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Anu Mathew

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Open access Jul 2026

Use of translational fusions to express functional Klebsiella oxytoca dinitrogenase reductase in plant mitochondria

Engineering crop plants with the biological nitrogen fixation pathway is a longstanding goal of modern agriculture. Dinitrogenase reductase (NifH) is a critical component of the biological nitrogen fixation pathway, with multiple roles in metal cofactor assembly and catalysis. This enzyme must be folded correctly as a soluble homodimer and loaded with the [4Fe-4S] metallocluster for function. Previous studies have found that Klebsiella oxytoca (Ko) and Azotobacter vinelandii (Av) NifHs were mostly insoluble when targeted to plant mitochondria. Here we found that a translational fusion of two KoNifH or AvNifH monomers, forming KoNifHH or AvNifHH synthetic dimers, produced a soluble protein when targeted to plant mitochondria and co-expressed with the putative peptidyl-prolyl cis–trans isomerase NifM. KoNifHH isolated after expression in leaf mitochondria at ambient oxygen showed some acetylene reduction activity, which did not require co-expression of the nitrogenase-specific metallocluster machinery NifS and NifU. This activity increased after iron-sulfur cluster reconstitution in vitro with recombinant NifU. In a parallel study, we tested a translational fusion of a variant iron-only dinitrogenase reductase (AvAnfHv6) monomer that was soluble but not active as-isolated from plant mitochondria (AvAnfHHv6) (Gregg et al. 2025a). AvAnfHHv6 was abundant and fully soluble when isolated from plant mitochondria, like its monomer. AvAnfHHv6 was not active as-isolated but could be largely activated by iron-sulfur cluster reconstitution in vitro. This study demonstrates how translational fusions help improve solubility and have the potential to generate an active NifH enzyme within plant mitochondria. A translational fusion of two Klebsiella oxytoca dinitrogenase reductase monomers was soluble and functional when expressed in Nicotiana benthamiana mitochondria, demonstrating its applicability for nitrogen fixation in plants.

Shoko Okada, Xueqin Wang, Christina M. Gregg et al. · 0 citations