欢迎访问作物学报,今天是

作物学报 ›› 2022, Vol. 48 ›› Issue (7): 1635-1644.doi: 10.3724/SP.J.1006.2022.14106

• 作物遗传育种·种质资源·分子遗传学 • 上一篇    下一篇

Bna-novel-miR36421调节拟南芥株型和花器官发育的功能验证

戴丽诗1,2(), 常玮1,2(), 张赛1,2, 钱明超1,2, 黎小东1,2, 张凯1,2, 李加纳1,2,3, 曲存民1,2,3,*(), 卢坤1,2,3,*()   

  1. 1西南大学农学与生物科技学院, 重庆 400715
    2南方山地农业教育部工程研究中心, 重庆 400715
    3西南大学农业科学研究院, 重庆 400715
  • 收稿日期:2021-06-22 接受日期:2021-10-19 出版日期:2022-07-12 网络出版日期:2021-11-03
  • 通讯作者: 曲存民,卢坤
  • 作者简介:戴丽诗, E-mail: dls375684@163.com
    常玮, E-mail: changwei1919@163.com第一联系人:

    ** 同等贡献

  • 基金资助:
    国家自然科学基金项目(31871653);国家重点研发计划项目(2018YFD0100500);高等学校学科创新引智基地项目“111项目”(B12006);重庆市自然科学基金重点项目;西南大学种质创制专项资助

Functional validation of Bna-novel-miR36421 regulating plant architecture and flower organ development in Arabidopsis thaliana

DAI Li-Shi1,2(), CHANG Wei1,2(), ZHANG Sai1,2, QIAN Ming-Chao1,2, LI Xiao-Dong1,2, ZHANG Kai1,2, LI Jia-Na1,2,3, QU Cun-Min1,2,3,*(), LU Kun1,2,3,*()   

  1. 1College of Agronomy and Biotechnology, Southwest University, Chongqing 400715, China
    2Engineering Research Center of South Upland Agriculture, Ministry of Education, Chongqing 400715, China
    3Academy of Agricultural Sciences, Southwest University, Chongqing, 400715, China
  • Received:2021-06-22 Accepted:2021-10-19 Published:2022-07-12 Published online:2021-11-03
  • Contact: QU Cun-Min,LU Kun
  • About author:First author contact:

    ** Contributed equally to this work

  • Supported by:
    National Natural Science Foundation of China(31871653);National Key Research and Development Plan(2018YFD0100500);Project of Intellectual Base for Discipline Innovation in Colleges and Universities “the 111 Project”(B12006);Key Project of Natural Science Foundation;Germplasm Creation Special Program of Southwest University

摘要:

MicroRNA参与油菜种子发育、胁迫响应和胚胎发育等多种生物学过程, 但其在油菜株型和花器官发育方面的报道还较少。本研究以高/低收获指数油菜中显著差异表达的Bna-novel-miR36421为对象, 通过转基因植株表型、靶基因预测、表达量和双荧光素酶报告系统等解析其调控机制。Bna-novel-miR36421与植物miR167家族成员高度同源, 可能为油菜新的miR167成员。Bna-novel-miR36421能靶向并抑制Bna.C03ARF6Bna.C06ARF8Bna.A09PATL2Bna.C03DUF581的表达。过表达拟南芥植株中, Bna-novel-miR36421的表达量显著上调, 而上述4个靶基因的拟南芥同源基因表达量极显著下降。过表达拟南芥植株株型矮小, 茎间缩短, 叶片高度卷曲; 花器官发育异常, 雌蕊膨大, 雄蕊花丝缩短, 花药不开裂, 花粉败育。推测Bna-novel-miR36421可能通过抑制Bna.C03ARF6Bna.C06ARF8Bna.A09PATL2Bna.C03DUF581基因表达, 进而对油菜株型和花器官的发育起到重要的调控作用。研究结果对解析miRNA介导的植物株型和花器官发育分子机制, 挖掘重要发育性状关键基因奠定了重要基础。

关键词: 甘蓝型油菜, Bna-novel-miR36421, miR167, 株型, 花器官

Abstract:

MicroRNA is involved in the regulation of various biological processes such as development, stress response, and embryonic development in rapeseed, however, only few studies focused on the regulation of miRNA on the plant architecture and floral organ development of rapeseed. In this study, Bna-novel-miR36421 that differentially expressed between the high and low harvest index accessions of rapeseed was identified, whose biological function and regulation mechanism were further characterized through phenotype analysis in transgenic plants, target gene prediction, expression pattern comparison, and dual luciferase reporter system. The results showed that Bna-novel-miR36421 was highly homologous to miR167 family members, and might be a novel miR167 member in rapeseed. The qRT-PCR and dual luciferase reporter system results indicated that Bna-novel-miR36421 could inhibit the relative expression levels of Bna.C03ARF6, Bna.C06ARF8, Bna.A09PATL2, and Bna.C03DUF581. In the overexpressing Arabidopsis plants, the expression of Bna-novel-miR36421 was significantly increased, while the transcription levels of the Arabidopsis orthologs of its target genes were decreased significantly. Phenotypic observation showed that the plant height of overexpression Arabidopsis plants were reduced, with shortened stems and curled leaves. The development of floral organs was abnormal, with enlarged pistil, shortened stamen filaments, unbreakable anthers, and aborted pollens. Hence, it could be proposed that Bna-novel-miR36421 may regulate plant architecture and floral organ development by repressing Bna.C03ARF6, Bna.C06ARF8, Bna.A09PATL2, and Bna.C03DUF581. The results laid a solid foundation for understanding the molecular mechanism of miRNA-mediated plant architecture and flower organ development, and mining the key genes involved in plant developmental processes.

Key words: Brassica napus, Bna-novel-miR36421, miRNA167, plant architecture, flower organ

附表1

Bna-novel-miR36421的成熟体和前体序列"

类别
Type
序列
Sequence (5'-3')
成熟体序列
Mature sequence
TAAGCTGCCAGCATGATCTTG
前体序列-1
Precursor sequence-1
TAAGCTGCCAGCATGATCTTGTCTTCCTCTCCTAAGCTTCATATATAT
AACTAAGCTAAGGAAATAAATAATTTTCTCGTTCTCATAAGATTATAT
GATAATAGCTTAGAGAGAGAGAGACTAGGTCATGCTGGTAGCTTCAC
前体序列-2
Precursor sequence-2
TAAGCTGCCAGCATGATCTTGTCTTCCTCTCTTAAGCTTCATATATAAC
TAAGCTAAGGAATAATATAATTTTCTTGTTCTCATAAGAATATATGATAA
TAGCTTAGAGAGAGAGAGAGAGAGACTAGGTCATGCTGGTAGTTTCAC

附表2

本研究中所用引物"

引物名称
Prime name
引物序列
Primer sequence (5'-3')
62sk-miR36421F taagcttgatatcgaattcCAATATGAGATTTCGCAGTGACT
62sk-miR36421R cgctctagaactagtggatccCAAACACAACTAACCTTC
0800-C03ARF6F ttctagagcggccgcggatccGGTACAATGACGACACCTTCTAG
0800-C03ARF6R actggtgatttcagcgaattcTCCCCAAGTCATCACAGTTC
0800-C06ARF8F ttctagagcggccgcggatccCTGGATTTCAGAACACTTTGC
0800-C06ARF8R actggtgatttcagcgaattcGAAATGGGTGAGGTTCTGTG
0800-C03DUF581F ttctagagcggccgcggatccATGACTAAAATCTCTGTTGG
0800-C03DUF581R actggtgatttcagcgaattcAGGAACTATAAATAGCTGGCGT
0800-A09PATL2F ttctagagcggccgcggatccTCAGGAGCTACATATTTGAATATGG
0800-A09PATL2R actggtgatttcagcgaattcGACACGTTGTGATCTACAGCTCGT
OVmiR36421F caccAGTGACTAAGAAAGTTACCGAGGG
OVmiR36421R AGTGACTAAGAAAGTTACCGAGGG
F35S3ND GGAAGTTCATTTCATTTGGAGAG
OCS5ND CGATCATAGGCGTCTCGCATATCTC
F BAR CGACATCCGCCGTGCCACCGA
R BAR GTACCGGCAGGCTGAAGTCCAGC
BnaActin7F TGGGTTTGCTGGTGACGAT
BnaActin7R TGCCTAGGACGACCAACAATACT

图1

Bna-novel-miR36421 前体成员二级茎环结构预测 A: Bna-novel-MIR36421-1二级茎环结构, dG = -26.500 kcal mol-1; B: Bna-novel-MIR36421-2二级茎环结构, dG = -63.90 kcal mol-1。"

图2

Bna-novel-miR36421 与甘蓝型油菜Bna-miR167家族成员成熟及前体miRNA的序列比对 A: 成熟miRNA序列比对; B: 前体miRNA序列比对。"

图3

过表达Bna-novel-miR36421转基因拟南芥表达水平及表型观察 A: 过表达Bna-novel-miR36421拟南芥中基因表达水平检测; B: 过表达Bna-novel-miR36421转基因拟南芥表型观察; C: 过表达Bna-novel-miR36421转基因拟南芥表型数据统计。*、**和****分别表示在0.05、0.01和0.0001水平上显著差异; NS表示差异不显著。"

图4

Bna-novel-miR36421及其靶基因在不同材料及不同组织部位中的表达水平分析 P130: 甘蓝型油菜高收获指数极端材料; P202: 甘蓝型油菜低收获指数极端材料; 14dSe: 14 d种子; 14dSp: 14 d角果皮; 28dSe: 28 d种子; 28dSp: 28 d角果皮。**表示在0.01水平上显著差异。"

图5

Bna-novel-miR36421靶向负调控其靶基因 A: 双荧光素酶系统验证Bna-novel-miR36421与靶基因的关系; B: Bna-novel-miR36421及其靶基因表达水平检测。**表示在0.01水平上显著差异。"

图6

甘蓝型油菜Bna-novel-miR36421调节株型及花器官发育的可能模型"

[1] Yu Y, Jia T, Chen X M. The ‘how’ and ‘where’ of plant microRNAs. New Phytol, 2017, 216: 1002-1017.
doi: 10.1111/nph.14834 pmid: 29048752
[2] Jones-Rhoades M W, Bartel D P. Computational identification of plant MicroRNAs and their targets, including a stress-induced miRNA. Mol Cell, 2004, 14: 787-799.
pmid: 15200956
[3] Lewis B P, Burge C B, Ba Rtel D P J C. Conserved seed pairing, often flanked by adenosines, indicates that thousands of human genes are microRNA targets. Cell, 2005, 120: 15-20.
doi: 10.1016/j.cell.2004.12.035
[4] Stark A, Brennecke J, Bushati N, Russell R B, Cohen S M J C. Animal microRNAs confer robustness to gene expression and have a significant impact on 3'UTR evolution. Cell, 2005, 123: 1133-1146.
doi: 10.1016/j.cell.2005.11.023
[5] Cuperus J T, Fahlgren N, Carrington J C J P C. Evolution and functional diversification of MIRNA genes. Plant Cell, 2011, 23: 431-442.
doi: 10.1105/tpc.110.082784
[6] Lee C T, Risom T, Strauss W M. Evolutionary conservation of microRNA regulatory circuits: an examination of microRNA gene complexity and conserved microRNA-target interactions through metazoan phylogeny. DNA Cell Biol, 2007, 26: 209-218.
doi: 10.1089/dna.2006.0545
[7] Heimberg A M, Sempere L F, Moy V N, Donoghue P C J, Peterson K J. MicroRNAs and the advent of vertebrate morphological complexity. Proc Natl Acad Sci USA, 2008, 105: 2946-2950.
doi: 10.1073/pnas.0712259105
[8] Lu J, Fu Y, Kumar S, Shen Y, Zeng K, Xu A, Carthew R, Wu C I. Adaptive evolution of newly emerged micro-RNA genes in Drosophila. Genome Biol Evol, 2008, 25: 929-938.
[9] Berezikov E. Evolution of microRNA diversity and regulation in animals. Nat Rev Genet, 2011, 12: 846-860.
doi: 10.1038/nrg3079 pmid: 22094948
[10] Chen L, Chen L, Zhang X X, Liu T T, Niu S L, Wen J, Yi B, Ma C Z, Tu J X, Fu T D, Shen J X. Identification of miRNAs that regulate silique development in Brassica napus. Plant Sci, 2018, 269: 106-117.
doi: S0168-9452(17)31095-6 pmid: 29606207
[11] Xie F L, Huang S Q, Guo K, Xiang A L, Zhu Y Y, Nie L, Yang Z M. Computational identification of novel microRNAs and targets in Brassica napus . FEBS Lett, 2007, 581: 1464-1474.
doi: 10.1016/j.febslet.2007.02.074
[12] Zhao Y T, Wang M, Fu S X, Yang W C, Qi C K, Wang X J. Small RNA profiling in two Brassica napus cultivars identifies microRNAs with oil production- and development- correlated expression and new small RNA classes. Plant Physiol, 2012, 158: 813-823.
doi: 10.1104/pp.111.187666
[13] Huang D, Koh C, Feurtado J A, Tsang E W, Cutler A J. MicroRNAs and their putative targets in Brassica napus seed maturation. BMC Genomics, 2013, 14: 140.
doi: 10.1186/1471-2164-14-140
[14] Donald C M. The breeding of crop ideotypes. Euphytica, 1968, 17: 385-403.
doi: 10.1007/BF00056241
[15] Peiffer J A, Romay M C, Gore M A, Flint-Garcia S A, Zhang Z, Millard M J, Gardner C A, McMullen M D, Holland J B, Bradbury P J. The genetic architecture of maize height. Genetics, 2014, 196: 1337-1356.
doi: 10.1534/genetics.113.159152 pmid: 24514905
[16] Heimberg A M, Sempere L F, Moy V N, Donoghue P C, Peterson K J. MicroRNAs and the advent of vertebrate morphological complexity. Proc Natl Acad Sci USA, 2008, 105: 2946-2950.
doi: 10.1073/pnas.0712259105
[17] Sun C, Wang B, Wang X, Hu K, Li K, Li Z, Li S, Yan L, Guan C, Zhang J. Genome-wide association study dissecting the genetic architecture underlying the branch angle trait in rapeseed (Brassica napus L.). Sci Rep, 2016, 6: 33673.
doi: 10.1038/srep33673
[18] Wang H, Cheng H, Wang W, Liu J, Hao M, Mei D, Zhou R, Fu L, Hu Q. Identification of BnaYUCCA6 as a candidate gene for branch angle in Brassica napus by QTL-seq. Sci Rep, 2016, 6: 38493.
doi: 10.1038/srep38493 pmid: 27922076
[19] Zhao B, Li H, Li J, Wang B, Dai C, Wang J, Liu K. Brassica napus DS-3, encoding a DELLA protein, negatively regulates stem elongation through gibberellin signaling pathway. Theor Appl Genet, 2017, 130: 727-741.
doi: 10.1007/s00122-016-2846-4 pmid: 28093630
[20] Wang T, Ping X, Cao Y, Jian H, Gao Y, Wang J, Tan Y, Xu X, Lu K, Li J. Genome-wide exploration and characterization of miR172/euAP2 genes in Brassica napus L. for likely role in flower organ development. BMC Plant Biol, 2019, 19: 336.
doi: 10.1186/s12870-019-1936-2
[21] Earley K W, Haag J R, Pontes O, Opper K, Juehne T, Song K, Pikaard C S. Gateway-compatible vectors for plant functional genomics and proteomics. Plant J, 2006, 45: 616-629.
pmid: 16441352
[22] Lu K, Li T, He J, Chang W, Zhang R, Liu M, Yu M, Fan Y, Ma J, Sun W, Qu C, Liu L, Li N, Liang Y, Wang R, Qian W, Tang Z, Xu X, Lei B, Zhang K, Li J. qPrimerDB: a thermodynamics-based gene-specific qPCR primer database for 147 organisms. Nucleic Acids Res, 2018, 46: D1229-D1236.
[23] Lu J, Shen Y, Wu Q, Kumar S, He B, Shi S, Carthew R W, Wang S M, Wu C I. The birth and death of microRNA genes in Drosophila. Nat Genet, 2008, 40: 351.
doi: 10.1038/ng.73
[24] Quah S, Hui J H, Holland P W. A burst of miRNA innovation in the early evolution of butterflies and moths. Mol Biol Evol, 2015, 32: 1161-1174.
doi: 10.1093/molbev/msv004
[25] Zheng L, Nagpal P, Villarino G, Trinidad B, Bird L, Huang Y, Reed J W. miR167 limits anther growth to potentiate anther dehiscence. Development, 2019, 146: dev174375.
[26] Ellis C M, Nagpal P, Young J C, Hagen G, Guilfoyle T J, Reed J W. AUXIN RESPONSE FACTOR1 and AUXIN RESPONSE FACTOR2 regulate senescence and floral organ abscission in Arabidopsis thaliana. Development, 2005, 132: 4563-4574.
doi: 10.1242/dev.02012
[27] Reeves P H, Ellis C M, Ploense S E, Wu M F, Yadav V, Tholl D, Chetelat A, Haupt I, Kennerley B J, Hodgens C, Farmer E E, Nagpal P, Reed J W. A regulatory network for coordinated flower maturation. PLoS Genet, 2012, 8: e1002506.
doi: 10.1371/journal.pgen.1002506
[28] Tabata R, Ikezaki M, Fujibe T, Aida M, Tian C E, Ueno Y, Yamamoto K T, Machida Y, Nakamura K, Ishiguro S. Arabidopsis AUXIN RESPONSE FACTOR6 and 8 regulate jasmonic acid biosynthesis and floral organ development via repression of class 1 KNOX genes. Plant Cell Physiol, 2010, 51: 164-175.
doi: 10.1093/pcp/pcp176 pmid: 20007966
[29] Nagpal P, Ellis C M, Weber H, Ploense S E, Barkawi L S, Guilfoyle T J, Hagen G, Alonso J M, Cohen J D, Farmer E E. Auxin response factors ARF6 and ARF8 promote jasmonic acid production and flower maturation. Development, 2005, 132: 4107-4118.
doi: 10.1242/dev.01955
[30] Tejos R, Rodriguez-Furlan C, Adamowski M, Sauer M, Norambuena L, Friml J. PATELLINS are regulators of auxin-mediated PIN1 relocation and plant development in Arabidopsis thaliana. J Cell Sci, 2018, 131: jcs204198.
[31] Forestan C, Varotto S. The role of PIN auxin efflux carriers in polar auxin transport and accumulation and their effect on shaping maize development. Mol Plant, 2012, 5: 787-798.
doi: 10.1093/mp/ssr103
[32] Gallavotti A. The role of auxin in shaping shoot architecture. J Exp Bot, 2013, 64: 2593-2608.
doi: 10.1093/jxb/ert141 pmid: 23709672
[33] Laxmi A. DUF581 is plant specific FCS-like zinc finger involved in protein-protein interaction. PLoS One, 2014, 9: e99074.
doi: 10.1371/journal.pone.0099074
[34] Nietzsche M, Schießl I, Börnke F. The complex becomes more complex: protein-protein interactions of SnRK1 with DUF581 family proteins provide a framework for cell- and stimulus type-specific SnRK1 signaling in plants. Front Plant Sci 2014, 5: 54.
doi: 10.3389/fpls.2014.00054 pmid: 24600465
[35] Bitrian M, Roodbarkelari F, Horvath M, Koncz C. BAC- recombineering for studying plant gene regulation: developmental control and cellular localization of SnRK1 kinase subunits. Plant J, 2011, 65: 829-842.
doi: 10.1111/j.1365-313X.2010.04462.x
[36] Jiao Y Q, Wang Y H, Xue D W, Wang J, Yan M X, Liu G F, Dong G J, Zeng D L, Lu Z F, Zhu X D, Qian Q, Li J Y. Regulation of OsSPL14 by OsmiR156 defines ideal plant architecture in rice. Nat Genet, 2010, 42: 541-544.
doi: 10.1038/ng.591
[37] Che R H, Tong H N, Shi B H, Liu Y Q, Fang S R, Liu D P, Xiao Y H, Hu B, Liu L C, Wang H R, Zhao M F, Chu C C. Control of grain size and rice yield by GL2-mediated brassinosteroid responses. Nat Plants, 2015, 2: 15195.
doi: 10.1038/nplants.2015.195
[38] Nair S K, Wang N, Turuspekov Y, Pourkheirandish M, Sinsuwongwat S, Chen G X, Sameri M, Tagiri A, Honda I, Watanabe Y, Kanamori H, Wicker T, Stein N, Nagamura Y, Matsumoto T, Komatsuda T. Cleistogamous flowering in barley arises from the suppression of microRNA-guided HvAP2 mRNA cleavage. Proc Natl Acad Sci USA, 2010, 107: 490-495.
doi: 10.1073/pnas.0909097107
[39] Silva G F F, Silva E M, da Silva Azevedo M, Guivin M A C, Ramiro D A, Figueiredo C R, Carrer H, Peres L E P, Nogueira F T S. microRNA156-targeted SPL/SBP box transcription factors regulate tomato ovary and fruit development. Plant J, 2014, 78: 604-618.
doi: 10.1111/tpj.12493
[40] Tang J, Chu C. microRNAs in crop improvement: fine-tuners for complex traits. Nat Plants, 2017, 3: 17077.
doi: 10.1038/nplants.2017.77
[1] 马毅娜, 吴晓明玉, 李藕琪, 王圆, 陈丽, 张盈川, 赵伦, 文静, 傅廷栋, 沈金雄. Bna-miR1040-EIF3A模块调控油菜开花时间的功能研究[J]. 作物学报, 2026, 52(2): 349-362.
[2] 王彬, 蒙姜宇, 邱浩良, 贺亚军, 钱伟. 甘蓝型油菜BnaDUF579基因家族的鉴定与表达模式分析[J]. 作物学报, 2025, 51(8): 2100-2110.
[3] 夏琦, 郭滢, 王坤美, 王思忆, 巨建业, 彭雅雯, 刘忠松, 夏石头. 甘蓝型油菜种子和种皮中水杨酸含量与原花色素积累的关系研究[J]. 作物学报, 2025, 51(5): 1189-1197.
[4] 王晓琳, 刘忠松, 康雷, 杨柳. 甘蓝型油菜角果长度和每角粒数基因定位以及角果皮转录组动态分析[J]. 作物学报, 2025, 51(4): 888-899.
[5] 张琴, 戴成, 马朝芝. 生长素响应报告基因转化甘蓝型油菜及各组织GUS动态信号分析[J]. 作物学报, 2025, 51(3): 667-675.
[6] 孙程明, 周晓婴, 陈锋, 张维, 王晓东, 彭琦, 郭月, 高建芹, 胡茂龙, 付三雄, 张洁夫. 长链非编码RNA (lncRNA)在甘蓝型油菜分枝角度调控中的功能分析与预测[J]. 作物学报, 2025, 51(3): 559-567.
[7] 黄绒, 周渠晨, 陈楚铭, 罗倩, 易东, 杜常欢, 黄祥宇, 盛锋, 杜雪竹. 过表达BnNRT2.3-like对油菜氮素吸收利用及产量的影响[J]. 作物学报, 2025, 51(12): 3184-3197.
[8] 巨建业, 杨柳, 陈浩, 康雷, 夏石头, 刘忠松. 单细胞核转录组分析揭示油菜种皮分化过程和种子颜色差异原因[J]. 作物学报, 2025, 51(11): 2860-2874.
[9] 张雯, 李玉, 王创, 石磊, 丁广大. 甘蓝型油菜磷转运蛋白BnaPT48的功能研究[J]. 作物学报, 2025, 51(11): 2983-2995.
[10] 胡志康, 舒雨, 王会, 杨莹莹, 廖俊宇, 刘佳, 成洪涛, 郭晨, 张园园, 刘胜毅, 胡琼, 梅德圣, 李超. 甘蓝型油菜苗期耐碱性种质综合鉴定与评价[J]. 作物学报, 2025, 51(10): 2681-2692.
[11] 王晨, 贺丹, 姚敏, 邱萍, 何昕, 熊兴华, 康雷, 刘忠松, 钱论文. 基于转录组分析鉴定甘蓝型油菜开花候选基因以及BnaCOR27功能验证[J]. 作物学报, 2025, 51(10): 2693-2704.
[12] 徐林珊, 郜耿东, 王宇, 王家星, 杨吉招, 武亚瑞, 张宵寒, 常影, 李真, 谢雄泽, 龚德平, 王晶, 葛贤宏. 甘蓝型油菜漆酶基因家族成员表达模式及与茎秆抗折力的关联分析[J]. 作物学报, 2025, 51(1): 134-148.
[13] 李嘉欣, 黄莹, 吴潞梅, 赵伦, 易斌, 马朝芝, 涂金星, 沈金雄, 傅廷栋, 文静. 甘蓝型油菜BnaSLY1基因进化分析及功能研究[J]. 作物学报, 2025, 51(1): 44-57.
[14] 望嘉翔, 郁雪婷, 李梦桃, 麦伟涛, 陈新, 王文泉. MeLAZY1c基因调控木薯株型的初步研究[J]. 作物学报, 2024, 50(6): 1514-1524.
[15] 曹松, 姚敏, 任睿, 贾元, 向星汝, 李文, 何昕, 刘忠松, 官春云, 钱论文, 熊兴华. 转录组结合区域关联分析挖掘油菜含油量积累的候选基因[J]. 作物学报, 2024, 50(5): 1136-1146.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!