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

Evaluation of sugar beet monogerm O-type lines for salinity tolerance at vegetative stage

Zahra Abbasi
  • Zahra Abbasi
  • Horticulture Crops Research Departrnent, Isfahan Agricultural and Natural Resources Research and Education Center, (AREEO), Isfahan, Iran.
  • Google Scholar


  •  Received: 16 December 2019
  •  Accepted: 10 April 2020
  •  Published: 30 September 2020

References

Abbasi Z, Golabadi M, Khayamim S, Pessarakli M (2018). The response of drought-tolerant sugar beet to salinity stress under field and controlled environmental conditions. Journal of Plant Nutrition 41(20):2660-2672.
Crossref

 

Abbasi Z, Arzani A, Majidi MM, Rajabi A, JalaliA (2019). Genetic analysis of sugar yield and physiological traits in sugar beet under salinity stress conditions. Euphytica 215(5):99-113.
Crossref

 
 

Balasubramanian V, Morales AC, Cruz RT, Thiyagarajan TM, Nagarajan R, Babu M, Abdulrachman S, Hai LH (2000). Adaptation of the chlorophyllmeter (SPAD) technology forreal-time N management in rice: a review. International Rice Research Notes 25:4-8.

 
 

Bosemak NO (2006). Genetics and breeding.In Sugar beet, ed. A.P. Draycott, pp. 50-88. Oxford: Blackwell.
Crossref

 
 

Chapman SC, Barreto HJ (1997). Using a chlorophyll meter to estimate specific leaf nitrogen of tropical maize during vegetative growth. Agronomy Journal 89:557-562.
Crossref

 
 

Campbell RJ, Mobley KM, Marini RP, Pfeiffer DG (1990). Growing conditions alter the relationship between SPAD-510 values and apple leaf chlorophyll. Horticulture Science 25:330-331.
Crossref

 
 

Chikha MB, Hessini K, Ourteni RN, Ghorbel A, Zoghlami N (2016). Identification of barley landrace genotypes with contrasting salinity tolerance at vegetative growth stage. Plant Biotechnology 33(4):287-295.
Crossref

 
 

Dadkhah A, Rassam G (2017). Effect of short-term salinity on photosynthesis and ion relations in two sugar beet cultivars. Plant Physiology 7(2):1983-1989.

 
 

De los Reyes BG, McGrathJM (2003). Cultivar-specific seedling vigor and expression of a putative oxalate oxidase germin-like protein in sugar beet (Beta vulgaris L.). Theoretical and Applied Genetics 107: 54-61.
Crossref

 
 

Durrant MJ, Gummerson RJ (1990). Factors associated with germination of sugarbeet seed in the standard test and establishment in the field. Seed Science and Technology 18(1):1-10.

 
 

Eschie HA, Al-BarhiB, Al-GheityS, Al-KhanjariS (2002). Root and shoot growth in salinity-stressed Alfaalfa in response to nitrogen source. Journal of Plant Nutrition 25:2559-2569.
Crossref

 
 

Esfahani M, Abbasi HA, Rabiei B, Kavousi M (2008). Improvement of nitrogen management in rice paddy fields using chlorophyll meter (SPAD). Paddy and Water Environment 6(2):181-188.
Crossref

 
 

Fernandez GCJ (1991). Effective selection criteria for assessing plant stress tolerance.In: O.C.G.Kuo.(ed.). Adaptation of food crops to tempetature and water stress.Prov.Ann.Intn.Symp.Taiwan.13-18 Aug.Asian.Veget.Res.And.Develop.Center.

 
 

Ghoulam C, FoursyA, FaresK (2002). Effects of salt stress on growth, inorganic ions and proline accumulation in relation to osmotic adjustment in five sugar beet cultivars. Environmental and Experimental Botany 47:39-50.
Crossref

 
 

Gidner S, Lennefors B-L, Nilsson N-O, Bensenfelt J, Johansson E, Gyllenspetz U, Kraft T (2005). QTL mapping of BNYVV resistance from the WB41 source in sugar beet. Genome 48:279-285.
Crossref

 
 

Hassani M, Heidari B, Mahmoudi SB, Taleghani DF, Stevanato P (2019). Identification of Owen-Type Male Sterility Maintainers Carrying Resistance AgainstRhizoctonia Crown and Root Rot (Rcrr) Disease in Sugar Beet Germplasm. Sugar Technology pp. 1-7.
Crossref

 
 

Hoagland DR, Arnon DI (1959). The water culture method for growing plants without soil. California Agricultural Experiment Station 307:32p.

 
 

Jamil M, Rehman S, Rha ES (2007). Salinity effect on plant growth, PSII photochemistry and chlorophyll content in sugar beet (Beta vulgaris L.) and cabbage (Brassica oleraceacapitata L.).Pakistan Journal of Botany 39(3):753-760.

 
 

Jamil A, Riaz S, Ashraf M, Foolad MR (2011). Gene expression profiling of plants under salt stress. Critical Reviews in Plant Sciences 30(5):435-458.
Crossref

 
 

Jangpromma N, Songsri P, Thammasirirak S, Jaisil P (2010). Rapid assessment of chlorophyll content in sugarcane using a SPAD chlorophyll meter across different water stress conditions. Asian Journal of Plant Sciences 9(6):368.
Crossref

 
 

Khayamim S, Tavkol Afshari R, Sadeghian SY, Poustini K, Roozbeh F, Abbasi Z (2014). Seed germination, plant establishment, and yield of sugar beet genotypes under salinity stress. Journal of Agriculture of Science 16:779-790.

 
 

Kim J, Liu Y, Zhang X, Zhao B, Childs KL (2016). Analysis of salt-induced physiological and proline changes in 46 switchgrass (Panicumvirgatum) lines indicates multiple response modes. Plant Physiology and Biochemistry105:203-212.
Crossref

 
 

Lein JC, Sagstetter CM, Schulte D, Thurau T, Varrelmann M, Saal B, Koch G, Borchardt DC, Jung C (2008). Mapping of rhizoctonia root rot resistance genes in sugar beet using pathogen response-related sequences as markers. Plant Breeding 127:602-611.
Crossref

 
 

Li W, WangR, WangW, LiuH, LiuJ, ZhangS, Ai Y(2007). Effect of NaCl stress on sugar beet growth. Sugar Crops China 2:17-19.

 
 

McGrath JM, Derrico CA, Morales M, Copeland LO, Christenson DR (2000). Germination of sugar beet (Beta vulgaris L.) seed submerged in hydrogen peroxide and water as a means to discriminate cultivar and seedlot vigor. Seed Science Technology 28(3):607-620.

 
 

McGrath JM, ElawadyA, El-Khishin D, NaegeleRP, CarrKM, De los Reyes B( 2008). Sugar beet germination:Phenotypic selection and molecular profiling to identify genes involved in abiotic stress response. Acta Horticulture 782(35).
Crossref

 
 

Mini ML, Sathya M, Arulvadivookarasi K, Jayachandran KS ,Anusuyadevi M (2015). Selection of salt tolerant cowpea genotypes based on salt tolerant indices of morpho-biochemical traits. Current Trends in Biotechnology and Pharmacy 9(4):306-316.

 
 

Minolta (1989). Chlorophyll Meter SPAD-502.Instruction Manual. Minolta Co., Ltd., Radiometric Instruments Operations, Osaka, Japan.

 
 

Moritani M, Taguchi K, Kitazaki K, Matsuhira H, Katsuyama T, Mikami T, Kubo T (2013). Identification of the predominant nonrestoring allele for Owen-type cytoplasmic male sterility in sugar beet (Beta vulgaris L.): development of molecular markers for the maintainer genotype. Molecular Breeding 32(1):91-100.
Crossref

 
 

Munns R, James RA (2003). Screening methods for salinity tolerance: A case study with tetraploid wheat. Plant Soil 53:201-218.
Crossref

 
 

Ober ES, Rajabi A (2010).Abiotic stress in sugar beet. Sugar Tech 12(3-4):294-298.
Crossref

 
 

Owen FV (1945). Cytoplasmically inherited male-sterility in sugar beets. Journal of Agricultural Research 71:423-440.

 
 

Peng S, Laza RC, Garcia FC, Cassman KG (1995b). Chlorophyll meter estimates leaf area-based N concentration of rice. Commun Soil Science Plant Analysis 26:927-935.
Crossref

 
 

Peng S, Garcia FC, Laza RC, Cassman KG (1993). Adjustment for specific leaf weight improves chlorophyll meter's estimation of rice leaf nitrogen concentration. Agronomy Journal 85:987-990.
Crossref

 
 

Peng C, Geng G, Yu L, Yang Y, Pi Z, Sun F, Sun X, Zhao H (2014). Effect of different Na+ concentrations on growth and physiological traits of sugar beet. Journal of Plant Nutition and Fertilization 20:459-465.

 
 

Rozema J, Flowers TJ (2008). Crops for a salinized world. Science 322:1478-1480.
Crossref

 
 

Sakina A, AhmedI, ShahzadA, IqbalM, Asif M (2016). Genetic variation for salinity tolerance in Pakistani rice (Oryza sativa L.) germplasm. Journal of Agronomy and Crop Science 202(1):25-36.
Crossref

 
 

Smeal D, Zhang H (1994). Chlorophyll meter evaluation for nitrogen management in corn. Commun Soil Plant Analysis 25:1495-1503.
Crossref

 
 

Steel RGD, Torrie JH (1984). Principles and procedures of statistics: A biometrical approach. New York: McGraw Hill.

 
 

Tahjib-UI-Arif M, Sohag AAM, Afrin S, Bashar KK, Afrin T, Mahamud AGM, Brestic M (2019). Differential response of sugar beet to long-term mild to severe salinity in a soil-pot culture. Agriculture 9(10):223-242.
Crossref

 
 

Turner FT, Jund MF (1991). Chlorophyll meter to predict nitrogen topdress requirement for semidwarf rice. Agronomy Journal 83:926-928.
Crossref

 
 

Uddling J, Gelang-AlfredssonJ, Piikki K, PleijelH(2007). Evaluating the relationship between leaf chlorophyll concentration and SPAD-502 chlorophyll meter readings. Photosynthesis Research 91:37-46.
Crossref

 
 

Wang Y, Stevanato P, Yu L, Zhao H, Sun X, Sun F, Li J, Geng G (2017). The physiological and metabolic changes in sugar beet seedlings under different levels of salt stress. Journal of Plant Research 130:1079-1093.
Crossref

 
 

Win KT, Aung ZO, Hirasawa T, Ookawa T, Yutaka H (2011). Genetic analysis of Myanmar Vigna species in responses to salt stress at the seedling stage. African Journal of Biotechnology 10 (9):1615-1624.

 
 

Zhang L, Ma H, Chen T, Pen J, Yu S, Zhao X (2014). Morphological and physiological responses of cotton (Gossypium hirsutum L.) plants to salinity. PLoS ONE 9:e112807.
Crossref