作物学报 ›› 2013, Vol. 39 ›› Issue (12): 2177-2182.doi: 10.3724/SP.J.1006.2013.02177
卢敏,张登峰,石云素,宋燕春,黎裕*,王天宇*
LU Min,ZHANG Deng-Feng,SHI Yun-Su,SONG Yan-Chun,LI Yu*,WANG Tian-Yu*
摘要:
NAC转录因子是具有多种生物功能的植物特异转录调控因子,在植物生长发育、器官建成、激素调节和抵抗逆境等方面发挥着重要的作用。我们之前分离得到1个受干旱、盐、冷等非生物逆境胁迫和植物激素ABA诱导显著上调表达的玉米NAC家族成员ZmSNAC1,过表达转基因株系在苗期的耐脱水能力较野生型株系明显提高。在此基础上,本研究进一步对ZmSNAC1过表达转基因株系在植株生殖生长发育时期的抗旱性和耐盐性进行功能鉴定。结果表明,在干旱胁迫条件下,野生型株系相比转基因株系较存活率提高50%~52%,相对电导率降低17%~21%,叶绿素含量提高36%~47%,脯氨酸含量提高了17%~23%;在300mmol L-1 NaCl胁迫条件下,转基因株系的存活率提高36~40%。ZmSNAC1可能作为一个正向调控因子在逆境胁迫信号转导过程中发挥重要作用。
| [1]Nakashima K, Takasaki H, Mizoi J, Shinozaki K, Yamaguchi-Shinozaki K. NAC transcription factors in plant abiotic stress responses. Biochim Biophys Acta, 2012, 1819: 97–103[2]Qin F, Shinozaki K, Yamaguchi-Shinozaki K. Achievements and challenges in understanding plant abiotic stress responses and tolerance. Plant Cell Physiol, 2011, 52: 1569–1582[3]Shinozaki K, Yamaguchi-Shinozaki K. Gene networks involved in drought stress response and tolerance. J Exp Bot, 2006, 58: 221–227[4]Hu H H, Dai M Q, Yao J L, Xiao B Z, Li X H, Zhang Q F, Xiong L Z. Overexpressing a NAM, ATAF, and CUC (NAC) transcription factor enhances drought resistance and salt tolerance in rice. Proc Natl Acad Sci USA, 2006, 35: 12987–12992[5]Jeong J S, Kim Y S, Baek K H, Jung H, Ha S H, Do Choi Y, Kim M, Reuzeau C, Kim J K. Root-specific expression of OsNAC10 improves drought tolerance and grain yield in rice under field drought conditions. Plant Physiol, 2010, 153: 185–197[6]Mao X G, Zhang H Y, Qian X Y, Li A, Zhao G Y, Jing R L. TaNAC2, a NAC-type wheat transcription factor conferring enhanced multiple abiotic stress tolerances in Arabidopsis. J Exp Bot, 2012, 63: 2933–2946[7]Souer E, van Houwelingen A, Kloos D, Mol J, Koes R. The no apical meristem gene of petunia is required for pattern formation in embryos and flowers and is expressed at meristem and primordia boundaries. Cell, 1996, 85: 159–170[8]Aida M, Ishida T, Fukaki H, Fujisawa H, Tasaka M. Genes involved in organ separation in Arabidopsis: an analysis of the cup-shaped cotyledon mutant. Plant Cell, 1997, 9: 841–857[9]Ooka H, Satoh K, Doi K, Nagata T, Otomo Y, Murakami K. Comprehensive analysis of NAC family genes in Oryza sativa and Arabidopsis thaliana. DNA Res, 2003, 10: 239–247[10]Nuruzzaman M, Manimekalai R, Sharoni A M, Satoh K, Kondoh H, Ooka H, Kikuchi S. Genome-wide analysis of NAC transcription factor family in rice. Gene, 2010, 465: 30–44[11]Puranik S, Sahu P P, Srivastava P S, Prasad M. NAC proteins: regulation and role in stress tolerance. Trends Plant Sci, 2012, 17: 369–381[12]Lee S, Seo P J, Lee H J, Park C M. A NAC transcription factor NTL4 promotes reactive oxygen species production during drought-induced leaf senescence in Arabidopsis. Plant J, 2012, 70: 831–844[13]Zheng X N, Chen B, Lu G J, Han B. Overexpression of a NAC transcription factor enhances rice drought and salt tolerance. Biochem Biophys Res Commun, 2009, 379: 985–989[14]Song S Y, Chen Y, Chen J, Dai X Y, Zhang W H. Physiological mechanisms underlying OsNAC5-dependent tolerance of rice plants to abiotic stress. Planta, 2011, 234: 331–345[15]Hao Y J, Wei W, Song Q X, Chen H W, Zhang Y Q, Wang F, Zou H F, Lei G, Tian A G, Zhang W K, Ma B, Zhang J S, Chen S Y. Soybean NAC transcription factors promote abiotic stress tolerance and lateral root formation in transgenic plants. Plant J, 2011, 68: 302–313 [16]Lu M, Ying S, Zhang D F, Shi Y S, Song Y C, Wang T Y, Li Y. A maize stress-responsive NAC transcription factor, ZmSNAC1, confers enhanced tolerance to dehydration in transgenic Arabidopsis. Plant Cell Rep, 2012, 31: 1701–1711[17]Bates L S, Waldren R P, Teare I D. Rapid determination of free proline for water-stress studies. Plant Soil, 1973, 39: 205–207[18]Melkonian J, Yu L X, Setter T L. Chilling responses of maize (Zea mays L.) seedlings: root hydraulic conductance, abscisic acid, and stomatal conductance. J Exp Bot, 2004, 55: 1751–1760[19]Nakashima K, Tran L S, Nguyen D V, Fujita M, Maruyama K, Todaka D, Ito Y, Hayashi N, Shinozaki K, Yamaguchi-Shinozaki K. Functional analysis of a NAC-type transcription factor OsNAC6 involved in abiotic and biotic stress-responsive gene expression in rice. Plant J, 2007, 51: 617–630[20]Delessert C, Kazan K, Wilson I W, Van Der Straeten D, Manners J, Dennisand E S, Dolferus R. The transcription factor ATAF2 represses the expression of pathogenesis-related genes in Arabidopsis. Plant J, 2005, 43: 745–757 |
| [1] | 刘恩波, 陈静, 李红星, 于宁宁, 任佰朝, 赵斌, 刘鹏, 张吉旺. 遮阴改变源-库平衡和调节碳水化合物代谢进而抑制夏玉米幼穗发育[J]. 作物学报, 2026, 52(6): 1891-1901. |
| [2] | 梁进宇, 尹嘉德, 王红丽, 张国平, 侯慧芝, 董博, 马明生. 基于无人机高光谱和机器学习的旱地饲用玉米叶片氮含量估测[J]. 作物学报, 2026, 52(6): 1788-1801. |
| [3] | 孙淑凤, 许振南, 黄嘉鑫, 翁建峰, 李新海. 玉米MAPK家族全基因组鉴定及其对拟轮枝镰孢菌感染的响应[J]. 作物学报, 2026, 52(5): 1291-1308. |
| [4] | 张宁宁, 滕雨菲, 任娜娜, 魏兴卓, 闫书豪, 樊可心, 王永宏, 陈文康, 张兴华, 朱万超, 徐淑兔, 薛吉全. 201份玉米自交系抗旱表型评价及可塑性分析[J]. 作物学报, 2026, 52(5): 1309-1325. |
| [5] | 杨欣雨, 崔文涛, 迪力尼格尔·阿力木, 汪凯翔, 吴鹏昊, 任姣姣. 玉米穗上叶片数全基因组关联分析和全基因组选择[J]. 作物学报, 2026, 52(5): 1573-1590. |
| [6] | 韩亚鑫, 何冠华, 张小琼, 张登峰, 李永祥, 刘旭洋, 王天宇, 黎裕, 邹华文, 李春辉. 基于RNA-Seq和BSA-Seq联合分析挖掘玉米侧根密度基因资源[J]. 作物学报, 2026, 52(5): 1341-1352. |
| [7] | 张鸿蓉, 王菲儿, 李盼, 仇海龙, 朱静, 赵连豪, 南运有, 何蔚, 樊志龙, 胡发龙, 柴强, 殷文. 减量20%灌水与25%有机肥替代化肥提高青贮玉米产量的光合特性[J]. 作物学报, 2026, 52(5): 1487-1500. |
| [8] | 杨扬, 常诗惠, 田红丽, 易红梅, 王璐, 任洁, 范亚明, 刘亚维, 王凤格, 赵久然. 不同生态区国审玉米品种的遗传多样性分析[J]. 作物学报, 2026, 52(5): 1352-1364. |
| [9] | 蔡宏玮, 于爱忠, 姜科强, 王鹏飞, 王玉珑, 霍建喆, 庞小能, 尹波, 尚永盼. 干旱灌区有机肥替代部分化肥促进甜玉米产量提升的关键机制[J]. 作物学报, 2026, 52(4): 1166-1180. |
| [10] | 田红丽, 杨扬, 范亚明, 易红梅, 郭丹丹, 王凤格, 赵久然. 适于玉米品种鉴定的一套三等位变异SNP新型标记组合[J]. 作物学报, 2026, 52(4): 993-1005. |
| [11] | 杨亚莉, 徐明睿, 马越飞, 海艺蕊, 刘凯栋, 刘万茂, 孙颖. 玉米根尖及整根响应缺铁的转录组比较研究[J]. 作物学报, 2026, 52(4): 1006-1021. |
| [12] | 张超, 郭欢, 李忠玲, 岳淑宁, 赵娜. 基于BSA-seq技术定位玉米籽粒花青素关联基因[J]. 作物学报, 2026, 52(3): 780-789. |
| [13] | 郭向阳, 涂亮, 王栋, 刘鹏飞, 王安贵, 易强, 任洪, 李刚, 祝云芳, 吴迅, 蒋喻林, 田丰, 陈泽辉. 热带Suwan种质在我国玉米种质改良中的创新与利用[J]. 作物学报, 2026, 52(3): 655-664. |
| [14] | 孟成, 王哲. 玉米ZmPFK基因家族全基因组鉴定及响应胁迫表达分析[J]. 作物学报, 2026, 52(3): 764-779. |
| [15] | 李新浩, 邢梦柯, 周梓惠, 李思烨, 任昊, 王洪章, 赖华江. 外源褪黑素通过协调光反应与暗反应增强玉米苗期的耐热性[J]. 作物学报, 2026, 52(3): 839-856. |
|
||