From the Cover: 7,8-Dihydroxyflavone Rescues Lead-Induced Impairment of Vesicular Release: A Novel Therapeutic
Xiao-Lei Zhang1, Jennifer L McGlothan2, Omid Miry1
1Department of Cell Biology & Anatomy, New York Medical College, Valhalla, New York 10595.
Insights
Childhood lead exposure harms brain development, impairing synaptic function. Activating TrkB receptors with 7,8-dihydroxyflavone reversed these lead-induced impairments, offering a potential therapy for lead-intoxicated children.
Area of Science:
- Neuroscience
- Toxicology
- Pharmacology
Background:
- Childhood lead (Pb2+) intoxication is a significant global public health issue.
- Developmental lead exposure negatively impacts the central nervous system, affecting synapse formation, plasticity, and learning.
- Lead exposure inhibits vesicular release and reduces fast-releasing sites by interfering with NMDA receptor-mediated Brain-Derived Neurotrophic Factor (BDNF) signaling.
Purpose of the Study:
- To investigate if activating the TrkB receptor can counteract lead-induced impairments in vesicular release.
- To determine the therapeutic potential of TrkB receptor activation in reversing the long-term effects of chronic lead exposure.
Main Methods:
- Chronic lead (Pb2+) exposure in rats from prenatal to postnatal day 50.
- Assessment of synaptic transmission in hippocampal Schaffer collateral-CA1 synapses using electrophysiology and 2-photon imaging.
- Administration of the TrkB receptor agonist 7,8-dihydroxyflavone to lead-exposed rats.
Main Results:
- Chronic lead exposure reduced vesicular release probability and impaired calcium influx in hippocampal synapses.
- Treatment with 7,8-dihydroxyflavone reversed lead-induced deficits in vesicular release and calcium influx.
- Pharmacological activation of TrkB receptors demonstrated a significant rescue of presynaptic terminal function.
Conclusions:
- In vivo activation of TrkB receptors can reverse chronic lead exposure's detrimental effects on presynaptic terminals.
- TrkB receptor activation, using agents like 7,8-dihydroxyflavone, represents a promising therapeutic strategy for lead-intoxicated children.
- Targeting TrkB signaling offers a novel approach to mitigate neurodevelopmental deficits caused by lead poisoning.
Abstract:
Childhood lead (Pb2+) intoxication is a public health problem of global proportion. Lead exposure during development produces multiple effects on the central nervous system including impaired synapse formation, altered synaptic plasticity, and learning deficits. In primary hippocampal neurons in culture and hippocampal slices, Pb2+ exposure inhibits vesicular release and reduces the number of fast-releasing sites, an effect associated with Pb2+ inhibition of NMDA receptor-mediated trans-synaptic Brain-Derived Neurotrophic Factor (BDNF) signaling. The objective of this study was to determine if activation of TrkB, the cognate receptor for BDNF, would rescue Pb2+-induced impairments of vesicular release. Rats were chronically exposed to Pb2+ prenatally and postnatally until 50 days of age. This chronic Pb2+ exposure paradigm enhanced paired-pulse facilitation of synaptic potentials in Schaffer collateral-CA1 synapses in the hippocampus, a phenomenon indicative of reduced vesicular release probability. Decreased vesicular release probability was confirmed by both mean-variance analysis and direct 2-photon imaging of vesicular release from hippocampal slices of rats exposed to Pb2+in vivo. We also found a Pb2+-induced impairment of calcium influx in Schaffer collateral-CA1 synaptic terminals. Intraperitoneal injections of Pb2+ rats with the TrkB receptor agonist 7,8-dihydroxyflavone (5 mg/kg) for 14-15 days starting at postnatal day 35, reversed all Pb2+-induced impairments of presynaptic transmitter release at Schaffer collateral-CA1 synapses. This study demonstrates for the first time that in vivo pharmacological activation of TrkB receptors by small molecules such as 7,8-dihydroxyflavone can reverse long-term effects of chronic Pb2+ exposure on presynaptic terminals, pointing to TrkB receptor activation as a promising therapeutic intervention in Pb2+-intoxicated children.
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