Norwegian
Albanian
Arabic
Armenian
Azerbaijani
Belarusian
Bengali
Bosnian
Catalan
Czech
Danish
Deutsch
Dutch
English
Estonian
Finnish
Français
Greek
Haitian Creole
Hebrew
Hindi
Hungarian
Icelandic
Indonesian
Irish
Italian
Japanese
Korean
Latvian
Lithuanian
Macedonian
Mongolian
Norwegian
Persian
Polish
Portuguese
Romanian
Russian
Serbian
Slovak
Slovenian
Spanish
Swahili
Swedish
Turkish
Ukrainian
Vietnamese
Български
中文(简体)
中文(繁體)
Journal of Experimental Botany 2012-Apr

Two alanine aminotranferases link mitochondrial glycolate oxidation to the major photorespiratory pathway in Arabidopsis and rice.

Bare registrerte brukere kan oversette artikler
Logg inn Registrer deg
Koblingen er lagret på utklippstavlen
Markus Niessen
Katrin Krause
Ina Horst
Norma Staebler
Stephanie Klaus
Stefanie Gaertner
Rashad Kebeish
Wagner L Araujo
Alisdair R Fernie
Christoph Peterhansel

Nøkkelord

Abstrakt

The major photorespiratory pathway in higher plants is distributed over chloroplasts, mitochondria, and peroxisomes. In this pathway, glycolate oxidation takes place in peroxisomes. It was previously suggested that a mitochondrial glycolate dehydrogenase (GlcDH) that was conserved from green algae lacking leaf-type peroxisomes contributes to photorespiration in Arabidopsis thaliana. Here, the identification of two Arabidopsis mitochondrial alanine:glyoxylate aminotransferases (ALAATs) that link glycolate oxidation to glycine formation are described. By this reaction, the mitochondrial side pathway produces glycine from glyoxylate that can be used in the glycine decarboxylase (GCD) reaction of the major pathway. RNA interference (RNAi) suppression of mitochondrial ALAAT did not result in major changes in metabolite pools under standard conditions or enhanced photorespiratroy flux, respectively. However, RNAi lines showed reduced photorespiratory CO(2) release and a lower CO(2) compensation point. Mitochondria isolated from RNAi lines are incapable of converting glycolate to CO(2), whereas simultaneous overexpression of GlcDH and ALAATs in transiently transformed tobacco leaves enhances glycolate conversion. Furthermore, analyses of rice mitochondria suggest that the side pathway for glycolate oxidation and glycine formation is conserved in monocotyledoneous plants. It is concluded that the photorespiratory pathway from green algae has been functionally conserved in higher plants.

Bli med på
facebooksiden vår

Den mest komplette databasen med medisinske urter støttet av vitenskap

  • Fungerer på 55 språk
  • Urtekurer støttet av vitenskap
  • Urtegjenkjenning etter bilde
  • Interaktivt GPS-kart - merk urter på stedet (kommer snart)
  • Les vitenskapelige publikasjoner relatert til søket ditt
  • Søk medisinske urter etter deres effekter
  • Organiser dine interesser og hold deg oppdatert med nyheter, kliniske studier og patenter

Skriv inn et symptom eller en sykdom og les om urter som kan hjelpe, skriv en urt og se sykdommer og symptomer den brukes mot.
* All informasjon er basert på publisert vitenskapelig forskning

Google Play badgeApp Store badge