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Robert R. Selvendran

Other affiliations: Norwich University
Bio: Robert R. Selvendran is an academic researcher from Norwich Research Park. The author has contributed to research in topics: Polysaccharide & Cell wall. The author has an hindex of 37, co-authored 70 publications receiving 5353 citations. Previous affiliations of Robert R. Selvendran include Norwich University.


Papers
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Journal ArticleDOI
TL;DR: A revised system of abbreviated names is proposed for xyloglucan-derived oligosaccharides, where each (1→4)-linked β-D-glucosyl residue (and the reducing terminal n- glucose moiety) of the backbone is given a one-letter code according to its substituents.
Abstract: A revised system of abbreviated names is proposed for xyloglucan-derived oligosaccharides. Each (1→4)-linked β-D-glucosyl residue (and the reducing terminal n-glucose moiety) of the backbone is given a one-letter code according to its substituents. The name of the oligosaccharide consists of these code letters listed in sequence from non-reducing to reducing terminus of the backbone

554 citations

Journal ArticleDOI
TL;DR: In this article, a comparison of the methylation of cellobiitol by the Hakomori method (using potassium methyl-sulfinylmethanide -potassium dimsyl) and by a published or a modified sodium hydroxide-mediated procedure is described.

452 citations

Journal ArticleDOI
TL;DR: The recommended method offers a consolidation of the recent modifications of the alditol acetate procedure for the estimation of neutral sugars and is applicable only to highly purified fiber preparations which are free of coprecipitated intracellular compounds.

402 citations

Journal ArticleDOI
TL;DR: The tetrasaccharide repeating unit 1, excluding acetyl groups, is proposed in this paper, and the purified oligosaccharides were analyzed and characterised as their methylated alditol derivatives by e.g. fast-atom-bombardment (f.i.-m.s. and c.a.b.s.).

282 citations


Cited by
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Journal ArticleDOI
TL;DR: This review integrates information on the chemical structure of individual polymers with data obtained from new techniques used to probe the arrangement of the polymers within the walls of individual cells consistent with the physical properties of the wall and its components.
Abstract: Advances in determination of polymer structure and in preservation of structure for electron microscopy provide the best view to date of how polysaccharides and structural proteins are organized into plant cell walls. The walls that form and partition dividing cells are modified chemically and structurally from the walls expanding to provide a cell with its functional form. In grasses, the chemical structure of the wall differs from that of all other flowering plant species that have been examined. Nevertheless, both types of wall must conform to the same physical laws. Cell expansion occurs via strictly regulated reorientation of each of the wall's components that first permits the wall to stretch in specific directions and then lock into final shape. This review integrates information on the chemical structure of individual polymers with data obtained from new techniques used to probe the arrangement of the polymers within the walls of individual cells. We provide structural models of two distinct types of walls in flowering plants consistent with the physical properties of the wall and its components.

3,417 citations

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TL;DR: Evidence is emerging that beneficial root-inhabiting microbes also hijack the hormone-regulated immune signaling network to establish a prolonged mutualistic association, highlighting the central role of plant hormones in the regulation of plant growth and survival.
Abstract: Plant hormones have pivotal roles in the regulation of plant growth, development, and reproduction. Additionally, they emerged as cellular signal molecules with key functions in the regulation of immune responses to microbial pathogens, insect herbivores, and beneficial microbes. Their signaling pathways are interconnected in a complex network, which provides plants with an enormous regulatory potential to rapidly adapt to their biotic environment and to utilize their limited resources for growth and survival in a cost-efficient manner. Plants activate their immune system to counteract attack by pathogens or herbivorous insects. Intriguingly, successful plant enemies evolved ingenious mechanisms to rewire the plant’s hormone signaling circuitry to suppress or evade host immunity. Evidence is emerging that beneficial root-inhabiting microbes also hijack the hormone-regulated immune signaling network to establish a prolonged mutualistic association, highlighting the central role of plant hormones in the regulation of plant growth and survival.

2,132 citations

Journal ArticleDOI
TL;DR: Recent advances in plant immunity research have provided exciting new insights into the underlying defense signaling network, and diverse small-molecule hormones play pivotal roles in the regulation of this network.
Abstract: Plants live in complex environments in which they intimately interact with a broad range of microbial pathogens with different lifestyles and infection strategies. The evolutionary arms race between plants and their attackers provided plants with a highly sophisticated defense system that, like the animal innate immune system, recognizes pathogen molecules and responds by activating specific defenses that are directed against the invader. Recent advances in plant immunity research have provided exciting new insights into the underlying defense signaling network. Diverse small-molecule hormones play pivotal roles in the regulation of this network. Their signaling pathways cross-communicate in an antagonistic or synergistic manner, providing the plant with a powerful capacity to finely regulate its immune response. Pathogens, on the other hand, can manipulate the plant's defense signaling network for their own benefit by affecting phytohormone homeostasis to antagonize the host immune response.

2,019 citations

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TL;DR: In this paper, a simple and rapid method for the preparation of alditol acetates from monosaccharides is described, which can be performed in a single tube without transfers or evaporations.

1,880 citations

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TL;DR: The view of critical questions regarding pectin structure, biosynthesis, and function that need to be addressed in the coming decade are presented and new methods that may be useful to study localized pectins in the plant cell wall are described.

1,795 citations