Human α1-Antitrypsin Inhibits Nociceptor Excitability and Relieves Inflammatory and Neuropathic Pain
Abstract
1. Introduction
2. Materials and Methods
2.1. Subjects
2.2. Materials and Reagents
2.3. Preparation of Dissociated Dorsal Root Ganglion Neurons
2.4. Calcium Imaging
2.5. Measurement of Neuronal Excitability Using Whole-Cell Current-Clamp Electrophysiology
2.6. Pain Models and Behavioral Testing
2.6.1. LPS-Induced Hyperalgesia Assay (48 °C Warm Water Tail-Withdrawal Assay)
2.6.2. Formalin Assay
[average AUC in vehicle group]) × 100.
2.6.3. Neuropathic Pain Model
2.6.4. Mechanical Allodynia
2.6.5. Cold Allodynia
2.7. Statistical Methods and Data Analysis
3. Results
3.1. hAAT Inhibits LVA Ca2+ Ion Channels in Female Mouse DRGs
3.2. hAAT Decreases Evoked Action-Potential Firing Frequency of Female Mouse DRGs
3.3. hAAT Reduces LPS- and Formalin-Induced Inflammatory Pain
3.4. Reversal of Allodynia by hAAT in the Spared Nerve Injury (SNI) Model of Neuropathic Pain
4. Discussion
4.1. A Physiological Rationale for a Neuronal Role of hAAT
4.2. Selective Inhibition of LVA (T-Type) Calcium Entry as a Candidate Mechanism
4.3. Convergent Antinociception in Inflammatory Pain
4.4. Reversal of Neuropathic Hypersensitivity
4.5. Sex as a Biological Variable
4.6. Translational Implications and Physiological Interpretation
4.7. Limitations and Future Directions
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| AAT | α1-antitrypsin |
| ADAM-17 | a disintegrin and metalloproteinase 17 |
| ANOVA | analysis of variance |
| AP | action potential |
| ARRIVE | Animal Research: Reporting of In Vivo Experiments (reporting guidelines) |
| AUC | area under the curve |
| BDNF | brain-derived neurotrophic factor |
| [Ca2+]c | cytosolic (intracellular) calcium concentration |
| Cav3.2 | low-voltage-activated T-type calcium channel, Cav3.2 isoform |
| CdCl2 | cadmium chloride (non-selective HVA calcium channel blocker) |
| C.I. | confidence interval |
| CREB | cAMP response element-binding protein |
| CXCR1 | CXC chemokine receptor 1 |
| DAMPs | damage-associated molecular patterns |
| DMEM | Dulbecco’s Modified Eagle Medium |
| DMSO | dimethyl sulfoxide |
| DRG | dorsal root ganglion (ganglia) |
| ED50 | median effective dose |
| FDA | (U.S.) Food and Drug Administration |
| gp96 | glycoprotein 96 |
| hAAT | human α1-antitrypsin |
| HSP70 | heat shock protein 70 |
| HVA | high-voltage-activated (calcium channel) |
| IACUC | Institutional Animal Care and Use Committee |
| IL-1β | interleukin-1β |
| IL-6/8/10 | interleukin-6/8/10 |
| i.p. (IP) | intraperitoneal(ly) |
| i.pl. | intraplantar |
| LPS | lipopolysaccharide |
| LRP1 | low-density lipoprotein receptor-related protein 1 |
| LVA | low-voltage-activated (calcium channel) |
| NaV | voltage-gated sodium channel (isoforms NaV1.6–NaV1.9) |
| NF-κB | nuclear factor κB |
| NGF | nerve growth factor |
| NSAIDs | non-steroidal anti-inflammatory drugs |
| P2X4 | P2X purinoceptor 4 (ATP-gated ion channel) |
| PKA | protein kinase A |
| RMP | resting membrane potential |
| SCN9A/SCN10A/SCN11A | genes encoding NaV1.7/NaV1.8/NaV1.9 |
| SEM | standard error of the mean |
| SERPIN | serine protease inhibitor |
| SNI | spared nerve injury |
| SP16 | α1-antitrypsin C-terminus–derived LRP1-agonist peptide |
| TLR2/4 | Toll-like receptor 2/4 |
| TNF-α | tumor necrosis factor-α |
| TRP | transient receptor potential (channel) |
| TTA-P2 | selective T-type (Cav3.2) calcium channel blocker |
| TTX | Tetrodotoxin |
| VTD | Veratridine (pan NaV channel modifier) |
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Waters, A.L.; Loya-López, S.; Rodriguez-Palma, E.J.; Eans, S.O.; Shinouchi, R.; Stokes, J.; McLaughlin, J.P.; Song, S.; Khanna, R. Human α1-Antitrypsin Inhibits Nociceptor Excitability and Relieves Inflammatory and Neuropathic Pain. Biomolecules 2026, 16, 1074. https://doi.org/10.3390/biom16081074
Waters AL, Loya-López S, Rodriguez-Palma EJ, Eans SO, Shinouchi R, Stokes J, McLaughlin JP, Song S, Khanna R. Human α1-Antitrypsin Inhibits Nociceptor Excitability and Relieves Inflammatory and Neuropathic Pain. Biomolecules. 2026; 16(8):1074. https://doi.org/10.3390/biom16081074
Chicago/Turabian StyleWaters, Alaina L., Santiago Loya-López, Erick J. Rodriguez-Palma, Shainnel O. Eans, Ryosuke Shinouchi, Jordan Stokes, Jay P. McLaughlin, Sihong Song, and Rajesh Khanna. 2026. "Human α1-Antitrypsin Inhibits Nociceptor Excitability and Relieves Inflammatory and Neuropathic Pain" Biomolecules 16, no. 8: 1074. https://doi.org/10.3390/biom16081074
APA StyleWaters, A. L., Loya-López, S., Rodriguez-Palma, E. J., Eans, S. O., Shinouchi, R., Stokes, J., McLaughlin, J. P., Song, S., & Khanna, R. (2026). Human α1-Antitrypsin Inhibits Nociceptor Excitability and Relieves Inflammatory and Neuropathic Pain. Biomolecules, 16(8), 1074. https://doi.org/10.3390/biom16081074

