Involvement of various molecular events in cellular injury induced by smokeless tobacco

Pramod K Avti1, Kim Vaiphei, Chander M Pathak

  • 1Departments of Biophysics and Histopathology, Postgraduate Institute of Medical Education and Research, Chandigarh, India.

Insights

Smokeless tobacco extract impacts drug-metabolizing enzymes and DNA in rat organs. Long-term exposure causes inflammation and genetic damage, suggesting organ-specific toxicity pathways.

Area of Science:

  • Toxicology
  • Molecular Biology
  • Pathology

Background:

  • Smokeless tobacco (ST) use is linked to oral diseases, but its effects on other organs are unclear.
  • Gutkha, a form of ST, contains compounds that may affect xenobiotic metabolism and cellular integrity.
  • Understanding ST's systemic effects is crucial for public health and disease prevention.

Purpose of the Study:

  • To investigate the impact of aqueous extract of smokeless tobacco (AEST) on drug-metabolizing enzymes, histopathology, and genetic material in rat lung, liver, and kidney.
  • To evaluate dose- and duration-dependent effects of AEST exposure.
  • To elucidate molecular mechanisms underlying AEST-induced organ damage.

Main Methods:

  • Oral administration of AEST at low and high doses to rats for 2 and 28 weeks.
  • Real-time PCR and immunohistology to assess gene and protein expression of drug-metabolizing enzymes (CYP450s, GST-mu).
  • Analysis of micronuclei formation, inflammatory markers (TNF-alpha, myeloperoxidase), and apoptosis-related genes (Bax, p53, NF-kappaB, Bcl-2).

Main Results:

  • High-dose AEST induced phase I CYP enzymes but only mildly induced phase II GST-mu in organs.
  • Long-term low-dose AEST enhanced CYP and GST-mu expression differentially across organs.
  • AEST exposure led to DNA damage (micronuclei), inflammation, and altered expression of apoptosis-related genes, indicating organ-specific toxicity.

Conclusions:

  • Aqueous extract of smokeless tobacco (AEST) deregulates drug-metabolizing enzymes and induces genotoxicity and inflammation in a dose- and duration-dependent manner.
  • Organ-specific responses to AEST suggest varying sensitivities and metabolic pathways.
  • Findings provide insights into molecular mechanisms of AEST pathogenesis, aiding clinical strategies for tobacco-related diseases.

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