African Journal of
Biotechnology

  • Abbreviation: Afr. J. Biotechnol.
  • Language: English
  • ISSN: 1684-5315
  • DOI: 10.5897/AJB
  • Start Year: 2002
  • Published Articles: 12486

Full Length Research Paper

Morphological and proteomic analyses of Zea mays in response to water stress

Precious Thobile Lukhele
  • Precious Thobile Lukhele
  • Department of Botany, School of Biological Sciences, North-West University, Private Bag X2046, Mmabatho, 2735, South Africa.
  • Google Scholar
Lerato Thamaga
  • Lerato Thamaga
  • Department of Botany, School of Biological Sciences, North-West University, Private Bag X2046, Mmabatho, 2735, South Africa.
  • Google Scholar
Oziniel Ruzvidzo
  • Oziniel Ruzvidzo
  • Department of Botany, School of Biological Sciences, North-West University, Private Bag X2046, Mmabatho, 2735, South Africa.
  • Google Scholar
Tshegofatso Bridget Dikobe
  • Tshegofatso Bridget Dikobe
  • Department of Botany, School of Biological Sciences, North-West University, Private Bag X2046, Mmabatho, 2735, South Africa.
  • Google Scholar


  •  Received: 09 March 2020
  •  Accepted: 27 April 2020
  •  Published: 31 May 2020

References

Bargali K, Bargali SS (2016). Germination capacity of seeds of leguminous plants under water deficit conditions: implication for restoration of degraded lands in Kumaun Himalaya. Tropical Ecology 57(3):445-453.

 

Bargali K, Singh SP (2007). Germination behavior of some leguminous and actionorhizal plants of Himalaya. Effect of temperature and medium. Tropical Ecology 48:99-105.

 
 

Bassetti P, Westgate ME (1993). Water deficit affects receptivity of maize silks. Crop Science 33:279-282.
Crossref

 
 

Boyer JS (1982). Plant productivity and environment. Science 218:443-448.
Crossref

 
 

Bray EA (1997). Plant responses to water deficit. Trends in Plant Science 2(2):48-54.
Crossref

 
 

Cao J, Packer JS, Ramani V, Cusanovich DA, Huynh C, Daza R, Qiu X, Lee C, Furlan SN, Steemers FJ, Adey A (2017). Comprehensive single-cell transcriptional profiling of a multicellular organism. Science 357(6352):661-667.
Crossref

 
 

Chaves MM, Pereira JS, Maroco J, Rodrigues ML, Ricardo CPP, Osório ML, Carvalho I, Faria T, Pinheiro C (2002). How plants cope with water stress in the field? Photosynthesis and growth. Annals of Botany 89(7):907-916.
Crossref

 
 

Clarke JM (1986). Effect of leaf rolling on leaf water loss in Triticum spp. Canadian Journal of Plant Science 66:885-891.
Crossref

 
 

Cohen M, Save R, Biel C, Marfa O (1998). Simultaneous measurements of water stress with LVDT sensors and electrotensiometers: Application in pepper plants grown in two types of perlites. Acta Horticulturae 421:193-199.
Crossref

 
 

Cui S, Huang F, Wang J, Ma X, Cheng Y, Liu J (2005). A proteomic analysis of cold stress responses in rice seedlings. Proteomics 5(12):3162-3172.
Crossref

 
 

Dai A (2013). Increasing drought under global warming in observations and models. Nature Climate Change 3(1):52-58.
Crossref

 
 

Dani V, Simon WJ, Duranti M, Croy RR (2005). Changes in the tobacco leaf apoplast proteome in response to salt stress. Proteomics 5(3):737-745.
Crossref

 
 

DeJonge KC, Ascough II JC, Andales AA, Hansen NC, Garcia LA. Arabi M (2012). Improving evapotranspiration simulations in the CERES-Maize model under limited irrigation. Agricultural Water Management 115:92-103.
Crossref

 
 

Farooq M, Wahid A, Kobayashi N, Fujita D, Basra SMA (2009). Plant drought stress: Effects, mechanisms and management. Agronomy for Sustainable Development 29:185-212.
Crossref

 
 

Farré I, Faci JM (2006). Comparative response of maize (Zea mays L.) and sorghum (Sorghum bicolor L. Moench) to deficit irrigation in a Mediterranean environment. Agricultural Water Management 83:135-143.
Crossref

 
 

Fathi A, Tari DB (2016). Effect of drought stress and its mechanism in plants. International Journal of Life Sciences 10(1):1-6.
Crossref

 
 

Gallardo M, Thompson RB, Valdez LC, Fernández MD (2004). Use of stem diameter variations to detect plant water stress in tomato. Irrigation Science 24(4):241-255.
Crossref

 
 

Hasanuzzaman M, Nahar K, Alam MM, Fujita M (2014). Modulation of antioxidant machinery and the methylglyoxal detoxification system in selenium-supplemented Brassica napus seedlings confers tolerance to high temperature stress. Biological Trace Element Research 161(3):297-307.
Crossref

 
 

Hasegawa PM, Bressan RA, Zhu JK, Bohnert HJ (2000). Plant cellular and molecular responses to high salinity. Annual Review of Plant Physiology and Plant Molecular Biology 51:463-499.
Crossref

 
 

Hegarty TW (1977). Seed activation and seed germination under moisture stress. New Phytologist 78:349-359.
Crossref

 
 

Jaleel CA, Wang G, Ahmad P (2009). Changes in the photosynthetic characteristics of 'Catharanthus Roseus' L. as a result of exogenous growth regulators. Plant Omics 2(4):169.

 
 

Jin R, Shi HT, Han CY, Zhong B, Wang Q, Chan ZL (2015). Physiological changes of purslane (Portulaca oleracea L.) after progressive drought stress and rehydration. Scientia Horticulturae 194:215-221.
Crossref

 
 

Kadioglu A, Terzi R, Saruhan N, Saglam A (2012). Current advances in the investigation of leaf rolling caused by biotic and abiotic stress factors. Plant Science 182:42-48.
Crossref

 
 

Kakumanu A, Madana MR, Curtis-Klumas A, Krishan A, Batlang U, Myers E, Grene R, Pereira A (2012). Effects of drought on gene expression in maize reproductive and leaf meristem tissue revealed by RNA-Seq. Plant Physiology 160:846-867.
Crossref

 
 

Kasuga M, Liu Q, Miura S, Yamaguchi-Shinozaki K, Shinozaki K (1999). Improving plant drought, salt and freezing tolerance by gene transfer of a single stress-inducible transcription factor. Nature Biotechnology 17(3):287-291.
Crossref

 
 

Kim S, Kim D, Cho SW, Kim J, Kim JS (2014). Highly efficient RNA-guided genome editing in human cells via delivery of purified Cas9 ribonucleoproteins. Genome Research 24(6):1012-1019.
Crossref

 
 

Kim SG, Lee JS, Kim JT, Kwon YS, Bae DW, Bae HH, Son BY, Baek SB, Kwon YU, Woo MO, Shin S (2015). Physiological and proteomic analysis of the response to drought stress in an inbred Korean maize line. Plant Omics 8(2):159.

 
 

Kramer PJ, Kozlowski TT (1980). Physiology of Trees. Mc Graw- Hill, New York.

 
 

Liu W, Lü P, Su K,Yang JS, Zhang JW, Dong ST, Liu P, Sun Q (2010). Effects of planting density on the grain yield and source-sink characteristics of summer maize. Ying Yyong Sheng Ttai Xue Bbao 21(7):1737-1743.

 
 

Lobell DB, Bänziger M, Magorokosho C, Vivek B (2011). Nonlinear heat effects on African maize as evidenced by historical yield trials. Nature Climate Change 1:42-45.
Crossref

 
 

Nayyar H, Gupta D (2006). Differential sensitivity of C3 and C4 plants to water deficit stress: association with oxidative stress and antioxidants. Environmental and Experimental Botany 58(1):106-113.
Crossref

 
 

Ndimba BK, Chivasa S, Simon WJ, Slabas AR (2005). Identification of Arabidopsis salt and osmotic stress responsive proteins using two‐dimensional difference gel electrophoresis and mass spectrometry. Proteomics 5(16):4185-4196.
Crossref

 
 

Ngara R, Ndimba B (2011). Mapping and characterisation of the sorghum cell suspension culture secretome. African Journal of Biotechnology 10 (2):253-266.

 
 

Ngara R, Ndimba R, Borch-Jensen J, Jensen ON, Ndimba B (2012). Identification and profiling of salinity stress-responsive proteins in Sorghum bicolor seedlings. Journal of Proteomics 75(13):4139-4150.
Crossref

 
 

Pantola S, Vibhuti, Bargali K, Bargali SS (2017). Screening of three leguminous crops for drought stress tolerance at germination and seedling growth stage Indian Journal of Agricultural 87(4):467-472.

 
 

Parchin RA, Shaban M (2014). Study on protein Changes in wheat under drought stress. International Journal of Advanced Biological and Biomedical Research 2(2):317-320.

 
 

Pratap V, Sharma YK (2010). Impact of osmotic stress on seed germination and seedling growth in black gram (Phaseolus mungo). Journal of Environmental Biology 31:721-726.

 
 

Raos GJN, ReddyJN, Variar M, Mahender A (2016). Molecular breeding to improve plant breeding to improve plant resistance to abiotic stresses. Advances in Plant Breeding Strategies 2:283-326.
Crossref

 
 

Riccardi F, Gazeau P, Jacquemot MP, Vincent D, Zivy M (2004). Deciphering genetic variations of proteome responses to water deficit in maize leaves. Plant Physiology and Biochemistry 42:1003-1011.
Crossref

 
 

Rizhsky L, Liang H, Mittler R (2002). The combined effect of drought stress and heat shock on gene expression in tobacco. Plant Physiology 130(3):1143-1151.
Crossref

 
 

Salazar C, Hernández C, Pino MT (2015). Plant water stress: Associations between ethylene and abscisic acid response. Chilean Journal of Agricultural Research 75:71-79.
Crossref

 
 

Seki M, Kamei A, Yamaguch-Shinozaki K, Shinozaki K (2003). Molecular responses to drought, salinity and frost: common and different paths for plant protection. Current Opinion in Biotechnology 14:194-199.
Crossref

 
 

Seyed YSL, Rouhollah M, Mohammad MH, Ismail MMR (2012). Water stress in plants: causes, effects and responses. Drought Stress Tolerance in Plants 1:1-16.

 
 

Shi H, Ye T, Zhong B, Liu X, Chan Z (2014). Comparative proteomic and metabolomic analyses reveal mechanisms of improved cold stress tolerance in Bermuda grass (Cynodon dactylon (L). Pers.) by exogenous calcium. Journal of Integrative Plant Biology 56(11):1064-1079.
Crossref

 
 

Shinozaki K, Yamaguch-Shinozaki K, Seki M (2003). Regulatory network of gene expression in the drought and cold stress responses. Current Opinion in Plant Biology 6 (5):410-417.
Crossref

 
 

Vibhuti CS, Bargali K, Bargali SS (2015). Seed germination and seedling growth parameters of rice (Oryza sativa L.) varieties as affected by salt and water stress. Indian Journal of Agricultural Sciences 85(1):102-108.

 
 

Yoshimura K, Masuda A, Kuwano M, Yokota A, Akashi K (2008). Programmed proteome response for drought avoidance/tolerance in the root of a C3 xerophyte (wild watermelon) under water deficits. Plant and Cell Physiology 49(2):226-241.
Crossref

 
 

Zhao Y, Du H, Wang Z, Huang B (2011). Identification of proteins associated with water-deficit tolerance in C4 perennial grass species, Cynodon dactylon × Cynodon transvaalensis and Cynodon dactylon. Physiologia Plantarum 141:40-55.
Crossref

 
 

Zheng J, Fu J, Gou M, Huai J, Liu Y, Jian M, Huang Q, Guo X, Dong Z, Wang H, Wang G (2010). Genome-wide transcriptome analysis of two maize inbred lines under drought stress. Plant Molecular Biology 72:407-421.
Crossref

 
 

Zhu JK (2002). Salt and drought stress signal transduction in plants. Annual Review of Plant Biology 53(1):247-273.
Crossref

 
 

Zobel DB, Jeet R, Bargali SS (1995). Structural and physiological changes in Quercus leucotrchophora and Pinus roxburghii associated with stand disturbance in the Kumaun Himalaya, India. International Journal of Ecology and Environmental Sciences 21:45-66.