CClinicalTrials.gg
CompletedNCT03200639Updated Jun 27, 2017

Cachexia in Gynecological Cancer and the Preventive Role of Weight Training

An interventional study of Combined training and High intensity interval training with body weight in Breast Cancer Female, Gynecologic Cancer and Menopause, sponsored by Universidade Federal do Triangulo Mineiro. Completed. Open to female participants aged 50 Years and older, including healthy volunteers. Per ClinicalTrials.gov, last updated 2017-06-27.

Sponsored by Universidade Federal do Triangulo Mineiro · Not applicable, Interventional, and Supportive care

From the registry’s dates

  • Registered 2 years after the study started (first participant enrolled May 2015, registered Jun 2017).
Phase
Not applicable
Study type
Interventional
Enrollment
38
Allocation
Randomized
Ages
50 Years and older
Sex
Female
01

Study summary

The study aim was to compare the effectiveness of combined training (CT; aerobic + resistance exercises) and high-intensity interval body weight training (HIITBW) on body composition, metabolic and inflammatory profile, physical function and quality of life in older women with gynecological and breast cancer and their pair-matched controls (older women with no cancer). The hypothesis of the present clinical trial is that HIITBW is effective as well as CT for improvements on body composition, metabolic and inflammatory profile, physical function and quality of life in older women with gynecological and breast cancer.

Read the detailed description

Physical training has been recommended to prevent or attenuation cachexia and sarcopenia in older people with or without cancer. The American College of Sports Medicine recommends 150 min of moderate intensity exercise combining aerobic exercise with resistance exercises, termed as combined training (CT). However, it has been reported that very low proportion (\<10%) of older adults meet the physical activity recommendation. Lack of time has been reported as a common reason to people not to do exercise. Thus, identifying effective physical training dosages and modalities which may be feasible are necessary for this population.

Repeated brief bouts of fast and intense exercise interspersed with low intensity exercise termed as high intensity interval training (HIIT) has shown to be a time-effective strategy to improve cardiorespiratory fitness in young and older. Moreover, HIIT has shown to improve glycemic control in patients at high risk for TDM2, muscle mass, body fat and physical function. However, there were many pending issues involving the HIIT for sarcopenia and cachexia in older people. For instance, the lack of access to physical activity facilities, such as the need for specific equipment (i.e. fitness equipment: treadmill, bike or resistance exercise equipment) and the need for high motor skill levels to performance the high-intensity exercise (i.e. run at high speed) have been reported as another reason to older people not to do HIIT.

Different HIIT programs performed outside of laboratory has been proposed, especially with body-weight exercises. The high-intensity interval body weight training (HIBWT) is performed without equipment and with low motor skill levels. HIBWT has been shown to improve fat mass, muscle mass, cardiorespiratory capacity and physical performance in young adults with or without overweight. Despite this, no previous studies have evaluated HIBWT efficacy and safe in older people with sarcopenia and cachexia. The study aim was to compare the effectiveness of CT and HIITBW on body composition, metabolic and inflammatory profile, physical function and quality of life in older women with gynecological and breast cancer and their pair-matched controls (older women with no cancer). The hypothesis of the present clinical trial is that HIITBW is effective as well as CT for improvements on body composition, metabolic and inflammatory profile, physical function and quality of life in older women with gynecological and breast cancer.

02

Conditions studied

  • Breast Cancer Female
  • Gynecologic Cancer
  • Menopause
  • Physical Activity

Keywords

  • Breast Cancer Female
  • Gynecologic Cancer
  • Menopause
  • Physical Activity
03

In context

Lead sponsor

Universidade Federal do Triangulo Mineiro is the lead sponsor of 12 studies on the registry; 4 are open to participants now.

Counted across the registry records on this site, refreshed daily.

04

Who can participate

Ages eligible
50 Years and older
Sexes eligible
Female
Accepts healthy volunteers
Yes

Inclusion criteria

  • Postemenopausal women without cancer
  • Postemenopausal women with breast cancer
  • Postemenopausal women with gynecological cancer

Exclusion criteria

Exclusion Criteria:

  • No several physical limitations (wheelchair, canes or any similar device)
05

Study design

Phase
Not applicable
Primary purpose
Supportive care
Allocation
Randomized
Intervention model
Parallel assignment
Masking
None (open label)
Enrollment
38 participants (actual)

Study arms

  • Active comparator
    Physical training, CT

    Combined Trained with no cancer (CT): Post menopausal women with no cancer submitted to 12 weeks of combined training (i.e. aerobic training plus resistance training)

    Other: Combined training

  • Active comparator
    Physical training, HIITBW

    High intensity interval training with body weight with no cancer (HIITBW): Post menopausal women with no cancer submitted to 12 weeks of high intensity interval training with body weight (i.e. step climbing plus squats)

    Other: High intensity interval training with body weight

  • Experimental
    Physical training, CTc

    Combined Trained with gynecological and/or breast cancer (CTc): Post menopausal women with with gynecological and/or breast cancer submitted to 12 weeks of combined training (i.e. aerobic training plus resistance training)

    Other: Combined training

  • Experimental
    Physical training, HIITBWc

    High intensity interval training with body weight with gynecological and/or breast cancer (HIITBWc): Post menopausal women with gynecological and/or breast cancer submitted to 12 weeks of high intensity interval training with body weight (i.e. step climbing plus squats)

    Other: High intensity interval training with body weight

Interventions

  • OtherCombined training

    The CT and CTc protocol (total length time \~60 min) were performed three times a week for 12 weeks, in nonconsecutive days, and were composed by 30-min walk at 70% of maximum heart rate or Borg Scale at 5-6 following resistance exercises (RE: 45-degree half squat, bench press, leg curl, rowing machine and unilateral leg extension) at 70% of one repetition maximum (1RM) with three sets of 8-12 repetitions and 1.5 min rest interval between sets and exercises. If the volunteer exceeded or did not reach the walk intensity, the volunteer was stimulated by to decrease or increase the walk speed, respectively. Regarding the resistance exercises, the load was adjusted in the 6th week with the 1RM test to ensure the 70% of 1RM between 8-12 repetitions.

  • OtherHigh intensity interval training with body weight

    The HIITBW and HIITBWc protocol (total length time \~28 min) were performed three times a week for 12 weeks, in nonconsecutive days, and were composed by ten sets of 60 s of high (vigorous) intensity exercises at 80-95% of HRmax or Borg Scale at 8-9 (i.e. 30s of stepping up and down on a step and 30s of squatting up and down as fast as possible) interspersed with a recovery of 60 s of light walk (\<60% of HRmax or Borg Scale at \<5). To ensure vigorous zone of all sets, if the volunteer exceeded or did not reach the vigorous zone the volunteer was stimulated by the fitness professionals to decrease or increase the number of steps and squats, respectively.

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What researchers measure

Primary outcomes

  1. Body composition

    Soft-tissue (fat mass, kg and lean mass, kg) of whole body and regional composition were assessed via dual-energy x-ray absorptiometry scanning (iDXA; GE Healthcare-Luna, Madison, WI; software Encore version 14.10)

    Time frame: pre intervention and post intervention (i.e. 12 weeks)

  2. Muscle strength

    It was measured by the one repetition maximum (1RM) test in the leg extension equipment.

    Time frame: pre intervention and post intervention (i.e. 12 weeks)

  3. Rate of force development (a critical component of muscle power)

    It was measured by a rapid maximum isometric voluntary contraction of the one-sidedly knee extension force pulses (Metrolog SD20-LVDT, São Carlos/SP, Brazil) of both legs.

    Time frame: pre intervention and post intervention (i.e. 12 weeks)

  4. Cardiorespiratory fitness

    The six-minute walk test and the one mile walk test was performed indoor, on a flat floor in a sports court.

    Time frame: pre intervention and post intervention (i.e. 12 weeks)

  5. Short physical performance battery (SPPB)

    The SPPB consisted of three tests performed in the following order: balance test, four-meter walk test, and five-time-sit-to-stand test. Each test score varied to zero to four points, and the SPPB total score varied to zero to 12 points (sum of the scores of the three tests).

    Time frame: pre intervention and post intervention (i.e. 12 weeks)

Secondary outcomes

  1. Citokines

    Blood samples (16 ml) were collected between 7:30 AM and 9:00 AM after an overnight fast (10-12 hours). The blood samples (venous) were collected by a dry tube with gel separator or EDTA (vacuum-sealed system; Vacutainer, England). The sample was centrifuged for 10 minutes (3.000 rpm) and samples were separated and stocked (-80 C) for futures analysis. The blood indicators were measured as follows: IL-10, IL-6, IL-1ra, TNF-α, ICAM-1, MCP-1, Leptin and Total Adiponectin (enzyme-linked immunosorbent assay method) with Readwell Touch equipment (Robonik, India) and R\&D kits (USA).

    Time frame: pre intervention and post intervention (i.e. 12 weeks)

  2. Quality of life

    Quality of life - The 36-Item Short Form Health Survey (SF-36) was used to measure the overall quality of life aspects, separated in the following domains: functional capacity, physical limitations, pain, overall health, vitality, social aspects, emotional limitations and mental health.

    Time frame: pre intervention and post intervention (i.e. 12 weeks)

  3. Hormones

    Blood samples (16 ml) were collected between 7:30 AM and 9:00 AM after an overnight fast (10-12 hours). The blood samples (venous) were collected by a dry tube with gel separator or EDTA (vacuum-sealed system; Vacutainer, England). The sample was centrifuged for 10 minutes (3.000 rpm) and samples were separated and stocked (-80 C) for futures analysis. The blood indicators were measured as follows: Testosterone, LH, TSH, T4, insulin, DHEA-S, E2 and FSH (electrochemoluminescence method).

    Time frame: pre intervention and post intervention (i.e. 12 weeks)

  4. Metabolic markers

    Blood samples (16 ml) were collected between 7:30 AM and 9:00 AM after an overnight fast (10-12 hours). The blood samples (venous) were collected by a dry tube with gel separator or EDTA (vacuum-sealed system; Vacutainer, England). The sample was centrifuged for 10 minutes (3.000 rpm) and samples were separated and stocked (-80 C) for futures analysis. The blood indicators were measured as follows: Glucose, C-reactive protein, Hb1Ac (automated colorimetric method), total cholesterol, ALT and AST (kinetic method) with Cobas 6000 equipment and Roche kit (USA).

    Time frame: pre intervention and post intervention (i.e. 12 weeks)

  5. Electromyography

    Quadriceps electromyography

    Time frame: pre intervention and post intervention (i.e. 12 weeks)

  6. Physical activity level

    The International Physical Activity Questionnaire (IPAQ) was used to measure the level (time spent) of physical activities of light, moderate and high intensities during the day. Also, the sitting time (minutes) per day was measured.

    Time frame: pre intervention and post intervention (i.e. 12 weeks)

  7. Nutrition habits

    A three-day food record (two days in the middle of week and one on the weekend) was used to determine the energy and macronutrients (carbohydrates, proteins and fats).

    Time frame: pre intervention and post intervention (i.e. 12 weeks)

  8. Functional capacity

    The activities of daily living was assessed by Lawnton and Katz scale.

    Time frame: pre intervention and post intervention (i.e. 12 weeks)

07

Study locations

No study locations are listed for this record.

08

References and documents

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  • Sperlich B, Wallmann-Sperlich B, Zinner C, Von Stauffenberg V, Losert H, Holmberg HC. Functional High-Intensity Circuit Training Improves Body Composition, Peak Oxygen Uptake, Strength, and Alters Certain Dimensions of Quality of Life in Overweight Women. Front Physiol. 2017 Apr 3;8:172. doi: 10.3389/fphys.2017.00172. eCollection 2017. PubMed 28420999 ↗
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  • Limirio LS, Rossato LT, Barbosa CD, Teixeira KRC, Nahas PC, de Branco FMS, Martins FM, Nomelini RS, Murta EFC, Orsatti FL, de Oliveira EP. Body Mass Index, waist circumference or sagittal abdominal diameter: Which parameter is better correlated with body fat changes in postmenopausal women after combined training protocol? Clin Nutr ESPEN. 2020 Aug;38:192-195. doi: 10.1016/j.clnesp.2020.05.004. Epub 2020 May 30. PubMed 32690157 ↗
  • Nunes PRP, Martins FM, Souza AP, Carneiro MAS, Nomelini RS, Michelin MA, Murta EFC, de Oliveira EP, Orsatti FL. Comparative effects of high-intensity interval training with combined training on physical function markers in obese postmenopausal women: a randomized controlled trial. Menopause. 2019 Nov;26(11):1242-1249. doi: 10.1097/GME.0000000000001399. PubMed 31479035 ↗
  • Martins FM, de Paula Souza A, Nunes PRP, Michelin MA, Murta EFC, Resende EAMR, de Oliveira EP, Orsatti FL. High-intensity body weight training is comparable to combined training in changes in muscle mass, physical performance, inflammatory markers and metabolic health in postmenopausal women at high risk for type 2 diabetes mellitus: A randomized controlled clinical trial. Exp Gerontol. 2018 Jul 1;107:108-115. doi: 10.1016/j.exger.2018.02.016. Epub 2018 Feb 19. PubMed 29471132 ↗

Individual participant data

Plan to share: No

09

Updates

Tracking since Sep 25, 2026
No changes since tracking began. The registry record was last updated on Jun 27, 2017, before this site started recording changes on Sep 25, 2026. Its history is on ClinicalTrials.gov ↗
10

Registry details

Key details

Study ID
NCT03200639
Lead sponsor
Universidade Federal do Triangulo Mineiro
Responsible party
Fábio Lera Orsatti (Professor, PhD, Universidade Federal do Triangulo Mineiro) — Principal investigator
First posted
Jun 27, 2017
Start date
May 30, 2015
Primary completion
Dec 1, 2015
Completion
Dec 10, 2015
Last update
Jun 27, 2017

Study contacts

Fábio Orsatti, PhD
principal investigator · Federal University of Triângulo Mineiro

Oversight

Data monitoring committee
No
FDA-regulated drug
No
FDA-regulated device
No
View the source record on ClinicalTrials.gov ↗

Not currently enrolling

This study is completed, as verified in Jun 2017. You cannot join it, but the record below documents what was studied.

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Nothing here yet. If you are running this trial, taking part in it, or weighing whether to, this is the place to say so.

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