The Association Between the Occurrence of Sensory Integration Disorders, Depression, and Chronic Fatigue in Patients with Relapsing–Remitting Multiple Sclerosis
Abstract
1. Introduction
- (1)
- Sensation-seeking—the individual represents an active response strategy and will seek out stimulus-rich environments to enhance the response;
- (2)
- Low registration—the individual represents a passive response strategy and will show slow or no response to stimuli.
- (3)
- Sensation avoidance—an active response strategy that results in the avoidance of sensations that are uncomfortable for the person;
- (4)
2. Materials and Methods
2.1. Study Design and Participants
- Age ≥ 18 years,
- Confirmed diagnosis of RRMS,
- Active treatment within the NHI Drug Program,
- Clinical stability without relapse within 8 weeks prior to assessment.
- Age < 18 years,
- Primary or secondary progressive MS,
- Relapse within the 8 weeks preceding evaluation.
2.2. Assessment of Sensory Integration
- General modulation (9 items);
- Over-responsiveness (26 items);
- Under-responsiveness/Sensory seeking (20 items);
- Sensory discrimination (26 items);
- Sensory-based motor abilities (19 items);
- Social and emotional functioning (22 items).
2.3. Assessment of Depression
- A: 0–11—no depression/depressed mood;
- B: 12–19—mild depression;
- C: 20–25—moderate depression;
- D: ≥26—severe depression.
2.4. Disability Assessment
- E: EDSS ≥ 3;
- F: EDSS < 3.
2.5. Disease Duration
- G: ≤5 years;
- H: 5–10 years;
- J: >10 years.
2.6. MSRF Assessment
- A total fatigue score (0–100);
- Motor and cognitive fatigue subscores.
- FSMC ≥ 43 (mild: 43–52; moderate: 53–62; severe: ≥63).
- MSRF present: total score ≥ 43;
- MSRF absent: total score < 43.
2.7. MRI Assessment of T2 Lesion Burden
- K: <10 lesions;
- L: 10–20 lesions;
- M: >20 lesions.
2.8. Disease Activity
- N: 0 relapses;
- O: 1 relapse;
- P: ≥2 relapses.
2.9. Statistical Analysis
- Mann–Whitney U test for two-group comparisons,
- Kruskal–Wallis ANOVA and median test for comparisons across ≥3 groups.
3. Results
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Riley, C. Multiple sclerosis and related demyelinating diseases. In Merrit Neurologia, 13th ed.; Louis, E.D., Mayer, S.A., Rowland, L.P., Turaj, W., Eds.; Edra Urban & Partner: Wrocław, Poland, 2017; pp. 659–674. ISBN 97883-65625-93-9. [Google Scholar]
- Rzepiński, J.; Maciejek, Z. Heterogeneity of the etiopathogenesis of multiple sclerosis in the context of clinical, immunohistochemical, autopsy, and current therapeutic data. Pol. Przegl. Neurol. 2018, 14, 1–9. [Google Scholar]
- Laaksonen, S.; Sucksdorff, M.; Vuorimaa, A.; Kuhle, J.; Nylund, M.; Rajander, J.; Wahlroos, S.; Matilainen, M.; Saraste, M.; Airas, L. Predictors of risk of secondary progression in multiple sclerosis. Ther. Adv. Neurol. Disord. 2025, 18, 17562864251357276. [Google Scholar] [CrossRef] [PubMed] [PubMed Central]
- Thompson, A.J.; Banwell, B.L.; Barkhof, F.; Carroll, W.; Coetzee, T.; Comi, G.; Correale, J.; Fazekas, F.; Filippi, M.; Freedman, M.S.; et al. Diagnosis of multiple sclerosis: 2017 revisions of the McDonald criteria. Lancet Neurol. 2018, 17, 162–173. [Google Scholar] [CrossRef]
- Lublin, F.D.; Reingold, S.C.; Cohen, J.A.; Cutter, G.; Sørensen, P.S.; Thompson, A.J.; Wolinsky, J.S.; Balcer, L.; Banwell, B.; Barkhof, F.; et al. Defining the clinical course of multiple sclerosis: The 2013 revisions. Neurology 2014, 83, 278–286. [Google Scholar] [CrossRef]
- Inojosa, H.; Schriefer, D.; Ziemssen, T. Clinical outcome measures in multiple sclerosis: A review. Autoimmun. Rev. 2020, 5, 102512. [Google Scholar] [CrossRef]
- Chalah, M.; Riachi, N.; Ahdab, R.; Creange, A.; Lefaucheur, J.P.; Ayache, S. Fatigue in Multiple Sclerosis: Neural Correlates and the Role of Non- Invasive Brain Stimulation. Front. Cell. Neurosci. 2015, 9, 460. [Google Scholar] [CrossRef]
- Fredrikson, S.; Kam-Hansen, S. The 150-year anniversary of multiple sclerosis: Does its early history give an aetiological clue? Perspect. Biol. Med. 1989, 32, 238. [Google Scholar] [CrossRef]
- Patten, S.B.; Marrie, R.A.; Carta, M.G. Depression in multiple sclerosis. Int. Rev. Psychiatry 2017, 5, 463–472. [Google Scholar] [CrossRef]
- Longinetti, E.; Frisell, T.; Englund, S.; Reutfors, J.; Fang, F.; Piehl, F. Risk of depression in multiple sclerosis across disease-modifying therapies. Mult. Scler. J. 2022, 4, 632–641. [Google Scholar] [CrossRef]
- Tecchio, F.; Cancelli, A.; Cottone, C.; Zito, G.; Pasqualetti, P.; Ghazaryan, A.; Rossini, P.; Filippi, M.M. Multiple sclerosis fatigue relief by bilateral somatosensory cortex neuromodulation. J. Neurol. 2014, 8, 1552–1558. [Google Scholar] [CrossRef] [PubMed]
- Thompson, T.L.; Amedee, R. Vertigo: A Review of Common Peripheral and Central Vestibular Disorders. Ochsner J. 2009, 9, 20–26. [Google Scholar]
- Patten, S.B.; Svenson, L.W.; Metz, L.M. Descriptive Epidemiology of Affective Disorders in Multiple Sclerosis. CNS Spectr. 2005, 10, 365–371. [Google Scholar] [CrossRef] [PubMed]
- Herrera, W.G. Vestibular and other balance disorders in multiple sclerosis: Differential diagnosis of disequilibrium and topognostic localization. Neurol. Clin. 1990, 8, 407–420. [Google Scholar] [CrossRef] [PubMed]
- Dunn, W. The Impact of Sensory Processing Abilities on the Daily Lives of Young Children and Their Families: A Conceptual Model. Infants Young Child. 1997, 9, 23–25. [Google Scholar] [CrossRef]
- Mross, K.; Jankowska, M.; Meller, A.; Machowska-Sempruch, K.; Nowacki, P.; Masztalewicz, M.; Pawlukowska, W. Sensory Integration Disorders in Patients with Multiple Sclerosis. J. Clin. Med. 2022, 11, 5183. [Google Scholar] [CrossRef]
- Ayres, A.J. Sensory Integration and the Child: Understanding Hidden Sensory Challenges; Western Psychological Services: Los Angeles, CA, USA, 2005. [Google Scholar]
- Christogianni, A.; Bibb, R.; Davis, S.L.; Jay, O.; Barnett, M.; Evangelou, N.; Filingeri, D. Temperature sensitivity in multiple sclerosis: An overview of its impact on sensory and cognitive symptoms. Temperature 2018, 5, 208–223. [Google Scholar] [CrossRef]
- Stern, B.Z.; Strober, L.B.; Goverover, Y. Relationship between Sensory Processing Patterns, Trait Anxiety, and Health-Related Quality of Life in Multiple Sclerosis. J. Health Psychol. 2021, 26, 2106–2117. [Google Scholar] [CrossRef]
- Hebert, J.; Corboy, J. The association between multiple sclerosis-related fatigue and balance as a function of central sensory integration. Gait Posture 2013, 38, 37–42. [Google Scholar] [CrossRef]
- Gandolfi, M.; Munari, D.; Geroin, C.; Gajofatto, A.; Benedetti, M.; Midiri, A.; Carla, F.; Picelli, A.; Waldner, A.; Smania, N. Sensory integration balance training in patients with multiple sclerosis: A randomized, controlled trial. Mult. Scler. J. 2015, 11, 1453–1462. [Google Scholar] [CrossRef]
- Christogianni, A.; Bibb, R.; Filingeri, D. High-density thermal sensitivity maps of the body of people with multiple sclerosis: Implications for inclusive personal comfort systems. J. Therm. Biol. 2024, 123, 103887. [Google Scholar] [CrossRef]
- Likert, R. A Technique for the Measurement of Attitudes. Arch. Psychol. 1932, 22, 140. [Google Scholar]
- Beck, A.T.; Steer, R.A.; Brown, G.K. Manual for the Beck Depression Inventory—II; The Psychological Corporation: San Antonio, TX, USA, 1996. Available online: https://www.ismanet.org/doctoryourspirit/pdfs/Beck-Depression-Inventory-BDI.pdf (accessed on 14 December 2025).
- Kurtzke, J.F. Rating neurologic impairment in multiple sclerosis: An expanded disability status scale (EDSS). Neurology 1983, 33, 1444–1452. [Google Scholar] [CrossRef]
- Kalron, A.; Nitzani, D.; Achiron, A. Static posturography across the EDSS scale in people with multiple sclerosis: A cross sectional study. BMC Neurol. 2016, 16, 70. [Google Scholar] [CrossRef]
- Institute of Medicine (US) Committee on Multiple Sclerosis. Multiple Sclerosis: Current Status and Strategies for the Future; Appendix D: Kurtzke’s Expanded Disability Status Scale; The National Academies Press: Washington, DC, USA, 2001. [Google Scholar]
- Dreyer-Alster, S.; Menascu, S.; Dolev, M.; Givon, U.; Magalashvili, D.; Achiron, A.; Kalron, A. Longitudinal relationships between disability and gait characteristics in people with MS. Sci. Rep. 2022, 12, 3653. [Google Scholar] [CrossRef]
- Penner, I.K.; Raselli, C.; Stöcklin, M.; Opwis, K.; Kappos, L.; Calabrese, P. The Fatigue Scale for Motor and Cognitive Functions (FSMC): Validation of a new instrument to assess multiple sclerosis-related fatigue. Mult. Scler. J. 2009, 15, 1509–1517. [Google Scholar] [CrossRef]
- Engel-Yeger, B.; DeLuca, J.; Hake, P.; Goverover, Y. The Role of Sensory Processing Difficulties, Cognitive Impairment, and Disease Severity in Predicting Functional Behavior among Patients with Multiple Sclerosis. Disabil. Rehabil. 2021, 43, 1129–1136. [Google Scholar] [CrossRef] [PubMed]
- Maeda, K.I.; Islam, M.F.; Conroy, K.E.; Jason, L. Health outcomes of sensory hypersensitivities in myalgic encephalomyelitis/chronic fatigue syndrome and multiple sclerosis. Psychol. Health Med. 2023, 28, 3052–3063. [Google Scholar] [CrossRef] [PubMed] [PubMed Central]
- Mohebbirad, M.; Motaharinezhad, F.; Shahsavary, M.; Joveini, G. Effects of sensory interventions on fatigue in people with multiple sclerosis: A systematic review. Int. J. MS Care 2022, 24, 29–34. [Google Scholar] [CrossRef] [PubMed]
- Danciut, I.; Kori, A.; Huneke, N.; Gillan, C.; O’Callaghan, C. Understanding the mechanisms of fatigue in multiple sclerosis: Linking interoception, metacognition and white matter dysconnectivity. Brain Commun. 2024, 6, fcaf189. [Google Scholar] [CrossRef] [PubMed]
- Braley, T.J.; Boudreau, E.A. Sleep disorders in multiple sclerosis. Curr. Neurol. Neurosci. Rep. 2016, 16, 50. [Google Scholar] [CrossRef]
- Storozheva, Z.I.; Akhapkin, R.V.; Bolotina, O.V.; Korendrukhina, A.; Novototsky-Vlasov, V.Y.; Shcherbakova, I.V.; Kirenskaya, A.V. Sensorimotor and sensory gating in depression, anxiety, and their comorbidity. World J. Biol. Psychiatry 2021, 22, 183–193. [Google Scholar] [CrossRef]
- Oakley, B.; Loth, E.; Murphy, D.G. Autism and mood disorders. Int. Rev. Psychiatry 2021, 33, 280–299. [Google Scholar] [CrossRef] [PubMed]
- Rong, H.; Lai, X.; Jing, R.; Wang, X.; Fang, H.; Mahmoudi, E. Association of Sensory Impairments with Cognitive Decline and DepressionAmong Older Adults in China. JAMA Netw. Open 2020, 3, e2014186. [Google Scholar] [CrossRef] [PubMed]
- van den Boogert, F.; Klein, K.; Spaan, P.; Sizoo, B.; Bouman, Y.H.A.; Hoogendijk, W.J.G.; Roza, S.J. Sensory processing difficulties in psychiatric disorders: A meta-analysis. J. Psychiatr. Res. 2022, 151, 173–180. [Google Scholar] [CrossRef] [PubMed]
- Canbeyli, R. Sensorimotor modulation of mood and depression: An integrative review. Behav. Brain Res. 2010, 207, 249–264. [Google Scholar] [CrossRef] [PubMed]
- Canbeyli, R. Sensory stimulation via the visual, auditory, olfactory and gustatory systems can modulate mood and depression. Eur. J. Neurosci. 2022, 55, 244–263. [Google Scholar] [CrossRef]
- Peng, W.; Jia, Z.; Huang, X.; Lui, S.; Kuang, W.; Sweeney, J.A.; Gong, Q. Brain structural abnormalities in emotional regulation and sensory processing regions associated with anxious depression. Prog. Neuropsychopharmacol. Biol. Psychiatry 2019, 94, 109676. [Google Scholar] [CrossRef] [PubMed]
- Kandlur, N.R.; Fernandes, A.C.; Gerard, S.R.; Rajiv, S.; Quadros, S. Sensory modulation interventions for adults with mental illness: A scoping review. Hong Kong J. Occup. Ther. 2023, 36, 57–68. [Google Scholar] [CrossRef] [PubMed] [PubMed Central]
- Prosperini, L.; Fanelli, F.; Petsas, N.; Sbardella, E.; Tona, F.; Raz, E.; Fortuna, D.; De Angelis, F.; Pozzilli, C.; Pantano, P. Multiple sclerosis: Changes in microarchitecture of white matter tracts after training with a video game balance board. Radiology 2014, 273, 529–538. [Google Scholar] [CrossRef] [PubMed]
- Rovaris, M.; Gass, A.; Bammer, R.; Hickman, S.J.; Ciccarelli, O.; Miller, D.H.; Filippi, M. Diffusion MRI in multiple sclerosis. Neurology 2005, 65, 1526–1532. [Google Scholar] [CrossRef] [PubMed]
- Giurgola, S.; Casati, C.; Stampatori, C.; Perucca, L.; Mattioli, F.; Vallar, G.; Bolognini, N. Abnormal multisensory integration in relapsing–remitting multiple sclerosis. Neuropsychologia 2022, 169, 108184. [Google Scholar] [CrossRef]
- Henry, A.; Tourbah, A.; Chaunu, M.P.; Rumbach, L.; Montreuil, M.; Bakchine, S. Social cognition impairments in relapsing-remitting multiple sclerosis. J. Int. Neuropsychol. Soc. 2011, 17, 1122–1131. [Google Scholar] [CrossRef] [PubMed]
- Kalron, A.; Fonkatz, I.; Frid, L.; Baransi, H.; Gurevich, M.; Achiron, A. The effect of balance training on postural control in people with multiple sclerosis using the CAREN virtual reality system. J. Neuroeng. Rehabil. 2016, 13, 13. [Google Scholar] [CrossRef] [PubMed]
- Gandolfi, M.; Geroin, C.; Picelli, A.; Munari, D.; Waldner, A.; Tamburin, S.; Marchioretto, F.; Smania, N. Robot-assisted vs. sensory integration training in treating gait and balance dysfunctions in patients with multiple sclerosis: A randomized controlled trial. Front. Hum. Neurosci. 2014, 8, 318. [Google Scholar] [CrossRef] [PubMed] [PubMed Central]
- Learmonth, Y.C.; Paul, L.; Miller, L.; Mattison, P.; McFadyen, A.K. The effects of a 12-week leisure centre-based, group exercise intervention for people moderately affected with multiple sclerosis: A randomized controlled pilot study. Clin. Rehabil. 2012, 26, 579–593. [Google Scholar] [CrossRef] [PubMed]
- Colbeck, M. Sensory Processing, Cognitive Fatigue, and Quality of Life in Multiple Sclerosis: Traitement de l’Information Sensorielle, Fatigue Cognitive et Qualité de Vie des Personnes Atteintes de Sclérose en Plaques. Can. J. Occup. Ther. 2018, 85, 169–175. [Google Scholar] [CrossRef] [PubMed]
| Sensory Integration Domain | Subgroup A: No Depression (n = 137) Mean ± SD | Subgroup B: Mild Depression (n = 36) Mean ± SD | p-Value |
|---|---|---|---|
| General Modulation | 9.03 ± 6.11 | 11.81 ± 7.57 | 0.80 |
| Over-Responsiveness | 24.19 ± 17.56 | 30.94 ± 19.12 | 0.41 |
| Under-Responsiveness/Sensory Seeking | 18.51 ± 12.68 | 25.66 ± 10.99 | 0.04 * |
| Sensory Discrimination | 14.97 ± 13.86 | 26.19 ± 18.77 | 0.02 * |
| Sensory-Based Motor Abilities | 16.26 ± 12.55 | 25.47 ± 18.66 | 0.11 |
| Social and Emotional Functioning | 19.18 ± 13.47 | 32.78 ± 20.30 | 0.01 * |
| Sensory Integration Domain | EDSS ≥ 3 (n = 44) Mean ± SD | EDSS < 3 (n = 160) Mean ± SD | p-Value |
|---|---|---|---|
| General Modulation (points) | 8.29 ± 6.48 | 9.98 ± 7.20 | 0.116 |
| Over-Responsiveness (points) | 20.57 ± 17.25 | 27.55 ± 20.63 | 0.054 |
| Under-Responsiveness/Sensory Seeking (points) | 18.84 ± 12.43 | 17.45 ± 12.51 | 0.454 |
| Sensory Discrimination (points) | 13.96 ± 14.71 | 23.09 ± 22.03 | 0.013 * |
| Sensory-Based Motor Abilities (points) | 13.05 ± 13.16 | 25.55 ± 18.66 | 0.000 * |
| Social and Emotional Functioning (points) | 18.99 ± 16.08 | 22.75 ± 19.24 | 0.289 |
| Variables | Subgroup G ≤ 5 Years (n = 60) Mean ± SD | Subgroup H 5–10 Years (n = 77) Mean ± SD | Subgroup J >10 Years (n = 68) Mean ± SD | p-Value |
|---|---|---|---|---|
| General Modulation (points) | 6.92 ± 6.41 | 9.45 ± 6.94 | 9.17 ± 6.38 | 0.038 * |
| Over-Responsiveness (points) | 17.95 ± 15.84 | 22.87 ± 18.09 | 24.49 ± 19.85 | 0.213 |
| Under-Responsiveness/Sensory Seeking (points) | 18.23 ± 12.99 | 19.09 ± 12.17 | 17.26 ± 12.21 | 0.589 |
| Sensory Discrimination (points) | 12.03 ± 13.68 | 16.22 ± 14.63 | 18.80 ± 20.90 | 0.232 |
| Sensory-Based Motor Abilities (points) | 11.20 ± 11.73 | 15.44 ± 13.26 | 19.88 ± 18.88 | 0.042 * |
| Social and Emotional Functioning (points) | 17.32 ± 15.74 | 21.30 ± 16.91 | 20.06 ± 17.62 | 0.420 |
| Variables | Subgroup N 0 Relapses (n = 156) Mean ± SD | Subgroup O 1 Relapse (n = 34) Mean ± SD | Subgroup P ≥2 Relapses (n = 14) Mean ± SD | p-Value |
|---|---|---|---|---|
| General Modulation (points) | 8.89 ± 6.94 | 7.24 ± 5.55 | 9.50 ± 5.76 | 0.783 |
| Over-Responsiveness (points) | 21.82 ± 18.50 | 21.00 ± 17.25 | 27.43 ± 17.45 | 0.496 |
| Under-Responsiveness/Sensory Seeking (points) | 17.99 ± 12.08 | 17.32 ± 12.12 | 27.64 ± 14.22 | 0.039 * |
| Sensory Discrimination (points) | 15.87 ± 17.62 | 13.38 ± 13.27 | 22.57 ± 15.79 | 0.183 |
| Sensory-Based Motor Abilities (points) | 15.59 ± 15.98 | 13.74 ± 12.08 | 22.21 ± 14.42 | 0.107 |
| Social and Emotional Functioning (points) | 19.69 ± 17.05 | 15.21 ± 13.04 | 32.14 ± 17.47 | 0.025 * |
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Machowska-Sempruch, K.; Masztalewicz, M.; Meller, A.; Nowacki, P.; Pawlukowska, W. The Association Between the Occurrence of Sensory Integration Disorders, Depression, and Chronic Fatigue in Patients with Relapsing–Remitting Multiple Sclerosis. J. Clin. Med. 2026, 15, 65. https://doi.org/10.3390/jcm15010065
Machowska-Sempruch K, Masztalewicz M, Meller A, Nowacki P, Pawlukowska W. The Association Between the Occurrence of Sensory Integration Disorders, Depression, and Chronic Fatigue in Patients with Relapsing–Remitting Multiple Sclerosis. Journal of Clinical Medicine. 2026; 15(1):65. https://doi.org/10.3390/jcm15010065
Chicago/Turabian StyleMachowska-Sempruch, Karolina, Marta Masztalewicz, Agnieszka Meller, Przemysław Nowacki, and Wioletta Pawlukowska. 2026. "The Association Between the Occurrence of Sensory Integration Disorders, Depression, and Chronic Fatigue in Patients with Relapsing–Remitting Multiple Sclerosis" Journal of Clinical Medicine 15, no. 1: 65. https://doi.org/10.3390/jcm15010065
APA StyleMachowska-Sempruch, K., Masztalewicz, M., Meller, A., Nowacki, P., & Pawlukowska, W. (2026). The Association Between the Occurrence of Sensory Integration Disorders, Depression, and Chronic Fatigue in Patients with Relapsing–Remitting Multiple Sclerosis. Journal of Clinical Medicine, 15(1), 65. https://doi.org/10.3390/jcm15010065

