





中国农业科学 ›› 2019, Vol. 52 ›› Issue (11): 1839-1857.doi: 10.3864/j.issn.0578-1752.2019.11.001
史大坤1,姚天茏1,刘楠楠2,邓敏3,段海洋1,王路林1,万炯1,高炯浩1,谢惠玲1,汤继华1,张雪海1(
)
收稿日期:2019-01-21
接受日期:2019-02-28
出版日期:2019-06-01
发布日期:2019-06-11
联系方式:
史大坤,E-mail:912320091@qq.com。|姚天茏,E-mail:yaotianlong0629@qq.com。
基金资助:
SHI DaKun1,YAO TianLong1,LIU NanNan2,DENG Min3,DUAN HaiYang1,WANG LuLin1,WAN Jiong1,GAO JiongHao1,XIE HuiLing1,TANG JiHua1,ZHANG XueHai1(
)
Received:2019-01-21
Accepted:2019-02-28
Published:2019-06-01
Online:2019-06-11
摘要:
目的 叶绿素含量与作物产量呈正相关。通过提高叶绿素含量来提高作物产量是作物育种的方向之一。因此,利用全基因组关联分析(genome-wide association study, GWAS)解析玉米叶绿素含量的遗传基础,可为玉米高光效理想株型设计育种提供理论指导。方法 以538份玉米自交系构成的关联群体为研究对象,在5个环境下,通过对其授粉后5 d的棒三叶(穗位叶、穗上叶、穗下叶)叶绿素含量进行测定,并借助覆盖玉米全基因组的558 629个单核苷酸多态性标记(SNPs),利用3种模型(Q、K和Q+K)对叶绿素含量进行全基因组关联分析,随后选择最优模型的GWAS结果并结合eQTL(expression quantitative trait loci)分析对叶绿素含量的自然变异进行解析。结果 5个环境下,棒三叶叶绿素含量均遵从正态分布且叶绿素含量间呈正相关;方差分析表明棒三叶叶绿素含量的环境效应、基因型效应、基因型与环境互作效应均达到了极显著水平;此外,穗上叶、穗位叶和穗下叶叶绿素含量的遗传力分别为0.66、0.66和0.67。比较3种模型发现K模型对假阳性(I型错误)控制最好,在此模型下共检测到29个与棒三叶叶绿素含量显著关联的SNP(P≤3.99×10-6),涉及到18个位点,共有76个候选基因落在这18个位点内,其中85.5%(65/76)的候选基因具有eQTL,11.8%(9/76)的候选基因与对应表型显著相关(P<0.05),说明这9个基因可能是通过表达量变化来调控表型变异。在这76个基因中,60个候选基因有功能注释,功能涉及到能量代谢、物质输送代谢途径和生物合成调节等过程。此外还发现2个可以在不同环境或不同叶片共定位的位点,其中,共定位位点内的基因GRMZM2G074759编码一种与AAE3高度相似的酰基活化酶,该基因通过提高α-酮戊二酸(ALA)和草酰乙酸含量进而影响氨基酸生物合成,提高籽粒赖氨酸含量,改善玉米品质。此外,ALA的合成会促使叶绿素含量升高,进而提高作物产量,推测该基因为最可能的候选基因。结论 K模型对假阳性的控制效果最好,基于K模型,共检测到18个玉米叶绿素含量显著关联位点,发现多个参与叶绿素合成途径相关基因。
史大坤, 姚天茏, 刘楠楠, 邓敏, 段海洋, 王路林, 万炯, 高炯浩, 谢惠玲, 汤继华, 张雪海. 玉米叶绿素含量的全基因组关联分析[J]. 中国农业科学, 2019, 52(11): 1839-1857.
SHI DaKun, YAO TianLong, LIU NanNan, DENG Min, DUAN HaiYang, WANG LuLin, WAN Jiong, GAO JiongHao, XIE HuiLing, TANG JiHua, ZHANG XueHai. Genome-Wide Association Study of Chlorophyll Content in Maize[J]. Scientia Agricultura Sinica, 2019, 52(11): 1839-1857.
表1
关联群体不同环境下玉米棒三叶叶绿素含量的描述统计分析"
| 环境 Environment | 性状 Traits | 变异范围 Range | 均值 Mean | 标准差 sd. | 偏度 Ske. | 峰度 Kur. |
|---|---|---|---|---|---|---|
| 2012年鹤壁Hebi, 2012 | 穗上叶Above the uppermost ear leaf | 26.25—67.85 | 52.98 | 6.91 | -0.87 | 1.51 |
| 穗位叶Uppermost ear leaf | 22.25—68.60 | 52.82 | 7.17 | -0.97 | 1.69 | |
| 穗下叶Below the uppermost ear leaf | 18.25—66.20 | 52.92 | 7.58 | -1.08 | 1.92 | |
| 2017年三亚Sanya, 2017 | 穗上叶Above the uppermost ear leaf | 29.25—68.45 | 50.97 | 6.39 | -0.46 | 0.90 |
| 穗位叶Uppermost ear leaf | 25.83—70.45 | 51.08 | 6.37 | -0.43 | 1.16 | |
| 穗下叶Below the uppermost ear leaf | 25.65—69.60 | 51.03 | 6.67 | -0.48 | 0.92 | |
| 2018年长沙Changsha, 2018 | 穗上叶Above the uppermost ear leaf | 27.90—82.93 | 53.84 | 6.20 | -0.26 | 3.08 |
| 穗位叶Uppermost ear leaf | 29.47—82.95 | 53.83 | 6.10 | -0.08 | 2.98 | |
| 穗下叶Below the uppermost ear leaf | 22.88—95.28 | 53.93 | 7.44 | -0.09 | 4.59 | |
| 2018年原阳Yuanyang, 2018 | 穗上叶Above the uppermost ear leaf | 30.80—63.35 | 48.05 | 5.74 | -0.48 | 0.97 |
| 穗位叶Uppermost ear leaf | 30.32—61.99 | 47.88 | 5.80 | -0.39 | 0.84 | |
| 穗下叶Below the uppermost ear leaf | 29.73—60.64 | 47.97 | 6.13 | -0.33 | 0.52 | |
| 2018年永城Yongcheng, 2018 | 穗上叶Above the uppermost ear leaf | 40.92—69.59 | 54.67 | 6.61 | 0.00 | 0.00 |
| 穗位叶Uppermost ear leaf | 38.30—68.48 | 54.86 | 6.74 | -0.20 | 0.37 | |
| 穗下叶Below the uppermost ear leaf | 37.85—69.15 | 54.99 | 6.96 | -0.03 | -0.04 | |
| 综合Blup | 穗上叶Above the uppermost ear leaf | 43.46—58.68 | 52.51 | 3.16 | -0.57 | 1.02 |
| 穗位叶Uppermost ear leaf | 40.45—60.49 | 52.57 | 3.61 | -0.55 | 0.78 | |
| 穗下叶Below the uppermost ear leaf | 40.20—64.44 | 52.55 | 4.13 | -0.50 | 0.64 |
表2
5个环境玉米棒三叶叶绿素含量的方差分析"
| 性状 Trait | 变异来源 Source | 离均差平方和 Type sum of squares | 自由度 Df | 均方 Mean square | F值 F-value |
|---|---|---|---|---|---|
| 穗上叶 Above the uppermost ear leaf | 环境E | 62052.294 | 4 | 15513.073 | 1202.047** |
| 基因型G | 51835.582 | 537 | 96.528 | 7.479** | |
| 基因型×环境 G×E | 122215.029 | 2148 | 56.897 | 4.408** | |
| 误差Error | 138863.674 | 10760 | 12.906 | ||
| 总变异Total | 374966.579 | 13449 | |||
| 穗位叶 Uppermost ear leaf | 环境E | 74363.802 | 4 | 18590.951 | 1466.621** |
| 基因型G | 56009.168 | 537 | 104.300 | 8.228** | |
| 基因型×环境 G×E | 126440.437 | 2148 | 58.864 | 4.643** | |
| 误差Error | 136394.238 | 10760 | 12.676 | ||
| 总变异Total | 393207.645 | 13449 | |||
| 穗下叶 Below the uppermost ear leaf | 环境E | 101559.963 | 4 | 25389.991 | 1822.287** |
| 基因型G | 59378.695 | 537 | 110.575 | 7.936** | |
| 基因型×环境 G×E | 135210.636 | 2148 | 62.947 | 4.518** | |
| 误差Error | 149919.461 | 10760 | 13.933 | ||
| 总变异Total | 446068.755 | 13449 |
表3
玉米棒三叶叶绿素含量候选基因及功能注释"
| 位点a Loci | 染色 Chr. | 环境 Enviro. | 性状 Trait | 峰值SNP Peak SNP | 物理位置b Posi. (bp) | P值c P value | 贡献率d R2(%) | 候选基因e Candidate gene | 功能注释 Annotation |
|---|---|---|---|---|---|---|---|---|---|
| 1 | 1 | 2018年长沙 Changsha, 2018 | 穗位叶 Uppermost ear leaf | Chr.1.S_33879839 | 33879839 | 1.05E-06 | 5.89 | GRMZM2G110023 | ATP结合亚基CLPT1叶绿体 ATP-dependent Clp protease ATP-binding subunit CLPT1 chloroplastic |
| GRMZM2G110004 | NA | ||||||||
| GRMZM2G035552 | ACR8 | ||||||||
| GRMZM2G035461 | 自噬蛋白9Autophagy protein 9 | ||||||||
| 2 | 1 | 2017年三亚 Sanya, 2017 | 穗位叶 Uppermost ear leaf | Chr.1.S_249417295 | 249417295 | 2.65E-06 | 5.43 | GRMZM2G031771 | NA |
| GRMZM2G031788 | NA | ||||||||
| GRMZM2G058057 | 同源线粒体导入受体亚基 Mitochondrial import receptor subunit TOM5 homolog TOM5 | ||||||||
| GRMZM2G058227 | 甘油磷酰二元酸酯磷酸二酯酶Glycerophosphoryl diester phosphodiesterase | ||||||||
| GRMZM2G058244 | UDP -葡萄糖6脱氢酶UDP-glucose 6-dehydrogenase | ||||||||
| GRMZM2G172512 | 未知Unknown | ||||||||
| GRMZM2G172584 | 未知Unknown | ||||||||
| 2 | 1 | 2017年三亚 Sanya, 2017 | 穗位叶 Uppermost ear leaf | Chr.1.S_249417300 | 249417300 | 2.65E-06 | 5.43 | GRMZM2G031771 | NA |
| GRMZM2G031788 | NA | ||||||||
| GRMZM2G058057 | TOM5同源线粒体导入受体亚基 Mitochondrial import receptor subunit TOM5 homolog | ||||||||
| GRMZM2G058227 | 甘油磷酰二元酸酯磷酸二酯酶Glycerophosphoryl diester phosphodiesterase | ||||||||
| GRMZM2G058244 | UDP -葡萄糖6脱氢酶UDP-glucose 6-dehydrogenase | ||||||||
| GRMZM2G172512 | 未知Unknown | ||||||||
| GRMZM2G172584 | 未知Unknown | ||||||||
| 2 | 1 | 2017年三亚 Sanya, 2017 | 穗位叶 Uppermost ear leaf | Chr.1.S_249417301 | 249417301 | 2.65E-06 | 5.43 | GRMZM2G031771 | NA |
| GRMZM2G031788 | NA | ||||||||
| GRMZM2G058057 | TOM5同源线粒体导入受体亚基 Mitochondrial import receptor subunit TOM5 homolog | ||||||||
| GRMZM2G058227 | 甘油磷酰二元酸酯磷酸二酯酶Glycerophosphoryl diester phosphodiesterase | ||||||||
| GRMZM2G058244 | UDP -葡萄糖6脱氢酶UDP-glucose 6-dehydrogenase | ||||||||
| 位点a Loci | 染色 Chr. | 环境 Enviro. | 性状 Trait | 峰值SNP Peak SNP | 物理位置b Posi. (bp) | P值c P value | 贡献率d R2(%) | 候选基因e Candidate gene | 功能注释 Annotation |
| GRMZM2G172512 | 未知Unknown | ||||||||
| GRMZM2G172584 | 未知Unknown | ||||||||
| 3 | 3 | 2012年鹤壁 Hebi, 2012 | 穗下叶Below the uppermost ear leaf | Chr.3.S_167437401 | 167437401 | 2.88E-07 | 6.52 | GRMZM2G701895 | NA |
| GRMZM2G044055 | 甲酸精蛋白1Formin-like protein 1 | ||||||||
| GRMZM2G044092 | 葡萄糖苷酶42Beta-glucosidase 42 | ||||||||
| GRMZM2G118362 | 含五肽复合物的线粒体蛋白 Pentatricopeptide repeat-containing protein mitochondrial | ||||||||
| 4 | 3 | 综合Blup | 穗上叶Above the uppermost ear leaf | PZE-103136749 | 192318356 | 6.48E-07 | 5.10 | GRMZM2G038953 | 54 kD蛋白3信号识别粒子Signal recognition particle 54 kD protein 3 |
| 5 | 5 | 综合Blup | 穗上叶Above the uppermost ear leaf | PZE-105049606 | 41552842 | 1.46E-06 | 4.80 | GRMZM2G007185 | β13-半乳糖基转移酶4 Probable beta-13-galactosyltransferase 4 |
| 5 | 5 | 综合Blup | 穗上叶Above the uppermost ear leaf | PZE-105049607 | 41552873 | 2.58E-06 | 4.53 | GRMZM2G007185 | β13-半乳糖基转移酶4 Probable beta-13-galactosyltransferase 4 |
| 6 | 5 | 2012年鹤壁 Hebi, 2012 | 穗位叶 Uppermost ear leaf | Chr.5.S_174139937 | 174139937 | 2.23E-06 | 5.36 | GRMZM5G836353 | 单氧酶1 Monooxygenase 1 |
| GRMZM2G339523 | 单氧酶1 Monooxygenase 1 | ||||||||
| GRMZM2G087169 | 单氧酶1 Monooxygenase 1 | ||||||||
| GRMZM2G087068 | 类Cmc1细胞色素c氧化酶生物发生蛋白 Cytochrome c oxidase biogenesis protein Cmc1-like | ||||||||
| GRMZM2G388099 | 未知Unknown | ||||||||
| GRMZM2G087040 | 乙烯反应转录因子ERF021Ethylene-responsive transcription factor ERF021 | ||||||||
| GRMZM2G086946 | TPX2(靶向蛋白为Xklp2)蛋白家族 TPX2 (targeting protein for Xklp2) protein family | ||||||||
| 7 | 5 | 综合Blup | 穗下叶Below the uppermost ear leaf | Chr.5.S_216586758 | 216586758 | 2.75E-06 | 5.03 | GRMZM2G014116 | 26S蛋白酶体非ATP酶调节亚基 26S proteasome non-ATPase regulatory subunit 12 homolog B |
| GRMZM2G014793 | O-岩藻糖转移酶家族蛋白O-fucosyltransferase family protein | ||||||||
| GRMZM2G015090 | 植物细胞内ras -group相关LRR蛋白 Plant intracellular Ras-group-related LRR protein 9 | ||||||||
| GRMZM2G145061 | 脯氨酰4羟化酶亚基α2 Prolyl 4-hydroxylase alpha-2 subunit | ||||||||
| GRMZM2G145107 | 蔗糖转运2 Sucrose transporter2 | ||||||||
| GRMZM2G145128 | 含有重复PPR的线粒体蛋白Pentatricopeptide repeat-containing protein | ||||||||
| 位点a Loci | 染色 Chr. | 环境 Enviro. | 性状 Trait | 峰值SNP Peak SNP | 物理位置b Posi. (bp) | P值c P value | 贡献率d R2(%) | 候选基因e Candidate gene | 功能注释 Annotation |
| GRMZM2G145133 | 未知Unknown | ||||||||
| GRMZM2G445944 | 转录因子TCP21Transcription factor TCP21 | ||||||||
| GRMZM2G445958 | 复制蛋白a32 kD亚基A Replication protein A 32 kD subunit A | ||||||||
| GRMZM2G145473 | 未知Unknown | ||||||||
| 8 | 7 | 2012年鹤壁 Hebi, 2012 | 穗下叶Below the uppermost ear leaf | Chr.7.S_9204823 | 9204823 | 4.39E-07 | 6.37 | GRMZM2G704349 | Pumilio同源3 Pumilio homolog 3 |
| GRMZM2G046776 | Pumilio同源3 Pumilio homolog 3 | ||||||||
| GRMZM2G046750 | 脂质转运蛋白Lipid-transfer protein 种子贮藏2S白蛋白超家族蛋白Seed storage 2S albumin superfamily protein | ||||||||
| GRMZM2G046529 | 叶绿体中蛋白质脂肪酸输出1 Protein FATTY ACID EXPORT 1 chloroplastic | ||||||||
| GRMZM2G004301 | Ⅳ型肌醇多磷酸酶Type Ⅳ inositol polyphosphate | ||||||||
| 9 | 7 | 2017年三亚 Sanya, 2017 | 穗下叶Below the uppermost ear leaf | Chr.7.S_145681493 | 145681493 | 1.72E-06 | 5.54 | GRMZM2G168913 | RNA聚合酶Ⅱ的中介体亚单位8 Mediator of RNA polymerase Ⅱtranscription subunit 8 |
| GRMZM2G168858 | NADPH-细胞色素P450还原酶NADPH--cytochrome P450 reductase 2 | ||||||||
| GRMZM2G357688 | 锌指蛋白2 Zinc finger protein 2 | ||||||||
| GRMZM2G436511 | BTB/POZ蛋白域 BTB/POZ domain-containing protein | ||||||||
| GRMZM2G135651 | 环核苷酸封闭通道Cyclic nucleotide-gated ion channel 14 | ||||||||
| 9 | 7 | 2017年三亚 Sanya, 2017 | 穗下叶Below the uppermost ear leaf | Chr.7.S_145682189 | 145682189 | 5.85E-07 | 6.07 | GRMZM2G168913 | RNA聚合酶Ⅱ的中介体亚单位8 Mediator of RNA polymeraseⅡ transcription subunit 8 |
| GRMZM2G168858 | NADPH-细胞色素P450还原酶2 NADPH--cytochrome P450 reductase 2 | ||||||||
| GRMZM2G357688 | 锌指蛋白2Zinc finger protein 2 | ||||||||
| GRMZM2G436511 | BTB/POZ蛋白域BTB/POZ domain-containing protein | ||||||||
| GRMZM2G135651 | 环核苷酸封闭通道Cyclic nucleotide-gated ion channel 14 | ||||||||
| 10 | 8 | 2012年鹤壁 Hebi, 2012 | 穗上叶Above the uppermost ear leaf | Chr.8.S_1454124 | 1454124 | 1.32E-06 | 5.55 | GRMZM2G378906 | 外被体蛋白β亚基Coatomer subunit beta |
| GRMZM2G110368 | 未知Unknown | ||||||||
| 11 | 8 | 综合Blup | 穗位叶 Uppermost ear leaf | Chr.8.S_1454124 | 1454124 | 3.95E-06 | 4.70 | GRMZM2G378906 | 外被体蛋白β亚基Coatomer subunit beta |
| GRMZM2G110368 | 未知Unknown | ||||||||
| 位点a Loci | 染色 Chr. | 环境 Enviro. | 性状 Trait | 峰值SNP Peak SNP | 物理位置b Posi. (bp) | P值c P value | 贡献率d R2(%) | 候选基因e Candidate gene | 功能注释 Annotation |
| 12 | 9 | 综合Blup | 穗上叶Above the uppermost ear leaf | Chr.9.S_9638369 | 9638369 | 1.32E-06 | 4.86 | GRMZM2G159402 | 假定锌指蛋白Putative zinc finger protein |
| GRMZM2G033130 | DUF1296结构域蛋白家族 Putative DUF1296 domain containing family protein | ||||||||
| 12 | 9 | 综合Blup | 穗上叶Above the uppermost ear leaf | Chr.9.S_9639904 | 9639904 | 1.32E-06 | 4.86 | GRMZM2G159402 | 假定锌指蛋白Putative zinc finger protein |
| GRMZM2G033130 | DUF1296结构域蛋白家族Putative DUF1296 domain containing family protein | ||||||||
| 12 | 9 | 综合Blup | 穗上叶Above the uppermost ear leaf | chr9.S_9642472 | 9642472 | 1.32E-06 | 4.86 | GRMZM2G159402 | 假定锌指蛋白Putative zinc finger protein |
| GRMZM2G033130 | DUF1296结构域蛋白家族Putative DUF1296 domain containing family protein | ||||||||
| 12 | 9 | 综合Blup | 穗上叶Above the uppermost ear leaf | Chr.9.S_9643507 | 9643507 | 1.32E-06 | 4.86 | GRMZM2G159402 | 假定锌指蛋白Putative zinc finger protein |
| GRMZM2G033130 | DUF1296结构域蛋白家族Putative DUF1296 domain containing family protein | ||||||||
| 12 | 9 | 综合Blup | 穗上叶Above the uppermost ear leaf | Chr.9.S_9644832 | 9644832 | 1.32E-06 | 4.86 | GRMZM2G159402 | 假定锌指蛋白Putative zinc finger protein |
| GRMZM2G033130 | DUF1296结构域蛋白家族Putative DUF1296 domain containing family protein | ||||||||
| 13 | 9 | 2017年三亚 Sanya, 2017 | 穗位叶 Uppermost ear leaf | Chr.9.S_151327393 | 151327393 | 1.72E-06 | 6.01 | GRMZM2G178787 | 叶绿体蛋白激酶Protein kinase 2B chloroplastic |
| GRMZM2G178826 | 脱氢奎尼酸合酶3-dehydroquinate synthase | ||||||||
| GRMZM2G479529 | 未知Unknown | ||||||||
| GRMZM2G178847 | 未知Unknown | ||||||||
| GRMZM2G178859 | 原血红素Ⅸ法氏转移酶Protoheme Ⅸ farnesyltransferase | ||||||||
| GRMZM2G178880 | 甘露聚糖合酶7 Probable mannan synthase 7 | ||||||||
| GRMZM2G178916 | 含有重复PPR的线粒体蛋白 Pentatricopeptide repeat-containing protein mitochondrial | ||||||||
| GRMZM2G479581 | 未知Unknown | ||||||||
| GRMZM2G178945 | O-岩藻糖转移酶家族蛋白O-fucosyltransferase family protein | ||||||||
| GRMZM2G178960 | 核酮糖磷酸3-表异构酶Ribulose-phosphate 3-epimerase | ||||||||
| GRMZM2G057950 | 核糖体蛋白L32含有蛋白质的异构体1%3B核糖体蛋白L32,含有蛋白质的异构体 2Ribosomal protein L32 containing protein isoform 1%3B, Ribosomal protein L32 containing protein isoform 2 | ||||||||
| 位点a Loci | 染色 Chr. | 环境 Enviro. | 性状 Trait | 峰值SNP Peak SNP | 物理位置b Posi. (bp) | P值c P value | 贡献率d R2(%) | 候选基因e Candidate gene | 功能注释 Annotation |
| GRMZM2G058037 | 类HVA22蛋白Ⅰ HVA22-like proteinⅠ | ||||||||
| GRMZM2G361256 | ATP结合盒(ABC)蛋白家族3 ABC transporter C family member 3 | ||||||||
| 14 | 9 | 2017年三亚 Sanya, 2017 | 穗位叶 Uppermost ear leaf | Chr.9.S_153737236 | 153737236 | 7.91E-07 | 6.59 | GRMZM2G382537 | 未知Unknown |
| GRMZM2G382534 | 羟化酶5 Hydroxylase5 | ||||||||
| GRMZM2G060564 | PLAC8 家族蛋白PLAC8 family protein | ||||||||
| GRMZM2G060507 | 假定类结转录因子家族蛋白Putative knotted-like transcription factor family protein | ||||||||
| GRMZM2G064005 | Protein FIZZY-RELATED 1 FIZZY-RELATED蛋白 | ||||||||
| GRMZM2G063931 | 假定泛素连接酶酶家族,E2泛素连接酶 Putative ubiquitin-conjugating enzyme family%3B, ubiquitin-conjugating enzyme E2 | ||||||||
| 15 | 10 | 2012年鹤壁 Hebi, 2012 | 穗位叶 Uppermost ear leaf | Chr.10.S_45404195 | 45404195 | 2.81E-06 | 4.76 | NO | - |
| 16 | 10 | 2012年鹤壁 Hebi, 2012 | 穗位叶 Uppermost ear leaf | Chr.10.S_46780569 | 46780569 | 2.76E-06 | 4.75 | GRMZM2G135800 | NA |
| GRMZM2G371316 | 未知Unknown | ||||||||
| GRMZM2G371345 | 黄酮醇3-O-葡糖基转移酶Flavonol 3-O-glucosyltransferase | ||||||||
| 16 | 10 | 2012年鹤壁 Hebi, 2012 | 穗位叶 Uppermost ear leaf | Chr.10.S_46780652 | 46780652 | 2.76E-06 | 4.75 | GRMZM2G135800 | NA |
| GRMZM2G371316 | 未知Unknown | ||||||||
| GRMZM2G371345 | 黄酮醇3-O-葡糖基转移酶Flavonol 3-O-glucosyltransferase | ||||||||
| 17 | 10 | 2018年长沙 Changsha, 2018 | 穗位叶 Uppermost ear leaf | Chr.10.S_148643242 | 148643242 | 3.04E-06 | 5.30 | GRMZM2G074787 | DNA错配修复蛋白MSH3 DNA mismatch repair protein MSH3 |
| GRMZM2G074773 | 核转录因子Y亚基C-4 Nuclear transcription factor Y subunit C-4 | ||||||||
| GRMZM2G074759 | 酰基活化酶3 Acyl activating enzyme3 | ||||||||
| GRMZM2G074754 | C2钙/脂结合植物磷脂酰转移酶家族蛋白 C2 calcium/lipid-binding plant phosphoribosyltransferase family protein | ||||||||
| GRMZM2G074718 | 表达蛋白Expressed protein | ||||||||
| GRMZM2G074107 | DNA结合蛋白DNA binding protein | ||||||||
| 位点a Loci | 染色 Chr. | 环境 Enviro. | 性状 Trait | 峰值SNP Peak SNP | 物理位置b Posi. (bp) | P值c P value | 贡献率d R2(%) | 候选基因e Candidate gene | 功能注释 Annotation |
| 17 | 10 | 2018年长沙 Changsha, 2018 | 穗位叶 Uppermost ear leaf | Chr.10.S_148643247 | 148643247 | 3.87E-06 | 5.27 | GRMZM2G074787 | DNA错配修复蛋白MSH3 DNA mismatch repair protein MSH3 |
| GRMZM2G074773 | 核转录因子Y亚基C-4 Nuclear transcription factor Y subunit C-4 | ||||||||
| GRMZM2G074759 | 酰基活化酶3 Acyl activating enzyme3 | ||||||||
| GRMZM2G074754 | C2钙/脂结合植物磷脂酰转移酶家族蛋白 C2 calcium/lipid-binding plant phosphoribosyltransferase family protein | ||||||||
| GRMZM2G074718 | 表达蛋白Expressed protein | ||||||||
| GRMZM2G074107 | DNA结合蛋白DNA binding protein | ||||||||
| 17 | 10 | 2018年长沙 Changsha, 2018 | 穗位叶 Uppermost ear leaf | Chr.10.S_148643249 | 148643249 | 1.78E-07 | 6.71 | GRMZM2G074787 | DNA错配修复蛋白MSH3 DNA mismatch repair protein MSH3 |
| GRMZM2G074773 | 核转录因子Y亚基C-4 Nuclear transcription factor Y subunit C-4 | ||||||||
| GRMZM2G074759 | 酰基活化酶3 Acyl activating enzyme3 | ||||||||
| GRMZM2G074754 | C2钙/脂结合植物磷脂酰转移酶家族蛋白 C2 calcium/lipid-binding plant phosphoribosyltransferase family protein | ||||||||
| GRMZM2G074718 | 表达蛋白Expressed protein | ||||||||
| GRMZM2G074107 | DNA结合蛋白DNA binding protein | ||||||||
| 18 | 10 | 2018年长沙 Changsha, 2018 | 穗上叶Above the uppermost ear leaf | Chr.10.S_148643249 | 148643249 | 1.58E-06 | 5.80 | GRMZM2G074787 | DNA错配修复蛋白MSH3 DNA mismatch repair protein MSH3 |
| GRMZM2G074773 | 核转录因子Y亚基C-4 Nuclear transcription factor Y subunit C-4 | ||||||||
| GRMZM2G074759 | 酰基活化酶3 Acyl activating enzyme3 | ||||||||
| GRMZM2G074754 | C2钙/脂结合植物磷脂酰转移酶家族蛋白 C2 calcium/lipid-binding plant phosphoribosyltransferase family protein | ||||||||
| GRMZM2G074718 | 表达蛋白Expressed protein | ||||||||
| GRMZM2G074107 | DNA结合蛋白DNA binding protein |
| [1] |
刘红梅, 周新跃, 刘建丰, 邱颖波, 范峰峰, 徐庆国 . 籼型杂交稻光合特性的配合力分析. 植物遗传资源学报, 2014,15(4):699-705.
doi: 10.13430/j.cnki.jpgr.2014.04.003 |
|
LIU H M, ZHOU X Y, LIU J F, QIU Y B, FAN F F, XU Q G . Combining ability analysis of photosynthetic characteristics of indica hybrid rice. Journal of plant genetic resources, 2014,15(4):699-705. (in Chinese)
doi: 10.13430/j.cnki.jpgr.2014.04.003 |
|
| [2] | 李合生 . 现代植物生理学. 北京: 高等教育出版社, 2012. |
| LI H S . Modern Plant Physiology. Beijing: Higher Education Press, 2012. (in Chinese) | |
| [3] | 孙红, 李民赞, 张彦娥, 赵勇, 王海华 . 玉米生长期叶片叶绿素含量检测研究. 光谱学与光谱分析, 2010,30(9):2488-2492. |
| SUN H, LI M Z, ZHANG Y E, ZHAO Y, WANG H H . Study of chlorophyll content in maize leaves during growing period. Spectroscopy and Spectral Analysis, 2010,30(9):2488-2492. (in Chinese) | |
| [4] | 左宝玉, 李世仪, 匡廷云, 段续川 . 玉米不同层次叶片叶绿体的超微结构和叶绿素含量变化. 作物学报, 1987,13(3):213-218. |
| ZUO B Y, LI S Y, KUANG T Y, DUAN X C . The changes of ulterastructure and chlorophyll content of chloroplast of leaves in different ranks in maize. Acta Agronomica Sinica, 1987,13(3):213-218. (in Chinese) | |
| [5] |
文自翔, 赵团结, 郑永战, 刘顺湖, 王春娥, 王芳 . 中国栽培和野生大豆农艺及品质性状与SSR标记的关联分析: Ⅱ.优异等位变异的发掘. 作物学报, 2008,34(8):1339-1349.
doi: 10.3724/SP.J.1006.2008.01339 |
|
WEN Z X, ZHAO T J, ZHENG Y Z, LIU S H, WANG C E, WANG F . Association analysis of agronomic and quality traits with SSR markers in Glycine max and Glycine soja in China: II. Exploration of elite alleles. Acta Agronomica Sinica, 2008,34(8):1339-1349. (in Chinese)
doi: 10.3724/SP.J.1006.2008.01339 |
|
| [6] |
李玮瑜, 张斌, 张嘉楠, 昌小平, 李润植, 景蕊莲 . 利用关联分析发掘小麦自然群体旗叶叶绿素含量的优异等位变异. 作物学报, 2012,38(6):962-970.
doi: 10.3724/SP.J.1006.2012.00962 |
|
LI W Y, ZHANG B, ZHANG J N, CHANG X P, LI R Z, JING R L . Exploring elite alleles for chlorophyll content of flag leaf in natural population of wheat by association analysis. Acta Agronomica Sinica, 2012,38(6):962-970. (in Chinese)
doi: 10.3724/SP.J.1006.2012.00962 |
|
| [7] | TIAN F, BADBURY P J, BROWN P J, HUNG H, BUCKLER E S . Genome-wide association study of leaf architecture in the maize nested association mapping population. Nature Genetics, 2011,43(2):159-162. |
| [8] | ZHAO K, TUNG C W, EIZENGA G C, WRIGHT M H, ALI M L, PRICE A H . Genome-wide association mapping reveals a rich genetic architecture of complex traits in Oryza sativa. Nature Communications, 2011,2:467. |
| [10] | 刘涛, 权文彦, 吴雪莲, 周露, 程宇坤, 姚方杰 . 四川地方小麦品种产量与品质相关性状SSR标记位点的优异等位变异遗传解析. 麦类作物学报, 2015,35(4):449-456. |
| LIU T, QUAN W Y, WU X L, ZHOU L, CHENG Y K, YAO F J . Genetic analysis of SSR markers related to elite alleles of associated with yield and quality traits of Sichuan wheat landraces. Journal of Triticeae Crops, 2015,35(4):449-456. (in Chinese) | |
| [11] | ATWELL S, HUANG Y S, VILHJALMSSON B J, WILLEMS G, HORTON M, LI Y, MENG D, PLATT A, TARONE A M, HU T T, JIANG R, MULIYAFI N W, ZHANG X, ALNER M A, BAXTER I, BRAEHI B, CHORY J, DEARL C, DEBIEU M, DE MEAUX J, ECKER J R, FAURE N, KNISKERN J M, JONES J D, MICHAEL T, NEMRI A, ROUX F, SALT D E, TANG C, TODESCO M, TRAW M B, WEIGEL D, MARJORAM P, BOREVITZ J O, BERGELSON J, NORDBORG M . Genome-wide association study of 107 phenotypes in Arabidopsis thaliana inbred lines. Nature, 2010,465:627-631. |
| [12] | THORNSBERRY J M, GOODMAN M M, DOEBLEY J, KRESOVICH S, NIELSEN D, BUCKLER E S . Dwarf8 polymorphisms associate with variation in flowering time. Nature Genetics, 2001,28(3):286-289. |
| [13] | ANDRÉ BELÓ, ZHENG P, LUCK S, SHEN B, MEYER D J, LI B, TINGEY S, RAFALSKI A . Whole genome scan detects an allelic variant offad2 associated with increased oleic acid levels in maize. Molecular Genetics & Genomics, 2008,279(1):1-10. |
| [14] |
WANG Q, XIE W, XING H, YAN J, MENG X, LI X, FU X, XU J, LIAN X, YU S, XING Y, WANG G . Genetic architecture of natural variation in rice chlorophyll content revealed by a genome-wide association study. Molecular Plant, 2015,8(6):946-957.
doi: 10.1016/j.molp.2015.02.014 pmid: 25747843 |
| [15] |
NAGATA N, TANAKA R, SATOH S, TANAKA A . Identification of a vinyl reductase gene for chlorophyll synthesis in Arabidopsis thaliana and implications for the evolution of Prochlorococcus species. The Plant cell, 2005,17(1):233-240.
doi: 10.1105/tpc.104.027276 |
| [16] |
WU Z, ZHANG X, HE B, DIAO L, WAN J . A chlorophyll-deficient rice mutant with impaired chlorophyllide esterification in chlorophyll biosynthesis. Plant Physiology, 2007,145(1):29-40.
doi: 10.1104/pp.107.100321 |
| [17] | 陶士珩, 刘晓明, 储建华, 张荣梅, 杜丽萍, 罗泽伟 . 混合群体连锁不平衡的衰减速率与基因定位. 科学通报, 2000,45(21):2274-2280. |
| TAO S H, LIU X M, CHU J H, ZHANG R M, DU L P, LUO Z W . Attenuation rate and gene location of linkage disequilibrium in mixed population. Chinese Science Bulletin, 2000,45(21):2274-2280. (in Chinese) | |
| [18] | 赵可夫 . 玉米抽雄后不同叶位叶对籽粒产量的影响及其光合性能. 作物学报, 1981,7(4):259-266. |
| ZHAO K F . Effect of the leaves of different positions in maize on the corn yield and the photosynthetic properties of those leaves after the growing out of the female flowers. Acta Agronomica Sinica, 1981,7(4):259-266. (in Chinese) | |
| [19] | MCKENNA S, MEYER M, GREGG C, GERBER S . CorrPlot: An Interactive scatterplot for exploring correlation. Journal of Computational & Graphical Statistics, 2015,25(2):445-463. |
| [20] | CORETEAM R . R: A language and environment for statistical computing. Computing, 2015,14:12-21. |
| [21] |
XIAO Y, TONG H, YANG X, XU S, PAN Q, QIAO F, RAIHAN M S, LUO Y, LIU H, ZHANG X, YANG N, WANG X, DENG M, JIN M, ZHAO L, LUO X, ZHOU Y, LI X, LIU J, ZHAN W, LIU N, WANG H, CHEN G, CAI Y, XU G, WANG W, ZHENG D, YAN J . Genome- wide dissection of the maize ear genetic architecture using multiple populations. New Phytologist, 2016,210(3):1095-1106.
doi: 10.1111/nph.13814 |
| [22] |
YANG N, LU Y, YANG X, HUANG J, ZHOU Y, ALI F, WEN W, LIU J, LI J, YAN J . Genome wide association studies using a new nonparametric model reveal the genetic architecture of 17 agronomic traits in an enlarged maize association panel. Plos Genetics, 2014,10(9):e1004573.
doi: 10.1371/journal.pgen.1004573 pmid: 4161304 |
| [23] |
LI M X, YEUNG J M Y, CHERNY S S, SHAM P C . Evaluating the effective numbers of independent tests and significant P-value thresholds in commercial genotyping arrays and public imputation reference datasets. Human Genetics, 2012,131(5):747-756.
doi: 10.1007/s00439-011-1118-2 pmid: 22143225 |
| [24] |
BRADBURY P J, ZHANG Z, KROON D E, CASSTEVENS T M, BUCKLER E S . TASSEL: Software for association mapping of complex traits in diverse samples. Bioinformatics, 2007,23(19):2633-2635.
doi: 10.1093/bioinformatics/btm308 |
| [25] |
LI H, PENG Z, YANG X, WANG W, FU J, WANG J, HAN Y, CHAI Y, GUO T, YANG N, LIU J, WARBURTON M L, CHENG Y, HAO X, ZHANG P, ZHAO J, LIU Y, WANG G, LI J, YAN J . Genome-wide association study dissects the genetic architecture of oil biosynthesis in maize kernels. Nature Genetics, 2013,45(1):43-72.
doi: 10.1038/ng.2484 pmid: 23242369 |
| [26] |
FU J, CHENG Y, LINGHU J, YANG X, KANG L, ZHANG Z, ZHANG J, HE C, DU X, PENG Z, WANG B, ZHAI L, DAI C, XU J, WANG W, LI X, ZHENG J, CHEN L, LUO L, LIU J, QIAN X, YAN J, WANG J, WANG G . RNA sequencing reveals the complex regulatory network in the maize kernel. Nature Communicate, 2013,4:2832.
doi: 10.1038/ncomms3832 pmid: 24343161 |
| [27] | YANG X, YAN J, SHAH T, WARBURTON M L, LI Q, LI L, GAO Y, CHAI Y, FU Z, ZHOU Y, XU S, BAI G, MENG Y, ZHENG Y, LI J . Genetic analysis and characterization of a new maize association mapping panel for quantitative trait loci dissection. Theoretical & Applied Genetics, 2010,121(3):417-431. |
| [28] | 刘坤, 张雪海, 孙高阳, 闫鹏帅, 郭海平, 陈思远, 薛亚东, 郭占勇, 谢慧玲, 汤继华, 李卫华 . 玉米株型相关性状的全基因组关联分析. 中国农业科学, 2018,51(5):821-834. |
| LIU K, ZHANG X H, SUN G Y, YAN P S, GUO H P, CHEN S Y, XUE Y D, GUO Z Y, XIE H L, TANG J H, LI W H . Genome-wide association studies of plant type traits in maize. Scientia Agricultura Sinica, 2018,51(5):821-834. (in Chinese) | |
| [29] | ZHAO Z, ZHANG H, FU Z, CHEN H, LIN Y, YAN P, LI W, XIE H, GUO Z, ZHANG X, TANG J . Genetic-based dissection of arsenic accumulation in maize using a genome-wide association analysis method. Plant Biotechnology Journal, 2017,91:135-147. |
| [30] | 赵永萍 . 玉米不同叶位叶片与产量相关性研究. 现代农业科技, 2015,644(6):11-12. |
| ZHAO Y P . Correlation between leaf position and yield of maize. Modern Agricultural Science and Technology, 2015,644(6):11-12. (in Chinese) | |
| [31] | 陈永欣, 翟广谦, 李彦良, 王计虎 . 糯玉米自交系、杂交种棒三叶与产量之间相关性分析. 玉米科学, 2001,9(2):50-52. |
| CHEN Y X, ZHAI G Q, LI Y L, WANG J H . Analysis on correlativity of three-ear-leaves of inbred line and hybrid-strain yield of glutinous maize. Journal of Maize Sciences, 2001,9(2):50-52. (in Chinese) | |
| [32] | 唐海涛, 张彪, 田玉秀, 余东梅, 陈洁, 康继伟 . 玉米杂交种棒三叶光合性状比较研究. 玉米科学, 2009,17(2):86-90. |
| TANG H T, ZHANG B, TIAN Y X, YU D M, CHEN J, KANG J W . Comparison of photosynthetic characteristics of three ear-leaves hybrids maize. Journal of Maize Sciences, 2009,17(2):86-90. (in Chinese) | |
| [33] | 袁吉, 李艳玉, 蔚荣海 . 鲜食糯玉米自交系叶绿素含量及其与产量的关系. 吉林农业, 2011(12):64-65. |
| YUAN J, LI Y Y, WEI R H . Relationship of content of chlorophyll and yield of inbred line of fresh-eating waxy corn. Jilin Agriculture, 2011(12):64-65. (in Chinese) | |
| [34] | 刘贞琦, 刘振业, 马达鹏, 曾淑芬 . 水稻叶绿素含量及其与光合速率关系的研究. 作物学报, 1984,10(1):57-62. |
| LIU Z Q, LIU Z Y, MA D P, ZENG S F . A study on the relation between chlorophyll content and photosynthetic rate of rice. Acta Agronomica Sinica, 1984,10(1):57-62. (in Chinese) | |
| [35] | 苏云松, 郭华春, 陈伊里 . 马铃薯叶片SPAD值与叶绿素含量及产量的相关性研究. 西南农业学报, 2007,20(4):690-693. |
| SU Y S, GUO H C, CHEN Y L . Relationship between SPAD readings chlorophyll contents and yield of potato (Solanum tubersosum L.). Southwest China Journal of Agricultural Sciences, 2007,20(4):690-693. (in Chinese) | |
| [36] | 王康, 沈荣开, 唐友生 . 用叶绿素测值(SPAD)评估夏玉米氮素状况的实验研究. 灌溉排水学报, 2002,21(4):1-3. |
| WANG K, SHEN R K, TANG Y S . Evaluating nitrogen status with chlorophyll meter in summer corn. Irrigation and Drainage, 2002,21(4):1-3. (in Chinese) | |
| [37] |
ZHANG L, KUSABA M, TANAKA A, SAKAMOTO W . Protection of chloroplast membranes by VIPP1 rescues aberrant seedling development in Arabidopsis nyc1 mutant. Frontiers in Plant Science, 2016,7(73):533.
doi: 10.3389/fpls.2016.00533 |
| [38] |
WANG F, WANG G, LI X, HUANG J, ZHENG J . Heredity, physiology and mapping of a chlorophyll content gene of rice (Oryza sativa L.). Journal of Plant Physiology, 2008,165(3):324-330.
doi: 10.1016/j.jplph.2006.11.006 |
| [39] |
HUANG J, QIN F, ZANG G, KANG Z, ZOU H, HU F, YUE C, LI X, WANG G . Mutation of OsDET1 increases chlorophyll content in rice. Plant Science, 2013,210(210C):241-249.
doi: 10.1016/j.plantsci.2013.06.003 |
| [40] |
王爱玉, 张春庆 . 玉米叶绿素含量的QTL定位. 遗传, 2008,30(8):1083-1091.
doi: DOI: 10.3724/SP.J.1005.2008.01083 |
|
WANG A Y, ZHANG C Q . QTL mapping for chlorophyll content in maize. Hereditas, 2008,30(8):1083-1091. (in Chinese)
doi: DOI: 10.3724/SP.J.1005.2008.01083 |
|
| [41] |
刘宗华, 谢惠玲, 王春丽, 田国伟, 卫晓轶, 胡彦民 . 氮胁迫和非胁迫条件下玉米不同时期叶绿素含量的QTL分析. 植物营养与肥料学报, 2008,14(5):845-851.
doi: 10.11674/zwyf.2008.0505 |
|
LIU Z H, XIE H L, WANG C L, TIAN G W, WEI X Y, HU Y M . QTL analysis of chlorophyll content of maize under N-stress and no N-stress at different development stages. Plant Nutrition and Fertilizer Science, 2008,14(5):845-851. (in Chinese)
doi: 10.11674/zwyf.2008.0505 |
|
| [42] | 方永丰, 李永生, 白江平, 慕平, 孟亚雄, 张金林 . 玉米持绿相关QTL整合图谱构建及一致性QTL区域内候选基因发掘. 草业学报, 2012(4):175-185. |
| FANG Y F, LI Y S, BAI J P, MU P, MENG Y X, ZHANG J L . Construction of integration QTL map and identification of candidate genes for stay-green in maize. Acta Prataculturae Sinica, 2012(4):175-185. (in Chinese) | |
| [43] | MI Y, SUN C, WEI B, SUN F, GUO Y, HU Q, DING W, ZHU L, XIA G . Coatomer subunit beta 2 (COPB2), identified by label-free quantitative proteomics, regulates cell proliferation and apoptosis in human prostate carcinoma cells. Biochemical and Biophysical Research Communications, 2018,49(1):473-480. |
| [44] |
WANG G, SUN X, WANG G, WANG F, GAO Q, SUN X, TANG Y, CHANG C, LAI J, ZHU L, XU Z, SONG R . Opaque7 encodes an acyl-activating enzyme-like protein that affects storage protein synthesis in maize endosperm. Genetics, 2011,189(4):1281-1295.
doi: 10.1534/genetics.111.133967 |
| [45] |
MESKAUSKIENE R, NATER M, GOSLINGS D, KESSLER F, OP DEN CAMP R, APEL K . FLU: A negative regulator of chlorophyll biosynthesis in Arabidopsis thaliana. Proceedings of the National Academy of Sciences of the USA, 2001,98(22):12826-12831.
doi: 10.1073/pnas.221252798 pmid: 11606728 |
| [46] | PONTOPPIDAN B, GAMINIKANNANGARA C . Purification and partial characterisation of barley glutamyl-tRNAGlu reductase, the enzyme that directs glutamate to chlorophyll biosynthesis. European Journal of Biochemistry, 2010,225(2):529-537. |
| [47] | GOSLINGS D, MESKAUSKIENE R, KIM C, LEE KP, NATER M, APEL K . Concurrent interactions of heme and FLU with Glu tRNA reductase (HEMA1), the target of metabolic feedback inhibition of tetrapyrrole biosynthesis, in dark- and light-grown Arabidopsis plants. The Plant Journal, 2010,40(6):957-967. |
| [48] | 贺丽虹, 赵淑娟, 胡之璧 . 植物细胞色素P450基因与功能研究进展. 药物生物技术, 2008,15(2):142-147. |
| HE L H, ZHAO S J, HU Z B . Gene and function research progress of plant cytochrome P450s. Pharmaceutical Biotechnology, 2008,15(2):142-147. (in Chinese) | |
| [49] |
TRANBARGER T J, FORWARD B S, MISRA S . Regulation of NADPH-cytochrome P450 reductase expressed during Douglas-fir germination and seedling development. Plant Molecular Biology, 2000,44(2):141-153.
doi: 10.1023/A:1006425025702 pmid: 11117258 |
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