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Isolation and Functional Analysis of Mitochondria from Cultured Cells and Mouse Tissue
Published on: March 23, 2015
[Isolation and characterization of an evolutionary precursor of human monoamine oxidases A and B]
T P Singer1, V L Iankovskaia, S Bernard
1Department of Biochemistry and Biophysics, University of California San Francisco 94121, USA.
Abstract:
An interesting flavoprotein-type monoamine oxidase (MAO) was recently isolated from Aspergillus niger and cloned by Schilling and Lerch (1995a,b) The properties of this MAO, as well as a substantial part of its amino acid sequence resemble those of both MAO A and B from higher animals, raising the possibility that it may be an evolutionary precursor of these mitochondrial enzymes. It differs from MAO A and B in several respect, however, including the fact that it is soluble and of peroxisomal localization and that the FAD is non-covalently attached. We have overexpressed the fungal enzyme (MAO-N) in Escherichia coli, isolated it for the first time in pure form, and, in collaboration with Dr. Elena Sablin, crystallized it. Since several of the observations of previous workers on MAO-N could not be reproduced and seem to be erroneous, we have reexamined its, substrate specificity, interaction with reversible and irreversible inhibitors and other catalytic and molecular properties. MAO-N has a considerably higher turnover number on many aliphatic and aromatic amines than either form of the mammalian enzyme. Some aspects of the substrate specificity resemble those of MAO B, while others are similar to MAO A, including biphasic kinetics in double reciprocal plots. Contrary to the report of Schilling and Lerch (1995a), however, the fungal enzyme does not oxidize serotonin, norepinephrine, dopamine or other biogenic amines. MAO-N is irreversibly inhibited by stoichiometric amounts of both (-)deprenyl and clorgyline in a mechanism-based reaction, forming flavocyanine adducts with N(5) of the FAD, like the mammalian enzymes, but inactivation is much faster with clorgyline than deprenyl, suggesting again a closer resemblance to MAO A than B. The dissociation constants for a large number of reversible competitive inhibitors have been determined for MAO-N and comparison with similar values for MAO A and B again pointed to a much greater similarity to the former than the latter. Experiments designed to change the linkage of the FAD to covalent form by site-directed mutagenesis and to dissociate.
Insights
This study reexamines fungal monoamine oxidase (MAO-N), revealing it has unique properties but shares similarities with mammalian MAO A and B enzymes. MAO-N exhibits higher turnover and distinct inhibitor interactions, suggesting evolutionary links.
Area of Science:
- Biochemistry
- Enzymology
- Molecular Evolution
Background:
- A flavoprotein-type monoamine oxidase (MAO) was isolated from Aspergillus niger.
- This fungal MAO (MAO-N) shares sequence similarities with mammalian MAO A and B, suggesting it may be an evolutionary precursor.
- MAO-N differs in solubility, peroxisomal localization, and non-covalent FAD attachment.
Purpose of the Study:
- To reexamine the properties of fungal MAO-N, as previous findings were inconsistent.
- To characterize its substrate specificity, inhibitor interactions, and catalytic properties.
- To compare MAO-N with mammalian MAO A and B to understand evolutionary relationships.
Main Methods:
- Overexpression of MAO-N in Escherichia coli and purification.
- Crystallization of MAO-N.
- Reexamination of substrate specificity, reversible and irreversible inhibitor interactions, and kinetic properties.
Main Results:
- MAO-N exhibits a higher turnover number for various amines compared to mammalian MAO.
- Substrate specificity shows overlap with both MAO A and MAO B.
- Mechanism-based inhibition by (-)deprenyl and clorgyline, with faster inactivation by clorgyline, suggests closer resemblance to MAO A.
- Dissociation constants for reversible inhibitors indicate greater similarity to MAO A.
Conclusions:
- Fungal MAO-N possesses unique characteristics but shares significant functional and structural similarities with mammalian MAO A and B.
- MAO-N's properties suggest it could be an evolutionary precursor to mitochondrial MAOs.
- Further studies, including site-directed mutagenesis, are needed to elucidate FAD linkage and dissociation mechanisms.

