4.4 Article

The Zebrafish Cytochrome b5/Cytochrome b5 Reductase/NADH System Efficiently Reduces Cytoglobins 1 and 2: Conserved Activity of Cytochrome b5/Cytochrome b5 Reductases during Vertebrate Evolution

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BIOCHEMISTRY
卷 58, 期 29, 页码 3212-3223

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.biochem.9b00406

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资金

  1. Institute for Transfusion Medicine
  2. Hemophilia Center of Western Pennsylvania
  3. Ri.MED Foundation
  4. National Institutes of Health [T32 HL076124, R01 HL098032, R01 HL125886, P01 HL103455, T32 HL110849, T32 HL007563, R21 ES027390, K08 HL136857]
  5. Parker B. Francis Foundation Fellowship
  6. Independent Research Fund Denmark, Natural Sciences Grant [4181-00094]
  7. Aarhus University Research Foundation NOVA Grant [AUFF-E-2016-9-37]

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Cytoglobin is a heme protein evolutionarily related to hemoglobin and myoglobin. Cytoglobin is expressed ubiquitously in mammalian tissues; however, its physiological functions are yet unclear. Phylogenetic analyses indicate that the cytoglobin gene is highly conserved in vertebrate clades, from fish to reptiles, amphibians, birds, and mammals. Most proposed roles for cytoglobin require the maintenance of a pool of reduced cytoglobin (Fe-II). We have shown previously that the human cytochrome b(5)/cytochrome b(5) reductase system, considered a quintessential hemoglobin/myoglobin reductant, can reduce human and zebrafish cytoglobins <= 250-fold faster than human hemoglobin or myoglobin. It was unclear whether this reduction of zebrafish cytoglobins by mammalian proteins indicates a conserved pathway through vertebrate evolution. Here, we report the reduction of zebrafish cytoglobins 1 and 2 by the zebrafish cytochrome b(5) reductase and the two zebrafish cytochrome b(5) isoforms. In addition, the reducing system also supports reduction of Globin X, a conserved globin in fish and amphibians. Indeed, the zebrafish reducing system can maintain a fully reduced pool for both cytoglobins, and both cytochrome b(5) isoforms can support this process. We determined the P-50 for oxygen to be 0.5 Torr for cytoglobin 1 and 4.4 Torr for cytoglobin 2 at 25 degrees C. Thus, even at low oxygen tensions, the reduced cytoglobins may exist in a predominant oxygen-bound form. Under these conditions, the cytochrome b(5)/cytochrome b(5) reductase system can support a conserved role for cytoglobins through evolution, providing electrons for redox signaling reactions such as nitric oxide dioxygenation, nitrite reduction, and phospholipid oxidation.

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