chapter 14 macroevolution: the long run · 2016. 6. 2. · microevolution and macroevolution •...

44
Chapter 14 Macroevolution: the long run

Upload: others

Post on 30-Sep-2020

20 views

Category:

Documents


0 download

TRANSCRIPT

Page 1: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Chapter 14Macroevolution: the long run

Page 2: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Correlation vs. Causation

2

Page 3: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

3

Page 4: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Microevolution and macroevolution

• Microevolution: evolution occurring within populations – Adaptive and neutral changes in allele

frequencies • Macroevolution: evolution above the

species level – Origination, diversification, and extinction

Page 5: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Interplay between speciation and extinction determines diversity

D1 (diversity) + originations – extinctions = D2 (new diversity)

Page 6: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Calculating rates of origination and extinction

Page 7: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Definition of Biological Diversity

7

Number of subtaxa within a higher taxon

species diversitygeneric diversity

What might some problems be with measuring species diversity? Would they be more pronounced with genus diversity?

Page 8: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Diverse taxa have higher origination rate than extinction rate

α = origination rate; Ω = extinction rate"An inordinate fondness for beetles."

Page 9: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Extinction rate often tracks origination rate

Page 10: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Causes of decline in diversity

• Diversity can decline when extinction increases or origination decreases – Drop in origination rate contributed to dinosaur

extinction

Page 11: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Key Concepts

• Extinction occurs when the last member of a clade dies – Can be species or higher taxon

• Mass extinction in a clade can have two causes: – Drop in origination rate – Increase in extinction rate

Page 12: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Biogeography: the study of geographical patterns of diversity

Page 13: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Map of biogeographical regions

Page 14: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Clades can become isolated through vicariance

Page 15: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Marsupials evolved through a mix of vicariance and dispersal

Page 16: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Key Concepts

• Biogeography is a multidisciplinary field that explores the roles of geography and history in explaining the distribution of species

Page 17: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Estimating diversity through time is a complicated task

Page 18: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Chance fluctuations in diversity can produce trend-like patterns

Page 19: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Some ecological marine communities have become more diverse

Page 20: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Three “evolutionary faunas”

Crinoids

Page 21: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Caveats to diversity studies

• Most taxa studied are not species – Assignments to higher taxonomic groups

somewhat arbitrary • Phylogenetic relationships among groups

uncertain • Large-scale patterns may obscure

interesting regional patterns

Page 22: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Adaptive radiation in Hawaiian honeycreepers

Page 23: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Phylogenetic signatures of adaptive radiation

Page 24: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Adaptive radiation and convergent evolution

Page 25: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Adaptive radiation of animals

Page 26: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Rapid diversification of animals corresponds to major environmental changes

• Warming and retreat of glaciers • Oxygenation of ocean

Page 27: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Fossil record reveals how major transitions occurred

Page 28: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes
Page 29: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Key Concepts

• Most adaptive radiations involve exploitation of environments not occupied by competitors

• Key innovations can transform how organisms interact with their environment – Paves the way for adaptive radiation

Page 30: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Pace of extinctions

• Background extinction: the normal rate of extinction for a taxon or biota

• Mass extinction: a statistically significant increase above background extinction rate

Page 31: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Five large mass extinctions

You only need to now 2

Page 32: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Mass extinction can result from climate change

Page 33: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Rising carbon dioxide from volcanic activity may have led to Permian extinction

Page 34: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

K-T boundary extinction may have been caused by asteroid impact

Page 35: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Traces of impact along Mexican coast

Page 36: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes
Page 37: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Key Concepts

• The big five extinctions had different causes that impacted different organisms

Page 38: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Humans may be driving a sixth mass extinction

Page 39: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Habitat loss contributes to extinction

Page 40: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Current extinction rates are on par with previous mass extinctions

Page 41: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Increasing carbon dioxide correlates with warming temperatures

Page 42: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

42

Page 43: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

Key Concept

• Although a single extinction event may have minimal impacts on an ecosystem a mass extinction can have cascading effects

Page 44: Chapter 14 Macroevolution: the long run · 2016. 6. 2. · Microevolution and macroevolution • Microevolution: evolution occurring within populations – Adaptive and neutral changes

44

End Spring 2015