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E-raamat: Redox Regulation of Differentiation and De-differentiation [Taylor & Francis e-raamat]

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  • Formaat: 380 pages, 3 Tables, black and white; 24 Line drawings, color; 32 Line drawings, black and white; 3 Halftones, color; 26 Illustrations, color; 33 Illustrations, black and white
  • Sari: Oxidative Stress and Disease
  • Ilmumisaeg: 18-Oct-2021
  • Kirjastus: CRC Press
  • ISBN-13: 9781003204091
  • Taylor & Francis e-raamat
  • Hind: 253,89 €*
  • * hind, mis tagab piiramatu üheaegsete kasutajate arvuga ligipääsu piiramatuks ajaks
  • Tavahind: 362,70 €
  • Säästad 30%
  • Formaat: 380 pages, 3 Tables, black and white; 24 Line drawings, color; 32 Line drawings, black and white; 3 Halftones, color; 26 Illustrations, color; 33 Illustrations, black and white
  • Sari: Oxidative Stress and Disease
  • Ilmumisaeg: 18-Oct-2021
  • Kirjastus: CRC Press
  • ISBN-13: 9781003204091
Cell differentiation and the development of multicellular organisms are processes of self-assembly, controlled and driven by signaling molecules and cascades including redox regulation. These reactions may have provided the energy for the first metabolic steps in the evolution of life. Today, redox modifications are established as important regulatory events in cellular functions including differentiation and development. Redox modifications of single cysteines regulate differentiation of stem cells, formation of functioning organs, and de-differentiation such as formation of cancer cells. Current cancer therapy is based on redox events as well and regeneration often reactivates developmental pathways. Understanding differentiation and de-differentiation on a molecular level is therefore a prerequisite for the continuing development of new medical therapies. This book summarizes the roles of redox regulation in development by bringing together different concepts and comparing similarities and differences between various cell types and species. An international team of contributors presents several new aspects of redox-regulated differentiation and de-differentiation, including aspects of redox medicine.

Key Features











Provides the first summary on this important topic





Reviews redox-dependent development of model organisms and single organs





Highlights the redox-regulated pathways important for differentiation processes





Illustrates the potential of redox medicine





Combines state-of-the-art knowledge in differentiation/development, aging/longevity, and repair/regeneration





Written by leading experts in the field

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Preface vii
Contributors ix
Introduction
1 Thiol Redox Regulation: A Brief Historical Overview
3(12)
Carsten Berndt
Bob B. Buchanan
Christopher Horst Lillig
Helmut Sies
Development of (In)Vertebrate Model Organisms
2 Redox Regulation Of Plant Development
15(22)
Jean-Philippe Reichheld
Avilien Dard
Christophe Belin
3 Thiol-Disulphide Redox Signalling / Control Duringthe Lifecycle Of Pathogenic Trypanosomatids
37(20)
Gabriela Specker
Lucia Piacenza
Rafael Radi
Marcelo A. Comini
4 Redox Regulation During Zebrafish Development
57(12)
Lars Brautigam
Carsten Berndt
Development/Differentiation of Vertebrate Tissues
5 The Differential Roles Of Nox-Derived Reactive Oxygen Species In Development, Function, And Dysfunction Of The Nervous System
69(12)
Ernesto Munoz-Palma
Christian Gonzalez-Billault
6 H2O2 In Morphogenesis And Regeneration
81(10)
Marion Thauvin
Irene Amblard
Alain Joliot
Michel Volovitch
Christine Rampon
Sophie Vriz
7 Protein Snitrosylation In Neuronal Development
91(16)
Tomohiro Nakamura
Xu Zhang
Chang-ki Oh
Stuart A. Lipton
8 Nadph Oxidases In Bone Cells
107(14)
Katrin Schroder
Signaling Pathways during Differentiation and Longevity
9 Identification Of Redox-Regulated Pathways Via Redox Proteomics
121(10)
Gereon Poschmann
10 Glutathione During Development
131(40)
Jason M. Hansen
Joshua E. Monsivais
Brandon M. Davies
11 Roles Of Nrf2 In Quiescence And Differentiation
171(14)
Shohei Murakami
Hozumi Motohashi
12 Role Of Iron In Cell Differentiation
185(22)
Chinmay K. Mukhopadhyay
Sameeksha Yadav
Diksha Kulshreshtha
Ilora Ghosh
13 Redox Regulation Of Cytoskeletal Dynamics
207(20)
Clara Ortegon Salas
Manuela Gellert
Christopher Horst Lillig
14 Atthe Interface Between Metabolism And Redox Regulation: Sirtuin 1 As Checkpoint For Neurogenesis And Longevity
227(22)
Tim Prozorovski
Christian Kroll
Carsten Berndt
Orhan Aktas
15 Roles Of Hydrogen Peroxide And Peroxiredoxin In The Yeast Replicative Aging Modelof Aging And Age-Related Disease
249(22)
Mikael Molin
Supersulfide-Mediated Signaling during Differentiation and De-Differentiation
16 Supersulfide-Mediated Signaling During Differentiation And De-Differentiation
271(12)
Tsuyoshi Takata
Masanobu Morita
Tetsuro Matsunaga
Hozumi Motohashi
Takaaki Akaike
17 Selenoproteins During Cancer Development And Progression
283(14)
Anna P. Kipp
18 Hypoxia And Regulation Of Cancer Stem Cells
297(20)
Qun Lin
Zhong Yun
Redox Medicine
19 Redox Homeostasis And Diseases Of Cellular Differentiation
317(16)
Leilei Zhang
Kenneth D. Tew
20 Gas Plasma: Innovative Cancer Therapy And Cellular Differentiation In Immuno-Oncology
333(22)
Sander Bekeschus
21 Nutrition-Based Redox Regulation In Fish: Implications For Growth, Development, Health, And Flesh Quality
355(16)
Kristin Hamre
Sofie Remø
Rune Waagbø
Index 371
Carsten Berndt is in the Department of Neurology, Heinrich-Heine-Universität Düsseldorf. He is the author or co-author of over 50 peer revidewed scholarly publications. His research has focuesd on the essential role of redox regulation in health and disease. Christopher Horst Lillig is at the Institute for Medical Biochemistry and Molecular Biology at the University of Greifswald.