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Dive into the research topics where Nikola Kovářová is active.

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Featured researches published by Nikola Kovářová.


Biochimica et Biophysica Acta | 2012

Adaptation of respiratory chain biogenesis to cytochrome c oxidase deficiency caused by SURF1 gene mutations.

Nikola Kovářová; Alena Čížková Vrbacká; Petr Pecina; Viktor Stránecký; Ewa Pronicka; Stanislav Kmoch; Josef Houštěk

The loss of Surf1 protein leads to a severe COX deficiency manifested as a fatal neurodegenerative disorder, the Leigh syndrome (LS(COX)). Surf1 appears to be involved in the early step of COX assembly but its function remains unknown. The aim of the study was to find out how SURF1 gene mutations influence expression of OXPHOS and other pro-mitochondrial genes and to further characterize the altered COX assembly. Analysis of fibroblast cell lines from 9 patients with SURF1 mutations revealed a 70% decrease of the COX complex content to be associated with 32-54% upregulation of respiratory chain complexes I, III and V and accumulation of Cox5a subunit. Whole genome expression profiling showed a general decrease of transcriptional activity in LS(COX) cells and indicated that the adaptive changes in OXPHOS complexes are due to a posttranscriptional compensatory mechanism. Electrophoretic and WB analysis showed that in mitochondria of LS(COX) cells compared to controls, the assembled COX is present entirely in a supercomplex form, as I-III₂-IV supercomplex but not as larger supercomplexes. The lack of COX also caused an accumulation of I-III₂ supercomplex. The accumulated Cox5a was mainly present as a free subunit. We have found out that the major COX assembly subcomplexes accumulated due to SURF1 mutations range in size between approximately 85-140kDa. In addition to the originally proposed S2 intermediate they might also represent Cox1-containing complexes lacking other COX subunits. Unlike the assembled COX, subcomplexes are unable to associate with complexes I and III.


Biochimica et Biophysica Acta | 2014

ROS generation and multiple forms of mammalian mitochondrial glycerol-3-phosphate dehydrogenase

Tomáš Mráček; Eliška Holzerová; Zdeněk Drahota; Nikola Kovářová; Marek Vrbacký; Pavel Ješina; Josef Houštěk

Overproduction of reactive oxygen species (ROS) has been implicated in a range of pathologies. Mitochondrial flavin dehydrogenases glycerol-3-phosphate dehydrogenase (mGPDH) and succinate dehydrogenase (SDH) represent important ROS source, but the mechanism of electron leak is still poorly understood. To investigate the ROS production by the isolated dehydrogenases, we used brown adipose tissue mitochondria solubilized by digitonin as a model. Enzyme activity measurements and hydrogen peroxide production studies by Amplex Red fluorescence, and luminol luminescence in combination with oxygraphy revealed flavin as the most likely source of electron leak in SDH under in vivo conditions, while we propose coenzyme Q as the site of ROS production in the case of mGPDH. Distinct mechanism of ROS production by the two dehydrogenases is also apparent from induction of ROS generation by ferricyanide which is unique for mGPDH. Furthermore, using native electrophoretic systems, we demonstrated that mGPDH associates into homooligomers as well as high molecular weight supercomplexes, which represent native forms of mGPDH in the membrane. By this approach, we also directly demonstrated that isolated mGPDH itself as well as its supramolecular assemblies are all capable of ROS production.


Biochimica et Biophysica Acta | 2016

Tissue- and species-specific differences in cytochrome c oxidase assembly induced by SURF1 defects

Nikola Kovářová; Petr Pecina; Hana Nůsková; Marek Vrbacký; Massimo Zeviani; Tomáš Mráček; Carlo Viscomi; Josef Houštěk

Mitochondrial protein SURF1 is a specific assembly factor of cytochrome c oxidase (COX), but its function is poorly understood. SURF1 gene mutations cause a severe COX deficiency manifesting as the Leigh syndrome in humans, whereas in mice SURF1−/− knockout leads only to a mild COX defect. We used SURF1−/− mouse model for detailed analysis of disturbed COX assembly and COX ability to incorporate into respiratory supercomplexes (SCs) in different tissues and fibroblasts. Furthermore, we compared fibroblasts from SURF1−/− mouse and SURF1 patients to reveal interspecies differences in kinetics of COX biogenesis using 2D electrophoresis, immunodetection, arrest of mitochondrial proteosynthesis and pulse-chase metabolic labeling. The crucial differences observed are an accumulation of abundant COX1 assembly intermediates, low content of COX monomer and preferential recruitment of COX into I–III2–IVn SCs in SURF1 patient fibroblasts, whereas SURF1−/− mouse fibroblasts were characterized by low content of COX1 assembly intermediates and milder decrease in COX monomer, which appeared more stable. This pattern was even less pronounced in SURF1−/− mouse liver and brain. Both the control and SURF1−/− mice revealed only negligible formation of the I–III2–IVn SCs and marked tissue differences in the contents of COX dimer and III2–IV SCs, also less noticeable in liver and brain than in heart and muscle. Our studies support the view that COX assembly is much more dependent on SURF1 in humans than in mice. We also demonstrate markedly lower ability of mouse COX to form I–III2–IVn supercomplexes, pointing to tissue-specific and species-specific differences in COX biogenesis.


PLOS ONE | 2013

High Molecular Weight Forms of Mammalian Respiratory Chain Complex II

Nikola Kovářová; Tomáš Mráček; Hana Nůsková; Eliška Holzerová; Marek Vrbacký; Petr Pecina; Kateřina Hejzlarová; Katarína Kľučková; Jakub Rohlena; Jiri Neuzil; Josef Houštěk

Mitochondrial respiratory chain is organised into supramolecular structures that can be preserved in mild detergent solubilisates and resolved by native electrophoretic systems. Supercomplexes of respiratory complexes I, III and IV as well as multimeric forms of ATP synthase are well established. However, the involvement of complex II, linking respiratory chain with tricarboxylic acid cycle, in mitochondrial supercomplexes is questionable. Here we show that digitonin-solubilised complex II quantitatively forms high molecular weight structures (CIIhmw) that can be resolved by clear native electrophoresis. CIIhmw structures are enzymatically active and differ in electrophoretic mobility between tissues (500 – over 1000 kDa) and cultured cells (400–670 kDa). While their formation is unaffected by isolated defects in other respiratory chain complexes, they are destabilised in mtDNA-depleted, rho0 cells. Molecular interactions responsible for the assembly of CIIhmw are rather weak with the complexes being more stable in tissues than in cultured cells. While electrophoretic studies and immunoprecipitation experiments of CIIhmw do not indicate specific interactions with the respiratory chain complexes I, III or IV or enzymes of the tricarboxylic acid cycle, they point out to a specific interaction between CII and ATP synthase.


Data in Brief | 2016

Data on cytochrome c oxidase assembly in mice and human fibroblasts or tissues induced by SURF1 defect

Nikola Kovářová; Petr Pecina; Hana Nůsková; Marek Vrbacký; Massimo Zeviani; Tomáš Mráček; Carlo Viscomi; Josef Houštěk

This paper describes data related to a research article entitled “Tissue- and species-specific differences in cytochrome c oxidase assembly induced by SURF1 defects” [1]. This paper includes data of the quantitative analysis of individual forms of respiratory chain complexes I, III and IV present in SURF1 knockout (SURF1−/−) and control (SURF1+/+) mouse fibroblasts and tissues and in fibroblasts of human control and patients with SURF1 gene mutation. Also it includes data demonstrating response of complex IV, cytochrome c oxidase (COX), to reversible inhibition of mitochondrial translation in SURF1−/− mouse and SURF1 patient fibroblast cell lines.


Biochemical and Biophysical Research Communications | 2015

Mitochondrial ATP synthasome: Expression and structural interaction of its components

Hana Nůsková; Tomáš Mráček; Tereza Mikulová; Marek Vrbacký; Nikola Kovářová; Jana Kovalčíková; Petr Pecina; Josef Houštěk


Biochemical Journal | 2015

Alteration of structure and function of ATP synthase and cytochrome c oxidase by lack of Fo-a and Cox3 subunits caused by mitochondrial DNA 9205delTA mutation.

Kateřina Hejzlarová; Vilma Kaplanová; Hana Nůsková; Nikola Kovářová; Pavel Ješina; Zdeněk Drahota; Tomáš Mráček; Sara Seneca; Josef Houštěk


Biochimica et Biophysica Acta | 2012

Reactive oxygen species production by flavin dehydrogenases of the mitochondrial respiratory chain

Tomáš Mráček; Eliška Holzerová; Nikola Kovářová; Pavel Ješina; Zdeněk Drahota; Josef Houštěk


Journal of World Mitochondria Society | 2015

α-TOCOPHERYL SUCCINATE AND BIGUANIDES INHIBIT MITOCHONDRIAL GLYCEROL-3-PHOSPHATE DEHYDROGENASE ACTIVITY BUT DIFFER IN THEIR EFFECT ON ROS PRODUCTION

Zdeněk Drahota; Nikola Kovářová; Hana Rauchová; Martina Vokurková; Tomáš Mráček


Biochimica et Biophysica Acta | 2014

High molecular weight forms of mammalian respiratory chain complex II

Nikola Kovářová; Tomáš Mráček; Josef Houstek; Hana Nůsková

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Josef Houštěk

Academy of Sciences of the Czech Republic

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Tomáš Mráček

Academy of Sciences of the Czech Republic

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Hana Nůsková

Academy of Sciences of the Czech Republic

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Marek Vrbacký

Academy of Sciences of the Czech Republic

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Petr Pecina

Wayne State University

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Zdeněk Drahota

Czechoslovak Academy of Sciences

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Eliška Holzerová

Academy of Sciences of the Czech Republic

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Pavel Ješina

Academy of Sciences of the Czech Republic

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Kateřina Hejzlarová

Academy of Sciences of the Czech Republic

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Ewa Pronicka

Memorial Hospital of South Bend

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