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Updated: Feb 8, 2026

Investigating Alterations in Caecum Microbiota After Traumatic Brain Injury in Mice
Published on: September 19, 2019
Moderate Traumatic Brain Injury Alters the Gastrointestinal Microbiome in a Time-Dependent Manner
Susannah E Nicholson1, Lora T Watts2, David M Burmeister3
1Department of Surgery, The University of Texas Health Science Center at San Antonio, San Antonio, Texas.
Abstract:
The microbiome is defined as the collective genomes of the microbes (composed of bacteria, bacteriophage, fungi, protozoa, and viruses) that colonize the human body, and alterations have been associated with a number of disease states. Changes in gut commensals can influence the neurologic system via the brain-gut axis, and systemic insults such as trauma or traumatic brain injury (TBI) may alter the gut microbiome. The objective of this study was to evaluate the gut microbiome in a preclinical TBI cortical impact model. Male rats underwent craniotomy and randomized to a sham group (n = 4), or a moderate TBI (n = 10) using a pneumatic impactor. MRI and behavioral assessments were performed pre-TBI and on days 2, 7, and 14 days thereafter. Microbiome composition was determined with 16s rRNA sequencing from fecal sample DNA pre-TBI and 2 hrs, 1, 3, and 7 days afterward. Alpha- and β-bacterial diversity, as well as organizational taxonomic units (OTUs), were determined. Significant changes in the gut microbiome were evident as early as 2 h after TBI as compared with pre-injured samples and sham rats. While there were varying trends among the phylogenetic families across time, some changes persisted through 7 days in the absence of therapeutic intervention. While large structural lesions and behavioral deficits were apparent post-TBI, there were modest but significant decreases in α-diversity. Moreover, both changes in representative phyla and α-diversity measures were significantly correlated with MRI-determined lesion volume. These results suggest that changes in the microbiome may represent a novel biomarker to stage TBI severity and predict functional outcome.
Insights
Traumatic brain injury (TBI) significantly alters the gut microbiome within hours, with changes persisting for days. Gut microbiome shifts correlate with injury severity and may serve as a TBI biomarker.
Area of Science:
- Microbiome research
- Neuroscience
- Traumatic Brain Injury (TBI) modeling
Background:
- The human microbiome, encompassing diverse microbes, is linked to various diseases.
- Gut microbiome alterations can impact the brain via the brain-gut axis.
- Systemic insults like TBI may disrupt the gut microbiome composition.
Purpose of the Study:
- To investigate gut microbiome changes in a preclinical model of TBI.
- To assess the correlation between gut microbiome alterations and TBI severity.
Main Methods:
- Male rats were subjected to sham procedures or moderate TBI via a pneumatic impactor.
- Magnetic Resonance Imaging (MRI) and behavioral tests were conducted.
- Fecal samples were analyzed using 16S rRNA sequencing to determine microbiome composition and diversity (alpha and beta) at multiple time points post-injury.
Main Results:
- Significant gut microbiome alterations were observed as early as 2 hours post-TBI compared to pre-injury and sham groups.
- Some microbiome changes persisted up to 7 days post-TBI without intervention.
- Modest but significant decreases in alpha-diversity were noted, correlating with MRI-determined lesion volume and behavioral deficits.
Conclusions:
- TBI induces rapid and persistent changes in the gut microbiome.
- Gut microbiome composition and diversity changes correlate with TBI severity.
- The gut microbiome may serve as a novel biomarker for staging TBI severity and predicting functional outcomes.
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