DNA synthesis is dissociated from the immediate-early gene response in the post-ischemic kidney

J Megyesi1, J Di Mari, N Udvarhelyi

  • 1Department of Internal Medicine, University of Texas Medical Branch at Galveston, USA.

Kidney International
|November 1, 1995
PubMed

Insights

Kidney injury triggers immediate-early genes like c-fos and c-jun, but these cells don't proliferate. This suggests the kidney's response to ischemia is stress-related and antiproliferative, not growth-promoting.

Area of Science:

  • Renal physiology
  • Molecular biology
  • Cellular stress response

Background:

  • Kidney ischemic injury increases DNA synthesis, preceded by c-fos proto-oncogene expression.
  • The role of c-fos in kidney proliferation following ischemia remains unconfirmed.
  • Immediate-early (IE) gene responses typically involve co-expression of c-jun and cycloheximide sensitivity.

Purpose of the Study:

  • To confirm if c-fos expression during renal ischemia fits the immediate-early gene response criteria.
  • To determine if cells expressing c-Fos protein are the same cells undergoing DNA synthesis.
  • To investigate the proliferative or antiproliferative nature of the IE gene response in renal ischemia.

Main Methods:

  • Northern blot analysis of renal mRNA at various times post-ischemia.
  • Assessment of c-jun and c-fos mRNA expression and cycloheximide superinduction.
  • 3H-thymidine autoradiography and immunohistochemistry for c-Fos and c-Jun protein localization.

Main Results:

  • Renal ischemia induced rapid, transient expression of c-fos and c-jun mRNA, typical of IE genes.
  • Cycloheximide treatment superinduced c-fos and c-jun mRNA expression.
  • Cells expressing c-Fos and c-Jun proteins were primarily in the thick ascending limb, distal tubule, and collecting duct, distinct from DNA-synthesizing cells in proximal tubules.

Conclusions:

  • c-fos and c-jun are expressed as IE genes following renal ischemia but in non-proliferating cells.
  • The antiproliferative IE gene response may involve jun-B and jun-D, suppressing c-Jun's mitogenic activity.
  • The IE response to renal ischemia appears to be an antiproliferative stress response, not a proliferative one.

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