Ostergaard Lars, Petersen Morten, Mattsson Ole, Mundy John
Department of Plant Physiology, Institute of Molecular Biology, University of Copenhagen, Denmark.
Plant Mol Biol. 2002 Aug;49(6):559-66. doi: 10.1023/a:1015558231400.
Beta-1,3-glucan polymers are major structural components of fungal cell walls, while cellulosic beta-1,4-glucan is the predominant polysaccharide in plant cell walls. Plant beta-1,3-glucan, called callose, is produced in pollen and in response to pathogen attack and wounding, but it has been unclear whether callose synthases can also produce cellulose and whether plant cellulose synthases may also produce beta-1,3-glucans. We describe here an Arabidopsis gene, AtGsl5, encoding a plasma membrane-localized protein homologous to yeast beta-1,3-glucan synthase whose expression partially complements a yeast beta-1,3-glucan synthase mutant. AtGsl5 is developmentally expressed at highest levels in flowers, consistent with flowers having high beta-1,3-glucan synthase activities for deposition of callose in pollen. A role for AtGsl5 in callose synthesis is also indicated by AtGsl5 expression in the Arabidopsis mpk4 mutant which exhibits systemic acquired resistance (SAR), elevated beta-1,3-glucan synthase activity, and increased callose levels. In addition, AtGsl5 is a likely target of salicylic acid (SA)-dependent SAR, since AtGsl5 mRNA accumulation is induced by SA in wild-type plants, while expression of the nahG salicylate hydroxylase reduces AtGsl5 mRNA levels in the mpk4 mutant. These results indicate that AtGsl5 is likely involved in callose synthesis in flowering tissues and in the mpk4 mutant.
β-1,3-葡聚糖聚合物是真菌细胞壁的主要结构成分,而纤维素β-1,4-葡聚糖是植物细胞壁中的主要多糖。植物β-1,3-葡聚糖称为胼胝质,在花粉中产生,并对病原体攻击和伤口作出反应,但尚不清楚胼胝质合酶是否也能产生纤维素,以及植物纤维素合酶是否也能产生β-1,3-葡聚糖。我们在此描述了拟南芥基因AtGsl5,它编码一种与酵母β-1,3-葡聚糖合酶同源的定位于质膜的蛋白质,其表达部分互补酵母β-1,3-葡聚糖合酶突变体。AtGsl5在花中的发育表达水平最高,这与花具有高β-1,3-葡聚糖合酶活性以在花粉中沉积胼胝质一致。AtGsl5在表现出系统获得性抗性(SAR)、升高的β-1,3-葡聚糖合酶活性和增加的胼胝质水平的拟南芥mpk4突变体中的表达也表明了AtGsl5在胼胝质合成中的作用。此外,AtGsl5可能是水杨酸(SA)依赖性SAR的靶点,因为在野生型植物中SA诱导AtGsl5 mRNA积累,而nahG水杨酸羟化酶的表达降低了mpk4突变体中AtGsl5 mRNA水平。这些结果表明AtGsl5可能参与开花组织和mpk4突变体中的胼胝质合成。