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Gleycon Silva

Publications and source records attributed to Gleycon Silva.

2 recordsLinked to original sources

How long versus when: worker mortality synchrony is widespread but decoupled from body size in Australian ants

Colony demographic models often treat worker deaths as independent events, but shared environmental exposure may synchronize mortality within species. Using a 15-month field dataset of 18 Australian ant species and 106 cohorts, we quantified intra-specific mortality synchrony with the intra-class correlation coefficient (ICC) and tested body size and temperature as candidate correlates. Synchrony was widespread: credible intervals excluded zero in 9 of 18 species, and the assemblage mean ICC was 0.21 +/- 0.09, indicating that about 21% of daily mortality variance reflected shared within-species exposure. Body size did not buffer synchrony. Worker mass was unrelated to ICC (Spearman rho = +0.10, p = 0.69; WLS beta = +0.05, p = 0.35), decoupling how long workers live from when they die together. Temperature showed a suggestive lagged association: maximum temperature preceded mortality pulses by 1-7 days in 13 of 15 analyzable species, with mean peak r = 0.16, but no species survived Bonferroni correction. A sensitivity analysis using mean correlation across lags 1-7 days instead of the peak removed the assemblage-level signal (mean r = -0.03, p = 0.93), and ICC was unrelated to temperature-coupling strength (Spearman rho = -0.004, p = 0.99). Mortality synchrony is therefore widespread, size-independent, and only partly thermal. Species-specific thermal tolerance, rather than body mass, is a more promising candidate for explaining variation in synchronized mortality.

q-bio.PE↗

Body size predicts how long ant workers live - but not how they age or how they die from heat

In social insects, mortality risk comprises distinct components that may not share the same predictors: lifespan duration, senescence trajectory, and thermal vulnerability. We tested these three axes in 18 Australian ant species using paired field-laboratory survival assays (2,363 cohort-day observations; 1,148 workers). Body size predicted duration (Cox HR = 0.67, p = 0.002), while colony size (p = 0.60) and the size x temperature interaction (p = 0.72) showed no detectable moderating effect. A weak but significant size x foraging-rate interaction was detected (LRT p = 0.014), suggesting that intrinsic physiology remains the most parsimonious explanation for the main size-longevity pattern, although ecological context may contribute. Senescence trajectory was associated with circadian niche rather than size: it was steepest in matinal species (Kruskal-Wallis p = 0.009; matinal vs. crepuscular p = 0.002) and was uncorrelated with body mass (Spearman p = 0.32). Thermal hazard plateaued above 20 degrees C (Delta AIC = -38; p < 0.001), with elevated thermal sensitivity in Rhytidoponera (Ectatomminae) above the plateau (5% per degree C, p = 0.015). Circadian regime and lineage identity, not body size, therefore emerge as the most climate-relevant axes, although they are strongly collinear (Cramer's V = 0.85). These results show that body size captures only one dimension of mortality risk and that size-based vulnerability indices may misrank taxa when senescence and thermal sensitivity are decoupled from body size.

q-bio.PE↗