Small Fiber Neuropathy Associated with Post-COVID-19 and Post-COVID-19 Vaccination Arthritis: A Rare Post-Infective Syndrome or a New-Onset Disease?
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Design and Patients
2.2. Measurements
2.3. Statistical Analysis
3. Results
3.1. Differences in Biomarkers between SFN+ and SFN− Patients at Follow-Up
3.2. Description and Follow-Up of the SFN+ Cases
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Nalbandian, A.; Sehgal, K.; Gupta, A.; Madhavan, M.V.; McGroder, C.; Stevens, J.S.; Cook, J.R.; Nordvig, A.S.; Shalev, D.; Sehrawat, T.S.; et al. Post-acute COVID-19 syndrome. Nat. Med. 2021, 27, 601–615. [Google Scholar] [CrossRef] [PubMed]
- Pinzon, R.T.; Wijaya, V.O.; Jody, A.A.; Nunsio, P.N.; Buana, R.B. Persistent neurological manifestations in long COVID-19 syndrome: A systematic review and meta-analysis. J. Infect. Public. Health 2022, 15, 856–869. [Google Scholar] [CrossRef] [PubMed]
- Mohseni Afshar, Z.; Sharma, A.; Babazadeh, A.; Alizadeh-Khatir, A.; Sio, T.T.; Taghizadeh Moghadam, M.A.; Tavakolli Pirzaman, A.; Mojadad, A.; Hosseinzadeh, R.; Barary, M.; et al. A review of the potential neurological adverse events of COVID-19 vaccines. Acta Neurol. Belg. 2023, 123, 9–44. [Google Scholar] [CrossRef] [PubMed]
- Nunez-Castilla, J.; Stebliankin, V.; Baral, P.; Balbin, C.A.; Sobhan, M.; Cickovski, T.; Mondal, A.M.; Narasimhan, G.; Chapagain, P.; Mathee, K.; et al. Potential Autoimmunity Resulting from Molecular Mimicry between SARS-CoV-2 Spike and Human Proteins. Viruses 2022, 14, 1415. [Google Scholar] [CrossRef] [PubMed]
- Talotta, R. Molecular Mimicry and HLA Polymorphisms May Drive Autoimmunity in Recipients of the BNT-162b2 mRNA Vaccine: A Computational Analysis. Microorganisms 2023, 11, 1686. [Google Scholar] [CrossRef] [PubMed]
- Finsterer, J.; Scorza, F.A. Small fiber neuropathy. Acta Neurol. Scand. 2022, 145, 493–503. [Google Scholar] [CrossRef] [PubMed]
- Di Carlo, M.; Cesaroni, P.; Salaffi, F. Neuropathic pain features suggestive of small fibre neuropathy in fibromyalgia syndrome: A clinical and ultrasonographic study on female patients. Clin. Exp. Rheumatol. 2021, 130, 102–107. [Google Scholar] [CrossRef] [PubMed]
- Bitirgen, G.; Korkmaz, C.; Zamani, A.; Ozkagnici, A.; Zengin, N.; Ponirakis, G.; Malik, R.A. Corneal confocal microscopy identifies corneal nerve fibre loss and increased dendritic cells in patients with long COVID. Br. J. Ophthalmol. 2022, 106, 1635–1641. [Google Scholar] [CrossRef] [PubMed]
- Gemignani, F.; Bellanova, M.F.; Saccani, E. Long-COVID phenotypes and small fiber neuropathy. J. Neurol. Sci. 2023, 444, 120490. [Google Scholar] [CrossRef] [PubMed]
- Bandinelli, F.; Pagano, M.; Vallecoccia, M.S. Post-COVID-19 and Post-COVID-19 Vaccine Arthritis, Polymyalgia Rheumatica and Horton’s Arteritis: A Single-Center Assessment of Clinical, Serological, Genetic, and Ultrasonographic Biomarkers. J. Clin. Med. 2023, 12, 7563. [Google Scholar] [CrossRef]
- Chen, C.C.; Chen, C.J. New-onset inflammatory arthritis after COVID-19 vaccination: A systematic review. Int. J. Rheum. Dis. 2023, 26, 267–277. [Google Scholar] [CrossRef] [PubMed]
- Lai, Y.W.; Chua, C.G.; Lim, X.R.; Francis, P.J.; Xu, C.; Howe, H.S. Autoimmune Rheumatic Disease Flares with Myocarditis Following COVID-19 mRNA Vaccination: A Case-Based Review. Vaccines 2022, 10, 1772. [Google Scholar] [CrossRef] [PubMed]
- Ma, Y.; Huang, T.; Xu, G. ANCA-associated vasculitis following the CoronaVac vaccination. Ther. Adv. Chronic Dis. 2022, 13, 20406223221125708. [Google Scholar] [CrossRef] [PubMed]
- Salaffi, F.; Di Carlo, M.; Carotti, M.; Sarzi-Puttini, P. The Effect of Neuropathic Pain Symptoms on Remission in Patients with Early Rheumatoid Arthritis. Curr. Rheumatol. Rev. 2019, 15, 154–161. [Google Scholar] [CrossRef] [PubMed]
- Di Carlo, M.; Di Battista, J.; Cipolletta, E.; Okano, T.; Chiorrini, R.; Smerilli, G.; Bandinelli, F.; Filippucci, E.; Salaffi, F. Is Active Synovitis of Metacarpophalangeal Joints a Neuropathic Condition in Rheumatoid Arthritis Patients? Results from an Ultrasound Study of Palmar Digital Nerves. J. Clin. Med. 2024, 13, 1599. [Google Scholar] [CrossRef] [PubMed]
- Bandinelli, F.; Benucci, M.; Salaffi, F.; Manetti, M.; Infantino, M.; Damiani, A.; Manfredi, M.; Grossi, V.; Matucci, A.; Li Gobbi, F.; et al. Do new and old biomarkers of early undifferentiated arthritis correlate with Arthritis Impact Measurement Scales? Clin. Exp. Rheumatol. 2021, 39, 79–83. [Google Scholar] [CrossRef]
- Lauria, G.; Bakkers, M.; Schmitz, C.; Lombardi, R.; Penza, P.; Devigili, G.; Smith, A.G.; Hsieh, S.T.; Mellgren, S.I.; Umapathi, T.; et al. Intraepidermal nerve fiber density at the distal leg: A worldwide normative reference study. J. Peripher. Nerv. Syst. 2010, 15, 202–207. [Google Scholar] [CrossRef]
- Gabriel, D.A. Teaching Essential EMG Theory to Kinesiologists and Physical Therapists Using Analogies Visual Descriptions, and Qualitative Analysis of Biophysical Concepts. Sensors 2022, 22, 6555. [Google Scholar] [CrossRef]
- Chiaramonte, R.; Romano, M.; Vecchio, M. A Systematic Review of the Diagnostic Methods of Small Fiber Neuropathies in Rehabilitation. Diagnostics 2020, 10, 613. [Google Scholar] [CrossRef]
- Fedak, K.M.; Bernal, A.; Capshaw, Z.A.; Gross, S. Applying the Bradford Hill criteria in the 21st century: How data integration has changed causal inference in molecular epidemiology. Emerg. Themes Epidemiol. 2015, 12, 14. [Google Scholar] [CrossRef]
- Devigili, G.; Rinaldo, S.; Lombardi, R.; Cazzato, D.; Marchi, M.; Salvi, E.; Eleopra, R.; Lauria, G. Diagnostic criteria for small fibre neuropathy in clinical practice and research. Brain 2019, 142, 3728–3736. [Google Scholar] [CrossRef] [PubMed]
- Bandinelli, F.; Denaro, V.; Prignano, F.; Collaku, L.; Ciancio, G.; Matucci-Cerinic, M. Ultrasonographic wrist and hand abnormalities in early psoriatic arthritis patients: Correlation with clinical, dermatological, serological and genetic indices. Clin. Exp. Rheumatol. 2015, 33, 330–335. [Google Scholar] [PubMed]
- Bandinelli, F.; Benucci, M.; Mallia, I.; Mauro, I.; Pecani, N.; Li Gobbi, F.; Manfredi, M.; Guiducci, S.; Lari, B.; Grossi, V.; et al. Do Ultrasound Lung Abnormalities Correlate to Biomarkers and Male Gender in Rheumatoid Arthritis Patients? A Monocentric Cross-Sectional Study? J. Clin. Med. 2024, 13, 3534. [Google Scholar] [CrossRef] [PubMed]
- Martinez-Pitre, P.J.; Sabbula, B.R.; Cascella, M. Restrictive Lung Disease; StatPearls Publishing: St. Petersburg, FL, USA, 2024. [Google Scholar] [PubMed]
- Abrams, R.M.C.; Simpson, D.M.; Navis, A.; Jette, N.; Zhou, L.; Shin, S.C. Small fiber neuropathy associated with SARS-CoV-2 infection. Muscle Nerve 2022, 65, 440–443. [Google Scholar] [CrossRef] [PubMed]
- Cuschieri, S. The STROBE guidelines. Saudi J. Anaesth. 2019, 13, S31–S34. [Google Scholar] [CrossRef] [PubMed] [PubMed Central]
- Falco, P.; Litewczuk, D.; Di Stefano, G.; Galosi, E.; Leone, C.; De Stefano, G.; Di Pietro, G.; Tramontana, L.; Ciardi, M.R.; Pasculli, P.; et al. Small fibre neuropathy frequently underlies the painful long-COVID syndrome. Pain 2024. online ahead of print. [Google Scholar] [CrossRef]
- Waheed, W.; Carey, M.E.; Tandan, S.R.; Tandan, R. Post COVID-19 vaccine small fiber neuropathy. Muscle Nerve 2021, 64, E1–E2. [Google Scholar] [CrossRef] [PubMed]
- Abbott, M.G.; Allawi, Z.; Hofer, M.; Ansorge, O.; Brady, S.; Fadic, R.; Torres, G.; Knight, R.; Calvo, M.; Bennett, D.L.H.; et al. Acute small fiber neuropathy after Oxford-AstraZeneca ChAdOx1-S vaccination: A report of three cases and review of the literature. J. Peripher. Nerv. Syst. 2022, 27, 325–329. [Google Scholar] [CrossRef] [PubMed]
- Kafaie, J.; Kim, M.; Krause, E. Small Fiber Neuropathy Following Vaccination. J. Clin. Neuromuscul. Dis. 2016, 18, 37–40. [Google Scholar] [CrossRef] [PubMed]
- Souayah, N.; Ajroud-Driss, S.; Sander, H.W.; Brannagan, T.H.; Hays, A.P.; Chin, R.L. Small fiber neuropathy following vaccination for rabies, varicella or Lyme disease. Vaccine 2009, 27, 7322–7325. [Google Scholar] [CrossRef]
- Birnbaum, J. Peripheral nervous system manifestations of Sjögren syndrome: Clinical patterns, diagnostic paradigms, etiopathogenesis, and therapeutic strategies. Neurologist 2010, 16, 287–297. [Google Scholar] [CrossRef]
- Seeliger, T.; Dreyer, H.N.; Siemer, J.M.; Bönig, L.; Gingele, S.; Dohrn, M.F.; Prenzler, N.; Ernst, D.; Witte, T.; Skripuletz, T. Clinical and paraclinical features of small fiber neuropathy in Sjögren’s syndrome. J. Neurol. 2023, 270, 1004–1010. [Google Scholar] [CrossRef]
- Tekatas, A.; Tekatas, D.D.; Solmaz, V.; Karaca, T.; Pamuk, O.N. Small fiber neuropathy and related factors in patients with systemic lupus erythematosus; the results of cutaneous silent period and skin biopsy. Adv. Rheumatol. 2020, 60, 31. [Google Scholar] [CrossRef]
- Birnbaum, J.; Bingham, C.O., 3rd. Non-length-dependent and length-dependent small-fiber neuropathies associated with tumor necrosis factor (TNF)-inhibitor therapy in patients with rheumatoid arthritis: Expanding the spectrum of neurological disease associated with TNF-inhibitors. Semin. Arthritis Rheum. 2014, 43, 638–647. [Google Scholar] [CrossRef] [PubMed]
- Guignard, S.; Gossec, L.; Bandinelli, F.; Dougados, M. Comparison of the clinical characteristics of vasculitis occurring during anti-tumor necrosis factor treatment or not in rheumatoid arthritis patients. A systematic review of 2707 patients, 18 vasculitis. Clin. Exp. Rheumatol. 2008, 26, S23–S29. [Google Scholar] [PubMed]
- Chan, A.C.Y.; Wong, H.Y.; Chong, Y.F.; Lai, P.S.; Teoh, H.L.; Ng, A.Y.Y.; Hung, J.H.M.; Chan, Y.C.; Ng, K.W.P.; Vijayan, J.; et al. Novel Autoantibodies in Idiopathic Small Fiber Neuropathy. Ann. Neurol. 2022, 91, 66–77. [Google Scholar] [CrossRef]
- Ślęczkowska, M.; Almomani, R.; Marchi, M.; Salvi, E.; de Greef, B.T.A.; Sopacua, M.; Hoeijmakers, J.G.J.; Lindsey, P.; Waxman, S.G.; Lauria, G.; et al. Peripheral Ion Channel Genes Screening in Painful Small Fiber Neuropathy. Int. J. Mol. Sci. 2022, 23, 14095. [Google Scholar] [CrossRef] [PubMed]
- Shabat, S.; Meiner, Z.; Tsenter, J.; Schwartz, I.; Portnoy, S. Correlations between Electro-Diagnostic Findings, the Severity of Initial Infection, and the Rehabilitation Outcomes among COVID-19 Patients. Biology 2022, 11, 277. [Google Scholar] [CrossRef]
- Brines, M.; Culver, D.A.; Ferdousi, M.; Tannemaat, M.R.; van Velzen, M.; Dahan, A.; Malik, R.A. Corneal nerve fiber size adds utility to the diagnosis and assessment of therapeutic response in patients with small fiber neuropathy. Sci. Rep. 2018, 8, 4734. [Google Scholar] [CrossRef]
- Fu, J.; He, J.; Zhang, Y.; Liu, Z.; Wang, H.; Li, J.; Chen, L.; Fan, D. Small fiber neuropathy for assessment of disease severity in amyotrophic lateral sclerosis: Corneal confocal microscopy findings. Orphanet J. Rare Dis. 2022, 17, 7. [Google Scholar] [CrossRef] [PubMed]
- Chen, W.; Wu, X.; Li, S.; Zhang, Y.; Huang, Y.; Zhuang, Y.; Bai, X.; Chen, X.; Lin, X. Optical coherence tomography of the retina combined with color Doppler ultrasound of the tibial nerve in the diagnosis of diabetic peripheral neuropathy. Front. Endocrinol. 2022, 13, 938659. [Google Scholar] [CrossRef]
- De Greef, B.T.; Geerts, M.; Hoeijmakers, J.G.; Faber, C.G.; Merkies, I.S. Intravenous immunoglobulin therapy for small fiber neuropathy: Study protocol for a randomized controlled trial. Trials 2016, 17, 330. [Google Scholar] [CrossRef]
- Geerts, M.; de Greef, B.T.A.; Sopacua, M.; van Kuijk, S.M.J.; Hoeijmakers, J.G.J.; Faber, C.G.; Merkies, I.S.J. Intravenous Immunoglobulin Therapy in Patients with Painful Idiopathic Small Fiber Neuropathy. Neurology 2021, 96, e2534–e2545. [Google Scholar] [CrossRef] [PubMed]
- Dabby, R.; Gilad, R.; Sadeh, M.; Lampl, Y.; Watemberg, N. Acute steroid responsive small-fiber sensory neuropathy: A new entity? J. Peripher. Nerv. Syst. 2006, 11, 47–52. [Google Scholar] [CrossRef] [PubMed]
Clinical and Instrumental Data (Median, IQR or n, %) | SFN+ (n = 8) | SFN− (n = 10) | p-Value |
---|---|---|---|
Age (years) | 55.5 (47–63.2) | 54.5 (47–69.2) | 0.9 * |
Female sex (n, %) | 5 (62.5%) | 8 (80%) | 0.4 ** |
Time between infection or vaccine and “long-COVID19 and long-vaccine” symptoms onset (days) | 4 (1–11) | 2.5 (1–5.6) | 0.9 * |
Post-COVID19-vaccine | 1/8 (1/8 BNT162b2-mRNA-1273) | 4/10 (3/10 BNT162b2-mRNA; 1/10 AZD1222) | 0.2 ** |
IENF/mm | 2.8 (2–8) | 5.3 (4.6–6.4) | 0.003 * |
CRP (mg/dL) | 0.5 (0.1–1.1) | 0.4 (0.1–0.9) | 0.03 * |
ESR (mm/h) | 21.6 (8.3–35) | 22.6 (5.5–39) | 0.09 * |
IL-6 (pg/mL) mean | 2.9 (2.1–4.7) | 2.9 (2.3–4.2) | 0.09 * |
ANA speckled >1:160% and titre | 7/8 (87.5%) 170 (114–225) | 5/10 (50%) 136 (82–190) | 0.09 **; 0.2 * |
Anti-spike protein antibody BAU Who/mL | 799 (212–1387) | 869 (265–1473) | 0.08 * |
Anti-SARS-CoV-2 antibody IgG, AU/mL | 33 (9.1–57.6) | 43 (2–88) | 0.9 * |
NK (cells/mcl) | 269.4 (144–393) | 284 (177–390) | 0.7 * |
CPK UI/L | 87.5 (41–134) | 124.5 (81–134) | 0.4 * |
Aldolase UI/Ml | 5.2 (4.4–6.4) | 6.2 (4.4–7) | 0.6 * |
HLA DRB1*11, C*07 positive | 5/8; 3/8 | 5/10; 2/10 | 0.6 **; 0.4 ** |
MUAP abnormalities | 6/8 (75%) | 3/10 (30%) | 0.04 ** |
OCT abnormalities | 6/8 (75%) | 0/10 (0%) | 0.001 ** |
HRCT abnormalities | 2/8 (25%) ground glass; 5/8 (62.5%) bronchiectasis; 4/8 (50%) subpleural fibrotic nodules | 1/10 (10%) ground glass; 5/10 (50%) bronchiectasis, 3/10 (30%) subpleural fibrotic nodules | 0.6, 0.4, 0.5 ** |
DLCO abnormalities | 3/8 (37.5%) | 1/10 (10%) | 0.2 ** |
Synovitis US positive | 7 (87.5%) | 7 (70%) | 0.4 ** |
Tenosynovitis US positive | 6 (75%) | 6 (60%) | 0.5 ** |
Pseudo-tenosynovitis US positive | 5 (62.5%) | 7 (70%) | 0.7 ** |
SFN+: Age at Onset, PC/PCV, Onset Time | IENF/mm | MUAP, OCT, Joint US and RNFL | Treatments | |
---|---|---|---|---|
43 yrs, PC, 15 days, | 5.5 (T1); 4 (T2) | MUAP abnormalities (T1 and T2); normal RNFL (T1), reduction in RNFL thickness (T2) | Symmetric SYN+ and TS+ (T1); asymmetric TS+ (T2) | Steroids, vitamin B6–B12 and D3, homotaurine and phosphatidylserine, folate, alpha lipoic acid, pregabalin, HCQ, MTX |
61 yrs, PC, 1 day | 2.6 (T1); 2.8 (T2) | MUAP abnormalities (T1 and T2); initial dystrophy of RPE and reduction in RNFL thickness (T1 and T2) | Symmetric SYN+, TS+, and PT+ (T1); asymmetric SYN+ and PT+ (T2) | Steroids, vitamin B6-B12 and D3, folate, alpha lipoic acid, pregabalin, HCQ, SLZ, mycophenolate |
57 yrs, PCV, 1 day | 2.8 (T1); 3 (T2) | MUAP abnormalities (T1 and T2); reduction of RNFL thickness (T1 and T2) | Symmetric SYN+, TS+, and PT+ (T1); asymmetric TS+ (T2) | Steroids, vitamin B6–B12 and D3, folate, alpha lipoic acid, pregabalin, HCQ, mycophenolate |
54 yrs, PC, 2 days | 7.3 (T1); 3.1 (T2) | MUAP abnormalities (T1 and T2); normal RNFL (T1 and T2) | Symmetric SYN+, TS+, and PT+ (T1); asymmetric TS+ and PT+ (T2) | Steroids, vitamin B6-B12 and D3, folate, alpha lipoic acid, pregabalin, HCQ, sulfasalazine, mycophenolate |
45 yrs, PC, 2 days | 9.3 (T1); 5.5 (T2) | MUAP abnormalities (T1 and T2); normal RNFL (T1 and T2) | Symmetric SYN+, TS+, and PT+ (T1); asymmetric SYN+, TS+, and PT+ (T2) | Steroids, vitamin B6-B12 and D3, folate, alpha lipoic acid, pregabalin, HCQ, sulfasalazine, mycophenolate |
53 yrs, PC, 1 day | 2.9 (T1); 2.7 (T2) | Normal MUAP (T1 and T2); initial dystrophy of RPE and normal RNFL (T1 and T2) | Symmetric SYN+, TS+, and PT+ (T1); symmetric SYN+ and PT+ (T2) | Steroids, vitamin B6-B12 and D3, folate, alpha lipoic acid, pregabalin, HCQ |
78 yrs, PC, 2 days | 1.9 (T1); 1.3 (T2) | MUAP abnormalities, (T1 and T2); initial dystrophy of RPE (T1 and T2) and reduction of RNFL (T2) | Symmetric SYN+, TS+ and PT+ (T1); normal (T2) | Steroids, vitamin B6-B12 and D3, folate, alpha lipoic acid, pregabalin, HCQ |
64 yrs, PC, 2 days | 1.7 (T1); 1.7 (T2) | Normal MUAP (T1 and T2); normal RNFL (T1 and T2) | Symmetric SYN+, TS+, and PT+ (T1); symmetric SYN+ and PT+ (T2) | Steroids, vitamin B6-B12 and D3, folate, alpha lipoic acid, pregabalin, HCQ, methotrexate |
SFN+ Clinical Parameters Median (IQR) | T1 (Baseline) | T2 (6 Months) | T3 (9 Months) | T4 (12 Months) |
---|---|---|---|---|
DAS28/ESR | 5.2 (4.3–5.4) T1–T2 ns | 4.8 (3.9–5.3) T2–T3 p = 0.04 * | 3.4 (3–4.9) T3–T4 ns | 2.9 (3.4–4.8) T1–T4 p = 0.02 * |
Motor impairment | 9.5 (7.5–10) T1–T2 ns | 8 (5.7–8.5) T2–T3 ns | 5 (4–8) T3–T4 p = 0.04 * | 2 (1.5–5) T1–T4 p = 0.0003 * |
Fatigue (0–10) | 10 (9–10) T1–T2 ns | 8.5 (8–10) T2–T3 ns | 8 (5–9) T3–T4 p = 0.01 * | 3 (2–7) T1–T4 p = 0.0003 * |
Burning pain (0–10) | 10 (9–10) T1–T2 p = 0.04 * | 8 (8–9,7) T2–T3 ns | 8 (6–10) T3–T4 p = 0.04 * | 5 (2–7) T1–T4 p = 0.0002 * |
Numbness (0–10) | 9.5 (9–10) T1–T2 ns | 8 (7–9.7) T2–T3 ns | 8 (5–10) T3–T4 ns | 4 (1–7) T1–T4 p = 0.0005 * |
Thermal disarray (0–10) | 9.5 (8.2–10) T1–T2 ns | 8 (6.5–9.5) T2–T3 ns | 8 (3–10) T3–T4 ns | 5 (2–7) T1–T4 p = 0.002 * |
Stocking-glove (0–10) | 10 (9–10) T1–T2 ns | 8 (7.2–9.7) T2–T3 ns | 7 (3–8) T3–T4 ns | 4 (2–7) T1–T4 p = 0.0005 * |
Brain fog (0–10) | 9 (6–10) T1–T2 ns | 8 (7.2–8.7) T2–T3 ns | 7 (5–8) T3–T4 ns | 4 (2–8) T1–T4 p = 0.01 * |
Visual fog (0–10) | 2.5 (2–3.7) T1–T2 ns | 3.5 (3–5) T2–T3 ns | 3 (3–5) T3–T4 ns | 3 (1–5) T1–T4 ns |
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. |
© 2024 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 (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Bandinelli, F.; Nassini, R.; Gherardi, E.; Chiocchetti, B.; Manetti, M.; Cincotta, M.; Nozzoli, F.; Nucci, E.; De Logu, F.; Pimpinelli, N. Small Fiber Neuropathy Associated with Post-COVID-19 and Post-COVID-19 Vaccination Arthritis: A Rare Post-Infective Syndrome or a New-Onset Disease? J. Pers. Med. 2024, 14, 789. https://doi.org/10.3390/jpm14080789
Bandinelli F, Nassini R, Gherardi E, Chiocchetti B, Manetti M, Cincotta M, Nozzoli F, Nucci E, De Logu F, Pimpinelli N. Small Fiber Neuropathy Associated with Post-COVID-19 and Post-COVID-19 Vaccination Arthritis: A Rare Post-Infective Syndrome or a New-Onset Disease? Journal of Personalized Medicine. 2024; 14(8):789. https://doi.org/10.3390/jpm14080789
Chicago/Turabian StyleBandinelli, Francesca, Romina Nassini, Eleonora Gherardi, Barbara Chiocchetti, Mirko Manetti, Massimo Cincotta, Filippo Nozzoli, Elena Nucci, Francesco De Logu, and Nicola Pimpinelli. 2024. "Small Fiber Neuropathy Associated with Post-COVID-19 and Post-COVID-19 Vaccination Arthritis: A Rare Post-Infective Syndrome or a New-Onset Disease?" Journal of Personalized Medicine 14, no. 8: 789. https://doi.org/10.3390/jpm14080789
APA StyleBandinelli, F., Nassini, R., Gherardi, E., Chiocchetti, B., Manetti, M., Cincotta, M., Nozzoli, F., Nucci, E., De Logu, F., & Pimpinelli, N. (2024). Small Fiber Neuropathy Associated with Post-COVID-19 and Post-COVID-19 Vaccination Arthritis: A Rare Post-Infective Syndrome or a New-Onset Disease? Journal of Personalized Medicine, 14(8), 789. https://doi.org/10.3390/jpm14080789