Revisiting catalytic His and Glu residues in coproporphyrin ferrochelatase – unexpected activities of active site variants

Author:

Gabler Thomas1,Dali Andrea2,Bellei Marzia3,Sebastiani Federico2,Becucci Maurizio2,Battistuzzi Gianantonio4ORCID,Furtmüller Paul Georg1ORCID,Smulevich Giulietta25ORCID,Hofbauer Stefan1ORCID

Affiliation:

1. Department of Chemistry, Institute of Biochemistry University of Natural Resources and Life Sciences Vienna Austria

2. Department of Chemistry “Ugo Schiff” (DICUS) University of Florence Sesto Fiorentino Italy

3. Department of Life Sciences University of Modena and Reggio Emilia Italy

4. Department of Chemical and Geological Sciences University of Modena and Reggio Emilia Modena Italy

5. INSTM Research Unit of Firenze Sesto Fiorentino Italy

Abstract

The identification of the coproporphyrin‐dependent heme biosynthetic pathway, which is used almost exclusively by monoderm bacteria in 2015 by Dailey et al. triggered studies aimed at investigating the enzymes involved in this pathway that were originally assigned to the protoporphyrin‐dependent heme biosynthetic pathway. Here, we revisit the active site of coproporphyrin ferrochelatase by a biophysical and biochemical investigation using the physiological substrate coproporphyrin III, which in contrast to the previously used substrate protoporphyrin IX has four propionate substituents and no vinyl groups. In particular, we have compared the reactivity of wild‐type coproporphyrin ferrochelatase from the firmicute Listeria monocytogenes with those of variants, namely, His182Ala (H182A) and Glu263Gln (E263Q), involving two key active site residues. Interestingly, both variants are active only toward the physiological substrate coproporphyrin III but inactive toward protoporphyrin IX. In addition, E263 exchange impairs the final oxidation step from ferrous coproheme to ferric coproheme. The characteristics of the active site in the context of the residues involved and the substrate binding properties are discussed here using structural and functional means, providing a further contribution to the deciphering of this enigmatic reaction mechanism.

Funder

Austrian Science Fund

Fondazione Cassa di Risparmio di Firenze

Publisher

Wiley

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