Liu Qingquan, Luo Le, Wang Xiaoxiao, Shen Zhenguo, Zheng Luqing
College of Life Sciences, Nanjing Agricultural University, Nanjing 210095, China.
Institute of Botany, Jiangsu Province and Chinese Academy of Sciences, Nanjing 210014, China.
Int J Mol Sci. 2017 Jan 30;18(2):209. doi: 10.3390/ijms18020209.
Laccases are encoded by a multigene family and widely distributed in plant genomes where they play roles oxidizing monolignols to produce higher-order lignin involved in plant development and stress responses. We identified 30 laccase genes (OsLACs) from rice, which can be divided into five subfamilies, mostly expressed during early development of the endosperm, growing roots, and stems. OsLACs can be induced by hormones, salt, drought, and heavy metals stresses. The expression level of OsLAC10 increased 1200-fold after treatment with 20 μM Cu for 12 h. The laccase activities of OsLAC10 were confirmed in an Escherichia coli expression system. Lignin accumulation increased in the roots of Arabidopsis over-expressing OsLAC10 (OsLAC10-OX) compared to wild-type controls. After growth on 1/2 Murashige and Skoog (MS) medium containing toxic levels of Cu for seven days, roots of the OsLAC10-OX lines were significantly longer than those of the wild type. Compared to control plants, the Cu concentration decreased significantly in roots of the OsLAC10-OX line under hydroponic conditions. These results provided insights into the evolutionary expansion and functional divergence of OsLAC family. In addition, OsLAC10 is likely involved in lignin biosynthesis, and reduces the uptake of Cu into roots required for Arabidopsis to develop tolerance to Cu.
漆酶由一个多基因家族编码,广泛分布于植物基因组中,在植物发育和应激反应中发挥作用,将单木质醇氧化以产生参与其中的高阶木质素。我们从水稻中鉴定出30个漆酶基因(OsLACs),它们可分为五个亚家族,大多在胚乳、生长中的根和茎的早期发育阶段表达。OsLACs可被激素、盐、干旱和重金属胁迫诱导。用20μM铜处理12小时后,OsLAC10的表达水平增加了1200倍。在大肠杆菌表达系统中证实了OsLAC10的漆酶活性。与野生型对照相比,过表达OsLAC10(OsLAC10-OX)的拟南芥根中木质素积累增加。在含有毒性水平铜的1/2 Murashige和Skoog(MS)培养基上生长七天后,OsLAC10-OX系的根明显长于野生型。与对照植物相比,在水培条件下,OsLAC10-OX系根中的铜浓度显著降低。这些结果为OsLAC家族的进化扩张和功能分化提供了见解。此外,OsLAC10可能参与木质素生物合成,并减少拟南芥对铜的耐受性所需的铜向根中的吸收。