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Releasing brakes on biocatalysis

11.29.23 | Ruhr-University Bochum

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How a preservative affects H 2 -forming biocatalysts

Formaldehyde is known as a preservative, among other things, but it also occurs as a natural metabolite in living cells. Twelve years ago, scientists from the University of Oxford, UK, and Ruhr University Bochum, Germany, showed that this omnipresent molecule inhibits a certain class of biocatalysts, namely the particularly efficient hydrogen-generating hydrogenases of the two-iron type – so-called [FeFe]-hydrogenases. “This was an interesting discovery, because formaldehyde could inhibit both the natural H 2 metabolism of microorganisms and isolated hydrogenases in biotechnological applications,” explains Dr Jifu Duan, first author of the study.

Molecular mechanism of formaldehyde poisoning elucidated

After various theoretical studies had hypothesized how the formaldehyde molecule might influence [FeFe]-hydrogenases, a team of researchers led by Jifu Duan and Professor Eckhard Hofmann at Ruhr University has now succeeded in elucidating the molecular mechanism experimentally. Using structures of formaldehyde-treated [FeFe]-hydrogenases obtained by protein crystallography, they were able to show that formaldehyde reacts with the so-called active center of the biocatalysts – an inorganic protein part where protons and electrons are converted to H 2 . In addition, however, formaldehyde combines with another very important protein part, which is necessary for the transport of protons to the active center by means of a sulfur-containing chemical group. When the scientists replaced this part with another, formaldehyde was hardly able to exert its inhibitory effect.

The new findings could play a role in H 2 technologies

“Future biotechnological applications of [FeFe]-hydrogenases may well involve the presence of formaldehyde, so that our modified formaldehyde-resistant biocatalysts could be used here,” explains Jifu Duan. “We also believe that our findings can be transferred to other biocatalysts.” This could play a role for bio-based industrial processes, but also for understanding metabolic pathways in living organisms.

Journal of the American Chemical Society

10.1021/jacs.3c07800

Experimental study

Cells

Insights Into the Molecular Mechanism of Formaldehyde Inhibition of [FeFe]-hydrogenases

20-Nov-2023

Keywords

Article Information

Contact Information

Meike Driessen
Ruhr-University Bochum
meike.driessen@uv.rub.de

Source

How to Cite This Article

APA:
Ruhr-University Bochum. (2023, November 29). Releasing brakes on biocatalysis. Brightsurf News. https://www.brightsurf.com/news/LPE7N2O8/releasing-brakes-on-biocatalysis.html
MLA:
"Releasing brakes on biocatalysis." Brightsurf News, Nov. 29 2023, https://www.brightsurf.com/news/LPE7N2O8/releasing-brakes-on-biocatalysis.html.