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Showing 1-5 of 5 trials
NCT07477834
This study aims to use the Apple Watch health metrics to assess short-term physiological responses in a randomized, double-blind, crossover real-world indoor purification intervention.
NCT07311967
This study examines the short-term respiratory and cognitive effects of exposure to ultrafine particles (UFPs) generated during typical household cooking. Healthy adults will complete two 6-hour sessions in a controlled exposure chamber at the University of Illinois Chicago: one control day with clean indoor air and one exposure day during which standardized cooking (frying potatoes and grilling beef) is performed by research staff. Participants will not cook or handle food. Lung function will be measured using peak expiratory flow (PEF), and cognitive performance will be assessed using validated tests including the Hopkins Verbal Learning Test-Revised and the Processing Speed Index from the WAIS-IV. Airborne particle and gas concentrations in the chamber will be continuously monitored to ensure that exposures remain within levels typical of everyday home cooking. Findings will help characterize acute physiological responses to indoor cooking emissions and inform future research on indoor air quality and potential mitigation strategies.
NCT07111208
This study, combining both an observational study and an interventional clinical trial, aims to assess how exposure to ultrafine particulate matter (PM0.1) and noise pollution affects the risk of cardiovascular diseases and metabolic disorders in 45-64-year-old residents of Kaunas City, and whether lifestyle interventions-specifically physical activity in green spaces and the Mediterranean diet-can help reduce these risks. In the observational part, approximately 1,000 randomly selected 45-64 years men and women living in private households will complete an anonymous online health and lifestyle questionnaire. The clinical interventional trial will include 180 participants, who agreed to participate in the clinical study and, who meet specific health criteria. The main questions the study seeks to answer are: whether increased exposure to PM0.1 and noise is linked to higher cardiovascular and metabolic risk; and whether short-term healthy lifestyle changes can improve biological markers associated with these conditions. Participants in the clinical trial will be randomly assigned to one of three groups: (1) control group continuing usual habits, (2) physical activity group at least 30-minute daily walks in green spaces, or (3) group adherence to a Mediterranean diet. They will have two visits to the clinic for health surveys: * Wear a wristband sensor for 7 days to monitor physical activity, heart rate, and sleep quality * Visit a clinic on Day 1 and Day 8 for measurements (blood pressure, waist circumference, body composition) and give blood samples for biomarker analysis. This research will provide new evidence on environmental health risks and practical recommendations for reducing the burden of metabolic and cardiovascular diseases.
NCT07237958
The goal of this study is to study the effect exposure to air pollution and its effect on development of dementia. Does the diesel exhaust change the function of the olfactory system? Have the exposures measurable effects on the sense of smell and cognitive ability? Forty people are exposed to diesel exhaust exhaust and filtered air. The exposures are blinded and in a randomized order. Both groups undergo biopsies of the olfactory epithelium in the nose under local anesthesia after the exposures and after performing cognitive test.
NCT04908917
Fine particulate matter \<2.5 μm (PM2.5) air pollution is the fifth leading risk factor for global mortality. Mitigating the clinically significant blood pressure (BP) elevation from air pollution by reducing PM2.5 exposure will likely contribute to the reduction in cardiovascular disease-related mortality. Twin epidemics of air pollution and high BP converge in underserved urban communities (i.e., Detroit) and warrant immediate attention. Prior studies with short duration (a few days) showed indoor portable air cleaners (PACs) are a novel approach to reduce the health burden of both high BP and PM2.5. Trials over several weeks employing remote technologies with a large sample size of patients residing in their own homes in vulnerable urban communities are needed to demonstrate if the BP-reduction from PAC usage is sustainable in real-world settings. The investigators' specific aims are to 1) determine if compared to sham, active PAC use during 3 weeks can provide sustained reductions in home BP levels by reducing personal-level PM2.5 air pollution exposures in patients with mild high BP residing in vulnerable disadvantaged communities across Detroit and 2) explore clinical markers (e.g., age, sex, body mass index) that predict BP-responses to PAC intervention to better target at-risk populations in larger-scale trials and future real-world clinical settings. A randomized, double-blind, sham-controlled parallel limb trial of overnight bedroom PAC use versus sham with 200 Detroit community individuals with mild high BP will be conducted. Continuous bedroom PM2.5 levels and home BP will be measured throughout 28 days. PAC will be used in the bedroom before bedtime on the 7th day continuously for 21 days. The reduction of systolic BP (SBP) will be calculated for both the intervention and control groups and the significance will be compared using mixed-effects modeling with repeated measurements of SBP as the dependent variable and group (active vs sham PAC use) as the independent variable with a fixed-effect. Linear multiple regression modeling with SBP as the dependent variable and participant-level characteristics including body mass index, waist circumference, race, ethnicity, or sex as predictors will be explored. This study is expected to demonstrate a significant sustainable reduction in home SBP for active PAC vs sham use in this population with mildly high BP.