Congenital DNA repair deficiency results in protection against renal ischemia reperfusion injury in mice

Denis Susa, James R. Mitchell, Marielle Verweij, Marieke Van De Ven, Henk Roest, Sandra Van Den Engel, Ingeborg Bajema, Kirsten Mangundap, Jan N.M. Ijzermans, Jan H.J. Hoeijmakers, Ron W.F. De Bruin

Research output: Contribution to journalArticlepeer-review

23 Citations (Scopus)

Abstract

Cockayne syndrome and other segmental progerias with inborn defects in DNA repair mechanisms are thought to be due in part to hypersensitivity to endogenous oxidative DNA damage. The accelerated aging-like symptoms of this disorder include dysmyelination within the central nervous system, progressive sensineuronal hearing loss and retinal degeneration. We tested the effects of congenital nucleotide excision DNA repair deficiency on acute oxidative stress sensitivity in vivo. Surprisingly, we found mouse models of Cockayne syndrome less susceptible than wild type animals to surgically induced renal ischemia reperfusion injury, a multifactorial injury mediated in part by oxidative damage. Renal failure-related mortality was significantly reduced in Csb-/- mice, kidney function was improved and proliferation was significantly higher in the regenerative phase following ischemic injury. Protection from ischemic damage correlated with improved baseline glucose tolerance and insulin sensitivity and a reduced inflammatory response following injury. Protection was further associated with genetic ablation of a different Cockayne syndrome-associated gene, Csa. Our data provide the first functional in vivo evidence that congenital DNA repair deficiency can induce protection from acute stress in at least one organ. This suggests that while specific types of unrepaired endogenous DNA damage may lead to detrimental effects in certain tissues, they may at the same time elicit beneficial adaptive changes in others and thus contribute to the tissue specificity of disease symptoms.

Original languageEnglish
Pages (from-to)192-200
Number of pages9
JournalAging Cell
Volume8
Issue number2
DOIs
Publication statusPublished - 2009
Externally publishedYes

Keywords

  • Aging
  • DNA repair
  • Hormesis
  • Ischemia reperfusion injury
  • Oxidative stress
  • Progeria

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