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Robot-assisted exercises for arms and hands

Researchers test rehabilitation using a robotic device for shoulder, elbow and wrist movement, strength and coordination in Parkinson’s.

Testing a treatment or activity · Study reference: NCT06906679

Plain-language introduction written with AI from the registry; not independently checked by a clinician. Read the original details below ↓

This registry record was last updated over six months ago, or its update date is missing. Recruitment may have changed. Confirm with the team before making plans.

Open the official registry record ↗

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Results reported

Start (reported actual date)
2023-12-20
Main measurements finished (planned)
2025-12-20
Study finished (planned)
2026-12-20

Planned dates can move. A study finishing does not tell us when a paper will be published.

No results summary has been confirmed in the registry records we imported. See connected papers below; we keep checking after recruitment ends.

Changes we have recorded
  • 2026-10-11 — recruiting

These are dates we observed a change, not necessarily the dates it happened.

Papers connected to this study

GBD 2016 Neurology Collaborators. Global, regional, and national burden of neurological disorders, 1990-2016: a systematic analysis for the Global Burden of Disease Study 2016. Lancet Neurol. 2019 May;18(5):459-480. doi: 10.1016/S1474-4422(18)30499-X. Epub 2019 Mar 14. ↗
Registry results reference

Dorsey ER, Sherer T, Okun MS, Bloem BR. The Emerging Evidence of the Parkinson Pandemic. J Parkinsons Dis. 2018;8(s1):S3-S8. doi: 10.3233/JPD-181474. ↗
Registry results reference

Tolosa E, Garrido A, Scholz SW, Poewe W. Challenges in the diagnosis of Parkinson's disease. Lancet Neurol. 2021 May;20(5):385-397. doi: 10.1016/S1474-4422(21)00030-2. ↗
Registry results reference

Jankovic J. Parkinson's disease: clinical features and diagnosis. J Neurol Neurosurg Psychiatry. 2008 Apr;79(4):368-76. doi: 10.1136/jnnp.2007.131045. ↗
Registry results reference

Ponsen MM, Daffertshofer A, Wolters ECh, Beek PJ, Berendse HW. Impairment of complex upper limb motor function in de novo Parkinson's disease. Parkinsonism Relat Disord. 2008;14(3):199-204. doi: 10.1016/j.parkreldis.2007.07.019. Epub 2007 Oct 2. ↗
Registry results reference

Quinn L, Busse M, Dal Bello-Haas V. Management of upper extremity dysfunction in people with Parkinson disease and Huntington disease: facilitating outcomes across the disease lifespan. J Hand Ther. 2013 Apr-Jun;26(2):148-54; quiz 155. doi: 10.1016/j.jht.2012.11.001. Epub 2012 Dec 8. ↗
Registry results reference

FITTS PM. The information capacity of the human motor system in controlling the amplitude of movement. J Exp Psychol. 1954 Jun;47(6):381-91. No abstract available. ↗
Registry results reference

Sanes JN. Information processing deficits in Parkinson's disease during movement. Neuropsychologia. 1985;23(3):381-92. doi: 10.1016/0028-3932(85)90024-7. ↗
Registry results reference

Jankovic J, Aguilar LG. Current approaches to the treatment of Parkinson's disease. Neuropsychiatr Dis Treat. 2008 Aug;4(4):743-57. doi: 10.2147/ndt.s2006. ↗
Registry results reference

Peall KJ, Kuiper A, de Koning TJ, Tijssen MA. Non-motor symptoms in genetically defined dystonia: Homogenous groups require systematic assessment. Parkinsonism Relat Disord. 2015 Sep;21(9):1031-40. doi: 10.1016/j.parkreldis.2015.07.003. Epub 2015 Jul 17. ↗
Registry results reference

Grazina R, Massano J. Physical exercise and Parkinson's disease: influence on symptoms, disease course and prevention. Rev Neurosci. 2013;24(2):139-52. doi: 10.1515/revneuro-2012-0087. ↗
Registry results reference

Capecci M, Pournajaf S, Galafate D, Sale P, Le Pera D, Goffredo M, De Pandis MF, Andrenelli E, Pennacchioni M, Ceravolo MG, Franceschini M. Clinical effects of robot-assisted gait training and treadmill training for Parkinson's disease. A randomized controlled trial. Ann Phys Rehabil Med. 2019 Sep;62(5):303-312. doi: 10.1016/j.rehab.2019.06.016. Epub 2019 Aug 1. ↗
Registry results reference

Vercruysse S, Gilat M, Shine JM, Heremans E, Lewis S, Nieuwboer A. Freezing beyond gait in Parkinson's disease: a review of current neurobehavioral evidence. Neurosci Biobehav Rev. 2014 Jun;43:213-27. doi: 10.1016/j.neubiorev.2014.04.010. Epub 2014 Apr 23. ↗
Registry results reference

Molteni F, Gasperini G, Cannaviello G, Guanziroli E. Exoskeleton and End-Effector Robots for Upper and Lower Limbs Rehabilitation: Narrative Review. PM R. 2018 Sep;10(9 Suppl 2):S174-S188. doi: 10.1016/j.pmrj.2018.06.005. ↗
Registry results reference

Who can join?

Ages 30 years to 80 years · Does not accept healthy volunteers

These are starting points, not the full rules. The research team can tell you whether the study is right for your situation.

Read all the rules for taking part

Sex eligibility reported by registry: all

Inclusion Criteria: * Age between 30 and 80 years; * Diagnosis of Parkinson's disease according to the UK Parkinson's Disease Society Brain Bank criteria; * Hoehn \& Yahr scale score between 2 and 3 in the "ON" phase; * Montreal Cognitive Assessment (MoCA) screening test with a score ≥ 17.54; * Stable pharmacological therapy for at least 4 weeks and throughout the treatment; * Ability to understand and sign the informed consent for the study; * Signed informed consent for the study; * Ability to comply with the study procedures. Exclusion Criteria: * Unable to adhere to the exercise program due to poor compliance; * Neurological disorders overlapping with Parkinson's disease, psychiatric complications, or personality disorders; * Presence of osteoarticular and neuromuscular diseases that may impair upper limb mobility; * Participants who have not signed the informed consent for the study.
Full study name & original research details

Official study title

Effectiveness of a Robotic End-effector Device for Upper Limb Rehabilitation in People With Parkinson's Disease: a Multicenter Randomized Controlled Pilot Study

Short title used by the registry

Upper Limb Rehabilitation in People With Parkinson's Disease:

Original description

This study evaluates the effectiveness of upper limb rehabilitation using an end-effector robotic device with exercises designed to improve movements, strength, and coordination of the shoulder, elbow, and wrist in patients with Parkinson's disease who have mild to moderate disability, compared to conventional rehabilitation treatment. The study protocol will involve individuals diagnosed with PD according to the UK Parkinson's Disease Society Brain Bank criteria, who will be randomly assigned to one of the following groups: A - Experimental Group (EG) - robotic treatment for upper limb rehabilitation. B - Control Group (CG) - conventional treatment for upper limb rehabilitation. Secondary objectives include: \- Evaluating the effectiveness of an end-effector robotic system in terms of improving upper limb coordination and functionality through the ARAT test and the UPDRS. Identifying subgroups of participants who may benefit more from robotic therapy based on PD disease stage (Hoehn \& Yahr), age, and upper limb impairment. Analyzing the effects of robotic rehabilitation on quality of life. Assessing participants' compliance and satisfaction levels with the robotic system in terms of improving participation in upper limb rehabilitation.

Further description from the registry

Parkinson's disease (PD) is the second most common neurodegenerative disorder, affecting over 6 million individuals worldwide, with its prevalence having increased 2.5 times in the last 30 years, making it a leading cause of neurological disability. The hallmark of PD is a motor syndrome characterized by bradykinesia, resting tremor, and rigidity, alongside postural and gait alterations. Despite being considered a movement disorder, PD often presents non-motor symptoms like hyposmia, constipation, urinary dysfunction, orthostatic hypotension, cognitive impairments, mood depression, pain, and sleep disorders. Motor symptoms progressively impair daily activities and reduce quality of life, with difficulties in gait and swallowing worsening disability over time. Specifically, upper limb motor dysfunction is marked by reduced movement speed and impaired force modulation, leading to poor hand movement quality. Motor impairment in PD is inversely correlated with movement speed and directly correlated with task complexity. PD progresses slowly, and while current treatments manage motor symptoms effectively in the early stages, their efficacy diminishes in advanced stages, with non-motor symptoms becoming more evident. Alongside pharmacotherapy, early and regular physical rehabilitation has shown benefits, improving motor function, posture control, balance, and strength while potentially delaying disease progression. The success of PD treatment depends on treatment quality, timing, and frequency. Conventional rehabilitation includes exercise, strategy training, and patient education, focusing on enhancing upper limb coordination, fluidity, and dexterity. Although some therapies improve motor function and non-motor symptoms, limited evidence exists regarding their impact on hand dexterity. Robotic devices, leveraging neuroplasticity and motor learning principles, have been integrated into rehabilitation to maximize sensory input and provide targeted, task-specific stimuli to the central nervous system. Advances in technology have made robotic treatments more accessible, complementing traditional physiotherapy, particularly in upper limb neurorehabilitation. Robotic-assisted therapy (RAT) has shown efficacy in stroke rehabilitation, improving upper limb function, spasticity, and daily living activities. However, research on robotic rehabilitation for PD has primarily focused on lower limbs and gait training (RAGT), demonstrating positive effects on motor function and balance, despite limited sample sizes and follow-up studies. Regarding upper limb rehabilitation in PD, evidence is scarce. Some studies using virtual reality systems, like Oculus Rift 2 with Leap Motion Controller (OR2-LMC), have shown improvements in strength, fine and gross dexterity, and movement speed, although discrepancies between qualitative and quantitative results were noted. Picelli et al. (2014) found that robotic-assisted upper limb training improved sensorimotor functions, but the placebo effect cannot be ruled out, emphasizing the need for larger, randomized controlled trials comparing RAT to conventional rehabilitation. More recently, Raciti L. et al. (2022) highlighted the efficacy of the Armeo exoskeleton in enhancing hand function, dexterity, and cognitive abilities, suggesting a promising avenue for PD rehabilitation (32). Given the limited evidence on robotic rehabilitation for upper limb motor disorders in PD, this study aims to evaluate the effectiveness of an end-effector robotic device designed to improve shoulder, elbow, and wrist movements, strength, and coordination in individuals with mild to moderate PD, compared to conventional rehabilitation.

Conditions reported: Parkinson Disease

Registry records for this study

Records are joined using registration identifiers. Titles alone do not establish that two studies are the same.

Study type
Interventional
Interventions
Experimental Group; control group
Phases
NA
Sponsor
IRCCS San Raffaele Roma
Start date reported by registry
2023-12-20 (actual)

Registry updated: 2025-04-04 · Status last verified by the registry submitter: 2025-04

Registry records retrieved 2026-10-11 (UTC). Individual records may have older updates. Recruitment and eligibility must be confirmed with the study team.

Contact the research team

Public study contacts supplied to the registry. Ask whether recruitment is still open and what participation involves.

Dr. Sanaz Pournajaf, DPT · +39 0652252405 · sanaz.pournajfa@sanraffaele.it

Dr. Carrie Louise Thouant, OT · carrielouise.thouant@sanraffaele.it

Study locations

Site status can differ from overall study status. “Status not reported” means local availability needs confirmation. Remote participation and travel arrangements must be checked with the team.

San Raffaele Cassino

Cassino, FR, Italy

Not yet recruiting

Prof. Maria Francesca Francesca De Pandis, MD, PhD · +39077639740 · maria.depandis@sanraffaele.it

Prof. Maria Francesca De Pandis, MD, PhD

IRCCS San Raffaele Roma

Rome, Lazio, Italy

Recruiting

Dr. Sanaz Pournajaf, DPT · +39 0652252405 · sanaz.pournajfa@sanraffaele.it

Dr. Sanaz Pournajaf, DPT

Facility not reported

Italy

Status not reported

The original descriptions and participation rules come from the registry. Participation is voluntary and does not guarantee benefit.