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Stroke is a leading cause of disability and mortality worldwide1. In China, the incidence and prevalence of stroke are rising continuously, largely due to population aging and shifting lifestyles, with a growing impact on younger adults2. Approximately 80% of stroke survivors experience upper limb dysfunction, which severely restricts their performance of activities of daily living (ADL), impairs quality of life, and imposes a substantial burden on both families and society3. Restoring upper limb function remains a critical research priority and a major clinical challenge. Therefore, the development of safe and effective interventions to improve upper limb function represents a key focus of current rehabilitation research.
WBVV, first applied in the field of sports medicine4, has been widely adopted as an adjunctive rehabilitation intervention for stroke patients5,6. Previous studies have demonstrated that WBVV significantly enhances muscle strength, explosive power, and bone density7,8, especially among elderly individuals and clinical rehabilitation populations (e.g., patients with stroke and those after heart transplantation). Its therapeutic mechanism is thought to involve vertical mechanical stimulation that activates muscle proprioceptors and may modulate central nervous system excitability.
In stroke rehabilitation, WBVV has been proven effective in improving balance and lower limb motor function9; however, research focusing specifically on its effects on upper limb rehabilitation remains limited. Current established upper limb rehabilitation strategies still present notable practical limitations. Task-oriented training10 requires sufficient active motor control, which is often difficult for patients with severe impairment. Constraint-induced movement therapy (CIMT)11 demands intensive use of the affected limb, frequently leading to fatigue and poor compliance during the subacute phase12. Robotic-assisted therapy enables precise training but is restricted by high costs and limited accessibility13. In contrast, whole-body vibration (WBV) provides proprioceptive input14 without requiring sustained voluntary effort15. It is cost-effective, well-tolerated, and easy to integrate into routine clinical care, making it a promising adjunct therapy for upper limb recovery after stroke16.
The progressive WBVV protocol, characterized by gradual increments in vibration frequency and amplitude, was designed to deliver controlled sensorimotor stimulation while reducing the risk of neural habituation associated with fixed-parameter interventions17.The parameters used in this study (5–25 Hz; 1–8 mm) were selected based on prior clinical studies that confirmed safety and tolerability in neurological populations, while providing adequate mechanical stimuli to activate proprioceptive pathways18. Stroke-related upper limb impairment is closely tied to corticospinal tract damage and diminished neural excitability19. Although motor evoked potentials (MEPs) offer a reliable tool for assessing corticospinal function4,20–23. The precise mechanisms by which WBVV improves upper limb recovery remain poorly understood, leaving a substantial gap in the existing literature24,25.
Accordingly, this randomized controlled trial is designed to investigate the effects of progressive WBVV on upper limb motor function and corticospinal tract excitability in patients with subacute stroke. The protocol evaluates the effects of WBVV combined with conventional rehabilitation on upper-limb motor function and ADL performance, in comparison with conventional rehabilitation alone. It further assesses changes in corticospinal excitability by measuring MEP latency, amplitude, and motor threshold, and examines the relationship between functional outcomes and these neurophysiological parameters.