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Essential role of extracellular SOD in reparative neovascularization induced by hindlimb ischemia

*Corresponding author for this work
  • University of Illinois at Chicago
    ,
  • Georgia Institute of Technology
Scholary Output:
Contribution to journal
Article
Peer-review

Open access

Sustainable Development Goals

  • SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well

Abstract

Neovascularization is an important physiological repair mechanism in response to ischemic injury, and its process is dependent on reactive oxygen species (ROS). Overproduction of superoxide anion (O2) rather contributes to various cardiovascular diseases. The extracellular superoxide dismutase (ecSOD) is one of the major antioxidant enzymes against O2 in blood vessels; however, its role in neovascularization induced by tissue ischemia is unknown. Here we show that hindlimb ischemia of mice stimulates a significant increase in ecSOD activity in ischemic tissues where ecSOD protein is highly expressed at arterioles. In mice lacking ecSOD, ischemia-induced increase in blood flow recovery, collateral vessel formation, and capillary density are significantly inhibited. Impaired neovascularization in ecSOD mice is associated with enhanced O2 production, TUNEL-positive apoptotic cells and decreased levels of NO2/NO3 and cGMP in ischemic tissues as compared with wild-type mice, and it is rescued by infusion of the SOD mimetic tempol. Recruitment of inflammatory cells into ischemic tissues as well as numbers of inflammatory cells and endothelial progenitor cells (c-kit/CD31 cells) in both peripheral blood and bone marrow (BM) are significantly reduced in these knockout mice. Of note, ecSOD expression is markedly increased in BM after ischemia. NO2/NO3 and cGMP levels are decreased in ecSOD BM. Transplantation of wild-type BM into ecSOD mice rescues the defective neovascularization. Thus, ecSOD in BM and ischemic tissues induced by hindlimb ischemia may represent an important compensatory mechanism that blunts the overproduction of O2, which may contribute to reparative neovascularization in response to ischemic injury.

Publication Information

Output type

Scholary Output:
Contribution to journal
Article
Peer-review

Original language

English (US)

Pages from-to (Number of pages)

Pages 409-419 (11 pages)

Journal (Volume, Issue Number)

Circulation research (Volume 101, Issue 4)

Publication milestones

  • Published - 08/2007

Publication status

Published - 08/2007

ISSN

0009-7330

Publication IDs

  • Scopus: 34547962299
  • PubMed: 17601801

Publication metrics

Metrics

Fractional count
3
Fractional count
0.60
Fractional count
2
Fractional count
0.40
Fractional count
3
Fractional count
1
SciVal
citations
81
SciVal
FWCI
2.39
SciVal
Author count
5
SciVal
Paper percentile
93
SciVal
Top percentile
10
Scopus
citations

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Captures
35
Citation count
96

Funding Details

FunderFunding number
NHLBI
R01HL070187