|本期目录/Table of Contents|

[1]王净,周兴雅,张金飞,等.高代转玉米C4-pepc基因水稻株系形态和产量特性及其聚类分析[J].江苏农业科学,2021,49(17):91-95,106.
 Wang Jing,et al.Morphology and yield characteristics of high-generation transgenic rice lines with maize C4-pepc gene and their cluster analysis[J].Jiangsu Agricultural Sciences,2021,49(17):91-95,106.
点击复制

高代转玉米C4-pepc基因水稻株系形态和产量特性及其聚类分析(PDF)
分享到:

《江苏农业科学》[ISSN:1002-1302/CN:32-1214/S]

卷:
第49卷
期数:
2021年第17期
页码:
91-95,106
栏目:
遗传育种与耕作栽培
出版日期:
2021-09-05

文章信息/Info

Title:
Morphology and yield characteristics of high-generation transgenic rice lines with maize C4-pepc gene and their cluster analysis
作者:
王净12周兴雅2张金飞2曹悦24吴博晗25李霞12345
1.南京林业大学生物与环境学院,江苏南京 210037;2.江苏省农业科学院粮食作物研究所/江苏省优质水稻工程技术研究中心/国家水稻改良中心南京分中心,江苏南京 210014; 3. 江苏省粮食作物现代产业技术协同创新中心,江苏扬州 225009;4. 南京农业大学生命科学学院,江苏南京 210095; 5.江苏大学环境与安全工程学院,江苏镇江 212013
Author(s):
Wang Jinget al
关键词:
水稻PEPC酶净光合速率产量因子聚类分析
Keywords:
-
分类号:
S511.01
DOI:
-
文献标志码:
A
摘要:
为获得高光效的转C4PEPC(磷酸烯醇式丙酮酸羧化酶phosphoenolpyruvate carboxylase,PEPC,EC.1.1.31)基因水稻(简称PC)高代的稳定株系,选取2019—2020年种植的同一株系的PC材料,分析PC材料的形态、光合参数、酶活性以及产量构成因子等的变化特点,并将各参数进行聚类分析。结果表明,PC高代材料的PEPC酶活性、净光合速率以及产量构成因子等指标的确存在年度间和株系间的变化,其中变异系数表现为产量构成因子<净光合速率P<0.01)。可见,经过形态、高光效特性和产量构成因子等的同步筛选,可在PC中选择出高PEPC酶活性、高净光合速率且具有较高单株产量的稳定株系。
Abstract:
-

参考文献/References:

[1]Tian Z X,Wang J W,Li J Y,et al. Designing future crops:challenges and strategies for sustainable agriculture[J]. The Plant Journal:for Cell and Molecular Biology,2021,105(5):1165-1178.
[2]姜树坤,黄成,徐正进,等. 粳稻株高QTL与赤霉素和油菜素内酯合成及信号转导基因相关分析[J]. 中国农业科学,2010,43(14):2829-2838.
[3]Zhu X G,Long S P,Ort D R. Improving photosynthetic efficiency for greater yield[J]. Annual Review of Plant Biology,2010,61(1):235-261.
[4]李霞,王超,陈晏,等. PEPC酶活性作为水稻高光效育种筛选指标的研究[J]. 江苏农业学报,2008,24(5):559-564.
[5]王超,李霞,蔡庆生. 不同测定环境条件下转PEPC基因水稻及杂交后代光合特性的比较[J]. 江苏农业学报,2008,24(3):232-236.
[6]Ren C G,Li X,Liu X L,et al. Hydrogen peroxide regulated photosynthesis in C4-pepc transgenic rice[J]. Plant Physiology and Biochemistry,2014,74:218-229.
[7]Qian B Y,Li X,Liu X L,et al. Improved oxidative tolerance in suspension-cultured cells of C4-pepc transgenic rice by H2O2 and Ca2+under PEG-6000[J]. Journal of Integrative Plant Biology,2015,57(6):534-549.
[8]Liu X L,Li X,Zhang C,et al. Phosphoenolpyruvate carboxylase regulation in C4-pepc expressing transgenic rice during early responses to drought stress[J]. Physiologia Plantarum,2017,159(2):178-200.
[9]张金飞,李霞,何亚飞,等. 外源葡萄糖增强高表达转玉米C4pepc水稻耐旱性的生理机制[J]. 作物学报,2018,44(1):82-94.
[10]Giglioli-Guivarch N,Pierre J N,Brown S,et al. The Light-Dependent transduction pathway controlling the regulatory phosphorylation of C4 phosphoenolpyruvate carboxylase in protoplasts from Digitaria sanguinalis[J]. The Plant Cell,1996,8(4):573-586.
[11]Zhu X G,Long S P,Ort D R. Improving photosynthetic efficiency for greater yield[J]. Annual Review of Plant Biology,2010,61(1):235-261.
[12]Ku M S,Agarie S,Nomura M,et al. High-level expression of maize phosphoenolpyruvate carboxylase in transgenic rice plants[J]. Nature Biotechnology,1999,17(1):76-80.
[13]Taniguchi Y,Ohkawa H,Masumoto C,et al. Overproduction of C4 photosynthetic enzymes in transgenic rice plants:an approach to introduce the C4-like photosynthetic pathway into rice[J]. Journal of Experimental Botany,2008,59(7):1799-1809.
[14]Jiao D M,Ji B H,Li X. Characteristics of chlorophyll fluorescence and membrane-lipid peroxidation during senescence of flag leaf in different cultivars of rice[J]. Photosynthetica,2003,41(1):33-41.
[15]李霞,焦德茂,戴传超. 转PEPC基因水稻对光氧化逆境的响应[J]. 作物学报,2005,31(4):408-413.
[16]唐玉婷,李霞,陆巍,等. 高表达转 C4PEPC基因水稻在低氮下诱导碳氮酶稳定光合作用[J]. 华北农学报,2015,30(4):95-100.
[17]Tang Y T,Li X,Lu W,et al. Enhanced photorespiration in transgenic rice over-expressing maize C4 phosphoenolpyruvate carboxylase gene contributes to alleviating low Nitrogen stress[J]. Plant Physiology and Biochemistry,2018,130:577-588.
[18]严婷,李佳馨,李霞,等. 转C4PEPC基因水稻非生物胁迫耐受性研究进展[J]. 淮阴工学院学报,2019,28(5):62-68.
[19]王强,卢从明,张其德,等. 超高产杂交稻两优培九的光合作用、光抑制和C4途径酶特性[J]. 中国科学(C辑),2002,32(6):481-487.
[20]OLeary B,Park J,Plaxton W C. The remarkable diversity of plant PEPC (phosphoenolpyruvate carboxylase):recent insights into the physiological functions and post-translational controls of non-photosynthetic PEPCs[J]. The Biochemical Journal,2011,436(1):15-34.
[21]Chen P B,Li X,Huo K,et al. Promotion of photosynthesis in transgenic rice over-expressing of maize C4 phosphoenolpyruvate carboxylase gene by nitric oxide donors[J]. Journal of Plant Physiology,2014,171(6):458-466.
[22]Li X,Wang C,Ren C G. Effects of butanol neomycin and Calcium on the photosynthetic characteristics of pepc transgenic rice[J]. African Journal of Biotechnology,2011,76(10):17466-17476.
[23]Huo K,Li X,He Y F,et al. Exogenous ATP enhance signal response of suspension cells of transgenic rice (Oryza sativa L.) expressing maize C4-pepc encoded phosphoenolpyruvate carboxylase under PEG treatment[J]. Plant Growth Regulation,2017,82(1):55-67.
[24]Zhang C,Li X,He Y,et al. Physiological investigation of C4 phosphoenolpyruvate carboxylase introduced rice line shows that sucrose metabolism is involved in the improved drought tolerance[J]. Plant Physiology and Biochemistry,2017,115:328-342.
[25]He Y F,Xie Y F,Li X,et al. Drought tolerance of transgenic rice overexpressing maize C4-pepc gene related to increased anthocyanin synthesis regulated by sucrose and calcium[J]. Biologia Plantarum,2020,64:136-149.

相似文献/References:

[1]马旭俊,刘春娟,吕世博,等.绿色荧光蛋白基因在水稻遗传转化中的应用[J].江苏农业科学,2013,41(04):35.
[2]李岳峰,居立海,张来运,等.水分胁迫下丛枝菌根对水稻/绿豆间作系统 作物生长和氮磷吸收的影响[J].江苏农业科学,2013,41(04):58.
[3]崔月峰,孙国才,王桂艳,等.不同施氮水平和前氮后移措施对水稻产量 及氮素利用率的影响[J].江苏农业科学,2013,41(04):66.
[4]张其蓉,宋发菊,田进山,等.长江中下游稻区水稻区域试验品种抗稻瘟病鉴定与评价[J].江苏农业科学,2013,41(04):92.
[5]王麒,张小明,卞景阳,等.不同插秧密度对黑龙江省第二积温带水稻产量及产量构成的影响[J].江苏农业科学,2013,41(05):60.
 Wang Qi,et al.Effect of different transplanting density on yield and yield component of rice in second temperature zone of Heilongjiang Province[J].Jiangsu Agricultural Sciences,2013,41(17):60.
[6]张国良,张森林,丁秀文,等.基质厚度和含水量对水稻育秧的影响[J].江苏农业科学,2013,41(05):62.
 Zhang Guoliang,et al.Effects of substrate thickness and water content on growth of rice seedlings[J].Jiangsu Agricultural Sciences,2013,41(17):62.
[7]赵忠宝,朱清海.稻-蟹-鳅生态系统的能值分析[J].江苏农业科学,2013,41(05):349.
 Zhao Zhongbao,et al.Emergy analysis of paddy-crab-loach ecosystem[J].Jiangsu Agricultural Sciences,2013,41(17):349.
[8]杨红福,姚克兵,束兆林,等.甲氧基丙烯酸酯类杀菌剂对水稻恶苗病的田间药效[J].江苏农业科学,2014,42(12):166.
 Yang Hongfu,et al.Field efficacy of strobilurin fungicides against rice bakanae disease[J].Jiangsu Agricultural Sciences,2014,42(17):166.
[9]唐成,陈露,安敏敏,等.稻瘟病诱导水稻幼苗叶片氧化还原系统的特征谱变化[J].江苏农业科学,2014,42(12):141.
 Tang Cheng,et al.Characteristic spectral changes of redox homeostasis system in rice seedling leaves induced by rice blast[J].Jiangsu Agricultural Sciences,2014,42(17):141.
[10]万云龙.优质水稻—春甘蓝轮作高效栽培模式[J].江苏农业科学,2014,42(12):90.
 Wan Yunlong.Efficient cultivation mode of high quality rice-spring cabbage rotation[J].Jiangsu Agricultural Sciences,2014,42(17):90.

备注/Memo

备注/Memo:
收稿日期:2020-12-17
基金项目:国家自然科学基金(编号:31571585);江苏省重点研发计划(编号:BE2019377);国家重点研发计划(编号:2016YFD0300501-03)。
作者简介:王净(1994—),女,河南周口人,硕士研究生,主要从事水稻作物生理研究。E-mail:1790438668@qq.com。
通信作者:李霞,博士,研究员,主要从事水稻逆境生理研究。E-mail:jspplx@jaas.ac.cn。
更新日期/Last Update: 2021-09-05