Skip to main navigation Skip to search Skip to main content

Size-assortative mating and sexual size dimorphism are predictable from simple mechanics of mate-grasping behavior

  • Chang S. Han
  • , Piotr G. Jablonski
  • , Beobkyun Kim
  • , Frank C. Park

Research output: Contribution to journalArticlepeer-review

35 Citations (Scopus)

Abstract

Background. A major challenge in evolutionary biology is to understand the typically complex interactions between diverse counter-balancing factors of Darwinian selection for size assortative mating and sexual size dimorphism. It appears that rarely a simple mechanism could provide a major explanation of these phenomena. Mechanics of behaviors can predict animal morphology, such like adaptations to locomotion in animals from various of taxa, but its potential to predict size-assortative mating and its evolutionary consequences has been less explored. Mate-grasping by males, using specialized adaptive morphologies of their forelegs, midlegs or even antennae wrapped around female body at specific locations, is a general mating strategy of many animals, but the contribution of the mechanics of this wide-spread behavior to the evolution of mating behavior and sexual size dimorphism has been largely ignored. Results. Here, we explore the consequences of a simple, and previously ignored, fact that in a grasping posture the position of the male's grasping appendages relative to the female's body is often a function of body size difference between the sexes. Using an approach taken from robot mechanics we model coercive grasping of females by water strider Gerris gracilicornis males during mating initiation struggles. We determine that the male optimal size (relative to the female size), which gives the males the highest grasping force, properly predicts the experimentally measured highest mating success. Through field sampling and simulation modeling of a natural population we determine that the simple mechanical model, which ignores most of the other hypothetical counter-balancing selection pressures on body size, is sufficient to account for size-assortative mating pattern as well as species-specific sexual dimorphism in body size of G. gracilicornis. Conclusion. The results indicate how a simple and previously overlooked physical mechanism common in many taxa is sufficient to account for, or importantly contribute to, size-assortative mating and its consequences for the evolution of sexual size dimorphism.

Original languageEnglish
Article number359
JournalBMC Evolutionary Biology
Volume10
Issue number1
DOIs
Publication statusPublished - 2010

Bibliographical note

Funding Information:
This work was funded by grants (3344-20070022, 3344-20080067, 3344-20090054) from the College of Natural Sciences, Seoul National University, by Developing Nations Research Grant from the Animal Behavior Society to CH, by a grant for outstanding graduation thesis from the Academic Writing Lab in Seoul National University to CH, by Korea Research Foundation Grants (No. KRF-2007-412-J03001, 0409-20080118, and 0409-20090137), from the funds of the second stage of the Brain Korea 21 Project 2009, by the Converging Research Center Program through the National Research Foundation of Korea(NRF) funded by the Ministry of Education, Science and Technology (No. 2009-0082824), and a grant from the Center for Intelligent Robotics, KIST-CIR, AIM, ROSAEC, IAMD, and the SNU Engineering Research Foundation for FCP and BK, as well as by private funds of the authors.

Fingerprint

Dive into the research topics of 'Size-assortative mating and sexual size dimorphism are predictable from simple mechanics of mate-grasping behavior'. Together they form a unique fingerprint.

Cite this