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Sanchez, A. O.

Publications and source records attributed to Sanchez, A. O..

2 recordsLinked to original sources

Natural variation in NifU and NifS enhances chloroplasts compatibility for nitrogenase engineering

Reconstitution of functional nitrogenase in plants requires the coordinated expression of the [Fe-S] cluster assembly proteins NifU and NifS. However, the extent to which these proteins interact with endogenous Fe-S metabolism and affect plant physiology remains unclear. Here, we compared NifU and NifS homologs from diverse diazotrophs to identify variants compatible with the plant chloroplast environment. Selected variants of Azotobacter vinelandii, Fischerella thermalis, and Marinobacter lutimaris were characterized by transient expression in Nicotiana benthamiana and stable transformation in rice. Plant-produced NifU was largely devoid of [Fe-S] clusters when isolated but retained strong capacity for in vitro [Fe-S] cluster reconstitution and apo-NifH activation in a Ft > Av >Ml gradient, indicating correct folding and function but limited cluster loading or stability in vivo. NifU and NifS expression in transgenic rice resulted in variant-dependent proteome and phenotype effects, with A. vinelandii-expressing lines exhibiting severe defects, F. thermalis lines showing intermediate phenotype, and M. lutimaris lines being indistinguishable from wild type. These results reveal a trade-off between the biochemical activity of NifU and NifS and their compatibility with host metabolism, which must be considered for successful nitrogenase engineering in plants. HighlightNifU/NifS homolog selection determines trade-offs between [Fe-S] cluster assembly activity and plant compatibility, identifying variants that minimize physiological disruption while supporting nitrogenase cofactor assembly in chloroplasts.

plant biology↗

Metabolic commitment and nitrogen control of diazotrophy in the diazoplast-containing diatom Epithemia adnata

Earths nitrogen cycle is central to sustaining ecosystem productivity and global biogeochemical balance. Although biological N2-fixation is well characterized in prokaryotes and plant symbioses, in other eukaryotic lineages it remains poorly understood. Diatoms of the family Rhopalodiacea harbor diazoplasts, endosymbiotic spheroid bodies specialized for N2-fixation. This makes these diatoms genuine N2-fixing eukaryotes that represent a unique model for organelle evolution, parallel but distinct from haptophyte nitroplasts. Here, we report the isolation and stable cultivation of an Epithemia adnata strain, the sequencing of its diazoplast genome and its proteomic profile when growing diazotrophically in the light or darkness, or upon exposure to ammonium. Our analyses reveal that ammonium induced broad down-regulation of diazoplast proteins, particularly those linked to N2-fixation, ATP synthesis, and central carbon metabolism underscoring a general regulatory commitment toward diazotrophic metabolism tightly coupled to host carbon and nitrogen status. The pentose phosphate pathway and ferredoxin-NADP oxidoreductase appear as likely source of reductant to nitrogenase. A striking enrichment of chaperones, peroxiredoxins, bacterioferritin-like proteins, and DpsA might stabilize nitrogenase and buffer against oxidative stress during light-driven diazotrophy. Importantly, we identified a plasmid-encoded GlpF as a putative glycerol transporter, pointing to glycerol-mediated host-symbiont metabolic integration in the extant symbiosis and possibly a crucial innovation during the early evolutionary stages of its establishment. Thus, diazoplast activity is not autonomous but requires integration with host carbon and nitrogen status, establishing glycerol transport, reductant supply, stress mitigation, and nutrient-responsive regulation as pivotal mechanisms of nitrogenase activity and host integration. These findings have broad implications for biogeochemical cycling, organellogenesis, and synthetic biology strategies aimed at engineering N2-fixation in crop plants. SignificanceN2-fixing eukaryotes are increasingly recognized as abundant algae containing bacterial-derived diazotrophic endosymbionts, representing an underappreciated component of global N cycling. Diazoplasts in rhopalodiacean diatoms represent a compelling example of such endosymbionts specialized for N2-fixation. By combining genomic sequencing and proteomic analysis, we demonstrate their metabolic specialization, host integration, and regulatory commitment to diazotrophy. These findings reinforce the emerging view that diazoplasts function as organelle-like entities dedicated to N2-fixation, dependent on host-supplied carbon while contributing fixed N in return. Beyond giving evolutionary insights into organellogenesis, this work establishes a framework for translational applications, such as engineering N2-fixation into agricultural plants. Such advances could reduce reliance on synthetic fertilizers, influence biogeochemical cycles, and promote sustainable food production.

plant biology↗