4.6 Article

Hydrogen sulfide bypasses the rate-limiting oxygen activation of heme oxygenase

期刊

JOURNAL OF BIOLOGICAL CHEMISTRY
卷 293, 期 43, 页码 16931-16939

出版社

AMER SOC BIOCHEMISTRY MOLECULAR BIOLOGY INC
DOI: 10.1074/jbc.RA118.004641

关键词

heme oxygenase; hydrogen sulfide; enzyme mechanism; protein chemistry; metalloenzyme; iron metabolism; porphyrin; cell signaling; thiol

资金

  1. Japan Society for the Promotion of Science (JSPS) [2412006, 24350081, 23550186, 25109504, 15K05555, 15H00912, 17H04000]
  2. Ministry of Education, Culture, Sports, Science and Technology (MEXT), Japan
  3. Takeda Science Foundation
  4. Strategic Alliance Project for the Creation of Nano-Materials
  5. MEXT, Japan

向作者/读者索取更多资源

Discovery of unidentified protein functions is of biological importance because it often provides new paradigms for many research areas. Mammalian heme oxygenase (HO) enzyme catalyzes the O-2-dependent degradation of heme into carbon monoxide (CO), iron, and biliverdin through numerous reaction intermediates. Here, we report that H2S, a gaseous signaling molecule, is part of a novel reaction pathway that drastically alters HO's products, reaction mechanism, and catalytic properties. Our prediction of this interplay is based on the unique reactivity of H2S with one of the HO intermediates. We found that in the presence of H2S, HO produces new linear tetrapyrroles, which we identified as isomers of sulfur-containing biliverdin (SBV), and that only H2S, but not GSH, cysteine, and polysulfides, induces SBV formation. As BV is converted to bilirubin (BR), SBV is enzymatically reduced to sulfur-containing bilirubin (SBR), which shares similar properties such as antioxidative effects with normal BR. SBR was detected in culture media of mouse macrophages, confirming the existence of this H2S-induced reaction in mammalian cells. H2S reacted specifically with a ferric verdoheme intermediate of HO, and verdoheme cleavage proceeded through an O-2-independent hydrolysis-like mechanism. This change in activation mode diminished O-2 dependence of the overall HO activity, circumventing the rate-limiting O-2 activation of HO. We propose that H2S could largely affect O-2 sensing by mammalian HO, which is supposed to relay hypoxic signals by decreasing CO output to regulate cellular functions. Moreover, the novel H2S-induced reaction identified here helps sustain HO's heme-degrading and antioxidant-generating capacity under highly hypoxic conditions.

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