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Peroxisomal catalases from the yeasts Pichia pastoris and Kluyveromyces lactis as models for oxidative damage in higher eukaryotes
- Source :
- Digital.CSIC. Repositorio Institucional del CSIC, instname
- Publication Year :
- 2019
- Publisher :
- Elsevier, 2019.
-
Abstract
- 12 p.-7 fig.-2 tab.<br />Catalases are among the main scavengers of reactive oxygen species (ROS) present in the peroxisome, thereby preventing oxidative cellular and tissular damage. In human, multiple diseases are associated with malfunction of these organelles, which causes accumulation of ROS species and consequently the inefficient detoxification of cells. Despite intense research, much remains to be clarified about the precise molecular role of catalase in cellular homeostasis. Yeast peroxisomes and their peroxisomal catalases have been used as eukaryotic models for oxidative metabolism, ROS generation and detoxification, and associated pathologies. In order to provide reliable models for oxidative metabolism research, we have determined the high-resolution crystal structures of peroxisomal catalase from two important biotechnology and basic biology yeast models, Pichia pastoris and Kluyveromyces lactis. We have performed an extensive functional, biochemical and stability characterization of both enzymes in order to establish their differential activity profiles. Furthermore, we have analyzed the role of the peroxisomal catalase under study in the survival of yeast to oxidative burst challenges combining methanol, water peroxide, and sodium chloride. Interestingly, whereas catalase activity was induced 200-fold upon challenging the methylotrophic P. pastoris cells with methanol, the increase in catalase activity in the non-methylotrophic K. lactis was only moderate. The inhibitory effect of sodium azide and β-mercaptoethanol over both catalases was analyzed, establishing IC50 values for both compounds that are consistent with an elevated resistance of both enzymes toward these inhibitors. Structural comparison of these two novel catalase structures allows us to rationalize the differential susceptibility to inhibitors and oxidative bursts. The inherent worth and validity of the P. pastoris and K. lactis yeast models for oxidative damage will be strengthened by the availability of reliable structural-functional information on these enzymes, which are central to our understanding of peroxisomal response toward oxidative stress.<br />Spanish Ministry of Economy, Industry and Competitiveness (CTQ2015-66206-C2-2-R, SAF2015-72961-EXP, RTI2018-102242-B-I00), Regional Government of Madrid (S2017/BMD-3673), and CSIC (PIE 20160E064) to M.C.V. All grants were co-funded with European Union ERDF funds (European Regional Development Fund).
- Subjects :
- 0301 basic medicine
Cellular homeostasis
Oxidative phosphorylation
medicine.disease_cause
Biochemistry
Pichia
Pichia pastoris
Kluyveromyces
03 medical and health sciences
0302 clinical medicine
Physiology (medical)
Peroxisomes
medicine
Humans
Peroxidase
X-ray crystallography
Kluyveromyces lactis
biology
Chemistry
Eukaryota
Free Radical Scavengers
Peroxisome
biology.organism_classification
Catalase
Yeast
030104 developmental biology
Oxidative stress
biology.protein
Reactive oxygen species
Structural biology
Oxidation-Reduction
030217 neurology & neurosurgery
Subjects
Details
- Language :
- English
- Database :
- OpenAIRE
- Journal :
- Digital.CSIC. Repositorio Institucional del CSIC, instname
- Accession number :
- edsair.doi.dedup.....8379e48968a26dfab2cbd74086c04929