Data from: Non-consumptive effects of predators on prey that outgrow the predation window
Data files
Apr 22, 2026 version files 21.15 KB
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behavior.step.1.2024.csv
3.05 KB
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morphology.behavior.life-history.traits.step.2.2024.csv
8.69 KB
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morphology.step.1.2024.csv
2 KB
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predation.trials.2024.csv
1.96 KB
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README.md
5.45 KB
Abstract
In many aquatic predator–prey relationships, prey species can outgrow the “predation window” and reach a size refuge. After the prey outgrow the predation window, predators can no longer affect prey density and phenotypes through consumption (i.e., consumptive effects).
In contrast, whether predators have non-consumptive effects on prey during this period is unclear because the cues triggering risk-induced trait responses in prey may exist during the entire persistence period of predators. The movement of interacting members of predator populations among patches of habitat creates variation in the timing and duration of predator and prey co-occurrence. The period even after the prey outgrow the predation window can also matter in explaining magnitudes of risk-induced trait responses in prey.
To explore the possibility of non-consumptive effects of predators on prey after they have outgrown the predation window, we conducted a laboratory experiment using adult Notonecta triguttata (backswimmers) and their prey, Zhangixalus arboreus (forest green tree frog) tadpoles. We assessed the effect of backswimmer presence/absence (1) during the period in which tadpoles are within the predation window and (2) after the tadpoles outgrow the predation window, on tadpole life-history traits.
Backswimmer presence during the predation window and following the predation window independently resulted in a slightly extended tadpole period.These results suggest the importance of considering the entire period of predatorandprey co-occurrenceto understand all of the non-consumptive effects that predators have on prey. Several aquatic predators that consume a fixed range of prey sizes and are also capable of movement across land, such as backswimmers and newts, can move among ponds. Predator mobility can contribute to creating variation in key early life-history traits of prey by varying predation intensity while prey are within the predation window, but also when prey have outgrown it, eventually affecting prey population dynamics.
Dataset DOI: 10.5061/dryad.31zcrjdzw
Description of the data and file structure
GENERAL INFORMATION
- Title of dataset:
Data from Non-consumptive effects of predators on prey that outgrow the predation window - Author information
Name:
Riko Urushihara1
Kunio Takatsu2
Institution:
1 Graduate School of Science and Technology, Niigata University, Niigata 950-2181, Japan
2 Sado Island Center for Ecological Sustainability, Niigata University, Niibo-Katagami 1101-1, Sado, Niigata 952-0103, Japan
Email;
oniku029t@gmail.com
- Date of data collection:
2024 - Geographic location of data collection:
Japan - Funding:
JSPS KAKENHI (no. 25K00281)
Files and variables
File 1: predation.trials.2024.csv
File 1 Description: Data used to examine the relationship between tadpole body size and predation mortality.
File 1 Variable list:
- ID:individual ID (1-80)
- trial: First (1) and second (2) predation trials
- date: The date when we conducted the first and second predation trials
- backswimmer.TL: The total length (mm) of backswimmers
- tadpole.SVL: The body length (snout-vent length [mm]) of tadpoles
- survival: The survival rate of frog tadpoles during the three-day predation trials (1: alive and 0: dead)
File 2: behavior.step.1.2024.csv
File 2 Description: Data used to examine the effects of the presence of backswimmers on activity levels of tadpoles during step 1
File 2 Variable list:
- tank.ID: tank ID (1-64)
- treatment: No-backswimmer control treatment ([control] 1-32) and Backswimmer treatment ([backswimmer] 33-64)
- first.trial: Number of frog tadpoles moved during the 10s observation in the first trial on day 4
- second.trial: Number of frog tadpoles moved during the 10s observation in the second trial on day 4
- third.trial: Number of frog tadpoles moved during the 10s observation in the third trial on day 4
- mean: Mean number of frog tadpoles moved during the 10s observation on day 4
- survival.day.4: The number of surviving tadpoles at day 4
- mean.proportion: Mean proportion of active tadpoles on day 4
- survival.day.8: The number of surviving tadpoles at day 8
- survival.rate.day.8: Survival rate during step 1 (i.e., from day 1 to day 8)
File 3: morphology.step.1.2024.csv
File 3 Description: Data used to examine the effects of the presence of backswimmers on morphological traits of tadpoles during step 1
File 3 Variable list:
- ID: individual ID (1-80)
- treatment: Backswimmer treatment ([backswimmer] 1-40) and No-backswimmer control treatment ([control] 41-80)
- tailfin.depth: maximum tailfin depth (mm) of tadpoles
- SVL: snout vent length (mm) of tadpoles
File 4: morphology.behavior.life-history.traits.step.2.2024.csv
File 4 Description: Data used to examine the effects of the presence of backswimmers during Step 1 and Step 2 on behavioural, morphological, and life-history traits during Step 2. All tadpoles died in one replicate (ID 23) in the No-backswimmer control [control]/backswimmer treatment. Therefore, no data on traits at metamorphosis were available for the replicate (i.e., larval period, body length and weight of metamorphs, body condition [SMI] at metamorphosis, deformed, and proportion of deformed metamorphs).
File 4 Variable list:\
- tank.ID: tank ID (1-64)
- treatment.1: treatment during step 1 (No-backswimmer control [control] and backswimmer [backswimmer] treatments)
- treatment.2: treatment during step 2 (No-backswimmer control [control] and backswimmer [backswimmer] treatments)
- treatment: control/control (cc), control/backswimmer (cb), backswimmer/control (bc), and backswimmer/backswimmer (bb)
- SVL.day.8: tank-mean body length (snout-vent length [mm]) of tadpoles at the reassignment of tadpoles (i.e., day 8)
- SVL.day.15: tank-mean body length (snout-vent length [mm]) of tadpoles at day 15
- daily.SVL.increment: daily body length (snout-vent length [mm]) increment from day 8 to day 15
- first.trial: Number of frog tadpoles moved during the 10s observation in the first trial on day 9
- second.trial: Number of frog tadpoles moved during the 10s observation in the second trial on day 9
- third.trial: Number of frog tadpoles moved during the 10s observation in the third trial on day 9
- mean.tadpoles.moved: Mean number of frog tadpoles moved during the 10s observation on day 9
- survival.day.9: The number of surviving tadpoles at day 9
- mean.proportion.moved.at. day.9: Mean proportion of active tadpoles at day 9
- mean.SVL.day.16: tank-mean body length (snout-vent length [mm]) on day 16
- mean.tailfin.depth.day.16: tank-mean tailfin depth [mm] on day 16
- larval.period: tank-mean larval period (i.e., from day 1 to metamorphosis [days])
- metamorph.SVL: tank-mean body length (snout-vent length [mm]) of metamorphs
- metamorph.BW: tank-mean wet body mass (g) of metamorphs
- metamorph.SMI: scaled mass index (SMI) at metamorphosis
- lost: the number of individuals escaped from the tank during step 2
- dead: the number of dead individuals during step 2
- lost.dead: tanks containing dead/lost individuals (yes) and those containing no dead/lost individuals (no)
- deformed: the number of individuals with bent tail spines
- deformed.proportion: the proportion of individuals with bent tail spines
