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Synthetic algal-bacteria consortia for space-efficient microalgal growth in a simple hydrogel system

Accepted version
Peer-reviewed

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Authors

Martin, N 
Bernat, T 
Dinasquet, J 
Stofko, A 
Damon, A 

Abstract

jats:titleAbstract</jats:title>jats:pPhotosynthetic microalgae are an attractive source of food, fuel, or nutraceuticals, but commercial production of microalgae is limited by low spatial efficiency. In the present study we developed a simple photosynthetic hydrogel system that cultivates the green microalga, jats:italicMarinichlorella kaistiae</jats:italic> KAS603, together with a novel strain of the bacteria, jats:italicErythrobacter</jats:italic> sp. We tested the performance of the co-culture in the hydrogel using a combination of chlorophyll-jats:italica</jats:italic> fluorimetry, microsensing, and bio-optical measurements. Our results showed that growth rates in algal–bacterial hydrogels were about threefold enhanced compared to hydrogels with algae alone. Chlorophyll-jats:italica</jats:italic> fluorimetry–based light curves found that electron transport rates were enhanced about 20% for algal–bacterial hydrogels compared to algal hydrogels for intermediate irradiance levels. We also show that the living hydrogel is stable under different environmental conditions and when exposed to natural seawater. Our study provides a potential bio-inspired solution for problems that limit the space-efficient cultivation of microalgae for biotechnological applications.</jats:p>

Description

Keywords

Co-culture, Algae-bacteria, Hydrogel, Photosynthesis, Biopolymer, Erythrobacter, Marinichlorella, Synthetic consortia

Journal Title

Journal of Applied Phycology

Conference Name

Journal ISSN

0921-8971
1573-5176

Volume Title

33

Publisher

Springer Science and Business Media LLC

Rights

All rights reserved
Sponsorship
Biotechnology and Biological Sciences Research Council (BB/I013164/1)
Engineering and Physical Sciences Research Council (EP/J004847/1)
BBSRC (BB/T010525/1)
European Commission Horizon 2020 (H2020) ERC (101001637)
European Commission Horizon 2020 (H2020) Marie Sk?odowska-Curie actions (702911)
H2020 702911-BioMIC-FUEL ERC-2014-STG H2020 639088 EC FP7 PIOF-GA-2013-629378 Gordon & Betty Moore Foundation GBMF4827
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