Stay the course: maintenance of consistent orientation by commuting penguins both underwater and at the water surface
Many marine vertebrates traverse more than hundreds of kilometres of the ocean. To efficiently achieve such long-distance movements, the ability to maintain orientation in a three-dimensional space is essential; however, it remains unevaluated in most species. In this study, we examined the bearing...
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Published in | Marine biology Vol. 170; no. 4; p. 42 |
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Main Authors | , , , |
Format | Journal Article |
Language | English |
Published |
Berlin/Heidelberg
Springer Berlin Heidelberg
01.04.2023
Springer Springer Nature B.V Springer Verlag |
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Abstract | Many marine vertebrates traverse more than hundreds of kilometres of the ocean. To efficiently achieve such long-distance movements, the ability to maintain orientation in a three-dimensional space is essential; however, it remains unevaluated in most species. In this study, we examined the bearing distributions of penguins undertaking long-distance foraging trips and compared their bearing consistency between underwater and at the water surface, as well as between night and day, to quantify their orientation ability. The subject species, king penguins,
Aptenodytes patagonicus
, from Possession Island, Crozet archipelago (46°25′S, 51°45′E; January to March 2011), showed high bearing consistency both during dives and at the water surface whilst commuting towards/from their main foraging area, the Antarctic polar front. Their bearing consistency was particularly high during and after shallow dives, irrespective of the time of day. Meanwhile, their bearings tended to vary during and after deep dives, particularly in the middle of the trip, probably owing to underwater foraging movements. However, the overall directions of deep dives during the commuting phases were similar to those of shallow dives and post-dive periods at the water surface. These findings indicate that king penguins employ compass mechanism(s) that are equivalently reliable both underwater and at the water surface, at any time of the day. This orientation ability appears to enable them to achieve long-distance trips under strong temporal constraints. Further studies on the fine-scale bearing distributions of other diving vertebrates are needed to better understand movement strategies in marine environments. |
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AbstractList | Many marine vertebrates traverse more than hundreds of kilometres of the ocean. To efficiently achieve such long-distance movements, the ability to maintain orientation in a three-dimensional space is essential; however, it remains unevaluated in most species. In this study, we examined the bearing distributions of penguins undertaking long-distance foraging trips and compared their bearing consistency between underwater and at the water surface, as well as between night and day, to quantify their orientation ability. The subject species, king penguins,
Aptenodytes patagonicus
, from Possession Island, Crozet archipelago (46°25′S, 51°45′E; January to March 2011), showed high bearing consistency both during dives and at the water surface whilst commuting towards/from their main foraging area, the Antarctic polar front. Their bearing consistency was particularly high during and after shallow dives, irrespective of the time of day. Meanwhile, their bearings tended to vary during and after deep dives, particularly in the middle of the trip, probably owing to underwater foraging movements. However, the overall directions of deep dives during the commuting phases were similar to those of shallow dives and post-dive periods at the water surface. These findings indicate that king penguins employ compass mechanism(s) that are equivalently reliable both underwater and at the water surface, at any time of the day. This orientation ability appears to enable them to achieve long-distance trips under strong temporal constraints. Further studies on the fine-scale bearing distributions of other diving vertebrates are needed to better understand movement strategies in marine environments. Many marine vertebrates traverse more than hundreds of kilometres of the ocean. To efficiently achieve such long-distance movements, the ability to maintain orientation in a three-dimensional space is essential; however, it remains unevaluated in most species. In this study, we examined the bearing distributions of penguins undertaking long-distance foraging trips and compared their bearing consistency between underwater and at the water surface, as well as between night and day, to quantify their orientation ability. The subject species, king penguins, Aptenodytes patagonicus, from Possession Island, Crozet archipelago (46°25′S, 51°45′E; January to March 2011), showed high bearing consistency both during dives and at the water surface whilst commuting towards/from their main foraging area, the Antarctic polar front. Their bearing consistency was particularly high during and after shallow dives, irrespective of the time of day. Meanwhile, their bearings tended to vary during and after deep dives, particularly in the middle of the trip, probably owing to underwater foraging movements. However, the overall directions of deep dives during the commuting phases were similar to those of shallow dives and post-dive periods at the water surface. These findings indicate that king penguins employ compass mechanism(s) that are equivalently reliable both underwater and at the water surface, at any time of the day. This orientation ability appears to enable them to achieve long-distance trips under strong temporal constraints. Further studies on the fine-scale bearing distributions of other diving vertebrates are needed to better understand movement strategies in marine environments. |
ArticleNumber | 42 |
Audience | Academic |
Author | Sato, Katsufumi Bost, Charles A. Shiomi, Kozue Handrich, Yves |
Author_xml | – sequence: 1 givenname: Kozue orcidid: 0000-0002-2614-9538 surname: Shiomi fullname: Shiomi, Kozue email: shiomikozue@gmail.com organization: Frontier Research Institute for Interdisciplinary Sciences, Tohoku University, Department of Ecological Developmental Adaptability Life Sciences, Graduate School of Life Sciences, Tohoku University – sequence: 2 givenname: Katsufumi surname: Sato fullname: Sato, Katsufumi organization: Atmosphere and Ocean Research Institute, University of Tokyo – sequence: 3 givenname: Charles A. surname: Bost fullname: Bost, Charles A. organization: Centre d’Etudes Biologiques de Chizé, UMR 7372 CNRS-Université de la Rochelle – sequence: 4 givenname: Yves surname: Handrich fullname: Handrich, Yves organization: CNRS, IPHC, UMR 7178, Université de Strasbourg |
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Keywords | Navigation Orientation Compass Bearing Diving bird Bearing Compass Diving bird Navigation Orientation |
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SubjectTerms | Analysis Antarctic convergence Antarctic front Antarctic region Aptenodytes patagonicus Archipelagoes Behavior Biomedical and Life Sciences Commuting Compasses Consistency Crozet Islands Distance Distribution Environmental Sciences Foraging Freshwater & Marine Ecology Growth King penguin Life Sciences Marine & Freshwater Sciences Marine biology Marine environment Microbiology Movements Oceanography Orientation Original Paper Polar fronts Seabirds Time of use Underwater Vertebrates Water Zoology |
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Title | Stay the course: maintenance of consistent orientation by commuting penguins both underwater and at the water surface |
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