Biodiversity Research Center , Academia Sinica, Taipei, Taiwan 115; Institute of Bioagricultural Science, National Chiayi University, Chiayi, Taiwan 600.
Plant Physiol. 2012 Sep;160(1):165-77. doi: 10.1104/pp.112.203810. Epub 2012 Jul 24.
To study the regulatory and functional differentiation between the mesophyll (M) and bundle sheath (BS) cells of maize (Zea mays), we isolated large quantities of highly homogeneous M and BS cells from newly matured second leaves for transcriptome profiling by RNA sequencing. A total of 52,421 annotated genes with at least one read were found in the two transcriptomes. Defining a gene with more than one read per kilobase per million mapped reads as expressed, we identified 18,482 expressed genes; 14,972 were expressed in M cells, including 53 M-enriched transcription factor (TF) genes, whereas 17,269 were expressed in BS cells, including 214 BS-enriched TF genes. Interestingly, many TF gene families show a conspicuous BS preference in expression. Pathway analyses reveal differentiation between the two cell types in various functional categories, with the M cells playing more important roles in light reaction, protein synthesis and folding, tetrapyrrole synthesis, and RNA binding, while the BS cells specialize in transport, signaling, protein degradation and posttranslational modification, major carbon, hydrogen, and oxygen metabolism, cell division and organization, and development. Genes coding for several transporters involved in the shuttle of C(4) metabolites and BS cell wall development have been identified, to our knowledge, for the first time. This comprehensive data set will be useful for studying M/BS differentiation in regulation and function.
为了研究玉米(Zea mays)中叶肉(M)和束鞘(BS)细胞之间的调控和功能分化,我们从新成熟的第二叶片中分离出大量高度同质的 M 和 BS 细胞,通过 RNA 测序进行转录组谱分析。在这两个转录组中,总共发现了 52421 个至少有一个读数的注释基因。我们将每个千碱基百万映射读数有一个以上读数的基因定义为表达基因,鉴定出 18482 个表达基因;14972 个在 M 细胞中表达,包括 53 个 M 细胞富集转录因子(TF)基因,而 17269 个在 BS 细胞中表达,包括 214 个 BS 细胞富集 TF 基因。有趣的是,许多 TF 基因家族在表达上表现出明显的 BS 偏好。途径分析显示,两种细胞类型在各种功能类别中存在分化,M 细胞在光反应、蛋白质合成和折叠、四吡咯合成和 RNA 结合中发挥更重要的作用,而 BS 细胞专门从事运输、信号转导、蛋白质降解和翻译后修饰、主要碳、氢和氧代谢、细胞分裂和组织以及发育。我们首次鉴定了几个参与 C4 代谢物穿梭和 BS 细胞壁发育的转运蛋白编码基因。这个综合数据集将有助于研究 M/BS 分化的调控和功能。