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Biological nitrogen fixation is catalyzed by the molybdenum (Mo), vanadium (V) and iron (Fe)-only nitrogenase metalloenzymes. Studies with purified enzymes have found that the 'alternative' V- and Fe-nitrogenases generally reduce N more slowly and produce more byproduct H than the Mo-nitrogenase, leading to an assumption that their usage results in slower growth. Here we show that, in the metabolically versatile photoheterotroph Rhodopseudomonas palustris, the type of carbon substrate influences the relative rates of diazotrophic growth based on different nitrogenase isoforms. The V-nitrogenase supports growth as fast as the Mo-nitrogenase on acetate but not on the more oxidized substrate succinate. Our data suggest that this is due to insufficient electron flux to the V-nitrogenase isoform on succinate compared with acetate. Despite slightly faster growth based on the V-nitrogenase on acetate, the wild-type strain uses exclusively the Mo-nitrogenase on both carbon substrates. Notably, the differences in H :N stoichiometry by alternative nitrogenases (~1.5 for V-nitrogenase, ~4-7 for Fe-nitrogenase) and Mo-nitrogenase (~1) measured here are lower than prior in vitro estimates. These results indicate that the metabolic costs of V-based nitrogen fixation could be less significant for growth than previously assumed, helping explain why alternative nitrogenase genes persist in diverse diazotroph lineages and are broadly distributed in the environment.
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http://dx.doi.org/10.1111/1462-2920.14955 | DOI Listing |
Angew Chem Int Ed Engl
September 2025
Institute of Theoretical Chemistry, Faculty of Chemistry, University of Vienna, Währinger Str. 17, Vienna, 1090, Austria.
Density functional theory (DFT) is the standard approach for modeling MIL-101(Fe) and related Fe-based metal-organic frameworks, typically assuming a ferromagnetic high-spin configuration. However, this widely adopted approach overlooks a key electronic feature: Spin frustration in the triangular -O) nodes. Using flip-spin, broken-symmetry DFT, we identify the true ground state as an antiferromagnetic state that standard DFT fails to capture.
View Article and Find Full Text PDFEnviron Res
September 2025
National Key Laboratory of Agricultural Microbiology, College of Life Science and Technology, National Engineering Research Center of Microbial Pesticides, Huazhong Agricultural University, Wuhan 430070, PR China; Hubei Hongshan Laboratory, Wuhan 430070, Hubei, China. Electronic address: cmm114@mail
Black soldier fly (BSF) organic fertilizer is known to enhance soil fertility and promote plant growth. However, its effects on soil carbon (C) and nitrogen (N) cycling remains unclear. In this study, we established a BSF chicken manure bioconversion system to produce BSF organic fertilizer and investigate its impacts on soil C and N cycling, as well as microbial ecological networks through metagenomic analysis.
View Article and Find Full Text PDFCurr Biol
September 2025
Queensland Alliance for Agriculture and Food Innovation, University of Queensland, St Lucia, QLD, Australia.
A new study shows that sucrose allocation within soybean roots by the sucrose transporter GmSWEET3c promotes rhizobial infection, nodulation, and symbiotic nitrogen fixation.
View Article and Find Full Text PDFEcotoxicol Environ Saf
September 2025
Department of Agricultural Biotechnology, College of Agriculture and Life Sciences, Seoul National University, Seoul 08826, Republic of Korea; Department of Applied Biology and Chemistry, College of Agriculture and Life Sciences, Seoul National University, Seoul 08826, Republic of Korea; Research In
This study aimed to elucidate the effects of arsenic species [As(III)/As(V)] and cadmium [Cd(II)] on nitrification and nitrogen fixation in soybean (Glycine max (L.) Merrill) cultivation, and to identify nitrogen cycle disruption mechanisms in realistic soil environments with a focus on soil-metal-plant-microbe interactions. We examined heavy metal(loid)s uptake in plant tissues, changes in nitrogen species in porewater, nitrogenase activity, the contents of essential trace metals (Mo and Fe) in nitrogenase, and nitrogen-related microbial communities.
View Article and Find Full Text PDFProc Natl Acad Sci U S A
September 2025
Florida Museum of Natural History, University of Florida, Gainesville, FL 32611.
The origin and phylogenetic distribution of symbiotic associations between nodulating angiosperms and nitrogen-fixing bacteria have long intrigued biologists. Recent comparative evolutionary analyses have yielded alternative hypotheses: a multistep pathway of independent gains and losses of root nodule symbiosis vs. a single gain followed by numerous losses.
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