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Yates, H.

Publications and source records attributed to Yates, H..

2 recordsLinked to original sources

GT61 β-1,2-xylosyltransferases define a conserved xylan modification in gymnosperm and Arabidopsis primary cell walls

Plant primary and secondary cell walls differ in molecular composition, structure, and mechanical properties. While secondary wall xylan has been extensively characterised, the structure of xylan in primary walls remains less well understood, particularly in gymnosperms. Here, we identify a previously uncharacterised {beta}-1,2-linked xylosyl side chain in conifer and Arabidopsis thaliana xylan. Using enzymatic fingerprinting, NMR, and mass spectrometry, we show that this structure is positioned two xylose residues away from glucuronic acid substitutions, forming an evenly patterned substituted xylan. This spacing pattern is consistent with xylan-cellulose interaction, suggesting a structural role in primary wall architecture. This modification, found in primary wall-rich tissues of diverse conifer species, including needles and pro-embryogenic mass (PEM), is also present in Arabidopsis callus. We demonstrate that conifer Group III GT61 glycosyltransferases introduce this modification with consistent positional specificity. In Arabidopsis, three closely related GT61 enzymes act redundantly to generate the same structure, and their combined loss results in its complete absence. These findings uncover a conserved primary wall xylan modification in seed plants and define the GT61 enzymes responsible for its biosynthesis, opening new avenues to explore how xylan structure contributes to primary wall function. Significance StatementXylan structure is well characterised in secondary walls, but its primary wall counterpart remains poorly understood. We identified a conserved {beta}-1,2-xylosyl modification on xylan in the primary walls of conifers and Arabidopsis. This side chain is positioned at a defined position from a glucuronic acid substitution and is introduced by GT61 glycosyltransferases that cluster in one phylogenetic subclade. Our findings revealed a previously unrecognised xylan structural pattern and the biosynthetic enzymes responsible for its addition. This work expands the current understanding of primary wall architecture across seed plants.

plant biology↗

A DNA condensation code for linker histones

Linker histones play an essential role in chromatin packaging by facilitating compaction of the 11-nm fibre of nucleosomal "beads on a string". The result is a heterogeneous condensed state with local properties that range from dynamic, irregular and liquid-like, to stable and regular structures (the 30-nm fibre), which in turn impact chromatin-dependent activities at a fundamental level. The properties of the condensed state depend on the type of linker histone, particularly on the highly disordered C-terminal tail, which is the most variable region of the protein, both between species, and within the various subtypes and cell-type specific variants of a given organism. We have developed an in-vitro model system comprising linker histone tail and linker DNA, which although very minimal, displays surprisingly complex behaviour, and is sufficient to model the known states of linker-histone-condensed chromatin: disordered "fuzzy" complexes ("open" chromatin), dense liquid-like assemblies (dynamic condensates) and higher-order structures (organised 30-nm fibres). A crucial advantage of such a simple model is that it allows the study of the various condensed states by NMR, CD and scattering methods. Moreover, it allows capture of the thermodynamics underpinning the transitions between states through calorimetry. We have leveraged this to rationalise the distinct condensing properties of linker histone subtypes and variants across species that are encoded by the amino acid content of their C-terminal tails. Three properties emerge as key to defining the condensed state: charge density, lysine/arginine ratio, and proline-free regions, and we evaluate each separately using a strategic mutagenesis approach.

biophysics↗