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Volume 36 Issue 9
Sep.  2021
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Article Contents
CHEN M J, CAO S S, TAN J Y, et al. Field Determination on Anthracnose-resistance of Sorghum Cultivars in Guizhou [J]. Fujian Journal of Agricultural Sciences,2021,36(9):1063−1068 doi: 10.19303/j.issn.1008-0384.2021.09.010
Citation: CHEN M J, CAO S S, TAN J Y, et al. Field Determination on Anthracnose-resistance of Sorghum Cultivars in Guizhou [J]. Fujian Journal of Agricultural Sciences,2021,36(9):1063−1068 doi: 10.19303/j.issn.1008-0384.2021.09.010

Field Determination on Anthracnose-resistance of Sorghum Cultivars in Guizhou

doi: 10.19303/j.issn.1008-0384.2021.09.010
  • Received Date: 2021-03-31
  • Rev Recd Date: 2021-06-21
  • Available Online: 2021-08-10
  • Publish Date: 2021-09-28
  •   Objective  Resistance of local sorghum varieties in Guizhou to anthracnose was determined by artificially infecting the plants in the field.   Method  Using both crushed straws and diseased leaves to induce the anthracnose infection on 283 cultivars of sorghum in Guizhou, a field experimentation was conducted in two separate years to examine and classify the disease resistance of the crop plants.   Result  Among the cultivars, B39-2 and F41 showed a high, Grade 2 resistance to anthracnose. Seven cultivars were moderately resistant to the disease in varying degrees depending upon the environmental conditions. E36 and F4 exhibited resistance that varied greatly. A few were of heterozygous genotypes displaying multiple grades of resistance. And the remaining 266 specimens were susceptible to the disease.   Conclusion  Two outstanding local sorghum cultivars in Guizhou were highly and consistently resistant to anthracnose that were to be further studied for breeding programs. This study showed the combined use of crushed straws and diseased leaves to artificially infect sorghum plants to be more effective than applying crushed straws alone in determining the degree of the disease resistance.
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  • [1]
    MENGISTU G, SHIMELIS H, LAING M, et al. Breeding for anthracnose (Colletotrichum sublineolum Henn.) resistance in sorghum: challenges and opportunities [J]. Australian Journal of Crop Science, 2018, 12(12): 1911−1920. doi: 10.21475/ajcs.18.12.12.p1230
    [2]
    徐秀德, 刘志恒. 高粱病虫害原色图鉴[M]. 北京: 中国农业科学技术出版社, 2012: 112-118.
    [3]
    邓小锋, 彭秋, 李青风, 等. 高粱炭疽病抗性机理研究进展 [J]. 贵州农业科学, 2019, 4(11):68−74. doi: 10.3969/j.issn.1001-3601.2019.11.013

    DENG X F, PENG Q, LI Q F, et al. Research progress in resistance mechanism of sorghum anthracnose [J]. Guizhou Agricultural Sciences, 2019, 4(11): 68−74.(in Chinese) doi: 10.3969/j.issn.1001-3601.2019.11.013
    [4]
    XU J, QIN P W, JIANG Y, et al. Evaluation of sorghum germplasm resistance to anthracnose by Colletotrichum sublineolum in China [J]. Crop Protection, 2020, 134: 105173. doi: 10.1016/j.cropro.2020.105173
    [5]
    THOMAS M D, SISSOKO I, SACKO M. Development of Leaf Anthracnose and its Effect on Yield and Grain Weight of Sorghum in West Africa [J]. Plant Disease, 1996, 80: 151−153. doi: 10.1094/PD-80-0151
    [6]
    徐婧, 姜钰, 胡兰, 等. 高粱抗炭疽病资源筛选及病情与产量损失的关系 [J]. 中国农业科学, 2019, 52(22):4079−4087. doi: 10.3864/j.issn.0578-1752.2019.22.012

    XU J, JIANG Y, HU L, et al. Evaluation of Sorghum Accessions Resistance Against Colletotrichum sublineolum and Relationship Between Severity and Yield Loss on Sorghum [J]. Scientia Agricultura Sinica, 2019, 52(22): 4079−4087.(in Chinese) doi: 10.3864/j.issn.0578-1752.2019.22.012
    [7]
    SNYDER B A, LEITE B, HIPSKIND J, et al. Accumulation of sorghum phytoalexins induced by Colletotrichum graminicola at the infection site [J]. Physiological and Molecular Plant Pathology, 1991, 39(6): 463−470. doi: 10.1016/0885-5765(91)90012-7
    [8]
    NICHOLSON R L, KOLLIPARA S S, VINCENT J R, et al. Phytoalexin synthesis by the sorghum mesocotyl in response to infection by pathogenic and nonpathogenic fungi [J]. PNAS, 1987, 84: 5520−5524. doi: 10.1073/pnas.84.16.5520
    [9]
    WHARTON P S, JULIAN A M. A cytological study of compatible and incompatible interactions between Sorghum bicolor and Colletotrichum sublineolum [J]. New Phytologist, 1996, 134: 25−34. doi: 10.1111/j.1469-8137.1996.tb01143.x
    [10]
    WHARTON P S, JULIAN A M, O'CONNELL R J. Ultrastructure of the infection of Sorghum bicolor by Colletotrichum sublineolum [J]. Phytopathology, 2001, 91(2): 149−158. doi: 10.1094/PHYTO.2001.91.2.149
    [11]
    BASAVARAJU P, SHETTY N P, SHETTY H S, et al. Infection biology and defence responses in sorghum against Colletotrichum sublineolum [J]. Journal of Applied Microbiology, 2009, 107: 404−415. doi: 10.1111/j.1365-2672.2009.04234.x
    [12]
    DU Y G, CHU H, WANG M F, et al. Identification of flavone phytoalexins and a pathogen-inducible flavone synthase II gene (SbFNSII) in Sorghum [J]. Journal of Experimental Botany, 2010, 61(4): 983−994. doi: 10.1093/jxb/erp364
    [13]
    CHALA A, TRONSMO A M, BRURBERG M B. Genetic differentiation and gene flow in Colletotrichum sublineolum in Ethiopia, the centre of origin and diversity of sorghum, as revealed by AFLP analysis [J]. Plant Pathology, 2011, 60: 474−482. doi: 10.1111/j.1365-3059.2010.02389.x
    [14]
    ERPELDING J E, PROM L K. Evaluation of Malian sorghum germplasm for resistance against anthracnose [J]. Plant Pathology Journal, 2004, 3(2): 65−71. doi: 10.3923/ppj.2004.65.71
    [15]
    ERPELDING J E, PROM L K. Variation for anthracnose resistance within the sorghum germplasm collection from Mozambique, Africa [J]. Plant Pathology Journal, 2006, 5(1): 28−34. doi: 10.3923/ppj.2006.28.34
    [16]
    ERPELDING J E. Field evaluation of anthracnose disease response for the sorghum germplasm collection from the Kayes region of Mali [J]. Tropical and Subtropical Agroecosystems, 2008(8): 291−296.
    [17]
    ERPELDING J E. Anthracnose disease response for photoperiod-insensitive Ethiopian germplasm from the U. S. sorghum collection [J]. World Journal of Agricultural Science, 2009, 5(6): 707−713.
    [18]
    PROM L K, ERPELDING J E, MONTES-GARCIA N. Chinese sorghum germplasm evaluated for resistance to downy mildew and anthracnose [J]. Communications in Biometry and Crop Science, 2007, 2(1): 26−31.
    [19]
    PROM L K, LSAKEIT T, PERUMAL R, et al. Evaluation of the Ugandan sorghum accessions for grain mold and anthracnose resistance [J]. Crop Protection, 2011, 30(5): 566−571. doi: 10.1016/j.cropro.2010.12.025
    [20]
    PROM L K, ERPELDING J E, PERUMAL R, et al. Response of sorghum accessions from four African countries against Colletotrichum sublineolum, causal agent of sorghum anthracnose [J]. American Journal of Plant Science, 2012(3): 125−129.
    [21]
    CUEVAS H E, PROM L K, ROSA-VALENTIN G. Population structure of the NPGS Senegalese Sorghum collection and its evaluation to identify new disease resistant genes [J]. PLoS One, 2018, 13(2): e0191877. doi: 10.1371/journal.pone.0191877
    [22]
    CUEVAS H E, PROM L K. Evaluation of genetic diversity, agronomic traits, and anthracnose resistance in the NPGS Sudan Sorghum Core collection [J]. BMC Genomics, 2020, 21(1): 1−15. doi: 10.1186/s12864-019-6419-1
    [23]
    邓小锋, 陈满静, 曹绍书, 等. 贵州糯质高粱GBSSI基因型的鉴定 [J]. 贵州农业科学, 2020, 48(5):13−18. doi: 10.3969/j.issn.1001-3601.2020.05.004

    DENG X F, CHEN M J, CAO S S, et al. Identification of GBSSI genotype in glutinous sorghum in Guizhou [J]. Guizhou Agricultural Science, 2020, 48(5): 13−18.(in Chinese) doi: 10.3969/j.issn.1001-3601.2020.05.004
    [24]
    王小波. 贵州酱香型白酒用粱状况及对策分析[C]//贵州省农业科学院旱粮研究所. 谷粮网2019年第六届中国高粱产业高峰论坛会刊集, 2019: 34-39.
    [25]
    邓小锋, 彭秋, 刘天友, 等. 贵州地方高粱资源炭疽病害田间抗性评估 [J]. 西南农业学报, 2017, 30:1074−1077.

    DENG X F, PENG Q, LIU T Y, et al. Resistance to anthracnose of local sorghum varieties in Guizhou [J]. Southwest China Journal of Agricultural Sciences, 2017, 30: 1074−1077.(in Chinese)
    [26]
    RAMASAMY P, MENZ M A, MEHTA P J, et al. Molecular mapping of Cg1, a gene for resistance to anthracnose (Colletotrichum sublineolum) in Sorghum [J]. Euphytica, 2008, 165(3): 597−606.
    [27]
    BURRELL A M, SHARMA A, PATIL N Y, et al. Sequencing of an anthracnose-resistant sorghum genotype and mapping of a major QTL reveal strong candidate genes for anthracnose resistance [J]. Crop Science, 2015, 55: 790−799. doi: 10.2135/cropsci2014.06.0430
    [28]
    NIKS R E, PARLEVLIET J E, LINDHOUT P, et al. 张红生, 鲍永美, 等译. 植物抗病虫育种[M]. 北京: 科学出版社, 2012.
    [29]
    LO S C, HIPSKIND J D, NICHOLSON R L. cDNA cloning of a Sorghum pathogenesis-related protein (PR-10) and differential expression of defense-related genes following inoculation with Cochliobolus heterostrophus or Colletotrichum sublineolum [J]. Molecular Plant-Microbe Interactions, 1999, 12(6): 479−489. doi: 10.1094/MPMI.1999.12.6.479
    [30]
    LO C S C, DE VERDIER K, NICHOLSON R L. Accumulation of 3-deoxyanthocyanidin phytoalexins and resistance to Colletotrichum sublineolum in sorghum [J]. Physiological and Molecular Plant Pathology, 1999, 55(5): 263−273. doi: 10.1006/pmpp.1999.0231
    [31]
    MIZUNO H, YAZAWA T, KASUGA S, et al. Expression of Flavone synthase II and Flavonoid 3'-hydroxylase is associated with color variation in tan-colored injured leaves of Sorghum [J]. Frontiers in Plant Science, 2016(7): 1718.
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