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Molecular Pharmacology

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Research ArticleArticle

Salicylic Acid Induces Mitochondrial Injury by Inhibiting Ferrochelatase Heme Biosynthesis Activity

Vipul Gupta, Shujie Liu, Hideki Ando, Ryohei Ishii, Shumpei Tateno, Yuki Kaneko, Masato Yugami, Satoshi Sakamoto, Yuki Yamaguchi, Osamu Nureki and Hiroshi Handa
Molecular Pharmacology September 16, 2013, mol.113.087940; DOI: https://doi.org/10.1124/mol.113.087940
Vipul Gupta
1 Tokyo Institute of Technology;
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Shujie Liu
1 Tokyo Institute of Technology;
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Hideki Ando
1 Tokyo Institute of Technology;
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Ryohei Ishii
2 University of Tokyo
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Shumpei Tateno
1 Tokyo Institute of Technology;
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Yuki Kaneko
1 Tokyo Institute of Technology;
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Masato Yugami
1 Tokyo Institute of Technology;
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Satoshi Sakamoto
1 Tokyo Institute of Technology;
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Yuki Yamaguchi
1 Tokyo Institute of Technology;
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Osamu Nureki
2 University of Tokyo
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Hiroshi Handa
1 Tokyo Institute of Technology;
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Abstract

Salicylic acid is a classic non-steroidal anti-inflammatory drug. Although salicylic acid also induces mitochondrial injury, the mechanism of its anti-mitochondrial activity is not well understood. In this study, by using a one-step affinity purification scheme with salicylic acid-immobilized beads, ferrochelatase (FECH), a homodimeric enzyme involved in heme biosynthesis in mitochondria, was identified as a new molecular target of salicylic acid. Moreover, co-crystal structure of the FECH·salicylic acid complex was determined. Structural and biochemical studies showed that salicylic acid binds to the dimer interface of FECH in two possible orientations and inhibits its enzymatic activity. Mutational analysis confirmed that Trp301 and Leu311, hydrophobic amino acid residues located at the dimer interface, are directly involved in salicylic acid binding. On a gel filtration column, salicylic acid caused a shift in the elution profile of FECH, indicating that its conformational change is induced by salicylic acid binding. In cultured human cells, salicylic acid treatment or FECH knockdown inhibited heme synthesis, whereas salicylic acid did not exert its inhibitory effect in FECH knockdown cells. Concordantly, salicylic acid treatment or FECH knockdown inhibited heme synthesis in zebrafish embryos. Strikingly, the salicylic acid-induced effect in zebrafish was partially rescued by FECH overexpression. Taken together, these findings illustrate that FECH is responsible for salicylic acid-induced inhibition of heme synthesis, which may contribute to its anti-mitochondrial and anti-inflammatory function. This study establishes a novel aspect of the complex pharmacological effects of salicylic acid.

  • Adenosine
  • NFkappaB
  • Structure determinations
  • Structure-activity relationships and modeling
  • X-ray crystallography
  • Heme metabolism
  • Cyclooxygenases
  • The American Society for Pharmacology and Experimental Therapeutics
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Molecular Pharmacology: 103 (4)
Molecular Pharmacology
Vol. 103, Issue 4
1 Apr 2023
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Research ArticleArticle

Salicylic Acid Induces Mitochondrial Injury by Inhibiting Ferrochelatase Heme Biosynthesis Activity

Vipul Gupta, Shujie Liu, Hideki Ando, Ryohei Ishii, Shumpei Tateno, Yuki Kaneko, Masato Yugami, Satoshi Sakamoto, Yuki Yamaguchi, Osamu Nureki and Hiroshi Handa
Molecular Pharmacology September 16, 2013, mol.113.087940; DOI: https://doi.org/10.1124/mol.113.087940

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Research ArticleArticle

Salicylic Acid Induces Mitochondrial Injury by Inhibiting Ferrochelatase Heme Biosynthesis Activity

Vipul Gupta, Shujie Liu, Hideki Ando, Ryohei Ishii, Shumpei Tateno, Yuki Kaneko, Masato Yugami, Satoshi Sakamoto, Yuki Yamaguchi, Osamu Nureki and Hiroshi Handa
Molecular Pharmacology September 16, 2013, mol.113.087940; DOI: https://doi.org/10.1124/mol.113.087940
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