The purpose of this randomized clinical trial is to characterize the effects of two exercise interventions, high-intensity interval training (HIIT) and continuous moderate-intensity exercise (CME), on sleep and inflammation in older people living with HIV (PWH). This study is a sub-study associated with The High Intensity Exercise Study to Attenuate Limitations and Train Habits in Older Adults with HIV (HEALTH-HIV; NCT04550676). The investigators propose the following aims: Aim 1. Compare the effectiveness of HIIT and CME exercise interventions on sleep in older PWH. Aim 2. Quantify inflammation markers associated with sleep quality (self-report surveys) in older PWH at baseline, between (week 8) and after exercise interventions (HIIT and CME) (week 16). The investigators hypothesize HIIT will lead to greater improvement in sleep quality (duration and quality) compared to CME and older PWH who experience poor sleep quality and the CME intervention will have increased inflammation markers compared to older PWH who experience better sleep quality and the HIIT intervention. The intervention is being delivered by research personnel at the University of Washington associated with the HEALTH-HIV study (NCT04550676). Data for this study will only be collected at the University of Washington site of the HEALTH-HIV study.
An estimated 50% of people living with HIV (PWH) in the United States are 50 years and older. Although HIV antiretroviral therapy is effective, older PWH are diagnosed with comorbidities at an earlier age, which contributes to poorer health outcomes, including poor sleep quality. Sleep quality is a modifiable behavior in PWH. Higher levels of specific systemic inflammation markers are associated with poor sleep quality in the general population as well as PWH. Less physical activity is also associated with increased inflammation. The collective or interacting impact of low levels of physical activity and inflammation on poor sleep quality may be stronger than either independent factor; therefore, it is vital to examine the potentially causal pathway between physical activity, sleep, and inflammation in order to help mitigate poor sleep quality. HIIT is safe and has higher efficacy in improving health outcomes compared to CME in those with chronic illness (i.e., coronary artery disease, diabetes), yet little is known about the effects of HIIT on sleep in people living with HIV. The primary outcome measures include: change in sleep quality and patterns of sleep from week 0 to 16 of the intervention and change in inflammation markers from week 0 to 8 and week 0 to 16 of the intervention. Our primary sleep quality outcomes will be the sleep fragmentation index, sleep efficiency, and mean sleep duration for sleep quantity. All three will be based on actigraphy. The primary inflammation markers of interest are interleukin (IL)-6, IL-10, IL-13, IFN-y, C reactive protein (CRP) and tumor necrosis factor (TNF)-α due to prior association with sleep quality, other inflammation markers, IL-1β, IL-2, IL-4, IL-8 and IL-12p70 will be exploratory to identify potential pathways of sleep impairments.
Study Type
INTERVENTIONAL
Allocation
RANDOMIZED
Purpose
OTHER
Masking
NONE
Enrollment
52
The participant will walk/jog for 50 continuous minutes at 55% VO2peak. For resistance exercise, the initial goal will be to complete 3 sets of 8-10 repetitions of 4 exercises at low intensity (50% 1-RM) and then progress to moderate intensity (70-80% 1-RM). Exercise intensity will increase every 4 weeks or when participants can complete more than 8 repetitions with proper form at the prescribed weight.
The participant will walk/jog for 50 continuous minutes at 55% VO2peak. For resistance exercise, the initial goal will be to complete 3 sets of 8-10 repetitions of 4 exercises at low intensity (50% 1-RM) and then progress to moderate intensity (70-80% 1-RM). Exercise intensity will increase every 4 weeks or when participants can complete more than 8 repetitions with proper form at the prescribed weight.
University of Colorado
Aurora, Colorado, United States
Case Western Reserve University
Cleveland, Ohio, United States
University if Washington
Seattle, Washington, United States
Sleep Quality
Change in sleep quality will be assessed through the Pittsburgh Sleep Quality Index (PSQI). The PSQI is a validated, self-report instrument assessing sleep quality. Possible scores range from 0-21, with higher scores indicating poorer sleep quality.
Time frame: 0-16 weeks
Sleep Fragmentation Index
Change in sleep fragmentation index will be assessed through wrist actigraphy. Sleep Fragmentation Index is an actigraphy-derived metric generated by the Philips Respironics Actiwatch Spectrum Plus device. It quantifies sleep disruption by combining movement events and brief arousals detected throughout the sleep period. Higher values indicate greater sleep fragmentation (poorer sleep continuity), whereas lower values indicate more consolidated sleep (better sleep continuity). The index is calculated using the Actiwatch Spectrum Plus proprietary algorithm, which incorporates the frequency and intensity of movement epochs and wake episodes.
Time frame: 0-16 weeks
Sleep Efficiency
Change in sleep efficiency will be assessed through wrist actigraphy. Sleep efficiency reflects the percentage of time spent asleep while in bed and is derived from actigraphy-based sleep/wake scoring.
Time frame: 0-16 weeks
Mean Sleep Duration
Change in mean sleep duration will be assessed through wrist actigraphy. Mean sleep duration reflects the average number of minutes spent asleep per night and is derived from actigraphy based sleep/wake scoring.
Time frame: 0-16 weeks
Interleukin Inflammation Markers IL-6
Change in inflammation markers. Specifically examining interleukin (IL)-6.
Time frame: 0-16 weeks
Interleukin Inflammation Markers IL-8
Change in inflammation markers. Specifically examining interleukin (IL)-8.
Time frame: 0-16 weeks
Interleukin Inflammation Markers IL-10
Change in inflammation markers. Specifically examining interleukin (IL)-10.
Time frame: 0-16 weeks
Interleukin Inflammation Markers IL-13
Change in inflammation markers. Specifically examining interleukin (IL)-13.
Time frame: 0-16 weeks
Interleukin Inflammation Markers IL-1β
Change in inflammation markers. Specifically examining interleukin (IL)-1β.
Time frame: 0-16 weeks
Interleukin Inflammation Markers IL-2
Change in inflammation markers. Specifically examining interleukin (IL)-2.
Time frame: 0-16 weeks
Interleukin Inflammation Markers IL-4
Change in inflammation markers. Specifically examining interleukin (IL)-4.
Time frame: 0-16 weeks
Interleukin Inflammation Markers IL-12p70
Change in inflammation markers. Specifically examining interleukin (IL)-12p70.
Time frame: 0-16 weeks
Interferon Gamma Inflammation Marker
Change in inflammation markers. Specifically examining interferon gamma (IFN-y).
Time frame: 0-16 weeks
C-reactive Protein Inflammation Marker
Change in inflammation markers. Specifically examining C-reactive protein (CRP).
Time frame: 0-16 weeks
Tumor Necrosis Factor Alpha Inflammation Marker
Change in inflammation markers. Specifically examining tumor necrosis factor alpha (TNF-α).
Time frame: 0-16 weeks
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