Lashbrook C C, Gonzalez-Bosch C, Bennett A B
Mann Laboratory, Department of Vegetable Crops, University of California, Davis 95616.
Plant Cell. 1994 Oct;6(10):1485-93. doi: 10.1105/tpc.6.10.1485.
Two structurally divergent endo-beta-1,4-glucanase (EGase) cDNAs were cloned from tomato. Although both cDNAs (Cel1 and Cel2) encode potentially glycosylated, basic proteins of 51 to 53 kD and possess multiple amino acid domains conserved in both plant and microbial EGases, Cel1 and Cel2 exhibit only 50% amino acid identity at the overall sequence level. Amino acid sequence comparisons to other plant EGases indicate that tomato Cel1 is most similar to bean abscission zone EGase (68%), whereas Cel2 exhibits greatest sequence identity to avocado fruit EGase (57%). Sequence comparisons suggest the presence of at least two structurally divergent EGase families in plants. Unlike ripening avocado fruit and bean abscission zones in which a single EGase mRNA predominates, EGase expression in tomato reflects the overlapping accumulation of both Cel1 and Cel2 transcripts in ripening fruit and in plant organs undergoing cell separation. Cel1 mRNA contributes significantly to total EGase mRNA accumulation within plant organs undergoing cell separation (abscission zones and mature anthers), whereas Cel2 mRNA is most abundant in ripening fruit. The overlapping expression of divergent EGase genes within a single species may suggest that multiple activities are required for the cooperative disassembly of cell wall components during fruit ripening, floral abscission, and anther dehiscence.
从番茄中克隆出了两个结构不同的内切-β-1,4-葡聚糖酶(EGase)cDNA。尽管这两个cDNA(Cel1和Cel2)编码的是潜在糖基化的、51至53kD的碱性蛋白,且拥有在植物和微生物EGase中都保守的多个氨基酸结构域,但Cel1和Cel2在整个序列水平上仅表现出50%的氨基酸同一性。与其他植物EGase的氨基酸序列比较表明,番茄Cel1与菜豆脱落区EGase最为相似(68%),而Cel2与鳄梨果实EGase的序列同一性最高(57%)。序列比较表明植物中至少存在两个结构不同的EGase家族。与成熟鳄梨果实和菜豆脱落区中单一EGase mRNA占主导不同,番茄中的EGase表达反映了Cel1和Cel2转录本在成熟果实和经历细胞分离的植物器官中的重叠积累。Cel1 mRNA对经历细胞分离的植物器官(脱落区和成熟花药)中总EGase mRNA积累有显著贡献,而Cel2 mRNA在成熟果实中最为丰富。单一物种内不同EGase基因的重叠表达可能表明,在果实成熟、花脱落和花药开裂过程中,细胞壁成分的协同分解需要多种活性。