Institute for Plant Cell Biology and Biotechnology, Heinrich Heine University, 40225 Düsseldorf, Germany.
Institute for Plant Cell Biology and Biotechnology, Heinrich Heine University, 40225 Düsseldorf, Germany
Proc Natl Acad Sci U S A. 2019 Jan 8;116(2):522-527. doi: 10.1073/pnas.1814003116. Epub 2018 Dec 24.
Heteromannan (HM) is one of the most ancient cell wall polymers in the plant kingdom, consisting of β-(1-4)-linked backbones of glucose (Glc) and mannose (Man) units. Despite the widespread distribution of HM polysaccharides, their biosynthesis remains mechanistically unclear. HM is elongated by glycosyltransferases (GTs) from the cellulose synthase-like A (CSLA) family. MANNANSYNTHESIS RELATED (MSR) putative GTs have also been implicated in (gluco)mannan synthesis, but their roles have been difficult to decipher and in vitro. To further characterize the products of the HM synthases and accessory proteins, we chose a synthetic biology approach to synthesize plant HM in yeast. The expression of a CSLA protein in led to the abundant production of plant HM: up to 30% of glycans in the yeast cell wall. Based on sequential chemical and enzymatic extractions, followed by detailed structural analyses, the newly produced HM polymers were unbranched and could be larger than 270 kDa. Using CSLAs from different species, we programmed yeast cells to produce an HM backbone composed exclusively of Man or also incorporating Glc. We demonstrate that specific MSR cofactors were indispensable for mannan synthase activity of a coffee CSLA or modulated a functional CSLA enzyme to produce glucomannan instead of mannan. Therefore, this powerful platform yields functional insight into the molecular machinery required for HM biosynthesis in plants.
杂合甘露聚糖 (HM) 是植物王国中最古老的细胞壁聚合物之一,由葡萄糖 (Glc) 和甘露糖 (Man) 单元的 β-(1-4)-连接骨架组成。尽管 HM 多糖广泛分布,但它们的生物合成机制仍不清楚。HM 通过纤维素合酶样 A (CSLA) 家族的糖基转移酶 (GT) 伸长。假定的 MANNANSYNTHESIS RELATED (MSR) GT 也被牵连到 (葡)甘露聚糖的合成中,但它们的作用很难在体外进行破译。为了进一步表征 HM 合酶和辅助蛋白的产物,我们选择了一种合成生物学方法在酵母中合成植物 HM。在酵母中表达 CSLA 蛋白导致植物 HM 的大量产生:高达酵母细胞壁中糖的 30%。基于顺序化学和酶提取,随后进行详细的结构分析,新产生的 HM 聚合物是无支链的,并且可以大于 270 kDa。使用来自不同物种的 CSLAs,我们编程酵母细胞产生仅由 Man 组成或也掺入 Glc 的 HM 骨架。我们证明了特定的 MSR 辅助因子对于咖啡 CSLA 的甘露聚糖合酶活性是不可或缺的,或者调节了功能性 CSLA 酶以产生葡甘露聚糖而不是甘露聚糖。因此,这个强大的平台为植物 HM 生物合成所需的分子机制提供了功能见解。