Literature DB >> 31297300

A patchy continuum? Stream processes show varied responses to patch- and continuum-based analyses.

Sean E Collins1,2, Stephen F Matter1, Ishi Buffam1, Joseph E Flotemersch2.   

Abstract

Many conceptual syntheses in ecology and evolution are undergirded by either a patch- or continuum-based model. Examples include gradualism and punctuated equilibrium in evolution, and edge effects and the theory of island biogeography in ecology. In this study, we sought to determine how patch- or continuum-based analyses could explain variation in concentrations of stream macronutrients and system metabolism, represented by measures of productivity and respiration rates, at the watershed scale across the Kanawha River Basin, USA. Using Strahler stream order (SSO; continuum) and functional process zone (FPZ; patch) as factors, we produced statistical models for each variable and compared model performance using likelihood ratio tests. Only one nutrient (i.e., PO 4 3 - ) responded better to patch-based analysis. Both models were significantly better than a null model for ecosystem respiration; however, neither outperformed the other. Importantly, in most cases, a combination model, including both SSO and FPZ, best described observed variation in the system. Our findings suggest that several patch- and continuum-based processes may simultaneously influence the concentration of macronutrients and system metabolism. Nutrient spiral- ing along a continuum and the patch mosaic of land cover may both alter macronutrients, for example. Similarly, increases in temperature and discharge associated with increasing SSO, as well as the differences in light availability and channel morphology associated with different FPZs, may influence system metabolism. For these reasons, we recommend a combination of patch- and continuum-based analyses when modeling, analyzing, and interpreting patterns in stream ecosystem parameters.

Keywords:  Kanawha River; River Continuum Concept; Riverine Ecosystem Synthesis; ecosystem metabolism; functional process zone; macronutrient concentration; nitrate; phosphate; stream order; watershed

Year:  2018        PMID: 31297300      PMCID: PMC6621553          DOI: 10.1002/ecs2.2481

Source DB:  PubMed          Journal:  Ecosphere            Impact factor:   3.171


  1 in total

1.  Geomorphological characteristics of the Wabash River, USA: Influence on fish assemblages.

Authors:  Jeff Robbins; Mark Pyron
Journal:  Ecol Evol       Date:  2021-03-18       Impact factor: 2.912

  1 in total

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