Toward the next angiosperm revolution: Agroecological food production as a driver for biological diversity
Author:
Delaney Sara1ORCID, von Wettberg Eric J. B.2
Affiliation:
1. 1School of Food and Agriculture, University of Maine, Orono, ME, USA 2. 2Department of Plant and Soil Sciences and Gund Institute for the Environment, University of Vermont, Burlington, VT, USA
Abstract
Flowering plants once drove a global shift in insect–plant–animal relationships and supported an increase in biodiversity, energy flux, and productivity throughout terrestrial ecosystems. We argue here that angiosperms could once again contribute to biodiversity within landscapes, if agroecosystems, and the plants within them, can be managed for multifunctional benefits. The potential for farmland to support biological diversity is understood and well-argued in the literature. We take this long-standing conversation and frame it within a longer evolutionary context, bringing attention to how modification in 2 key areas of our current food production system could support this goal. First, a move toward crop and grazing landscapes that more closely align with regional food webs can lead to observable improvements in community wildlife abundance. Second, we can re-expand the genetic base of our food, fodder, and cover crops, in particular by using crop wild relatives, through the use of wide crosses, genome-assisted selection, and participatory breeding. Agriculture as it is now widely practiced utilizes a narrow sliver of total angiosperm species diversity and within-species genetic diversity on a large amount of land. Change to this status quo requires coordination across tightly interlinked policy areas. It will also require social change. Farmers should be supported to transition through nudges throughout their social network. This necessitates a significant shift in our collective culture to value growing and consuming the flowering crops that can trigger an angiosperm revolution of the Anthropocene.
Publisher
University of California Press
Subject
Atmospheric Science,Geology,Geotechnical Engineering and Engineering Geology,Ecology,Environmental Engineering,Oceanography
Reference180 articles.
1. Plant domestication versus crop evolution: A conceptual framework for cereals and grain legumes;Trends in Plant Science,2014 2. Abbott, R, Albach, D, Ansell, S, Arntzen, JW, Baird, SJE, Bierne, N, Boughman, J, Brelsford, A, Buerkle, CA, Buggs, R, Butlin, RK, Dieckmann, U, Eroukhmanoff, F, Grill, A, Cahan, SH, Hermansen, JS, Hewitt, G, Hudson, AG, Jiggins, C, Jones, J, Keller, B, Marczewski, T, Mallet, J, Martinez-Rodriguez, P, Möst, M, Mullen, S, Nichols, R, Nolte, AW, Parisod, C, Pfennig, K, Rice, AM, Ritchie, MG, Seifert, B, Smadja, CM, Stelkens, R, Szymura, JM, Väinölä, R, Wolf, JBW, Zinner, D.2013. Hybridization and speciation. Journal of Evolutionary Biology26(2): 229–246. DOI: http://dx.doi.org/10.1111/j.1420-9101.2012.02599.x. 3. Altman, A, Mesoudi, A.2019. Understanding agriculture within the frameworks of cumulative cultural evolution, gene-culture co-evolution, and cultural niche construction. Human Ecology47(4): 483–497. DOI: http://dx.doi.org/10.1007/s10745-019-00090-y. 4. Do we need specific breeding for legume-based mixtures?;Advances in Agronomy,2019 5. Asbjornsen, H, Hernandez-Santana, V, Liebman, M, Bayala, J, Chen, J, Helmers, M, Ong, CK, Schulte, LA.2014. Targeting perennial vegetation in agricultural landscapes for enhancing ecosystem services. Renewable Agriculture and Food Systems29(2): 101–125. DOI: http://dx.doi.org/10.1017/S1742170512000385.
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