|本期目录/Table of Contents|

[1]王岩,张翔,安丽君.拟南芥表皮毛突变体abt2基因克隆及功能研究[J].江苏农业科学,2018,46(15):23-27.
 Wang Yan,et al.Study on cloning and function of a trichome mutant abt2 in Arabidopsis[J].Jiangsu Agricultural Sciences,2018,46(15):23-27.
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拟南芥表皮毛突变体abt2基因克隆及功能研究(PDF)
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《江苏农业科学》[ISSN:1002-1302/CN:32-1214/S]

卷:
第46卷
期数:
2018年第15期
页码:
23-27
栏目:
生物技术
出版日期:
2018-08-05

文章信息/Info

Title:
Study on cloning and function of a trichome mutant abt2 in Arabidopsis
作者:
王岩 张翔 安丽君
旱区逆境生物学国家重点实验室/西北农林科技大学生命科学学院,陕西杨凌 712100
Author(s):
Wang Yanet al
关键词:
拟南芥表皮毛发育KAK核内复制分支图位克隆遗传调控机制
Keywords:
-
分类号:
Q785
DOI:
-
文献标志码:
A
摘要:
植物表皮毛广泛地分布在陆生植物地上部分,是植物表皮组织的一种特化结构,具有多种重要的生物学功能。通过甲基磺酸乙酯(ethylmethanesulphonate,EMS)诱变获得了1个莲座叶表皮毛分支明显增加的突变体,将其命名为aberrant trichome 2(abt2)。遗传分析结果表明,abt2突变体是由细胞核单基因控制的隐性突变。图位克隆和遗传互作结果显示,abt2的表型是由KAKTUS(KAK)基因第+6 881处核苷酸发生突变所导致的,这为进一步研究植物表皮毛的发育调控机制提供新的遗传材料。
Abstract:
-

参考文献/References:

[1]Johnson H B. Plant pubescence:an ecological perspective[J]. Botanical Review,1975,41(3):233-258.
[2]Yang C X,Li H X,Zhang J H,et al. A regulatory gene induces trichome formation and embryo lethality in tomato[J]. Proceedings of the National Academy of Sciences of the United States of America,2011,108(29):11836-11841.
[3]Loughner R,Goldman K,Loeb G,et al. Influence of leaf trichomes on predatory mite (Typhlodromus pyri) abundance in grape varieties[J]. Experimental and Applied Acarology,2008,45(3/4):111-122.
[4]Karabourniotis G,Papadopoulos K,Papamarkou M,et al. Ultraviolet-B radiation absorbing capacity of leaf hairs[J]. Physiologia Plantarum,1992,86(3):414-418.
[5]Huttunen P,Karkkainen K,Loe G,et al. Leaf trichome production and responses to defoliation and drought in Arabidopsis lyrata (Brassicaceae)[J]. Annales Botanici Fennici,2010,47(3):199-207.
[6]Levin D A. The role of trichomes in plant defence[J]. The Quarterly Review of Biology,1973,48(1):3-15.
[7]Saltveit M E,Hepler P K. Effect of heat shock on the chilling sensitivity of trichomes and petioles of African violet (Saintpaulia ionantha)[J]. Physiologia Plantarum,2004,121(1):35-43.
[8]Davidian J C,Grill D,de Kok L,et al. Sulfur transport and assimilation in plants:regulation,interaction,signaling[M]. Leiden:Backhuys Publishers,2003:1933-1949.
[9]Li W X,Chen T B,Chen Y,et al. Role of trichome of Pteris vittata L. in arsenic hyperaccumulation[J]. Science in China Series C-life Sciences,2005,48(2):148-154.
[10]高英,郭建强,赵金凤. 拟南芥表皮毛发育的分子机制[J]. 植物学报,2011,46(1):119-127.
[11]Schellmann S,Hülskamp M. Epidermal differentiation:trichomes in Arabidopsis as a model system[J]. International Journal of Developmental Biology,2005,49(5/6):579-584.
[12]Yang C,Ye Z. Trichomes as models for studying plant cell differentiation[J]. Cellular and Molecular Life Sciences,2013,70(11):1937-1948.
[13]Perazza D,Herzog M,Hülskamp M,et al. Trichome cell growth in Arabidopsis thaliana can be derepressed by mutations in at least five genes[J]. Genetics,1999,152(1):461-476.
[14]Bensussan M,Lefebvre V,Ducamp A,et al. Suppression of dwarf and irregular xylem phenotypes generates low-acetylated biomass lines in Arabidopsis[J]. Plant Physiology,2015,168(2):452-463.
[15]Downes B P,Stupar R M,Gingerich D J,et al. The HECT ubiquitin-protein ligase (UPL) family in Arabidopsis:UPL3 has a specific role in trichome development[J]. Plant Journal,2003,35(6):729-742.
[16]El Refy A,Perazza D,Zekraoui L,et al. The Arabidopsis KAKTUS gene encodes a HECT protein and controls the number of endoreduplication cycles[J]. Molecular Genetics and Genomics,2004,270(5):403-414.

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备注/Memo

备注/Memo:
收稿日期:2017-03-30
基金项目:国家自然科学基金(编号:31470290);中央高校基本科研业务费(编号:2014YB036、Z109021537)。
作者简介:王岩(1990—),女,山东泰安人,硕士研究生,从事拟南芥表皮毛分化发育调控机理研究。E-mail:1209588234@qq.com。
通信作者:安丽君,博士,副教授,从事植物分子遗传与发育生物学研究。E-mail:lijunan@nwsuaf.edu.cn。
更新日期/Last Update: 2018-08-05