Malachite green induces genotoxic effect and biochemical disturbances in mice

S M Donya1, A A Farghaly, M A Abo-Zeid

  • 1Department of Genetics and Cytology, Division of Genetic Engineering and Biotechnology, and National Research Center, Dokki, Cairo, Egypt. hanan_abduallah@yahoo.com

Abstract

Insights

Malachite green (MG) causes DNA damage and biochemical disturbances in mice, leading to liver damage. This study highlights the genotoxic and toxic effects of MG, raising concerns about its use.

Area of Science:

  • Toxicology
  • Genetics
  • Biochemistry

Background:

  • Malachite green (MG) is an antifungal agent used in aquaculture.
  • Concerns exist regarding consumer exposure, potential tumor promotion, and carcinogenicity of MG.
  • Evaluating the mutagenicity and biochemical effects of MG is crucial for risk assessment.

Purpose of the Study:

  • To assess the mutagenic potential of Malachite green (MG) in mice.
  • To investigate the biochemical disturbances induced by MG exposure.
  • To evaluate the histopathological effects of MG on liver tissue.

Main Methods:

  • Mice were orally administered varying doses of MG for up to 28 days.
  • Genotoxicity was assessed via chromosomal aberrations and sister chromatid exchanges (SCEs).
  • Biochemical parameters, DNA fragmentation, and histopathology of liver tissue were analyzed.

Main Results:

  • MG significantly increased SCEs and chromosomal aberrations at high doses and prolonged exposure.
  • DNA damage in mouse liver was observed in a dose-dependent manner.
  • MG induced significant biochemical disturbances, depleted glutathione, increased lipid peroxide, and caused liver histopathology.

Conclusions:

  • Malachite green (MG) exhibits genotoxic effects, inducing chromosomal aberrations and DNA damage.
  • MG causes significant biochemical alterations and liver damage, including necrosis and cirrhosis.
  • The findings indicate potential risks associated with Malachite green exposure.

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