Model for hypoxic pulmonary vasoconstriction involving mitochondrial oxygen sensing

被引:304
|
作者
Waypa, GB [1 ]
Chandel, NS [1 ]
Schumacker, PT [1 ]
机构
[1] Univ Chicago, Dept Med, Chicago, IL 60637 USA
关键词
reactive oxygen species; hypoxia; redox signaling; pulmonary circulation; oxidants;
D O I
10.1161/hh1201.091960
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
We tested whether mitochondria function as the O-2 sensor underlying hypoxic pulmonary vasoconstriction (HPV). In buffer-perfused rat lungs, rotenone, myxothiazol, and diphenyleneiodonium, which inhibit mitochondria in the proximal region of the electron transport chain (ETC), abolished HPV without attenuating the response to U46619. Cyanide and antimycin A inhibit electron transfer in the distal region of the ETC, but they did not abolish HPV. Cultured pulmonary artery (PA) myocytes contract in response to hypoxia or to U46619, The hypoxic response was abolished while the response to U46619 was maintained in mutant (rho (0)) PA myocytes lacking a mitochondrial ETC. To test whether reactive oxygen species (ROS) derived from mitochondria act as signaling agents in HPV, the antioxidants pyrrolidinedithiocarbamate and ebselen and the Cu,Zn superoxide dismutase inhibitor diethyldithiocarbamate were used. These abolished HPV without affecting contraction to U46619, suggesting that ROS act as second messengers. In cultured PA myocytes, oxidation of intracellular 2 ' ,7 ' -dichlorofluorescin diacetate (DCFH) dye increased under 2% O-2, indicating that myocytes increase their generation of H2O2 during hypoxia. This was attenuated by myxothiazol, implicating mitochondria as the source of increased ROS during HPV. These results indicate that mitochondrial ATP is not required for HPV, that mitochondria function as O-2 sensors during hypoxia, and that ROS generated in the proximal region of the ETC act as second messengers in the response.
引用
收藏
页码:1259 / 1266
页数:8
相关论文
共 50 条
  • [21] Tetrahydrobiopterin and the regulation of hypoxic pulmonary vasoconstriction
    Francis, B. N.
    Wilkins, M. R.
    Zhao, L.
    EUROPEAN RESPIRATORY JOURNAL, 2010, 36 (02) : 323 - 330
  • [22] Hypoxic vasoconstriction in pulmonary arterioles and venules
    Hillier, SC
    Graham, JA
    Hanger, CC
    Godbey, PS
    Glenny, RW
    Wagner, WW
    JOURNAL OF APPLIED PHYSIOLOGY, 1997, 82 (04) : 1084 - 1090
  • [23] Effects of hypoxic pulmonary vasoconstriction on pulmonary gas exchange
    Brimioulle, S
    Lejeune, P
    Naeije, R
    JOURNAL OF APPLIED PHYSIOLOGY, 1996, 81 (04) : 1535 - 1543
  • [24] Mitochondrial Complex IV Subunit 4 Isoform 2 Is Essential for Acute Pulmonary Oxygen Sensing
    Sommer, Natascha
    Huettemann, Maik
    Pak, Oleg
    Scheibe, Susan
    Knoepp, Fenja
    Sinkler, Christopher
    Malczyk, Monika
    Gierhardt, Mareike
    Esfandiary, Azadeh
    Kraut, Simone
    Jonas, Felix
    Veith, Christine
    Aras, Siddhesh
    Sydykov, Akylbek
    Alebrahimdehkordi, Nasim
    Giehl, Klaudia
    Hecker, Matthias
    Brandes, Ralf P.
    Seeger, Werner
    Grimminger, Friedrich
    Ghofrani, Hossein A.
    Schermuly, Ralph T.
    Grossman, Lawrence I.
    Weissmann, Norbert
    CIRCULATION RESEARCH, 2017, 121 (04) : 424 - +
  • [25] PEEP INHIBITS HYPOXIC PULMONARY VASOCONSTRICTION IN DOGS
    LEJEUNE, P
    VACHIERY, JL
    DESMET, JM
    LEEMAN, M
    BRIMIOULLE, S
    DELCROIX, M
    MELOT, C
    NAEIJE, R
    JOURNAL OF APPLIED PHYSIOLOGY, 1991, 70 (04) : 1867 - 1873
  • [26] Impact of Modulators of Mitochondrial ATP-Sensitive Potassium Channel (mitoKATP) on Hypoxic Pulmonary Vasoconstriction
    Paddenberg, R.
    Faulhammer, P.
    Goldenberg, A.
    Gries, B.
    Heinl, J.
    Kummer, W.
    ARTERIAL CHEMORECEPTORS, 2009, 648 : 361 - 368
  • [27] Blunted hypoxic pulmonary vasoconstriction in apnoea divers
    Kelly, Tyler
    Brown, Courtney
    Bryant-Ekstrand, Mohini
    Lord, Rachel
    Dawkins, Tony
    Drane, Aimee
    Futral, Joel E.
    Barak, Otto
    Dragun, Tanja
    Stembridge, Michael
    Spajic, Boris
    Drvis, Ivan
    Duke, Joseph W.
    Ainslie, Philip N.
    Foster, Glen E.
    Dujic, Zeljko
    Lovering, Andrew T.
    EXPERIMENTAL PHYSIOLOGY, 2022, 107 (11) : 1225 - 1240
  • [28] Regulation of hypoxic pulmonary vasoconstriction: basic mechanisms
    Sommer, N.
    Dietrich, A.
    Schermuly, R. T.
    Ghofrani, H. A.
    Gudermann, T.
    Schulz, R.
    Seeger, W.
    Grimminger, F.
    Weissmann, N.
    EUROPEAN RESPIRATORY JOURNAL, 2008, 32 (06) : 1639 - 1651
  • [29] Potassium channels modulate hypoxic pulmonary vasoconstriction
    Barman, SA
    AMERICAN JOURNAL OF PHYSIOLOGY-LUNG CELLULAR AND MOLECULAR PHYSIOLOGY, 1998, 275 (01) : L64 - L70
  • [30] Mitochondrial reactive oxygen species trigger calcium increases during hypoxia in pulmonary arterial myocytes
    Waypa, GB
    Marks, JD
    Mack, MM
    Boriboun, C
    Mungai, PT
    Schumacker, PT
    CIRCULATION RESEARCH, 2002, 91 (08) : 719 - 726