Physical therapy in diabetic foot ulcer: Research progress and clinical application
暂无分享,去创建一个
Quangang Zhu | Zongguang Tai | Zhongjian Chen | L. Bao | Hao Huang | Rujuan Xin | Xiaolong Li | Xinyue Zhang
[1] Jie Zhang,et al. Photobiomodulation promotes angiogenesis in wound healing through stimulating the nuclear translocation of VEGFR2 and STAT3. , 2022, Journal of photochemistry and photobiology. B, Biology.
[2] T. Ledermann,et al. Improving Dietary Intake of Essential Nutrients Can Ameliorate Inflammation in Patients with Diabetic Foot Ulcers , 2022, Nutrients.
[3] A. Sivakumar,et al. Diabetes mellitus and diabetic foot ulcer: Etiology, biochemical and molecular based treatment strategies via gene and nanotherapy. , 2022, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[4] Thanaporn Tunprasert,et al. The effects of electrical stimulation on diabetic ulcers of foot and lower limb: A systematic review , 2022, International wound journal.
[5] P. Lazzarini,et al. Factors associated with adherence to using removable cast walker treatment among patients with diabetes-related foot ulcers , 2022, BMJ Open Diabetes Research & Care.
[6] B. Duncan,et al. IDF diabetes Atlas: Global, regional and country-level diabetes prevalence estimates for 2021 and projections for 2045 , 2021, Diabetes Research and Clinical Practice.
[7] M. Bayat,et al. Effectiveness of preconditioned adipose-derived mesenchymal stem cells with photobiomodulation for the treatment of diabetic foot ulcers: a systematic review , 2021, Lasers in Medical Science.
[8] U. R. Kuppusamy,et al. A review of diabetic wound models—Novel insights into diabetic foot ulcer , 2021, Journal of tissue engineering and regenerative medicine.
[9] S. K. Ghoreishi,et al. Impact of preconditioned diabetic stem cells and photobiomodulation on quantity and degranulation of mast cells in a delayed healing wound simulation in type one diabetic rats , 2021, Lasers in Medical Science.
[10] V. Flood,et al. Associations between Nutrients and Foot Ulceration in Diabetes: A Systematic Review , 2021, Nutrients.
[11] R. Frykberg,et al. Reduced Hospitalizations and Amputations in Patients with Diabetic Foot Ulcers Treated with Cyclical Pressurized Topical Wound Oxygen Therapy: Real-World Outcomes , 2021, Advances in wound care.
[12] K. Liechty,et al. Macrophage Polarization and Diabetic Wound Healing. , 2021, Translational research : the journal of laboratory and clinical medicine.
[13] M. Liebergall,et al. Treatment of diabetic foot ulcers in a frail population with severe co-morbidities using at-home photobiomodulation laser therapy: a double-blind, randomized, sham-controlled pilot clinical study , 2021, Lasers in Medical Science.
[14] Harikrishna K. R. Nair,et al. Photobiomodulation as an Adjunct Therapy in Wound Healing , 2021, The international journal of lower extremity wounds.
[15] Zhou Li,et al. Accelerated Skin Wound Healing by Electrical Stimulation , 2021, Advanced healthcare materials.
[16] J. Overhage,et al. Biofilm-Innate Immune Interface: Contribution to Chronic Wound Formation , 2021, Frontiers in Immunology.
[17] C. Sen. Human Wounds and its Burden: Updated 2020 Compendium of Estimates. , 2021, Advances in wound care.
[18] Yanan Zhao,et al. Effect of tap dance on plantar pressure, postural stability and lower body function in older patients at risk of diabetic foot: a randomized controlled trial , 2021, BMJ Open Diabetes Research & Care.
[19] Mayland Chang,et al. Strategy for Treatment of Infected Diabetic Foot Ulcers. , 2021, Accounts of chemical research.
[20] J. Hijmans,et al. Effects of offloading devices on static and dynamic balance in patients with diabetic peripheral neuropathy: A systematic review , 2021, Reviews in Endocrine and Metabolic Disorders.
[21] OUP accepted manuscript , 2021, Nutrition Reviews.
[22] N. Houreld,et al. Effect of photobiomodulation therapy on inflammatory cytokines in healing dynamics of diabetic wounds: a systematic review of preclinical studies , 2020, Archives of physiology and biochemistry.
[23] L. Davidson,et al. Skin and Soft Tissue Infections in Patients with Diabetes Mellitus. , 2020, Infectious disease clinics of North America.
[24] J. Jameson,et al. Skin Resident γδ T Cell Function and Regulation in Wound Repair , 2020, International journal of molecular sciences.
[25] B. Shu,et al. Study on the Effect of the Five-in-One Comprehensive Limb Salvage Technologies of Treating Severe Diabetic Foot. , 2020, Advances in wound care.
[26] S. K. Ghoreishi,et al. Transplantation of photobiomodulation-preconditioned diabetic stem cells accelerates ischemic wound healing in diabetic rats , 2020, Stem cell research & therapy.
[27] Y. Lau,et al. Efficacy of low‐level light therapy for improving healing of diabetic foot ulcers: A systematic review and meta‐analysis of randomized controlled trials , 2020, Wound repair and regeneration : official publication of the Wound Healing Society [and] the European Tissue Repair Society.
[28] T. Ledermann,et al. Nutritional Supplementation Concurrent with Nutrition Education Accelerates the Wound Healing Process in Patients with Diabetic Foot Ulcers , 2020, Biomedicines.
[29] S. W. Jere,et al. Effect of photobiomodulation on cellular migration and survival in diabetic and hypoxic diabetic wounded fibroblast cells , 2020, Lasers in Medical Science.
[30] L. Low,et al. A systematic review of nudge theories and strategies used to influence adult health behaviour and outcome in diabetes management. , 2020, Diabetes & metabolism.
[31] C. Ferraresi,et al. Can photobiomodulation therapy (PBMT) control blood glucose levels and alter muscle glycogen synthesis? , 2020, Journal of photochemistry and photobiology. B, Biology.
[32] K. Chopra,et al. Practical Things You Should Know about Wound Healing and Vacuum-Assisted Closure Management , 2020, Plastic and reconstructive surgery.
[33] F. Pu,et al. Emerging technologies for the prevention and management of diabetic foot ulcers. , 2020, Journal of tissue viability.
[34] C. Attinger,et al. Effectiveness of interventions to enhance healing of chronic foot ulcers in diabetes: a systematic review , 2020, Diabetes/metabolism research and reviews.
[35] Benjamin A Lipsky,et al. Practical Guidelines on the prevention and management of diabetic foot disease (IWGDF 2019 update) , 2020, Diabetes/metabolism research and reviews.
[36] Benjamin A Lipsky,et al. Diabetic foot disease: “The Times They are A Changin’ ” , 2020, Diabetes/metabolism research and reviews.
[37] D. Armstrong,et al. Effectiveness of offloading interventions to heal foot ulcers in persons with diabetes: a systematic review , 2020, Diabetes/metabolism research and reviews.
[38] C. Attinger,et al. Guidelines on use of interventions to enhance healing of chronic foot ulcers in diabetes (IWGDF 2019 update) , 2020, Diabetes/metabolism research and reviews.
[39] A. Ascenso,et al. Therapeutic advances in wound healing , 2020, The Journal of dermatological treatment.
[40] L. Gavish,et al. At-Home Self-Applied Photobiomodulation Device for the Treatment of Diabetic Foot Ulcers in Adults With Type 2 Diabetes: Report of 4 Cases. , 2020, Canadian journal of diabetes.
[41] C. Assi,et al. A systematic review on the efficacy of vitamin D supplementation on diabetic peripheral neuropathy. , 2020, Clinical nutrition.
[42] Jake D. Jones,et al. Skin Structure-Function Relationships and the Wound Healing Response to Intrinsic Aging. , 2020, Advances in wound care.
[43] J. V. van Netten,et al. Treatment of modifiable risk factors for foot ulceration in persons with diabetes: a systematic review , 2020, Diabetes/metabolism research and reviews.
[44] A. Boulton,et al. Hyperbaric oxygen therapy in diabetic foot ulceration: Useless or useful? A battle , 2020 .
[45] Michael R Hamblin,et al. Combined effects of metformin and photobiomodulation improve the proliferation phase of wound healing in type 2 diabetic rats. , 2020, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[46] Z. Moore,et al. Nutritional interventions for treating foot ulcers in people with diabetes. , 2020, The Cochrane database of systematic reviews.
[47] T. Wild,et al. A Multinational, Multicenter, Randomized, Double-Blinded, Placebo-Controlled Trial to Evaluate the Efficacy of Cyclical Topical Wound Oxygen (TWO2) Therapy in the Treatment of Chronic Diabetic Foot Ulcers: The TWO2 Study , 2020, Diabetes Care.
[48] J. Mills,et al. The patient presenting with chronic limb‐threatening ischaemia. Does diabetes influence presentation, limb outcomes and survival? , 2019, Diabetes/metabolism research and reviews.
[49] Michael J. Mueller. Mobility advice to help prevent re‐ulceration in diabetes , 2019, Diabetes/metabolism research and reviews.
[50] A. Khachemoune,et al. Diabetic Foot Ulcers: Appraising Standard of Care and Reviewing New Trends in Management , 2019, American Journal of Clinical Dermatology.
[51] N. Schaper,et al. Microangiopathy: Is it relevant to wound healing in diabetic foot disease? , 2019, Diabetes/metabolism research and reviews.
[52] H. Abrahamse,et al. Photobiomodulation at 660 nm Stimulates Fibroblast Differentiation. , 2019, Lasers in surgery and medicine.
[53] E. Gregg,et al. Trends in Rates of Infections Requiring Hospitalization Among Adults With Versus Without Diabetes in the U.S., 2000–2015 , 2019, Diabetes Care.
[54] K. Ramkumar,et al. Tissue-specific role of Nrf2 in the treatment of diabetic foot ulcers during hyperbaric oxygen therapy. , 2019, Free radical biology & medicine.
[55] R. Montenegro,et al. Comparative study on laser and LED influence on tissue repair and improvement of neuropathic symptoms during the treatment of diabetic ulcers , 2019, Lasers in Medical Science.
[56] R. L. Kwan,et al. Efficacy of Biophysical Energies on Healing of Diabetic Skin Wounds in Cell Studies and Animal Experimental Models: A Systematic Review , 2019, International journal of molecular sciences.
[57] C. Harris,et al. Using a muscle pump activator device to stimulate healing for non‐healing lower leg wounds in long‐term care residents , 2018, International wound journal.
[58] Gangyi Yang,et al. Efficacy of low-level light therapy for treatment of diabetic foot ulcer: A systematic review and meta-analysis of randomized controlled trials. , 2018, Diabetes research and clinical practice.
[59] Alireza Salimi Chirani,et al. The effect of combined pulsed wave low‐level laser therapy and mesenchymal stem cell‐conditioned medium on the healing of an infected wound with methicillin‐resistant Staphylococcal aureus in diabetic rats , 2018, Journal of cellular biochemistry.
[60] N. Parizotto,et al. Photobiomodulation mechanisms in the kinetics of the wound healing process in rats. , 2018, Journal of photochemistry and photobiology. B, Biology.
[61] A. Bayat,et al. Photobiomodulation of a flowable matrix in a human skin ex vivo model demonstrates energy‐based enhancement of engraftment integration and remodeling , 2018, Journal of biophotonics.
[62] J. Fisz,et al. Low-level laser irradiation modifies the effect of hyperglycemia on adhesion molecule levels , 2018, Lasers in Medical Science.
[63] Hojjat Allah Abbaszadeh,et al. Stereological and molecular studies on the combined effects of photobiomodulation and human bone marrow mesenchymal stem cell conditioned medium on wound healing in diabetic rats. , 2018, Journal of photochemistry and photobiology. B, Biology.
[64] Ryan T. Crews,et al. Decreasing an Offloading Device’s Size and Offsetting Its Imposed Limb-Length Discrepancy Lead to Improved Comfort and Gait , 2018, Diabetes Care.
[65] V. Reddy,et al. The effect of combined photobiomodulation and curcumin on skin wound healing in type I diabetes in rats. , 2018, Journal of photochemistry and photobiology. B, Biology.
[66] P. Jafari,et al. The beneficial effects of probiotic administration on wound healing and metabolic status in patients with diabetic foot ulcer: A randomized, double‐blind, placebo‐controlled trial , 2018, Diabetes/metabolism research and reviews.
[67] Estelle M Everett,et al. Update on management of diabetic foot ulcers , 2018, Annals of the New York Academy of Sciences.
[68] F. Bassetto,et al. EUREKA study – the evaluation of real-life use of a biophotonic system in chronic wound management: an interim analysis , 2017, Drug design, development and therapy.
[69] M. Khamaisi,et al. Dysregulation of wound healing mechanisms in diabetes and the importance of negative pressure wound therapy (NPWT) , 2017, Diabetes/metabolism research and reviews.
[70] V. Bagnato,et al. Application of photodynamic therapy, laser therapy, and a cellulose membrane for calcaneal pressure ulcer treatment in a diabetic patient: A case report. , 2017, Photodiagnosis and photodynamic therapy.
[71] Sicco A Bus,et al. Diabetic Foot Ulcers and Their Recurrence. , 2017, The New England journal of medicine.
[72] M. Heyboer,et al. Hyperbaric Oxygen Therapy: Side Effects Defined and Quantified. , 2017, Advances in wound care.
[73] Y. Pan,et al. Negative pressure wound therapy inhibits inflammation and upregulates activating transcription factor‐3 and downregulates nuclear factor‐κB in diabetic patients with foot ulcerations , 2017, Diabetes/metabolism research and reviews.
[74] Mehdi Ahmadi,et al. Angiogenic effects of low-intensity cathodal direct current on ischemic diabetic foot ulcers: A randomized controlled trial. , 2017, Diabetes research and clinical practice.
[75] Filippo Molinari,et al. Effect of low-level light therapy on diabetic foot ulcers: a near-infrared spectroscopy study , 2017, Journal of biomedical optics.
[76] Asheesh Gupta,et al. Noninvasive red and near‐infrared wavelength‐induced photobiomodulation: promoting impaired cutaneous wound healing , 2017, Photodermatology, photoimmunology & photomedicine.
[77] L. Giurato,et al. The Effectiveness of Negative Pressure Therapy in Diabetic Foot Ulcers with Elevated Protease Activity: A Case Series. , 2017, Advances in wound care.
[78] P. Gupta,et al. Low-level laser therapy as an adjunct to conventional therapy in the treatment of diabetic foot ulcers , 2017, Lasers in Medical Science.
[79] J. Götz,et al. Off-loading strategies in diabetic foot syndrome–evaluation of different devices , 2017, International Orthopaedics.
[80] R. Schenk,et al. The wound healing trajectory and predictors with combined electric stimulation and conventional care: one outpatient wound care clinic's experience , 2016, European journal of clinical investigation.
[81] T. Koh,et al. Advanced Technologies to Improve Wound Healing: Electrical Stimulation, Vibration Therapy, and Ultrasound—What Is the Evidence? , 2016, Plastic and reconstructive surgery.
[82] J. Molnar,et al. Nutrition and Chronic Wounds: Improving Clinical Outcomes , 2016, Plastic and reconstructive surgery.
[83] H. Abrahamse,et al. The Role of Matrix Metalloproteinases in Diabetic Wound Healing in relation to Photobiomodulation , 2016, Journal of diabetes research.
[84] Sai V. Yalla,et al. Physiological and psychological challenges of increasing physical activity and exercise in patients at risk of diabetic foot ulcers: a critical review , 2016, Diabetes/metabolism research and reviews.
[85] Chin-Shang Li,et al. A systematic review of low‐level light therapy for treatment of diabetic foot ulcer , 2016, Wound repair and regeneration : official publication of the Wound Healing Society [and] the European Tissue Repair Society.
[86] Danuta Rość,et al. Low-level laser irradiation effect on endothelial cells under conditions of hyperglycemia , 2016, Lasers in Medical Science.
[87] M. Murad,et al. A systematic review and meta-analysis of off-loading methods for diabetic foot ulcers. , 2016, Journal of vascular surgery.
[88] R. Goeree,et al. Hyperbaric Oxygen Therapy Does Not Reduce Indications for Amputation in Patients With Diabetes With Nonhealing Ulcers of the Lower Limb: A Prospective, Double-Blind, Randomized Controlled Clinical Trial , 2016, Diabetes Care.
[89] I. Sacco,et al. From treatment to preventive actions: improving function in patients with diabetic polyneuropathy , 2016, Diabetes/metabolism research and reviews.
[90] T. Oh,et al. Innovations in diabetic foot reconstruction using supermicrosurgery , 2016, Diabetes/metabolism research and reviews.
[91] J. Steinberg,et al. What's new in wound treatment: a critical appraisal , 2016, Diabetes/metabolism research and reviews.
[92] F. Bowling,et al. The diabetic foot in 2015: an overview , 2016, Diabetes/metabolism research and reviews.
[93] C. Attinger,et al. Effectiveness of interventions to enhance healing of chronic ulcers of the foot in diabetes: a systematic review , 2016, Diabetes/metabolism research and reviews.
[94] T. Zehnder,et al. Wireless micro current stimulation – an innovative electrical stimulation method for the treatment of patients with leg and diabetic foot ulcers , 2015, International wound journal.
[95] L. Lavery,et al. Randomised clinical trial to compare total contact casts, healing sandals and a shear‐reducing removable boot to heal diabetic foot ulcers , 2015, International wound journal.
[96] C. Chisari,et al. Quantitative assessment of early biomechanical modifications in diabetic foot patients: the role of foot kinematics and step width , 2015, Journal of NeuroEngineering and Rehabilitation.
[97] Zhicheng Hu,et al. Effectiveness and Safety of Negative-Pressure Wound Therapy for Diabetic Foot Ulcers: A Meta-Analysis , 2014, Plastic and reconstructive surgery.
[98] R. Kirsner,et al. Diabetic Foot Ulcer: An Evidence-Based Treatment Update , 2014, American Journal of Clinical Dermatology.
[99] M. Koelemay,et al. Hyperbaric oxygen for the treatment of diabetic foot ulcers: a systematic review. , 2014, European Journal of Vascular and Endovascular Surgery.
[100] Sicco A Bus,et al. Risk Factors for Plantar Foot Ulcer Recurrence in Neuropathic Diabetic Patients , 2014, Diabetes Care.
[101] E. Camporesi,et al. Effects of alpha lipoic acid and its R+ enantiomer supplemented to hyperbaric oxygen therapy on interleukin-6, TNF-α and EGF production in chronic leg wound healing , 2014, Journal of enzyme inhibition and medicinal chemistry.
[102] J. Taradaj,et al. High-Voltage Pulsed Current Electrical Stimulation in Wound Treatment. , 2014, Advances in wound care.
[103] Dong Yeon Lee,et al. Negative-pressure wound therapy induces endothelial progenitor cell mobilization in diabetic patients with foot infection or skin defects , 2013, Experimental & Molecular Medicine.
[104] M. Carter,et al. Frequency of debridements and time to heal: a retrospective cohort study of 312 744 wounds. , 2013, JAMA dermatology.
[105] Ryan T. Crews,et al. A Novel Plantar Stimulation Technology for Improving Protective Sensation and Postural Control in Patients with Diabetic Peripheral Neuropathy: A Double-Blinded, Randomized Study , 2013, Gerontology.
[106] R. L. Kwan,et al. Electrophysical therapy for managing diabetic foot ulcers: a systematic review , 2013, International wound journal.
[107] R. Liu,et al. Systematic review of the effectiveness of hyperbaric oxygenation therapy in the management of chronic diabetic foot ulcers. , 2013, Mayo Clinic proceedings.
[108] W. Polomski,et al. Adherence to Wearing Prescription Custom-Made Footwear in Patients With Diabetes at High Risk for Plantar Foot Ulceration , 2013, Diabetes Care.
[109] H. Abrahamse,et al. Collagen production in diabetic wounded fibroblasts in response to low-intensity laser irradiation at 660 nm. , 2012, Diabetes technology & therapeutics.
[110] S. Bergin,et al. Australian Diabetes Foot Network: management of diabetes‐related foot ulceration — a clinical update , 2012, The Medical journal of Australia.
[111] M. Schintler. Negative pressure therapy: theory and practice , 2012, Diabetes/metabolism research and reviews.
[112] M. Löndahl. Hyperbaric oxygen therapy as treatment of diabetic foot ulcers , 2012, Diabetes/metabolism research and reviews.
[113] D. Armstrong,et al. A systematic review of interventions to enhance the healing of chronic ulcers of the foot in diabetes , 2012, Diabetes/metabolism research and reviews.
[114] R. Kamel,et al. The diabetic foot and leg: combined He-Ne and infrared low-intensity lasers improve skin blood perfusion and prevent potential complications. A prospective study on 30 Egyptian patients , 2011, Lasers in Medical Science.
[115] D. Orgill,et al. Analysis of Nerve and Neuropeptide Patterns in Vacuum-Assisted Closure–Treated Diabetic Murine Wounds , 2010, Plastic and reconstructive surgery.
[116] Benjamin A Lipsky,et al. Hyperbaric Oxygen Therapy for Diabetic Foot Wounds , 2010, Diabetes Care.
[117] E. Faglia,et al. Effectiveness of Removable Walker Cast Versus Nonremovable Fiberglass Off-Bearing Cast in the Healing of Diabetic Plantar Foot Ulcer , 2010, Diabetes Care.
[118] J. Petrofsky,et al. Enhanced healing of diabetic foot ulcers using local heat and electrical stimulation for 30 min three times per week , 2010, Journal of diabetes.
[119] K. Aminian,et al. The gait and balance of patients with diabetes can be improved: a randomised controlled trial , 2009, Diabetologia.
[120] Helen M. Byrne,et al. A Three Species Model to Simulate Application of Hyperbaric Oxygen Therapy to Chronic Wounds , 2009, PLoS Comput. Biol..
[121] Michael S. Golinko,et al. Operative debridement of diabetic foot ulcers. , 2008, Journal of the American College of Surgeons.
[122] Stephanie Wu,et al. Use of Pressure Offloading Devices in Diabetic Foot Ulcers , 2008, Diabetes Care.
[123] A. Malmivaara,et al. Negative pressure wound therapy: a systematic review on effectiveness and safety. , 2008, European journal of vascular and endovascular surgery : the official journal of the European Society for Vascular Surgery.
[124] W. V. van Houtum,et al. The value of debridement and Vacuum‐Assisted Closure (V.A.C.) Therapy in diabetic foot ulcers , 2008, Diabetes/metabolism research and reviews.
[125] W. Jeffcoate,et al. A systematic review of the effectiveness of interventions to enhance the healing of chronic ulcers of the foot in diabetes , 2008, Diabetes/metabolism research and reviews.
[126] P. Blume,et al. Comparison of Negative Pressure Wound Therapy Using Vacuum-Assisted Closure With Advanced Moist Wound Therapy in the Treatment of Diabetic Foot Ulcers , 2008, Diabetes Care.
[127] J. Petrofsky,et al. The influence of local versus global heat on the healing of chronic wounds in patients with diabetes. , 2007, Diabetes technology & therapeutics.
[128] Paul T. Williams,et al. Vigorous exercise and diabetic, hypertensive, and hypercholesterolemia medication use. , 2007, Medicine and science in sports and exercise.
[129] S. Del Prato,et al. An Off-the-Shelf Instant Contact Casting Device for the Management of Diabetic Foot Ulcers , 2007, Diabetes Care.
[130] K. Harding,et al. Walking performance in people with diabetic neuropathy: benefits and threats , 2006, Diabetologia.
[131] J. Hong. Reconstruction of the Diabetic Foot Using the Anterolateral Thigh Perforator Flap , 2006, Plastic and reconstructive surgery.
[132] J. McCardle. Versajet hydroscalpel: treatment of diabetic foot ulceration. , 2006, British journal of nursing.
[133] D. Armstrong,et al. Negative pressure wound therapy after partial diabetic foot amputation: a multicentre, randomised controlled trial , 2005, The Lancet.
[134] M. Strauss. Surgical treatment of problem foot wounds in patients with diabetes. , 2005, Clinical orthopaedics and related research.
[135] A. Boulton. The diabetic foot: from art to science. The 18th Camillo Golgi lecture , 2004, Diabetologia.
[136] J. Rauwerda. Surgical treatment of the infected diabetic foot , 2004, Diabetes/metabolism research and reviews.
[137] P. Kranke,et al. Hyperbaric oxygen therapy for chronic wounds. , 2004, The Cochrane database of systematic reviews.
[138] D. Armstrong,et al. Technique for fabrication of an "instant total-contact cast" for treatment of neuropathic diabetic foot ulcers. , 2002, Journal of the American Podiatric Medical Association.
[139] Michael J. Mueller,et al. Tissue adaptation to physical stress: a proposed "Physical Stress Theory" to guide physical therapist practice, education, and research. , 2002, Physical therapy.
[140] J. Smith,et al. Debridement of diabetic foot ulcers. , 2002, The Cochrane database of systematic reviews.
[141] D. Armstrong,et al. Electric stimulation as an adjunct to heal diabetic foot ulcers: a randomized clinical trial. , 2001, Archives of physical medicine and rehabilitation.
[142] E. Mester,et al. The biomedical effects of laser application , 1985, Lasers in surgery and medicine.
[143] E Mester,et al. Effect of laser rays on wound healing. , 1971, American journal of surgery.
[144] E. Mester,et al. [The effect of laser beam on Ehrlich ascites tumor cells in vitro]. , 1968, Orvosi hetilap.