» Articles » PMID: 32451471

Verrucomicrobia Use Hundreds of Enzymes to Digest the Algal Polysaccharide Fucoidan

Overview
Journal Nat Microbiol
Date 2020 May 27
PMID 32451471
Citations 93
Authors
Affiliations
Soon will be listed here.
Abstract

Brown algae are important players in the global carbon cycle by fixing carbon dioxide into 1 Gt of biomass annually, yet the fate of fucoidan-their major cell wall polysaccharide-remains poorly understood. Microbial degradation of fucoidans is slower than that of other polysaccharides, suggesting that fucoidans are more recalcitrant and may sequester carbon in the ocean. This may be due to the complex, branched and highly sulfated structure of fucoidans, which also varies among species of brown algae. Here, we show that 'Lentimonas' sp. CC4, belonging to the Verrucomicrobia, acquired a remarkably complex machinery for the degradation of six different fucoidans. The strain accumulated 284 putative fucoidanases, including glycoside hydrolases, sulfatases and carbohydrate esterases, which are primarily located on a 0.89-megabase pair plasmid. Proteomics reveals that these enzymes assemble into substrate-specific pathways requiring about 100 enzymes per fucoidan from different species of brown algae. These enzymes depolymerize fucoidan into fucose, which is metabolized in a proteome-costly bacterial microcompartment that spatially constrains the metabolism of the toxic intermediate lactaldehyde. Marine metagenomes and microbial genomes show that Verrucomicrobia including 'Lentimonas' are abundant and highly specialized degraders of fucoidans and other complex polysaccharides. Overall, the complexity of the pathways underscores why fucoidans are probably recalcitrant and more slowly degraded, since only highly specialized organisms can effectively degrade them in the ocean.

Citing Articles

Polysaccharide quantification using microbial enzyme cocktails.

Pontrelli S, Sauer U Biol Methods Protoc. 2025; 10(1):bpaf014.

PMID: 40046731 PMC: 11882305. DOI: 10.1093/biomethods/bpaf014.


A summer in the greater Paris: trophic status of peri-urban lakes shapes prokaryotic community structure and functional potential.

Foucault P, Halary S, Duval C, Goto M, Marie B, Hamlaoui S Environ Microbiome. 2025; 20(1):24.

PMID: 39962619 PMC: 11834611. DOI: 10.1186/s40793-025-00681-x.


Comparative metagenomics reveals the metabolic flexibility of coastal prokaryotic microbiomes contributing to lignin degradation.

Peng Q, Lin L Biotechnol Biofuels Bioprod. 2025; 18(1):9.

PMID: 39827174 PMC: 11742803. DOI: 10.1186/s13068-025-02605-w.


Identification and Characterization of a New Thermophilic κ-Carrageenan Sulfatase.

Rhein-Knudsen N, Reyes-Weiss D, Klau L, Jeudy A, Roret T, Stokke R J Agric Food Chem. 2025; 73(3):2044-2055.

PMID: 39797788 PMC: 11760155. DOI: 10.1021/acs.jafc.4c09751.


Mapping the metagenomic diversity of the multi-kingdom glacier-fed stream microbiome.

Michoud G, Peter H, Busi S, Bourquin M, Kohler T, Geers A Nat Microbiol. 2025; 10(1):217-230.

PMID: 39747693 DOI: 10.1038/s41564-024-01874-9.


References
1.
Wang M, Hu C, Barnes B, Mitchum G, Lapointe B, Montoya J . The great Atlantic belt. Science. 2019; 365(6448):83-87. DOI: 10.1126/science.aaw7912. View

2.
Field , Behrenfeld , Randerson , Falkowski . Primary production of the biosphere: integrating terrestrial and oceanic components . Science. 1998; 281(5374):237-40. DOI: 10.1126/science.281.5374.237. View

3.
Deniaud-Bouet E, Kervarec N, Michel G, Tonon T, Kloareg B, Herve C . Chemical and enzymatic fractionation of cell walls from Fucales: insights into the structure of the extracellular matrix of brown algae. Ann Bot. 2014; 114(6):1203-16. PMC: 4195554. DOI: 10.1093/aob/mcu096. View

4.
Trevathan-Tackett S, Kelleway J, Macreadie P, Beardall J, Ralph P, Bellgrove A . Comparison of marine macrophytes for their contributions to blue carbon sequestration. Ecology. 2016; 96(11):3043-57. DOI: 10.1890/15-0149.1. View

5.
Deniaud-Bouet E, Hardouin K, Potin P, Kloareg B, Herve C . A review about brown algal cell walls and fucose-containing sulfated polysaccharides: Cell wall context, biomedical properties and key research challenges. Carbohydr Polym. 2017; 175:395-408. DOI: 10.1016/j.carbpol.2017.07.082. View