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Sarasa-Buisan, C.

Publications and source records attributed to Sarasa-Buisan, C..

2 recordsLinked to original sources

Genetic access to an obligate cyanobacterial endosymbiont within the shoot meristem of fern hosts

Eukaryote-associated microbes are ubiquitous, but their essential roles in the development and ecology of their host is yet to be fully understood, partly because complex associations cannot be reconstituted and, in many instances, the genetic tools to elucidate those roles are not available. Here, we report the conjugative transfer of DNA into Nostoc azollae within two Azolla fern hosts. N. azollae is a filamentous, N2-fixing, heterocyst-forming cyanobacterium which is an obligate endosymbiont of the complex microbial community associated with the floating ferns of the genus Azolla. The cyanobiont provides fixed nitrogen to its host, supporting maximum growth rates without any N-fertilizer and making Azolla symbioses both ecologically and agriculturally important. Triparental mating protocols and fluorescent reporter detection were optimized for the cyanobiont isolated from the fern, allowing further demonstration of heterologous gene expression in N. azollae driven by several promoters, including some of a CRISPR-associated transposon (CAST) system. Azolla was then treated with a cytokinin hormone to render fern shoot apices amenable to in planta conjugation, permitting DNA transfer to, and stable gene expression in two distinct developmental stages of N. azollae within Azolla. These included (i) cells of filaments from the Shoot Apical Nostoc colony, the only cyanobacterial stem-cell population vertically transmitted across fern generations, and (ii) cells from differentiated filaments in early formed Azolla leaf cavities. Our approach represents a technically groundbreaking advance for the genetic engineering of cyanobacterial endosymbioses that may be useful for other symbiotic systems, opening a pathway to investigate these important biological entities.

microbiology↗

Intercellular communication in the fern endosymbiotic cyanobacterium Nostoc azollae

The water fern Azolla spp. harbors as an endobiont the N2-fixing, filamentous, heterocyst-forming cyanobacterium Nostoc azollae. N. azollae provide the fern with fixed nitrogen permitting its growth in nitrogen-poor environments. In the filaments of heterocyst-forming cyanobacteria, an intercellular exchange of regulators and metabolites occur in which heterocysts provide vegetative cells with fixed nitrogen and vegetative cells provide heterocysts with reduced carbon. Intercellular molecular exchange takes place by diffusion through septal junctions and can be probed by fluorescence recovery after photobleaching (FRAP) analysis with fluorescent markers such as calcein and 5-carboxyfluorescein. The septal junctions traverse the septal peptidoglycan through nanopores that can be visualized in isolated septal peptidoglycan disks by electron microscopy. Here we obtained N. azollae material from Azolla plants, which contains the symbiotic cyanobacterium in a viable state and with different morphologies, including heterocyst-containing filaments. FRAP analysis showed effective transfer of the fluorescent markers between vegetative cells as well as from vegetative cells to heterocysts. Interestingly, communicating and noncommunicating vegetative cells and heterocysts could be distinguished showing conservation in the endobiont of a regulatory mechanism capable of opening and closing septal junctions. Peptidoglycan sacculi were also isolated and showed septal disks with arrays of nanopores that conform to those visualized in other heterocyst-forming cyanobacteria. However, a wider range of septal disk size was observed in N. azollae. In spite of its eroded genome, N. azollae maintains the intercellular communication system that is key for its growth as a multicellular organism. ImportanceThe water fern Azolla constitutes a unique symbiotic system in which cyanobacterial endobionts capable of fixation of atmospheric nitrogen provide the plant with the nitrogen needed for growth. This symbiosis is an important fertilizer for rice crops worldwide, thereby reducing the reliance on fossil fuel-derived nitrogen fertilizers. The symbiotic cyanobacterium, Nostoc azollae, is a heterocyst-forming strain in which a filament of cells is the organismic unit of growth. Here we show that the intercellular molecular exchange function necessary for the multicellular behavior of the organism is conserved in the endobiotic Nostoc azollae.

microbiology↗