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March 14, 2026Carbohydrate Polymers1 citationsOpen Access

A novel xylosylated fucoglucuronan in Penium reveals structural parallels to rhamnogalacturonan-I and its broad evolutionary footprint in lower plants

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LTLi TanUniversity of GeorgiaVMVarughese MulamoottilUniversity of GeorgiaPAParastoo AzadiUniversity of Georgia

Key Points

  • To investigate the structural features of a novel polysaccharide and its evolutionary significance in plant cell walls.
  • Analyzed the polysaccharide composition in Penium margaritaceum cultures and cell walls.
  • Identified structural parallels between the discovered polysaccharide and known plant cell wall components.
  • Studied various non-vascular plants to observe the distribution of XFG and RG-I.
  • Discovered xylosylated fucoglucuronan (XFG) in Penium, showing a rhamnogalacturonan-I-like structure.
  • XFG was found co-occurring with related structures in several non-vascular plant lineages.
  • Indicated a shared evolutionary origin for XFG and its parallels with other polysaccharides.

Abstract

Green algae inhabit aquatic environments across the planet and play a crucial role in sustaining the global ecosystem. Ancestors of some Charophytes adapted to terrestrial conditions and eventually evolved into land plants. Extant green algae have inherited traits from their ancestors and evolved into their current morphological and chemical forms, as reflected by their cell walls with distinct shapes and compositions. To illuminate the evolution of plant cell walls and bridge the gap between green algae and land plants, we investigated the charophyte Penium margaritaceum , a close relative of terrestrial plants. We discovered a previously unknown polysaccharide in both its culture medium and cell wall. This polysaccharide, termed xylosylated fucoglucuronan (XFG), possesses a rhamnogalacturonan-I (RG-I)-like backbone composed of repeating -3-α-Fuc p -(1,4)-α-Glc p A- disaccharides that are extensively xylosylated and acetylated. Surveying approximately 20 non-vascular plants revealed that XFG and RG-I (or related structures) first emerge in certain Chlorophyceae and subsequently co-occur throughout lineages along the evolutionary trajectory to bryophytes, thereby bridging aquatic green algae to early land plants. The striking structural parallels between XFG, RG-I, and ulvan suggest a shared evolutionary origin, offering new insight into how plant cell walls adapted during the transition from marine to freshwater environments and ultimately to land.

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Cite This Study

Tan et al. (2026) studied this question.

synapsesocial.com/papers/69b4fb1bb39f7826a300bae0https://doi.org/10.1016/j.carbpol.2026.125199
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