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水稻中的F-box蛋白。全基因组分析、分类、穗和种子发育过程中的时空基因表达以及光和非生物胁迫的调控

F-box proteins in rice. Genome-wide analysis, classification, temporal and spatial gene expression during panicle and seed development, and regulation by light and abiotic stress.

作者信息

Jain Mukesh, Nijhawan Aashima, Arora Rita, Agarwal Pinky, Ray Swatismita, Sharma Pooja, Kapoor Sanjay, Tyagi Akhilesh K, Khurana Jitendra P

机构信息

Interdisciplinary Centre for Plant Genomics and Department of Plant Molecular Biology, University of Delhi South Campus, New Delhi 110 021, India.

出版信息

Plant Physiol. 2007 Apr;143(4):1467-83. doi: 10.1104/pp.106.091900. Epub 2007 Feb 9.

Abstract

F-box proteins constitute a large family in eukaryotes and are characterized by a conserved F-box motif (approximately 40 amino acids). As components of the Skp1p-cullin-F-box complex, F-box proteins are critical for the controlled degradation of cellular proteins. We have identified 687 potential F-box proteins in rice (Oryza sativa), the model monocotyledonous plant, by a reiterative database search. Computational analysis revealed the presence of several other functional domains, including leucine-rich repeats, kelch repeats, F-box associated domain, domain of unknown function, and tubby domain in F-box proteins. Based upon their domain composition, they have been classified into 10 subfamilies. Several putative novel conserved motifs have been identified in F-box proteins, which do not contain any other known functional domain. An analysis of a complete set of F-box proteins in rice is presented, including classification, chromosomal location, conserved motifs, and phylogenetic relationship. It appears that the expansion of F-box family in rice, in large part, might have occurred due to localized gene duplications. Furthermore, comprehensive digital expression analysis of F-box protein-encoding genes has been complemented with microarray analysis. The results reveal specific and/or overlapping expression of rice F-box protein-encoding genes during floral transition as well as panicle and seed development. At least 43 F-box protein-encoding genes have been found to be differentially expressed in rice seedlings subjected to different abiotic stress conditions. The expression of several F-box protein-encoding genes is also influenced by light. The structure and function of F-box proteins in plants is discussed in light of these results and the published information. These data will be useful for prioritization of F-box proteins for functional validation in rice.

摘要

F-box蛋白在真核生物中构成一个大家族,其特征是具有一个保守的F-box基序(约40个氨基酸)。作为Skp1p-遍在蛋白连接酶复合体的组成部分,F-box蛋白对于细胞蛋白的可控降解至关重要。我们通过反复的数据库搜索,在单子叶模式植物水稻(Oryza sativa)中鉴定出了687个潜在的F-box蛋白。计算分析揭示了F-box蛋白中还存在其他几个功能结构域,包括富含亮氨酸重复序列、kelch重复序列、F-box相关结构域、功能未知结构域和tubby结构域。基于它们的结构域组成,这些蛋白被分为10个亚家族。在不包含任何其他已知功能结构域的F-box蛋白中,鉴定出了几个假定的新型保守基序。本文展示了对水稻中完整F-box蛋白集的分析,包括分类、染色体定位、保守基序和系统发育关系。看来水稻中F-box家族的扩张在很大程度上可能是由于局部基因复制所致。此外,对F-box蛋白编码基因的全面数字表达分析已通过微阵列分析得到补充。结果揭示了水稻F-box蛋白编码基因在花发育转变以及穗和种子发育过程中的特异性和/或重叠表达。已发现至少43个F-box蛋白编码基因在遭受不同非生物胁迫条件的水稻幼苗中差异表达。几个F-box蛋白编码基因的表达也受光照影响。根据这些结果和已发表的信息,讨论了植物中F-box蛋白的结构和功能。这些数据将有助于确定水稻中用于功能验证的F-box蛋白的优先级。

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