spacer gif spacer gif spacer gif spacer gif spacer gif
 QUICK SEARCH:   [advanced]


spacer gif
     Home     Help     Feedback     Subscriptions     Archive     Search     Table of Contents    

First published online September 19, 2006
Journal of Experimental Biology 209, 3708-3718 (2006)
Published by The Company of Biologists 2006
doi: 10.1242/jeb.02449
This Article
Right arrow Figures Only
Right arrow Full Text
Right arrow Full Text (PDF)
Right arrow Alert me when this article is cited
Right arrow Alert me if a correction is posted
Services
Right arrow Email this article to a friend
Right arrow Similar articles in this journal
Right arrow Similar articles in PubMed
Right arrow Alert me to new issues of the journal
Right arrow Download to citation manager
Right arrow reprints & permissions
Citing Articles
Right arrow Citing Articles via HighWire
Right arrow Citing Articles via Google Scholar
Google Scholar
Right arrow Articles by Hale, M. E.
Right arrow Articles by Westneat, M. W.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Hale, M. E.
Right arrow Articles by Westneat, M. W.
Social Bookmarking
 Add to CiteULike   Add to Complore   Add to Connotea   Add to Del.icio.us   Add to Digg   Add to Reddit   Add to Technorati   Add to Twitter  
What's this?

Pectoral fin coordination and gait transitions in steadily swimming juvenile reef fishes

Melina E. Hale1,2,3,*, Ryan D. Day1,{dagger}, Dean H. Thorsen1 and Mark W. Westneat4

1 Department of Organismal Biology and Anatomy, The University of Chicago, 1027 E. 57th Street, Chicago, IL 60637, USA
2 Committee on Neurobiology, The University of Chicago, Chicago, IL 60637, USA
3 Committee on Computational Neuroscience, The University of Chicago, Chicago, IL 60637, USA
4 Department of Zoology, Field Museum of Natural History, 1400 South Lakeshore Drive, Chicago, IL 60605, USA

* Author for correspondence (e-mail: mhale{at}uchicago.edu)

Accepted 20 July 2006

A common feature of animal locomotion is its organization into gaits with distinct patterns of movement and propulsor use for specific speeds. In terrestrial vertebrates, limb gaits have been extensively studied in diverse taxa and gait transitions have been shown to provide efficient locomotion across a wide range of speeds. In contrast, examination of gaits in fishes has focused on axial gaits and the transition between synchronous paired fin locomotion and axial propulsion. Because many fishes use their pectoral fins as their primary propulsors, we aimed to examine more broadly the use of pectoral fin gaits in locomotion. We used juvenile reef fishes in these experiments because their swimming could be recorded readily across a wide range of Reynolds numbers, which we thought would promote gait diversity. Based on previous work in larval fishes, we hypothesized that juveniles have alternating pectoral fin movements rather than the synchronous, or in-phase, coordination pattern of adults. In flow tank swim studies, we found that juvenile sapphire damselfish Pomacentrus pavo used two fin gaits during steady swimming. Below approximately 3 BL s-1, P. pavo primarily swam with alternating fin strokes 180° out of phase with one another. At speeds in the range of 3-4 BL s-1, they performed a gait transition to synchronous fin coordination. Between approximately 4 and 8 BL s-1, P. pavo primarily beat their fins synchronously. At around 8 BL s-1 there was another gait transition to body-caudal fin swimming, in which the pectoral fins were tucked against the body. We suggest that the transition from alternating to synchronous fin coordination occurs due to mechanical limits of gait performance rather than to energy efficiency, stability or transitions in hydrodynamic regime. To determine whether this gait transition was species-specific, we surveyed pectoral fin locomotion in juveniles from 11 species in three reef fish families (Pomacentridae, Labridae and Scaridae). We found that this gait transition occurred in every species examined, suggesting that it may be a common behavior of juvenile reef fishes. Greater inclusion of early life history stages in the study of fin-based locomotion should significantly enhance and inform the growing body of work on these behaviors.

Key words: gait, pectoral fin, development, functional morphology, locomotion, biomechanics


Add to CiteULike CiteULike   Add to Complore Complore   Add to Connotea Connotea   Add to Del.icio.us Del.icio.us   Add to Digg Digg   Add to Reddit Reddit   Add to Technorati Technorati   Add to Twitter Twitter    What's this?


This article has been cited by other articles:


Home page
J. Neurosci.Home page
S. A. Crone, G. Zhong, R. Harris-Warrick, and K. Sharma
In Mice Lacking V2a Interneurons, Gait Depends on Speed of Locomotion
J. Neurosci., May 27, 2009; 29(21): 7098 - 7109.
[Abstract] [Full Text] [PDF]


Home page
J. Exp. Biol.Home page
N. Danos and G. V. Lauder
The ontogeny of fin function during routine turns in zebrafish Danio rerio
J. Exp. Biol., October 1, 2007; 210(19): 3374 - 3386.
[Abstract] [Full Text] [PDF]




© The Company of Biologists Ltd 2006