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Published on: June 2, 2022
Probiotics reverse prenatal stress-induced anxiety and memory impairment in rats through gut-hippocampus axis
Fatemeh Aghighi Bidgoli1, Mahmoud Salami1, Hamed Mirzaei2
1Physiology Research Center, Institute for Basic Sciences, Kashan University of Medical Sciences, Kashan, Iran.
Insights
Probiotic supplementation alleviates neurobehavioral deficits in offspring from prenatal stress by modulating gut-brain axis pathways. This intervention improved anxiety, memory, and molecular markers in stressed rats, highlighting the role of beneficial bacteria in development.
Area of Science:
- Neuroscience
- Microbiology
- Developmental Biology
Background:
- Prenatal stress is a known risk factor for neurobehavioral deficits in offspring.
- The gut-brain axis is increasingly recognized for its role in mediating stress responses and neurodevelopment.
Purpose of the Study:
- To investigate the effects of a probiotic mixture on anxiety, memory, and molecular pathways in male rats exposed to prenatal stress.
- To explore the potential of probiotics in mitigating stress-induced neurobehavioral impairments via the gut-brain axis.
Main Methods:
- Male offspring were exposed to chronic unpredictable stress (CUS) during gestation.
- Post-weaning, stressed rats received either saline or a probiotic mixture.
- Behavioral tests (passive avoidance, elevated zero maze) and molecular analyses (serum markers, gene/microRNA expression, protein levels) were performed.
Main Results:
- Prenatal stress induced anxiety-like behavior, impaired memory, oxidative stress, altered hippocampal gene/microRNA expression, reduced BDNF, and increased apoptosis.
- Probiotic treatment significantly improved behavioral outcomes and normalized molecular markers, including oxidative stress and gene expression.
- Probiotics restored Htr1a and miR-320-3p expression, increased BDNF, and modulated the Bax/Bcl-2 ratio, while miR-26a remained unaffected.
Conclusions:
- Probiotic supplementation effectively alleviates adverse neurobehavioral effects of prenatal stress in rats.
- The findings suggest that probiotics exert their beneficial effects through modulation of the gut-brain axis.
- Beneficial bacteria play a crucial role in neurobehavioral development and maintenance, offering a potential therapeutic strategy for stress-related disorders.
Abstract:
Prenatal stress is a significant risk factor that can lead to neurobehavioral deficits in offspring. In the present study, we examined the effects of a probiotic mixture on anxiety, memory, and underlying possible molecular pathways in prenatally stressed rats. Male offspring exposed to chronic unpredictable stress (CUS) during fetal life were received either saline (CUS+SAL) or a probiotic mixture (CUS+PRO) for 30 days post-weaning. Non-stressed controls were also given either saline (CON+SAL) or probiotics (CON+PRO). The passive avoidance test and the elevated zero maze test were used to assess avoidance memory and anxiety-like behavior, respectively. In comparison to the CON+SAL controls, the CUS+SAL group exhibited significant anxiety-like behavior and impaired avoidance memory. At a molecular level, the behavioral impairments were accompanied by increased serum levels of the oxidant, MDA, and decreased serum levels of antioxidants, TAC, GSH, and SOD, upregulation of the hippocampal serotonin receptor Htr1a gene, while downregulation of microRNAs miR-26a and miR-320-3p, reduced BDNF, and increased Bax/Bcl-2 ratio apoptosis in the duodenum. Probiotics effectively mitigated these alterations. The intervention improved behavioral functions, normalized oxidative and antioxidative stress markers, and restored the expression of Htr1a and miR-320-3p to near-normal levels, while miR-26a expression remained unaffected by the treatment. It also enhanced the Bax/Bcl-2 ratio and increased BDNF content. Interestingly, unstressed control rats were unresponsive to the probiotic treatment. Conclusively, probiotic supplementation sufficiently alleviates the adverse effects of fetal life stress, possibly by affecting the gut-brain axis, highlighting the importance of beneficial bacteria in neurobehavioral development and maintenance.
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