The structural basis of malodorant skatole formation by the glycyl radical enzyme indoleacetate decarboxylase

Glycyl radical enzymes (GREs) catalyze challenging chemical reactions using a posttranslationally installed glycyl radical cofactor. One such enzyme, indoleacetate decarboxylase (IAD), performs the radical-based decarboxylation of indole-3-acetate (I3A) to form the malodorant molecule skatole. In addition to being an odor nuisance, skatole is a human and livestock lung toxin, a suspected carcinogen, and a mosquito attractant, all of which impact human health, agriculture, food production, and wastewater treatment. Here, we use cryogenic electron microscopy to solve a 2.45-Å resolution structure of IAD from the gut bacterium Olsenella uli . We observe IAD in a homotetrameric form with the substrate I3A bound in all four protomers. The positioning of I3A in the active site is unexpected and is more consistent with a Kolbe-type decarboxylation mechanism, i.e., a decarboxylation initiated by a 1-electron oxidation of the carboxylate moiety rather than being initiated by hydrogen atom transfer (HAT). Previously, a high deuterium content in skatole from IAD assays in D 2 O was used to support a HAT mechanism over a Kolbe-type mechanism. However, we show here that deuterium content does not necessarily inform on mechanism as IAD can catalyze the exchange of skatole’s 3′-methyl hydrogens postturnover. Structural comparisons show that both IAD and hydroxyphenylacetate decarboxylase display structural features that are not found in other characterized GREs, suggesting that they represent a distinct GRE-subclass. Collectively, these insights will inform IAD inhibitor design aimed at decreasing skatole production.

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Journal
Proceedings of the National Academy of Sciences
Published
2026-09-18
DOI
https://doi.org/10.1073/pnas.2618341123
Primary Topic
Metalloenzymes and iron-sulfur proteins
Type
article
Field-Weighted Citation Impact
0.00

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article

The structural basis of malodorant skatole formation by the glycyl radical enzyme indoleacetate decarboxylase

Jared C. Paris, Beverly Fu, Emily P. Balskus, Catherine L. Drennan et al.
Proceedings of the National Academy of Sciences
Metalloenzymes and iron-sulfur proteins
article

The structural basis of malodorant skatole formation by the glycyl radical enzyme indoleacetate decarboxylase

Jared C. Paris, Beverly Fu, Emily P. Balskus, Catherine L. Drennan, Lindsey R. F. Backman, Christa Imrich, Mary C. Andorfer, Abigail P. Allworth, Nina M. Greeley
article en

Abstract

Glycyl radical enzymes (GREs) catalyze challenging chemical reactions using a posttranslationally installed glycyl radical cofactor. One such enzyme, indoleacetate decarboxylase (IAD), performs the radical-based decarboxylation of indole-3-acetate (I3A) to form the malodorant molecule skatole. In addition to being an odor nuisance, skatole is a human and livestock lung toxin, a suspected carcinogen, and a mosquito attractant, all of which impact human health, agriculture, food production, and wastewater treatment. Here, we use cryogenic electron microscopy to solve a 2.45-Å resolution structure of IAD from the gut bacterium Olsenella uli . We observe IAD in a homotetrameric form with the substrate I3A bound in all four protomers. The positioning of I3A in the active site is unexpected and is more consistent with a Kolbe-type decarboxylation mechanism, i.e., a decarboxylation initiated by a 1-electron oxidation of the carboxylate moiety rather than being initiated by hydrogen atom transfer (HAT). Previously, a high deuterium content in skatole from IAD assays in D 2 O was used to support a HAT mechanism over a Kolbe-type mechanism. However, we show here that deuterium content does not necessarily inform on mechanism as IAD can catalyze the exchange of skatole’s 3′-methyl hydrogens postturnover. Structural comparisons show that both IAD and hydroxyphenylacetate decarboxylase display structural features that are not found in other characterized GREs, suggesting that they represent a distinct GRE-subclass. Collectively, these insights will inform IAD inhibitor design aimed at decreasing skatole production.

Proceedings of the National Academy of SciencesVol. 123(38)
Broad Institute (US), Howard Hughes Medical Institute (US), Harvard University (US), Massachusetts Institute of Technology (US)
National Science Foundation, Howard Hughes Medical Institute, National Institutes of Health, National Science Foundation Graduate Research Fellowship Program
Zero hunger
Openalex Percentile: Top 29%
Metalloenzymes and iron-sulfur proteins
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