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Review

Origin and Evolution of the Azolla Superorganism

1
Azolla Biosystems Ltd., Poulton-Le-Fylde FY6 8JX, UK
2
The Azolla Foundation, Blackpool FY2 9JS, UK
*
Author to whom correspondence should be addressed.
Plants 2024, 13(15), 2106; https://doi.org/10.3390/plants13152106
Submission received: 21 June 2024 / Revised: 12 July 2024 / Accepted: 24 July 2024 / Published: 29 July 2024
(This article belongs to the Special Issue Plant–Cyanobacteria Symbiosis: From Morphology to Practical Uses)

Abstract

Azolla is the only plant with a co-evolving nitrogen-fixing (diazotrophic) cyanobacterial symbiont (cyanobiont), Nostoc azollae, resulting from whole-genome duplication (WGD) 80 million years ago in Azolla’s ancestor. Additional genes from the WGD resulted in genetic, biochemical, and morphological changes in the plant that enabled the transmission of the cyanobiont to successive generations via its megaspores. The resulting permanent symbiosis and co-evolution led to the loss, downregulation, or conversion of non-essential genes to pseudogenes in the cyanobiont, changing it from a free-living organism to an obligate symbiont. The upregulation of other genes in the cyanobiont increased its atmospheric dinitrogen fixation and the provision of nitrogen-based products to the plant. As a result, Azolla can double its biomass in less than two days free-floating on fresh water and sequester large amounts of atmospheric CO2, giving it the potential to mitigate anthropogenic climate change through carbon capture and storage. Azolla’s biomass can also provide local, low-cost food, biofertiliser, feed, and biofuel that are urgently needed as our population increases by a billion every twelve years. This paper integrates data from biology, genetics, geology, and palaeontology to identify the location, timing and mechanism for the acquisition of a co-evolving diazotrophic cyanobiont by Azolla’s ancestor in the Late Cretaceous (Campanian) of North America.
Keywords: Anabaena; Azolla; climate change; cyanobacteria; evolution; genetics; Nostoc; sequestration; symbiosis Anabaena; Azolla; climate change; cyanobacteria; evolution; genetics; Nostoc; sequestration; symbiosis

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MDPI and ACS Style

Bujak, J.; Bujak, A. Origin and Evolution of the Azolla Superorganism. Plants 2024, 13, 2106. https://doi.org/10.3390/plants13152106

AMA Style

Bujak J, Bujak A. Origin and Evolution of the Azolla Superorganism. Plants. 2024; 13(15):2106. https://doi.org/10.3390/plants13152106

Chicago/Turabian Style

Bujak, Jonathan, and Alexandra Bujak. 2024. "Origin and Evolution of the Azolla Superorganism" Plants 13, no. 15: 2106. https://doi.org/10.3390/plants13152106

APA Style

Bujak, J., & Bujak, A. (2024). Origin and Evolution of the Azolla Superorganism. Plants, 13(15), 2106. https://doi.org/10.3390/plants13152106

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