








中国农业科技导报 ›› 2023, Vol. 25 ›› Issue (5): 34-45.DOI: 10.13304/j.nykjdb.2022.0761
白道宽(
), 郭宝健, 洪益, 张萌娜, 朱娟, 吕超, 王菲菲, 许如根(
)
收稿日期:2022-09-09
接受日期:2022-12-15
出版日期:2023-05-20
发布日期:2023-07-13
通讯作者:
许如根
作者简介:白道宽 E-mail: b19711208b@163.com;
基金资助:
Daokuan BAI(
), Baojian GUO, Yi HONG, Mengna ZHANG, Juan ZHU, Chao LYU, Feifei WANG, Rugen XU(
)
Received:2022-09-09
Accepted:2022-12-15
Online:2023-05-20
Published:2023-07-13
Contact:
Rugen XU
摘要:
为探究温度对大麦黄化突变体表型及光合特性的影响,以二棱啤用大麦品种‘扬农啤5号’及其经甲磺酸乙酯(ethyl methanesulfonate,EMS)诱变筛选到的黄化突变体G039为材料,测定分析田间自然条件和室内不同温度条件下突变体和野生型的叶色、植株主要性状、光合特性、组织结构及光合相关基因的表达;同时利用突变体与野生型及‘扬农啤7号’的杂种F1和F2群体,对突变基因进行遗传分析。结果表明,在自然低温条件下,G039苗期叶色呈现黄色,叶绿素a与叶绿素b含量较‘扬农啤5号’极显著降低;随着气温回升,叶色逐渐转绿,G039灌浆期叶绿素a与‘扬农啤5号’无差异,叶绿素b存在显著差异。G039的株高、穗长、穗下节间长、分蘖数与每穗粒数极显著低于‘扬农啤5号’,粒长、粒宽与千粒重极显著高于‘扬农啤5号’。不同温度处理下,突变体G039叶色受生长温度影响显著,低温造成G039叶绿体数目减少,基粒片层疏松;在10~20 ℃之间,温度越低,黄化越严重,SPAD值与叶绿素含量越低,净光合速率、胞间CO2浓度及水分利用率与‘扬农啤5号’的差异越大,大麦光合作用的最适温度在20 ℃左右。G039表型受1对隐性核基因控制。qRT-PCR结果显示,在不同温度下叶绿素合成、叶绿体发育及光系统建成等相关基因的表达在野生型与突变体G039间均存在极显著差异。以上结果为解析G039叶色突变机理和分子调控机制奠定基础。
中图分类号:
白道宽, 郭宝健, 洪益, 张萌娜, 朱娟, 吕超, 王菲菲, 许如根. 一个大麦黄化突变体的突变机理及其遗传机制研究[J]. 中国农业科技导报, 2023, 25(5): 34-45.
Daokuan BAI, Baojian GUO, Yi HONG, Mengna ZHANG, Juan ZHU, Chao LYU, Feifei WANG, Rugen XU. Research on Mutagenic Mechanism and Genetic Mechanism of a Yellowing Mutant in Barley[J]. Journal of Agricultural Science and Technology, 2023, 25(5): 34-45.
基因名称 Gene name | 基因ID Gene ID | 正向引物 Forward primer(5’-3’) | 反向引物 Reverse primer(5’-3’) |
|---|---|---|---|
| HvCAO | HORVU.MOREX.r3.3HG0324440 | TGGTGCCCATAGATTGTTTC | GCCCTCATTCACTGAACCAAG |
| COR | HORVU.MOREX.r3.2HG0191600 | TCTGCCTGCAAACCCCTCCTAG | TGTCCGTGGCATCCTGGACCTT |
| PORB | HORVU.MOREX.r3.1HG0047060 | AGGCGTACAAGGACAGCAAGG | GTAGAGCGACGCGAAGGTGA |
| PORA | HORVU.MOREX.r3.2HG0209470 | CCGTTCCAGAAGTTCGTCACC | CCTTGTTCCAGCTCCAGTACAC |
| YCF3 | HORVU.MOREX.r3.5HG0423760 | GGTCTTTATCCTCGTCGTAT | TGTTCAATTTCTCGTGGAGT |
| HvPTOX | HORVU.MOREX.r3.2HG0213170 | CTCTTAATCATGGAAGCGTTGG | TGGCGACAGTGACGAAGTAG |
| MSH1 | HORVU.MOREX.r3.2HG0180240 | CCGAAGAAGAGTTCAGCAAT | TTCCATGCGAGGACATCACG |
| HvCMF3 | HORVU.MOREX.r3.6HG0559110 | AATGCGAAATGCGAGGAGG | GGTCTTCGGTGCCTTTGTC |
| GAPDH | HORVU.MOREX.r3.7HG0703580 | GTGAGGCTGGTGCTGATTACG | TGGTGCAGCTAGCATTTGAGA |
| α-tublin | HORVU.MOREX.r3.1HG0082050 | AGTGTCCTGTCCACCCACTC | AGCATGAAGTGGATCCTTGG |
表1 叶绿素合成、光合作用相关基因的定量引物
Table 1 Primer of chlorophyll synthesis, photosynthesis related genes used fou quantitative real-time PCR
基因名称 Gene name | 基因ID Gene ID | 正向引物 Forward primer(5’-3’) | 反向引物 Reverse primer(5’-3’) |
|---|---|---|---|
| HvCAO | HORVU.MOREX.r3.3HG0324440 | TGGTGCCCATAGATTGTTTC | GCCCTCATTCACTGAACCAAG |
| COR | HORVU.MOREX.r3.2HG0191600 | TCTGCCTGCAAACCCCTCCTAG | TGTCCGTGGCATCCTGGACCTT |
| PORB | HORVU.MOREX.r3.1HG0047060 | AGGCGTACAAGGACAGCAAGG | GTAGAGCGACGCGAAGGTGA |
| PORA | HORVU.MOREX.r3.2HG0209470 | CCGTTCCAGAAGTTCGTCACC | CCTTGTTCCAGCTCCAGTACAC |
| YCF3 | HORVU.MOREX.r3.5HG0423760 | GGTCTTTATCCTCGTCGTAT | TGTTCAATTTCTCGTGGAGT |
| HvPTOX | HORVU.MOREX.r3.2HG0213170 | CTCTTAATCATGGAAGCGTTGG | TGGCGACAGTGACGAAGTAG |
| MSH1 | HORVU.MOREX.r3.2HG0180240 | CCGAAGAAGAGTTCAGCAAT | TTCCATGCGAGGACATCACG |
| HvCMF3 | HORVU.MOREX.r3.6HG0559110 | AATGCGAAATGCGAGGAGG | GGTCTTCGGTGCCTTTGTC |
| GAPDH | HORVU.MOREX.r3.7HG0703580 | GTGAGGCTGGTGCTGATTACG | TGGTGCAGCTAGCATTTGAGA |
| α-tublin | HORVU.MOREX.r3.1HG0082050 | AGTGTCCTGTCCACCCACTC | AGCATGAAGTGGATCCTTGG |
图1 自然条件下野生型‘扬农啤5号’和突变体G039的表型A:苗期植株;B:苗期叶绿素浸提液;C:灌浆期植株;D:粒长;E:粒宽
Fig. 1 Phenotypes of ‘YNP5’ and G039 under natural conditionA: Plant at seedling period; B: Extracts of photosynthetic pigments in the seedling period; C: Plant at filling period; D: Grain length; E: Grain width
图2 野生型‘扬农啤5号’和突变体G039叶绿素含量A:苗期;B:灌浆期。**表示材料间在P<0.01水平差异显著
Fig. 2 Contents of chlorophyll pigments in ‘YNP5’ and G039A: Seedling stage; B: Grain filling stage. ** means significantly differences between materials at P<0.01 level
| 性状 Trait | 扬农啤5号 YNP5 | G039 |
|---|---|---|
株高 Plant height/cm | 86.46±5.94 | 72.86±5.42** |
穗下节间长 Internode length below the spike/cm | 30.88±3.36 | 22.38±2.40** |
分蘖数 Number of tillers | 17.82±8.36 | 8.85±3.40** |
穗长 Panicle length/cm | 6.71±0.48 | 5.95±0.66** |
每穗粒数 Grains per panicle | 28.35±2.42 | 25.86±2.23** |
千粒重 1 000-grain weight/g | 41.93±0.34 | 48.04±0.36** |
粒长 Grain length/mm | 6.86±0.03 | 7.62±0.03** |
粒宽 Grain width/mm | 3.05±0.02 | 3.15±0.02** |
表2 野生型‘扬农啤5号’与突变体G039的主要农艺性状
Table 2 Agronomic traits of the wild type ‘YNP5’ and mutant G039
| 性状 Trait | 扬农啤5号 YNP5 | G039 |
|---|---|---|
株高 Plant height/cm | 86.46±5.94 | 72.86±5.42** |
穗下节间长 Internode length below the spike/cm | 30.88±3.36 | 22.38±2.40** |
分蘖数 Number of tillers | 17.82±8.36 | 8.85±3.40** |
穗长 Panicle length/cm | 6.71±0.48 | 5.95±0.66** |
每穗粒数 Grains per panicle | 28.35±2.42 | 25.86±2.23** |
千粒重 1 000-grain weight/g | 41.93±0.34 | 48.04±0.36** |
粒长 Grain length/mm | 6.86±0.03 | 7.62±0.03** |
粒宽 Grain width/mm | 3.05±0.02 | 3.15±0.02** |
图3 不同温度下野生型‘扬农啤5号’与突变体G039的SPAD值注:**表示材料间在P<0.01水平差异显著。
Fig. 3 SPAD values of the ‘YNP5’ and G039 under different temperature conditionsNote:** means significantly difference between materials at P<0.01 level.
图5 不同温度下野生型‘扬农啤5号’与突变体G039的叶绿素含量注:**表示材料间在P<0.01水平差异显著
Fig. 5 Chlorophyll content of the ‘YNP5’ and G039 under different temperature conditionsNote: ** means significantly difference between materials at P<0.01 level
图6 不同温度下‘扬农啤5号’与G039的光合指标A~E:依次为净光合速率、蒸腾速率、气孔导度、水分利用率与胞间CO2浓度的大小。*和**分别表示材料间差异在P<0.05和P<0.01水平显著
Fig. 6 Photosynthetic indices of ‘YNP 5’ and G039 under different temperature conditionsA~E: Net photosynthetic rate, transpiration rate, stomatal conductance, water use efficiency and intercellular CO2 concentration are sequentially shown. * and ** mean significantly differences between materials at P<0.05 and P<0.01 levels,respectively
杂交组合 Cross combination | 植株数量 Number of plants | χ2 | P值(0.05) P value(0.05) | ||
|---|---|---|---|---|---|
F2群体 F2 population | 野生表型 Wild type phenotype | 突变表型 Mutant phenotype | |||
| G039/扬农啤5号 | 388 | 297 | 91 | 0.49 | 3.84 |
| G039/扬农啤7号 | 332 | 252 | 80 | 0.14 | 3.84 |
表3 突变性状的遗传分析
Table 3 Genetic analysis of the mutant trait
杂交组合 Cross combination | 植株数量 Number of plants | χ2 | P值(0.05) P value(0.05) | ||
|---|---|---|---|---|---|
F2群体 F2 population | 野生表型 Wild type phenotype | 突变表型 Mutant phenotype | |||
| G039/扬农啤5号 | 388 | 297 | 91 | 0.49 | 3.84 |
| G039/扬农啤7号 | 332 | 252 | 80 | 0.14 | 3.84 |
图8 不同温度下叶绿素合成相关基因的相对表达量注:**表示在P<0.01水平显著。
Fig. 8 Expression levels in genes involved in chlorophyll synthesis of YNP 5 and G039 under different temperature conditionsNote: ** means significant at P<0.01 level.
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