Aspergillus versicolor Inhalation Triggers Neuroimmune, Glial, and Neuropeptide Transcriptional Changes
Thatcher B Ladd1, James A Johnson1, Christen L Mumaw1
1Department of Pharmacology and Toxicology, Stark Neurosciences Research Institute, Indiana University School of Medicine, Indianapolis, Indiana, United States.
Abstract:
Increasing evidence associates indoor fungal exposure with deleterious central nervous system (CNS) health, such as cognitive and emotional deficits in children and adults, but the specific mechanisms by which it might impact the brain are poorly understood. Mice were exposed to filtered air, heat-inactivated Aspergillus versicolor (3 × 105 spores), or viable A. versicolor (3 × 105 spores) via nose-only inhalation exposure 2 times per week for 1, 2, or 4 weeks. Analysis of cortex, midbrain, olfactory bulb, and cerebellum tissue from mice exposed to viable A. versicolor spores for 1, 2, and 4 weeks revealed significantly elevated pro-inflammatory (Tnf and Il1b) and glial activity (Gdnf and Cxc3r1) gene expression in several brain regions when compared to filtered air control, with the most consistent and pronounced neuroimmune response 48H following the 4-week exposure in the midbrain and frontal lobe. Bulk RNA-seq analysis of the midbrain tissue confirmed that 4 weeks of A. versicolor exposure resulted in significant transcriptional enrichment of several biological pathways compared to the filtered air control, including neuroinflammation, glial cell activation, and regulation of postsynaptic organization. Upregulation of Drd1, Penk, and Pdyn mRNA expression was confirmed in the 4-week A. versicolor exposed midbrain tissue, highlighting that gene expression important for neurotransmission was affected by repeated A. versicolor inhalation exposure. Taken together, these findings indicate that the brain can detect and respond to A. versicolor inhalation exposure with changes in neuroimmune and neurotransmission gene expression, providing much needed insight into how inhaled fungal exposures can affect CNS responses and regulate neuroimmune homeostasis.
Insights
Inhaled Aspergillus exposure triggers neuroinflammation and alters neurotransmission genes in mice brains. This study reveals how fungal spores impact central nervous system (CNS) health and neuroimmune homeostasis.
Area of Science:
- Environmental Health
- Neuroscience
- Toxicology
Background:
- Indoor fungal exposure is linked to adverse central nervous system (CNS) health outcomes.
- The precise mechanisms by which fungi affect the brain remain poorly understood.
Purpose of the Study:
- To investigate the impact of viable Aspergillus versicolor inhalation on mouse brain neuroimmune responses and gene expression.
- To elucidate the mechanisms underlying fungal-induced CNS alterations.
Main Methods:
- Mice were exposed via nose-only inhalation to filtered air, inactivated, or viable Aspergillus versicolor spores for 1, 2, or 4 weeks.
- Gene expression analysis (including Bulk RNA-seq) of cortex, midbrain, olfactory bulb, and cerebellum tissues.
- Focused on pro-inflammatory, glial activity, and neurotransmission-related genes.
Main Results:
- Viable Aspergillus versicolor exposure significantly elevated pro-inflammatory (Tnf, Il1b) and glial activity (Gdnf, Cxc3r1) gene expression in multiple brain regions.
- A pronounced neuroimmune response was observed in the midbrain and frontal lobe 48 hours after 4 weeks of exposure.
- Transcriptional analysis revealed enrichment of neuroinflammation, glial cell activation, and postsynaptic organization pathways.
- Upregulation of neurotransmission-associated genes (Drd1, Penk, Pdyn) was confirmed in the midbrain.
Conclusions:
- The brain detects and responds to Aspergillus versicolor inhalation exposure.
- Fungal exposure induces changes in neuroimmune gene expression and neurotransmission pathways.
- These findings offer critical insights into how inhaled fungi affect CNS responses and neuroimmune homeostasis.
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