跳至主要内容
临床试验/NCT05990023
NCT05990023Enrolling By Invitation不适用

Investigating the Effect of Computerized Vestibular Function Assessment and Interactive Training System, Combined With Cognitive/Motor Dual-task for the Elderly With Dizziness

Taipei Medical University1 个研究点 分布在 1 个国家目标入组 150 人开始时间: 2023年11月1日最近更新:
适应症

试验速览

阶段
不适用
状态
Enrolling By Invitation
入组人数
150
试验地点
1
主要终点
Dynamic vestibulo-ocular reflex. (VOR gain)

研究概览

简要总结

This study aims to investigate the effect of computerized vestibular function assessment and interactive training system, combined with cognitive/motor dual-task for the elderly with dizziness. The investigators will compare the movement abilities among older adults with different cognitive level, and further establish an assessment module that can evaluate participants' dual-task performance in both vestibular and cognitive tasks. Finally, leveraging the advantages of sensor detection technology and computerized feedback, an appropriate dual-task rehabilitation approach for vestibular function and cognition will be developed.

详细描述

Dizziness is one of the most common complaints among older adults and often a concern within healthcare systems. It leads to distressing sensations, reduced mobility, and decreased quality of life. Dizziness is also closely associated with falls, which are a major cause of comorbidities and mortality in older adults. During clinical rehabilitation training, it has been observed that some elderly patients with vestibular dizziness often experience difficulties with speech clarity, lack of attention, poor direction control, or easy forgetfulness of rehabilitation training content. Similar observations have been made by scholars who interacted with dizzy patients, noting difficulties in maintaining attention, deficits in attention and spatial memory, speech expression impairments, and impacts on spatial memory, fluency of speech, thinking abilities, calculation impairments, and other forms of numerical cognition. Clinical studies have already noted the association between vestibular dysfunction and cognitive impairment. However, there is limited research that can clarify the intricacies and complexities of this issue. Currently, there is scarce knowledge regarding the relationship between the vestibular system and specific cognitive aspects, as well as its correlation with balance deficits.

This study aims to investigate the effect of computerized vestibular function assessment and interactive training system, combined with cognitive/motor dual-task for the elderly with dizziness. Drawing from previous clinical rehabilitation experiences, a method for assessing vestibular function and balance performance will be designed to compare the movement differences among older adults with different cognitive performances. Subsequently, through scientific and objective motion capture analysis, a comprehensive assessment module will be established to evaluate the dual-task performance of participants in both vestibular and cognitive tasks. The performance differences attributed to cognition will be analyzed, and the correlation with vestibular function performance will be integrated to serve as a prescription reference for computer-assisted rehabilitation interventions. Finally, leveraging the advantages of sensor detection technology and computerized feedback, an appropriate dual-task rehabilitation approach for vestibular function and cognition will be developed. Methods: First year, the study will recruit 60 elderly people and integrate the use of inertial sensors and force plates with vestibular and balance tests to establish a vertigo assessment system for the elderly. In the second year, the subjects were divided into two groups: a control group of 25 healthy elderly people, and an experimental group of 25 elderly people who had experienced dizziness and falls in the past two years. Data were collected using a motion analysis system combined with a computerized assisted assessment. The main analysis is whether the experience of dizziness or fall affects the balance, vestibular and cognitive related activities. In the third year, 40 vestibular hypofunction patients will be randomized into either traditional or dual-task group. Both groups will receive 2~3 times per week for 4 weeks of computerized vestibular interventions with and without dual-task training protocols. Expected achievements: Combining safe stochastic dual-task training and computer-assisted rehabilitation interventions in this 3-year project, the mechanisms of cognition related to vestibular training will be elucidated. The optimal strategy for vestibular rehabilitation can thus be established.

研究设计

研究类型
Interventional
分配方式
Randomized
干预模型
Parallel
主要目的
Treatment
盲法
Triple (Participant, Investigator, Outcomes Assessor)

入排标准

年龄范围
55 Years 至 85 Years(Adult, Older Adult)
性别
All
接受健康志愿者

入选标准

  • Year 1 (Study A):
  • Could walk more than 30 meters with or without walking aids independently.
  • Able to comprehend and communicate in Mandarin or Taiwanese.
  • Sufficient corrected vision that allows independent outdoor mobility.
  • Year 2 (Study B):
  • Could walk more than 30 meters with or without walking aids independently.
  • Able to comprehend and communicate in Mandarin or Taiwanese.
  • Sufficient corrected vision that allows independent outdoor mobility.
  • Healthy participants and those who have experienced dizziness or falls within the past two years.
  • Year 3 (Study C):
  • Could walk more than 30 meters with or without walking aids independently.
  • Able to comprehend and communicate in Mandarin or Taiwanese.
  • Sufficient corrected vision that allows independent outdoor mobility.
  • Willing to engage in moderate-intensity exercise for 45 minutes per session.
  • Participants who have experienced dizziness or falls within the past two years.

排除标准

  • Year 1 (Study A):
  • Severe central or peripheral nervous system disorders.
  • Participants who are blind or deaf.
  • Individuals who cannot communicate or understand instructions.
  • Current fractures or significant joint injuries.
  • Year 2 (Study B):
  • Severe central or peripheral nervous system disorders.
  • Participants who are blind or deaf.
  • Individuals who cannot communicate or understand instructions.
  • Current fractures or significant joint injuries.
  • Year 3 (Study C):
  • Severe central or peripheral nervous system disorders.
  • Participants who are blind or deaf.
  • Individuals who cannot communicate or understand instructions.
  • Current fractures or significant joint injuries.

结局指标

主要结局

Dynamic vestibulo-ocular reflex. (VOR gain)

时间窗: 3 year.

The VOR gain calculated by dividing eye movement velocity by head rotation velocity. The eye movement velocity(degree per second) and head rotation velocity(degree per second) are recorded by a screen, eyeglass system, and inertial sensor on subject's head during movements.

Rotation of head, chest, and pelvis.

时间窗: 3 year.

Parameters from inertial sensors placed on the head, chest, and pelvis will be extracted. The parameters include rotational angles (degrees) of the head, chest, and waist.

Acceleration of head, chest, and pelvis.

时间窗: 3 year.

Parameters from inertial sensors placed on the head, chest, and pelvis will be extracted. The parameters include accelerations (meters per second squared) of the head, chest, and waist.

Static Visual acuity.

时间窗: 3 year.

Parameters recorded by a screen with optotype chart and eyeglass system.

Dynamic Visual acuity.

时间窗: 3 year.

Parameters recorded by a screen with optotype chart and eyeglass system during movements.

Step length (centimeter) during walking

时间窗: 3 year.

Step length (centimeter) recorded by wearable sensors (inertial movement unit) or optical motion sensors (camera) during flat ground walking and up/down stairs situation from the starting location.

Step width (centimeter) during walking

时间窗: 3 year.

The medial-lateral distance(centimeter) of light and motion markers on subject's feet recorded by wearable sensors (inertial movement unit) or optical motion sensors (camera) during flat ground walking and up/down stairs situation among the testing session.

Step variability of step width (standard deviation) during walking

时间窗: 3 year.

The standard deviation of step width(centimeter) among the testing session. The step width(centimeter) is recorded by wearable sensors (inertial movement unit) or optical motion sensors (camera) during flat ground walking and up/down stairs situation.

Speed (meter per second) during walking

时间窗: 3 year.

Speed (meter per second) calculated by dividing walking distances by total walking times. The walking distances and times are recorded by wearable sensors (inertial movement unit) or optical motion sensors (camera) during flat ground walking and up/down stairs situation from the starting location.

Lower limb Joint force (Newton)

时间窗: 3 year.

Joint force is calculated by joint position(millimeter) and ground reaction force(Newton). The joint position(millimeter) is recorded by wearable sensors (inertial movement unit) or optical motion sensors (camera), and ground reaction force(Newton) is recorded by forceplates.

Lower limb Joint moment (Newton-metre)

时间窗: 3 year.

Joint moment (Newton-metre) is calculated by multiplying ground reaction force(Newton) by limb length(meter). The limb length(meter) is recorded by meters or optical motion sensors(camera).

Lower limb Joint power (Watt)

时间窗: 3 year.

Joint Power(watt) is calculated as the "scalar product" of joint moment and joint angular velocity(degree per second). The joint angular velocity (degree per second) is recorded by wearable sensors (inertial movement units) or optical motion sensors (camera).

Walking trajectory (centimeter)

时间窗: 3 year.

The shift(centimeter) of light and motion markers on subjects recorded by wearable sensors (inertial movement unit) or optical motion sensors (camera) during flat ground walking and up/down stairs situation from the starting location.

Joint movement (degree)

时间窗: 3 year.

Joint movement (degree) of subjects is recorded by wearable sensors (inertial movement unit) or optical motion sensors (camera) during flat ground walking and up/down stairs situation.

Body center of mass sway (millimeter) during testing session

时间窗: 3 year.

The shift (millimeter)) of light and motion markers on subject's pelvis recorded by wearable sensors (inertial movement unit) or optical motion sensors (camera) and forceplae during flat ground walking and up/down stairs situation.

Step variability of step length (standard deviation) during walking

时间窗: 3 year.

The standard deviation of step length(centimeter) among the testing session. The step length(centimeter) is recorded by wearable sensors (inertial movement unit) or optical motion sensors (camera) during flat ground walking and up/down stairs situation.

Step frequency

时间窗: 3 year.

Steps and times recorded by wearable sensors (inertial movement unit) or optical motion sensors (camera) during flat ground walking and up/down stairs situation from the starting location.

Inclination of head, chest, and pelvis.

时间窗: 3 year.

Parameters from inertial sensors placed on the head, chest, and pelvis will be extracted. The parameters include angular velocities (degrees per second) of the head, chest, and waist.

Static vestibulo-ocular reflex (VOR gain)

时间窗: 3 year.

The VOR gain calculated by dividing eye movement velocity by head rotation velocity. The eye movement velocity(degree per second) and head rotation velocity(degree per second) are recorded by a screen, eyeglass system, and inertial sensor on subject's head.

次要结局

  • Activities-Specific Balance Confidence Scale (ABC scale).(3 year.)
  • Dizziness Handicap Inventory (DHI).(3 year.)
  • Tinetti Fall Risk Assessment Tool (Tinetti Scale).(3 year.)
  • Montreal Cognitive Assessment Taiwanese version (MoCA).(3 year.)
  • Digit Span Test.(3 year.)
  • Dynamic Gait Index (DGI).(3 year.)
  • Trail Making Test.(3 year.)
  • Stroop Test.(3 year.)
  • Hospital Anxiety and Depression Scale (HADS).(3 year.)

研究者

申办方类型
Other
责任方
Sponsor

研究点 (1)

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