Division of Biotechnology, College of Life Sciences and Biotechnology, Korea University, Seoul, Republic of Korea.
J Plant Physiol. 2010 May 15;167(8):650-8. doi: 10.1016/j.jplph.2009.12.001. Epub 2010 Jan 6.
Several genes that encode a chitinase-like protein (called the CTL group) have been identified in Arabidopsis, rice, pea, and cotton. Members of the CTL group have attracted much attention because of their possible role in the biosynthesis of the cell wall in plants. The hot2 mutation in the CTL1 (AtCTL1) gene of Arabidopsis thaliana causes multiple defects in growth and development. The Arabidopsis genome possesses the AtCTL2 gene, which exhibits 70% similarity to AtCTL1 at the amino acid level. We showed that the AtCTL2 gene was predominantly expressed in stems, which was in contrast to the presence of AtCTL1 transcripts in most organs of Arabidopsis. In addition, beta-glucuronidase (GUS) staining was detectable in all tissues of the stem in transgenic plants expressing the AtCTL1::GUS construct, while GUS activity under control of the AtCTL2 promoter was significantly restricted to the xylem and to interfascicular fibers in stems. The phenotypes of atctl2 single mutant and of hot2, atctl2 double mutant plants were significantly similar to those of wild-type and of hot2 single mutant plants, respectively. The expression levels of CESA1 and CESA4 transcripts were not affected in the two single mutants or corresponding double mutant plants, compared with the levels in wild-type plants. The accumulation of lignin in etiolated hypocotyls, however, was increased by mutation of AtCTL2. These findings suggest that AtCTL2 is required for proper cell wall biosynthesis in etiolated seedlings of Arabidopsis.
几种编码几丁质酶样蛋白(称为 CTL 组)的基因已在拟南芥、水稻、豌豆和棉花中被鉴定出来。CTL 组的成员因其在植物细胞壁生物合成中的可能作用而引起了广泛关注。拟南芥的 hot2 突变导致 CTL1(AtCTL1)基因的多个生长和发育缺陷。拟南芥基因组拥有 AtCTL2 基因,该基因在氨基酸水平上与 AtCTL1 具有 70%的相似性。我们表明,AtCTL2 基因主要在茎中表达,这与 AtCTL1 转录物在拟南芥大多数器官中的存在形成对比。此外,在表达 AtCTL1::GUS 构建体的转基因植物的茎的所有组织中都可检测到β-葡糖苷酸酶(GUS)染色,而在茎的木质部和束间纤维中,受 AtCTL2 启动子控制的 GUS 活性受到显著限制。atctl2 单突变体和 hot2、atctl2 双突变体植物的表型与野生型和 hot2 单突变体植物的表型非常相似。与野生型植物相比,两个单突变体或相应的双突变体植物中的 CESA1 和 CESA4 转录本的表达水平没有受到影响。然而,突变 AtCTL2 会增加黄化下胚轴中木质素的积累。这些发现表明 AtCTL2 是拟南芥黄化幼苗中正确细胞壁生物合成所必需的。