Multitasking and the evolution of optimal clutch size in fluctuating environments

Adaptive studies of avian clutch size variation across environmental gradients have resulted in what has become known as the fecundity gradient paradox, the observation that clutch size typically decreases with increasing breeding season length along latitudinal gradients, but increases with increas...

Full description

Saved in:
Bibliographic Details
Main Authors: Liu, Ming, Rubenstein, Dustin R., Cheong, Siew-Ann, Shen, Sheng-Feng
Other Authors: School of Physical and Mathematical Sciences
Format: Article
Language:English
Published: 2018
Subjects:
Online Access:https://hdl.handle.net/10356/89107
http://hdl.handle.net/10220/46120
Tags: Add Tag
No Tags, Be the first to tag this record!
Institution: Nanyang Technological University
Language: English
id sg-ntu-dr.10356-89107
record_format dspace
spelling sg-ntu-dr.10356-891072023-02-28T19:35:24Z Multitasking and the evolution of optimal clutch size in fluctuating environments Liu, Ming Rubenstein, Dustin R. Cheong, Siew-Ann Shen, Sheng-Feng School of Physical and Mathematical Sciences Complexity Institute DRNTU::Science::Physics Bet-hedging Strategy Breeding Season Length Adaptive studies of avian clutch size variation across environmental gradients have resulted in what has become known as the fecundity gradient paradox, the observation that clutch size typically decreases with increasing breeding season length along latitudinal gradients, but increases with increasing breeding season length along elevational gradients. These puzzling findings challenge the common belief that organisms should reduce their clutch size in favor of additional nesting attempts as the length of the breeding season increases, an approach typically described as a bet‐hedging strategy. Here, we propose an alternative hypothesis—the multitasking hypothesis—and show that laying smaller clutches represents a multitasking strategy of switching between breeding and recovery from breeding. Both our individual‐based and analytical models demonstrate that a small clutch size strategy is favored during shorter breeding seasons because less time and energy are wasted under the severe time constraints associated with breeding multiply within a season. Our model also shows that a within‐generation bet‐hedging strategy is not favored by natural selection, even under a high risk of predation and in long breeding seasons. Thus, saving time—wasting less time as a result of an inability to complete a breeding cycle at the end of breeding season—is likely to be the primary benefit favoring the evolution of small avian clutch sizes during short breeding seasons. We also synthesize the seasonality hypothesis (pronounced seasonality leads to larger clutch size) and clutch size‐dependent predation hypothesis (larger clutch size causes higher predation risks) within our multitasking hypothesis to develop an integrative model to help resolve the paradox of contrasting patterns of clutch size along elevational and latitudinal gradients. Ultimately, our models provide a new perspective for understanding life‐history evolution under fluctuating environments. Published version 2018-09-27T05:50:33Z 2019-12-06T17:17:59Z 2018-09-27T05:50:33Z 2019-12-06T17:17:59Z 2018 Journal Article Liu, M., Rubenstein, D. R., Cheong, S.-A., & Shen, S.-F. (2018). Multitasking and the evolution of optimal clutch size in fluctuating environments. Ecology and Evolution, 8(17), 8803-8817. doi:10.1002/ece3.4364 https://hdl.handle.net/10356/89107 http://hdl.handle.net/10220/46120 10.1002/ece3.4364 en Ecology and Evolution © 2018 The Authors. Ecology and Evolution published by John Wiley & Sons Ltd. This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited. 15 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Science::Physics
Bet-hedging Strategy
Breeding Season Length
spellingShingle DRNTU::Science::Physics
Bet-hedging Strategy
Breeding Season Length
Liu, Ming
Rubenstein, Dustin R.
Cheong, Siew-Ann
Shen, Sheng-Feng
Multitasking and the evolution of optimal clutch size in fluctuating environments
description Adaptive studies of avian clutch size variation across environmental gradients have resulted in what has become known as the fecundity gradient paradox, the observation that clutch size typically decreases with increasing breeding season length along latitudinal gradients, but increases with increasing breeding season length along elevational gradients. These puzzling findings challenge the common belief that organisms should reduce their clutch size in favor of additional nesting attempts as the length of the breeding season increases, an approach typically described as a bet‐hedging strategy. Here, we propose an alternative hypothesis—the multitasking hypothesis—and show that laying smaller clutches represents a multitasking strategy of switching between breeding and recovery from breeding. Both our individual‐based and analytical models demonstrate that a small clutch size strategy is favored during shorter breeding seasons because less time and energy are wasted under the severe time constraints associated with breeding multiply within a season. Our model also shows that a within‐generation bet‐hedging strategy is not favored by natural selection, even under a high risk of predation and in long breeding seasons. Thus, saving time—wasting less time as a result of an inability to complete a breeding cycle at the end of breeding season—is likely to be the primary benefit favoring the evolution of small avian clutch sizes during short breeding seasons. We also synthesize the seasonality hypothesis (pronounced seasonality leads to larger clutch size) and clutch size‐dependent predation hypothesis (larger clutch size causes higher predation risks) within our multitasking hypothesis to develop an integrative model to help resolve the paradox of contrasting patterns of clutch size along elevational and latitudinal gradients. Ultimately, our models provide a new perspective for understanding life‐history evolution under fluctuating environments.
author2 School of Physical and Mathematical Sciences
author_facet School of Physical and Mathematical Sciences
Liu, Ming
Rubenstein, Dustin R.
Cheong, Siew-Ann
Shen, Sheng-Feng
format Article
author Liu, Ming
Rubenstein, Dustin R.
Cheong, Siew-Ann
Shen, Sheng-Feng
author_sort Liu, Ming
title Multitasking and the evolution of optimal clutch size in fluctuating environments
title_short Multitasking and the evolution of optimal clutch size in fluctuating environments
title_full Multitasking and the evolution of optimal clutch size in fluctuating environments
title_fullStr Multitasking and the evolution of optimal clutch size in fluctuating environments
title_full_unstemmed Multitasking and the evolution of optimal clutch size in fluctuating environments
title_sort multitasking and the evolution of optimal clutch size in fluctuating environments
publishDate 2018
url https://hdl.handle.net/10356/89107
http://hdl.handle.net/10220/46120
_version_ 1759855460813373440