Type 1 diabetes upregulates metastasis-associated protein 1- phosphorylated histone 2AX signaling in the testis

Narayana Kilarkaje1, Heba Al-Hussaini1

  • 1Department of Anatomy, Faculty of Medicine, Health Science Center, Kuwait University, Kuwait.

Insights

Diabetes increases DNA double-strand breaks in rat testes by upregulating metastasis-associated protein-1 (MTA1) and histone 2AX phosphorylation (Ɣ-H2AX) signaling, despite unchanged ataxia telangiectasia mutated (ATM) protein levels.

Area of Science:

  • Reproductive Biology
  • Molecular Endocrinology
  • Diabetic Complications

Background:

  • Sustained hyperglycemia causes oxidative stress, leading to DNA double-strand breaks, germ cell death, and testicular atrophy.
  • While DNA repair mechanisms in testicular cells are studied, the impact on DNA double-strand break sensing remains unclear.

Purpose of the Study:

  • To investigate the effects of hyperglycemia on DNA double-strand break sensing and signaling pathways in diabetic rat testes.
  • To examine the expression and role of ataxia telangiectasia mutated (ATM) and metastasis-associated protein-1 (MTA1) in response to diabetes-induced DNA damage.

Main Methods:

  • Utilized streptozotocin-induced type 1 diabetic rat model.
  • Analyzed protein levels of ATM, MTA1, and Ɣ-H2AX (marker of DNA double-strand breaks) after one and three months of diabetes.
  • Assessed stage-dependent expression patterns of ATM and Ɣ-H2AX in seminiferous epithelium.

Main Results:

  • Hyperglycemia did not increase ATM protein levels but did increase MTA1 levels in diabetic rat testes.
  • DNA double-strand breaks, indicated by Ɣ-H2AX, increased in a time- and stage-dependent manner, particularly in spermatogonia, primary spermatocytes, and late spermatids.
  • ATM was present in cells with Ɣ-H2AX expression, suggesting its role in DNA damage response despite unchanged levels.

Conclusions:

  • Diabetes upregulates MTA1-Ɣ-H2AX signaling in rat testes as a response to increased DNA double-strand breaks.
  • ATM plays a role in phosphorylating histone 2AX in response to DNA damage in diabetic testes, even without increased ATM levels.

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