Sorghum in dryland: morphological, physiological, and molecular responses of sorghum under drought stress

被引:104
作者
Abreha, Kibrom B. [1 ]
Enyew, Muluken [1 ,2 ]
Carlsson, Anders S. [1 ]
Vetukuri, Ramesh R. [1 ]
Feyissa, Tileye [2 ]
Motlhaodi, Tiny [3 ]
Ng'uni, Dickson [4 ]
Geleta, Mulatu [1 ]
机构
[1] Swedish Univ Agr Sci, Dept Plant Breeding, Box 190, S-23422 Lomma, Sweden
[2] Addis Ababa Univ, Inst Biotechnol, Box 1176, Addis Ababa, Ethiopia
[3] Agr Res Dept, Private Bag 0033, Gaborone, Botswana
[4] Zambia Agr Res Inst, Mt Makulu Res Stn, PB 7, Chilanga, Zambia
基金
瑞典研究理事会;
关键词
Drought tolerance; Germplasm; Grain quality; Sorghum; Source-sink relations; BICOLOR L. MOENCH; TRANSCRIPTION FACTOR FAMILY; QUANTITATIVE TRAIT LOCI; STAY-GREEN SORGHUM; GRAIN-SORGHUM; TRANSPIRATION EFFICIENCY; CANOPY DEVELOPMENT; WATER-STRESS; LEAF-AREA; TOLERANCE;
D O I
10.1007/s00425-021-03799-7
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Main conclusion Droughts negatively affect sorghum's productivity and nutritional quality. Across its diversity centers, however, there exist resilient genotypes that function differently under drought stress at various levels, including molecular and physiological. Sorghum is an economically important and a staple food crop for over half a billion people in developing countries, mostly in arid and semi-arid regions where drought stress is a major limiting factor. Although sorghum is generally considered tolerant, drought stress still significantly hampers its productivity and nutritional quality across its major cultivation areas. Hence, understanding both the effects of the stress and plant response is indispensable for improving drought tolerance of the crop. This review aimed at enhancing our understanding and provide more insights on drought tolerance in sorghum as a contribution to the development of climate resilient sorghum cultivars. We summarized findings on the effects of drought on the growth and development of sorghum including osmotic potential that impedes germination process and embryonic structures, photosynthetic rates, and imbalance in source-sink relations that in turn affect seed filling often manifested in the form of substantial reduction in grain yield and quality. Mechanisms of sorghum response to drought-stress involving morphological, physiological, and molecular alterations are presented. We highlighted the current understanding about the genetic basis of drought tolerance in sorghum, which is important for maximizing utilization of its germplasm for development of improved cultivars. Furthermore, we discussed interactions of drought with other abiotic stresses and biotic factors, which may increase the vulnerability of the crop or enhance its tolerance to drought stress. Based on the research reviewed in this article, it appears possible to develop locally adapted cultivars of sorghum that are drought tolerant and nutrient rich using modern plant breeding techniques.
引用
收藏
页数:23
相关论文
共 137 条
[31]   Extensive Variation in the Density and Distribution of DNA Polymorphism in Sorghum Genomes [J].
Evans, Joseph ;
McCormick, Ryan F. ;
Morishige, Daryl ;
Olson, Sara N. ;
Weers, Brock ;
Hilley, Josie ;
Klein, Patricia ;
Rooney, William ;
Mullet, John .
PLOS ONE, 2013, 8 (11)
[32]  
Fadoul Hind Emad, 2018, Australian Journal of Crop Science, V12, P1543, DOI 10.21475/ajcs.18.12.09.PNE134
[33]   Wasteful, essential, evolutionary stepping stone? The multiple personalities of the photorespiratory pathway [J].
Fernie, Alisdair R. ;
Bauwe, Hermann .
PLANT JOURNAL, 2020, 102 (04) :666-677
[34]   Do we need more drought for better nutrition? The effect of precipitation on nutrient concentration in East African food crops [J].
Fischer, Sahrah ;
Hilger, Thomas ;
Piepho, Hans-Peter ;
Jordan, Irmgard ;
Cadisch, Georg .
SCIENCE OF THE TOTAL ENVIRONMENT, 2019, 658 :405-415
[35]   Drought stress tolerance strategies revealed by RNA-Seq in two sorghum genotypes with contrasting WUE [J].
Fracasso, Alessandra ;
Trindade, Luisa M. ;
Amaducci, Stefano .
BMC PLANT BIOLOGY, 2016, 16
[36]   A dehydration-induced NAC protein, RD26, is involved in a novel ABA-dependent stress-signaling pathway [J].
Fujita, M ;
Fujita, Y ;
Maruyama, K ;
Seki, M ;
Hiratsu, K ;
Ohme-Takagi, M ;
Tran, LSP ;
Yamaguchi-Shinozaki, K ;
Shinozaki, K .
PLANT JOURNAL, 2004, 39 (06) :863-876
[37]   Rubisco small subunits of C4 plants, Napier grass and guinea grass confer C4-like catalytic properties on Rubisco in rice [J].
Fukayama, Hiroshi ;
Kobara, Takashi ;
Shiomi, Keita ;
Morita, Ryutaro ;
Sasayama, Daisuke ;
Hatanaka, Tomoko ;
Azuma, Tetsushi .
PLANT PRODUCTION SCIENCE, 2019, 22 (02) :296-300
[38]   Potential improvement of photosynthetic CO2 assimilation in crops by exploiting the natural variation in the temperature response of Rubisco catalytic traits [J].
Galmes, Jeroni ;
Capo-Bauca, Sebastia ;
Niinemets, Ulo ;
Iniguez, Concepcion .
CURRENT OPINION IN PLANT BIOLOGY, 2019, 49 :60-67
[39]   Adaptation Responses to Early Drought Stress of West Africa Sorghum Varieties [J].
Gano, Boubacar ;
Dembele, Joseph Sekou B. ;
Tovignan, Thierry Klanvi ;
Sine, Bassirou ;
Vadez, Vincent ;
Diouf, Diaga ;
Audebert, Alain .
AGRONOMY-BASEL, 2021, 11 (03)
[40]   Validation of QTL mapping and transcriptome profiling for identification of candidate genes associated with nitrogen stress tolerance in sorghum [J].
Gelli, Malleswari ;
Konda, Anji Reddy ;
Liu, Kan ;
Zhang, Chi ;
Clemente, Thomas E. ;
Holding, David R. ;
Dweikat, Ismail M. .
BMC PLANT BIOLOGY, 2017, 17