Submitted:
28 July 2025
Posted:
29 July 2025
You are already at the latest version
Abstract
Keywords:
1. Introduction
2. Materials and Methods
3. Results
3.1. Dopaminergic Signaling and Pain Regulation
3.2. Serotonergic and Noradrenergic Pathways
3.3. Brain-Derived Neurotrophic Factor (BDNF)
3.4. Neuropeptides: Substance P and CGRP
3.5. Glial Cells and Neuroimmune Crosstalk
3.6. Transcriptomics and Functional Neuroimaging
4. Discussion
Limitations
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| ACC | Anterior Cingulate Cortex |
| BDNF | Brain-Derived Neurotrophic Factor |
| CALCA | Calcitonin Gene-Related Peptide Alpha |
| cAMP | Cyclic Adenosine Monophosphate |
| CCL2 | C-C Motif Chemokine Ligand 2 |
| CGRP | Calcitonin Gene-Related Peptide |
| CLR | Calcitonin Receptor-Like Receptor |
| CNS | Central Nervous System |
| CPM | Conditioned Pain Modulation |
| CRPS | Complex Regional Pain Syndrome |
| CSF | Cerebrospinal Fluid |
| CXCL1 | C-X-C Motif Chemokine Ligand 1 |
| CX3CL1 | C-X3-C Motif Chemokine Ligand 1 |
| CX3CR1 | C-X3-C Motif Chemokine Receptor 1 |
| DNIC | Diffuse Noxious Inhibitory Control |
| DMN | Default Mode Network |
| DRG | Dorsal Root Ganglion |
| EMA | European Medicines Agency |
| FDA | Food and Drug Administration |
| fMRI | Functional Magnetic Resonance Imaging |
| GABA | Gamma-Aminobutyric Acid |
| 5-HT | 5-Hydroxytryptamine (Serotonin) |
| IL-1β | Interleukin-1 Beta |
| IL-6 | Interleukin-6 |
| IL-10 | Interleukin-10 |
| IL-12 | Interleukin-12 |
| IL-23 | Interleukin-23 |
| iNOS | Inducible Nitric Oxide Synthase |
| KCC2 | Potassium-Chloride Co-transporter 2 |
| LTP | Long-Term Potentiation |
| mPFC | Medial Prefrontal Cortex |
| MyD88 | Myeloid Differentiation Primary Response 88 |
| NAc | Nucleus Accumbens |
| NE | Norepinephrine |
| NF-κB | Nuclear Factor Kappa B |
| NK1 | Neurokinin-1 |
| NLRP3 | NLR Family Pyrin Domain Containing 3 |
| NMDA | N-methyl-D-aspartate |
| NNT | Number Needed to Treat |
| P2X7 | P2X Purinoceptor 7 |
| PAG | Periaqueductal Gray |
| PBMCs | Peripheral Blood Mononuclear Cells |
| PET | Positron Emission Tomography |
| PNS | Peripheral Nervous System |
| PRISMA | Preferred Reporting Items for Systematic Reviews and Meta-Analyses |
| QST | Quantitative Sensory Testing |
| RAMP1 | Receptor Activity-Modifying Protein 1 |
| RCP | Receptor Component Protein |
| RCTs | Randomized Controlled Trials |
| RNA | Ribonucleic Acid |
| RVM | Rostral Ventromedial Medulla |
| SANRA | Scale for the Assessment of Narrative Review Articles |
| SCN9A | Sodium Voltage-Gated Channel Alpha Subunit 9 |
| scRNA-seq | Single-Cell RNA Sequencing |
| SNRIs | Serotonin-Norepinephrine Reuptake Inhibitors |
| TAC1 | Tachykinin Precursor 1 |
| TGF-β | Transforming Growth Factor Beta |
| TLR4 | Toll-Like Receptor 4 |
| TNF-α | Tumor Necrosis Factor Alpha |
| TrkB | Tropomyosin Receptor Kinase B |
| TRPV1 | Transient Receptor Potential Vanilloid 1 |
| TSPO | Translocator Protein |
| VTA | Ventral Tegmental Area |
| WoS | Web of Science |
References
- Goldberg DS, McGee SJ. Pain as a global public health priority. BMC Public Health 2011, 11, 770. [Google Scholar] [CrossRef]
- Dahlhamer J, Lucas J, Zelaya C, et al. Prevalence of chronic pain and high-impact chronic pain among adults---United States, 2016. MMWR Morb Mortal Wkly Rep 2018, 67, 1001–1006. [Google Scholar] [CrossRef] [PubMed]
- Tracey I, Bushnell MC. How neuroimaging studies have challenged us to rethink: is chronic pain a disease? J Pain 2009, 10, 1113–1120. [Google Scholar] [CrossRef]
- Woolf, CJ. Central sensitization: implications for the diagnosis and treatment of pain. Pain. 2011, 152, S2–S15. [Google Scholar] [CrossRef]
- Kuner R, Flor H. Structural plasticity and reorganisation in chronic pain. Nat Rev Neurosci 2017, 18, 20–30. [Google Scholar] [CrossRef]
- Denk F, McMahon SB, Tracey I. Pain vulnerability: a neurobiological perspective. Nat Neurosci 2014, 17, 192–200. [Google Scholar] [CrossRef]
- Grace PM, Hutchinson MR, Maier SF, Watkins LR. Pathological pain and the neuroimmune interface. Nat Rev Immunol 2014, 14, 217–231. [Google Scholar] [CrossRef]
- Basbaum AI, Bautista DM, Scherrer G, Julius D. Cellular and molecular mechanisms of pain. Cell 2009, 139, 267–284. [Google Scholar] [CrossRef]
- Yarnitsky, D. Role of endogenous pain modulation in chronic pain mechanisms and treatment. Pain. 2015, 156 (Suppl. S1), S24–S31. [Google Scholar] [CrossRef] [PubMed]
- Lewis GN, Heales L, Rice DA, et al. Reliability of conditioned pain modulation and its association with clinical pain and psychological variables in knee osteoarthritis. Pain 2012, 153, 604–611. [Google Scholar] [CrossRef]
- Loggia ML, Berna C, Kim J, et al. Disrupted brain circuitry for pain-related reward/punishment in fibromyalgia. Arthritis Rheumatol 2014, 66, 203–212. [Google Scholar] [CrossRef]
- Taylor AMW, Becker S, Schweinhardt P, Cahill C. Mesolimbic dopamine signaling in acute and chronic pain: implications for motivation, analgesia, and addiction. Pain 2016, 157, 1194–1198. [Google Scholar] [CrossRef]
- Coull JAM, Beggs S, Boudreau D, et al. BDNF from microglia causes the shift in neuronal anion gradient underlying neuropathic pain. Nature 2005, 438, 1017–1021. [Google Scholar] [CrossRef] [PubMed]
- Ji RR, Nackley A, Huh Y, et al. Neuroinflammation and central sensitization in chronic and widespread pain. Anesthesiology 2018, 129, 343–366. [Google Scholar] [CrossRef]
- Baethge C, Goldbeck-Wood S, Mertens S. SANRA-a scale for the quality assessment of narrative review articles. Res Integr Peer Rev. 2019, 4, 5. [Google Scholar] [CrossRef]
- Vincent KF, Solt K. Modulating anesthetic emergence with pathway-selective dopamine signaling. Curr Opin Anaesthesiol. 2023, 36, 468–475. [Google Scholar] [CrossRef]
- Bannister K, Dickenson AH. What do monoamines do in pain modulation? Curr Opin Support Palliat Care. 2016, 10, 143–8. [Google Scholar] [CrossRef] [PubMed]
- Bravo L, Llorca-Torralba M, Berrocoso E, Micó JA. Monoamines as Drug Targets in Chronic Pain: Focusing on Neuropathic Pain. Front Neurosci. 2019, 13, 1268. [Google Scholar] [CrossRef]
- Argoff, C. Mechanisms of pain transmission and pharmacologic management. Curr Med Res Opin. 2011, 27, 2019–31. [Google Scholar] [CrossRef] [PubMed]
- Ashida M, Murayama N, Kamio Y, Yozaki M, Kuwatsuka Y, Nakahara T, Murota H. Blood levels of neurotransmitters in Yusho patients: An approach via the descending pain inhibitory pathway for persistent sensory disturbance. J Dermatol. 2025, 52, 934–938. [Google Scholar] [CrossRef]
- Meseguer-Beltrán M, Sánchez-Sarasúa S, Landry M, Kerekes N, Sánchez-Pérez AM. Targeting Neuroinflammation with Abscisic Acid Reduces Pain Sensitivity in Females and Hyperactivity in Males of an ADHD Mice Model. Cells. 2023, 12, 465. [Google Scholar] [CrossRef]
- Lançon K, Tian J, Bach H, Drapeau P, Poulin JF, Séguéla P. Synergistic deficits in parvalbumin interneurons and dopamine signaling drive ACC dysfunction in chronic pain. Proc Natl Acad Sci U S A. 2025, 122, e2502558122. [Google Scholar] [CrossRef] [PubMed]
- Li C, Sugam JA, Lowery-Gionta EG, McElligott ZA, McCall NM, Lopez AJ, McKlveen JM, Pleil KE, Kash TL. Mu Opioid Receptor Modulation of Dopamine Neurons in the Periaqueductal Gray/Dorsal Raphe: A Role in Regulation of Pain. Neuropsychopharmacology. 2016, 41, 2122–32. [Google Scholar] [CrossRef]
- Sheng HY, Qu CL, Huo FQ, Du JQ, Tang JS. D2-like but not D1-like dopamine receptors are involved in the ventrolateral orbital cortex-induced antinociception: a GABAergic modulation mechanism. Exp Neurol. 2009, 215, 128–34. [Google Scholar] [CrossRef]
- Leknes S, Tracey I. A common neurobiology for pain and pleasure. Nat Rev Neurosci. 2008, 9, 314–20. [Google Scholar] [CrossRef]
- Navratilova E, Porreca F. Reward and motivation in pain and pain relief. Nat Neurosci. 2014, 17, 1304–12. [Google Scholar] [CrossRef]
- Porreca F, Navratilova E. Reward, motivation, and emotion of pain and its relief. Pain. 2017, 158 (Suppl S1), S43–S49. [Google Scholar] [CrossRef] [PubMed]
- Arora V, Morado-Urbina CE, Aschenbrenner CA, Hayashida K, Wang F, Martin TJ, Eisenach JC, Peters CM. Disruption of Spinal Noradrenergic Activation Delays Recovery of Acute Incision-Induced Hypersensitivity and Increases Spinal Glial Activation in the Rat. J Pain. 2016, 17, 190–202. [Google Scholar] [CrossRef]
- Wood PB, Schweinhardt P, Jaeger E, Dagher A, Hakyemez H, Rabiner EA, Bushnell MC, Chizh BA. Fibromyalgia patients show an abnormal dopamine response to pain. Eur J Neurosci. 2007, 25, 3576–82. [Google Scholar] [CrossRef]
- Garcia Guerra S, Spadoni A, Mitchell J, Strigo IA. Pain-related opioidergic and dopaminergic neurotransmission: Dual meta-Analyses of PET radioligand studies. Brain Res. 2023, 1805, 148268. [Google Scholar] [CrossRef]
- Martikainen IK, Nuechterlein EB, Peciña M, Love TM, Cummiford CM, Green CR, Stohler CS, Zubieta JK. Chronic Back Pain Is Associated with Alterations in Dopamine Neurotransmission in the Ventral Striatum. J Neurosci. 2015, 35, 9957–65. [Google Scholar] [CrossRef] [PubMed]
- Loggia ML, Berna C, Kim J, Cahalan CM, Gollub RL, Wasan AD, Harris RE, Edwards RR, Napadow V. Disrupted brain circuitry for pain-related reward/punishment in fibromyalgia. Arthritis Rheumatol. 2014, 66, 203–12. [Google Scholar] [CrossRef]
- Liu YY, Wang TX, Zhou JC, Qu WM, Huang ZL. Dopamine D₁ and D₂ receptors mediate analgesic and hypnotic effects of l-tetrahydropalmatine in a mouse neuropathic pain model. Psychopharmacology (Berl). 2019, 236, 3169–3182. [Google Scholar] [CrossRef]
- Taylor BK, Joshi C, Uppal H. Stimulation of dopamine D2 receptors in the nucleus accumbens inhibits inflammatory pain. Brain Res. 2003, 987, 135–43. [Google Scholar] [CrossRef]
- Fernandes EC, Pechincha C, Luz LL, Kokai E, Szucs P, Safronov BV. Primary afferent-driven presynaptic inhibition of C-fiber inputs to spinal lamina I neurons. Prog Neurobiol. 2020, 188, 101786. [Google Scholar] [CrossRef]
- Borsook D, Linnman C, Faria V, Strassman AM, Becerra L, Elman I. Reward deficiency and anti-reward in pain chronification. Neurosci Biobehav Rev. 2016, 68, 282–297. [Google Scholar] [CrossRef] [PubMed]
- Waisman A, Katz J. The autobiographical memory system and chronic pain: A neurocognitive framework for the initiation and maintenance of chronic pain. Neurosci Biobehav Rev. 2024, 162, 105736. [Google Scholar] [CrossRef]
- Moisset X, Lanteri-Minet M, Fontaine D. Neurostimulation methods in the treatment of chronic pain. J Neural Transm (Vienna). 2020, 127, 673–686. [Google Scholar] [CrossRef]
- Guo Q, Jin Y, Chen X, Ye X, Shen X, Lin M, Zeng C, Zhou T, Zhang J. NF-κB in biology and targeted therapy: new insights and translational implications. Signal Transduct Target Ther. 2024, 9, 53. [Google Scholar] [CrossRef]
- Manda O, Hadjivassiliou M, Varrassi G, Zavridis P, Zis P. Exploring the Role of the Cerebellum in Pain Perception: A Narrative Review. Pain Ther. 2025, 14, 803–816. [Google Scholar] [CrossRef]
- Ossipov MH, Morimura K, Porreca F. Descending pain modulation and chronification of pain. Curr Opin Support Palliat Care. 2014, 8, 143–51. [Google Scholar] [CrossRef]
- Heinricher MM, Tavares I, Leith JL, Lumb BM. Descending control of nociception: Specificity, recruitment and plasticity. Brain Res Rev. 2009, 60, 214–25. [Google Scholar] [CrossRef]
- Millan, MJ. Descending control of pain. Prog Neurobiol. 2002, 66, 355–474. [Google Scholar] [CrossRef]
- Bannister K, Dickenson AH. The plasticity of descending controls in pain: translational probing. J Physiol. 2017, 595, 4159–4166. [Google Scholar] [CrossRef]
- Kim W, Angulo MC. Unraveling the role of oligodendrocytes and myelin in pain. J Neurochem. 2025, 169, e16206. [Google Scholar] [CrossRef]
- Häuser W, Wolfe F, Tölle T, Uçeyler N, Sommer C. The role of antidepressants in the management of fibromyalgia syndrome: a systematic review and meta-analysis. CNS Drugs. 2012, 26, 297–307. [Google Scholar] [CrossRef] [PubMed]
- Lunn MP, Hughes RA, Wiffen PJ. Duloxetine for treating painful neuropathy, chronic pain or fibromyalgia. Cochrane Database Syst Rev. 2014, 2014, CD007115. [Google Scholar] [CrossRef]
- Welsch P, Üçeyler N, Klose P, Walitt B, Häuser W. Serotonin and noradrenaline reuptake inhibitors (SNRIs) for fibromyalgia. Cochrane Database Syst Rev. 2018, 2, CD010292. [Google Scholar] [CrossRef]
- Yarnitsky D, Granot M, Nahman-Averbuch H, Khamaisi M, Granovsky Y. Conditioned pain modulation predicts duloxetine efficacy in painful diabetic neuropathy. Pain. 2012, 153, 1193–1198. [Google Scholar] [CrossRef]
- Cao B, Xu Q, Shi Y, Zhao R, Li H, Zheng J, Liu F, Wan Y, Wei B. Pathology of pain and its implications for therapeutic interventions. Signal Transduct Target Ther. 2024, 9, 155. [Google Scholar] [CrossRef] [PubMed]
- Asimakopoulos T, Tsaroucha A, Kouri M, Pasqualucci A, Varrassi G, Leoni MLG, Rekatsina M. The Role of Biomarkers in Acute Pain: A Narrative Review. Pain Ther. 2025, 14, 775–789. [Google Scholar] [CrossRef]
- Park H, Poo MM. Neurotrophin regulation of neural circuit development and function. Nat Rev Neurosci. 2013, 14, 7–23. [Google Scholar] [CrossRef]
- Pellesi L, Yangjeh A, Hajjaj I, Lababidi M, Sarwar F, Wang W, Martelletti P. Neurotransmitter Imbalance in Tension-Type Headache: A Systematic Review of Mechanisms and Therapeutic Targets. Pain Ther. 2025. [CrossRef]
- Stefani LC, Leite FM, da Graça L Tarragô M, Zanette SA, de Souza A, Castro SM, Caumo W. BDNF and serum S100B levels according the spectrum of structural pathology in chronic pain patients. Neurosci Lett. 2019, 706, 105–109. [Google Scholar] [CrossRef]
- Ranzolin A, Duarte AL, Bredemeier M, da Costa Neto CA, Ascoli BM, Wollenhaupt-Aguiar B, Kapczinski F, Xavier RM. Evaluation of cytokines, oxidative stress markers and brain-derived neurotrophic factor in patients with fibromyalgia - A controlled cross-sectional study. Cytokine. 2016, 84, 25–8. [Google Scholar] [CrossRef]
- Khan N, Smith MT. Neurotrophins and Neuropathic Pain: Role in Pathobiology. Molecules. 2015, 20, 10657–88. [Google Scholar] [CrossRef]
- Merighi A, Salio C, Ghirri A, Lossi L, Ferrini F, Betelli C, Bardoni R. BDNF as a pain modulator. Prog Neurobiol. 2008, 85, 297–317. [Google Scholar] [CrossRef] [PubMed]
- Merighi, A. Brain-Derived Neurotrophic Factor, Nociception, and Pain. Biomolecules. 2024, 14, 539. [Google Scholar] [CrossRef] [PubMed]
- Ma JJ, Zhang TY, Diao XT, Yao L, Li YX, Suo ZW, Yang X, Hu XD, Liu YN. BDNF modulated KCC2 ubiquitylation in spinal cord dorsal horn of mice. Eur J Pharmacol. 2021, 906, 174205. [Google Scholar] [CrossRef] [PubMed]
- McDonough KE, Hammond R, Wang J, Tierney J, Hankerd K, Chung JM, La JH. Spinal GABAergic disinhibition allows microglial activation mediating the development of nociplastic pain in male mice. Brain Behav Immun. 2023, 107, 215–224. [Google Scholar] [CrossRef] [PubMed]
- Constandil L, Goich M, Hernández A, Bourgeais L, Cazorla M, Hamon M, Villanueva L, Pelissier T. Cyclotraxin-B, a new TrkB antagonist, and glial blockade by propentofylline, equally prevent and reverse cold allodynia induced by BDNF or partial infraorbital nerve constriction in mice. J Pain. 2012, 13, 579–89. [Google Scholar] [CrossRef]
- Mazzitelli M, Kiritoshi T, Presto P, Hurtado Z, Antenucci N, Ji G, Neugebauer V. BDNF Signaling and Pain Modulation. Cells. 2025, 14, 476. [Google Scholar] [CrossRef]
- Jaffal, SM. Neuroplasticity in chronic pain: insights into diagnosis and treatment. Korean J Pain. 2025, 38, 89–102. [Google Scholar] [CrossRef] [PubMed]
- Casey CS, Pölkki M, Suvanen EK, Iso-Mustajärvi I, Purmonen T, Peltonen EJ, Appel CK, Patel NJ, Von Arx LB. A National Cross-Sectional Survey on Real-World Experiences of Calcitonin Gene-Related Peptide (CGRP) Monoclonal Antibody Use in Adults with Migraine in Finland. Pain Ther. 2025, 14, 1045–1061. [Google Scholar] [CrossRef]
- Russell FA, King R, Smillie SJ, Kodji X, Brain SD. Calcitonin gene-related peptide: physiology and pathophysiology. Physiol Rev. 2014, 94, 1099–142. [Google Scholar] [CrossRef]
- Pinho-Ribeiro FA, Verri WA Jr, Chiu IM. Nociceptor Sensory Neuron-Immune Interactions in Pain and Inflammation. Trends Immunol. 2017, 38, 5–19. [Google Scholar] [CrossRef] [PubMed]
- Cai W, Khoutorsky A. Revisiting the role of Substance P and CGRPα. Elife. 2025, 14, e106766. [Google Scholar] [CrossRef]
- Zieglgänsberger, W. Substance P and pain chronicity. Cell Tissue Res. 2019, 375, 227–241. [Google Scholar] [CrossRef]
- Boyer N, Dallel R, Artola A, Monconduit L. General trigeminospinal central sensitization and impaired descending pain inhibitory controls contribute to migraine progression. Pain. 2014, 155, 1196–1205. [Google Scholar] [CrossRef]
- Lorincz D, Drury HR, Lim R, Brichta AM. Immunohistochemical Identification of Sensory Neuropeptides Calcitonin Gene-Related Peptide, Substance P, and Pituitary Adenylate Cyclase-Activating Polypeptide in Efferent Vestibular Nucleus Neurons. Neuroendocrinology. 2025, 115, 269–282. [Google Scholar] [CrossRef]
- Edvinsson L, Haanes KA, Warfvinge K, Krause DN. CGRP as the target of new migraine therapies - successful translation from bench to clinic. Nat Rev Neurol. 2018, 14, 338–350. [Google Scholar] [CrossRef] [PubMed]
- Iyengar S, Ossipov MH, Johnson KW. The role of calcitonin gene-related peptide in peripheral and central pain mechanisms including migraine. Pain. 2017, 158, 543–559. [Google Scholar] [CrossRef]
- Marshall A, Elshafei M, Preston FG, Burgess J, Goodson N, Fallon N, Frank B, Zhao SS, Alam U. Small Fibre Pathology in Fibromyalgia: A review. Pain Ther. 2025, 14, 461–478. [Google Scholar] [CrossRef]
- Seng E, Lampl C, Viktrup L, Lenderking WR, Karn H, Hoyt M, Kim G, Ruff D, Ossipov MH, Vincent M. Patients' Experiences During the Long Journey Before Initiating Migraine Prevention with a Calcitonin Gene-Related Peptide (CGRP) Monoclonal Antibody (mAb). Pain Ther. 2024, 13, 1589–1615. [Google Scholar] [CrossRef]
- Taylor SS, Noor N, Urits I, Paladini A, Sadhu MS, Gibb C, Carlson T, Myrcik D, Varrassi G, Viswanath O. Complex Regional Pain Syndrome: A Comprehensive Review. Pain Ther. 2021, 10, 875–892. [Google Scholar] [CrossRef] [PubMed]
- Christiansen IM, Reducha PV, Edvinsson L, Holm A, Haanes KA. Ex vivo stimulation of the trigeminal nucleus caudalis induces peripheral CGRP release in the trigeminal ganglion and reveals a distinct dopamine-endocannabinoid mechanism relevant to migraine. J Headache Pain. 2025, 26, 141. [Google Scholar] [CrossRef]
- Goadsby PJ, Reuter U, Hallström Y, Broessner G, Bonner JH, Zhang F, Sapra S, Picard H, Mikol DD, Lenz RA. A Controlled Trial of Erenumab for Episodic Migraine. N Engl J Med. 2017, 377, 2123–2132. [Google Scholar] [CrossRef]
- Silberstein SD, Dodick DW, Bigal ME, Yeung PP, Goadsby PJ, Blankenbiller T, Grozinski-Wolff M, Yang R, Ma Y, Aycardi E. Fremanezumab for the Preventive Treatment of Chronic Migraine. N Engl J Med. 2017, 377, 2113–2122. [Google Scholar] [CrossRef]
- Dodick DW, Ashina M, Brandes JL, Kudrow D, Lanteri-Minet M, Osipova V, Palmer K, Picard H, Mikol DD, Lenz RA. ARISE: A Phase 3 randomized trial of erenumab for episodic migraine. Cephalalgia. 2018, 38, 1026–1037. [Google Scholar] [CrossRef]
- Yamamoto S, Fang J, Eter A, Liu G, Nguyen A, Chung JM, La JH. The Role of NMDA and NK1 Receptor Signaling in Spine Surgery-induced Central Sensitization. Spine (Phila Pa 2025. [CrossRef]
- Rekatsina M, Paladini A, Piroli A, Zis P, Pergolizzi JV, Varrassi G. Pathophysiologic Approach to Pain Therapy for Complex Pain Entities: A Narrative Review. Pain Ther. 2020, 9, 7–21. [Google Scholar] [CrossRef]
- Inoue K, Tsuda M. Microglia in neuropathic pain: cellular and molecular mechanisms and therapeutic potential. Nat Rev Neurosci. 2018, 19, 138–152. [Google Scholar] [CrossRef]
- Prinz M, Jung S, Priller J. Microglia Biology: One Century of Evolving Concepts. Cell. 2019, 179, 292–311. [Google Scholar] [CrossRef] [PubMed]
- Wang Y, Leak RK, Cao G. Microglia-mediated neuroinflammation and neuroplasticity after stroke. Front Cell Neurosci. 2022, 16, 980722. [Google Scholar] [CrossRef]
- Yuan Y, Liu H, Dai Z, He C, Qin S, Su Z. From Physiology to Pathology of Astrocytes: Highlighting Their Potential as Therapeutic Targets for CNS Injury. Neurosci Bull. 2025, 41, 131–154. [Google Scholar] [CrossRef]
- Liu Y, Cai X, Shi B, Mo Y, Zhang J, Luo W, Yu B, Li X. Mechanisms and Therapeutic Prospects of Microglia-Astrocyte Interactions in Neuropathic Pain Following Spinal Cord Injury. Mol Neurobiol. 2025, 62, 4654–4676. [Google Scholar] [CrossRef]
- Kumar S, Sharma V, Yadav S. TLR4 Targeting: A Promising Therapeutic Approach Across Multiple Human Diseases. Curr Protein Pept Sci 2025, 26, 241–258. [Google Scholar] [CrossRef] [PubMed]
- Tewari M, Michalski S, Egan TM. Modulation of Microglial Function by ATP-Gated P2X7 Receptors: Studies in Rat, Mice and Human. Cells. 2024, 13, 161. [Google Scholar] [CrossRef]
- Haidar MA, Ibeh S, Shakkour Z, Reslan MA, Nwaiwu J, Moqidem YA, Sader G, Nickles RG, Babale I, Jaffa AA, Salama M, Shaito A, Kobeissy F. Crosstalk between Microglia and Neurons in Neurotrauma: An Overview of the Underlying Mechanisms. Curr Neuropharmacol 2022, 20, 2050–2065. [Google Scholar] [CrossRef]
- Mogil JS, Parisien M, Esfahani SJ, Diatchenko L. Sex differences in mechanisms of pain hypersensitivity. Neurosci Biobehav Rev. 2024, 163, 105749. [Google Scholar] [CrossRef]
- Sorge RE, Mapplebeck JC, Rosen S, Beggs S, Taves S, Alexander JK, Martin LJ, Austin JS, Sotocinal SG, Chen D, Yang M, Shi XQ, Huang H, Pillon NJ, Bilan PJ, Tu Y, Klip A, Ji RR, Zhang J, Salter MW, Mogil JS. Different immune cells mediate mechanical pain hypersensitivity in male and female mice. Nat Neurosci. 2015, 18, 1081–3. [Google Scholar] [CrossRef]
- Bartley EJ, Fillingim RB. Sex differences in pain: a brief review of clinical and experimental findings. Br J Anaesth 2013, 111, 52–58. [Google Scholar] [CrossRef]
- Lisse TS, Thiele F, Fuchs H, et al. ER stress-mediated apoptosis in a new mouse model for osteogenesis imperfecta. PLoS Genet 2008, 4, e7. [Google Scholar] [CrossRef]
- Greenspan JD, Craft RM, LeResche L, et al. Studying sex and gender differences in pain and analgesia: a consensus report. Pain. 2007, 132, S26–45. [CrossRef] [PubMed]
- Martin VT, Behbehani M. Ovarian hormones and migraine headache: understanding mechanisms and pathogenesis. Headache 2006, 46, 365–386. [Google Scholar] [CrossRef] [PubMed]
- Krsek A, Ostojic L, Zivalj D, Baticic L. Navigating the Neuroimmunomodulation Frontier: Pioneering Approaches and Promising Horizons-A Comprehensive Review. Int J Mol Sci. 2024, 25, 9695. [Google Scholar] [CrossRef]
- Stolfi F, Abreu H, Sinella R, Nembrini S, Centonze S, Landra V, Brasso C, Cappellano G, Rocca P, Chiocchetti A. Omics approaches open new horizons in major depressive disorder: from biomarkers to precision medicine. Front Psychiatry. 2024, 15, 1422939. [Google Scholar] [CrossRef]
- Xiong W, Liu Y, Ge X, Wang J, Wang Z. Transcriptome Analysis of Non-coding RNAs and mRNAs in the Dorsal Root Ganglion of Peripheral Nerve Injury-Induced Neuropathic Pain. Biochem Genet. 2025. [CrossRef]
- Sannes AC, Ghani U, Niazi IK, Moberget T, Jonassen R, Haavik H, Gjerstad J. Investigating Whether a Combination of Electro-Encephalography and Gene Expression Profiling Can Predict the Risk of Chronic Pain: A Protocol for an Observational Prospective Cohort Study. Brain Sci. 2024, 14, 641. [Google Scholar] [CrossRef]
- Jiang BC, Liu T, Gao YJ. Chemokines in chronic pain: cellular and molecular mechanisms and therapeutic potential. Pharmacol Ther. 2020, 212, 107581. [Google Scholar] [CrossRef]
- Xie K, Cheng X, Zhu T, Zhang D. Single-cell transcriptomic profiling of dorsal root ganglion: an overview. Front Neuroanat. 2023, 17, 1162049. [Google Scholar] [CrossRef]
- Usoskin D, Furlan A, Islam S, Abdo H, Lönnerberg P, Lou D, Hjerling-Leffler J, Haeggström J, Kharchenko O, Kharchenko PV, Linnarsson S, Ernfors P. Unbiased classification of sensory neuron types by large-scale single-cell RNA sequencing. Nat Neurosci. 2015, 18, 145–53. [Google Scholar] [CrossRef]
- Renthal W, Tochitsky I, Yang L, Cheng YC, Li E, Kawaguchi R, Geschwind DH, Woolf CJ. Transcriptional Reprogramming of Distinct Peripheral Sensory Neuron Subtypes after Axonal Injury. Neuron. 2020, 108, 128–144.e9. [Google Scholar] [CrossRef]
- Denk F, McMahon SB. Chronic pain: emerging evidence for the involvement of epigenetics. Neuron. 2012, 73, 435–44. [Google Scholar] [CrossRef]
- Kim D, Chae Y, Park HJ, Lee IS. Effects of Chronic Pain Treatment on Altered Functional and Metabolic Activities in the Brain: A Systematic Review and Meta-Analysis of Functional Neuroimaging Studies. Front Neurosci. 2021, 15, 684926. [Google Scholar] [CrossRef]
- Napadow V, LaCount L, Park K, As-Sanie S, Clauw DJ, Harris RE. Intrinsic brain connectivity in fibromyalgia is associated with chronic pain intensity. Arthritis Rheum. 2010, 62, 2545–55. [Google Scholar] [CrossRef] [PubMed]
- Ceko M, Bushnell MC, Gracely RH. Neurobiology underlying fibromyalgia symptoms. Pain Res Treat 2012, 2012, 585419. [Google Scholar] [CrossRef]
- Albrecht DS, Forsberg A, Sandström A, Bergan C, Kadetoff D, Protsenko E, Lampa J, Lee YC, Höglund CO, Catana C, Cervenka S, Akeju O, Lekander M, Cohen G, Halldin C, Taylor N, Kim M, Hooker JM, Edwards RR, Napadow V, Kosek E, Loggia ML. Brain glial activation in fibromyalgia - A multi-site positron emission tomography investigation. Brain Behav Immun. 2019, 75, 72–83. [Google Scholar] [CrossRef] [PubMed]
- Alshelh Z, Brusaferri L, Morrissey EJ, Torrado-Carvajal A, Kim M, Akeju O, Grmek G, Chane C, Murphy J, Schrepf A, Harris RE, Kwon YM, Bedair H, Siliski J, Chen AF, Melnic C, Jarraya M, Napadow V, Veronese M, Maccioni L, Edwards RR, Efthimiou N, Mohammadian M, Luo E, Pollak LE, Catana C, Toschi N, Loggia ML. Brain inflammation and its predictive value for post-operative pain in total knee arthroplasty patients. Brain Behav Immun. 2025, 128, 703–712. [Google Scholar] [CrossRef]
- Giglio M, Corriero A, Preziosa A, Varrassi G, Puntillo F. The putative role of immune-inflammatory mechanisms in nociplastic pain pathways: A narrative review. Explor Immunol 2025, 5, 1003178. [Google Scholar]
- Davis KD, Aghaeepour N, Ahn AH, et al. Discovery and validation of biomarkers to aid the development of safe and effective pain therapeutics. Nat Rev Drug Discov 2020, 19, 753–769. [Google Scholar] [CrossRef]
- LaCroix-Fralish ML, Austin JS, Zheng FY, et al. Patterns of pain: meta-analysis of microarray studies of pain. Pain 2011, 152, 1888–1898. [Google Scholar] [CrossRef]
- Skolnick, P. The challenges of animal models in conscious drug design. Nat Rev Drug Discov 2018, 17, 467–468. [Google Scholar] [CrossRef]
- Rice AS, Cimino-Brown D, Eisenach JC, et al. Animal models and the prediction of efficacy in clinical trials of analgesic drugs. Pain 2008, 139, 243–247. [Google Scholar] [CrossRef]
- Mogil, JS. Animal models of pain: progress and challenges. Nat Rev Neurosci 2009, 10, 283–294. [Google Scholar] [CrossRef]
- Hill, R. NK1 (substance P) receptor antagonists--why are they not analgesic in humans? Trends Pharmacol Sci 2000, 21, 244–246. [Google Scholar] [CrossRef] [PubMed]
- Rolan, PE. The contribution of clinical pharmacology to the development of analgesic drugs. Br J Clin Pharmacol 2018, 84, 1394–1413. [Google Scholar] [CrossRef]
- Sorge RE, Totsch SK. Sex differences in pain. J Neurosci Res 2017, 95, 1271–1281. [Google Scholar] [CrossRef] [PubMed]
- Edvinsson L, Warfvinge K. Recognizing the role of CGRP and CGRP receptors in migraine and its treatment. Cephalalgia 2019, 39, 366–373. [Google Scholar] [CrossRef]





Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2025 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).