourth Edition in the Methods in Cell Biology series looks at methods for cellular and developmental biology of zebrafish.
Contributors xiii
Preface xvii
Chapter 1 Methods to Study Maternal Regulation of Germ Cell Specification in Zebrafish
1(32)
O.H. Kaufman
F.L. Marlow
Introduction
2(1)
1 Stages of Maternal Germ Plasm Regulation and Specification
3(3)
2 Studying the Dynamic Localization of Germ Plasm RNAs
6(6)
3 Studying Molecular Requirements Through Loss-of-Function Approaches
12(5)
4 Utility of Transgenic Fish to Study Germ Cell Development
17(16)
Conclusion
23(1)
References
24(9)
Chapter 2 Patterning, Morphogenesis, and Neurogenesis of Zebrafish Cranial Sensory Placodes
33(36)
R. Aguillon
P. Blader
J. Batut
Introduction
34(2)
1 Specification of the PPR and Patterning the PPR into Specific Placodes
36(11)
2 Cranial Placode Morphogenesis and Neurogenesis
47(22)
Conclusions
53(1)
Acknowledgments
54(1)
References
54(15)
Chapter 3 Oligodendrocyte Differentiation
69(28)
E.S. Mathews
B. Appel
Introduction
70(2)
1 Zebrafish As a Model to Study Oligodendrocyte Differentation
72(2)
2 Insights Into Oligodendrocyte Development and Myelination Using Zebrafish
74(12)
3 Zebrafish As Model to Study Remyelination
86(11)
Future Directions and Conclusions
87(1)
References
88(9)
Chapter 4 Studying the Peripheral Sympathetic Nervous System and Neuroblastoma in Zebrafish
97(42)
M.A. Morrison
M.W. Zimmerman
A.T. Look
R.A. Stewart
Introduction
98(1)
1 The Peripheral Autonomic Nervous System
99(8)
2 The Zebrafish as a Model System for Studying PSNS Development
107(13)
3 Zebrafish as a Novel Model for Studying Neuroblastoma
120(19)
Conclusion
127(1)
Acknowledgments
127(1)
References
127(12)
Chapter 5 Zebrafish As a Model for Understanding Enteric Nervous System Interactions in the Developing Intestinal Tract
139(26)
J. Ganz
E. Melancon
J.S. Eisen
Introduction
140(3)
1 Genetic and Environmental Interactions During Enteric Nervous System Development
143(3)
2 Interactions Between the Enteric Nervous System and the Immune System
146(9)
3 Interactions Between the Enteric Nervous System and Effector Cells
155(2)
4 Future Prospects
157(8)
Acknowledgments
157(1)
References
158(7)
Chapter 6 Methods to Study the Development, Anatomy, and Function of the Zebrafish Inner Ear Across the Life Course
165(46)
S. Baxendale
T.T. Whitfield
Introduction
166(3)
1 Imaging Methods for Analysis of the Zebrafish Ear and Lateral Line
169(13)
2 Experimental Manipulation of Otic Development
182(4)
3 Dissection and Imaging of the Adult Ear and Otoliths
186(3)
4 Behavioral Analysis
189(6)
5 Small Molecule Screening
195(2)
6 Zebrafish Models of Human Deafness and Vestibular Disorders
197(2)
7 Future Directions
199(12)
Acknowledgments
200(1)
References
200(11)
Chapter 7 Imaging Collective Cell Migration and Hair Cell Regeneration in the Sensory Lateral Line
211(46)
M. Venero Galanternik
J. Navajas Acedo
A. Romero-Carvajal
T. Piotrowski
Introduction
213(1)
1 Lateral Line Development
213(3)
2 In Vivo Imaging of Lateral Line Primordium Migration
216(12)
3 Live Labeling of Lateral Line Cells
228(8)
4 Nonvital Tissue Labeling of Lateral Line Cells
236(2)
5 Interpretation of Common Phenotypes
238(1)
6 Hair Cell Regeneration
239(1)
7 Long-Term Time-Lapse Analyses of Regenerating Neuromasts
239(18)
Conclusions
248(1)
Acknowledgments
248(1)
References
249(8)
Chapter 8 Analysis of the Retina in the Zebrafish Model
257(78)
J. Malicki
N. Pooranachandran
A. Nikolaev
X. Fang
A. Avanesov
Introduction
258(2)
1 Development of the Zebrafish Retina
260(7)
2 Analysis of the Visual System in Wild Type and Mutants
267(33)
3 Analysis of Gene Function in the Zebrafish Retina
300(35)
Summary
310(1)
Acknowledgments
311(1)
References
311(24)
Chapter 9 Strategies for Analyzing Cardiac Phenotypes in the Zebrafish Embryo
335(34)
A.R. Houk
D. Yelon
Introduction
335(3)
1 Regulation of Heart Size
338(7)
2 Regulation of Cardiac Morphology
345(10)
3 Regulation of Cardiac Function
355(5)
4 Summary
360(9)
References
360(9)
Chapter 10 Chemical Approaches to Angiogenesis in Development and Regeneration
369(8)
H. Zhao
H. Huang
S. Lin
Introduction
370(1)
1 High-Throughput Screening for Small Molecules With Proangiogenic Activity Using Primary Cell Culture of Tg[ flk: GFP] Zebrafish Embryos
370(3)
2 Validation of Proangiogenic Compounds in Vivo Using Pre-inhibited Vascular Structure of Zebrafish Embryo by VRI
373(1)
3 Summary
373(1)
4 Method
374(3)
Acknowledgments
375(1)
References
376(1)
Chapter 11 Quantitative Methods for Studying Hemostasis in Zebrafish Larvae
377(14)
M.S. Rost
S.J. Grzegorski
J.A. Shavit
Introduction
378(1)
1 Methods
379(12)
Conclusions
386(2)
Acknowledgments
388(1)
References
388(3)
Chapter 12 Zebrafish Kidney Development
391(40)
I.A. Drummond
A.J. Davidson
Introduction
392(1)
1 Structure of the Zebrafish Pronephros
393(4)
2 Formation of the Pronephros
397(9)
3 Methods to Study Pronephros Function
406(25)
Conclusions
422(1)
Acknowledgments
422(1)
References
423(8)
Chapter 13 Zebrafish Pancreas As a Model for Development and Disease
431(32)
R.A. Kimmel
D. Meyer
Introduction
432(1)
1 Molecular Mechanisms of Secondary Islet Formation
433(5)
2 Physiology and Assessment of Glucose Homeostasis in Zebrafish
438(3)
3 Diabetes and Related Disease Models in Zebrafish
441(5)
4 Methods to Study Beta Cell Biology and Physiology
446(10)
5 Future Directions
456(7)
Acknowledgments
457(1)
References
457(6)
Chapter 14 Endoderm Specification and Liver Development
463(22)
W. Goessling
D.Y. Stainier
Introduction
464(1)
1 Review of the Literature
464(6)
2 Embryonic and Larval Protocols to Analyze Liver Formation
470(2)
3 Liver Injury and Regeneration Protocols
472(13)
Summary
476(1)
References
476(9)
Chapter 15 Emerging Tools to Study Proteoglycan Function During Skeletal Development
485(46)
D.S. Brown
B.F. Eames
Introduction
486(10)
1 Xylose: Where the "Proteo-" meets the "-Glycan"
496(3)
2 Adding Sugar Like a Kid After Halloween
499(1)
3 Don't Be a Quitter: Posttranslational Modifications of Posttranslational Modifications
500(1)
4 Break it Down for Me, Fellas
501(2)
5 Adding Function to Structure by Understanding PG-Loss Animal Models
503(6)
6 Heres Looking at You, PG
509(22)
Conclusion
513(1)
Acknowledgments
514(1)
References
514(17)
Chapter 16 Generation and Analysis of Zebrafish Melanoma Models
531(20)
S. Wojciechowska
E. van Rooijen
C. Ceol
E.E. Patton
R.M. White
Introduction
532(1)
1 Genetic Models of Melanoma in Zebrafish
532(5)
2 Cell Line Models of Melanoma in Zebrafish
537(6)
3 Analysis of Melanomas
543(3)
4 Perspectives
546(5)
Acknowledgments
546(1)
References
547(4)
Chapter 17 Learning and Memory in Zebrafish (Danio rerio)
551(36)
R. Gerlai
Introduction
552(29)
Summary
581(1)
Acknowledgments
581(1)
References
581(6)
Chapter 18 Working With Zebrafish at Postembryonic Stages
587(22)
S.K. McMenamin
M.N. Chandless
D.M. Parichy
Introduction
588(2)
1 Part I: Postembryonic Staging
590(8)
2 Part II: Rearing Fish for Use at Postembryonic Stages
598(4)
3 Recipes
602(7)
Acknowledgments
603(1)
References
603(6)
Volumes in Series 609(14)
Index 623
Professor of Biochemistry and Marine Biology at Northeastern University, promoted 1996. Joined Northeastern faculty in 1987. Previously a faculty member in Dept. of Biochemistry at the University of Mississippi Medical Center, 1983-1987.Principal Investigator in the U.S. Antarctic Program since 1984. Twelve field seasons "on the ice" since 1981. Research conducted at Palmer Station, Antarctica, and McMurdo Station, Antarctica.Research areas: Biochemical, cellular, and physiological adaptation to low and high temperatures. Structure and function of cytoplasmic microtubules and microtubule-dependent motors from cold-adapted Antarctic fishes. Regulation of tubulin and globin gene expression in zebrafish and Antarctic fishes. Role of microtubules in morphogenesis of the zebrafish embryo. Developmental hemapoiesis in zebrafish and Antarctic fishes. UV-induced DNA damage and repair in Antarctic marine organisms. Professor, Department of Biology, Institute of Neuroscience, University of Oregon, Eugene, OR, USA Grousbeck Professor of Pediatrics, Boston Children's Hospital / HHMI, Boston, MA, USA