Acta Agronomica Sinica ›› 2021, Vol. 47 ›› Issue (5): 882-893.doi: 10.3724/SP.J.1006.2021.04128
• CROP GENETICS & BREEDING·GERMPLASM RESOURCES·MOLECULAR GENETICS • Previous Articles Next Articles
HUANG Ning2,*(), HUI Qian-Long1, FANG Zhen-Ming2, LI Shan-Shan2, LING Hui2, QUE You-Xiong1, YUAN Zhao-Nian1,*()
[1] | McSteen P, Leyser O. Shoot branching. Annu Rev Plant Biol, 2005,56:353-374. |
[2] | 丘立杭, 范业庚, 罗含敏, 黄杏, 陈荣发, 杨荣仲, 吴建明, 李杨瑞. 甘蔗分蘖发生及成茎的调控研究进展. 植物生理学报, 2018,54:192-202. |
Qiu L H, Fan Y G, Luo H M, Huang X, Chen R F, Yang R Z, Wu J M, Li Y R. Advances of regulation study on tillering formation and stem forming from available tillers in sugarcane ( Saccharum officinarum). J Plant Physiol, 2018,54:192-202 (in Chinese with English abstract). | |
[3] | 罗宝杰, 许俊旭, 丁艳锋, 李刚华, 刘正辉, 王绍华. 内源CTK和IAA平衡对水稻分蘖芽休眠与萌发的影响. 作物学报, 2014,40:1619-1628. |
Luo B J, Xu J X, Ding Y F, Li G H, Liu Z H, Wang S H. Effects of endogenous hormone balance on dormancy and germination of tiller bud. Acta Agron Sin, 2014,40:1619-1628 (in Chinese with English abstract). | |
[4] |
Wu C Y, Trieu A, Radhakrishnan P, Kwok S F, Pennell R I. Brassinosteroids regulate grain filling in rice. Plant Cell, 2008,20:2130-2145.
doi: 10.1105/tpc.107.055087 pmid: 18708477 |
[5] | 王宝祥, 江玲, 陈亮明, 卢百关, 王琦, 黎光泉, 樊继伟, 程遐年, 翟虎渠, 徐大勇. 水稻黑条矮缩病抗性资源的筛选和抗性QTL的定位. 作物学报, 2010,36:1258-1264. |
Wang B X, Jiang L, Chen L M, Lu B G, Wang Q, Li G Q, Fan J W, Cheng X N, Zhai H Q, Xu D Y. Screening of rice resources against rice black-streaked dwarf virus and mapping of resistant QTL. Acta Agron Sin, 2010,36:1258-1264 (in Chinese with English abstract). | |
[6] | 莫祎, 段美娟, 孙志忠, 丁佳, 余东, 孙学武, 盛夏冰, 谭炎宁, 袁贵龙, 袁定阳. 水稻白条纹叶突变体wsl1的遗传分析及基因精细定位. 作物学报, 2019,45:1050-1058. |
Mo Y, Duan M J, Sun Z Z, Ding J, Yu D, Sun X W, Sheng X B, Tan Y N, Yuan G L, Yuan D Y. Genetic analysis and fine mapping of white stripe leaf mutant wsl1 in rice. Acta Agron Sin, 2019,45:1050-1058 (in Chinese with English abstract). | |
[7] | 蔡铁, 徐海成, 尹燕枰, 杨卫兵, 彭佃亮, 倪英丽, 徐彩龙, 杨东清, 王振林. 外源IAA、GA3和ABA影响不同穗型小麦分蘖发生的机制. 作物学报, 2013,39:1835-1842. |
Cai T, Xu H C, Yin Y P, Yang W B, Peng D L, Ni Y L, Xu C L, Yang D Q, Wang Z L. Mechanisms of tiller occurrence affected by exogenous IAA, GA3, and ABA in wheat with different spike-types. Acta Agron Sin, 2013,39:1835-1842 (in Chinese with English abstract). | |
[8] | Lorenzo M, Assuero S G, Tognetti J A. Low temperature differentially affects tillering in spring and winter wheat in association with changes in plant carbon status. Ann Appl Biol, 2015,166:236-248. |
[9] | Tena E, Mekbib F, Ayana A. Correlation and path coefficient analyses in sugarcane genotypes of ethiopia. Am J Plant Sci, 2016,7:1498-1520. |
[10] | Mehnaz S. Microbes—friends and foes of sugarcane. J Basic Microbe, 2013,53:954-971. |
[11] |
Cook C E, Whichard L P, Turner B, Wall M E, Egley G H. Germination of witchweed ( Striga lutea Lour.): isolation and properties of a potent stimulant. Science, 1966,154:1189-1190.
pmid: 17780042 |
[12] | Umehara M, Hanada A, Yoshida S, Akiyama K, Arite T, Takeda-Kamiya N, Magome H, Kamiya Y, Shirasu K, Yoneyama K, Kyozuka J, Yamaguchi S. Inhibition of shoot branching by new terpenoid plant hormones. Nature, 2008,455:195-200. |
[13] | Gomez-Roldan V, Fermas S, Brewer P B, Puech-Pages V, Dun E A, Pillot J P, Letisse F, Matusova R, Danoun S, Portais J C, Bouwmeester H, Becard G, Beveridge C A, Rameau C, Rochange S F. Strigolactone inhibition of shoot branching. Nature, 2008,455:189-194. |
[14] | Aliche E B, Screpanti C, Mesmaeker A D, Munnik T, Bouwmeester H J. Science and application of strigolactones. New Phytol, 2020,227:1001-1011. |
[15] | Waters M T, Brewer P B, Bussell J D, Smith S M, Beveridge C A. The Arabidopsis ortholog of rice DWARF27 acts upstream of MAX1 in the control of plant development by strigolactones. Plant Physiol, 2012,159:1073-1085. |
[16] | Lin H, Wang R, Qian Q, Yan M, Meng X, Fu Z, Yan C, Jiang B, Su Z, Li J, Wang Y. DWARF27, an Iron-containing protein required for the biosynthesis of strigolactones, regulates rice tiller bud outgrowth. Plant Cell, 2009,21:1512-1525. |
[17] | Zhao B, Wu T T, Ma S S, Jiang D J, Bie X M, Sui N, Zhang X S, Wang F. TaD27-B gene controls the tiller number in hexaploid wheat. Plant Biotechnol J, 2020,18:513-525. |
[18] | 吴转娣, 刘新龙, 刘家勇, 昝逢刚, 李旭娟, 刘洪博, 林秀琴, 陈学宽, 苏火生, 赵培方, 吴才文. 甘蔗独脚金内酯生物合成关键基因ScD27的克隆与表达分析. 作物学报, 2017,43:31-41. |
Wu Z D, Liu X L, Liu J Y, Zan F G, Li X J, Liu H B, Lin X Q, Chen X K, Su H S, Zhao P F, Wu C W. Cloning and expression analysis of key gene ScD27 in strigolactones biosynthesis pathway. Acta Agron Sin, 2017,43:31-41 (in Chinese with English abstract). | |
[19] | Zhang J, Zhang X, Tang H, Zhang Q, Hua X, Ma X, Zhu F, Jones T, Zhu X, Bowers J, Wai C M, Zheng C, Shi Y, Chen S, Xu X, Yue J, Nelson D R, Huang L, Li Z, Xu H, Zhou D, Wang Y, Hu W, Lin J, Deng Y, Pandey N, Mancini M, Zerpa D, Nguyen J K, Wang L, Yu L, Xin Y, Ge L, Arro J, Han J O, Chakrabarty S, Pushko M, Zhang W, Ma Y, Ma P, Lv M, Chen F, Zheng G, Xu J, Yang Z, Deng F, Chen X, Liao Z, Zhang X, Lin Z, Lin H, Yan H, Kuang Z, Zhong W, Liang P, Wang G, Yuan Y, Shi J, Hou J, Lin J, Jin J, Cao P, Shen Q, Jiang Q, Zhou P, Ma Y, Zhang X, Xu R, Liu J, Zhou Y, Jia H, Ma Q, Qi R, Zhang Z, Fang J, Fang H, Song J, Wang M, Dong G, Wang G, Chen Z, Ma T, Liu H, Dhungana S R, Huss S E, Yang X, Sharma A, Trujillo J H, Martinez M C, Hudson M, Riascos J J, Schuler M, Chen L Q, Braun D M, Li L, Yu Q, Wang J, Wang K, Schatz M C, Heckerman D, Van Sluys M-A, Souza G M, Moore P H, Sankoff D, VanBuren R, Paterson A H, Nagai C, Ming R. Allele-defined genome of the autopolyploid sugarcane Saccharum spontaneum L. Nat Genet, 2018,50:1565-1573. |
[20] |
Chen C, Chen H, Zhang Y, Thomas H R, Frank M H, He Y, Xia R. Tbtools: an integrative toolkit developed for interactive analyses of big biological data. Mol Plant, 2020,13:1194-1202.
pmid: 32585190 |
[21] | Ling H, Wu Q, Guo J, Xu L, Que Y. Comprehensive selection of reference genes for gene expression normalization in sugarcane by real time quantitative RT-PCR. PLoS One, 2014,9:e97469. |
[22] | Que Y, Su Y, Guo J, Wu Q, Xu L. A global view of transcriptome dynamics during Sporisorium scitamineum challenge in sugarcane by RNA-Seq. PLoS One, 2014,9:e106476. |
[23] | Livak K J, Schmittgen T D. Analysis of relative gene expression data using real-time quantitative PCR and the 2 (-Delta Delta C(T)) method. Methods, 2001,25:402-408. |
[24] |
Su L, Shan J X, Gao J P, Lin H X. OsHAL3, a blue light-responsive protein, interacts with the floral regulator Hd1 to activate flowering in rice. Mol Plant, 2016,9:233-244.
pmid: 26537047 |
[25] | Wang J, Cai Y, Miao Y, Lam S K, Jiang L. Wortmannin induces homotypic fusion of plant prevacuolar compartments. J Exp Bot, 2009,60:3075-3083. |
[26] |
Wei T, Zhang C, Hong J, Xiong R, Kasschau K D, Zhou X, Carrington J C, Wang A. Formation of complexes at plasmodesmata for potyvirus intercellular movement is mediated by the viral protein P3N-PIPO. PLoS Pathog, 2010,6:e1000962.
pmid: 20585568 |
[27] | Emans N, Zimmermann S, Fischer R. Uptake of a fluorescent marker in plant cells is sensitive to brefeldin A and wortmannin. Plant Cell, 2002,14:71-86. |
[28] | Marek M. Strigolactones as part of the plant defence system. Trends Plant Sci, 2016,21:900-903. |
[29] |
Torres-Vera R, García J M, Pozo M J, López-Ráez J A. Do strigolactones contribute to plant defence? Mol Plant Pathol, 2014,15:211-216.
pmid: 24112811 |
[30] | Piisilä M, Keceli M A, Brader G, Jakobson L, Jõesaar I, Sipari N, Kollist H, Palva E T, Kariola T. The F-box protein MAX2 contributes to resistance to bacterial phytopathogens in Arabidopsis thaliana. BMC Plant Biol, 2015,15:53. |
[31] | Stes E, Depuydt S, De Keyser A, Matthys C, Audenaert K, Yoneyama K, Werbrouck S, Goormachtig S, Vereecke D. Strigolactones as an auxiliary hormonal defence mechanism against leafy gall syndrome in Arabidopsis thaliana. J Exp Bot, 2015,66:5123-5134. |
[32] | Kunkel B N, Brooks D M. Cross talk between signaling pathways in pathogen defense. Curr Opin Plant Biol, 2002,5:325-331. |
[33] | Asselbergh B, De Vleesschauwer D, Hofte M. Global switches and fine-tuning—ABA modulates plant pathogen defense. Mol Plant Microbe Interact, 2008,21:709-719. |
[34] | Xia X J, Zhou Y H, Shi K, Zhou J, Foyer C H, Yu J Q. Interplay between reactive oxygen species and hormones in the control of plant development and stress tolerance. J Exp Bot, 2015,66:2839-2856. |
[35] | Abuauf H, Haider I, Jia K P, Ablazov A, Mi J, Blilou I, Al-Babili S. The Arabidopsis DWARF27 gene encodes an all-trans-/9- cis-β-carotene isomerase and is induced by auxin, abscisic acid and phosphate deficiency. Plant Sci, 2018,277:33-42. |
[36] | Bonneau L, Huguet S, Wipf D, Pauly N, Truong H N. Combined phosphate and nitrogen limitation generates a nutrient stress transcriptome favorable for arbuscular mycorrhizal symbiosis in Medicago truncatula. New Phytol, 2013,199:188-202. |
[37] |
Haider I, Andreo-Jimenez B, Bruno M, Bimbo A, Floková K, Abuauf H, Ntui V O, Guo X, Charnikhova T, Al-Babili S, Bouwmeester H J, Ruyter-Spira C. The interaction of strigolactones with abscisic acid during the drought response in rice. J Exp Bot, 2018,69:2403-2414.
pmid: 29538660 |
[38] |
Davidi L, Pick U. Novel 9-cis/all-trans β-carotene isomerases from plastidic oil bodies in Dunaliella bardawil catalyze the conversion of all-trans to 9-cis β-carotene. Plant Cell Rep, 2017,36:807-814.
pmid: 28285407 |
[39] | van Zeijl A, Liu W, Xiao T T, Kohlen W, Yang W C, Bisseling T, Geurts R. The strigolactone biosynthesis gene DWARF27 is co-opted in rhizobium symbiosis. BMC Plant Biol, 2015,15:260. |
[40] |
Cooper J W, Hu Y, Beyyoudh L, Dasgan H Y, Kunert K, Beveridge C A, Foyer C H. Strigolactones positively regulate chilling tolerance in pea and in Arabidopsis. Plant Cell Environ, 2018,41:1298-1310.
pmid: 29341173 |
[41] |
Toh S, McCourt P, Tsuchiya Y. HY5 is involved in strigolactone-dependent seed germination in Arabidopsis. Plant Signal Behav, 2012,7:556-558.
pmid: 22516816 |
[42] |
Wu H, Li H, Chen H, Qi Q, Ding Q, Xue J, Ding J, Jiang X, Hou X, Li Y. Identification and expression analysis of strigolactone biosynthetic and signaling genes reveal strigolactones are involved in fruit development of the woodland strawberry ( Fragaria vesca). BMC Plant Biol, 2019,19:73.
doi: 10.1186/s12870-019-1673-6 |
[1] | CHEN Song-Yu, DING Yi-Juan, SUN Jun-Ming, HUANG Deng-Wen, YANG Nan, DAI Yu-Han, WAN Hua-Fang, QIAN Wei. Genome-wide identification of BnCNGC and the gene expression analysis in Brassica napus challenged with Sclerotinia sclerotiorum and PEG-simulated drought [J]. Acta Agronomica Sinica, 2022, 48(6): 1357-1371. |
[2] | WU Yan-Fei, HU Qin, ZHOU Qi, DU Xue-Zhu, SHENG Feng. Genome-wide identification and expression analysis of Elongator complex family genes in response to abiotic stresses in rice [J]. Acta Agronomica Sinica, 2022, 48(3): 644-655. |
[3] | JIN Rong, JIANG Wei, LIU Ming, ZHAO Peng, ZHANG Qiang-Qiang, LI Tie-Xin, WANG Dan-Feng, FAN Wen-Jing, ZHANG Ai-Jun, TANG Zhong-Hou. Genome-wide characterization and expression analysis of Dof family genes in sweetpotato [J]. Acta Agronomica Sinica, 2022, 48(3): 608-623. |
[4] | DONG Yan-Kun, HUANG Ding-Quan, GAO Zhen, CHEN Xu. Identification, expression profile of soybean PIN-Like (PILS) gene family and its function in symbiotic nitrogen fixation in root nodules [J]. Acta Agronomica Sinica, 2022, 48(2): 353-366. |
[5] | JIAN Hong-Ju, SHANG Li-Na, JIN Zhong-Hui, DING Yi, LI Yan, WANG Ji-Chun, HU Bai-Geng, Vadim Khassanov, LYU Dian-Qiu. Genome-wide identification and characterization of PIF genes and their response to high temperature stress in potato [J]. Acta Agronomica Sinica, 2022, 48(1): 86-98. |
[6] | WANG Yan-Peng, LING Lei, ZHANG Wen-Rui, WANG Dan, GUO Chang-Hong. Genome-wide identification and expression analysis of B-box gene family in wheat [J]. Acta Agronomica Sinica, 2021, 47(8): 1437-1449. |
[7] | SONG Tian-Xiao, LIU Yi, RAO Li-Ping, Soviguidi Deka Reine Judesse, ZHU Guo-Peng, YANG Xin-Sun. Identification and expression analysis of cell wall invertase IbCWIN gene family members in sweet potato [J]. Acta Agronomica Sinica, 2021, 47(7): 1297-1308. |
[8] | ZHAO Jie, LI Shao-Ping, CHENG Shuang, TIAN Jin-Yu, XING Zhi-Peng, TAO Yu, ZHOU Lei, LIU Qiu-Yuan, HU Ya-Jie, GUO Bao-Wei, GAO Hui, WEI Hai-Yan, ZHANG Hong-Cheng. Effects of nitrogen fertilizer in whole growth duration applied in the middle and late tillering stage on yield and quality of dry direct seeding rice under “solo-stalk” cultivation mode [J]. Acta Agronomica Sinica, 2021, 47(6): 1162-1174. |
[9] | QIN Tian-Yuan, LIU Yu-Hui, SUN Chao, BI Zhen-Zhen, LI An-Yi, XU De-Rong, WANG Yi-Hao, ZHANG Jun-Lian, BAI Jiang-Ping. Identification of StIgt gene family and expression profile analysis of response to drought stress in potato [J]. Acta Agronomica Sinica, 2021, 47(4): 780-786. |
[10] | LI Peng, LIU Che, SONG Hao, YAO Pan-Pan, SU Pei-Lin, WEI Yao-Wei, YANG Yong-Xia, LI Qing-Chang. Identification and analysis of non-specific lipid transfer protein family in tobacco [J]. Acta Agronomica Sinica, 2021, 47(11): 2184-2198. |
[11] | HUANG Xiao-Fang,BI Chu-Yun,SHI Yuan-Yuan,HU Yun-Zhuo,ZHOU Li-Xiang,LIANG Cai-Xiao,HUANG Bi-Fang,XU Ming,LIN Shi-Qiang,CHEN Xuan-Yang. Discovery and analysis of NBS-LRR gene family in sweet potato genome [J]. Acta Agronomica Sinica, 2020, 46(8): 1195-1207. |
[12] | WEI Huan-He,GE Jia-Lin,ZHANG Xu-Bin,MENG Tian-Yao,LU Yu,LI Xin-Yue,TAO Yuan,DING En-Hao,CHEN Ying-Long,DAI Qi-Gen. Tillering characteristics and its relationships with population productivity of japonica rice Nanjing 9108 under salinity stress [J]. Acta Agronomica Sinica, 2020, 46(8): 1238-1247. |
[13] | ZHENG Qing-Lei,YU Chen-Jing,YAO Kun-Cun,HUANG Ning,QUE You-Xiong,LING Hui,XU Li-Ping. Cloning and expression analysis of sugarcane Fe/S precursor protein gene ScPetC [J]. Acta Agronomica Sinica, 2020, 46(6): 844-857. |
[14] |
WANG Yan,YI Jun,GAO Ji-Ping,ZHANG Li-Na,YANG Ji-Fen,ZHAO Yan-Ze,XIN Wei,ZHEN Xiao-Xi,ZHANG Wen-Zhong.
Effects of precision leaf age fertilization on yield and nitrogen utilization of japonica rice [J]. Acta Agronomica Sinica, 2020, 46(01): 102-116. |
[15] | SHI Li-Jie,JIANG Cong-Cong,WANG Fang-Mei,YANG Ping,FENG Zong-Yun. Genome-wide characterization and transcriptional analysis of the protein disulfide isomerase-like genes in barley (Hordeum vulgare) [J]. Acta Agronomica Sinica, 2019, 45(9): 1365-1374. |
|