Affiliation:
1. Université du Québec à Montréal
2. National High Field Laboratory
3. University of Georgia
4. Michigan State University
5. CNRS UMR 7203
Abstract
Abstract
Microalgae are a renewable and promising biomass for large-scale biofuel, food and nutrient production. However, their efficient exploitation depends on our knowledge of the cell wall composition and organization as it can limit access to high-value molecules. Here we provide an atomic-level model of the non-crystalline and insoluble glycoprotein-rich cell wall of Chlamydomonas reinhardtii. Using in situ solid-state and sensitivity-enhanced nuclear magnetic resonance, we reveal unprecedented details on the protein and carbohydrate composition and their nanoscale heterogeneity, as well as the presence of spatially segregated protein- and glycan-rich regions with different dynamics and hydration levels. We show that mannose-rich lower-molecular-weight proteins contribute to the cell wall cohesion by crosslinking high-molecular weight protein components, and that water provides plasticity to the cell-wall architecture. The methodology used here is transposable to study other microorganisms and plant materials – including those rich in cellulose – and their responses to contaminants and stresses.
Publisher
Research Square Platform LLC