Related Experiment Video
Updated: Feb 23, 2026

Non-Destructive Evaluation of Regional Cell Density Within Tumor Aggregates Following Drug Treatment
Published on: June 21, 2022
Increased consumer density reduces the strength of neighborhood effects in a model system
Andrew C Merwin1, Nora Underwood1, Brian D Inouye1
1Department of Biological Science, Florida State University, Tallahassee, Florida, 32306-4295, USA.
Abstract:
An individual's susceptibility to attack can be influenced by conspecific and heterospecifics neighbors. Predicting how these neighborhood effects contribute to population-level processes such as competition and evolution requires an understanding of how the strength of neighborhood effects is modified by changes in the abundances of both consumers and neighboring resource species. We show for the first time that consumer density can interact with the density and frequency of neighboring organisms to determine the magnitude of neighborhood effects. We used the bean beetle, Callosobruchus maculatus, and two of its host beans, Vigna unguiculata and V. radiata, to perform a response-surface experiment with a range of resource densities and three consumer densities. At low beetle density, damage to beans was reduced with increasing conspecific density (i.e., resource dilution) and damage to the less preferred host, V. unguiculata, was reduced with increasing V. radiata frequency (i.e., frequency-dependent associational resistance). As beetle density increased, however, neighborhood effects were reduced; at the highest beetle densities neither focal nor neighboring resource density nor frequency influenced damage. These findings illustrate the importance of consumer density in mediating indirect effects among resources, and suggest that accounting for consumer density may improve our ability to predict population-level outcomes of neighborhood effects and our use of them in applications such as mixed-crop pest management.
Related Concept Videos
Pharmacodynamic Models: Linear Concentration–Effect Model
Pharmacodynamic Models: Additive and Proportional Drug Effect Model
Mechanistic Models: Compartment Models in Individual and Population Analysis
Pharmacodynamic Models: Emax Drug–Concentration Effect Model
Pharmacodynamic Models: Link Model and Systems Pharmacodynamic Model
Pharmacodynamic Models: Direct Effect Model and Indirect Response Model

