欢迎访问作物学报,今天是

作物学报 ›› 2012, Vol. 38 ›› Issue (05): 921-927.doi: 10.3724/SP.J.1006.2012.00921

• 研究简报 • 上一篇    下一篇

水稻籽粒蛋白双向电泳条件的优化及其蛋白组学方法的比较

李奇松,陈军,林世圣,李忠,张志兴,林文雄*   

  1. 福建农林大学生命科学学院农业生态研究所 / 福建农林大学作物生理与分子生态重点实验室, 福建福州 350002
  • 收稿日期:2011-07-08 修回日期:2011-12-19 出版日期:2012-05-12 网络出版日期:2012-03-05
  • 通讯作者: 林文雄, E-mail: lwx@fjau.edu.cn
  • 基金资助:

    本研究由国家自然科学基金项目(30871494), 教育部博士点基金(200803890006), 福建省自然科学基金(2007J0304, 2008J0042)和福建省重点学科经费资助。

Optimization of Two-dimensional Electrophoresis Condition for Rice Grain Protein and Comparison of Relevant Proteomic Methods

LI Qi-Song,CHEN Jun,LIN Shi-Sheng,LI Zhong,ZHANG Zhi-Xing,LIN Wen-Xiong*   

  1. Institute of Agricultural Ecology, School of Life Sciences, Fujian Agriculture and Forestry University / Key Laboratory of Crop Physiology and Molecular Ecology, Fujian Agriculture and Forestry University, Fuzhou 350002, China
  • Received:2011-07-08 Revised:2011-12-19 Published:2012-05-12 Published online:2012-03-05
  • Contact: 林文雄, E-mail: lwx@fjau.edu.cn

摘要: 探讨适用于籽粒蛋白组学研究的策略,对深入研究籽粒的发育过程具有重要的意义。本文对比了3种不同的蛋白提取方法,优化了双向电泳中自制管胶一向的等电聚焦条件和IPG干胶条一向的等电聚焦时间,以MALDI-TOF/MS、Western-blot和磷酸化蛋白组学3个重要的蛋白质组学研究方法对胶内蛋白质鉴定分析。结果表明,可溶性蛋白提取法最适用于籽粒蛋白组学的研究; 电泳条件优化后,得到了较优的2-DE图谱; 胶内蛋白点适用于质谱分析、蛋白表达量验证(Western-blot)及籽粒蛋白的磷酸化组学的研究。本研究为下一步在蛋白组水平上分析籽粒发育提供了技术支持。

关键词: 水稻, 籽粒, 蛋白组学, 双向电泳, 蛋白磷酸化

Abstract: A suitable proteomic strategy for rice grain protein research is important for further understanding rice grain development at proteome level. In this study, three different protein extraction methods were compared and then electrophoretic conditions of hand-made gel lands and IPG lands in IEF (isoelectric focusing) were optimized. Furthermore, three important proteomic research strategies (MALDI-TOF/MS, western-blot and phosphoproteome) were used for identification and analysis of in-gel proteins. The results showed that the method of soluble protein extraction was most suitable for investigation of grain proteomics, with a well-distributed 2-DE gel profile under optimized electrophoretic conditions, and it was confirmed that MALDI-TOF/MS, western-blot and phosphoproteome were the three suitable methods for the analysis of in-gel proteins. The establishment of the suitable system for rice grain proteomic research paves the way for the next step to further analyse rice grain development at proteome level.

Key words: Rice, Grain filling, Proteomics, Two-dimensional electrophoresis, Protein phosphorylation

[1]Teng Z-H(滕中华), Zhi L(智丽), Lü J(吕俊), Zong X-F(宗学凤), Wang S-G(王三根), He G-H(何光华). Effects of high temperature on photosynthesis characteristics, phytohormones and grain quality during filling-periods in rice. Acta Ecol Sin (生态学报), 2010, 30(23): 6504–6511 (in Chinese with English abstract)

[2]Yang J-C(杨建昌), Wang G-Z(王国忠), Wang Z-Q(王志琴), Liu L-J(刘立军), Zhu Q-S(朱庆森). Grain-filling characteristics and changes of hormonal content in the grains of dry-cultivated rice during grain-filling. Acta Agron Sin (作物学报), 2002, 28(5): 615–621 (in Chinese with English abstract)

[3]Wang H-Z(王贺正), Ma J(马均), Li X-Y(李旭毅), Zhang R-P(张荣萍). Effects of water stress on grain filling and activities of enzymes involved in starch synthesis in rice. Sci Agric Sin (中国农业科学), 2009, 42(5): 1550–1558 (in Chinese with English abstract)

[4]Zhu T, Budworth P, Chen W. Transcriptional control of nutrient partitioning during rice grain filling. Plant Biotechnol J, 2003, 1: 59–70

[5]Wan X Y, Liu J Y. Comparative proteomics analysis reveals an intimate protein network provoked by hydrogen peroxide stress in rice seedling leaves. Mol & Cell Proteomics, 2008, 7: 1469–1488

[6]Gallardo K, Job C, Groot S P C, Puype M, Demol H, Vandekerckhove J, Job D. Proteomics of Arabidopsis seed germination: a comparative study of wild-type and gibberellin-deficient seeds. Plant Physiol, 2002, 129: 823–837

[7]Houston N L, Hajduch M, Thelen J J. Quantitative proteomics of seed filling in castor: comparison with soybean and rapeseed reveals differences between photosynthetic and nonphotosynthetic seed metabolism. Plant Physiol, 2009, 151: 857–868

[8]Roccoa M, Corradob G, Arenac S, Ambrosioc C D, Tortiglioneb C, Sellarolid S, Marrad M, Raob R, Scalonic A. The expression of tomato prosystemin gene in tobacco plants highly affects host proteomic repertoire. J Proteomics, 2008, 71: 176–185

[9]Agrawal G K, Thelen J J. Large scale identification and quantitative profiling of phosphoproteins expressed during seed filling in oilseed rape. Mol Cell Proteomics, 2006, 5: 2044–2059

[10]Sheng B X, Tang L, Zhu Y D, Kang C, Yongbiao X, Tai W. Dynamic proteomic analysis reveals a switch between central carbon metabolism and alcoholic fermentation in rice filling grains. Plant Physiol, 2008, 148: 908–925

[11]Wang J-Y(王经源), Chen S-Y(陈舒奕), Liang Y-Y(梁义元), Lin W-X(林文雄). Improvement of ISO-DALT electrophoresis system. J Fujian Agric & For Univ (福建农林大学学报), 2006, 35(2): 187–190 (in Chinese with English abstract)

[12]Dumas-Gaudot E, Amiour N, Weidmann S, Bestel-Corre G, Valot S, Lenogue B, Gianinazzi-Pearsonl V, Gianinazzi S. A technical trick for studying proteomics in parallel to transcriptomics in symbiotic root–fungus interactions. Proteomics, 2004, 4: 451–453

[13]Laemmli U K. Cleavage of structural proteins during the assembly of the head of bacteriophage T4. Nature, 1970, 227: 680–685

[14]Blum H, Beiers H, Gross H J. Improved silver staining of plant proteins, RNA and DNA in polyacrylamide gels. Electrophoresis, 1987, 8: 93–99

[15]Peng X X, Ye X T, Wang S Y. Identification of novel immunogenic proteins of Shigella flexneri 2a by proteomic methodologies. Vaccine, 2004, 22: 2750–2756

[16]Meng H(孟慧), Duan C-F(段翠芳), Zeng R-Z(曾日中). Researches of Plant Proteomics. China J Trop Agric (热带农业科学), 2006, 26(2): 60–64 (in Chinese with English abstract)

[17]Saravanan R S, Rose J K C. A critical evaluation of sample extraction techniques for enhanced proteomic analysis of recalcitrant plant tissues. Proteomics, 2004, 4: 2522–2532

[18]Zhen Y(甄艳), Shi J-S(施季森). Application of mass spectrometry in proteomics studies. J Nanjing For Univ (南京林业大学学报), 2011, 35(1): 103–108 (in Chinese with English abstract)

[19]Cohen P. The origins of protein phosphorylation. Nat Cell Biol, 2002, 4: E127–E130
[1] 习千辉, 徐梓瑗, 刘梦梦, 王宏艺, 郎凯琳, 井震海, 陈锋, 赵磊. 小麦籽粒铜含量的全基因组关联分析及候选基因预测[J]. 作物学报, 2026, 52(6): 1604-1617.
[2] 胡赵, 钱润, 谢丰璞, 应素平. 水稻SPX基因家族鉴定及响应磷处理的表达分析[J]. 作物学报, 2026, 52(6): 1902-1912.
[3] 邹仪妹, 徐敏, 汪海洋, 姚辉, 王加峰, 刘浩, 任代胜. 两系不育系水稻幼苗根系响应盐胁迫的转录因子调控网络鉴定[J]. 作物学报, 2026, 52(6): 1728-1742.
[4] 张振, 冯连杰, 石玉, 于振文, 张永丽. 节水补灌下不同穗型小麦产量形成差异研究[J]. 作物学报, 2026, 52(5): 1522-1535.
[5] 闫安, 蒋昆炜, 王蓉圆, 田林, 张璐, 王韵, 徐建龙. 水稻剑叶小维管束数基因SVN7的鉴定与克隆[J]. 作物学报, 2026, 52(5): 1364-1372.
[6] 陈伟, 卫万娟, 赵其兵, 常东伟, 余凌波, 翟鹏飞, 冯志明, 陈宗祥, 任仰涛, 杨鹏, 刘海浪, 李珍富, 杨永乐, 金彦刚, 左示敏. 利用CRISPR/Cas9编辑Hd6基因创制优质早熟水稻新种质[J]. 作物学报, 2026, 52(4): 1046-1056.
[7] 石少阶, 刘凯, 陈姿夷, 王卉颖, 李三和, 周雷, 游艾青. 水稻矮化多分蘖基因DMT1的克隆与功能分析[J]. 作物学报, 2026, 52(4): 1022-1034.
[8] 覃奕琰, 付瑶, 苏畅, 李娜, 徐静茹, 程笑然, 张琪, 赵明辉. OsST41调控水稻苗期耐盐性的功能分析[J]. 作物学报, 2026, 52(3): 802-812.
[9] 叶凡, 李帅, 李思宇, 陈云, 窦超银, 刘立军. 不同节水灌溉方式对东北稻区水稻产量和群体质量的影响[J]. 作物学报, 2026, 52(3): 895-907.
[10] 杨颖聪, 张俊豪, 唐一哲, 乔唱唱, 王鹏博, 黄明, 徐国伟, 王贺正. 秸秆还田和施磷量对旱地小麦籽粒淀粉及其合成相关酶活性的影响[J]. 作物学报, 2025, 51(9): 2467-2484.
[11] 王婵, 吴莹莹, 李文奇, 李霞, 王芳权, 周彤, 杨杰. 基于HRM技术开发水稻抗条纹叶枯病基因STV11功能标记[J]. 作物学报, 2025, 51(9): 2547-2556.
[12] 杨婷婷, 陈娟, ABDUL Rehman, 李婧, 闫素辉, 汪建来, 李文阳. 花后弱光对软质小麦干物质积累转运、籽粒产量和淀粉品质的影响[J]. 作物学报, 2025, 51(8): 2204-2219.
[13] 陈惠莹, 何嘉欣, 朱斌, 黄士轩, 周星佑, 伍君权, 杨美艳. 水稻黄单胞菌噬菌体vB_XaS_HDB2的全基因组分析和生物学特性研究[J]. 作物学报, 2025, 51(8): 2087-2099.
[14] 杨海洋, 吴林宣, 李博纹, 石翰峰, 袁禧龙, 刘金朝, 蔡海荣, 陈诗怡, 郭涛, 王慧. 基于QTL定位发现的OsWRI3调控水稻种子的落粒性[J]. 作物学报, 2025, 51(7): 1712-1724.
[15] 董伟进, 张亚封, 李启云, 路杨, 张正坤, 隋丽. CO2浓度升高条件下球孢白僵菌定殖对玉米生长及产量的影响[J]. 作物学报, 2025, 51(7): 1874-1886.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!