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Completed

NCT Number: NCT05790070

Potential Synergistic Effect of Combined Blood Flow Restriction Training and Betaine Supplementation on Skeletal Muscle

The purpose of the study is to determine whether there is a synergistic effect via combining both low-load blood flow restriction (BFR) training and betaine supplementation loading (6g/day for 14 days) on skeletal muscle anabolic signaling pathways that is mediated by enhancements in intracellular water. These effects are proposed to be greater than either BFR training or betaine supplementation alone or compared to control conditions (high-load non-occluded and/or placebo supplementation).

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Key information

Age range

18 year–35 year

Sex eligibility

Male

Study type

Interventional

Phase

Not applicable

Primary location

Baylor University

Waco, Texas, 76798, United States

About this study

The purpose of the investigation is to determine whether the combination of blood flow restriction (BFR) training and betaine supplementation can synergistically augment phosphorylated targets associated with mechanotransduction and/or muscle protein synthesis relative to either modality alone and compared against control conditions (standard "high-intensity" resistance training and placebo supplementation) in healthy young males. Secondly, the investigators aim to determine if any potential synergistic effects are mediated by enhanced intracellular fluid volumes, as determined by the changes in water content between hydrated and dehydrated muscle samples, as well as through changes in both muscle and serum betaine concentrations. Finally, the investigators aim to assess differences in the aforementioned interventions on specific gene targets, the betaine/γ-aminobutyric acid transporter, myosin heavy chain I, IIa, and IIx lactate dehydrogenase A. Therefore, the specific aims of this study are to determine in healthy, young males: 1) whether combined BFR training and betaine supplementation significantly augment mechanotransductive growth-associated post-translational protein modifications via extra-to-intracellular fluid flux, alongside 2) potentially altered gene expression that otherwise characterizes phenotypical/biochemical changes in skeletal muscle.

The specific aims of the study are to determine whether:

  • The combination of BFR training and betaine supplementation demonstrates significantly greater phosphorylated FAK, ERK1/2, IRS1, and p70S6K, commensurate with greater wet-to-dry hydration changes, relative to any other combinations between BFR training, standard "high-load" training, betaine supplementation, and/or placebo ingestion.
  • The combination of BFR training and betaine supplementation will result in increased MYH2 gene expression, alongside decreases in MYH7 and MYH1 expression. Furthermore, this combination will also result in the highest degree of HIF-1 and Ldha, as well as the lowest BGT-1 gene expression relative to baseline levels.
  • The combination of BFR training and betaine supplementation will result in a higher load-volume accumulated relative to BFR-alone, and will not be statistically different than high-load-placebo training. Therein, the high-load-betaine group will have the greatest load-volume amidst any other combination of conditions.

Who can participate

Healthy volunteers accepted: Yes

Only the study team can determine whether someone qualifies for participation.

Inclusion criteria

  • Only participants considered low risk for cardiovascular disease with no contraindications to exercise as outlined by the ACSM
  • Have not consumed any nutritional supplements (aside from a multi-vitamin) one month prior to investigation
  • Blood pressure <140/90mmHg
  • Resting heart rate <90bpm-

Exclusion criteria

  • sedentary individual as defined by the ACSM guidelines.
  • inadequate resistance training experience (<12 months, <3x/week)
  • vegetarian, vegan, or have dietary restrictions or supplements that potentially affect betaine metabolism.
  • allergy to topical anesthetics.
  • known metabolic or cardiovascular disorder including heart disease, arrhythmias, diabetes, thyroid disease, or hypogonadism.
  • genetic disorders/polymorphisms that would act as direct contraindications to betaine supplementation (i.e. methyltetrahydrofolate reductase, hyperhomocysteinemia, etc.)
  • bleeding disorder, history of pulmonary disease, hypertension, hepatorenal disease, musculoskeletal disorders, neuromuscular/ neurological diseases, autoimmune disease, cancer, peptic ulcers, anemia, or chronic infection (e.g., HIV).
  • resting systolic/diastolic blood pressure and heart rate of more than 140/90 mmHg and 90, respectively.
  • taking any blood thinning (e.g., warfarin, Jantoven, etc.), heart, pulmonary, thyroid, anti-hyperlipidemic, hypoglycemic, anti-hypertensive, endocrinologic (e.g, thyroid, insulin, etc), emotional/psychotropic (e.g., Prednisone, Ritalin, Adderall), or neuromuscular/neurological medications.
  • taking anabolic androgenic steroids within the past year.

Treatment and study plan

Betaine

Dietary Supplement

3g/ twice daily (separated by ~12 hours) betaine anhydrous

Placebo

Other

3g/ twice daily (separated by ~12 hours) cellulose placebo

Primary outcomes

  1. serum/muscle phosphorylated FAK

    Time frame: 3 hours following exercise cessation

    Focal adhesion kinase

  2. insulin receptor substrate 1

    Time frame: 3 hours following exercise cessation

    signalling adapter protein

  3. gene expression of HIF-1

    Time frame: 3 hours following exercise cessation

    genes related to skeletal muscle adaptation

  4. serum and muscle betaine concentrations

    Time frame: 3 hours following exercise cessation

    measure related to the supplementation protocol

  5. gene expression BGT-1

    Time frame: 3 hours following exercise cessation

    genes related to skeletal muscle adaptation

  6. gene expression MHC

    Time frame: 3 hours following exercise cessation

    genes related to skeletal muscle adaptation

Secondary outcomes

  1. pre-to-post exercise set tissue hydration

    Time frame: both pre and immediately post exercise session

    hydration status of the participant via multi-frequency bioelectrical impedance

  2. capillary blood lactate concentrations

    Time frame: both pre and immediately post exercise session

    blood lactate levels of the participant

  3. set-to-failure repetition number

    Time frame: immediately post exercise session

    as related to the exercise protocol

  4. exercise condition total load-volume.

    Time frame: immediately post exercise session

    as related to the exercise protocol and calculated at termination of the exercise session

Sponsors and collaborators

Lead sponsor

Baylor University

Other

Registry information

Official study title

The Potential Synergistic Effect of Combined Blood Flow Restriction Training and Betaine Supplementation on Skeletal Muscle Mechanotransduction-Associated Cell Signaling

Important dates

Study start
2021
Primary completion
2021
Study completion
2021
First posted
Mar 29, 2023
Registry last updated
Mar 29, 2023

OpenTrials presents study information sourced from ClinicalTrials.gov. The official registry record should be consulted for the latest information.

View the official ClinicalTrials.gov record (opens in a new tab)

This listing is for discovery and informational purposes only. It is not medical advice, does not guarantee that a study is recruiting, and does not determine eligibility. Contact the study team and a qualified healthcare professional when considering participation.

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