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Biology subjects

Costa Rillo, M.

Publications and source records attributed to Costa Rillo, M..

2 recordsLinked to original sources

Temporal resource variation promotes growth equalization through alternative plasticity strategies

Evolutionary theory predicts that fluctuating environments favor adaptations that maximize geometric-mean fitness by reducing variance in performance across conditions. We tested this prediction experimentally by evolving the lactic acid bacterium Lactococcus cremoris on the sugars fructose and galactose in density-controlled chemostats under four resource regimes: constant supply of fructose, constant supply of galactose, a constant mixture of both sugars, and a temporally alternating supply of the two. In the absence of temporal variation, trade-offs between fructose and galactose resulted in evolutionary divergence into a fructose specialist and a galactose specialist. In contrast, adaptation to temporal resource variation equalised growth performance on both sugars by increasing its growth rate on galactose and decreasing it on fructose. Interestingly, performance equalization emerged across replicate populations through distinct resource-transition strategies, indicated by differences in resource affinity and growth recovery on fructose and galactose among strains isolated from the evolved populations. Our results show that temporal resource variation selects for variance-minimizing resource adaptations while adopting multiple resource transition strategies, illustrating how distinct modes of metabolic plasticity can yield convergent fitness outcomes.

evolutionary biology↗

Space-for-time substitution reveals partial transferability of marine biodiversity-temperature relationships

Forecasts of biodiversity responses to climate change often rely on space-for-time substitution, in which spatial biodiversity-climate relationships are used to predict biodiversity change through time. Yet this approach is rarely tested directly because long-term biodiversity time series are scarce. Here, we combine global modern and fossil assemblage data of planktonic foraminifera with site-specific sea-surface temperature reconstructions to compare biodiversity-temperature relationships across space and time. Spatial and temporal compositional turnover models showed similar slopes but consistently different intercepts, with spatial models predicting higher turnover across the full temperature gradient. Restricting the spatial comparison to the environmental domain of individual fossil time series reduced, but did not eliminate, this intercept mismatch. For alpha diversity, spatial models more closely recovered the temporal biodiversity-temperature relationship than for compositional turnover. Thus, for the timescales studied here, space-for-time substitution captures the direction of biodiversity change but not its magnitude through time.

ecology↗