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通过cDNA序列分析以及对拟南芥AP2/EREBP转录因子基因家族的发育、激素或环境响应性进行全面分析来更新注释。

An annotation update via cDNA sequence analysis and comprehensive profiling of developmental, hormonal or environmental responsiveness of the Arabidopsis AP2/EREBP transcription factor gene family.

作者信息

Feng Jian-Xun, Liu Di, Pan Yi, Gong Wei, Ma Li-Geng, Luo Jing-Chu, Deng Xing Wang, Zhu Yu-Xian

机构信息

The National Laboratory of Protein Engineering and Plant Genetic Engineering Peking University, 100871, Beijing, China.

出版信息

Plant Mol Biol. 2005 Dec;59(6):853-68. doi: 10.1007/s11103-005-1511-0.

Abstract

AP2/EREBP transcription factors (TFs) play functionally important roles in plant growth and development, especially in hormonal regulation and in response to environmental stress. Here we reported verification and correction of annotation through an exhaustive cDNA cloning and sequence analysis performed on 145 of 147 gene family members. A RACE analysis performed on genes with potential in-frame up-stream ATG codon resulted in identification of At2g28520 as an authentic AP2/EREBP member and corrected ORF annotations for three other members. A further phylogenetic analysis of this updated and likely complete family divided it into three major subfamilies. The expression patterns of the AP2/EREBP family members among the 11 organ or tissue types were examined using an oligo microarray and their hormonal and environmental responsiveness were further characterized using cDNA custom macroarrays. These detailed expression profile results provide strong support for a role for AP2/EREBP family members in development and in response to environmental stimuli, and a foundation for future functional analysis of this gene family.

摘要

AP2/EREBP转录因子(TFs)在植物生长发育中发挥着重要的功能作用,尤其是在激素调节和对环境胁迫的响应方面。在此,我们通过对147个基因家族成员中的145个进行详尽的cDNA克隆和序列分析,报告了注释的验证和校正情况。对具有潜在框内上游ATG密码子的基因进行的RACE分析,确定At2g28520为一个真正的AP2/EREBP成员,并校正了其他三个成员的开放阅读框(ORF)注释。对这个更新且可能完整的家族进行的进一步系统发育分析,将其分为三个主要亚家族。使用寡核苷酸微阵列检测了AP2/EREBP家族成员在11种器官或组织类型中的表达模式,并使用定制的cDNA宏阵列进一步表征了它们对激素和环境的响应性。这些详细的表达谱结果为AP2/EREBP家族成员在发育和对环境刺激的响应中的作用提供了有力支持,并为该基因家族未来的功能分析奠定了基础。

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