Acute Intraocular Pressure Responses to Resistance Training in Combination With Blood Flow Restriction.
暂无分享,去创建一个
A. García-Ramos | Jesús Vera | Beatríz Redondo | Raimundo Jiménez | J. Colado | Alejandro Pérez-Castilla | Fernando Martín-Rivera | Javier Gene
[1] A. Gené-Sampedro,et al. Do Age and Sex Play a Role in the Intraocular Pressure Changes after Acrobatic Gymnastics? , 2021, Journal of clinical medicine.
[2] A. García-Ramos,et al. Impact of resistance training sets performed until muscular failure with different loads on intraocular pressure and ocular perfusion pressure , 2020, European journal of ophthalmology.
[3] P. Stastny,et al. Systematic review of intra-abdominal and intrathoracic pressures initiated by the Valsalva manoeuvre during high-intensity resistance exercises , 2019, Biology of sport.
[4] T. Abe,et al. Blood Flow Restriction Exercise: Considerations of Methodology, Application, and Safety , 2019, Front. Physiol..
[5] K. Park,et al. Exogenous influences on intraocular pressure , 2019, British Journal of Ophthalmology.
[6] K. So,et al. Physical exercise and glaucoma: a review on the roles of physical exercise on intraocular pressure control, ocular blood flow regulation, neuroprotection and glaucoma‐related mental health , 2018, Acta ophthalmologica.
[7] A. García-Ramos,et al. Effect of the level of effort during resistance training on intraocular pressure , 2018, European journal of sport science.
[8] R. Ritch,et al. Association Between 24-Hour Intraocular Pressure Monitored With Contact Lens Sensor and Visual Field Progression in Older Adults With Glaucoma , 2018, JAMA ophthalmology.
[9] I-Min Lee,et al. Does Strength‐Promoting Exercise Confer Unique Health Benefits? A Pooled Analysis of Data on 11 Population Cohorts With All‐Cause, Cancer, and Cardiovascular Mortality Endpoints , 2018, American journal of epidemiology.
[10] J. Kim,et al. Intraocular Pressure Fluctuation: Is It Important? , 2018, Journal of ophthalmic & vision research.
[11] C. Ugrinowitsch,et al. Magnitude of Muscle Strength and Mass Adaptations Between High-Load Resistance Training Versus Low-Load Resistance Training Associated with Blood-Flow Restriction: A Systematic Review and Meta-Analysis , 2018, Sports Medicine.
[12] A. García-Ramos,et al. Fitness Level Modulates Intraocular Pressure Responses to Strength Exercises , 2018, Current eye research.
[13] D. Player,et al. The acute angiogenic signalling response to low-load resistance exercise with blood flow restriction , 2018, European journal of sport science.
[14] T. Beck,et al. Low‐load resistance training with low relative pressure produces muscular changes similar to high‐load resistance training , 2017, Muscle & nerve.
[15] J. Novaes,et al. Effects of resistance training with blood flow restriction on haemodynamics: a systematic review , 2017, Clinical physiology and functional imaging.
[16] A. García-Ramos,et al. The acute effect of strength exercises at different intensities on intraocular pressure , 2017, Graefe's Archive for Clinical and Experimental Ophthalmology.
[17] R. Ferguson,et al. The influence of participant characteristics on the relationship between cuff pressure and level of blood flow restriction , 2016, European Journal of Applied Physiology.
[18] D. Warburton,et al. Reflections on Physical Activity and Health: What Should We Recommend? , 2016, The Canadian journal of cardiology.
[19] C. McMonnies. Intraocular pressure and glaucoma: Is physical exercise beneficial or a risk? , 2016, Journal of optometry.
[20] X. Mayo,et al. Effect of set configuration on hemodynamics and cardiac autonomic modulation after high‐intensity squat exercise , 2015, Clinical physiology and functional imaging.
[21] M. Conte,et al. Variation of intraocular pressure in resistance exercise performed in two different positions , 2015 .
[22] T. Abe,et al. Blood flow restriction in the upper and lower limbs is predicted by limb circumference and systolic blood pressure , 2015, European Journal of Applied Physiology.
[23] T. Abe,et al. Effects of short‐term detraining following blood flow restricted low‐intensity training on muscle size and strength , 2015, Clinical physiology and functional imaging.
[24] T. Abe,et al. Blood flow restriction pressure recommendations: the hormesis hypothesis. , 2014, Medical hypotheses.
[25] J. Roider,et al. Comparison of the influence of aerobic and resistance exercise of the upper and lower limb on intraocular pressure , 2014, Acta ophthalmologica.
[26] G. Cumming,et al. The New Statistics , 2014, Psychological science.
[27] M. Conte,et al. Association between plasma lactate concentrations after resistance exercise with intraocular pressure , 2013 .
[28] P. J. Marín,et al. Low intensity blood flow restriction training: a meta-analysis , 2012, European Journal of Applied Physiology.
[29] T. Abe,et al. Combined effects of low-intensity blood flow restriction training and high-intensity resistance training on muscle strength and size , 2011, European Journal of Applied Physiology.
[30] C. Chiquet,et al. Effect of acute increase in blood pressure on intraocular pressure in pigs and humans. , 2010, Investigative ophthalmology & visual science.
[31] J. Hisdal,et al. Intraocular pressure increases in parallel with systemic blood pressure during isometric exercise. , 2009, Investigative ophthalmology & visual science.
[32] R. Ritch,et al. Intraocular pressure variation during weight lifting. , 2006, Archives of ophthalmology.
[33] D. Warburton,et al. Health benefits of physical activity: the evidence , 2006, Canadian Medical Association Journal.
[34] V. Dayanır,et al. The Comparison of Intraocular Pressure Reductions after Isometric and Isokinetic Exercises in Normal Individuals , 1999, Ophthalmologica.
[35] J. East,et al. Intra-ocular pressure changes during maximal isometric contraction: does this reflect intra-cranial pressure or retinal venous pressure? , 1999, Neurological research.
[36] M. Scarpi,et al. Comparação de resposta da pressão intraocular frente a duas diferentes intensidades e volumes do treinamento resistido , 2014 .