张燕,蔡小斌,王蕾,等. 不同基因型糯性大麦籽粒抗性淀粉含量及积累特性分析 [J]. 福建农业科技,2024,55(6):01−06. DOI: 10.13651/j.cnki.fjnykj.2024.06.001
    引用本文: 张燕,蔡小斌,王蕾,等. 不同基因型糯性大麦籽粒抗性淀粉含量及积累特性分析 [J]. 福建农业科技,2024,55(6):01−06. DOI: 10.13651/j.cnki.fjnykj.2024.06.001
    ZHANG Yan, CAI Xiao-bin, WANG Lei, ZHAO Hai-peng, MA Shu-lin, XU Ye, TANG Hui-chun, ZHANG Xiang-ping. Analysis of Resistant Starch Content and Accumulation Characteristics in the Glutinous Barley Grains with Different Genotypes[J]. Fujian Agricultural Science and Technology, 2024, 55(6): 1-6. DOI: 10.13651/j.cnki.fjnykj.2024.06.001
    Citation: ZHANG Yan, CAI Xiao-bin, WANG Lei, ZHAO Hai-peng, MA Shu-lin, XU Ye, TANG Hui-chun, ZHANG Xiang-ping. Analysis of Resistant Starch Content and Accumulation Characteristics in the Glutinous Barley Grains with Different Genotypes[J]. Fujian Agricultural Science and Technology, 2024, 55(6): 1-6. DOI: 10.13651/j.cnki.fjnykj.2024.06.001

    不同基因型糯性大麦籽粒抗性淀粉含量及积累特性分析

    Analysis of Resistant Starch Content and Accumulation Characteristics in the Glutinous Barley Grains with Different Genotypes

    • 摘要: 为探明直链淀粉、支链淀粉和β-葡聚糖对抗性淀粉合成的影响,以30份不同基因型糯性大麦为试验材料,分别测定开花后期(灌浆初期)7 、14 、21 d和成熟期淀粉各组分、β-葡聚糖含量及抗性淀粉含量。结果表明:30份不同基因型大麦成熟籽粒淀粉组分、β-葡聚糖含量和抗性淀粉含量表现出显著差异。抗性淀粉含量范围为0.28%~1.22%,平均值为0.56%,品系西C1抗性淀粉含量最高,为1.22%,甘垦糯3号次之,为0.91%;抗性淀粉含量最低的两个品系为2014(7)-5-1-2(0.28%)、2014(1)-1-2-1(0.29%)。随着灌浆进程推进,甘垦糯3号抗性淀粉含量呈升高趋势,成熟期达到最大值;品系2014(1)-1-2-1呈先升高再降低的趋势,品系西C1和品系2014(7)-5-1-2则与品系2014(1)-1-2-1的变化趋势正好相反。30份大麦材料中有13个材料β-葡聚糖含量高于6%,是典型的高β-葡聚糖材料,其中中糯8号的β-葡聚糖含量高达8.59%。直链淀粉含量范围为1.81%~18.54%,支链淀粉含量范围为81.46%~98.19%,30份大麦材料中有22份材料支链淀粉含量>90%,是高支链淀粉材料。30份不同基因型大麦籽粒抗性淀粉含量不同,抗性淀粉积累特性不同。相关分析表明,抗性淀粉含量与直链淀粉含量呈极显著正相关,与β-葡聚糖含量呈显著负相关。

       

      Abstract: In order to explore the effects of amylose, amylopectin and β-glucan on the synthesis of resistant starch, 30 glutinous barley with different genotypes were used as the experimental materials to determine the starch components, β-glucan content and resistant starch content at 7, 14, and 21 days after flowering (early grain-filling stage), and the maturation period. The results showed that there were significant differences among the starch components, β-glucan content and resistant starch content in the mature grains of 30 barley materials with different genotypes. The content of resistant starch ranged from 0.28% to 1.22%, with an average value of 0.56%. The content of resistant starch in the strain Xi C1 was the highest (1.22%), followed by Gankennuo No.3 (0.91%). The two strains with the lowest content of resistant starch were 2014(7)-5-1-2 (0.28%) and 2014(1)-1-2-1 (0.29%). With the advance of grain filling process, the content of resistant starch in Gankennuo No.3 showed an increasing trend, and reached the maximum at the maturation period. The strain 2014(1)-1-2-1 showed a trend of first increasing and then decreasing, while the variation trends for the strain Xi C1 and strain 2014(7)-5-1-2 were exactly opposite to that of the strain 2014(1)-1-2-1. Among the 30 barley materials, the contents of β-glucan in 13 materials were higher than 6%, indicating that they were typical high β-glucan materials. The content of β-glucan in Zhongnuo No.8 was as high as 8.59%. The amylose content ranged from 1.81% to 18.54%, and the amylopectin content ranged from 81.46% to 98.19%. Among the 30 barley materials, the contents of amylopectin in 22 materials were more than 90%, indicating that they were high-amylopectin starch materials. The contents of resistant starch in 30 barley grains with different genotypes were different, and the accumulation characteristics of resistant starch were also different. Therefore, the correlation analysis showed that the content of resistant starch was significantly positively correlated with the content of amylose, but was significantly negatively correlated with the content of β-glucan.

       

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