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Literature summary extracted from

  • Liang, Y.; Wang, J.; Zeng, F.; Wang, Q.; Zhu, L.; Li, H.; Guo, N.; Chen, H.
    Photorespiration regulates carbon-nitrogen metabolism by magnesium chelatase D subunit in rice (2021), J. Agric. Food Chem., 69, 112-125.
    View publication on PubMed

Natural Substrates/ Products (Substrates)

EC Number Natural Substrates Organism Comment (Nat. Sub.) Natural Products Comment (Nat. Pro.) Rev. Reac.
6.6.1.1 ATP + protoporphyrin IX + Mg2+ + H2O Oryza sativa Japonica Group
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ADP + phosphate + Mg-protoporphyrin IX + 2 H+
-
?

Organism

EC Number Organism UniProt Comment Textmining
6.6.1.1 Oryza sativa Indica Group B8ANF1
-
-
6.6.1.1 Oryza sativa Japonica Group Q6ATS0
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-

Substrates and Products (Substrate)

EC Number Substrates Comment Substrates Organism Products Comment (Products) Rev. Reac.
6.6.1.1 ATP + protoporphyrin IX + Mg2+ + H2O
-
Oryza sativa Japonica Group ADP + phosphate + Mg-protoporphyrin IX + 2 H+
-
?

Synonyms

EC Number Synonyms Comment Organism
6.6.1.1 ChlD
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Oryza sativa Japonica Group
6.6.1.1 ChlD
-
Oryza sativa Indica Group
6.6.1.1 magnesium chelatase D subunit
-
Oryza sativa Japonica Group
6.6.1.1 magnesium chelatase D subunit
-
Oryza sativa Indica Group
6.6.1.1 YGL53
-
Oryza sativa Japonica Group
6.6.1.1 YGL53
-
Oryza sativa Indica Group

General Information

EC Number General Information Comment Organism
6.6.1.1 evolution CHLD is evolutionarily conserved across all lower and higher plants. A phylogenetic analysis shows that CHLD proteins from higher plants fall into two groups that are coincident with the divergence between monocots and dicots, suggesting that the evolution of CHLD is tightly correlated with adaptability during evolution Oryza sativa Japonica Group
6.6.1.1 evolution CHLD is evolutionarily conserved across all lower and higher plants. A phylogenetic analysis shows that CHLD proteins from higher plants fall into two groups that are coincident with the divergence between monocots and dicots, suggesting that the evolution of CHLD is tightly correlated with adaptability during evolution Oryza sativa Indica Group
6.6.1.1 malfunction the ygl53 mutant shows an increased net assimilation rate and electron transport flux efficiency and catalase activity, and it also has a higher photorespiration rate, lower H2O2, and reduced nitrogen uptake efficiency. However, there is no loss in yield Oryza sativa Japonica Group
6.6.1.1 malfunction the ygl53 mutant shows an increased net assimilation rate and electron transport flux efficiency and catalase activity, and it also has a higher photorespiration rate, lower H2O2, and reduced nitrogen uptake efficiency. However, there is no loss in yield Oryza sativa Indica Group