Perennial Staple Crops: Yields, Distribution, and Nutrition in the Global Food System

被引:28
作者
Kreitzman, Maayan [1 ]
Toensmeier, Eric [2 ,3 ]
Chan, Kai M. A. [1 ]
Smukler, Sean [4 ]
Ramankutty, Navin [1 ,5 ]
机构
[1] Univ British Columbia, Inst Resources Environm & Sustainabil, Vancouver, BC, Canada
[2] Perennial Agr Inst, Holyoke, MA USA
[3] Global Evergreening Alliance, Burwood East, Vic, Australia
[4] Univ British Columbia, Fac Land & Food Syst, Vancouver, BC, Canada
[5] Univ British Columbia, Sch Publ Policy & Global Affairs, Vancouver, BC, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
perennial staple crops; perennial crops; agroforestry; yield; nutrition; carbon sequestration; tree crops; food production; ECOSYSTEM SERVICES; MESQUITE PROSOPIS; BIODIVERSITY; CONSERVATION; AGROFORESTRY; AGRICULTURE; CARBON; VEGETATION; MANAGEMENT; CULTURE;
D O I
10.3389/fsufs.2020.588988
中图分类号
TS2 [食品工业];
学科分类号
0832 ;
摘要
Staple crops, which have large amounts of carbohydrates, proteins, and/or fats, provide the bulk of calories in people's diets. Perennial plants, which can be productive for many years without the need for replanting, can produce staple foods and environmental benefits, but their agronomic and nutritional properties haven't been considered synthetically in comparison to annual staples. Here we offer a framework to classify perennial staple crops according to their nutritional categories and cultivation status. We assemble literature to report on the yield potential of 51 perennial staple crops, only 15 of which are well-characterized in existing global datasets. We show the extent and distribution of perennial staple crop production in relation to annual crop types, calculate the carbon stocks they hold, and analyze their nutritional content for three macronutrients and nine micronutrients. We found that most perennial staple crops are regional crops (not globally traded) that grow in the subtropics to tropics. At least one perennial staple crop in each of the five nutritional categories has yields over 2.5 t/ha, in some cases considerably higher, competitive with and in many cases exceeding those of nutritionally comparable annual staples. Perennial staple crops only comprise similar to 4.5% of total cropland. They hold a modest similar to 11.4 GtC above and below ground, less than one third of the anthropogenic carbon-equivalent emissions for the year 2018, but more than the similar to 9 GtC held by the same amount of annual cropland. If linear growth in land under perennial staple production continues to 2040, and replaces only annual cropland, an additional similar to 0.95 GtC could be sequestered. Many perennial crops also had competitive macronutrient density and yield (per unit area) compared to annual staples; moreover, specific perennial staples are abundant in specific micronutrients, indicating that they can be a nutrient-dense part of diets, unlike the most ubiquitous annual staple crops (corn, wheat, rice) that do not appear in the top 85th percentile for any of the nine micronutrients analyzed. Transition of land and diets to perennial staple crops, if judiciously managed, can provide win-win solutions for both food production and ecosystems.
引用
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页数:21
相关论文
共 127 条
[1]   Genetic diversity in African yam bean accessions based on AFLP markers: towards a platform for germplasm improvement and utilization [J].
Adewale, B. D. ;
Vroh-Bi, I. ;
Dumet, D. J. ;
Nnadi, S. ;
Kehinde, O. B. ;
Ojo, D. K. ;
Adegbite, A. E. ;
Franco, J. .
PLANT GENETIC RESOURCES-CHARACTERIZATION AND UTILIZATION, 2015, 13 (02) :111-118
[2]   Morphological diversity analysis of African yam bean (Sphenostylis stenocarpa Hochst. ex A. Rich.) Harms and prospects for utilization in germplasm conservation and breeding [J].
Adewale, B. D. ;
Dumet, D. J. ;
Vroh-Bi, I. ;
Kehinde, O. B. ;
Ojo, D. K. ;
Adegbite, A. E. ;
Franco, J. .
GENETIC RESOURCES AND CROP EVOLUTION, 2012, 59 (05) :927-936
[3]  
AgriOrbit, 2018, MOR MOR MAC PROD GLO
[4]   Targeting perennial vegetation in agricultural landscapes for enhancing ecosystem services [J].
Asbjornsen, H. ;
Hernandez-Santana, V. ;
Liebman, M. ;
Bayala, J. ;
Chen, J. ;
Helmers, M. ;
Ong, C. K. ;
Schulte, L. A. .
RENEWABLE AGRICULTURE AND FOOD SYSTEMS, 2014, 29 (02) :101-125
[5]   Effects of habitat amount and isolation on biodiversity in fragmented traditional orchards [J].
Bailey, Debra ;
Schmidt-Entling, Martin H. ;
Eberhart, Peter ;
Herrmann, John D. ;
Hofer, Gabriela ;
Kormann, Urs ;
Herzog, Felix .
JOURNAL OF APPLIED ECOLOGY, 2010, 47 (05) :1003-1013
[6]  
BAINBRIDGE DA, 1985, AMBIO, V14, P148
[7]   Vegetation history of the walnut forests in Kyrgyzstan (Central Asia): natural or anthropogenic origin? [J].
Beer, Ruth ;
Kaiser, Franziska ;
Schmidt, Kaspar ;
Arnmann, Brigitta ;
Carraro, Gabriele ;
Grisa, Ennio ;
Tinner, Willy .
QUATERNARY SCIENCE REVIEWS, 2008, 27 (5-6) :621-632
[8]   Modeling spatially explicit population dynamics of Pterostichus melanarius I11.: (Coleoptera: Carabidae) in response to changes in the composition and configuration of agricultural landscapes [J].
Benjamin, Retho ;
Cedric, Gaucherel ;
Pablo, Inchausti .
LANDSCAPE AND URBAN PLANNING, 2008, 84 (3-4) :191-199
[9]   Landscape composition influences pollinators and pollination services in perennial biofuel plantings [J].
Bennett, Ashley B. ;
Isaacs, Rufus .
AGRICULTURE ECOSYSTEMS & ENVIRONMENT, 2014, 193 :1-8
[10]  
Bintoro M.H., 2018, SAGO PALM MULTIPLE C