bioRxiv Science⌕ Search

Biology subjects

Versantvoort, W.

Publications and source records attributed to Versantvoort, W..

5 recordsLinked to original sources

An Unprecedented Cluster in a Methanotroph Acetol Dehydrogenase

Biocatalytic metal-containing clusters are nanometer-sized chemical reactors that enable enzymes to perform chemistry far beyond what would be possible with amino acids alone 1,2. These clusters display a remarkable variability3 and elucidating their exact mechanisms is often difficult to determine, requiring input from a multitude of techniques ranging from spectroscopic to structural and theoretical methods. Thus, for unknown clusters, it is essential to accumulate, collate, and interpret as much information as possible from every relevant technique available. Here we report the discovery and in-depth, interdisciplinary characterization of an entirely novel, [Cu-4Fe-4S] cluster in the protein acetol dehydrogenase (AceDH). AceDH, isolated directly from Methylacidiphilum fumariolicum SolV cells, catalyzed the oxidation of acetol to methylglyoxal, proving its role in the 2-propanol/acetone metabolism of methanotrophs4-6. Structural, spectroscopic and electrochemical analyses reveal the [Cu-4Fe-4S] cluster has a unique three-dimensional- and electronic structure involving electronic coupling between the copper and one of the iron atoms, likely contributing to its high, +275 mV, redox potential. The binding site for the novel cluster is composed of two protein subunits and involves a novel motif. These findings expand the known repertoire of biological metal cofactors and provide insight into how heterometallic clusters are adapted for biological processes.

biochemistry↗

The molecular mechanism and activity of Kuenenia stuttgartiensis hydrazine synthase

Anaerobic ammonium-oxidizing (anammox) bacteria convert ammonium and nitrite into dinitrogen gas via the intermediates nitric oxide and hydrazine. To produce hydrazine, anammox bacteria harbor a biochemically unique enzyme: hydrazine synthase. Based on the hydrazine synthase crystal structure it was hypothesized that hydrazine is produced in a two-step mechanism. In this hypothesis, nitric oxide is first reduced to hydroxylamine (first half-reaction), followed by condensation of hydroxylamine with ammonium to hydrazine (second half-reaction). Here, we experimentally investigated the proposed molecular mechanism of hydrazine synthase and characterized and optimized the in vitro activity. First, we optimized the activity of isolated hydrazine synthase from anammox bacterium Kuenenia stuttgartiensis strain MBR1 via an anaerobic isolation method. We further compared hydrazine synthase activity measured via a coupled assay versus that of a newly established direct LC-MS assay. Next, the hypothesized second half-reaction was investigated via the direct LC-MS assay, quantifying biologically produced hydrazine from hydroxylamine and ammonium. Despite variation in hydrazine synthase activity across assays, we determined ammonium and hydroxylamine affinity and investigated product inhibition. Finally, we found that hydrazine synthesis from ammonium and hydroxylamine by isolated hydrazine synthase is oxygen-tolerant, strongly suggesting that the second half-reaction is initiated on an oxidized heme within hydrazine synthase. Taken together, the results corroborate that condensation of ammonium with hydroxylamine to form hydrazine is the second half-reaction of the proposed two-step mechanism for hydrazine synthesis by hydrazine synthase.

microbiology↗

Nitric oxide-forming nitrite reductases in the anaerobic ammonium oxidizer Kuenenia stuttgartiensis

Anaerobic ammonium-oxidizing (anammox) bacteria contribute to the global nitrogen cycle by removing fixed nitrogen from the environment. They do so via the anaerobic oxidation of ammonium to dinitrogen gas, with nitrite as terminal electron acceptor. The first step in this so-called anammox reaction is the conversion of nitrite to nitric oxide by nitrite reductase. Next, nitric oxide is combined with ammonium to form hydrazine by hydrazine synthase, after which hydrazine is oxidized to dinitrogen gas by hydrazine dehydrogenase. In contrast to the other catabolic anammox enzymes, different anammox species encode different potential nitrite reductase enzymes. On top of that, there is a redundancy in genes encoding for nitrite reductase in single anammox species. The unusual diversity and redundancy in anammox nitrite reductases is unexplained. The genome of the model anammox species "Candidatus Kuenenia stuttgartiensis" encodes for three putative nitrite reductases. Here, we investigated which of these nitrite reductases is or are active in K. stuttgartiensis. Active nitric oxide-producing nitrite reductases were enriched from K. stuttgartiensis cells via fast protein liquid chromatography. Nitric oxide production by the enriched nitrite reductases was followed with membrane inlet mass spectrometry. Combining the activity assays with proteomics analysis indicated that the soluble nitrite reductases NirS and HAOr most strongly correlated with enzyme activity. This indicates that K. stuttgartiensis employs two distinct nitrite reductases to keep its nitric oxide pool replenished.

microbiology↗

Spectroscopic insights into the mechanism of anammox hydrazine synthase

Anaerobic ammonium oxidizing bacteria make a living oxidizing ammonium with nitrite as electron acceptor, intermediates nitric oxide and hydrazine, and end product dinitrogen gas. Hydrazine is a biologically unique free intermediate in this metabolism, and is produced by the enzyme hydrazine synthase. Crystallization of Candidatus Kuenenia stuttgartiensis hydrazine synthase allowed for an initial hypothesis of its reaction mechanism. In this hypothesis, nitric oxide is first reduced to hydroxylamine after which hydroxylamine is condensed with ammonium to form hydrazine. Hydrazine synthase is a tetraheme cytochrome c, containing two proposed active site hemes ({gamma}I & I) in the {gamma}- and -subunit, respectively, connected by an intra-enzymatic tunnel. Here we combined the data from electrochemistry-induced Fourier transform infrared (FTIR) spectroscopy, EPR and optical spectroscopy to shed light on the redox properties and protein dynamics of hydrazine synthase in the context of its reaction mechanism. Redox titrations revealed two low potential low spin hemes with midpoint potentials of [~]-360 mV and [~]-310 mV for heme II and {gamma}II, respectively. Heme {gamma}I showed redox transitions in the range of 0 mV, consisting of both low spin and high spin characteristics in optical and EPR spectroscopy. Electrochemistry-induced FTIR spectroscopy indicated an aspartic acid ligating a OH-/H2O at the heme {gamma}I axial site as a possible candidate for involvement in this mixed spin characteristic. Furthermore, EPR spectroscopy confirmed the ability of heme {gamma}I to bind NO in the reduced state. Heme I exhibited a rhombic high spin signal, in line with its ligation by a proximal tyrosine observed in the crystal structure. Redox titrations down to -610 mV nor addition of dithionite resulted in the reduction of heme I, indicating a very low midpoint potential for this heme. In vivo chemistry at this heme I, the candidate for the comproportionation of hydroxylamine and ammonium, is thus likely to be initiated solely on the oxidized heme, in contrast to previously reported DFT calculations. The reduction potentials of the {gamma}-subunit hemes were in line with the proposed electron transfer of heme {gamma}II to heme {gamma}I for the reduction of NO to hydroxylamine (E0 = - 30 mV).

biochemistry↗

Methanotrophs are vigorous H2S oxidizers using a sulfide:quinone oxidoreductase and a ba3-type terminal oxidase

Hydrogen sulfide (H2S) is produced in a wide range of anoxic environments where sulfate (SO42-) reduction is coupled to decomposition of organic matter. In the same environments, methane (CH4) is the end product of an anaerobic food chain and both H2S and CH4 diffuse upwards into oxic zones where aerobic microorganisms can utilize these gases. Methane-oxidizing bacteria are known to oxidize a major part of the produced CH4 in these ecosystems, mitigating the emissions of this potent greenhouse gas to the atmosphere. However, how methanotrophy is affected by toxic H2S is largely unexplored. Here, we show that a single microorganism can oxidize CH4 and H2S simultaneously. By oxidizing H2S, the thermoacidophilic methanotroph Methylacidiphilum fumariolicum SolV can alleviate the inhibitory effects on CH4 oxidation. In response to H2S, strain SolV upregulated a type III sulfide:quinone oxidoreductase (SQR) and a sulfide-insensitive ba3-type terminal oxidase to dissipate the reducing equivalents derived from H2S oxidation. Through extensive chemostat cultivation of M. fumariolicum SolV we demonstrate that it converts high loads of H2S to elemental sulfur (S0). Moreover, we show chemolithoautotrophy by tracing 13CO2 fixation into new biomass by using H2S as sole energy source. Molecular surveys revealed several putative SQR sequences in a range of proteobacterial methanotrophs from various environments, suggesting that H2S detoxification is much more widespread in methanotrophs than previously assumed, enabling them to connect carbon and sulfur cycles in new ways.

microbiology↗