Acta Agron Sin ›› 2014, Vol. 40 ›› Issue (06): 1020-1026.doi: 10.3724/SP.J.1006.2014.01020
• CROP GENETICS & BREEDING · GERMPLASM RESOURCES · MOLECULAR GENETICS • Previous Articles Next Articles
DU Li-Fen1,**,LI Ming-Fei1,**,LIU Lu-Xiang2,WANG Chao-Jie1,LIU Yang1,XU Xi-Tang1,ZOU Shu-Fang1,XIE Yan-Zhou1,*,WANG Cheng-She1,*
| [1]Walls J. The Homozygous and Heterozygous Effects of an Aurea Mutation on Plastid Development in Spruce (Picea abies (L.) Karst). Stud For Suec, 1967, 60: 1-20[2]Beale S I. Enzymes of chlorophyll biosynthesis, Photosynth Res, 1999, 60: 43–73[3]姜卫兵, 庄猛, 韩浩章, 戴美松, 花国平. 彩叶植物呈色机理及光合特性研究进展.园艺学报, 2005, 32: 352–358Jang W B, Zhuang M, Han H Z, Dai M S, Hua G P. Progress on color emerging mechan ism and photosynthetic characteristics of colored-leaf plants. Acta Hort Sin, 2005, 32: 352–358 (in Chinese with English abstract)[4]Frank H A, Violettel C A, Trautman J K, Shrevez A P, Owens T G., Albrecht A C. Cartenoids in photosynthesis: structure and photochemistry. Pure Appl Chem, 1991, 63: 109–114[5]Grimm B, Porra R J, Rüdiger W, Scheer H. Chlorophylls and Bacterio chlorophylls: Biochemistry Biophysics, Functions and Applications, Advances in Photosynthesis and Respiration, Dordrecht, the Netherlands: Springer, 2006. pp 397–412 [6]曹莉, 王辉, 孙道杰, 冯毅. 小麦黄化突变体光合作用及叶绿素荧光特性研究. 西北植物学报, 2006, 26: 2083–2087Cao L, Wang H, Sun D J, Feng Y. Photosynthesis and chlorophyll fluorescence characters of xantha wheat mutants. Acta Bot Boreali-Occident Sin, 2006, 26: 2083–2087 (in Chinese with English abstract)[7]韩锁义, 杨玛丽, 陈远东,于静静, 赵团结, 盖钧镒, 喻德跃. 大豆“南农94216”突变体库的构建及部分性状分析. 核农学报, 2008, 22: 131-135Han S Y, Yang M L, Chen Y D, Yu J J, Zhao T J, Gai J Y, Yu D Y. Construction of mutant library for soybean ‘Nannong 94-16’and analysis of some characters . J Nucl Agric Sci, 2008, 22: 131–135 (in Chinese with English abstract)[8]赵洪兵, 郭会君, 赵林姝, 古佳玉, 赵世荣, 李军辉, 刘录祥. 作物学报, 2011, 37: 119–126Zhao H B, Guo H J, Zhao L S, Gu J Y, Zhao S R, Li J H, Liu L X. Agronomic traits and photosynthetic characteristics of chlorophyll-deficient wheat mutant induced by spaceflight environment. Acta Agron Sin, 2011, 37: 119–126 (in Chinese with English abstract)[9]Awan M A, Konzak C F, Rutger J N, Nilan R A. Mutagenic deflects of Sodium azide in rice. Crop Sci, 1980, 20: 663–668[10]Takahashi A, Kawasaki T, Henmi K, Shii K, Kodama O, Satoh H, Shimamoto K. Lesion mimic mutants of rice with alterations in early signaling events of defense. Plant J, 1999, 17: 535–545 [11]Badigannavar A M, Kale D M, Eapen, Murty G S S. Inheritance of disease lesion mimic leaf trait in groundnut. J Hered, 2002,93: 50–52[12]Hu G S, Yalpani N, Briggs S P, Johal G S. A porphyrin pathway impairment is responsible for the phenotype of a dominant disease lesion mimic mutant of maize. Plant Cell, 1998, 10: 1095–1105[13]Büschges R, Hollricher K, Panstruga R, Simons G, Wolter M, Frijters A, Van Daelen R, Van der Lee T, Diergaarde P, Groenendijk J, Töpsch S, Vos P, Salamini F, Schulze-Lefert P. The barley Mlo gene: a novel control element of plant pathogen resistance. Cell, 1997, 88: 695–705[14]Ishikawa A, Okamoto H, Iwasaki Y, Asahi T. A deficiency of coproporphyrinogen III oxidase causes lesion formation in Arabidopsis. Plant J, 2001, 27: 89-99[15]黄奇娜, 杨杨, 施勇烽, 陈洁, 吴建利. 水稻斑点叶变异研究进展. 中国水稻科学, 2010, 24: 108–115Huang Q N, Yang Y, Shi Y F, Chen J, Wu J L. Recent advances in research on spotted-leaf mutants of rice (Oryza sativa). Chin J Rice Sci, 2010, 24: 108–115 (in Chinese with English abstract)[16]Neuffer M G, Calvert O H. Dominant disease lesion mimics in maize. J Hered, 1975: 66: 265–270[17]Hu G S, Yalpani N, Briggs S P, Johal G S. A porphyrin pathway impairment is responsible for the phenotype of a dominant disease lesion mimic mutant of maize. Plant Cell, 1998, 10: 1095–1105 [18]Nair S K, Tomar S M S. Genetical and anatomical analyses of a leaf flecking mutant in Triticum aestivum L. Euphytica, 2001,121: 53–58[19]Kamlofski C A, Antonelli E, Bender C, Jaskelioff M., Danna C H, Ugalde R., Acevedo A. A lesion-mimic mutant of wheat with enhanced resistance to leaf rust. Plant Pathol, 2007, 56: 46–54 [20]Kamlofski C A, Acevedo A. The HLP mutation confers enhanced resistance to leafrust in different wheat genetic backgrounds. Agric Sci, 2010, 1: 56–61[21]Luo P G, Ren Z L. Wheat leaf chlorosis controlled by a single recessive gene. J Plant Physiol Mol Biol, 2006, 32: 330–338[22]Li T, Bai G H. Lesion mimic associates with adult plant resistance to leaf rust infection in wheat. Theor Appl Genet., 2009, 119: 13–21[23]Yao Q, Zhou R H, Fu T H, Wu W R, Zhu Z D, Li A L, Jia J Z. Characterization and mapping of complementary lesion-mimic genes lm1 and lm2 in common wheat. Theor Appl Genet, 2009, 119: 1005–1012 [24]王建军, 朱旭东, 王林友, 张利华, 薛庆中, 何祖华. 水稻类病变突变体lrd40的抗病性与细胞学分析. 中国水稻科学, 2005, 19: 111–116Wang J J, Zhu X D, Wang L Y, Zhang L H, Xue Q Z, He Z H. Disease resistance and cytological analyses on lesion resembling disease mutant lrd40 in Oryza sativa. Chin J Rice Sci, 2005, 19: 111–116 (in Chinese with English abstract)[25]马健阳, 陈孙禄, 张建辉, 董彦君, 滕胜. 一个水稻类病条纹斑突变体的鉴定和遗传定位. 中国水稻科学, 2011, 25: 150–156Ma J Y, Chen S L, Zhang J H, Dong Y J, Teng S. Identification and genetic mapping of a lesion mimic strip mutant in rice. Chin J Rice Sci , 2011, 25: 150–156 (in Chinese with English abstract)[26]Koch E, Slusarenko A. Arabidopsis is susceptible to ilnfection by a downy mildew fungus. Plant Cell, 1990, 2: 437-445[27]Hill C M, Pearson S A, Smith A J, Rogers L J. Inhibition of chlorophyll synthesis in Hordeum vulgare by 3-amino 2,3-dihydrobenzoic acid (gabaculin). Biosci Rep, 1985, 5: 775–781[28]王建军, 张礼霞, 王林友, 张利华, 竺朝娜, 何祖华, 金庆生, 范宏环, 于新. 水稻类病变(lesion resembling disease)突变体对光照和温度的诱导反应. 中国农业科学, 2010, 43: 2039–2044Wang J J, Zhang L X, Wang L Y, Zhang L H, Zhu C N, He Z H, Jin Q S, Fan H H, Yu X. Response to illumination induction and effect of temperature on lesion formation of lrd (lesion resembling disease) in rice. Sci Agric Sin, 2010, 43: 2039–2044 (in Chinese with English abstract)[29]Hu G, Richter T E, Hulbert S H, Pryor T. Disease lesion mimicry caused by mutations in the rust resistance gene rp1. Plant Cell, 1996, 8: 1367–1376[30]Davis M S, Forman A, Fajer J. Ligated chlorophyll cation radicals: their function in photosystem II of plant photosynthesis. Proc Natl Acad Sci USA, 1979, 76: 4170–4174 [31]汪斌, 兰涛, 吴为人, 李维明. 水稻叶绿素含量的QTL定位. 遗传学报, 2003, 30: 1127–1132Wang B, Lan T , Wu W R, Li W M. Mapping of QTLs controlling chlorophyll content in rice. Acta Genet Sin, 2003, 30: 1127–1132 (in Chinese with English abstract)[32]Avenson T J, Cruz J A, Kanazawa A, Kramer D M. Regulating the proton budget of higher plant photosynthesis. Proc Natl Acad Sci USA, 2005, 102: 9709–9713 [33]许大全. 光合作用气孔限制分析中的一些问题. 植物生理学通讯, 1997, 33: 241–244Xu D Q. Some problems in stomatal analysis of phtosynthesis. Plant Physiol Commun, 1997, 33: 241–244 (in Chinese)[34]孙艳丽, 李卓夫, 张喜君. 冬小麦主要品质性状和产量性状杂种优势及其相关性的研究. 黑龙江农业科学, 2002, (2): 13–15Sun Y L, Li Z F, Zhang X J. Study on the coordinating activity among major agromomic traits in wheat. Heilongjiang Agric Sci, 2002, (2): 13–15[36]Ryals J A, Neuenschwander U H, Willits M G. Systemic acquired resistance. Plant Cell, 1996, 8: 1809–1819[35]Wu C J, Bordeos A, Madamba M R S, Baraoidan M, Ramos M, Wang G L, Leach J E, Leung H. Rice lesion mimic mutants with enhanced resistance to diseases. Mol Genet Genomics, 2008, 279: 605–619 |
| [1] | Zhang Hong-Rong, Wang Fei-Er, Li Pan, Qiu Hai-Long, Zhu Jing, Zhao Lian-Hao, Nan Yun-You, He Wei, Fan Zhi-Long, Hu Fa-Long, Chai Qiang, Yin Wen. Photosynthetic characteristics of 20% reduced irrigation combined with 25% organic substitution for chemical fertilizer in increasing silage maize yield [J]. Acta Agronomica Sinica, 2026, 52(5): 1487-1500. |
| [2] | Zhang Zhen, Feng Lian-Jie, Shi Yu, Yu Zhen-Wen, Zhang Yong-Li. Yield formation of wheat with different ear types under water-saving supplementary irrigation conditions [J]. Acta Agronomica Sinica, 2026, 52(5): 1522-1535. |
| [3] | Zhang Ying-Xing, Bheel Chander Kumar, Song Yu-Zhen, Wang Yue, Cao Yue, Khound Rituraj, Santra Dipak Kumar, Cao Xiao-Ning, Wang Rui-Yun. Screening and phenotypic characterization of EMS-induced mutants with elite agronomic traits in broomcorn millet [J]. Acta Agronomica Sinica, 2026, 52(5): 1388-1400. |
| [4] | Cai Hong-Wei, Yu Ai-Zhong, Jiang Ke-Qiang, Wang Peng-Fei, Wang Yu-Long, Huo Jian-Zhe, Pang Xiao-Neng, Yin Bo, Shang Yong-Pan. Key mechanisms underlying the enhancement of sweet maize yield through partial substitution of chemical fertilizers with organic manure in arid irrigation districts [J]. Acta Agronomica Sinica, 2026, 52(4): 1166-1180. |
| [5] | Li Rui, Yu Yi-Wen, Wang Dun-Liang, Tian Ting, Sun Ling-Xiang, Tao Yue-Yue, Sun Hua. Comparative study on the characteristics of rapeseed yield under the rapeseed- oil dual-purpose mode in the middle and lower reaches of the Yangtze River [J]. Acta Agronomica Sinica, 2026, 52(2): 620-630. |
| [6] | Chi Xiao-Yuan, Liu Qing, Zhang Jun, Zhao Xu-Hong, Li Mei, Yu Tian-Yi, Pan Li-Juan, Xu Jing, Jiang Xiao, Yin Xiang-Zhen, Ma Jun-Qing, Chen Na. Field evaluation of salt-alkaline tolerance and trait correlation analysis in different peanut varieties (lines) [J]. Acta Agronomica Sinica, 2026, 52(1): 85-98. |
| [7] | Yang Rui, Chen Jing-Dong, Huang Ying, Zhang Xue-Kun, Zhou Deng-Wen, Liu Qing-Yun, Xu Jing-Song, Xie Ling-Li, Xu Ben-Bo. Region-specific yield optimization strategies for rapeseed (Brassica napus L.) in the middle Yangtze Basin across the 30°N latitude [J]. Acta Agronomica Sinica, 2026, 52(1): 99-117. |
| [8] | LI Pei-Hua, LI Jie, MENG Xiang-Yu, SUN Yu-Chen, FENG Yong-Jia, LI Yun-Li, DIAO Deng-Chao, ZHAO Wen, WU Wei, HAN De-Jun, ZHANG Song-Wu, ZHENG Wei-Jun. Evaluation of stress tolerance and physiological response of cold-type wheat under heat stress [J]. Acta Agronomica Sinica, 2025, 51(4): 1118-1130. |
| [9] | LI Qiao, YE Yang-Chun, CHANG Xu-Hong, WANG De-Mei, WANG Yan-Jie, YANG Yu-Shuang, MA Rui-Qi, ZHAO Guang-Cai, CAI Rui-Guo, ZHANG Min, LIU Xi-Wei. Effects of high temperature and drought stresses on photosynthetic characteristics and yield of winter wheat after anthesis [J]. Acta Agronomica Sinica, 2025, 51(4): 1077-1090. |
| [10] | WANG Yan, BAI Chun-Sheng, LI Bo, FAN Hong, HE Wei, YANG Li-Li, CAO Yue, ZHAO Cai. Effects of no-tillage with plastic film and the amount of irrigation water on yield and photosynthetic characteristics of maize in oasis irrigation area of Northwest China [J]. Acta Agronomica Sinica, 2025, 51(3): 755-770. |
| [11] | QIN Jin-Hua, HONG Wei-Yuan, FENG Xiang-Qian, LI Zi-Qiu, ZHOU Zi-Yu, WANG Ai-Dong, LI Rui-Jie, WANG Dan-Ying, ZHANG Yun-Bo, CHEN Song. Analysis of agronomic and physiological indicators of rice yield and grain quality under nitrogen fertilization management [J]. Acta Agronomica Sinica, 2025, 51(2): 485-502. |
| [12] | CHEN Yu-Ting, DING Xiao-Yu, XU Ben-Bo, ZHANG Xue-Kun, XU Jin-Song, YIN Yan. Effects of climate warming on yield, quality-related and agronomic traits of winter rapeseed (Brassica napus L.) [J]. Acta Agronomica Sinica, 2025, 51(2): 516-525. |
| [13] | LI Yan, LI Yu-Chen, YU Ai-Ping, CHEN Ai-Ping. Comprehensive evaluation of forage yield and nutritional quality in eight Bromus inermis germplasm resources [J]. Acta Agronomica Sinica, 2025, 51(12): 3377-3386. |
| [14] | JIANG Ang-Chen, LI Yan, LI Yu-Chen, ZHANG Jing, CHEN Ai-Ping. Comprehensive evaluation of agronomic traits and seed yield of 21 Bromus inermis germplasm and screening of superior germplasm [J]. Acta Agronomica Sinica, 2025, 51(11): 2958-2970. |
| [15] | GUI Ling-Xing, LING Xi-Tie, TANG Zhao-Cheng, LUO Wen-Zhen, ZHU Pan-Zhen, QIU Ze-Yu, ZHANG Bao-Long. Identification and agronomic characterization of imazamox-resistant dwarf mutants in Ningmai 36 [J]. Acta Agronomica Sinica, 2025, 51(11): 2923-2932. |
|
||