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Arabinosyl Deacetylase Modulates the Arabinoxylan Acetylation Profile and Secondary Wall Formation

机译:Arabinosyl Deaetylase调节阿拉伯氧基乙酰化曲线和二级壁形成

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摘要

Acetylation, a prevalent modification of cell-wall polymers, is a tightly controlled regulatory process that orchestrates plant growth and environmental adaptation. However, due to limited characterization of the enzymes involved, it is unclear how plants establish and dynamically regulate the acetylation pattern in response to growth requirements. In this study, we identified a rice (Otyza sativa) GDSL esterase that deacetylates the side chain of the major rice hemicellulose, arabinoxylan. Acetyl esterases involved in arabinoxylan modification were screened using enzymatic assays combined with mass spectrometry analysis. One candidate, DEACETYLASE ON ARABINOSYL SIDECHAIN OF XYLAN1 (DARX1), is specific for arabinosyl residues. Disruption of DARX1 via Tos17 insertion and CRISPR/Cas9 approaches resulted in the accumulation of acetates on the xylan arabinosyl side chains. Recombinant DARX1 abolished the excess acetyl groups on arabinoxylan-derived oligosaccharides of the darx1 mutants in vitro. Moreover, DARX1 is localized to the Golgi apparatus. Two-dimensional C-13-C-13 correlation spectroscopy and atomic force microscopy further revealed that the abnormal acetylation pattern observed in darx1 interrupts arabinoxylan conformation and cellulose microfibril orientation, resulting in compromised secondary wall patterning and reduced mechanical strength. This study provides insight into the mechanism controlling the acetylation pattern on arabinoxylan side chains and suggests a strategy to breed robust elite crops.
机译:乙酰化,普遍改性细胞壁聚合物,是一种紧密控制的调节过程,可以协调植物生长和环境适应。然而,由于所涉及的酶的表征有限,目前尚不清楚植物如何确定和动态调节乙酰化模式以应对生长要求。在这项研究中,我们鉴定了一种脱酰基乙酰酯的稻米(Otyza Sativa)Gdsl酯酶,其脱乙酰酯,Arabinoxylan。使用酶测定与质谱分析联合筛选参与阿拉伯辛氧基改性的乙酰酯酶。在Xylan1(DARX1)的阿拉伯糖基旁边的一个候选者脱乙酰化酶是阿拉伯基亚亚甲基残基的特异性。通过TOS17插入和CRISPR / CAS9接近DARX1的破坏导致醋酸纤维酸盐在木聚糖Arabinosyl侧链上。重组Darx1在体外废除了Arabinoxylan衍生的寡糖上的过量乙酰基。此外,DARX1本地化为GOLGI设备。二维C-13-C-13相关光谱和原子力显微镜进一步揭示了在DARX1中观察到的异常乙酰化模式中断阿拉伯辛氧基构象和纤维素微纤维取向,导致次壁图案化和机械强度降低。本研究提供了对控制阿拉伯氧基侧链上的乙酰化图案的机制的洞察力,并提出了一种策略来繁殖强壮的精英作物。

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  • 来源
    《The Plant Cell》 |2019年第5期|共14页
  • 作者单位

    Chinese Acad Sci State Key Lab Plant Genom Inst Genet &

    Dev Biol Innovat Acad Seed Design Beijing 100101 Peoples R China;

    Chinese Acad Sci State Key Lab Plant Genom Inst Genet &

    Dev Biol Innovat Acad Seed Design Beijing 100101 Peoples R China;

    Natl High Magnet Field Lab Tallahassee FL 32310 USA;

    Chinese Acad Sci State Key Lab Plant Genom Inst Genet &

    Dev Biol Innovat Acad Seed Design Beijing 100101 Peoples R China;

    Chinese Acad Sci State Key Lab Plant Genom Inst Genet &

    Dev Biol Innovat Acad Seed Design Beijing 100101 Peoples R China;

    Chinese Acad Sci State Key Lab Plant Genom Inst Genet &

    Dev Biol Innovat Acad Seed Design Beijing 100101 Peoples R China;

    Chinese Acad Sci State Key Lab Plant Genom Inst Genet &

    Dev Biol Innovat Acad Seed Design Beijing 100101 Peoples R China;

    Chinese Acad Sci State Key Lab Plant Genom Inst Genet &

    Dev Biol Innovat Acad Seed Design Beijing 100101 Peoples R China;

    Chinese Acad Sci State Key Lab Plant Genom Inst Genet &

    Dev Biol Innovat Acad Seed Design Beijing 100101 Peoples R China;

    Louisiana State Univ Dept Chem Baton Rouge LA 70803 USA;

    Chinese Acad Sci State Key Lab Plant Genom Inst Genet &

    Dev Biol Innovat Acad Seed Design Beijing 100101 Peoples R China;

    Chinese Acad Sci State Key Lab Plant Genom Inst Genet &

    Dev Biol Innovat Acad Seed Design Beijing 100101 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 植物细胞学;
  • 关键词

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