The teratogenicity and behavioral teratogenicity of di(2-ethylhexyl) phthalate (DEHP) and di-butyl phthalate (DBP) in

Safa Abdul-Ghani1, Joseph Yanai, Rula Abdul-Ghani

  • 1Biochemistry Department Faculty of Medicine, Al-Quds University, Box 19356, East Jerusalem, Palestine.

Insights

Phthalate exposure, particularly prenatal, can cause developmental defects like gastroschisis and neurobehavioral issues in chicks. This study highlights the chick model

Area of Science:

  • Environmental Toxicology
  • Developmental Biology
  • Neurobehavioral Science

Background:

  • Phthalates are widespread industrial chemicals with growing concerns regarding prenatal exposure risks.
  • Existing animal models often involve confounding factors like maternal toxicity and complex interactions.

Purpose of the Study:

  • To evaluate the suitability of a chick model for assessing teratogenicity and neurobehavioral teratogenicity of phthalates, specifically DEHP and DBP.
  • To establish a simplified model free from maternal-associated confounding factors.

Main Methods:

  • Chicks were exposed to Di(2-ethylhexyl) phthalate (DEHP) and Dibutyl phthalate (DBP) during the prehatch period.
  • Evaluated effects on hatching success, developmental defects (omphalocele, gastroschisis), biochemical markers (alkaline phosphatase), neurobehavioral responses (imprinting, locomotor activity), and DNA damage (8-OH-dG).

Main Results:

  • DEHP and DBP exposure significantly reduced hatching rates and increased late hatchings.
  • Induced dose-dependent developmental defects, including gastroschisis, with DEHP (up to 22%) and DBP (14%).
  • DEHP exposure abolished imprinting performance, increased alkaline phosphatase, and elevated DNA damage (8-OH-dG by 39.7%), indicating genetic toxicity and oxidative stress.

Conclusions:

  • The chick model is suitable for studying phthalate teratogenicity and neurobehavioral effects.
  • Phthalate exposure during development can lead to significant birth defects and neurobehavioral alterations.
  • The findings suggest that phthalate toxicity involves oxidative stress and DNA damage pathways.