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Biology subjects

Vonmetz, L.

Publications and source records attributed to Vonmetz, L..

2 recordsLinked to original sources

Data leakage and measurement error inflate the apparent predictability of overyielding from plant traits

Predicting plant mixture overyielding from functional traits is central to understanding how biodiversity influences ecosystem functioning. Combining empirical data from a large mixture experiment (764 mixtures) and two trait-measurement experiments containing 90 soybean genotypes, with complementary simulations where trait-function relationships and noise levels were defined a priori, we show that apparent model performance depends critically on how predictive models are validated. When training and testing data share genotypes, predictive ability is strongly inflated because shared monoculture and trait measurements create data leakage. Measurement errors further propagate through these shared components, inducing spurious correlations and amplifying noise. When validation uses completely independent genotypes, the predictive power of both linear and machine-learning models declines sharply, revealing limited but genuine predictability. These results show how data structure and measurement error can produce misleading model performance and underscore the need for rigorous validation to achieve robust ecological prediction.

ecology↗

Shade avoidance restricts soybean breeding progress and increases herbivore susceptibility

High planting densities expose field crops to competition for light, which typically induces shade avoidance responses such as stem elongation. While adaptive in natural environments, these responses can lower yield and increase susceptibility to stress in agricultural systems. We tested whether soybean breeding over the past century has altered shade avoidance and associated trade-offs. Twenty-one Canadian cultivars released between 1922 and 2018 were grown in pots under either control or shade-avoidance-inducing light conditions, achieved by altering reflected light spectrum without reducing photosynthetic radiation. Plants exposed to shade-avoidance inducing light grew taller and suffered greater thrips damage, consistent with expectations of increased stem elongation and reduced defense. More recent cultivars showed higher susceptibility to thrips than older ones. Breeding progress in seed yield was driven largely by greater biomass allocation to seeds and a reduction in branching. However, under shade-inducing light, the yield improvements were smaller, pointing to shade avoidance as a limiting factor. Our results indicate that while soybean breeding has improved yield and shifted morphology towards ideotypes suited for high-density stands, persistent shade avoidance responses constrain breeding progress and increase herbivore susceptibility. Breeding strategies that reduce sensitivity to neighbor cues may therefore improve soybean productivity and resilience.

plant biology↗