Lobell D, Roberts M, Schlenker W, Braun N, Little B, Rejesus R, Hammer G. Greater sensitivity to drought accompanies maize yield increase in the U.S. Midwest. Nature. 2014;344:516–9.
CAS
Google Scholar
Parvin S, Uddin S, Fitzgerald G, Tausz-Posch S, Armstrong R, Tausz M. Free air CO2 enrichment (FACE) improves water use efficiency and moderates drought effect on N2 fixation of Pisum sativum L. Plant Soil. 2019;436(1–2):587–606.
CAS
Google Scholar
IPCC. Climate Change 2013: The physical science basis. Contribution of working group I to the fifth assessment report of the intergovernmental panel on climate change. Cambridge University Press, Cambridge.
Zhang Q, Kong D, Singh V, Shi P. Response of vegetation to different time-scales drought across China: spatiotemporal patterns, causes and implications. Glob Planet Chang. 2017;152:1–11.
CAS
Google Scholar
Wang Z, Zhong R, Lai C, Zeng Z, Lian Y, Bai X. Climate change enhances the severity and variability of drought in the Pearl River Basin in South China in the 21st century. Agr Forest Meterol. 2018;249:149–62.
Google Scholar
Harrison M, Tardieu F, Dong Z, Messina C, Hammer G. Characterizing drought stress and trait influencing on maize yield under current and future conditions. Glob Chang Biol. 2014;20(3):867–78.
PubMed
Google Scholar
Lobell D, Hammer G, Chenu K, Zheng B. Mclean Gm chapman S. the shifting influence of drought and heat stress for crops in Northeast Australia. Glob Chang Biol. 2015;21(11):4115–27.
PubMed
Google Scholar
Zipper S, Qiu J, Kucharik C. Drought effects on US maize and soybean production: spatiotemporal patterns and historical changes. Environ Res Lett. 2016;11(9):094021.
Google Scholar
Wang P, Yang C, Chen H, Song C, Zhang X, Wang D. Transcriptomic basis for drought resistance in Brassica napus L. Sci Rep. 2017;7:40532.
CAS
PubMed
PubMed Central
Google Scholar
Mega R, Abe F, Kim J, Tsuboi Y, Tanaka K, Kobayashi H, Sakata Y, Hanada K, Tsujimoto H, Kikuchi J, Cutler S, Okamoto M. Tuning water-use efficiency and drought tolerance in wheat using abscisic acid receptors. Nat Plants. 2019;5:153–9.
CAS
PubMed
Google Scholar
He J, Du Y, Wang T, Turner N, Yang R, Jin Y, Xi Y, Zhang C, Cui T, Fang X, Li F. Conserved water use improves the yield performance of soybean (Glycine max (L.) Merr.) under drought. Agr Water Manage. 2017;179:236–45.
Google Scholar
Edwards C, Ewers B, McClung C, Lou P, Weinig C. Quantitative variation in water-use efficiency across water regimes and its relationship with circadian vegetative, reproductive, and leaf gas-exchange traits. Mol Plant. 2012;5(3):653–68.
PubMed
Google Scholar
Jaleel C, Manivannan P, Wahid A, Farooq M, Somasundaram R, Panneerselvam R. Drought stress in plants: a review on morphological characteristics and pigments composition. Int J Agric Biol. 2009;11(1):100–5.
Google Scholar
Mathobo R, Marais D, Steyn J. The effect of drought stress on yield, leaf gaseous exchange and chlorophyll fluorescence of dry beans (Phaseolus vulgaris L.). Agr Water Manage. 2017;180:118–25.
Google Scholar
Hussain M, Farooq S, Hasan W, Ul-Allah S, Tanveer M, Farooq M, Nawaz A. Drought stress in sunflower: physiological effects and its management through breeding and agronomic alternatives. Agr Water Manage. 2018;201:152–66.
Google Scholar
Farooq M, Gogoi N, Barthakur S, Baroowa B, Bharadwaj N, Alghamdi S, Siddique H. Drought stress in grain legumes during reproduction and grain filling. J Agron Crop Sci. 2017;203(2):81–102.
Google Scholar
Fang X, Turner N, Yan G, Li F, Siddique K. Flower numbers, pod production, pollen viability, and pistil function are reduced and flower and pod abortion increased in chickpea (Cicer arietinum L.) under terminal drought. J Exp Bot. 2010;61(2):335–45.
CAS
PubMed
Google Scholar
Bengough A, McKenzie B, Hallett P, Valentine T. Root elongation, water stress, and mechanical impedance: a review of limiting stresses and beneficial root tip traits. J Exp Bot. 2011;62(1):59–68.
CAS
PubMed
Google Scholar
Prince S, Murphy M, Mutava R, Durnell L, Valliyodan B, Shannon J, Nguyen H. Root xylem plasticity to improve water use and yield in water-stressed soybean. J Exp Bot. 2017;68(8):2027–36.
CAS
PubMed
PubMed Central
Google Scholar
Hammer G, Dong Z, McLean G, Doherty A, Messina C, Schussler J, Zinselmeier C, Paszkiewicz S, Cooper M. Can changes in canopy and/or root system architecture explain historical maize yield trends in the US corn belt? Crop Sci. 2009;49(1):299–312.
Google Scholar
Munns R, Gilliham M. Salinity tolerance of crops – what is the cost? New Phytol. 2015;208(3):668–73.
CAS
PubMed
Google Scholar
Li W, Zhao F, Fang W, Xie D, Hou J, Yang X, Zhao Y, Tang Z, Nie L, Lv S. Identification of early salt stress responsive proteins in seedling roots of upland cotton (Gossypium hirsutum L.) employing iTRAQ-based proteomic technique. Front Plant Sci. 2015;6:732.
PubMed
PubMed Central
Google Scholar
Negrão S, Schmöckel M, Tester M. Evaluating physiological responses of plants to salinity stress. Annal Botany. 2017;119(1):1–11.
Google Scholar
Amini S, Ghadiri H, Chen C, Marschner P. Salt-affected soils, reclamation, carbon dynamics, and biochar: a review. J Soils Sediments. 2016;16(3):939–53.
CAS
Google Scholar
Parihar P, Singh S, Singh R, Singh V, Prasad S. Effects of salinity stress on plants and its tolerance strategies: a review. Environ Sci Pollut R. 2015;22(6):4056–75.
CAS
Google Scholar
Stavridou E, Hastings A, Webster R, Robson P. The impact of soil salinity on the yield, composition and physiology of the bioenergy grass Miscanthus × giganteus. GCB Bioenergy. 2017;9(1):92–104.
CAS
Google Scholar
Munns R. Comparative physiology of salt and water stress. Plant Cell Environ. 2002;25(2):239–50.
CAS
PubMed
Google Scholar
Han S, Wang C, Wang W, Jiang L. Mitogen-activated protein kinase 6 controls root growth in Arabidopsis by modulating Ca2+ −based Na+ flux in root cell under salt stress. J Plant Physiol. 2014;171(5):26–34.
CAS
PubMed
Google Scholar
Schilling R, Marschner P, Shavrukov Y, Berger B, Tester M, Roy S, Plett D. Expression of the Arabidopsis vacuolar H+-pyrophosphatase gene (AVP1) improves the shoot biomass of transgenic barley and increases grain yield in a saline field. Plant Biotechnol J. 2014;12(3):378–86.
CAS
PubMed
Google Scholar
Lehmann J. A handful of carbon. Nature. 2007;447:143–4.
CAS
PubMed
Google Scholar
Jeffery S, Verheijen F, van der Velde M, Bastos A. A quantitative review of the effects of biochar application to soils on crop productivity using meta-analysis. Agric Ecosyst Environ. 2011;144(1):175–87.
Google Scholar
Hussain M, Farooq M, Nawaz A, Al-Sadi A, Solaiman Z, Alghamdi S, Ammara U, Ok Y, Siddique K. Biochar for crop production: potential benefits and risks. J Soils Sediments. 2017;17:685–716.
CAS
Google Scholar
Raboin L, Razafimahafaly A, Rabenjarisoa M, Rabary B, Dusserre J, Becquer T. Improving the fertility of tropical acid soils: liming versus biochar application? A long-term comparison in the highlands of Madagascar. Field Crop Res. 2016;199:99–108.
Google Scholar
Cao D, Li Y, Liu B, Kong F, Tran L. Adaptive mechanisms of soybean grown on salt-affected soils. Land Degrad Dev. 2018;29(4):1054–64.
Google Scholar
Mutava R, Prince S, Syed N, Song L, Valliyodan B, Chen W, Nguyen H. Understanding abiotic stress tolerance mechanisms in soybean: a comparative evaluation of soybean response to drought and flooding stress. Plant Physiol Bioch. 2015;86:109–20.
CAS
Google Scholar
Kunert K, Vorster B, Fenta B, Kibido T, Dionisio G, Foyer C. Drought stress responses in soybean roots and nodules. Front Plant Sci. 2016;7:1015.
PubMed
PubMed Central
Google Scholar
Baroowa B, Gogoi N. Biochemical changes in black gram and green gram genotypes after imposition of drought stress. J Food Legume. 2014;27:350–3.
Google Scholar
Fleury D, Jefferies S, Kuchel H, Langridge P. Genetic and genomic tools to improve drought tolerance in wheat. J Exp Bot. 2010;61(12):3211–22.
CAS
PubMed
Google Scholar
Li N, Zhou C, Sun X, Jing J, Tian X, Wang L. Effects of ridge tillage and mulching on water availability, grain yield, and water use efficiency in rain-fed winter wheat under different rainfall and nitrogen conditions. Soil Till Res. 2018;179:86–95.
Google Scholar
Girma F, Haile D. Effects of supplemental irrigation on physiological parameters and yield of faba bean (Vicia faba L.) varieties in the highlands of bale, Ethiopia. J Agron. 2014;13(1):29–34.
CAS
Google Scholar
Zlatev Z, Lidon F. An overview on drought induced changes in plant growth, water relations and photosynthesis. Emir J Food Agr. 2012;24(1):57–72.
Google Scholar
Stepien P, Johnson G. Contrasting responses of photosynthesis to salt stress in the glycophyte Arabidopsis and the halophyte Thellungiella: role of the plastid terminal oxidase as an alternative electron sink. Plant Physiol. 2009;149:1154–65.
CAS
PubMed
PubMed Central
Google Scholar
Michelbart M, Hasegawa P, Bailey-Serres B. Genetic mechanisms of abiotic stress tolerance that translate to crop yield stability. Nat Rev Genet. 2015;16:237–51.
Google Scholar
Fenta B, Beebe S, Kunert K, Burridge J, Barlow K, Lynch J, Foyer C. Field phenotyping of soybean roots for drought stress tolerance. Agronomy. 2014;4(3):418–35.
Google Scholar
Rolli E, Marasco R, Vigani G, Ettoumi B, Mapelli F, Deangelis M, Gandolfi C, Casati E, Previtali F, Gerbino R, Pierotti F, Borin S, Sorlini C, Zocchi G, Daffonchio D. Improved plant resistance to drought is promoted by the root-associated microbiome as a water stress-dependent trait. Environ Microbiol. 2015;17(2):316–31.
PubMed
Google Scholar
West G, Inzé D, Beemster G. Cell cycle modulation in the response of the primary root of Arabidopsis to salt stress. Plant Physiol. 2004;135:1050–8.
CAS
PubMed
PubMed Central
Google Scholar
Robbins N, Dinneny J. Growth is required for perception of water availability to pattern root braches in plants. P Natl Acad Sci USA. 2018;115(4):E822–31.
CAS
Google Scholar
Kamau S, Karanja N, Ayuke F, Lehmann J. Short-term influence of biochar and fertilizer-biochar blends on soil nutrients, fauna and maize growth. Biol Fert Soils. 2019;55(7):661–73.
CAS
Google Scholar
Sun H, Lu H, Chu L, Shao H, Shi WM. Biochar applied with appropriate rates can reduce N leaching, keep N retention and not increase NH3 volatilization in a coastal saline soil. Sci Total Environ. 2017;575:820–5.
CAS
PubMed
Google Scholar
Obia A, Mulder J, Martinsen V, Cornelissen G, Børresen T. In situ effects of biochar on aggregation, water retention and porosity in light-textured tropical soils. Soil Till Res. 2016;155:35–44.
Google Scholar
Fischer B, Manzoni S, Morillas L, Garcia M, Johnson M, Lyon S. Improving agricultural water use efficiency with biochar-a synthesis of biochar effects on water storage and fluxes across scales. Sci Total Environ. 2019;657:853–62.
CAS
PubMed
Google Scholar
Xu C, Hosseini-Bai S, Hao Y, Rachaputi R, Wang H, Xu Z, Wallace H. Effect of biochar amendment on yield and photosynthesis of peanut on two types of soils. Environ Sci Pollut Res. 2015;22(8):6112–25.
CAS
Google Scholar
Medrano H, Tomás M, Martorell S, Flexas J, Hernández E, Rosselló J, Pou A, Escalona J, Bota J. From leaf to whole-plant water use efficiency (WUE) in complex canopies: limitations of leaf WUE as a selection target. Crop J. 2015;3(3):220–8.
Google Scholar
Wang C, Wu S, Tankari M, Zhang X, Li L, Gong D, Hao W, Zhang Y, Mei X, Wang Y, Liu F, Wang Y. Stomatal aperture rather than nitrogen nutrition determined water use efficiency of tomato plants under nitrogen fertigation. Agr Water Manage. 2018;209:94–101.
Google Scholar
Uddin S, Löw M, Parvin S, Fitzgerald G, Bahrami H, Tausz-Posch S, Armstrong R, O’Leary G, Tausz M. Water use and growth responses of dryland wheat grown under elevated [CO2] are associated with root length in deeper, but not upper soil layer. Field Crop Res. 2018;224:170–81.
Google Scholar
Zhang Y, Wang H, Maucieri C, Liu S, Zou J. Annual nitric and nitrous oxide emissions response to biochar amendment from an intensive greenhouse vegetable system in Southeast China. Sci Hortic. 2019;246:879–86.
CAS
Google Scholar
Niu S, Xing X, Zhang Z, Xia J, Zhou X, Song B, Li L, Wan S. Water-use efficiency in response to climate change: from leaf to ecosystem in a temperate steppe. Glob Chang Biol. 2011;17:1073–82.
Google Scholar
Zhou Q, Ju C, Wang Z, Zhang H, Liu L, Yang J, Zhang J. Grain yield and water use efficiency of super rice under soil water deficit and alternate wetting and drying irrigation. J Integr Agr. 2017;16(5):1028–43.
Google Scholar
Chaves M, Flexas J, Pinheiro C. Photosynthesis under drought and salt stress: regulation mechanisms from whole plant to cell. Anual Botany. 2009;103(4):551–60.
CAS
Google Scholar