Dou Yao, Liu Xiangguo, Yin Yuejia, Han Siping, Lu Yang, Liu Yang, Hao Dongyun
Key Laboratory for Molecular Enzymology and Engineering of the Ministry of Education, Jilin University, Changchun, 130012, P. R. China.
Institute of Agricultural Biotechnology, Jilin Academy of Agricultural Sciences (JAAS), Changchun, 130124, P. R. China.
J Proteomics. 2015 Jan 30;114:274-86. doi: 10.1016/j.jprot.2014.10.019. Epub 2014 Nov 6.
The 14-3-3 proteins are a group of regulatory proteins of divergent functions in plants. However, little is known about their roles in maize kernel development. Using publically available gene expression profiling data, we found that two 14-3-3 species genes, zmgf14-4 and zmgf14-6, exhibited prominent expression profiles over other 14-3-3 protein genes during maize kernel development. More than 5000 transcripts of these two genes were identified accounting for about 1/10 of the total transcripts of genes correlating to maize kernel development. We constructed a proteomics pipeline based on the affinity chromatography, in combination with 2-DE and LC-MS/MS technologies to identify the specific client proteins of the two proteins for their functional characterization. Consequently, we identified 77 specific client proteins from the developing kernels of the inbred maize B73. More than 60% of the client proteins were commonly affinity-identified by the two 14-3-3 species and are predicted to be implicated in the fundamental functions of metabolism, protein destination and storage. In addition, we found ZmGF14-4 specifically bound to the disease- or defense-relating proteins, whilst ZmGF14-6 tended to interact with the proteins involving metabolism and cell structure. Our findings provide primary insights into the functional roles of 14-3-3 proteins in maize kernel development.
Maize kernel development is a complicated physiological process for its importance in both genetics and cereal breeding. 14-3-3 proteins form a multi-gene family participating in regulations of developmental processes in plants. However, the correlation between this protein family and maize kernel development has hardly been studied. We have for the first time found 12 14-3-3 protein genes from maize genome and studied in silico the gene transcription profiling of these genes. Comparative studies revealed that maize kernel development aroused a great number of gene expression, among which 14-3-3 protein genes took a significant proportion. We applied affinity chromatographic approach, in combination with 2-DE and LC-MS/MS, to explore the specific client proteins of two crucial 14-3-3 protein species that exhibit prominent gene expression over other members in the family during the kernel development. Assessments of the identified client proteins resulted in important information toward understanding the functional mechanism of 14-3-3 protein family in maize kernel development.
14-3-3蛋白是植物中一组功能多样的调节蛋白。然而,它们在玉米籽粒发育中的作用却鲜为人知。利用公开可用的基因表达谱数据,我们发现两个14-3-3家族基因zmgf14-4和zmgf14-6在玉米籽粒发育过程中比其他14-3-3蛋白基因表现出更显著的表达谱。这两个基因鉴定出了5000多个转录本,约占与玉米籽粒发育相关基因总转录本的1/10。我们构建了一种基于亲和色谱的蛋白质组学方法,结合二维电泳(2-DE)和液相色谱-串联质谱(LC-MS/MS)技术来鉴定这两种蛋白的特定客户蛋白,以进行功能表征。结果,我们从自交系玉米B73的发育籽粒中鉴定出77种特定客户蛋白。超过60%的客户蛋白被这两种14-3-3家族蛋白共同亲和鉴定出来,预计它们参与代谢、蛋白质定位和储存等基本功能。此外,我们发现ZmGF14-4特异性结合与疾病或防御相关的蛋白,而ZmGF14-6倾向于与涉及代谢和细胞结构的蛋白相互作用。我们的研究结果为14-3-3蛋白在玉米籽粒发育中的功能作用提供了初步见解。
玉米籽粒发育在遗传学和谷物育种中都很重要,是一个复杂的生理过程。14-3-3蛋白形成一个多基因家族,参与植物发育过程的调控。然而,这个蛋白家族与玉米籽粒发育之间的相关性几乎没有被研究过。我们首次从玉米基因组中发现了12个14-3-3蛋白基因,并对这些基因进行了电子基因转录谱分析。比较研究表明,玉米籽粒发育引发了大量基因表达,其中14-3-3蛋白基因占很大比例。我们应用亲和色谱方法,结合二维电泳和液相色谱-串联质谱,探索了两种关键的14-3-3蛋白家族成员在籽粒发育过程中比家族其他成员表现出更显著基因表达的特定客户蛋白。对鉴定出的客户蛋白的评估为理解14-3-3蛋白家族在玉米籽粒发育中的功能机制提供了重要信息。