Molecular-Level Architecture of Chlamydomonas reinhardtii’s Glycoprotein-Rich Cell Wall

Author:

Poulhazan Alexandre1,Arnold Alexandre1,Mentink-Vigier Frederic2ORCID,Muszyński Artur3ORCID,Azadi Parastoo3,Wang Tuo4ORCID,Warschawski Dror5ORCID,Marcotte Isabelle1

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

Reference78 articles.

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4. Molina, A. et al. Arabidopsis cell wall composition determines disease resistance specificity and fitness. Proc. Nat. Acad. Sci. 118, e2010243118 (2021).

5. Production of therapeutic proteins in algae, analysis of expression of seven human proteins in the chloroplast of Chlamydomonas reinhardtii;Rasala BA;Plant Biotechnol. J.,2010

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