-
Je něco špatně v tomto záznamu ?
ROS generation and multiple forms of mammalian mitochondrial glycerol-3-phosphate dehydrogenase
T. Mráček, E. Holzerová, Z. Drahota, N. Kovářová, M. Vrbacký, P. Ješina, J. Houštěk,
Jazyk angličtina Země Nizozemsko
Typ dokumentu časopisecké články, práce podpořená grantem
- MeSH
- ferrikyanidy metabolismus MeSH
- glycerolfosfátdehydrogenasa chemie metabolismus MeSH
- glycerolfosfáty metabolismus MeSH
- krysa rodu rattus MeSH
- mitochondrie enzymologie metabolismus MeSH
- peroxid vodíku metabolismus MeSH
- reaktivní formy kyslíku metabolismus MeSH
- savci MeSH
- sukcinátdehydrogenasa chemie metabolismus MeSH
- transport elektronů * MeSH
- ubichinon metabolismus MeSH
- zvířata MeSH
- Check Tag
- krysa rodu rattus MeSH
- zvířata MeSH
- Publikační typ
- časopisecké články MeSH
- práce podpořená grantem MeSH
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.
Citace poskytuje Crossref.org
- 000
- 00000naa a2200000 a 4500
- 001
- bmc14050817
- 003
- CZ-PrNML
- 005
- 20240314094110.0
- 007
- ta
- 008
- 140401s2014 ne f 000 0|eng||
- 009
- AR
- 024 7_
- $a 10.1016/j.bbabio.2013.08.007 $2 doi
- 035 __
- $a (PubMed)23999537
- 040 __
- $a ABA008 $b cze $d ABA008 $e AACR2
- 041 0_
- $a eng
- 044 __
- $a ne
- 100 1_
- $a Mráček, Tomáš
- 245 10
- $a ROS generation and multiple forms of mammalian mitochondrial glycerol-3-phosphate dehydrogenase / $c T. Mráček, E. Holzerová, Z. Drahota, N. Kovářová, M. Vrbacký, P. Ješina, J. Houštěk,
- 520 9_
- $a 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.
- 650 _2
- $a zvířata $7 D000818
- 650 12
- $a transport elektronů $7 D004579
- 650 _2
- $a ferrikyanidy $x metabolismus $7 D005292
- 650 _2
- $a glycerolfosfátdehydrogenasa $x chemie $x metabolismus $7 D005993
- 650 _2
- $a glycerolfosfáty $x metabolismus $7 D005994
- 650 _2
- $a peroxid vodíku $x metabolismus $7 D006861
- 650 _2
- $a savci $7 D008322
- 650 _2
- $a mitochondrie $x enzymologie $x metabolismus $7 D008928
- 650 _2
- $a krysa rodu Rattus $7 D051381
- 650 _2
- $a reaktivní formy kyslíku $x metabolismus $7 D017382
- 650 _2
- $a sukcinátdehydrogenasa $x chemie $x metabolismus $7 D013385
- 650 _2
- $a ubichinon $x metabolismus $7 D014451
- 655 _2
- $a časopisecké články $7 D016428
- 655 _2
- $a práce podpořená grantem $7 D013485
- 700 1_
- $a Holzerová, Eliška
- 700 1_
- $a Drahota, Zdeněk, $d 1932- $7 jn20000400531
- 700 1_
- $a Kovářová, Nikola
- 700 1_
- $a Vrbacký, Marek
- 700 1_
- $a Ješina, Pavel
- 700 1_
- $a Houštěk, Josef
- 773 0_
- $w MED00009314 $t Biochimica et biophysica acta $x 0006-3002 $g Roč. 1837, č. 1 (2014), s. 98-111
- 856 41
- $u https://pubmed.ncbi.nlm.nih.gov/23999537 $y Pubmed
- 910 __
- $a ABA008 $b sig $c sign $y a $z 0
- 990 __
- $a 20140401 $b ABA008
- 991 __
- $a 20240314094104 $b ABA008
- 999 __
- $a ok $b bmc $g 1017953 $s 849397
- BAS __
- $a 3
- BAS __
- $a PreBMC
- BMC __
- $a 2014 $b 1837 $c 1 $d 98-111 $i 0006-3002 $m Biochimica et biophysica acta $n Biochim Biophys Acta $x MED00009314
- LZP __
- $a Pubmed-20140401