SNO-hemoglobin is not essential for red blood cell–dependent hypoxic vasodilation (original) (raw)
- Letter
- Published: 30 May 2008
- Chiao-Wang Sun2 na1,
- Li-Chen Wu2,
- Xinjun Teng1,
- Dario A Vitturi1,
- Billy G Branch3,
- Christopher G Kevil3,
- Ning Peng4,
- J Michael Wyss4,
- Namasivayam Ambalavanan4,5,
- Lisa Schwiebert6,
- Jinxiang Ren2,
- Kevin M Pawlik2,
- Matthew B Renfrow2,
- Rakesh P Patel1 &
- …
- Tim M Townes2
Nature Medicine volume 14, pages 773–777 (2008)Cite this article
Abstract
The coupling of hemoglobin sensing of physiological oxygen gradients to stimulation of nitric oxide (NO) bioactivity is an established principle of hypoxic blood flow. One mechanism proposed to explain this oxygen-sensing–NO bioactivity linkage postulates an essential role for the conserved Cys93 residue of the hemoglobin β-chain (βCys93) and, specifically, for _S_-nitrosation of βCys93 to form _S_-nitrosohemoglobin (SNO-Hb)1. The SNO-Hb hypothesis, which conceptually links hemoglobin and NO biology, has been debated intensely in recent years2,3. This debate has precluded a consensus on physiological mechanisms and on assessment of the potential role of SNO-Hb in pathology. Here we describe new mouse models that exclusively express either human wild-type hemoglobin or human hemoglobin in which the βCys93 residue is replaced with alanine to assess the role of SNO-Hb in red blood cell–mediated hypoxic vasodilation. Substitution of this residue, precluding hemoglobin _S_-nitrosation, did not change total red blood cell _S_-nitrosothiol abundance but did shift _S_-nitrosothiol distribution to lower molecular weight species, consistent with the loss of SNO-Hb. Loss of βCys93 resulted in no deficits in systemic or pulmonary hemodynamics under basal conditions and, notably, did not affect isolated red blood cell–dependent hypoxic vasodilation. These results demonstrate that SNO-Hb is not essential for the physiologic coupling of erythrocyte deoxygenation with increased NO bioactivity in vivo.
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Acknowledgements
This study was supported by grants from the US National Institutes of Health (HL057619) to T.M.T., from the American Heart Association, Southeast Affiliate (AHA 0655312B) to R.P.P. and from the Alabama Neuroscience Blueprint Core Center (NS 057098). T.S.I. was supported by a Cardiovascular Pathophysiology Training Fellowship. We also thank T. Lowder and M. Hewitt for technical assistance in exercise studies.
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- T Scott Isbell and Chiao-Wang Sun: These authors contributed equally to this work.
Authors and Affiliations
- Department of Pathology and Center for Free Radical Biology, 901 19th Street South, Birmingham, 35294, Alabama, USA
T Scott Isbell, Xinjun Teng, Dario A Vitturi & Rakesh P Patel - Department of Biochemistry and Molecular Genetics, 502 20th Street South, University of Alabama at Birmingham, Birmingham, 35294, Alabama, USA
Chiao-Wang Sun, Li-Chen Wu, Jinxiang Ren, Kevin M Pawlik, Matthew B Renfrow & Tim M Townes - Department of Pathology, 1501 Kings Highway, Louisiana State University Health Sciences Center, Shreveport, 71130, Louisiana, USA
Billy G Branch & Christopher G Kevil - Department of Cell Biology,1900 University Boulevard, University of Alabama at Birmingham, Birmingham, 35294, Alabama, USA
Ning Peng, J Michael Wyss & Namasivayam Ambalavanan - Department of Pediatrics, 1670 University Boulevard, University of Alabama at Birmingham, Birmingham, 35294, Alabama, USA
Namasivayam Ambalavanan - Department of Physiology and Biophysics 1918 University Boulevard, University of Alabama at Birmingham, Birmingham, 35294, Alabama, USA
Lisa Schwiebert
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Contributions
T.S.I., C.-W.S., L.-C.W., X.T., D.A.V. and K.M.P. were responsible for performing experiments. T.S.I., C.-W.S., D.A.V., R.P.P. and T.M.T. were responsible for planning all experiments, analyzing data and writing the manuscript. M.B.R. contributed to mass spectrometry assays, L.S. was responsible for exercise-related studies, C.G.K. and B.G.B. were responsible for capillary density measurements, N.P. and J.M.W. contributed to blood pressure measurements and N.A. assessed pulmonary hemodynamics. J.R. did the embryonic stem cell injections to generate the chimeras.
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Correspondence toRakesh P Patel or Tim M Townes.
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Isbell, T., Sun, CW., Wu, LC. et al. SNO-hemoglobin is not essential for red blood cell–dependent hypoxic vasodilation.Nat Med 14, 773–777 (2008). https://doi.org/10.1038/nm1771
- Received: 27 November 2007
- Accepted: 09 April 2008
- Published: 30 May 2008
- Issue Date: July 2008
- DOI: https://doi.org/10.1038/nm1771