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临床试验/NCT05336227
NCT05336227已完成1 期

A Pilot Trial of Telehealth Active Video Gaming Using Immersive Virtual Reality on Cardiometabolic Health Among Youth With Cerebral Palsy

University of Alabama at Birmingham1 个研究点 分布在 1 个国家目标入组 32 人开始时间: 2022年6月1日最近更新:
适应症
干预措施

试验速览

阶段
1 期
状态
已完成
入组人数
32
试验地点
1
主要终点
Changes in Lung Capacity

研究概览

简要总结

The primary purpose of this study is to examine the preliminary efficacy of 12-weeks of home-based exercise using consumer available virtual reality gaming technology, compared with a 12 week wait-list control group. The secondary purpose is to understand behavioral mechanisms that explain participation in exergaming through semi-structured interviews with participants from both groups at post-intervention or dropout.

详细描述

Youth with cerebral palsy (YwCP) do not have adequate exercise options that empower them to independently maintain their cardiometabolic health and, thus, live inactive, sedentary lifestyles that place them at substantially higher risk for cardiovascular disease, related conditions (e.g., hypercholesterolemia, diabetes, and hypertension), and mortality than the general population. No randomized controlled trial (RCT) has demonstrated clinically meaningful improvements in cardiometabolic health in people with cerebral palsy.

VR gaming delivered via telehealth may be an optimal method of promoting sustainable exercise behavior among large groups of youth. Home-based telehealth programs that incorporate 'virtual' behavioral coaching (tele-coaching) are a desirable approach for promoting non-supervised, exercise behavior among people with disabilities who do not have convenient access to community programs. The addition of behavioral coaching strategies such as goal-setting, confidence building, setting reasonable expectations, and understanding benefits, underpinned by theory such as the Social Cognitive Theory (Bandura, 2004), have been found to enhance the likelihood that people engage in and sustain a behavior.

Therefore, this study hypothesizes that 3-months of tele-monitored VR exergaming with behavioral coaching will result in strong adherence to moderate-intensity exercise and greater changes in key indicators of cardiometabolic health in YwCP, compared with a wait-list control group that maintains habitual activity (before receiving the intervention).

研究设计

研究类型
Interventional
分配方式
Randomized
干预模型
Parallel
主要目的
Prevention
盲法
Single (Outcomes Assessor)

盲法说明

The outcomes assessors will be blinded to group allocation (data entry and analysis personnel).

入排标准

年龄范围
13 Years 至 24 Years(Child, Adult)
性别
All
接受健康志愿者
是

入选标准

  • •medical diagnosis of cerebral palsy
  • •between the ages of 13-24 years to accommodate the World Health Organization definition of youth and the minimum age of 13 years specified by the Quest
  • •physician clearance to participate
  • •access to a Wi-Fi Internet connection in the home via mobile phone or tablet computer
  • •a caregiver to support the child

排除标准

  • •physically active (defined as >150 minutes per week of moderate-to-vigorous intensity exercise in a typical week)
  • •cannot use their arms for exercise or a classification of GMFCS level V, which we have found to preclude the ability to use the Oculus Quest hand-held controllers
  • •complete blindness or deafness.
  • •contraindications to exercise based on the American College of Sports Medicine (ACSM) guidelines

研究组 & 干预措施

Immediate Start - Virtual Reality Exergaming

Experimental

12 weeks of virtual reality active video gaming using immersive commercially available equipment, with adapted games for people to play in the seated position. Maintain normal eating/nutritional behaviors.

干预措施: Virtual Reality Exergaming (Behavioral)

Wait-list Control

No Intervention

Maintain habitual physical activity levels for 12 weeks, before receiving the same intervention. Maintain normal eating/nutritional behaviors.

结局指标

主要结局

Changes in Lung Capacity

时间窗: Week 13

Lung capacity will be measured via peak expiratory flow rate (PEF; units: L/min) using a spirometer at the home.

Changes in Resting Systolic Blood Pressure

时间窗: Week 13

Elevated blood pressure (mmHg) during childhood and adolescents is associated with intermediate markers and hard outcomes of CVD in adulthood. Moderate-intensity exercise is negatively associated with blood pressure. Small changes in blood pressure can occur from as early as 1-month of endurance training.

Changes in Resting Diastolic Blood Pressure

时间窗: Week 13

Elevated blood pressure (mmHg) during childhood and adolescents is associated with intermediate markers and hard outcomes of CVD in adulthood. Moderate-intensity exercise is negatively associated with blood pressure. Small changes in blood pressure can occur from as early as 1-month of endurance training.

Changes in Body Weight

时间窗: Week 13

Body weight measured in lbs using a off-the-shelf bathroom scale.

Changes in C-reactive Protein (hsCRP)

时间窗: Week 13

hsCRP (mg/L) is a critical marker of inflammation that contributes to pro-inflammatory and pro-thrombotic elements of CVD risk. A single hsCRP measure is a strong predictor of myocardial infarction or coronary heart disease mortality, and several other diseases of the circulatory system in people without a history of such conditions.

Changes in Hemoglobin A1C

时间窗: Week 13

HbA1C (mmol/mol) measures mean hemoglobin glycation over the previous three months.

Changes in Fasting Insulin

时间窗: Week 13

High fasting insulin indicates the presence of insulin resistance. Exercise interventions can expect a small beneficial change in fasting insulin levels after 1-month of training.

Changes in Fasting Triglycerides

时间窗: Week 13

A triglyceride level \>150 mg/dL, is largely supported as an indicator of CVD risk. Exercise interventions can expect a small beneficial change in triglyceride levels following 1-month of training, even among people with normal triglyceride levels.

Changes in High-density Lipoprotein

时间窗: Week 13

High-density lipoprotein (HDL; mg/dL) cholesterol is a predictor of future CVD among young and middle-aged people. Exercise interventions can expect a small effect after 1-month of training.

Changes in Low-density Lipoprotein

时间窗: Week 13

Low-density lipoprotein (LDL; mg/dL) cholesterol is a predictor of future CVD among young and middle-aged people. Exercise interventions can expect a small effect after 1-month of training.

Changes in Total Cholesterol

时间窗: Week 13

Total cholesterol (mg/dL) is a predictor of future CVD among young and middle-aged people. Exercise interventions can expect a small effect after 1-month of training.

Changes in Body Weight

时间窗: Week 7

Body weight measured in lbs using a off-the-shelf bathroom scale.

Changes in C-reactive Protein (hsCRP)

时间窗: Week 0

hsCRP (mg/L) is a critical marker of inflammation that contributes to pro-inflammatory and pro-thrombotic elements of CVD risk. A single hsCRP measure is a strong predictor of myocardial infarction or coronary heart disease mortality, and several other diseases of the circulatory system in people without a history of such conditions.

Changes in Hemoglobin A1C

时间窗: Week 0

HbA1C (mmol/mol) measures mean hemoglobin glycation over the previous three months.

Changes in Fasting Insulin

时间窗: Week 0

High fasting insulin indicates the presence of insulin resistance. Exercise interventions can expect a small beneficial change in fasting insulin levels after 1-month of training.

Changes in Fasting Triglycerides

时间窗: Week 0

A triglyceride level \>150 mg/dL, is largely supported as an indicator of CVD risk. Exercise interventions can expect a small beneficial change in triglyceride levels following 1-month of training, even among people with normal triglyceride levels.

Changes in High-density Lipoprotein

时间窗: Week 0

High-density lipoprotein (HDL; mg/dL) cholesterol is a predictor of future CVD among young and middle-aged people. Exercise interventions can expect a small effect after 1-month of training.

Changes in Low-density Lipoprotein

时间窗: Week 0

Low-density lipoprotein (LDL; mg/dL) cholesterol is a predictor of future CVD among young and middle-aged people. Exercise interventions can expect a small effect after 1-month of training.

Changes in Total Cholesterol

时间窗: Week 0

Total cholesterol (mg/dL) is a predictor of future CVD among young and middle-aged people. Exercise interventions can expect a small effect after 1-month of training.

Changes in Resting Systolic Blood Pressure

时间窗: Week 0

Elevated blood pressure (mmHg) during childhood and adolescents is associated with intermediate markers and hard outcomes of CVD in adulthood. Moderate-intensity exercise is negatively associated with blood pressure. Small changes in blood pressure can occur from as early as 1-month of endurance training.

Changes in Resting Diastolic Blood Pressure

时间窗: Week 0

Elevated blood pressure (mmHg) during childhood and adolescents is associated with intermediate markers and hard outcomes of CVD in adulthood. Moderate-intensity exercise is negatively associated with blood pressure. Small changes in blood pressure can occur from as early as 1-month of endurance training.

Changes in Body Weight

时间窗: Week 0

Body weight measured in lbs using a off-the-shelf bathroom scale.

Changes in Lung Capacity

时间窗: Week 0

Lung capacity will be measured via peak expiratory flow rate (PEF; units: L/min) using a spirometer at the home.

Changes in C-reactive Protein (hsCRP)

时间窗: Week 7

hsCRP (mg/L) is a critical marker of inflammation that contributes to pro-inflammatory and pro-thrombotic elements of CVD risk. A single hsCRP measure is a strong predictor of myocardial infarction or coronary heart disease mortality, and several other diseases of the circulatory system in people without a history of such conditions.

Changes in Hemoglobin A1C

时间窗: Week 7

HbA1C (mmol/mol) measures mean hemoglobin glycation over the previous three months.

Changes in Fasting Insulin

时间窗: Week 7

High fasting insulin indicates the presence of insulin resistance. Exercise interventions can expect a small beneficial change in fasting insulin levels after 1-month of training.

Changes in Fasting Triglycerides

时间窗: Week 7

A triglyceride level \>150 mg/dL, is largely supported as an indicator of CVD risk. Exercise interventions can expect a small beneficial change in triglyceride levels following 1-month of training, even among people with normal triglyceride levels.

Changes in High-density Lipoprotein

时间窗: Week 7

High-density lipoprotein (HDL; mg/dL) cholesterol is a predictor of future CVD among young and middle-aged people. Exercise interventions can expect a small effect after 1-month of training.

Changes in Total Cholesterol

时间窗: Week 7

Total cholesterol (mg/dL) is a predictor of future CVD among young and middle-aged people. Exercise interventions can expect a small effect after 1-month of training.

Changes in Low-density Lipoprotein

时间窗: Week 7

Low-density lipoprotein (LDL; mg/dL) cholesterol is a predictor of future CVD among young and middle-aged people. Exercise interventions can expect a small effect after 1-month of training.

Changes in Resting Systolic Blood Pressure

时间窗: Week 7

Elevated blood pressure (mmHg) during childhood and adolescents is associated with intermediate markers and hard outcomes of CVD in adulthood. Moderate-intensity exercise is negatively associated with blood pressure. Small changes in blood pressure can occur from as early as 1-month of endurance training.

Changes in Resting Diastolic Blood Pressure

时间窗: Week 7

Elevated blood pressure (mmHg) during childhood and adolescents is associated with intermediate markers and hard outcomes of CVD in adulthood. Moderate-intensity exercise is negatively associated with blood pressure. Small changes in blood pressure can occur from as early as 1-month of endurance training.

Changes in Lung Capacity

时间窗: Week 7

Lung capacity will be measured via peak expiratory flow rate (PEF; units: L/min) using a spirometer at the home.

次要结局

  • Total Intervention Play Time(Weeks 1-12)
  • Adherence to the Exercise Intervention Prescription(Weeks 1-12)

研究者

申办方类型
Other
责任方
Principal Investigator
主要研究者

Byron Lai

Assistant Professor

University of Alabama at Birmingham

研究点 (1)

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