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Published on: February 20, 2019
Early-Life Exposure to Non-Absorbable Broad-Spectrum Antibiotics Affects the Dopamine Mesocorticolimbic Pathway of
Camila González-Arancibia1,2,3, Victoria Collio1,3, Francisco Silva-Olivares1,3
1Laboratorio de Neuroquímica y Neurofarmacología, Centro de Neurobiología y Fisiopatología Integrativa (CENFI), Instituto de Fisiología, Facultad de Ciencias, Universidad de Valparaíso, Valparaíso, Chile.
Insights
Early-life antibiotic exposure in rats alters the gut-brain axis, impacting reward system development and adult behavior. This affects dopamine pathways and increases drug-seeking behavior, highlighting risks of antibiotic use during pregnancy.
Area of Science:
- Neuroscience
- Microbiology
- Pharmacology
Background:
- A stable gut microbiota is crucial for brain development.
- Alterations in gut microbiota are linked to various diseases, including neuropsychiatric disorders.
- The impact of early-life antibiotic exposure on the dopamine system is not well understood.
Purpose of the Study:
- To investigate the effects of perinatal antibiotic exposure on the dopamine mesocorticolimbic circuit in adult offspring.
- To assess behavioral responses, dopamine release, and protein expression in the reward system.
Main Methods:
- Pregnant rats received oral antibiotics from embryonic day 18 to postnatal day 7.
- Adult offspring (postnatal day 60) underwent behavioral tests (methylphenidate-induced CPP, locomotor activity).
- Dopamine levels, metabolites (DOPAC), and protein expression (D1 receptor, tyrosine hydroxylase) were analyzed in specific brain regions (VTA, prefrontal cortex, striatum).
Main Results:
- Early-life antibiotic exposure increased methylphenidate-induced drug-seeking behavior and locomotor activity in offspring.
- Dopamine release in the striatum and DOPAC content in the VTA were reduced in female offspring.
- Antibiotic exposure elevated dopamine type 1 receptor and tyrosine hydroxylase protein levels in specific brain areas of both male and female offspring.
Conclusions:
- Early-life antibiotic exposure disrupts the microbiota-gut-brain axis.
- This disruption affects the development of the reward system.
- Altered dopamine system function may contribute to changes in behavior and increased susceptibility to drug abuse in adulthood.
Abstract:
Gut microbiota with a stable, rich, and diverse composition is associated with adequate postnatal brain development. Colonization of the infant's gut begins at birth when parturition exposes the newborn to a set of maternal bacteria, increasing richness and diversity until one to two first years of age when a microbiota composition is stable until old age. Conversely, alterations in gut microbiota by diet, stress, infection, and antibiotic exposure have been associated with several pathologies, including metabolic and neuropsychiatric diseases such as obesity, anxiety, depression, and drug addiction, among others. However, the consequences of early-life exposure to antibiotics (ELEA) on the dopamine (DA) mesocorticolimbic circuit are poorly studied. In this context, we administered oral non-absorbable broad-spectrum antibiotics to pregnant Sprague-Dawley dams during the perinatal period (from embryonic day 18 until postnatal day 7) and investigated their adult offspring (postnatal day 60) to assess methylphenidate-induced conditioned place preference (CPP) and locomotor activity, DA release, DA and 3,4-dihydroxyphenylacetic acid (DOPAC) content in ventral tegmental area (VTA), and expression of key proteins within the mesocorticolimbic system. Our results show that ELEA affect the rats conduct by increasing drug-seeking behavior and locomotor activity induced by methylphenidate of males and females, respectively, while reducing dopamine striatal release and VTA content of DOPAC in females. In addition, antibiotics increased protein levels of DA type 1 receptor in prefrontal cortex and VTA of female rats, and tyrosine hydroxylase in VTA of adult male and female rats. Altogether, these results suggest that ELEA alters the development of the microbiota-gut-brain axis affecting the reward system and the response to abuse drugs in adulthood.
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