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Tart Cherry Juice for Exercise Performance and Recovery

2018년 6월 27일 업데이트: Phil Chilibeck, University of Saskatchewan

The Effect of Tart Cherry Juice on Fat Metabolism, Exercise Performance, and Recovery

This study evaluates the effects of tart cherry juice consumption on endurance exercise performance, fat metabolism during exercise, blood pressure, and recovery from exercise as assessed by muscle pain, muscle strength and electrical properties of muscle. Comparisons will be made to Gatorade consumption. Participants include those who are moderately active and have experience with cycling.

연구 개요

상태

완전한

정황

상세 설명

Tart cherries are rich in bioactive components (i.e. flavonoids) that have anti-inflammatory and anti-oxidant properties. Inflammation and lipid peroxidation causes damage of skeletal muscle membranes during intense exercise. The damage of muscle increases the amount of time for muscle to recover from intense exercise, and can cause muscle strength to be reduced for days. When tart cherries in a concentrated form (i.e. as juice or powder) are consumed in the days leading up to intense exercise, there is a protective effect against inflammation, and lipid peroxidation . This theoretically prevents damage to the lipid component of muscle fibre membranes and helps to preserve muscle function - when muscle is damaged by intense exercise (i.e. either repetitive aerobic activity or high-force muscle contraction), consumption of cherry juice enhances the rate of muscle strength recovery following exercise compared to when a placebo (i.e. non-cherry) beverage is consumed . Muscle damage may be protected by cherry juice consumption; however, all studies evaluating the protective effect of cherries have assessed muscle damage by measuring muscle proteins in the blood. This rather indirect measure of muscle damage is highly variable and not always an accurate assessment of muscle damage; this may be why some studies indicate a reduction in markers of muscle damage with cherry juice consumption while others do not.

A more direct assessment of muscle damage can be obtained by applying electrical stimulation at different frequencies to a muscle before and after intense exercise and assessing the reduction in force output in response to low-frequency and high-frequency stimulation. After intense exercise, the force output at low frequencies of stimulation is often reduced, while the force output at high frequencies is maintained; a phenomenon termed "low frequency fatigue". When muscle is stimulated to contract (either voluntarily by the nervous system or involuntarily through electrical stimulation) calcium is released inside muscle. This calcium release leads to muscle contraction. When muscle undergoes intense exercise, there is damage to muscle membranes, including membranes inside muscle that are responsible for calcium release. This causes a lower amount of calcium to be released with each muscle contraction. Normally, if high frequencies of electrical stimulation are applied to muscle, a very large amount of calcium is released inside muscle - an amount which is "more than enough" to cause a high amount of muscle contraction and high force output. If muscle fibre membranes responsible for release of calcium are damaged, a lower amount of calcium is released, but because "more than enough" calcium is usually released with high frequency stimulation, the lower amount of calcium released with muscle damage is still enough to cause high force of muscle contraction. The force response to low frequencies of stimulation; however, is dramatically reduced when muscle is damaged - usually only a small amount of calcium is released when low frequencies of stimulation are delivered to muscle. Following muscle damage, the smaller amount of calcium released causes lower force production at low stimulation frequency. Low force production at low stimulation frequencies, with a relatively maintained force production at high stimulation frequencies therefore indicates that muscle damage has occurred. This lower muscle force capability at low frequencies of stimulation has dramatic effects on endurance performance because typical endurance performance relies on repeated low-force muscle contractions, as opposed to the few high-force contractions that might be required in other sports (i.e. short sprinting events or field events such as shot put).

The study we are proposing will use this measurement (i.e. ratio of low frequency force to high frequency force output) as a more direct measure of muscle damage. We predict that if cherry juice is consumed in the days leading up to a bout of muscle-damaging endurance exercise, muscle damage will be lower (as indicated by a faster recovery of low-frequency fatigue following the bout of exercise) than when a comparison-drink (i.e. Gatorade) is consumed.

연구 유형

중재적

등록 (실제)

13

단계

  • 해당 없음

연락처 및 위치

이 섹션에서는 연구를 수행하는 사람들의 연락처 정보와 이 연구가 수행되는 장소에 대한 정보를 제공합니다.

연구 장소

    • Saskatchewan
      • Saskatoon, Saskatchewan, 캐나다, S7N 5B2
        • College of Kinesiology, University of Saskatchewan

참여기준

연구원은 적격성 기준이라는 특정 설명에 맞는 사람을 찾습니다. 이러한 기준의 몇 가지 예는 개인의 일반적인 건강 상태 또는 이전 치료입니다.

자격 기준

공부할 수 있는 나이

18년 이상 (성인, 고령자)

건강한 자원 봉사자를 받아들입니다

연구 대상 성별

모두

설명

Inclusion Criteria:

  • experienced cyclist (i.e. bicycle exercise at a vigorous intensity on a regular basis)

Exclusion Criteria:

  • Allergies to cherries

공부 계획

이 섹션에서는 연구 설계 방법과 연구가 측정하는 내용을 포함하여 연구 계획에 대한 세부 정보를 제공합니다.

연구는 어떻게 설계됩니까?

디자인 세부사항

  • 주 목적: 다른
  • 할당: 무작위
  • 중재 모델: 크로스오버 할당
  • 마스킹: 삼루타

무기와 개입

참가자 그룹 / 팔
개입 / 치료
실험적: Tart Cherry Juice
290 mL per day of Tart Cherry juice for 7 days
Beverage to be consumed
활성 비교기: Gatorade
290 mL per day of Gatorade for 7 days
Beverage to be consumed

연구는 무엇을 측정합니까?

주요 결과 측정

결과 측정
측정값 설명
기간
Time time performance
기간: Day 5 of beverage consumption
Time to complete 10 km of cycling
Day 5 of beverage consumption

2차 결과 측정

결과 측정
측정값 설명
기간
Fat oxidation
기간: Day 5 of beverage consumption
Fat oxidation determined from gas analysis
Day 5 of beverage consumption
Carbohydrate oxidation
기간: Day 5 of beverage consumption
Carbohydrate oxidation determined from gas analysis
Day 5 of beverage consumption
Blood pressure
기간: Day 5 of beverage consumption
Blood pressure assessed by continuous blood pressure monitor
Day 5 of beverage consumption
Muscle pain
기간: Change from baseline to before, and immediately, 24 hours, and 48 hours after exercise
Muscle pain determined by a visual analog scale (participant marks a scale from 0 to 100 mm. A score of 0 mm is "no pain". A score of 100 mm is maximal pain).
Change from baseline to before, and immediately, 24 hours, and 48 hours after exercise
Quadriceps strength
기간: Change from baseline to before, and immediately, 24 hours, and 48 hours after exercise
Knee extensor strength determined by isometric contraction
Change from baseline to before, and immediately, 24 hours, and 48 hours after exercise
Low frequency fatigue
기간: Change from baseline to before, immediately, 24 hours, and 48 hours after exercise
Measured by force production at low and high stimulation frequencies as an index of muscle damage
Change from baseline to before, immediately, 24 hours, and 48 hours after exercise

공동 작업자 및 조사자

여기에서 이 연구와 관련된 사람과 조직을 찾을 수 있습니다.

연구 기록 날짜

이 날짜는 ClinicalTrials.gov에 대한 연구 기록 및 요약 결과 제출의 진행 상황을 추적합니다. 연구 기록 및 보고된 결과는 공개 웹사이트에 게시되기 전에 특정 품질 관리 기준을 충족하는지 확인하기 위해 국립 의학 도서관(NLM)에서 검토합니다.

연구 주요 날짜

연구 시작 (실제)

2017년 10월 1일

기본 완료 (실제)

2018년 3월 30일

연구 완료 (실제)

2018년 4월 30일

연구 등록 날짜

최초 제출

2017년 10월 13일

QC 기준을 충족하는 최초 제출

2017년 10월 13일

처음 게시됨 (실제)

2017년 10월 18일

연구 기록 업데이트

마지막 업데이트 게시됨 (실제)

2018년 6월 28일

QC 기준을 충족하는 마지막 업데이트 제출

2018년 6월 27일

마지막으로 확인됨

2018년 6월 1일

추가 정보

이 연구와 관련된 용어

기타 연구 ID 번호

  • 16-273

개별 참가자 데이터(IPD) 계획

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아니요

약물 및 장치 정보, 연구 문서

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아니

미국 FDA 규제 기기 제품 연구

아니

이 정보는 변경 없이 clinicaltrials.gov 웹사이트에서 직접 가져온 것입니다. 귀하의 연구 세부 정보를 변경, 제거 또는 업데이트하도록 요청하는 경우 register@clinicaltrials.gov. 문의하십시오. 변경 사항이 clinicaltrials.gov에 구현되는 즉시 저희 웹사이트에도 자동으로 업데이트됩니다. .

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