New and evolving concepts in the neurotoxicology of lead

L D White1, D A Cory-Slechta, M E Gilbert

  • 1National Center for Environmental Assessment, US Environmental Protection Agency, Research Triangle Park, NC 27711, USA. white.lori@epa.gov

Insights

Lead (Pb) exposure harms the developing nervous system and impairs learning and memory. Early life lead exposure may also increase the risk of neurodegenerative diseases like Alzheimer's later in life.

Area of Science:

  • Neurotoxicology
  • Cellular Biology
  • Environmental Health

Background:

  • Lead (Pb) is a potent neurotoxicant, particularly during nervous system development.
  • Stress and elevated glucocorticoids may exacerbate Pb toxicity by affecting the mesocorticolimbic dopamine system.
  • Low socioeconomic status populations may be disproportionately affected by Pb-related health issues.

Purpose of the Study:

  • To investigate the mechanisms underlying lead-induced cognitive deficits.
  • To explore the direct effects of lead on cellular substrates, such as GRP78.
  • To examine the long-term implications of early life lead exposure on neurodegeneration.

Main Methods:

  • Utilized cellular models of learning and memory.
  • Examined long-term potentiation and adult neurogenesis in the rodent hippocampus.
  • Investigated lead's interaction with glucose-regulated protein (GRP78) and IL-6 secretion in astroglial cells.
  • Assessed the impact of early life lead exposure on amyloidogenesis markers in aged rodents.

Main Results:

  • Lead exposure impaired synaptic plasticity, including long-term potentiation and adult neurogenesis.
  • Lead binds to GRP78, induces aggregation, and blocks IL-6 secretion in astrocytes, indicating chaperone deficiency.
  • Early life lead exposure increased beta-APP and Abeta levels in aged rodents, suggesting a link to Alzheimer's pathology.
  • Stress was found to significantly alter the effects of lead exposure.

Conclusions:

  • Lead exposure has adverse effects on the nervous system, impacting cognitive function and potentially leading to neurodegeneration.
  • Environmental factors, such as stress, can increase susceptibility to lead toxicity.
  • Early life lead exposure may predispose individuals to neurodegenerative diseases in later life.

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