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Advances in the aquatic sciences
RESEARCH ARTICLE (Open Access)

Response of turtle hatchlings to light emitting diodes at sea

Phillipa Wilson https://orcid.org/0000-0002-6293-9879 A B * , Kellie Pendoley C , Scott Whiting D , Charitha Pattiaratchi A , Mark Meekan B and Michele Thums B
+ Author Affiliations
- Author Affiliations

A Oceans Graduate School and the UWA Oceans Institute, The University of Western Australia, 35 Stirling Highway, Perth, WA 6009, Australia.

B Australian Institute of Marine Science, Indian Ocean Marine Research Centre, The University of Western Australia (M096), 35 Stirling Highway, Perth, WA 6009, Australia.

C Pendoley Environmental, 12A Pitt Way, Booragoon, WA 6154, Australia.

D Marine Science Program, Department of Biodiversity, Conservation and Attractions, 17 Dick Perry Avenue, Kensington, WA 6151, Australia.

* Correspondence to: p.wilson@aims.gov.au

Handling Editor: Max Finlayson

Marine and Freshwater Research 73(5) 689-702 https://doi.org/10.1071/MF21217
Submitted: 26 July 2021  Accepted: 27 December 2021   Published: 25 February 2022

© 2022 The Author(s) (or their employer(s)). Published by CSIRO Publishing. This is an open access article distributed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License (CC BY-NC-ND)

Abstract

It is well known that light pollution disrupts the early dispersal of marine turtles. But now, light emitting diodes (LEDs) are replacing traditional lights, however, we know little about how they influence hatchling dispersal. Here, we used acoustic telemetry to assess the early in-water dispersal and predation rates of hatchlings in response to different intensities of LEDs ranging from 10 to 120 W. We found no effect of LEDs on hatchling bearing when lights were in the direction they dispersed under ambient conditions. When LEDs were not in their usual direction of travel, variability in mean bearing increased, and a change in bearing occurred with the highest light intensity. We found weak evidence that predation was also higher at this light intensity compared to ambient, and also in two of the lower light intensities (10 and 30 W), but only on one experimental night. We were unable to find a relationship between hatchling speed and time spent in the tracking area with light intensity. However, reduced sample sizes (due to predation) might have affected our ability to detect effects. Although more effort is required to increase the confidence in our findings, LEDs disrupted hatchling dispersal and are therefore likely to negatively affect their survival.

Keywords: acoustic telemetry, ALAN, artificial light, coastal development, flatback turtle, in-water movement, light emitting diodes (LEDs), light intensity, Natator depressus, turtle hatchlings.


References

Able, KP (1991). Common themes and variations in animal orientation systems. American Zoologist 31, 157–167.
Common themes and variations in animal orientation systems.Crossref | GoogleScholarGoogle Scholar |

Batschelet E (1981) ‘Circular Statistics in Biology.’ (Academic Press: London, UK)

Becker, A, Whitfield, AK, Cowley, PD, Jarnegren, J, and Naesje, TF (2013). Potential effects of artificial light associated with anthropogenic infrastructure on the abundance and foraging behaviour of estuary-associated fishes. Journal of Applied Ecology 50, 43–50.
Potential effects of artificial light associated with anthropogenic infrastructure on the abundance and foraging behaviour of estuary-associated fishes.Crossref | GoogleScholarGoogle Scholar |

Berens, P (2009). CircStat: a Matlab toolbox for circular statistics. Journal of Statistical Software 31, 1–21.
CircStat: a Matlab toolbox for circular statistics.Crossref | GoogleScholarGoogle Scholar |

Bivand R, Pebesma E, Gomez-Rubio V (2013) ‘Applied spatial data analysis with R’, 2nd edn. (Springer: New York, NY, USA)

Bolton, D, Mayer-Pinto, M, Clark, GF, Dafforna, KA, Brassil, WA, Becker, A, and Johnston, EL (2017). Coastal urban lighting has ecological consequences for multiple trophic levels under the sea. The Science of the Total Environment 576, 1–9.
Coastal urban lighting has ecological consequences for multiple trophic levels under the sea.Crossref | GoogleScholarGoogle Scholar | 27780095PubMed |

Bryhn, AC, Konigson, SJ, Lunneryd, S-G, and Bergenius, MAJ (2014). Green lamps as visual stimuli affect the catch efficiency of floating cod (Gadus morhua) pots in the Baltic sea. Fisheries Research 157, 187–192.
Green lamps as visual stimuli affect the catch efficiency of floating cod (Gadus morhua) pots in the Baltic sea.Crossref | GoogleScholarGoogle Scholar |

Cinzano, P, Falchi, F, and Elvidge, CD (2001). The first World Atlas of the artificial night sky brightness. Monthly Notices of the Royal Astronomical Society 328, 689–707.
The first World Atlas of the artificial night sky brightness.Crossref | GoogleScholarGoogle Scholar |

Cruz, LM, Shillinger, GL, Robinson, NJ, Tomillo, PS, and Paladino, FV (2018). Effect of light intensity and wavelength on the in-water orientation of olive ridley turtle hatchlings. Journal of Experimental Marine Biology and Ecology 505, 52–56.
Effect of light intensity and wavelength on the in-water orientation of olive ridley turtle hatchlings.Crossref | GoogleScholarGoogle Scholar |

Department of Biodiversity, Conservation and Attractions (2017) ‘North West Shelf Flatback Turtle Conservation Program Strategic Conservation Plan 2014–21.’ (Department of Biodiversity, Conservation and Attractions: Perth, Western Australia)

Dudley, JM, Erkintalo, M, and Genty, G (2015). Environment, wildlife and LED illumination. Optics and Photonics News 26, 42–47.
Environment, wildlife and LED illumination.Crossref | GoogleScholarGoogle Scholar |

Erb, V, and Wyneken, J (2019). Nest-to-surf mortality of loggerhead sea turtle (Caretta caretta) hatchlings on Florida’s east coast. Frontiers in Marine Science 6, 271.
Nest-to-surf mortality of loggerhead sea turtle (Caretta caretta) hatchlings on Florida’s east coast.Crossref | GoogleScholarGoogle Scholar |

Fisher, R, Wilson, SK, Sin, TM, Lee, AC, and Langlois, TJ (2018). A simple function for full subsets multiple regression in ecology with R. Ecology and Evolution 8, 6104–6113.
A simple function for full subsets multiple regression in ecology with R.Crossref | GoogleScholarGoogle Scholar | 29988441PubMed |

Franz, M, and Wenzl, FP (2017). Critical review on life cycle inventories and environmental assessments of LED-lamps. Critical Reviews in Environmental Science and Technology 47, 2017–2078.
Critical review on life cycle inventories and environmental assessments of LED-lamps.Crossref | GoogleScholarGoogle Scholar |

Fritsches, KA (2012). Australian loggerhead sea turtle hatchlings do not avoid yellow. Marine and Freshwater Behaviour and Physiology 45, 79–89.
Australian loggerhead sea turtle hatchlings do not avoid yellow.Crossref | GoogleScholarGoogle Scholar |

Gaston, KJ, Davies, TW, Bennie, J, and Hopkins, J (2012). Reducing the ecological consequences of night-time light pollution: options and developments. Journal of Applied Ecology 49, 1256–1266.
Reducing the ecological consequences of night-time light pollution: options and developments.Crossref | GoogleScholarGoogle Scholar |

Glenn L (1996) The consequences of human manipulation of the coastal environment on hatchling loggerhead sea turtles (Caretta caretta, L). In ‘Proceedings of the Sixteenth Annual Symposium on Sea Turtle Biology and Conservation’, 28 February–1 March 1996, Hilton Head, SC, USA. (Eds R Byles, Y Fernandez) pp. 58–59. (NOAA)

Guthrie DM (1986) Role of vision in fish behaviour. In ‘The behaviour of teleost fishes’. (Ed. TJ Pilcher) pp. 75–113. (Billing & Sons Limited: Worcester, UK)

Gyuris, E (1994). The rate of predation by fishes on hatchlings of the green turtle (Chelonia mydas). Coral Reefs 13, 137–144.
The rate of predation by fishes on hatchlings of the green turtle (Chelonia mydas).Crossref | GoogleScholarGoogle Scholar |

Harewood, A, and Horrocks, J (2008). Impacts of coastal development on hawksbill hatchling survival and swimming success during the initial offshore migration. Biological Conservation 141, 394–401.
Impacts of coastal development on hawksbill hatchling survival and swimming success during the initial offshore migration.Crossref | GoogleScholarGoogle Scholar |

Hecht, J (2016). The early-adopter blues. IEEE Spectrum 53, 44–50.

Hooker D (1911) Certain reactions to color in the young loggerhead turtle. In ‘Papers from the Marine Biological Laboratory at Tortugas Laboratory of the Carnegie Institution of Washington’. pp. 69–76. (Carnegie Institution of Washington: Philadelphia, PA, USA)

Kamrowski, RL, Limpus, C, Pendoley, K, and Hamann, M (2014). Influence of industrial light pollution on the sea-finding behaviour of flatback turtle hatchlings. Wildlife Research 41, 421–434.
Influence of industrial light pollution on the sea-finding behaviour of flatback turtle hatchlings.Crossref | GoogleScholarGoogle Scholar |

Karnad, D, Isvaran, K, Kar, CS, and Shanker, K (2009). Lighting the way: Towards reducing misorientation of olive ridley hatchlings due to artificial lighting at Rushikulya, India. Biological Conservation 142, 2083–2088.
Lighting the way: Towards reducing misorientation of olive ridley hatchlings due to artificial lighting at Rushikulya, India.Crossref | GoogleScholarGoogle Scholar |

Limpus, CJ (1971). The flatback turtle, Chelonia depressa Garman in Southeast Queensland, Australia. Herpetologica 27, 431–446.

Lohmann, KJ, and Lohmann, CMF (1992). Orientation to oceanic waves by green turtle hatchlings. The Journal of Experimental Biology 171, 1–13.
Orientation to oceanic waves by green turtle hatchlings.Crossref | GoogleScholarGoogle Scholar |

Lohmann, KJ, and Lohmann, CMF (1996). Orientation and open-sea navigation in sea turtles. The Journal of Experimental Biology 199, 73–81.
Orientation and open-sea navigation in sea turtles.Crossref | GoogleScholarGoogle Scholar |

Lohmann, KJ, Salmon, M, and Wyneken, J (1990). Functional autonomy of land and sea orientation systems in sea turtle hatchlings. The Biological Bulletin 179, 214–218.
Functional autonomy of land and sea orientation systems in sea turtle hatchlings.Crossref | GoogleScholarGoogle Scholar | 29314980PubMed |

Lohmann KJ, Witherington B, Lohmann CM, Salmon M (1997) Orientation, navigation, and natal beach homing in sea turtles. In ‘The Biology of Sea Turtles. Vol. 1’. (Eds PL Lutz, JA Musick) pp. 107–136. (CRC Press, Inc.: Boca Raton, FL, USA)

Longcore, T, and Rich, C (2004). Ecological light pollution. Frontiers in Ecology and the Environment 2, 191–198.
Ecological light pollution.Crossref | GoogleScholarGoogle Scholar |

Longcore, T, Aldern, HL, Eggers, JF, Flores, S, Franco, L, Hirshfield-Yamanishi, E, Petrinec, LN, Yan, WA, and Barroso, AM (2015). Tuning the white light spectrum of light emitting diode lamps to reduce attraction of nocturnal arthropods. Philosophical Transactions of the Royal Society of London. Series B, Biological Sciences 370, 20140125.
Tuning the white light spectrum of light emitting diode lamps to reduce attraction of nocturnal arthropods.Crossref | GoogleScholarGoogle Scholar | 25780237PubMed |

Lythgoe, JN, and Partridge, JC (1989). Visual pigments and the acquisition of visual information. The Journal of Experimental Biology 146, 1–20.
Visual pigments and the acquisition of visual information.Crossref | GoogleScholarGoogle Scholar | 2689557PubMed |

Manning, EL, Cate, HS, and Lohmann, KJ (1997). Discrimination of ocean wave features by hatchling loggerhead sea turtles, Caretta caretta. Marine Biology 127, 539–544.
Discrimination of ocean wave features by hatchling loggerhead sea turtles, Caretta caretta.Crossref | GoogleScholarGoogle Scholar |

Marchesan, M, Spoto, M, Verginella, L, and Ferrero, EA (2005). Behavioural effects of artificial light on fish species of commercial interest. Fisheries Research 73, 171–185.
Behavioural effects of artificial light on fish species of commercial interest.Crossref | GoogleScholarGoogle Scholar |

McFarlane, RW (1963). Disorientation of loggerhead hatchlings by artificial road lighting. Copeia 1963, 153.
Disorientation of loggerhead hatchlings by artificial road lighting.Crossref | GoogleScholarGoogle Scholar |

Minnaar, C, Boyles, JG, Minnaar, IA, Sole, CL, and McKechnice, AE (2015). Stacking the odds: light pollution may shift the balance in an ancient predator–prey arms race. Journal of Applied Ecology 52, 522–531.
Stacking the odds: light pollution may shift the balance in an ancient predator–prey arms race.Crossref | GoogleScholarGoogle Scholar |

Okuyama, J, Abe, O, Nishizawa, H, Kobayashhi, M, Yoseda, K, and Arai, N (2009). Ontogeny of the dispersal migration of green turtle (Chelonia mydas) hatchlings. Journal of Experimental Marine Biology and Ecology 379, 43–50.
Ontogeny of the dispersal migration of green turtle (Chelonia mydas) hatchlings.Crossref | GoogleScholarGoogle Scholar |

Osovsky, N, and Shettleworth, SJ (1968). Wavelength preferences and brightness cues in the water finding behaviour of sea turtles. Behaviour 32, 211–257.
Wavelength preferences and brightness cues in the water finding behaviour of sea turtles.Crossref | GoogleScholarGoogle Scholar |

Pawson, SM, and Bader, MK-F (2014). LED lighting increases the ecological impact of light pollution irrespective of colour temperature. Ecological Applications 24, 1561–1568.
LED lighting increases the ecological impact of light pollution irrespective of colour temperature.Crossref | GoogleScholarGoogle Scholar | 29210222PubMed |

Pendoley K (2005) Sea turtles and the environmental management of industrial activities in north west Western Australia. Ph.D thesis, Murdoch University, Perth, WA, Australia.

Pendoley, K, and Kamrowski, RL (2015). Influence of horizon elevation on the sea-finding behaviour of hatchling flatback turtles exposed to artificial light glow. Marine Ecology Progress Series 529, 279–288.
Influence of horizon elevation on the sea-finding behaviour of hatchling flatback turtles exposed to artificial light glow.Crossref | GoogleScholarGoogle Scholar |

Pendoley, KL, Bell, CD, McCracken, R, Ball, KR, Sherborne, J, Oates, JE, Becker, P, Vitenbergs, A, and Whittock, PA (2014). Reproductive biology of the flatback turtle Natator depressus in Western Australia. Endangered Species Research 23, 115–123.
Reproductive biology of the flatback turtle Natator depressus in Western Australia.Crossref | GoogleScholarGoogle Scholar |

Philibosian, R (1976). Disorientation of hawskbill turtle hatchlings, Eretmochelys imbricata, by stadium lights. Copeia 1976, 824.
Disorientation of hawskbill turtle hatchlings, Eretmochelys imbricata, by stadium lights.Crossref | GoogleScholarGoogle Scholar |

Pilcher NJ, Enderby S, Stringell T, Bateman L (2000) Nearshore turtle hatchling distribution and predation. In ‘Sea turtles of the Indo-Pacific: research management and conservation. Proceedings of the Second ASEAN Symposium and Workshop on Sea Turtle Biology and Conservation’. (Eds N Pilcher, G Ismail) pp. 151–166. (ASEAN Academic Press: London, UK)

Raap, T, Pinxten, R, and Eens, M (2015). Light pollution disrupts sleep in free-living animals. In Nature. Scientific Reports 5, 13557.
Light pollution disrupts sleep in free-living animals. In Nature.Crossref | GoogleScholarGoogle Scholar | 26337732PubMed |

Reising, M, Salmon, M, and Stapleton, S (2015). Hawksbill nest site selection affects hatchling survival at a rookery in Antigua, West Indies. Endangered Species Research 29, 179–187.
Hawksbill nest site selection affects hatchling survival at a rookery in Antigua, West Indies.Crossref | GoogleScholarGoogle Scholar |

Robertson, K, Booth, DT, and Limpus, CJ (2016). An assessment of ‘turtle-friendly’ lights on the sea-finding behaviour of loggerhead turtle hatchlings (Caretta caretta). Wildlife Research 43, 27–37.
An assessment of ‘turtle-friendly’ lights on the sea-finding behaviour of loggerhead turtle hatchlings (Caretta caretta).Crossref | GoogleScholarGoogle Scholar |

Rodríguez, A, Holmes, ND, Ryan, PG, Wilson, K, Faulquier, L, Murillo, Y, Raine, AF, Penniman, JF, Neves, V, Rodrıguez, B, Negro, JJ, Chiaradia, A, Dann, P, Anderson, T, Metzger, B, Shirai, M, Deppe, L, Wheeler, J, Hodum, P, Gouveia, C, Carmo, V, Carreira, GP, Delgado-Alburqueque, L, Guerra-Correa, C, Couzi, F, Travers, M, and Le Corre, M (2017). Seabird mortality induced by land‐based artificial lights. Conservation Biology 31, 986–1001.
Seabird mortality induced by land‐based artificial lights.Crossref | GoogleScholarGoogle Scholar | 28151557PubMed |

Russart, KLG, and Nelson, RJ (2018). Artificial light at night alters behavior in laboratory and wild animals. Journal of Experimental Zoology. Part A, Ecological and Integrative Physiology 329, 401–408.
Artificial light at night alters behavior in laboratory and wild animals.Crossref | GoogleScholarGoogle Scholar | 29806740PubMed |

Salmon, M (2003). Artificial night lighting and sea turtles. Biologist 50, 163–168.

Salmon M (2005) Protecting sea turtles from artificial night lighting at Florida’s oceanic beaches. In ‘Ecological Consequences of Artificial Night Lighting’. (Eds C Rich, T Longcore) pp. 141–168. (Island Press: Washington, DC, USA)

Salmon, M, and Wyneken, J (1994). Orientation by hatchling sea turtles: mechanisms and implications. Herpetological Natural History 2, 13–24.

Salmon, M, Wyneken, J, Fritz, E, and Lucas, M (1992). Seafinding by hatchling sea turtles: role of brightness, silhouette and beach slope as orientation cues. Behaviour 122, 56–77.
Seafinding by hatchling sea turtles: role of brightness, silhouette and beach slope as orientation cues.Crossref | GoogleScholarGoogle Scholar |

Sella, KN, Salmon, M, and Witherington, BE (2006). Filtered streetlights attract hatchling marine turtles. Chelonian Conservation and Biology 5, 255–261.
Filtered streetlights attract hatchling marine turtles.Crossref | GoogleScholarGoogle Scholar |

Small, C, and Nicholls, RJ (2003). A global analysis of human settlement in coastal zones. Journal of Coastal Research 19, 584–599.

Stewart, KR, and Wyneken, J (2004). Predation risk to loggerhead hatchlings at a high-density nesting beach in Southeast Florida. Bulletin of Marine Science 74, 325–335.

Thums, M, Whiting, SD, Reisser, J, Pendoley, KL, Pattiaratchi, CB, Proietti, M, Hetzel, Y, Fisher, R, and Meekan, MG (2016). Artificial light on water attracts turtle hatchlings during their near shore transit. Royal Society Open Science 3, 160142.
Artificial light on water attracts turtle hatchlings during their near shore transit.Crossref | GoogleScholarGoogle Scholar | 27293795PubMed |

Verheijen, FJ (1958). The mechanisms of the trapping effect of artificial light sources upon animals. Netherlands Journal of Zoology 13, 1–107.

Verheijen, FJ (1985). Photopollution: artificial light optic spatial control systems fail to cope with. Indicents, caustations, remedies. Experimental Biology 44, 1–18.
| 3896840PubMed |

Verheijen, FJ, and Wildschut, JT (1973). The photic orientation of hatchling sea turtles during water finding behaviour. Netherlands Journal of Sea Research 7, 53–67.
The photic orientation of hatchling sea turtles during water finding behaviour.Crossref | GoogleScholarGoogle Scholar |

Whelan, CL, and Wyneken, J (2007). Estimating predation levels and site-specific survival of hatchling loggerhead seaturtles (Caretta caretta) from south Florida beaches. Copeia 2007, 745–754.
Estimating predation levels and site-specific survival of hatchling loggerhead seaturtles (Caretta caretta) from south Florida beaches.Crossref | GoogleScholarGoogle Scholar |

Wilson, P, Thums, M, Pattiaratchi, C, Meekan, MG, Pendoley, K, Fisher, R, and Whiting, S (2018). Artificial light disrupts the nearshore dispersal of neonate flatback turtles (Natator depressus). Marine Ecology Progress Series 600, 179–192.
Artificial light disrupts the nearshore dispersal of neonate flatback turtles (Natator depressus).Crossref | GoogleScholarGoogle Scholar |

Wilson, P, Thums, M, Pattiaratchi, C, Whiting, S, Pendoley, K, Ferreira, LC, and Meekan, M (2019). High predation of marine turtle hatchlings near a coastal jetty. Biological Conservation 236, 571–579.
High predation of marine turtle hatchlings near a coastal jetty.Crossref | GoogleScholarGoogle Scholar |

Wilson, P, Thums, M, Pattiaratchi, C, Whiting, S, Meekan, M, and Pendoley, K (2020). Nearshore wave characteristics as cues for swimming orientation in flatback turtle hatchlings. Journal of Experimental Marine Biology and Ecology 535, 1–7.

Witherington BE (1992) ‘Sea-finding behavior and the use of photic orientation cues by hatchling sea turtles.’ (University of Florida: Gainesville, FL, USA)

Witherington, BE, and Bjorndal, KA (1991a). Influences of artificial lighting on the seaward orientation of hatchling loggerhead turtles Caretta caretta. Biological Conservation 55, 139–149.
Influences of artificial lighting on the seaward orientation of hatchling loggerhead turtles Caretta caretta.Crossref | GoogleScholarGoogle Scholar |

Witherington, BE, and Bjorndal, KA (1991b). Influences of wavelength and intensity on hatchling sea-turtle phototaxis: implications for sea-finding behavior. Copeia 1991, 1060–1069.
Influences of wavelength and intensity on hatchling sea-turtle phototaxis: implications for sea-finding behavior.Crossref | GoogleScholarGoogle Scholar |

Witherington, BE, and Salmon, M (1992). Predation on loggerhead turtle hatchlings after entering the sea. Journal of Herpetology 26, 226–228.
Predation on loggerhead turtle hatchlings after entering the sea.Crossref | GoogleScholarGoogle Scholar |

Witherington BE, Martin RE (2003) Understanding, assessing, and resolving light-pollution problems on sea turtle nesting beaches. Florida Fish and Wildlife Conservation Commission, Technical Report TR-2, Florida Marine Research Institute, Saint Petersburg, FL, USA.

Wood SN (2017) ‘Generalized additive models: an introduction with R’, 2nd edn. (CRC Press: Boca Raton, FL, USA)

Zapata, MJ, Sullivan, SMP, and Gray, SM (2019). Artificial lighting at night in estuaries—implications from individuals to ecosystems. Estuaries and Coasts 42, 309–330.
Artificial lighting at night in estuaries—implications from individuals to ecosystems.Crossref | GoogleScholarGoogle Scholar |