Direct imaging of glycans in Arabidopsis roots via click labeling of metabolically incorporated azido-monosaccharides

被引:27
作者
Hoogenboom, Jorin [1 ]
Berghuis, Nathalja [1 ]
Cramer, Dario [2 ,3 ]
Geurts, Rene [4 ]
Zuilhof, Han [1 ]
Wennekes, Tom [1 ,2 ,3 ]
机构
[1] Wageningen Univ, Organ Chem Lab, Stippeneng 4, NL-6708 WE Wageningen, Netherlands
[2] Univ Utrecht, Utrecht Inst Pharmaceut Sci, Dept Chem Biol & Drug Discovery, Utrecht, Netherlands
[3] Univ Utrecht, Bijvoet Ctr Biomol Res, Utrecht, Netherlands
[4] Wageningen Univ, Dept Plant Sci, Mol Biol Lab, Droevendaalsesteeg 1, NL-6708 PB Wageningen, Netherlands
来源
BMC PLANT BIOLOGY | 2016年 / 16卷
关键词
Click chemistry; Arabidopsis thaliana; Cell wall; Glycans; L-Arabinofuranose; D-Glucosamine; D-Galactosamine; L-Fucose; Metabolic oligosaccharide engineering; N-LINKED GLYCANS; PROTEIN GLYCOSYLATION; ALKYNE CYCLOADDITION; CATALYTIC-PROPERTIES; CELL-WALLS; PLANTS; BIOSYNTHESIS; GROWTH; INTERCONVERSION; HYDROXYPROLINE;
D O I
10.1186/s12870-016-0907-0
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Background: Carbohydrates, also called glycans, play a crucial but not fully understood role in plant health and development. The non-template driven formation of glycans makes it impossible to image them in vivo with genetically encoded fluorescent tags and related molecular biology approaches. A solution to this problem is the use of tailor-made glycan analogs that are metabolically incorporated by the plant into its glycans. These metabolically incorporated probes can be visualized, but techniques documented so far use toxic copper-catalyzed labeling. To further expand our knowledge of plant glycobiology by direct imaging of its glycans via this method, there is need for novel click-compatible glycan analogs for plants that can be bioorthogonally labelled via copper-free techniques. Results: Arabidopsis seedlings were incubated with azido-containing monosaccharide analogs of N-acetylglucosamine, N-acetylgalactosamine, L-fucose, and L-arabinofuranose. These azido-monosaccharides were metabolically incorporated in plant cell wall glycans of Arabidopsis seedlings. Control experiments indicated active metabolic incorporation of the azido-monosaccharide analogs into glycans rather than through non-specific absorption of the glycan analogs onto the plant cell wall. Successful copper-free labeling reactions were performed, namely an inverse-electron demand Diels-Alder cycloaddition reaction using an incorporated N-acetylglucosamine analog, and a strain-promoted azide-alkyne click reaction. All evaluated azido-monosaccharide analogs were observed to be non-toxic at the used concentrations under normal growth conditions. Conclusions: Our results for the metabolic incorporation and fluorescent labeling of these azido-monosaccharide analogs expand the possibilities for studying plant glycans by direct imaging. Overall we successfully evaluated five azido-monosaccharide analogs for their ability to be metabolically incorporated in Arabidopsis roots and their imaging after fluorescent labeling. This expands the molecular toolbox for direct glycan imaging in plants, from three to eight glycan analogs, which enables more extensive future studies of spatiotemporal glycan dynamics in a wide variety of plant tissues and species. We also show, for the first time in metabolic labeling and imaging of plant glycans, the potential of two copper-free click chemistry methods that are bio-orthogonal and lead to more uniform labeling. These improved labeling methods can be generalized and extended to already existing and future click chemistry-enabled monosaccharide analogs in Arabidopsis.
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页数:11
相关论文
共 52 条
  • [1] A strain-promoted [3+2] azide-alkyne cycloaddition for covalent modification of blomolecules in living systems
    Agard, NJ
    Prescher, JA
    Bertozzi, CR
    [J]. JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2004, 126 (46) : 15046 - 15047
  • [2] Metabolic click-labeling with a fucose analog reveals pectin delivery, architecture, and dynamics in Arabidopsis cell walls
    Anderson, Charles T.
    Wallace, Ian S.
    Somerville, Chris R.
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2012, 109 (04) : 1329 - 1334
  • [3] On the frequency of protein glycosylation, as deduced from analysis of the SWISS-PROT database
    Apweiler, R
    Hermjakob, H
    Sharon, N
    [J]. BIOCHIMICA ET BIOPHYSICA ACTA-GENERAL SUBJECTS, 1999, 1473 (01): : 4 - 8
  • [4] The role of root exudates in rhizosphere interations with plants and other organisms
    Bais, Harsh P.
    Weir, Tiffany L.
    Perry, Laura G.
    Gilroy, Simon
    Vivanco, Jorge M.
    [J]. ANNUAL REVIEW OF PLANT BIOLOGY, 2006, 57 : 233 - 266
  • [5] Plant Nucleotide Sugar Formation, Interconversion, and Salvage by Sugar Recycling
    Bar-Peled, Maor
    O'Neill, Malcolm A.
    [J]. ANNUAL REVIEW OF PLANT BIOLOGY, VOL 62, 2011, 62 : 127 - 155
  • [6] BOUNDY JA, 1967, J BIOL CHEM, V242, P2410
  • [7] The biosynthesis of L-arabinose in plants:: Molecular cloning and characterization of a Golgi-localized UDP-D-xylose 4-epimerase encoded by the MUR4 gene of Arabidopsis
    Burget, EG
    Verma, R
    Molhoj, M
    Reiter, WD
    [J]. PLANT CELL, 2003, 15 (02) : 523 - 531
  • [8] STRUCTURAL MODELS OF PRIMARY-CELL WALLS IN FLOWERING PLANTS - CONSISTENCY OF MOLECULAR-STRUCTURE WITH THE PHYSICAL-PROPERTIES OF THE WALLS DURING GROWTH
    CARPITA, NC
    GIBEAUT, DM
    [J]. PLANT JOURNAL, 1993, 3 (01) : 1 - 30
  • [9] Construction of a functional CMP-sialic acid biosynthesis pathway in arabidopsis
    Castilho, Alexandra
    Pabst, Martin
    Leonard, Renaud
    Veit, Christiane
    Altmann, Friedrich
    Mach, Lukas
    Gloessl, Josef
    Strasser, Richard
    Steinkellner, Herta
    [J]. PLANT PHYSIOLOGY, 2008, 147 (01) : 331 - 339
  • [10] Chesson A, 1997, J SCI FOOD AGR, V75, P289, DOI [10.1002/(SICI)1097-0010(199711)75:3<289::AID-JSFA879>3.0.CO