Cao Jun, Li Xiangyang, Lv Yueqing
Institute of Life Sciences, Jiangsu University, Xuefu Road 301, Zhenjiang 212013, Jiangsu, PR China.
Industrial Crop Institute, Henan Academy of Agricultural Sciences, Zhengzhou 450002, Henan, PR China.
Plant Sci. 2017 Jan;254:70-81. doi: 10.1016/j.plantsci.2016.10.011. Epub 2016 Nov 9.
Dynein light chain (DLC) is one important component of the dynein complexes, which have been proved involving in a variety of cellular functions. However, higher plants lack all other components of the complexes except DLCs, suggesting that in plants, the DLC protein does not carry out the same function as it in animals. Therefore, the function of this family in plants is mysterious. In this study, we investigated the DLC gene family in 15 plant species and analyzed their expression profiles. In total, 128 DLC genes were identified from the 15 studied plant species and were divided into eight groups by their phylogenetic relation. Highly conserved gene structure and motif arrangement was discovered within each group, indicating their functional correlation. Genetic variation and recombination events were also detected in DLC genes. Through selection analyses, we also identified some significant site-specific constraints in most of the DLC paralogs. In addition, DLC genes presented various expression profiles in different development stages, or under different abiotic stresses or phytohormone treatments. This may be associated with a variety of cis-elements responding to stress and phytohormone in the upstream sequences of the DLC genes. Functional network analysis exhibited 123 physical or functional interactions. The results provide a foundation for exploring the characterization of the DLC genes in plants and offer insights for additional functional studies.
动力蛋白轻链(DLC)是动力蛋白复合体的一个重要组成部分,该复合体已被证明参与多种细胞功能。然而,高等植物除了DLC外缺乏该复合体的所有其他组成部分,这表明在植物中,DLC蛋白的功能与在动物中不同。因此,这个家族在植物中的功能尚不清楚。在本研究中,我们调查了15种植物中的DLC基因家族并分析了它们的表达谱。总共从15种被研究植物中鉴定出128个DLC基因,并根据它们的系统发育关系分为八组。在每组中发现了高度保守的基因结构和基序排列,表明它们的功能相关性。在DLC基因中也检测到了遗传变异和重组事件。通过选择分析,我们还在大多数DLC旁系同源物中鉴定出一些显著的位点特异性限制。此外,DLC基因在不同发育阶段、不同非生物胁迫或植物激素处理下呈现出不同的表达谱。这可能与DLC基因上游序列中多种响应胁迫和植物激素的顺式元件有关。功能网络分析显示了123种物理或功能相互作用。这些结果为探索植物中DLC基因的特征提供了基础,并为进一步的功能研究提供了见解。