Functional agrobiodiversity and agroecosystem services in sustainable wheat production. A review

被引:86
作者
Costanzo, Ambrogio [1 ]
Barberi, Paolo [1 ]
机构
[1] Scuola Super Sant Anna, Inst Life Sci, I-56127 Pisa, PI, Italy
关键词
Agroecosystem service; Breeding; Composite cross population; Cultivar mixture; Evolutionary breeding; Intercropping; Living mulch; Low input; Organic farming; Trait; QUANTITATIVE TRAIT LOCI; NITROGEN-USE EFFICIENCY; WINTER-WHEAT; GRAIN-YIELD; CULTIVAR MIXTURES; COMPETITIVE ABILITY; ECOLOGICAL INTENSIFICATION; GENETIC DIVERSITY; CROPPING SYSTEMS; INTERGENOTYPIC COMPETITION;
D O I
10.1007/s13593-013-0178-1
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Agrobiodiversity can improve the sustainability of cropping systems in a context of low external inputs and unpredictable climate change. Agrobiodiversity strategies to grow wheat are breeding ad hoc cultivars for organic and low-input systems, wheat-legume intercrops and living mulches, cultivar mixtures, and the use of genetically heterogeneous populations. However, applying those strategies can fail due the lack of a well-focused framework. Therefore, we need a better integration between breeding and management and a clear focus on crop traits related to key agroecosystem services. Here, we review the use of agrobiodiversity in wheat production, focusing on breeding and management. We discuss five agroecosystem services: (1) weed reduction, (2) nitrogen use efficiency, (3) abiotic stress tolerance, (4) disease and pest reduction and (5) yield and yield stability. We categorise agrobiodiversity into functional identity, functional composition, and functional diversity, in order to link crop traits to agroecosystem services. Linking crop traits to agroecosystem services could in turn lead to concrete options for farmers and policy. We discuss the relations between crop identity and crop heterogeneity. We also discuss the partitioning of crop heterogeneity between functional composition and functional diversity.
引用
收藏
页码:327 / 348
页数:22
相关论文
共 243 条
[1]   Capturing diversity in the cereals: many options but little promiscuity [J].
Able, Jason A. ;
Langridge, Peter ;
Milligan, Andrew S. .
TRENDS IN PLANT SCIENCE, 2007, 12 (02) :71-79
[2]   Yield potential and land-use efficiency of wheat and faba bean mixed intercropping [J].
Agegnehu, Getachew ;
Ghizaw, Amare ;
Sinebo, Woldeyesus .
AGRONOMY FOR SUSTAINABLE DEVELOPMENT, 2008, 28 (02) :257-263
[3]   Application of Molecular Markers in Breeding for Nitrogen Use Efficiency [J].
Agrama, Hesham A. .
JOURNAL OF CROP IMPROVEMENT, 2006, 15 (02) :175-211
[4]   Effect of two-component cultivar mixtures and yellow rust on yield and yield components of wheat [J].
Akanda, SI ;
Mundt, CC .
PLANT PATHOLOGY, 1997, 46 (04) :566-580
[5]   Collaboration of farmers and breeders: Participatory crop improvement in perspective [J].
Almekinders, CJM ;
Elings, A .
EUPHYTICA, 2001, 122 (03) :425-438
[6]   Defining and designing plant architectural ideotypes to control epidemics? [J].
Andrivon, D. ;
Giorgetti, C. ;
Baranger, A. ;
Calonnec, A. ;
Cartolaro, P. ;
Faivre, R. ;
Guyader, S. ;
Lauri, P. E. ;
Lescourret, F. ;
Parisi, L. ;
Ney, B. ;
Tivoli, B. ;
Sache, I. .
EUROPEAN JOURNAL OF PLANT PATHOLOGY, 2013, 135 (03) :611-617
[7]  
[Anonymous], 2010, PLANT SOIL, DOI DOI 10.1007/s11104-009-0082-2
[8]   Breeding for Yield Potential and Stress Adaptation in Cereals [J].
Araus, Jose Luis ;
Slafer, Gustavo A. ;
Royo, Conxita ;
Dolores Serret, M. .
CRITICAL REVIEWS IN PLANT SCIENCES, 2008, 27 (06) :377-412
[9]  
Arterburn M., 2012, ORGANIC CROP BREEDIN, P163, DOI 10.1002/9781119945932.ch9
[10]   The impact of temperature variability on wheat yields [J].
Asseng, Senthold ;
Foster, Ian ;
Turner, Neil C. .
GLOBAL CHANGE BIOLOGY, 2011, 17 (02) :997-1012