Submitted:
24 March 2025
Posted:
26 March 2025
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Abstract
Keywords:
1. Introduction
2. Materials and Methods
2.1. Study Design
2.2. Methylomics
2.3. Differential Analysis
2.4. Enrichment
2.5. Methylage
3. Results and Discussion
3.1. Question 1: Impact of Time
3.2. Question 2: Impact of Stimuli on Physiological Samples
3.3. Question 3: Effects of Stimuli on Inflamed Samples
3.4. Question 4: Impact of States on Stimulus
3.5. Question 5: Differential Impact of Stimuli on PHYS
3.6. Question 6: Differential Impact of Stimuli on INFL
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Rabbani, M.; Rahman, E.; Powner, M.B.; Triantis, I.F. Making sense of electrical stimulation: a meta-analysis for wound healing. Annals of Biomedical Engineering 2024, 52, 153–177. [Google Scholar] [CrossRef] [PubMed]
- Tracey, K.J. The inflammatory reflex. Nature 2002, 420, 853–9. [Google Scholar] [CrossRef] [PubMed]
- Martelli, D.; Farmer, D.G.; Yao, S.T. The splanchnic anti-inflammatory pathway: could it be the efferent arm of the inflammatory reflex? Experimental physiology 2016, 101, 1245–1252. [Google Scholar] [CrossRef] [PubMed]
- Saha, A.; Alleyne, G. Recognizing noncommunicable diseases as a global health security threat. Bull World Health Organ 2018, 96, 792–793. [Google Scholar] [CrossRef] [PubMed]
- Di Pietro, B.; Villata, S.; Dal MOnego, S.; Degasperi, M.; Ghini, V.; Guarnieri, T.; Plaksienko, A.; Liu, Y.; Pecchioli, V.; Manni, L.; et al. Differential Anti-Inflammatory Effects of Electrostimulation in a Standardized Setting. bioRxiv, 2024. [Google Scholar]
- Horvath, S. DNA methylation age of human tissues and cell types. Genome biology 2013, 14, R115. [Google Scholar] [CrossRef] [PubMed]
- Di Lena, P.; Sala, C.; Nardini, C. Evaluation of different computational methods for DNA methylation-based biological age. Brief Bioinform 2022, 23, bbac274. [Google Scholar] [CrossRef] [PubMed]
- Yang, Z.; Wong, A.; Kuh, D.; Paul, D.S.; Rakyan, V.K.; Leslie, R.D.; Zheng, S.C.; Widschwendter, M.; Beck, S.; Teschendorff, A.E. Correlation of an epigenetic mitotic clock with cancer risk. Genome Biology 2016, 17, 205. [Google Scholar] [CrossRef] [PubMed]
- Tian, Y.; Morris, T.J.; Webster, A.P.; Yang, Z.; Beck, S.; Feber, A.; Teschendorff, A.E. ChAMP: updated methylation analysis pipeline for Illumina BeadChips. Bioinformatics 2017, 33, 3982–3984. [Google Scholar] [CrossRef] [PubMed]
- Ritchie, M.E.; Phipson, B.; Wu, D.; Hu, Y.; Law, C.W.; Shi, W.; Smyth, G.K. limma powers differential expression analyses for RNA-sequencing and microarray studies. Nucleic acids research 2015, 43, e47–e47. [Google Scholar] [CrossRef] [PubMed]
- Phipson, B.; Maksimovic, J. missMethyl: Analysing Illumina HumanMethylation BeadChip Data. dim (Mval) 2022, 1, 6. [Google Scholar]
- Durso, D.F.; Bacalini, M.G.; Sala, C.; Pirazzini, C.; Marasco, E.; Bonafé, M.; do Valle, Í.F.; Gentilini, D.; Castellani, G.; Faria, A.M.C.; et al. Acceleration of leukocytes’ epigenetic age as an early tumor and sex-specific marker of breast and colorectal cancer. Oncotarget 2017, 8, 23237–23245. [Google Scholar] [CrossRef] [PubMed]
- Kalluri, R.; Weinberg, R.A. The basics of epithelial-mesenchymal transition. J Clin Invest 2009, 119, 1420–8. [Google Scholar] [CrossRef] [PubMed]






| INFL | PHYS | ||||||||||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| NO | DC | AC | NO | DC | AC | ||||||||||||||||
| 1V | 5V | 10 Hz | 100 Hz | 1V | 5V | 10 Hz | 100 Hz | ||||||||||||||
| t0 | t1 | t48 | t1 | t48 | t1 | t48 | t1 | t48 | t1 | t48 | t0 | t1 | t48 | t1 | t48 | t1 | t48 | t1 | t48 | t1 | t48 |
| Question | Contrasts | RNA & Metabolites | mDNA & Methylage |
|---|---|---|---|
| 1. What is the impact of time? | PHYS.1vs0.NO, PHYS.48vs1.NO, PHYS.48vs0.NO, INFL.1vs0.NO, INFL.48vs1.NO, INFL.48vs0.NO, INFLvsPHYS.0.NO, INFLvsPHYS.1.NO, INFLvsPHYS.48.NO |
|
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| 2. What is the impact of stimuli on the physiological state? | PHYS.1.DC1vsNO, PHYS.1.DC5vsNO, PHYS.1.AC10vsNO, PHYS.1.AC100vsNO, PHYS.48.DC1vsNO, PHYS.48.DC5vsNO, PHYS.48.AC10vsNO, PHYS.48.AC100vsNO |
|
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| 3. What is the impact of stimuli on the inflamed state? | INFL.1.DC1vsNO, INFL.1.DC5vsNO, INFL.1.AC10vsNO, INFL.1.AC100vsNO, INFL.48.DC1vsNO, INFL.48.DC5vsNO, INFL.48.AC10vsNO, INFL.48.AC100vsNO |
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| 4. What is the impact of states on stimulus? | INFLvsPHYS.1.DC1, INFLvsPHYS.1.DC5, INFLvsPHYS.1.AC10, INFLvsPHYS.1.AC100, INFLvsPHYS.48.DC1, INFLvsPHYS.48.DC5, INFLvsPHYS.48.AC10, INFLvsPHYS.48.AC100 |
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| 5. What is the differential impact of stimuli on PHYS? | PHYS.1.DC5vsDC1, PHYS.48.DC5vsDC1, PHYS.1.AC100vsAC10, PHYS.48.AC100vsAC10, PHYS.1.DC5vsAC10, PHYS.1.DC5vsAC100, PHYS.48.DC5vsAC10, PHYS.48.DC5vsAC100, PHYS.1.DC1vsAC10, PHYS.1.DC1vsAC100, PHYS.48.DC1vsAC10, PHYS.48.DC1vsAC100 |
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| 6. What is the differential impact of stimuli on INFL? | INFL.1.DC5vsDC1, INFL.48.DC5vsDC1, INFL.1.AC100vsAC10, INFL.48.AC100vsAC10, INFL.1.DC5vsAC10, INFL.1.DC5vsAC100, INFL.48.DC5vsAC10, INFL.48.DC5vsAC100, INFL.1.DC1vsAC10, INFL.1.DC1vsAC100, INFL.48.DC1vsAC10, INFL.48.DC1vsAC100 |
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