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Falcao, B. P.

Publications and source records attributed to Falcao, B. P..

4 recordsLinked to original sources

Cyanochelin uptake reveals an exclusively cyanobacterial class of AMIN-domain TonB-dependent transporters

Siderophore transport is central to microbial competition, because it determines access to iron, frequently a limiting nutrient. While siderophore-mediated iron uptake via TonB-dependent transporters (TBDTs) has been extensively studied in heterotrophic bacteria, little is known about the functionality and specificity of TBDTs in cyanobacteria. In the present study we functionally characterise the import system of cyanochelin B, a photolytic {beta}-hydroxy aspartate siderophore produced by several filamentous cyanobacteria, including Leptolyngbya sp. NIES-3755. We have identified a cyanochelin B putative transport cassete localized in the vicinity of the cyanochelin biosynthetic gene cluster in Leptolyngbya genome. By expressing the import genes heterologously in a model unicellular cyanobacterium Synechocystis sp. PCC 6803, we established that the transport cassette reconstitutes cyanochelin B-dependent growth, consistent with cyanochelin-mediated iron acquisition. Systematic gene dissection showed that the TBDT (CctA) and the substrate-binding protein (CctB), responsible for binding the siderophore in the periplasm, are alone sufficient for cyanochelin import into Synechocystis cells, with the permeases, ATPase and a cassette-associated ferredoxin supplied in trans by the host. CctA carries an N-terminal AMIN domain, a fusion found only in cyanobacterial TBDTs. The cassette accepts the structurally similar cyanochelin A but not cyanochelin C, enterobactin or pyoverdine, indicating limited promiscuity. The phylogenetic placement of cyanochelin receptors within a broader clade containing citrate-hydroxamate-type siderophore receptors suggests an evolutionary link between transport systems for chemically distinct cyanobacterial siderophores. Our study reports the first functional heterologous expression of a cyanobacterial TonB-dependent transporter and establishes Synechocystis as a promising platform for cyanobacterial xenosiderophore-uptake studies.

microbiology↗

Utilization of cyanobacterial siderophore cyanochelin B by phylogenetically distant heterotrophs suggest its role in mediating microbial interactions

Cyanobacteria are key prokaryotic primary producers in diverse ecosystems, yet the role of cyanobacterial siderophores in shaping their associated microbiomes remains unexplored. Our study demonstrates the benefits provided to the heterotrophic co-habitants of filamentous cyanobacteria in terrestrial microbial biofilms, focusing on the recently discovered widespread siderophores cyanochelins. To address the acceptance of cyanochelin B (CychB) across multiple bacterial classes, we first investigated its role in providing iron to a model siderophore producer P. aeruginosa PAO1 and selected Pseudomonas natural isolates, which were found to utilize CychB under iron limiting conditions while downregulating endogenous siderophore production. In response to CychB, PAO1 expresses a siderophore internalization cluster, which is localized in multiple Pseudomonas natural isolates. Using metagenome analysis, we characterized the bacterial community recruited along with CychB producing Phormidesmis cyanobacteria under long-term iron starvation. Potential CychB acceptor bacteria associated with the CychB producer were predominantly lacking endogenous siderophore machineries. Using siderophore selective pressure, we isolated a genuine CychB acceptor, gram-negative bacterium Methyloversatilis sp. S146 and demonstrated that its genome hosts an iron processing cluster overexpressed after CychB feeding, recognizing Methyloversatilis as a candidate for further mechanistic investigation of iron acquisition-driven microbial interactions. Our results indicate that CychB supports a specific subset of co-habiting heterotrophic bacteria during iron starvation, further emphasizing the role of cyanobacteria as key drivers of nutrient flows within globally important microbial soil crust ecosystems, supporting microbial life in nutrient-limited environments. These findings provide a mechanistic foundation to elucidate the role of cyanochelins as a public good in these communities.

microbiology↗

Structural and Stereochemical Elucidation of Cyanochelin C, a Siderophore Associated with Novel Class of Cyanobacterial Acyl Hydrolases

Iron is a key micronutrient that constrains microbial growth and productivity in many aquatic and terrestrial environments due to its limited bioavailability. Microorganisms evolved sophisticated acquisition strategies, including the production of siderophores, high-affinity iron-chelating molecules that facilitate iron solubilisation and uptake. Cyanobacteria, photosynthetic prokaryotes and major contributors to global primary production, also depend on iron as a cofactor to their core metabolic enzymes. However, very few cyanobacterial siderophores were described so far, and cyanobacteria remain an underxplored source of possibly novel siderophores. Here we report a novel cyanobacterial siderophore, cyanochelin C, that employs two {beta}-hydroxyaspartate residues for iron chelation. We provide extensive nuclear magnetic resonance (NMR) and mass spectrometry (MS) evidence on the molecular structure and identify the corresponding biosynthetic gene cluster (BGC). Bioinformatic analysis of the BGC further revealed the presence of an acylase CcsQ clustering with a broader cyanobacteria-specific family of acylases associated with predicted siderophore-encoding BGCs. Discovery of cyanochelin C and its deacylation by CcsQ expands the known structural diversity of cyanobacterial siderophores and improves the understanding of important enzymatic reactions.

microbiology↗

Cyanochelin B: A siderophore produced by cyanobacterium Leptolyngbya sp. NIES-3755 with photolytic properties that negate iron monopolization in the UV-light

Siderophores are low-molecular-weight compounds excreted by microorganisms to facilitate iron uptake in times of its unavailability. Microbes may produce siderophores to monopolize iron and achieve competitive exclusion of other strains. Alternatively, siderophores may be exchanged for other substrates in mutualistic relationships. Siderophores that employ {beta}-hydroxy-aspartate ({beta}-OH-Asp) for iron chelation were shown to undergo UV-mediated photolytic cleavage with simultaneous reduction of Fe3+ to Fe2+. Photolytic siderophores can mediate algal-bacterial mutualism, where the bacteria provide iron in exchange for dissolved organic carbon. We use an interdisciplinary strategy to provide a complex characterization of cyanochelin B, a photolytic {beta}-OH-Asp-containing siderophore produced by filamentous cyanobacterium Leptolyngbya sp. NIES-3755. A combination of nuclear magnetic resonance, high resolution mass spectrometry and bioinformatic analyses complemented with Marfeys and Muratas methods yielded the structure of cyanochelin B with the configuration of its stereocenters. Cyanochelin B-iron complexes exposed to UV- light photolyze within minutes (t1/2 = 8.9 min; [~]3.5 uE UV-A) and release reduced Fe2+. We have co-cultured Leptolyngbya together with Synechocystis PCC6803 as a reporter strain lacking siderophore production. The cultivation setup was based on membrane-separated compartments accommodating individual strains and employed alginate-embedded FeCl3 to simulate poorly accessible precipitated iron. Our results demonstrate that in the absence of UV-light cyanochelin B can monopolize iron in favor of Leptolyngbya. However, UV-light eliminates any monopolization of iron and makes it available to competing organisms. Finally, we report the isolation of novel cyanochelin B-producing strains of Phormidesmis from field material and discuss the phenomenon of photolytic siderophores in a broader context. ImportanceIron is an essential micronutrient that is required by all living organisms as a cofactor of indispensable enzymes. Due to its specific properties it is mostly precipitated and biologically unavailable. To facilitate iron uptake, microbes produce siderophores - low-molecular-weight compounds that bind iron. Siderophores are mediators of microbial interactions and facilitate competitive exclusion of non-compatible strains or foster mutualistic partners and cheater strains. We report a full structural elucidation of cyanochelin B, a photolytic cyanobacterial siderophore that contains {beta}-OH-Asp. Our co-culture experiments show that cyanochelin B may monopolize iron to its producer or make it accessible to other strains depending on the presence of UV light. Moreover, our data suggest that the benefits from production of photolytic siderophores are not restricted to symbiotic partners of the producer but rather available to the whole irradiated community. Of known siderophores, 17.5% contain the photoreactive {beta}-OH-Asp and can function in a similar way.

microbiology↗