Biology

Protein modification controls key energy reactions in ancient salt-loving microbes

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Electron transportArchaeaProtein modification

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This study investigated how lysine acetylation, a protein modification, regulates electron transfer proteins in the salt-loving archaeon Haloferax volcanii. Researchers found that acetylation of the ferredoxin protein HvFdx at residue K119 enhances electron transfer capacity without affecting its iron-sulfur cluster or baseline function, while acetylation of its partner protein HvFdR occurs at multiple sites and alters its enzymatic activity and stability. The findings identify a candidate enzyme (HVO_2874) responsible for this acetylation and demonstrate that this modification serves as a regulatory mechanism for coordinating redox metabolism in archaea.


This research reveals a previously unknown regulatory mechanism in archaea, expanding our understanding of how ancient life forms control their metabolism. The findings could inform biotechnology applications involving archaeal enzymes and provide insights into metabolic regulation strategies that may have existed in early life on Earth.


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⚠️ Preprint – Noch nicht peer-reviewed

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Lysine acetylation is an evolutionarily conserved, post-translational modification that regulates metabolism and protein function, yet its role in archaeal electron transfer systems remains poorly understood. Here, we investigated lysine acetylation of the 2Fe-2S ferredoxin HvFdx (HVO_2995) and its flavin-dependent oxidoreductase HvFdR (HVO_2345) partner in the halophilic archaeon Haloferax volcanii. Genetic and biochemical analyses established HvFdx as an essential 2Fe-2S ferredoxin with a midpoint redox potential of -385 mV. Lysine acetylation of HvFdx was found to occur primarily at K119, a residue positioned near the [Fe-S] cluster interface, and to modulate electron transfer capacity without impacting Fe-S cluster incorporation, midpoint potential, or protein abundance. In contrast, HvFdR was found lysine acetylated at multiple sites in a manner consistent with a non-enzymatic mechanism that resulted in altered flavin binding, enzymatic activity, and thermal stability. Lysine acetylation of HvFdx was found to stimulate electron flow from HvFdR as measured by an anaerobic NADPH [->] HvFdR [->] HvFdx [->] DCIP assay. 3D structural modeling, proteomic, biochemical, and genetic assays suggest the haloarchaeal GNAT-family acetyltransferase homolog HVO_2874 as a candidate enzyme associated with HvFdx lysine acetylation and optimal growth of H. volcanii. Together, these findings demonstrate that lysine acetylation differentially regulates archaeal redox-active proteins and functions as an important mechanism coordinating redox metabolism in H. volcanii.

Source: Lysine acetylation-mediated regulation of ferredoxin and ferredoxin reductase redox-active proteins in Haloferax volcanii