Oxygen and the evolution of life
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Datensatz im Suchindex
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adam_text |
IMAGE 1
CONTENTS
1 OXYGEN, ITS NATURE AND CHEMISTRY: WHAT IS SO SPECIAL ABOUT THIS
ELEMENT? 1
1.1 A BRIEF INTRODUCTION TO OXYGEN 1
1.2 ATOMIC STRUCTURE OF OXYGEN: CHEMICAL BONDING POTENTIAL 2 1.3 THE
DIOXYGEN MOLECULE 5
1.4 REACTIVE OXYGEN SPECIES 8
1.4.1 SUPEROXIDE'O 2 ~* 8
1.4.2 HYDROGEN PEROXIDE (H 2 O 2 ) 9
1.4.3 PEROXYL RADICAL (ROO*) 9
1.5 OZONE 10
1.6 WATER 12
1.7 WATER VAPOR IN THE ATMOSPHERE 15
1.8 CARBON DIOXIDE 15
1.9 SOLUBILITY OF GASES IN WATER 16
1.10 HYDROLYSIS AND DEHYDRATION: CENTRAL WATER REACTIONS IN BIOLOGY 16
1.11 REDOX REACTIONS 17
REFERENCES 18
2 A BRIEF HISTORY OF OXYGEN 21
2.1 COSMIC HISTORY OF THE ELEMENTS 21
2.1.1 THE SUN AND SOLAR SYSTEM 24
2.2 FORMATION OF EARTH 25
2.3 THE PRIMORDIAL ENVIRONMENT 27
2.3.1 ATMOSPHERE OF THE EARLY EARTH 27
2.3.2 WATER ON THE EARTH' SURFACE: THE ORIGIN OF OCEANS 29 2.3.3 THE
FIRST GREENHOUSE EFFECT 29
2.4 LIFE: ITS ORIGINS AND EARLIEST DEVELOPMENT 30
2.5 A BILLION YEARS OF LIFE WITHOUT DIOXYGEN: ANAEROBIC METABOLISM .
32 2.5.1 SOME PRINCIPLES OF METABOLISM 32
2.6 THE INVENTION OF PHOTOSYNTHESIS 35
BIBLIOGRAFISCHE INFORMATIONEN HTTP://D-NB.INFO/1001790219
DIGITALISIERT DURCH
IMAGE 2
VIII CONTENTS
2.7 HOW OXYGENIC PHOTOSYNTHESIS REMODELED THE EARTH 38 2.7.1 THE FIRST
RISE OF DIOXYGEN 38
2.7.2 EFFECTS ON LIFE: AN ECOLOGICAL CATASTROPHE? 39
2.7.3 EFFECTS ON THE EARTH 40
REFERENCES 41
3 COPING WITH OXYGEN 43
3.1 THE IMPACT OF OXYGENATION ON AN ANAEROBIC WORLD 43
3.2 PRODUCTION OF REACTIVE OXYGEN SPECIES 44
3.3 COPING WITH REACTIVE OXYGEN SPECIES 47
3.3.1 SCAVENGER MOLECULES 47
3.3.2 ENZYMES FOR DETOXIFICATION OF ROS 49
3.3.3 ANTIOXIDANT ENZYME SYSTEMS 51
3.4 HOW TO AVOID REACTIVE OXYGEN SPECIES? 52
3.5 EVOLVING DEFENSE STRATEGIES 53
3.5.1 AGGREGATION FOR DEFENSE 53
3.5.2 MELANIN 54
3.5.3 OXYGEN TRANSPORT PROTEINS PREVENT CREATION OF OXYGEN RADICAIS 55
3.6 REACTIVE OXYGEN SPECIES AS CELLULAR SIGNALS 56
3.7 DIOXYGEN AS A SIGNAL: OXYGEN SENSOR 56
3.8 SUMMARY: REACTIVE OXYGEN SPECIES AND LIFE 57
REFERENCES 58
4 AEROBIC METABOLISM: BENEFITS FROM AN OXYGENATED WORLD 61 4. 1 THE
ADVANTAGE TO BEING AEROBIC 61
4.2 EVOLUTION OF AN AEROBIC METABOLISM 62
4.2.1 SPECIAL MECHANISMS NEEDED FOR AEROBIC METABOLISM 62 4.2.2 WHEN AND
HOW DID AEROBES ANSE? 63
4.3 EUKARYOTES: THE NEXT STEP IN EVOLUTION 67
4.3.1 DISTINCTION BETWEEN PROKARYOTES AND EUKARYOTES 67 4.3.2 THE
SYMBIOTIC HYPOTHESIS 67
4.4 THE LAST GREAT LEAP: MULTICELLULAR ORGANISMS, "METAZOANS" 69 4.4.1
WHEN, WHY, AND HOW? 69
4.4.2 COLLAGEN AND CHOLESTERIN 70
4.4.3 HALF A BILLION YEARS OF STASIS? 71
4.4.4 EMERGENCE AND EXTINCTION OF THE EDIACARAN FAUNA 72 4.4.5 THE
BILATERAL BODY PLAN 73
4.4.6 THE "CAMBRIAN EXPLOSION": FAET OR ARTIFACT? 74
REFERENCES 76
5 FACILITATED OXYGEN TRANSPORT 79
5.1 HOW TO DELIVER DIOXYGEN TO ANIMAL TISSUES? 79
5.2 MODES OF DELIVERY 80
IMAGE 3
CONTENTS
5.2.1 DIFFUSION FROM THE SURFACE 80
5.2.2 TRANSPORT VIA BLOOD AS A DISSOLVED GAS 81
5.2.3 OXYGEN TRANSPORT PROTEINS: WHAT THEY MUST DO? 82 5.3 MODES OF
DIOXYGEN BINDING TO OXYGEN TRANSPORT PROTEINS 84 5.3.1 COOPERATIVE AND
NONCOOPERATIVE BINDING 84
5.3.2 HOW DOES COOPERATIVITY WORK?: MODELS FOR ALLOSTERY 86 5.3.3
SELF-ASSEMBLY AND NESTING 88
5.3.4 WHY COMPLEX MULTISUBUNIT OXYGEN TRANSPORT PROTEINS? 89 5.4
MODULATION OF DIOXYGEN DELIVERY BY OXYGEN TRANSPORT PROTEINS:
HETEROALLOSTERY 89
5.4.1 MODULATION BY THE PRODUCTS OF ANAEROBIC METABOLISM: THE BOHR
EFFECT 90
5.4.2 THE HAIDANE EFFECT 90
5.4.3 THE ROOT EFFECT 91
5.4.4 TEMPERATURE DEPENDENCE 92
5.4.5 EVOLUTIONARY ASPECTS OF REGULATION 93
5.5 DIVERSITY OF OXYGEN TRANSPORT PROTEINS 93
5.5.1 HEMOGLOBINS 94
5.5.2 HEMERYTHRINS 96
5.5.3 HEMOCYANINS 96
5.6 EVOLUTION OF OXYGEN TRANSPORT PROTEINS 99
5.7 WAS SNOWBALL EARTH A POSSIBLE TRIGGER FOR OPT EVOLUTION? 101 5.8
FROM WHAT PROTEINS DID OXYGEN TRANSPORT PROTEINS EVOLVE? 102 5.9 OXYGEN
TRANSPORT PROTEINS AND "INTELLIGENT DESIGN" 103 REFERENCES 103
CLIMATE OVER THE AGES; IS THE ENVIRONMENT STABLE? 107 6.1 CLIMATE AND
GLACIATIONS IN EARTH'S HISTORY 108
6.1.1 THE FIRST MASSIVE GLACIATIONS; THE HURONION EVENT: A ROLE FOR
METHANE? 108
6.1.2 LATER PROTEROZOIC GLACIATIONS 110
6.1.3 PHANEROZOIC CLIMATE AND GLACIATIONS 111
6.2 HOW DID LIFE SURVIVE GLACIATIONS? 116
6.3 MILESTONES OF LIFE IN THE PHANEROZOIC 118
6.4 INORGANIC CYCLING OF CARBON DIOXIDE 121
6.5 IS OUR ENVIRONMENT STABLE? 122
6.6 RECENT GLOBAL WARMING 124
REFERENCES 124
GLOBAL WARMING: HUMAN INTERVENTION IN WORLD CLIMATE 127 7.1 RECENT
CLIMATE CHANGES 127
7.2 PHYSICAL CONSEQUENCES OF GLOBAL WARMING 129
7.2.1 SHRINKING ICE AND GLACIERS 129
7.2.2 SEA LEVEL CHANGES 130
7.2.3 CHANGES IN OCEAN CURRENTS 131
IMAGE 4
X CONTENTS
7.2.4 LOCAL CLIMATE AND WEATHER 132
7.2.5 THE DANGER OF METHANE RELEASES 133
7.2.6 GREENHOUSE TO ICEHOUSE AND VICE VERSA? 133
7.3 HUMAN CONSEQUENCES OF GLOBAL WARMING 134
7.3.1 DIRECT CONSEQUENCES OF CO 2 AND TEMPERATURE INCREASE 134 7.3.2 SEA
LEVEL RISE 135
7.3.3 EXTREME WEATHER 136
7.3.4 EFFECTS ON AGRICULTURE 137
7.4 CONTROL OF GLOBAL WARMING 138
7.4.1 POSITIVE AND NEGATIVE NATURAL FEEDBACK MECHANISM 138 7.4.2 HUMAN
EFFECTS TO CONTROL GLOBAL WARMING 139
7.4.3 THELONGVIEW 139
REFERENCES 140
8 OXYGEN IN MEDICINE 143
8.1 HYPOXIA 143
8.1.1 HIGH-ALTITUDE HYPOXIA 144
8.1.2 HYPOXIA ARISING FROM MEDICAL CONDITIONS 145
8.2 OXIDATIVE STRESS 145
8.2.1 NATURE OF OXIDATIVE STRESS 145
8.2.2 SPECIAL EXAMPLES OF MEDICAL CONSEQUENCES OF OXIDATIVE STRESS 146
8.3 TREATMENT OF OXIDATIVE STRESS 149
8.4 BENEFICIAI ROLES OF ROS 150
8.4.1 SCN AND PRIMARY IMMUNE RESPONSE 150
8.4.2 NITRICOXIDE 151
REFERENCES 153
9 OXYGEN AND THE EXPLORATION OF THE UNIVERSE 157
9.1 WHAT IS ESSENTIAL FOR THE DEVELOPMENT OF LIFE AS WE KNOW IT? .
157 9.2 WHAT MAKES O 2 NECESSARY FOR COMPLEX LIFE ON HABITABLE PLANETS?
158
9.3 SEEKING EVIDENCE FOR EXTRATERRESTRIAL LIFE 158
9.4 LIFE IN THE SOLAR SYSTEM? 161
9.4.1 TERRESTRIAL PLANETS 161
9.4.2 ICYMOONS 163
9.5 OXYGEN SUPPLY PROBLEMS IN EXTRATERRESTRIAL VOYAGES 164 9.6 PROBLEMS
FACING EXTENDED EXTRATERRESTRIAL SETTLEMENT OR COLONIZATON 166
9.6.1 ADJUSTING THE PLANETARY ENVIRONMENT: TERRAFORMING 166 9.6.2
ADJUSTING THE ORGANISM: BIOFORMING 167
REFERENCES 168
INDEX 169 |
any_adam_object | 1 |
author | Decker, Heinz 1950-2018 Van Holde, K. E. 1928- |
author_GND | (DE-588)1076577253 (DE-588)120099993 |
author_facet | Decker, Heinz 1950-2018 Van Holde, K. E. 1928- |
author_role | aut aut |
author_sort | Decker, Heinz 1950-2018 |
author_variant | h d hd h k e v hke hkev |
building | Verbundindex |
bvnumber | BV036895896 |
classification_rvk | WD 5000 WH 2600 |
ctrlnum | (OCoLC)700518538 (DE-599)DNB1001790219 |
dewey-full | 576.85 |
dewey-hundreds | 500 - Natural sciences and mathematics |
dewey-ones | 576 - Genetics and evolution |
dewey-raw | 576.85 |
dewey-search | 576.85 |
dewey-sort | 3576.85 |
dewey-tens | 570 - Biology |
discipline | Biologie |
format | Book |
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indexdate | 2024-07-20T10:54:58Z |
institution | BVB |
isbn | 9783642131783 |
language | English |
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publisher | Springer |
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spelling | Decker, Heinz 1950-2018 Verfasser (DE-588)1076577253 aut Oxygen and the evolution of life Heinz Decker ; Kensal E.van Holde Heidelberg [u.a.] Springer 2011 XI, 172 S. Ill., graph. Darst., Kt. txt rdacontent n rdamedia nc rdacarrier Paläoklima (DE-588)4288494-9 gnd rswk-swf Atmosphäre (DE-588)4003397-1 gnd rswk-swf Evolution (DE-588)4071050-6 gnd rswk-swf Sauerstoff (DE-588)4051803-6 gnd rswk-swf Biophysik (DE-588)4006891-2 gnd rswk-swf Sauerstofftransport (DE-588)4179219-1 gnd rswk-swf Sauerstoff (DE-588)4051803-6 s Atmosphäre (DE-588)4003397-1 s Evolution (DE-588)4071050-6 s Sauerstofftransport (DE-588)4179219-1 s Paläoklima (DE-588)4288494-9 s DE-604 Biophysik (DE-588)4006891-2 s b DE-604 Van Holde, K. E. 1928- Verfasser (DE-588)120099993 aut text/html http://deposit.dnb.de/cgi-bin/dokserv?id=3459071&prov=M&dok_var=1&dok_ext=htm Inhaltstext DNB Datenaustausch application/pdf http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=020810988&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA Inhaltsverzeichnis |
spellingShingle | Decker, Heinz 1950-2018 Van Holde, K. E. 1928- Oxygen and the evolution of life Paläoklima (DE-588)4288494-9 gnd Atmosphäre (DE-588)4003397-1 gnd Evolution (DE-588)4071050-6 gnd Sauerstoff (DE-588)4051803-6 gnd Biophysik (DE-588)4006891-2 gnd Sauerstofftransport (DE-588)4179219-1 gnd |
subject_GND | (DE-588)4288494-9 (DE-588)4003397-1 (DE-588)4071050-6 (DE-588)4051803-6 (DE-588)4006891-2 (DE-588)4179219-1 |
title | Oxygen and the evolution of life |
title_auth | Oxygen and the evolution of life |
title_exact_search | Oxygen and the evolution of life |
title_full | Oxygen and the evolution of life Heinz Decker ; Kensal E.van Holde |
title_fullStr | Oxygen and the evolution of life Heinz Decker ; Kensal E.van Holde |
title_full_unstemmed | Oxygen and the evolution of life Heinz Decker ; Kensal E.van Holde |
title_short | Oxygen and the evolution of life |
title_sort | oxygen and the evolution of life |
topic | Paläoklima (DE-588)4288494-9 gnd Atmosphäre (DE-588)4003397-1 gnd Evolution (DE-588)4071050-6 gnd Sauerstoff (DE-588)4051803-6 gnd Biophysik (DE-588)4006891-2 gnd Sauerstofftransport (DE-588)4179219-1 gnd |
topic_facet | Paläoklima Atmosphäre Evolution Sauerstoff Biophysik Sauerstofftransport |
url | http://deposit.dnb.de/cgi-bin/dokserv?id=3459071&prov=M&dok_var=1&dok_ext=htm http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=020810988&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA |
work_keys_str_mv | AT deckerheinz oxygenandtheevolutionoflife AT vanholdeke oxygenandtheevolutionoflife |