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Lagrangian descriptions of marine larval dispersion

Marine Ecology Progress Series · 2003 · Vol. 260 · pp. 83–96
David A. SiegelBrian P. KinlanBrian GaylordSteven D. Gaines

Abstract

MEPS Marine Ecology Progress Series Contact the journal Facebook Twitter RSS Mailing List Subscribe to our mailing list via Mailchimp HomeLatest VolumeAbout the JournalEditorsTheme Sections MEPS 260:83-96 (2003) - doi:10.3354/meps260083 Lagrangian descriptions of marine larval dispersion D. A. Siegel1,*, B. P. Kinlan2, B. Gaylord3, S. D. Gaines2,3 1Insitute for Computational Earth System Science and Department of Geography, 2Department of Ecology, Evolution and Marine Biology, and 3Marine Science Institute, University of California, Santa Barbara, California 93106, USA *Email: [email protected] ABSTRACT: Many marine organisms are sedentary as adults and are redistributed between generations by the oceanic transport of planktonic larvae. In order to assess interactions among oceanographic and biological processes that determine larval dispersal patterns, we introduce a Lagrangian (or water-parcel-following) description of larval transport. This formalism is used to determine larval dispersal kernels (larval settlement probability distributions) for a range of ocean flows, planktonic larval durations and settlement pre-competency/competency periods. Paths of individual planktonic larval releases are modeled statistically and, by averaging over many individuals, ensemble estimates of larval dispersal are determined. Typical dispersal scales vary from a few km to >400 km. Modeled dispersal kernels are well explained using only a few readily available biological and oceanographic parameters, and derived dispersal scales agree well with population-genetic estimates, suggesting that the model has reasonable predictive power. An index for regional-scale self-seeding is presented, and is used as a tool to evaluate the efficiency of marine conservation areas. Finally, settlement patterns resulting from larval releases made over short times (days to months) should be comprised of a small number of discrete samples taken from the long-term averaged dispersal kernel. The resulting larval dispersal patterns will be quasi-random in both space and time, which will have important implications for the interpretation of settlement time series and the prediction of recruitment of sessile organisms. KEY WORDS: Larval transport · Dispersal kernels · Coastal circulation · Larval dispersal distance · Marine protected areas · Planktonic larval duration · Self-seeding Full text in pdf format Supplementary Appendix PreviousNextExport citation RSS - Facebook - Tweet - linkedIn Cited by Published in MEPS Vol. 260. Online publication date: September 30, 2003 Print ISSN: 0171-8630; Online ISSN: 1616-1599 Copyright © 2003 Inter-Research.

Marine and coastal plant biologyCoral and Marine Ecosystems StudiesMarine and fisheries researchBiological dispersalPlanktonLagrangianLarvaPopulationEcologyBiologyOceanographyEnvironmental scienceGeology

Funding

  • National Science Foundation
  • David and Lucile Packard Foundation
  • National Oceanic and Atmospheric Administration
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References
ISOLATION BY DISTANCE
Genetics · 1943 · 5,569 citations
PROPAGULE DISPERSAL DISTANCE AND THE SIZE AND SPACING OF MARINE RESERVES
Ecological Applications · 2003 · 906 citations
Long‐distance seed dispersal in plant populations
American Journal of Botany · 2000 · 1,173 citations
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