State and Progress of Andean Lupin Cultivation in Europe: A Review
Abstract
:1. Introduction
2. Andean Lupin Genetic Material Tested under European Conditions
3. Abiotic Restrictive Factors and Cropping Practices
3.1. High and Low Temperature Effects
3.2. Impact of Day Length on Growth and Production
3.3. Effects of Water Logging and Water Deficit on Growth and Seed Quality
3.4. Alkaline, Calcareous Soils and Their Effects on L. mutabilis as a Crop
4. Biotic Constraints in Europe for Lupinus mutabilis
4.1. Fungal and Bacterial Diseases
4.2. Virus Diseases and Carriers
4.3. Main Insect Pests of L. mutabilis in Europe
4.4. Weed Species and Management in L. mutabilis Cultivation
5. Symbiosis with Other Species Abundant in Europe
5.1. Rhizobium–L. mutabilis Symbiosis and Nitrogen Fixation Potential
5.2. Andean Lupin Interaction with Pollinator Species Abundant in Europe
6. Future Uses and Investigation Prospects
6.1. Prospects of Using L. mutabilis as Feed and Biomass for Bioenergy
6.2. Opportunities and Challenges for Breeding
7. Crop Modeling for Yield Production Enhancement
8. Conclusions and Perspectives
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Fungal Disease | Pathogen | Transmission | Control Method |
---|---|---|---|
Anthracnose | Colletotrichum lupini | Infested seed lots, crop stubble [37,91] | Certified seed [92] Seed disinfection, i.e., dry heat, UV-C 1 [82,93] Fungicide application (e.g., azoxystrobin, chlorothalonil, mancozeb) [85] Crop rotation [37] Bacillus spp. strains [81] |
Fusarium wilt and root rot | Fusarium spp. | Infested seed lots, soilborne [94] | Crop rotation [36] Available resistance: ECU-688, ECU-5920, ECU-7293 breeding lines [92], K2135 [95], chocho type [96] |
Pleiochaeta root rot and brown (leaf) spot | Pleiochaeta setosa (Ceratophorum setosum) | Infested seed lots, plant residuals [97] | Certified seed [98] Minimum tillage application [98] Deep dripping prior to the crop establishment [98] Crop rotation with non-host plant species [98] Deep sowing, up to 5 cm depth [99] |
Root and hypocotyl rot | Phytophthora sojae, Rhizoctonia solani | Soilborne [94,100] | Crop rotation with cereals [92] Improvement of soil drainage or selection of well drained fields [92] Deep dripping (25–30 cm) [98] |
Weed Species | Athens | Kalamata | Santarém | Life Cycle |
---|---|---|---|---|
Abutilon theophrasti Medik. | x | A, Su | ||
Ailanthus altissima (Mill.) Swingle | x | A, Su | ||
Allium roseum L. | x | P, W | ||
Amaranthus hybridus L. | x | A, Su | ||
Amaranthus retroflexus L. | x | A, Su | ||
Ammi majus L. | x | A, Su | ||
Anthemis spp. | x | x | A, W | |
Avena spp. | x | x | A, W | |
Calendula arvensis L. | x | A, Su | ||
Calystegia sepium (L.) R.Br. | x | P, Su | ||
Capsella bursa-pastoris (L.) Medik. | x | x | A, W | |
Chamaemelum fuscatum (Brot.) Vasc. | x | A, Sp | ||
Chamomilla recutita L. | x | x | A, Su | |
Chenopodium album L. | x | A, Su | ||
Chenopodium murale (L.) S. Fuentes, Uotila and Borsch | x | A, Su | ||
Chrysanthemum coronarium (L.) Cass. ex Spach | x | x | A, Su | |
Convolvulus arvensis L. | x | A, Su | ||
Datura stramonium L. | x | x | A, Su | |
Daucus carota L. | x | B, W | ||
Euphorbia peplus L. | x | A, Su/W | ||
Fumaria officinalis L. | x | x | A, W | |
Fumaria parviflora Lam. | x | x | A, W | |
Geranium spp. | x | A/B, W | ||
Hordeum murinum L. | x | A, W | ||
Lactuca serriola L. | x | A, Su | ||
Lamium amplexicaule L. | x | A, W | ||
Lavatera cretica L. | x | A/B, Su | ||
Malva sylvestris L. | x | B, Su | ||
Medicago arabica (L.) Huds. | x | A, W | ||
Oryzopsis miliacea Michx. | x | P, Su | ||
Oxalis pes-carpae L. | x | A, Su | ||
Papaver rhoeas L. | x | A, W | ||
Phalaris minor Retz. | x | A, W | ||
Poa spp. | x | x | A/B, W | |
Portulaca oleracea L. | x | A, Su | ||
Rapistrum rugosum (L.) All. | x | A/B, W | ||
Silybum marianum (L.) Gaertn. | x | A/B, W | ||
Sinapis spp. | x | A, W | ||
Sisymbrium irio L. | x | x | A, W | |
Solanum eleagnifolium Cav. | x | A, Su | ||
Sonchus oleraceus L. | x | A, W | ||
Stellaria media (L.) Vill. | x | A, W | ||
Taraxacum spp. | x | A, W | ||
Trifolium spp. | x | A/B, W | ||
Urtica dioica L. | x | A, Su | ||
Urtica urens L. | x | A, Su | ||
Veronica persica Poir. | x | x | A.W | |
Xanthium strumarium L. | x | A, Su |
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Bebeli, P.J.; Lazaridi, E.; Chatzigeorgiou, T.; Suso, M.-J.; Hein, W.; Alexopoulos, A.A.; Canha, G.; van Haren, R.J.F.; Jóhannsson, M.H.; Mateos, C.; et al. State and Progress of Andean Lupin Cultivation in Europe: A Review. Agronomy 2020, 10, 1038. https://doi.org/10.3390/agronomy10071038
Bebeli PJ, Lazaridi E, Chatzigeorgiou T, Suso M-J, Hein W, Alexopoulos AA, Canha G, van Haren RJF, Jóhannsson MH, Mateos C, et al. State and Progress of Andean Lupin Cultivation in Europe: A Review. Agronomy. 2020; 10(7):1038. https://doi.org/10.3390/agronomy10071038
Chicago/Turabian StyleBebeli, Penelope J., Efstathia Lazaridi, Tilemachos Chatzigeorgiou, Maria-José Suso, Waltraud Hein, Alexios A. Alexopoulos, Gonçalo Canha, Rob J.F. van Haren, Magnús H. Jóhannsson, Carmen Mateos, and et al. 2020. "State and Progress of Andean Lupin Cultivation in Europe: A Review" Agronomy 10, no. 7: 1038. https://doi.org/10.3390/agronomy10071038