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Transcriptomic and Proteomic Analyses of Pericycle Cells of the Maize Primary Root

机译:玉米原根周细胞的转录组学和蛋白质组学分析

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摘要

Each plant cell type expresses a unique transcriptome and proteome at different stages of differentiation dependent on its developmental fate. This study compared gene expression and protein accumulation in cell-cycle-competent primary root pericycle cells of maize (Zea mays) prior to their first division and lateral root initiation. These are the only root cells that maintain the competence to divide after they leave the meristematic zone. Pericycle cells of the inbred line B73 were isolated via laser capture microdissection. Microarray experiments identified 32 genes preferentially expressed in pericycle versus all other root cells that have left the apical meristem; selective subtractive hybridization identified seven genes preferentially expressed in pericycle versus central cylinder cells of the same root region. Transcription and protein synthesis represented the most abundant functional categories among these pericycle-specific genes. Moreover, 701 expressed sequence tags (ESTs) were generated from pericycle and central cylinder cells. Among those, transcripts related to protein synthesis and cell fate were significantly enriched in pericycle versus nonpericycle cells. In addition, 77 EST clusters not previously identified in maize ESTs or genomic databases were identified. Finally, among the most abundant soluble pericycle proteins separated via two-dimensional electrophoresis, 20 proteins were identified via electrospray ionization-tandem mass spectrometry, thus defining a reference dataset of the maize pericycle proteome. Among those, two proteins were preferentially expressed in the pericycle. In summary, these pericycle-specific gene expression experiments define the distinct molecular events during the specification of cell-cycle-competent pericycle cells prior to their first division and demonstrate that pericycle specification and lateral root initiation might be controlled by a different set of genes.
机译:每种植物细胞类型根据其发育命运在不同的分化阶段表达独特的转录组和蛋白质组。这项研究比较了玉米(Zea mays)具有细胞周期能力的初生根周周细胞在首次分裂和侧向生根之前的基因表达和蛋白质积累。这些是离开分生组织区后保持分裂能力的唯一根细胞。近交系B73的周细胞通过激光捕获显微切割分离。微阵列实验确定了32种基因在周生周期中优先表达,而不是所有其他离开根尖分生组织的根细胞。选择性消减杂交鉴定出七个基因在周生周期相对于相同根部区域的中心圆柱细胞中优先表达。转录和蛋白质合成代表了这些周周特异基因中最丰富的功能类别。此外,从周围周期和中央圆柱细胞生成了701个表达的序列标签(EST)。其中,与蛋白合成和细胞命运有关的转录本在周周细胞与非周周细胞中显着富集。此外,还鉴定出了先前在玉米EST或基因组数据库中未发现的77个EST簇。最后,在通过二维电泳分离的最丰富的可溶性周轮蛋白中,通过电喷雾电离串联质谱法鉴定了20种蛋白,从而确定了玉米周轮蛋白组的参考数据集。其中,两种蛋白在周周期中优先表达。总而言之,这些周长特异性基因表达实验定义了具有细胞周期能力的周长细胞在其第一次分裂之前的规范化过程中的独特分子事件,并证明了周长周期的规范化和侧向根的起始可能受一组不同的基因控制。

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