Department of Plant Biology, Michigan State University, East Lansing, Michigan, 48824, USA.
Great Lakes Bioenergy Research Center, Michigan State University, East Lansing, Michigan, 48824, USA.
Plant J. 2022 Feb;109(4):927-939. doi: 10.1111/tpj.15603. Epub 2021 Dec 17.
Mixed-linkage glucan, which is widely distributed in grasses, is a polysaccharide highly abundant in cell walls of grass endosperm and young vegetative tissues. Lichenases are enzymes that hydrolyze mixed-linkage glucan first identified in mixed-linkage glucan-rich lichens. In this study, we identify a gene encoding a lichenase we name Brachypodium distachyon LICHENASE 1 (BdLCH1), which is highly expressed in the endosperm of germinating seeds and coleoptiles and at lower amounts in mature shoots. RNA in situ hybridization showed that BdLCH1 is primarily expressed in chlorenchyma cells of mature leaves and internodes. Disruption of BdLCH1 resulted in an eight-fold increase in mixed-linkage glucan content in senesced leaves. Consistent with the in situ hybridization data, immunolocalization results showed that mixed-linkage glucan was not removed in chlorenchyma cells of lch1 mutants as it was in wild type and implicate the BdLCH1 enzyme in removing mixed-linkage glucan in chlorenchyma cells in mature vegetative tissues. We also show that mixed-linkage glucan accumulation in lch1 mutants was resistant to dark-induced degradation, and 8-week-old lch1 plants showed a faster rate of starch breakdown than wild type in darkness. Our results suggest a role for BdLCH1 in modifying the cell wall to support highly metabolically active cells.
混合链葡聚糖广泛分布于草本植物中,是一种在草类胚乳和幼嫩营养组织细胞壁中高度丰富的多糖。几丁质酶是最初在富含混合链葡聚糖的地衣中发现的水解混合链葡聚糖的酶。在这项研究中,我们鉴定了一个编码几丁质酶的基因,我们将其命名为 Brachypodium distachyon LICHENASE 1(BdLCH1),该基因在萌发种子的胚乳和幼茎中高度表达,在成熟枝条中表达量较低。原位杂交显示,BdLCH1 主要在成熟叶片和节间的绿色组织细胞中表达。BdLCH1 的破坏导致衰老叶片中混合链葡聚糖含量增加了 8 倍。与原位杂交数据一致的是,免疫定位结果表明,在 lch1 突变体的绿色组织细胞中,混合链葡聚糖没有被去除,而在野生型中则被去除,这表明 BdLCH1 酶参与了成熟营养组织中绿色组织细胞中混合链葡聚糖的去除。我们还表明,lch1 突变体中混合链葡聚糖的积累对黑暗诱导的降解有抗性,并且在黑暗中,8 周龄的 lch1 植物比野生型表现出更快的淀粉分解速度。我们的结果表明,BdLCH1 在修饰细胞壁以支持高度代谢活跃的细胞方面发挥作用。