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Published on: January 14, 2009
The temporal expression of circulating microRNAs after acute experimental pain in humans
Rocco Giordano1, Maria Carla Gerra2, Hiroai Okutani1,3
1Center for Neuroplasticity and Pain (CNAP), SMI, Aalborg University, Department of Health Science and Technology, Faculty of Medicine, Aalborg, Denmark.
Background:
MicroRNAs (miRNAs) can modulate several biological systems, including the pain system. This study aimed to evaluate the temporal expression of circulating miRNAs in the plasma of healthy volunteers as a marker for epigenetic changes before and after an acute, experimental, pain provocation by intramuscular hypertonic saline injection.
Methods:
Twenty volunteers were randomly allocated into two groups and received either hypertonic (pain) or isotonic (control) saline injection in the first dorsal interosseous muscle of their dominant hand. Pain intensity was continuously recorded for 20 minutes after injection on a VAS scale from 0 to 100 (0 indicates no pain and 100 the worst imaginable pain). Blood samples were taken at baseline, 30 minutes, 3 hours, and 24 hours post-injection, and plasma was separated. MiRNA extracts were used for RNA sequencing with the Illumina NextSeq platform. MiRNA transcripts were compared between the pain and the no-pain, control group at every time point. Significant differences were considered when folds were >2 and the False Discovery Rate was p < 0.05.
Results:
After 30 minutes, 4 miRNAs were significantly altered in the pain group compared to controls, which increased to 24 after 3 hours and to 42 after 24 hours from baseline (p < 0.0001). Two miRNAs were consistently upregulated throughout the experiment. Enrichment analysis showed significant miRNAs involved in brain perception of pain, brain signalling and response to stimuli.
Conclusions:
This exploratory study is the first to report on the temporal expression of circulating miRNAs after an acute, human experimental muscle pain model.
Significance:
This exploratory study evaluated the temporal profile of circulating miRNAs in the plasma of healthy subjects after acute experimental pain. Several miRNAs were altered in subjects at the times of follow-up after the acute pain model when compared to controls. MiRNAs previously associated with pain processes were altered in the pain group. Our results, by showing the fast and prolonged modifications of miRNA elicited by the acute experimental pain model, add new perspectives to the topic of epigenetics and pain.
Insights
Circulating microRNAs (miRNAs) in plasma change over time following acute experimental pain. These epigenetic markers show rapid and prolonged alterations, offering new insights into pain mechanisms.
Area of Science:
- Epigenetics
- Pain research
- Molecular biology
Background:
- MicroRNAs (miRNAs) play a role in regulating biological systems, including pain.
- Understanding circulating miRNA dynamics is crucial for pain research.
Purpose of the Study:
- To investigate the temporal expression of circulating miRNAs in plasma after acute experimental pain.
- To identify miRNAs as potential epigenetic markers of pain.
Main Methods:
- Healthy volunteers received experimental pain (hypertonic saline) or control (isotonic saline) injections.
- Plasma samples were collected at baseline and at 30 minutes, 3 hours, and 24 hours post-injection.
- RNA sequencing was performed to analyze miRNA expression differences between groups.
Main Results:
- Significant alterations in miRNA expression were observed in the pain group compared to controls.
- The number of altered miRNAs increased from 4 at 30 minutes to 42 at 24 hours.
- Enrichment analysis indicated involvement of these miRNAs in pain perception and response.
Conclusions:
- This study is the first to report on temporal changes in circulating miRNAs following an acute experimental pain model in humans.
- Observed miRNA modifications provide novel perspectives on the epigenetics of pain.

