Kong Yingzhen, Peña Maria J, Renna Luciana, Avci Utku, Pattathil Sivakumar, Tuomivaara Sami T, Li Xuemei, Reiter Wolf-Dieter, Brandizzi Federica, Hahn Michael G, Darvill Alan G, York William S, O'Neill Malcolm A
Complex Carbohydrate Research Center (Y.K., M.J.P., U.A., S.P., S.T.T., M.G.H., A.G.D., W.S.Y., M.A.O.), Department of Plant Biology (M.G.H.), and Department of Biochemistry and Molecular Biology (A.G.D., W.S.Y.), University of Georgia, Athens, Georgia 30602;Tobacco Research Institute, Chinese Academy of Agricultural Sciences, Qingdao, Shandong 266101, China (Y.K.);United States Department of Energy Plant Research Laboratory (L.R., F.B.) and United States Department of Energy Great Lakes Bioenergy Research Center (F.B.), Michigan State University, East Lansing, Michigan 48824; andDepartment of Molecular and Cell Biology, University of Connecticut, Storrs, Connecticut 06269 (X.L., W.-D.R.).
Complex Carbohydrate Research Center (Y.K., M.J.P., U.A., S.P., S.T.T., M.G.H., A.G.D., W.S.Y., M.A.O.), Department of Plant Biology (M.G.H.), and Department of Biochemistry and Molecular Biology (A.G.D., W.S.Y.), University of Georgia, Athens, Georgia 30602;Tobacco Research Institute, Chinese Academy of Agricultural Sciences, Qingdao, Shandong 266101, China (Y.K.);United States Department of Energy Plant Research Laboratory (L.R., F.B.) and United States Department of Energy Great Lakes Bioenergy Research Center (F.B.), Michigan State University, East Lansing, Michigan 48824; andDepartment of Molecular and Cell Biology, University of Connecticut, Storrs, Connecticut 06269 (X.L., W.-D.R.)
Plant Physiol. 2015 Apr;167(4):1296-306. doi: 10.1104/pp.114.255943. Epub 2015 Feb 11.
Xyloglucan is a polysaccharide that has important roles in the formation and function of the walls that surround growing land plant cells. Many of these plants synthesize xyloglucan that contains galactose in two different side chains (L and F), which exist in distinct molecular environments. However, little is known about the contribution of these side chains to xyloglucan function. Here, we show that Arabidopsis (Arabidopsis thaliana) mutants devoid of the F side chain galactosyltransferase MURUS3 (MUR3) form xyloglucan that lacks F side chains and contains much less galactosylated xylose than its wild-type counterpart. The galactose-depleted xyloglucan is dysfunctional, as it leads to mutants that are dwarfed with curled rosette leaves, short petioles, and short inflorescence stems. Moreover, cell wall matrix polysaccharides, including xyloglucan and pectin, are not properly secreted and instead accumulate within intracellular aggregates. Near-normal growth is restored by generating mur3 mutants that produce no detectable amounts of xyloglucan. Thus, cellular processes are affected more by the presence of the dysfunctional xyloglucan than by eliminating xyloglucan altogether. To identify structural features responsible for xyloglucan dysfunction, xyloglucan structure was modified in situ by generating mur3 mutants that lack specific xyloglucan xylosyltransferases (XXTs) or that overexpress the XYLOGLUCAN L-SIDE CHAIN GALACTOSYLTRANSFERASE2 (XLT2) gene. Normal growth was restored in the mur3-3 mutant overexpressing XLT2 and in mur3-3 xxt double mutants when the dysfunctional xyloglucan was modified by doubling the amounts of galactosylated side chains. Our study assigns a role for galactosylation in normal xyloglucan function and demonstrates that altering xyloglucan side chain structure disturbs diverse cellular and physiological processes.
木葡聚糖是一种多糖,在包围生长中的陆地植物细胞的细胞壁的形成和功能中发挥着重要作用。许多这类植物合成的木葡聚糖在两个不同的侧链(L和F)中含有半乳糖,它们存在于不同的分子环境中。然而,关于这些侧链对木葡聚糖功能的贡献知之甚少。在这里,我们表明,缺乏F侧链半乳糖基转移酶MURUS3(MUR3)的拟南芥(Arabidopsis thaliana)突变体形成的木葡聚糖缺乏F侧链,并且其半乳糖基化木糖的含量比野生型对应物少得多。半乳糖缺失的木葡聚糖功能失调,因为它导致突变体植株矮小,莲座叶卷曲,叶柄短,花序茎短。此外,包括木葡聚糖和果胶在内的细胞壁基质多糖不能正常分泌,而是在细胞内聚集体中积累。通过产生不产生可检测量木葡聚糖的mur3突变体,恢复了接近正常的生长。因此,细胞过程受功能失调的木葡聚糖的存在影响比完全消除木葡聚糖更大。为了确定导致木葡聚糖功能失调的结构特征,通过产生缺乏特定木葡聚糖木糖基转移酶(XXTs)或过表达木葡聚糖L-侧链半乳糖基转移酶(XLT2)基因的mur3突变体,对木葡聚糖结构进行原位修饰。当通过使半乳糖基化侧链的量加倍来修饰功能失调的木葡聚糖时,在过表达XLT2的mur3-3突变体和mur3-3 xxt双突变体中恢复了正常生长。我们的研究确定了半乳糖基化在正常木葡聚糖功能中的作用,并证明改变木葡聚糖侧链结构会扰乱多种细胞和生理过程。