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Clinical Trials/NCT05135234
NCT05135234Active, not recruitingNot Applicable

Adaptive Effects of Very Light Physical Activity on Metabolism

University of Houston1 site in 1 country60 target enrollmentStarted: August 1, 2016Last updated:
Conditions
Interventions

Trial Snapshot

Phase
Not Applicable
Status
Active, not recruiting
Enrollment
60
Locations
1
Primary Endpoint
Fatigue time during muscle group specific contractile activity

Study Overview

Brief Summary

When muscles are not contracting, the local energy demand by muscle and use of specific fuels used to produce energy by oxidative metabolism are minimal. The time people spend sitting inactive (sedentary time) typically comprises more than half of the day. This sedentary behavior is associated with elevated risk of diabetes, cardiovascular diseases, some cancers, and multiple conditions leading to poor aging.

From a progressive series of experiments, the driving goal is to develop a physiological method for sustaining contractile activity via oxidative metabolism over more time than is possible by traditional exercise (hours, not minutes per day).

Developing a physiological method suitable of prolonged muscular activity for ordinary people (who are often unfit) requires gaining fundamental insights about muscle biology and biomechanics. This also entails a careful appreciation of the ability to isolate specific muscles in the leg during controlled movements, such as the soleus muscle during isolated plantarflexion. This includes quantifying specific biological processes that are directly responsive to elevated skeletal muscle recruitment. The investigators will focus on movement that is safe and practical for ordinary people to do given their high amount of daily sitting time.

This includes developing methods to optimally raise muscle contractile activity, in a way that is not limited by fatigue, and is feasible throughout as many minutes of the day as possible safely. This also requires development of methodologies to quantify specific muscular activity, rather than generalized body movement.

There is a need to learn how much people can increase muscle metabolism by physical activity that is perceived to them as being light effort. It is important to learn if this impacts systemic metabolic processes under experimental conditions over a short term time span in order to avoid confounding influences of changes in body weight or other factors.

Detailed Description

Physical activity/inactivity will be carefully measured with objective devices. Wearable devices most commonly include accelerometers capable of capturing various types of movement and body posture. The intensity of muscle activation (the soleus and other leg muscles) will be measured in some participants in the developmental studies with EMG, with the limb motion quantified with goniometry. Skeletal muscle and whole body metabolism will be evaluated, especially after isolated local contractile activity focusing on the slow oxidative soleus muscle. Blood chemistry will also be investigated in this comprehensive series of studies to understand how replacing sedentary time with low effort muscular activity can be enhanced. Glycemia will be evaluated in the postprandial period in the morning after an overnight fast when there can be standardized control of carbohydrate ingestion. This includes a standardized oral glucose tolerance test with careful experimental assessment of posture and muscular recruitment during the testing periods. One phase of this study is particularly interested in assessing the acute responses that occur immediately as a result of contractile activity, while also evaluating in another phase how this may be impacted by a change in the sedentary lifestyle. This includes assessing new approaches for improving metabolism throughout the day by reducing the amount of time sitting inactive (i.e. sedentary time). Importantly, because the potential immediate benefits of muscle contractile activity are directly dependent on the duration of activity, the investigators aim to develop in a series of experiments how much muscular activity time can be performed comfortably and safely by anybody instead of sitting inactive with low muscle metabolism regardless of age, fitness, body type, and other conditions commonly limiting effectiveness of traditional exercise prescriptions.

Study Design

Study Type
Interventional
Allocation
Na
Intervention Model
Single Group
Primary Purpose
Basic Science
Masking
None

Eligibility Criteria

Ages
18 Years to — (Adult, Older Adult)
Sex
All
Accepts Healthy Volunteers
Yes

Inclusion Criteria

  • •Age must be 18 years or older
  • •Able to fast overnight
  • •Can maintain diet, medications, and sleep habits between each of the testing visits.
  • •Lifestyle is consistent with participation in a study evaluating reductions of inactivity (defined by sitting at a low metabolic rate because of minimal muscular activity)
  • •Willing and able to wear small wearable activity monitors under their clothes as instructed.
  • •No plans to start a new diet or exercise program if enrolled in the present study.

Exclusion Criteria

  • •Practical barriers to completing the study, such as plans to move, or work, or family commitments.
  • •Plans to change lifestyle during the present study.
  • •Have physical, vocational, or reasons that prohibit ordinary sitting behaviors present in the modern world.
  • •Currently dieting to change body weight, or have eating disorder.
  • •Are pregnant or plan to become pregnant.
  • •Taking medications that affect bleeding (ie anticoagulants).
  • •Allergy to lidocaine excludes biopsy component of study.

Arms & Interventions

Muscular Exercise

Experimental

Increased level of low effort muscular activity

Intervention: Muscular Exercise (Behavioral)

Outcomes

Primary Outcomes

Fatigue time during muscle group specific contractile activity

Time Frame: Acute measurements less than 1 day. The exact duration is an individual response that is an outcome of unknown minutes consistent with the fatiguability of different movements.

Determinants of muscular endurance as a function of recruitment intensity

Oxygen cost of isolated muscle contractions

Time Frame: Acute contractile activity (at least 3 minutes)

The energetics of isolated muscle contractions will be described relative to the distinct biomechanics of different types of muscular movement

Change in very low density lipoprotein (VLDL) - Triglyceride

Time Frame: The change through the completion of an acute fasting period, approximately 8-12 hours

The concentration of triglyceride in the plasma VLDL lipoprotein

Angiopoietin-like protein 4

Time Frame: The acute time course during the onset of muscular inactivity and contractile activity within 30 minutes to 8 hours

One of the molecular determinants of lipoprotein lipase regulation

Change in postprandial glucose regulation

Time Frame: The change through the completion of the postprandial period, an average of 180 minutes

Glucose concentration response during the postprandial period after an oral glucose tolerance test

The change in muscular inactivity time as a result of isolated contractile activity of the soleus

Time Frame: Throughout the waking day (~16 hours).

Development of an objective method(s) to quantify sedentary vs. non sedentary time.

Secondary Outcomes

  • Local rate of oxygen consumption of working muscle(Steady-state measurements taken for ~6 continuous minutes of contractile activity)
  • apolipoprotein B100 concentration change(After at least 4 weeks of increased contractile activity)
  • Recruited mass of the soleus and other muscles in the triceps surae during isolated plantarflexion(During acute contractile activity of at least 3 minutes)
  • Electrical activity of muscle, Electromyography (EMG)(At least 3 minute recording periods)
  • Plasma insulin change(The change through the completion of the postprandial period, an average of 180 minutes)
  • Sedentary/muscular inactivity time vs. intermittent non-seated standing behaviors(Throughout the waking day (~16 hours).)
  • Small dense LDL concentration change(After at least 4 weeks of increased contractile activity)
  • The ratio of carbohydrate vs. fat oxidation(Acute responses within less than 24 hours.)
  • Change in the concentration of GlycA (this is not an acronym; it is a biomarker of inflammation)(After at least 4 weeks of increased contractile activity)
  • Complement component 3 (C3) concentration change(After at least 4 weeks of increased contractile activity)
  • Plasma triglyceride concentration change(After at least 4 weeks of increased contractile activity)
  • Ferritin concentration change(After at least 4 weeks of increased contractile activity)

Investigators

Sponsor Class
Other
Responsible Party
Principal Investigator
Principal Investigator

Marc Hamilton

Professor

University of Houston

Study Sites (1)

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