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Recruiting NCT07312344

Impact of Exercise-derived Extracellular Vesicle in Blood and Physical Fitness Data in Overweight/Obesity Individuals

No phase Interventional Obesity & Overweight

For patients and families

In plain language

An automatic summary of structured registry data. It is an orientation aid, not a substitute for the official protocol or a physician assessment.

What is being studied
The protocol lists: High-intensity interval training exercise on treadmill.
Who it may be relevant to
Registry conditions: Obesity & Overweight. Basic parameters: 25 years — 45 years · All.
What needs checking
Age, condition and sex are only basic indicators. Prior treatment, laboratory values and other mandatory requirements appear in the eligibility criteria below.
Where it takes place
Thailand
Next step
Save the trial, show it to the treating physician, and confirm current recruitment with the study center. Costs, documents and travel →
Official title

Exploring the Impact of Exercise-derived Extracellular Vesicle in Blood and Physical Fitness Data in Overweight/Obesity Individuals on Lymphangiogenesis

Overview

This project aims to study the effect of exercise in the obesity/overweight on the changes of physical fitness and blood components. This will provide novel knowledge for medical staffs, researchers, or companies developing alternative strategies for treating obesity/overweight, including drug development and health promotion project to delay or prevent the onset of the disease.

Interventions

  • Device High-intensity interval training exercise on treadmill
    High-intensity interval training exercise using 65% to 80% of heart rate max

Primary outcome measures

  • Blood component assessment [Time frame: Pre-training (Day 1 before HIIT program) and post-training (Day 18 after HIIT program within 1 hour)]
  • Foot pressure distribution [Time frame: 8 times: Day 1 (Before and after HIIT program), Day 4-7 (after HIIT program only), Day 18 (Before and after HIIT program)]
  • Facial and abdominal fat thickness measurement [Time frame: Pre-training (Day 1 before HIIT program) and post-training (Day 18 after HIIT program)]
  • VO2max [Time frame: Pre-training (Day 1 before HIIT program) and post-training (Day 18 after HIIT program)]
  • Body composition [Time frame: Pre-training (Day 1 before HIIT program) and post-training (Day 18 after HIIT program)]
  • Heart rate [Time frame: Pre-training (Day 1 before HIIT program) and post-training (Day 18 after HIIT program)]
  • Grip strength [Time frame: Pre-training (Day 1 before HIIT program) and post-training (Day 18 after HIIT program)]
  • Leg strength [Time frame: Pre-training (Day 1 before HIIT program) and post-training (Day 18 after HIIT program)]
  • Body weight [Time frame: Pre-training (Day 1 before HIIT program) and post-training (Day 18 after HIIT program)]
  • Body height [Time frame: Pre-training (Day 1 before HIIT program)]

Eligibility criteria

Inclusion criteria

  • Male or female individuals aged between 25-45 years
  • Thai nationality
  • Ability to walk or perform daily activities independently, without the use of an assistive device
  • Body mass index (BMI) between 25-35 kg/m²
  • Low physical activity levels or sedentary lifestyle based on the World Health Organization 2020
  • The levels of moderate-intensity physical activity < 150-300 minutes per week or the levels of vigorous-intensity physical activity < 75-150 minutes per week
  • Moderate-intensity physical activity: fast walking and bicycling. Vigorous-intensity physical activity: running, aerobic dance, and swimming All participants are required to meet all inclusion criteria to be eligible for the research project.

Exclusion criteria

  • Smoking, substance abuse, or alcohol addiction
  • History of respiratory diseases, such as asthma, emphysema, or chronic obstructive pulmonary disease
  • History of cardiovascular diseases, such as coronary heart disease, aortic disease, arrhythmia, or deep vein thrombosis
  • History of high blood pressure (hypertension)
  • History of vestibular system diseases, such as Meniere's disease or otitis media
  • History of neurological disease, such as severe Parkinson's disease or stroke
  • History of previous lower limb surgery, such as hip, knee, or ankle replacement
  • History of musculoskeletal diseases, such as severe osteoarthritis
  • History of severe brain disease, such as dementia
  • Severe visual or hearing impairment
  • Have a cognitive and comprehensive impairment and unable to complete the intervention
  • Have high physical activity or regularly exercise

Criteria are shown verbatim from the registry (in English). Final eligibility is always assessed by the study center.

Healthy volunteers: No

Study design

Allocation
N/A
Model
Single group
Masking
Open label
Primary purpose
Basic science

Study locations

Thailand · 1 center
  • Chakri Naruebodindra Medical Institute, Faculty of Medicine Ramathibodi Hospital — Mueang Samut Prakan

Publications

  • Gremeaux V, Drigny J, Nigam A, Juneau M, Guilbeault V, Latour E, Gayda M. Long-term lifestyle intervention with optimized high-intensity interval training improves body composition, cardiometabolic risk, and exercise parameters in patients with abdominal obesity. Am J Phys Med Rehabil. 2012 Nov;91(11):941-50. doi: 10.1097/PHM.0b013e3182643ce0. PMID 22854902
  • Ryan BJ, Schleh MW, Ahn C, Ludzki AC, Gillen JB, Varshney P, Van Pelt DW, Pitchford LM, Chenevert TL, Gioscia-Ryan RA, Howton SM, Rode T, Hummel SL, Burant CF, Little JP, Horowitz JF. Moderate-Intensity Exercise and High-Intensity Interval Training Affect Insulin Sensitivity Similarly in Obese Adults. J Clin Endocrinol Metab. 2020 Aug 1;105(8):e2941-59. doi: 10.1210/clinem/dgaa345. PMID 32492705
  • Turk Y, Theel W, Kasteleyn MJ, Franssen FME, Hiemstra PS, Rudolphus A, Taube C, Braunstahl GJ. High intensity training in obesity: a Meta-analysis. Obes Sci Pract. 2017 May 29;3(3):258-271. doi: 10.1002/osp4.109. eCollection 2017 Sep. PMID 29071102
  • He XF, Liu DX, Zhang Q, Liang FY, Dai GY, Zeng JS, Pei Z, Xu GQ, Lan Y. Voluntary Exercise Promotes Glymphatic Clearance of Amyloid Beta and Reduces the Activation of Astrocytes and Microglia in Aged Mice. Front Mol Neurosci. 2017 May 19;10:144. doi: 10.3389/fnmol.2017.00144. eCollection 2017. PMID 28579942
  • Aspelund A, Antila S, Proulx ST, Karlsen TV, Karaman S, Detmar M, Wiig H, Alitalo K. A dural lymphatic vascular system that drains brain interstitial fluid and macromolecules. J Exp Med. 2015 Jun 29;212(7):991-9. doi: 10.1084/jem.20142290. Epub 2015 Jun 15. PMID 26077718
  • Louveau A, Smirnov I, Keyes TJ, Eccles JD, Rouhani SJ, Peske JD, Derecki NC, Castle D, Mandell JW, Lee KS, Harris TH, Kipnis J. Structural and functional features of central nervous system lymphatic vessels. Nature. 2015 Jul 16;523(7560):337-41. doi: 10.1038/nature14432. Epub 2015 Jun 1. PMID 26030524
  • Secker GA, Harvey NL. VEGFR signaling during lymphatic vascular development: From progenitor cells to functional vessels. Dev Dyn. 2015 Mar;244(3):323-31. doi: 10.1002/dvdy.24227. Epub 2014 Dec 4. PMID 25399804

Identifiers

NCT: NCT07312344 · MURA2025/678 · 2025/1365

Primary sources (government registries)

View this study on ClinicalTrials.gov ↗