Cite

1. Call JA, Eckhoff MD, Baltgalvis KA, et al. Adaptive strength gains in dystrophic muscle exposed to repeated bouts of eccentric contraction. Journal of applied physiology, 2011, 111 (6), 1768-1777.10.1152/japplphysiol.00942.2011323388621960659Search in Google Scholar

2. Draeger A, Monastyrskaya K, Babiychuk EB. Plasma membrane repair and cellular damage control: the annexin survival kit. Biochemical pharmacology, 2011, 81 (6), 703-712.10.1016/j.bcp.2010.12.02721219882Search in Google Scholar

3. Tankisheva E, Bogaerts A, Boonen S, et al. Effects of intensive whole-body vibration training on muscle strength and balance in adults with chronic stroke: a randomized controlled pilot study. Archives of physical medicine and rehabilitation, 2014, 95 (3), 439-446.10.1016/j.apmr.2013.09.00924067865Search in Google Scholar

4. Liao LR, Ng GY, Jones AY, et al. Effects of vibration intensity, exercise, and motor impairment on leg muscle activity induced by whole-body vibration in people with stroke. Physical therapy, 2015, 95 (12), 1617-1627.10.2522/ptj.2014050726023219Search in Google Scholar

5. Gusso S, Munns CF, Colle P, et al. Effects of whole-body vibration training on physical function, bone and muscle mass in adolescents and young adults with cerebral palsy. Scientific reports, 2016, 6, 22518.10.1038/srep22518477613226936535Search in Google Scholar

6. Baltgalvis KA, Call JA, Cochrane GD, et al. Exercise training improves plantarflexor muscle function in mdx mice. Medicine and science in sports and exercise, 2012, 44 (9), 1671.10.1249/MSS.0b013e31825703f0347076222460476Search in Google Scholar

7. Krajnak K, Riley DA, Wu J, et al. Frequency-dependent effects of vibration on physiological systems: Experiments with animals and other human surrogates. Industrial health, 2012, 50(5), 343-353.2306024810.2486/indhealth.MS1378Search in Google Scholar

8. Stanton NA, Hedge A, Brookhuis K, et al. Handbook of human factors and ergonomics methods. CRC press., 2004, 764 p.10.1201/9780203489925Search in Google Scholar

9. Judex S, Rubin CT. Is bone formation induced by high-frequency mechanical signals modulated by muscle activity? Journal of musculoskeletal & neuronal interactions, 2010, 10 (1), 3.Search in Google Scholar

10. Mechanical Vibration - Measurement and evaluation of human exposure to hand transmitted vibration, Part 1: Mechanical Vibration and Shock. (2001). London, GB. International Organization for Standardization (ISO) 5349-1, 24 p.Search in Google Scholar

11. Mechanical Vibration and Shock-Evaluation of Human Exposure to Whole-Body Vibration-Part 1: General Requirements. (1997). Geneva, Switzerland. International Organization for Standardization (ISO) 2631–1: 1985 (E), 28 p.Search in Google Scholar

12. Mechanical Vibration and Shock-Evaluation of Human Exposure to Whole-Body Vibration-Part 2: Continuous and shock induced vibration in buildings (1 to 80 Hz). (1997). Geneva, Switzerland. International Organization for Standardization (ISO) 2631–2: 1985 (E), 10 p.Search in Google Scholar

13. Munakata M. Dynamic whole-body vibration training: a unique upstream treatment from the muscle to the arterial system and central hemodynamics. Hypertension Research, 2017, 40 (5), 436.10.1038/hr.2017.17550624128230197Open DOISearch in Google Scholar

14. Lienhard K, Vienneau J, Nigg S, et al. Relationship between lower limb muscle activity and platform acceleration during whole-body vibration exercise. The Journal of Strength & Conditioning Research, 2015, 29(10), 2844-2853.10.1519/JSC.000000000000092725763517Search in Google Scholar

15. Barredo R, Foster H, Weatherman MN, et al. Review of evidence on the effectiveness of whole body vibration on muscle strength and mass of adults 55 and older. Physiotherapy, 2015, 101, e116-e117.10.1016/j.physio.2015.03.255Search in Google Scholar

eISSN:
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