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Surgical Trauma in Mice Modifies the Content of Circulating Extracellular Vesicles
Souren Mkrtchian1, Anette Ebberyd1, Rosanne E Veerman2
1Department of Physiology and Pharmacology, Section for Anesthesiology and Intensive Care Medicine, Karolinska Institutet, Stockholm, Sweden.
Abstract:
Surgical interventions rapidly trigger a cascade of molecular, cellular, and neural signaling responses that ultimately reach remote organs, including the brain. Using a mouse model of orthopedic surgery, we have previously demonstrated hippocampal metabolic, structural, and functional changes associated with cognitive impairment. However, the nature of the underlying signals responsible for such periphery-to-brain communication remains hitherto elusive. Here we present the first exploratory study that tests the hypothesis of extracellular vesicles (EVs) as potential mediators carrying information from the injured tissue to the distal organs including the brain. The primary goal was to investigate whether the cargo of circulating EVs after surgery can undergo quantitative changes that could potentially trigger phenotypic modifications in the target tissues. EVs were isolated from the serum of the mice subjected to a tibia surgery after 6, 24, and 72 h, and the proteome and miRNAome were investigated using mass spectrometry and RNA-seq approaches. We found substantial differential expression of proteins and miRNAs starting at 6 h post-surgery and peaking at 24 h. Interestingly, one of the up-regulated proteins at 24 h was α-synuclein, a pathogenic hallmark of certain neurodegenerative syndromes. Analysis of miRNA target mRNA and corresponding biological pathways indicate the potential of post-surgery EVs to modify the extracellular matrix of the recipient cells and regulate metabolic processes including fatty acid metabolism. We conclude that surgery alters the cargo of circulating EVs in the blood, and our results suggest EVs as potential systemic signal carriers mediating remote effects of surgery on the brain.
Insights
Surgery alters circulating extracellular vesicles (EVs), potentially mediating brain changes. This study reveals EVs carry molecular signals from injury sites, impacting remote organs like the brain.
Area of Science:
- Neuroscience
- Molecular Biology
- Biochemistry
Background:
- Surgical procedures induce systemic responses affecting distant organs, including the brain.
- Previous work demonstrated orthopedic surgery causes hippocampal changes linked to cognitive deficits.
- The specific signaling mechanisms for periphery-to-brain communication post-surgery are not well understood.
Purpose of the Study:
- To investigate extracellular vesicles (EVs) as mediators of communication from surgical injury sites to the brain.
- To determine if the molecular cargo of circulating EVs changes quantitatively after surgery.
- To explore if these cargo changes could induce phenotypic modifications in target tissues.
Main Methods:
- Isolation of EVs from mouse serum at 6, 24, and 72 hours post-tibia surgery.
- Proteomic analysis using mass spectrometry to identify protein cargo.
- miRNAomic analysis using RNA-sequencing to profile microRNA cargo.
Main Results:
- Significant differential expression of proteins and microRNAs in circulating EVs detected as early as 6 hours post-surgery, peaking at 24 hours.
- Up-regulation of alpha-synuclein, a protein associated with neurodegenerative diseases, observed at 24 hours post-surgery.
- Analysis suggests post-surgery EVs can modify extracellular matrix and regulate metabolic pathways, including fatty acid metabolism.
Conclusions:
- Surgical interventions significantly alter the molecular cargo of circulating EVs.
- EVs are proposed as potential systemic carriers transmitting remote effects of surgery to the brain.
- Findings highlight EVs as a novel mechanism linking peripheral injury to central nervous system responses.
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