The effect of resistance training programs on lean body mass in postmenopausal and elderly women: a meta-analysis of observational studies
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A. Bianco | E. Thomas | A. Paoli | A. Palma | P. Drid | T. Moro | M. Bellafiore | Ambra Gentile | N. Lakicevic
[1] B. Schoenfeld,et al. Effects of Different Weekly Sets-Equated Resistance Training Frequencies on Muscular Strength, Muscle Mass, and Body Fat in Older Women. , 2020, Journal of strength and conditioning research.
[2] I. Sinha,et al. Optimizing Skeletal Muscle Anabolic Response to Resistance Training in Aging , 2020, Frontiers in Physiology.
[3] L. Sardinha,et al. Effects of Three Resistance Exercise Orders on Muscular Function and Body Composition in Older Women , 2020, International Journal of Sports Medicine.
[4] F. Orsatti,et al. Resistance training-induced improvement in exercise tolerance is not dependent on muscle mass gain in post-menopausal women , 2020, European journal of sport science.
[5] B. Schoenfeld,et al. Resistance Training Performed With Single and Multiple Sets Induces Similar Improvements in Muscular Strength, Muscle Mass, Muscle Quality, and IGF-1 in Older Women: A Randomized Controlled Trial. , 2020, Journal of strength and conditioning research.
[6] M. Barbagallo,et al. Walking in Natural Environments as Geriatrician’s Recommendation for Fall Prevention: Preliminary Outcomes from the “Passiata Day” Model , 2020, Sustainability.
[7] B. Schoenfeld,et al. Improvements in Phase Angle Are Related With Muscle Quality Index After Resistance Training in Older Women. , 2019, Journal of aging and physical activity.
[8] M. Izquierdo,et al. Periodized and non-periodized resistance training programs on body composition and physical function of older women , 2019, Experimental Gerontology.
[9] J. Mayhew,et al. Similar Effects of 24 Weeks of Resistance Training Performed with Different Frequencies on Muscle Strength, Muscle Mass, and Muscle Quality in Older Women. , 2019, International journal of exercise science.
[10] T. Abe,et al. Exercise-Induced Changes in Muscle Size do not Contribute to Exercise-Induced Changes in Muscle Strength , 2019, Sports Medicine.
[11] B. Schoenfeld,et al. Influence of Resistance Training Exercise Order on Muscle Strength, Hypertrophy, and Anabolic Hormones in Older Women: A Randomized Controlled Trial. , 2019, Journal of strength and conditioning research.
[12] Karsten Keller,et al. Strength and muscle mass loss with aging process. Age and strength loss. , 2019, Muscles, ligaments and tendons journal.
[13] J. Mayhew,et al. Effect of resistance training with different frequencies and subsequent detraining on muscle mass and appendicular lean soft tissue, IGF-1, and testosterone in older women , 2018, European journal of sport science.
[14] Ted G. Graber,et al. Muscle Protein Anabolic Resistance to Essential Amino Acids Does Not Occur in Healthy Older Adults Before or After Resistance Exercise Training. , 2018, The Journal of nutrition.
[15] W. Evans,et al. Comparison of muscle/lean mass measurement methods: correlation with functional and biochemical testing , 2018, Osteoporosis International.
[16] Ž. Pedišić,et al. Effect of Resistance Training Frequency on Gains in Muscular Strength: A Systematic Review and Meta-Analysis , 2018, Sports Medicine.
[17] C. Cooper,et al. Pitfalls in the measurement of muscle mass: a need for a reference standard , 2018, Journal of cachexia, sarcopenia and muscle.
[18] J. Grgic,et al. Strength and Hypertrophy Adaptations Between Low- vs. High-Load Resistance Training: A Systematic Review and Meta-analysis , 2017, Journal of strength and conditioning research.
[19] D. Gallagher,et al. Current body composition measurement techniques , 2017, Current opinion in endocrinology, diabetes, and obesity.
[20] Menno Henselmans,et al. A systematic review, meta-analysis and meta-regression of the effect of protein supplementation on resistance training-induced gains in muscle mass and strength in healthy adults , 2017, British Journal of Sports Medicine.
[21] B. Schoenfeld,et al. Effects of Traditional and Pyramidal Resistance Training Systems on Muscular Strength, Muscle Mass, and Hormonal Responses in Older Women: A Randomized Crossover Trial , 2017, Journal of strength and conditioning research.
[22] B. Schoenfeld,et al. The improvement in walking speed induced by resistance training is associated with increased muscular strength but not skeletal muscle mass in older women , 2017, European journal of sport science.
[23] I. Shaw,et al. Anthropometric and cardiovascular responses to hypertrophic resistance training in postmenopausal women , 2016, Menopause.
[24] H. Shimokata,et al. Sarcopenia and sarcopenic leg as potential risk factors for acute osteoporotic vertebral fracture among older women , 2016, European Spine Journal.
[25] B. B. Gambassi,et al. Effects of resistance training of moderate intensity on heart rate variability, body composition, and muscle strength in healthy elderly women , 2016, Sport Sciences for Health.
[26] D. Santos,et al. Changes in phase angle and body composition induced by resistance training in older women , 2016, European Journal of Clinical Nutrition.
[27] R. Pinto,et al. Effects of strength training, detraining and retraining in muscle strength, hypertrophy and functional tasks in older female adults , 2016, Clinical physiology and functional imaging.
[28] A. Paoli,et al. Protein Supplementation Does Not Further Increase Latissimus Dorsi Muscle Fiber Hypertrophy after Eight Weeks of Resistance Training in Novice Subjects, but Partially Counteracts the Fast-to-Slow Muscle Fiber Transition , 2016, Nutrients.
[29] K. Häkkinen,et al. Heterogeneity in resistance training-induced muscle strength and mass responses in men and women of different ages , 2016, AGE.
[30] T. Hortobágyi,et al. Dose–Response Relationships of Resistance Training in Healthy Old Adults: A Systematic Review and Meta-Analysis , 2015, Sports Medicine.
[31] J. Kostis,et al. The exercise prescription for enhancing overall health of midlife and older women. , 2015, Maturitas.
[32] I. Lambrinoudaki,et al. Sarcopenia in post-menopausal women: Is there any role for vitamin D? , 2015, Maturitas.
[33] L. D. de Groot,et al. There Are No Nonresponders to Resistance-Type Exercise Training in Older Men and Women. , 2015, Journal of the American Medical Directors Association.
[34] L. Brown,et al. Effects of single vs. multiple-set short-term strength training in elderly women , 2014, AGE.
[35] Luigi Ferrucci,et al. Age-related and disease-related muscle loss: the effect of diabetes, obesity, and other diseases. , 2014, The lancet. Diabetes & endocrinology.
[36] Frédéric Delavier,et al. Delavier's Women's Strength Training Anatomy Workouts , 2014 .
[37] T. Abe,et al. The effects of elastic band resistance training combined with blood flow restriction on strength, total bone‐free lean body mass and muscle thickness in postmenopausal women , 2013, Clinical physiology and functional imaging.
[38] L. V. van Loon,et al. Elderly men and women benefit equally from prolonged resistance-type exercise training. , 2013, The journals of gerontology. Series A, Biological sciences and medical sciences.
[39] R. Honkanen,et al. Relationship between postmenopausal osteoporosis and the components of clinical sarcopenia. , 2013, Maturitas.
[40] E. Nahas,et al. Muscle Mass Gain After Resistance Training Is Inversely Correlated With Trunk Adiposity Gain in Postmenopausal Women , 2012, Journal of strength and conditioning research.
[41] Richard Larouche,et al. Systematic review of sedentary behaviour and health indicators in school-aged children and youth , 2011, The international journal of behavioral nutrition and physical activity.
[42] R. Lima,et al. Effects of 24 Weeks of Progressive Resistance Training on Knee Extensors Peak Torque and Fat-Free Mass in Older Women , 2011, Journal of strength and conditioning research.
[43] B. Franklin,et al. American College of Sports Medicine position stand. Quantity and quality of exercise for developing and maintaining cardiorespiratory, musculoskeletal, and neuromotor fitness in apparently healthy adults: guidance for prescribing exercise. , 2011, Medicine and science in sports and exercise.
[44] W. Kraemer,et al. Exercise Physiology: Integrating Theory and Application , 2011 .
[45] R. Rabasa-Lhoret,et al. Menopause and sarcopenia: A potential role for sex hormones. , 2011, Maturitas.
[46] J. Prestes,et al. Menopause: highlighting the effects of resistance training. , 2010, International journal of sports medicine.
[47] B. Schoenfeld. The mechanisms of muscle hypertrophy and their application to resistance training. , 2010, Journal of strength and conditioning research.
[48] J. Torner,et al. Correcting for fat mass improves DXA quantification of quadriceps specific strength in obese adults aged 50-59 years. , 2009, Journal of clinical densitometry : the official journal of the International Society for Clinical Densitometry.
[49] D. Moher,et al. Preferred Reporting Items for Systematic Reviews and Meta-Analyses: The PRISMA Statement , 2009, BMJ : British Medical Journal.
[50] R. Fielding,et al. Lower extremity muscle mass predicts functional performance in mobility-limited elders , 2008, The journal of nutrition, health & aging.
[51] M. Sheffield-Moore,et al. Skeletal muscle protein anabolic response to resistance exercise and essential amino acids is delayed with aging. , 2008, Journal of applied physiology.
[52] E. Nahas,et al. Plasma hormones, muscle mass and strength in resistance-trained postmenopausal women. , 2008, Maturitas.
[53] F. Marino,et al. Comparative effects of resistance training on peak isometric torque, muscle hypertrophy, voluntary activation and surface EMG between young and elderly women , 2007, Clinical physiology and functional imaging.
[54] K. Davison,et al. The effect of unilateral and bilateral strength training on the bilateral deficit and lean tissue mass in post-menopausal women , 2006, European Journal of Applied Physiology.
[55] S. Fujita,et al. Muscle tissue changes with aging , 2004, Current opinion in clinical nutrition and metabolic care.
[56] K. Häkkinen,et al. Changes in muscle hypertrophy in women with periodized resistance training. , 2004, Medicine and science in sports and exercise.
[57] R. Ross,et al. Skeletal muscle cutpoints associated with elevated physical disability risk in older men and women. , 2004, American journal of epidemiology.
[58] E. Barrett-Connor,et al. Sarcopenia in elderly men and women: the Rancho Bernardo study. , 2003, American journal of preventive medicine.
[59] N. Cable,et al. Effects of resistance training and detraining on muscle strength and blood lipid profiles in postmenopausal women , 2002, British journal of sports medicine.
[60] G. Yancopoulos,et al. Akt/mTOR pathway is a crucial regulator of skeletal muscle hypertrophy and can prevent muscle atrophy in vivo , 2001, Nature Cell Biology.
[61] W J Kraemer,et al. Selective muscle hypertrophy, changes in EMG and force, and serum hormones during strength training in older women. , 2001, Journal of applied physiology.
[62] E C Rhodes,et al. Effects of one year of resistance training on the relation between muscular strength and bone density in elderly women , 2000, British journal of sports medicine.
[63] L. Fried,et al. Frailty and the older man. , 1999, The Medical clinics of North America.
[64] N. Black,et al. The feasibility of creating a checklist for the assessment of the methodological quality both of randomised and non-randomised studies of health care interventions. , 1998, Journal of epidemiology and community health.
[65] R G McMurray,et al. Effects of high-intensity resistance exercise on bone mineral density and muscle strength of 40-50-year-old women. , 1997, The Journal of sports medicine and physical fitness.
[66] G. Breart,et al. Fall-related factors and risk of hip fracture: the EPIDOS prospective study , 1996, The Lancet.
[67] R. Marcus,et al. Comparative effects of high- and low-intensity resistance training on thigh muscle strength, fiber area, and tissue composition in elderly women. , 1996, Clinical physiology.
[68] M. Fiatarone,et al. Effects of High-Intensity Strength Training on Multiple Risk Factors for Osteoporotic Fractures: A Randomized Controlled Trial , 1994 .
[69] S. Cummings,et al. Risk factors for recurrent nonsyncopal falls. A prospective study. , 1989, JAMA.
[70] L. Larsson. Histochemical characteristics of human skeletal muscle during aging. , 1983, Acta physiologica Scandinavica.
[71] J. Prestes,et al. High Supervised Resistance Training in Elderly Women: The Role of Supervision Ratio. , 2020, International journal of exercise science.
[72] A. Bianco,et al. [The ketogenic diet: an underappreciated therapeutic option?]. , 2011, La Clinica terapeutica.
[73] M. Di Monaco,et al. Prevalence of sarcopenia and its association with osteoporosis in 313 older women following a hip fracture. , 2011, Archives of gerontology and geriatrics.
[74] D. Moher,et al. Preferred reporting items for systematic reviews and meta-analyses: the PRISMA statement. , 2010, International journal of surgery.
[75] G. Kamen,et al. Neural Adaptations to Resistive Exercise , 2006, Sports medicine.
[76] K. Yarasheski,et al. Does growth hormone therapy in conjunction with resistance exercise increase muscle force production and muscle mass in men and women aged 60 years or older? , 1999, Physical therapy.
[77] S. B. Foster-Burns,et al. Sarcopenia and decreased muscle strength in the elderly woman: resistance training as a safe and effective intervention. , 1999, Journal of women & aging.