Showing posts with label Veterinary. Show all posts
Showing posts with label Veterinary. Show all posts

Thursday, May 2, 2013

Theralase Announces 2012 Year End Financials


Theralase Advances Therapeutic Laser and Cancer Destruction Technologies

Toronto, Ontario – May 1, 2013, Theralase Technologies Inc. (TSXV: TLT) announced its year end 2012 financial results today.

Total revenue for the twelve month period ended December 31, 2012 dipped slightly to $1,824,313 compared to $2,027,058 for the same period in 2011, a 10% reduction, primarily due to a reduction in laser sales in the US and internationally. In 2012, Theralase focused its efforts on laser sales in Canada for its Therapeutic Laser Technology (TLT) Division and for accelerating the research and development of its patented cancer destruction platform for its Photo Dynamic Therapy (PDT) Division.

Selling expenses decreased by 41%, to $626,380 for the twelve month period ended December 31, 2012 compared to $1,060,288 for the same period in 2011. The percentage decrease was due to decreased spending on salaries, marketing, advertising and travel related expenses, as more focus was paid to completing sales in Canada, than abroad. 

Administrative expenses increased from $1,028,431 for the twelve months ended December 31, 2011 to $1,238,900 for the same period in 2012 representing an increase of 20%. The increase in administrative expenditures was primarily due to increases in the costs associated with stock based compensation.

Research and development costs increased to $873,335 for the year ended December 31, 2012 compared to $759,352 for the previous year, representing a 15% increase, due in part to the costs required to commercialize the TLC-2000 biofeedback laser, but primarily due to research and development costs of the TLC-3000 Photo Dynamic Compound (PDC) cancer and bacteria destruction technology.

The net loss for the year ended December 31, 2012 was $1,509,569, which included $322,915 of net non-cash expenses (amortization, stock-based compensation expense, foreign exchange gain/loss, equipment write-off and lease inducements) compared to a net loss in 2011 of $1,453,974, which included $74,921 of net non-cash expenses.  The increase in net loss is due to  increases in the costs associated with stock based compensation, commercialization of the patented TLC-2000 Biofeedback Therapeutic Laser due for launch in 2013 and primarily due to the research and development of the TLC-3000 Photo Dynamic Compound cancer destruction technology due for completion of the pre-clinical phase by 4Q2013.

Theralase has had many successes in 2012, specifically:
  • Preclinical research that confirmed the complete destruction of subcutaneous (under the skin) colon cancer tumours in mouse subjects, which were treated with the Theralase anti-cancer Photo Dynamic Compound (PDC) technology, which have continued to thrive cancer-free for more than 1 year post-treatment without any side effects.
  • Bladder cancer named as the principal cancer target
  • Theralase’s PDC was found to be 100% effective in destroying bladder cancer tumour cells
  • Theralase PDCs have shown an ability to destroy Escherichia Coli (E. coli) and Listeria Monocytogenes (Listeria) bacteria in vitro when light activated
  • Theralase establishes laser distributors in the Middle East and China
  • Addition of TENS (Transcutaneous Electrical Nerve Stimulation) on select laser models to allow additional CPT billing codes for the US market
  • Theralase's innovative anti-cancer PDC technology validated at major international conferences
  • Theralase expands intellectual property portfolio with increased patent protection
  • Renowned oncologist Dr. Michael Jewett joins Theralase's medical and scientific advisory board

Roger Dumoulin-White, President and CEO of Theralase Technologies Inc. stated, “The Company has completed the research and development of its next generation, patented TLC-2000 Biofeedback Therapeutic Laser and is now preparing for its launch in 4Q2013. In addition, Theralase has made great strides forward in the research and development of its patented Photo Dynamic Compounds (PDCs), indicated for the destruction of specific cancerous tumours. Our first target, bladder cancer, should be ready for human trials as early as 2014. In order to capitalize on this state-of-the-art cancer destruction technology and dramatically increase shareholder value, Theralase is in negotiations with strategic partners focused on the early commercialization of this ground breaking technology.”


About Theralase Technologies Inc.

Theralase Technologies Inc., founded in 1995, designs, develops, manufactures and markets patented, superpulsed laser technology utilized in biostimulation and biodestruction applications. Theralase technology is safe and effective in treating pain, inflammation and for tissue regeneration of neural muscular skeletal conditions and wound healing. As well, these applications extend to the care of animals by veterinarians. Theralase is currently developing patented Photo Dynamic Compounds (PDCs) that are able to target and destroy cancers, bacteria and viruses when light activated by Theralase’s proprietary laser technology.

The complete consolidated financial statements and MD&A for twelve months ending December 31, 2012 may be viewed at www.theralase.com  and www.sedar.com .

This press release contains forward-looking statements, which reflect the Company's current expectations regarding future events. The forward-looking statements involve risks and uncertainties. Actual results could differ materially from those projected herein. The Company disclaims any obligation to update these forward-looking statements.

Neither TSX Venture Exchange nor its Regulation Services Provider (as that term is defined in the policies of the TSX Venture Exchanges) accepts responsibility for the adequacy or accuracy of this release.

For More Information, please contact:

Roger Dumoulin-White,                                                                              
President & CEO                                                                                           
416-699-LASE (5273) ext. 225                                                                                  

Kristina Hachey
Chief Financial Officer
416-699-LASE (5273) ext. 224
khachey@theralase.com                                                                             

Greg Bewsh
Director of Investor Relations
416-699-LASE (5273) ext. 258

Arkady Mandel
Chief Scientific Officer
416-699-LASE (5273) ext. 260

Friday, April 26, 2013

COLD LASER THERAPY BASICS


Over 75 Trillion cells in a human body and they all need energy and electrons to communicate with each other. Laser light delivers the required electrons and energy directly to the cells, enhancing their ability to communicate with each other, absorb oxygen and nutrients and dispose of wastes and toxins. The laser delivers photons to the cells, and mitochondria, which they convert into ATP and use as energy for rebuilding and repairing tissues, tendons, ligaments, nerves and even bones.
Laser therapy is an exciting and relatively new field that can offer people a very safe and effective option to help with speeding up injury repair and reducing pain. provides a unique alternative to patients who are terrified of surgery or drugs, but still seek the powerful healing benefits.
A laser is defined as a device that produces intense radiation in the visible or near visible wavelengths.   Laser light is unique in that it is close to one specific wavelength and propagates in-phase; meaning that all of the electro-magnetic waves oscillate together in an ordered and aligned way.  Together, these conditions make up the term coherency.  When the coherent light is columnated, it can travel vast distances with very  little loss of power or scattering
Laser treatment used for healing is called “low-level laser” or “cold-laser” therapy.  By definition, lasers used for cold-laser therapy range in power from 5 to 500 milliwatts (0.005 to 0.5 Watts).  Lasers less than 5 milliwatts lack the power to induce a bio-stimulatory effect, while lasers greater than 500 milliwatts may cause excessive heating and burn the skin. Lasers used for surgery, however, range from 5 to 50 Watts
Approximately 3,000 clinical studies worldwide have attested to the beneficial and curative effects of therapeutic lasers. 

Cold-laser therapy systems are available in several different wavelengths and colors…
A lot depends on what you are trying to heal.  Each color reacts differently with the body.
Red lasers (660 nm) can penetrate more deeply, but are still generally used for surface conditions such as healing surface wounds such as bed-sores or diabetic ulcers,burns, acne, and hair restoration.

infrared lasers (905 nm) penetrate much deeper and are used to help heal muscle, ligament, and even bone.
The health benefits of cold laser therapy can be roughly divided into three categories:
1)    Reduce inflammation
2)    Reduce pain
3)    Accelerate tissue repair


 Laser Acupuncture
An increasing body of evidence suggests that laser treatments on specific acupuncture points can stimulate a similar effect as acupuncture needles.The use of laser acupuncture in the ears to help addiction and weight management cases


 Dangers & Risks 
One of the greatest risks of laser therapy is damage to the eyes.  Cold-laser therapy treatments should always be conducted with proper safety glasses worn by both the patient and the practitioner.  Other contraindications for laser treatment include:
• No treatment over suspect tumors or cancer cells
• No treatment over the thyroid

• No treatment over the fontanelle of infants
• No treatment if the patient is using photo-sensitive or immunosuppressant drugs.

These potential risks are a conservative precaution. Special exceptions are already being discovered including the use of laser-therapy to help with macular degeneration

Checklist to laser therapy
Adherence to the laser dosage recommendations from the world association for laser therapy is very important: the eight most important beam parameters  are: wavelength, power, irradiation time, beam area at the skin or culture surface , pulse parameters, anatomical location, number of treatments, and interval between treatments.

The three commonly used dose parameters are time, energy, and energy density.
In addition coherence, application technique(contact, projection, scanning, pressure), beam profile, and spectral width may also be considered important.
Beam power often decreases as the device warms up and as the device ages


coldllaser-thereapy

For further information please call 1-866-843-5273 or visit www.theralase.com

Wednesday, June 6, 2012

SuperPulsed 9 Diode Cold Laser as Low as $5,000


Theralase SuperPulsed Therapeutic Laser as low as $5,000

All Theralase Therapeutic Lasers offer:
 
Features:
  • Superpulsed 905nm technology
  • 5 x 905nm & 4 x 660nm
  • 4 different power levels
 Options:
  • Extended warranty available
  • Service loaner program
Benefits:

Activates all 3 known cellular pathways
  • Able to penetrate 4" into tissue
  • Fast treatment times (<10 minutes total)
  • Eliminates pain
  • Reduces inflammation
  • Accelerates tissue healing















Call 1-866-843-5273 or email sales@theralase.com
Discover why Theralase is the safest and most effective therapeutic laser on the market.

Friday, July 29, 2011

Equine Cold Laser Therapy Explained

Light Therapy


Carl Jamieson, owner of the Recent North American Cup winner Up The Credit was an early adopter of Theralase technologies. "I use the Theralase laser on every one of my horses, including Up The Credit,” says Jamieson. “It's great for knees, hocks, tendons and especially sesmoiditis.  I've never seen complete healing so clean and fast.”

Blair Burgess, trainer of Blue Porche winner of the 2011 Goodtimes Trot also uses Theralase technologies to address inflammation in his equine athletes. “I definitely noticed decreased inflammation in a shorter amount of time,” said Burgess. “All my other treatment protocols had been followed as per usual and we had never seen healing at that speed before.”

Light therapy has been shown in over 40 years of independent research worldwide to deliver powerful therapeutic benefits to living tissues and organisms. Both visible red and infrared light have been shown to effect at least 24 different positive changes at a cellular level. Visible red light, at a wavelength of 660 nanometers (nm – 1 nanometer is equal to one billionth of a meter), penetrates tissue to a depth of about 8-10 mm. It is very beneficial in treating problems close to the surface such as wounds, cuts, scars, trigger and acupuncture points and is particularly effective in treating infections. Infrared light (904nm) penetrates to a depth of about 30-40 mm which makes it more effective for bones, joints, deep muscle, etc.
The Light Spectrum
The diverse tissue and cell types in the body all have their own unique light absorption characteristics; that is, they will only absorb light at specific wavelengths and not at others. For example, skin layers, because of their high blood and water content, absorb red light very readily, while calcium and phosphorus absorb light of a different wavelength. Although both red and infrared wavelengths penetrate to different depths and affect tissues differently, their therapeutic effects are similar.
Depth of penetration is defined as the depth at which 60% of the light is absorbed by the tissue, while 40% of the light will continue to be absorbed in a manner that is less fully understood. Treating points with Light can have a dramatic effect on remote and internal areas of the body through the stimulation of nerves, acupuncture and trigger points that perform a function not unlike transmission cables.
At this time, research has shown no side effects from this form of therapy. Occasionally, one may experience an increase in pain or discomfort for a short period of time after treating chronic conditions. This occurs as the body reestablishes new equilibrium points following treatment. It is a phenomenon that may occur as part of the normal process of recovery.
Light therapy has also been given the name " phototherapy". A study done by the Mayo Clinic in 1989 suggests that the results of light therapy are a direct effect of light itself, generated at specific wavelengths, and are not necessarily a function of the characteristics of coherency and polarization associated with lasers. In a study entitled Low-Energy Laser Therapy: Controversies and New Research Findings, Jeffrey R. Basford, M.D. of the Mayo Clinic’s Department of Physical Medicine and Rehabilitation, suggests that the coherent aspect of laser may not be the source of its therapeutic effect. He states "firstly, the stimulating effects (from therapeutic light) are reported following irradiation with non-laser sources and secondly, tissue scattering, as well as fiber optic delivery systems used in many experiments rapidly degrade coherency . . . Thus any effects produced by low-energy lasers may be due to the effects of light in general and not to the unique properties of lasers. This view is not difficult to accept when it is remembered that wave-length dependent photobiochemical reactions occur throughout nature and are involved in such things as vision, photosynthesis, tanning and Vitamin D metabolism. In this view, laser therapy is really a form of light therapy, and lasers are important in that they are convenient sources of intense light at wavelengths that stimulate specific physiological functions (Lasers in Surgery and Medicine9:1-5, Mayo Clinic, Rochester, Minnesota, 1989).
LED’s and LASERS are no more than convenient devices for producing electromagnetic radiation at specific wavelengths, and in addition to the one already cited, several other studies establish that it is the light itself at specific wavelengths that is therapeutic in nature and not the machine which produced it. For example, Kendric C. Smith at the Department of Radiation Oncology, Stanford University School of Medicine, concludes in an important article entitled The Photobiological Effect of Low Level Laser Radiation Therapy (Laser Therapy, Vol. 3, No. 1, Jan - Mar 1991) that "1) Lasers are just convenient machines that produce radiation. 2) It is the radiation that produces the photobiological and/or photophysical effects and therapeutic gains, not the machines. 3) Radiation must be absorbed to produce a chemical or physical change, which results in a biological response."
The equation between the machine and the biological response is a common error often made by those who wish to promote the commercial interests of low-energy laser technology. Light radiation must be absorbed to produce a biological response. All biological systems have a unique absorption spectrum which determines what wavelengths of radiation will be absorbed to produce a given therapeutic effect. The visible red and infrared portions of the spectrum have been shown to have highly absorbent and unique therapeutic effects in living tissues.
The following are definitions of commonly used terms used in connection with the use of therapeutic light devices:
1) Visible Light: light that is within the visible spectrum, 400nm(violet) to 700nm(red)
2) Infrared Light: light in the invisible spectrum below red, from 700nm to 2,000nm
3) Frequency: number of cycles per second measured in Hertz
4) Coherency: wavelengths of light traveling in phase with one another
5) Monochromaticity: light that is of one color, or one wavelength
6) Collimation: light focused in a beam, maintaining a constant diameter regardless of its distance from the object or surface at which it is directed
7) Nanometer (nm): a unit of measure of wavelength of light (one billionth of a meter)
8) Nanosecond: one billionth of a second
9) Joule (J): unit used to measure the energy delivered
10) Watts (w) and milliwatts (mw, 1/ 1000th of a watt): units used to measure the power capability
11) Peak power output: the maximum output of power, measured in milliwatts and watts
12) Average power: amount of power actually delivered in a given period of time
13) Duty cycle: the amount of time the light is actually on during a given period of time
Lasers are of two principal types, "hot" and "cold", and they are distinguished by the amount of peak power they deliver. "Hot" lasers deliver power up to thousands of watts. They are used in surgery because they can make an incision that is very clean with little or no bleeding and because the laser cauterizes the incision as it cuts. They are also used in surgery that requires the removal of unhealthy tissue without damaging the healthy tissue that surrounds it. . "Cold" lasers produce a lower average power of 100 milliwatts or less. This is the type of laser that is used for therapeutic purposes and it is typically, although not always, pulsed. The light is actually on for only a fraction of a second because it is pulsed (turned on and off) at so many pulses per second. Pulsation results in an average power output that is very low compared to the maximum or peak output. Hence, most therapeutic lasers produce a high peak but low average power output. Therapeutic laser light is generally either visible (red, in most cases) or invisible (infrared). However, most therapeutic lasers operate at 904 nm which is an infrared light.
Light Emitting Diodes (LEDs) are another form of light therapy that is a relatively recent development of the laser industry. LEDs are similar to lasers inasmuch as they have the same healing effects but differ in the way that the light energy is delivered. A significant difference between lasers and LEDs is the power output. The peak power output of LEDs is measured in milliwatts, while that of lasers is measured in watts. However, this difference when considered alone is misleading, since the most critical factor that determines the amount of energy delivered is the duty cycle of the device.
LED devices usually have a 50% duty cycle. That is, the LED pulse is "on" for 0.5 seconds and "off" for 0.5 seconds versus the 2 ten-millionths of a second burst from laser at 1 cycle per second (1 herz). Moreover, LED is "on" 50% of the time and "off" 50% of the time regardless of what frequency setting (pulses per second) is used.
In the majority of lasers on the market, the energy output varies with the frequency setting: the lower the frequency, the lower the output. In the BioScan system on the contrary, the output is constant regardless of frequency. Even in the case of lasers that claim a peak output of 10 watts, because of the very short duty cycle, the average output at the highest frequencies is of the order of about 10 milliwatts. At the lower frequencies, however, the average output plummets into the range of microwatts (1 microwatt = 1000th of 1 milliwatt).
LEDs do not deliver enough power to damage the tissue, but they do deliver enough energy to stimulate a response from the body to heal itself. With a low peak power output but high duty cycle, the LEDs provide a much gentler delivery of the same healing wavelengths of light as does the laser but at a substantially greater energy output. For this reason, LEDs do not have the same risk of accidental eye damage that lasers do.
Moreover, LEDs are neither coherent nor collimated and they generate a broader band of wavelengths than do the single-wavelength laser. Non-collimation and the wide-angle diffusion of the LED confers upon it a greater ease of application, since light emissions are thereby able to penetrate a broader surface area. Moreover, the multiplicity of wavelengths in the LED, contrary to the single-wavelength laser, may enable it to affect a broader range of tissue types and produce a wider range of photochemical reactions in the tissue. /stronga
If LED disperses over a greater surface area, this results in a faster treatment time for a given area than laser. The primary reason that BioScan chose the LEDs over lasers is that LEDs are safer, more cost effective, provide a gentle but effective delivery of light and a greater energy output per unit of surface area in a given time duration. They are offered in combinations of visible red light at 660nm and infrared light at from 830nm to 930nm, with 880nm as their average.
Light therapy can:
  1. Increase vascularity (circulation) by increasing the formation of new capillaries, which are additional blood vessels that replace damaged ones. New capillaries speed up the healing process by carrying more oxygen as well as more nutrients needed for healing and they can also carry more waste products away.
  2. Stimulate the production of collagen. Collagen is the most common protein found in the body. Collagen is the essential protein used to repair damaged tissue and to replace old tissue. It is the substance that holds cells together and has a high degree of elasticity. By increasing collagen production less scar tissue is formed at the damaged site.
  3. Stimulate the release of adenosine triphosphate (ATP). ATP is the major carrier of energy to all cells. Increases in ATP allow cells to accept nutrients faster and get rid of waste products faster by increasing the energy level in the cell. All food turns into ATP before it is utilized by the cells. ATP provides the chemical energy that drives the chemical reaction of the cell.
  4. Increase lymphatic system activity. Edema, which is the swelling or natural splinting process of the body, has two basic components. The first is a liquid part which can be evacuated by the blood system and the second is comprised of the proteins which have to be evacuated by the lymphatic system. Research has shown that the lymph vessel diameter and the flow of the lymph system can be doubled with the use of light therapy. The venous diameter and the arterial diameters can also be increased. This means that both parts of edema (liquid and protein) can be evacuated at a much faster rate to relieve swelling
  5. Increase RNA and DNA synthesis. This helps damaged cells to be replaced more promptly.
  6. Reduce the excitability of nervous tissue. The photons of light energy enter the body as negative ions. This calls upon the body to send positive ions like calcium among others to go to the area being treated. These ions assist in firing the nerves thereby relieving pain.
  7. Stimulate fibroblastic activity which aids in the repair process. Fibroblasts are present in connective tissue and are capable of forming collagen fibers.
  8. Increase phagocytosis, which is the process of scavenging for and ingesting dead or degenerated cells by phagocyte cells for the purpose of clean up. This is an important part of the infection fighting process. Destruction of the infection and clean up must occur before the healing process can take place./stronga
  9. Induce a thermal like effect in the tissue. The light raises the temperature of the cells although there is no heat produced from the diodes themselves.
  10. Stimulate tissue granulation and connective tissue projections, which are part of the healing process of wounds, ulcers or inflamed tissue.
  11. Stimulate acetylcholine release. Acetylcholine causes cardiac inhibition, vasodilation, gastrointestinal peristalsis and other parasympathetic effects.

References 

The Photobiological Basis of Low Level Laser Radiation TherapyThe Photobiological Basis of Low Level Laser Radiation Therapy, Kendric C. Smith; Stanford University School of Medicine; Laser Therapy, Vol. 3, No. 1, Jan - Mar 1991 
Low-Energy Laser Therapy: Controversies Research Findings, Jeffrey R. Basford MD; Mayo Clinic; Lasers in Surgery and Medicine 9, pp. 1-5 (1989)
New Biological Phenomena Associated with Laser Radiation , M.I. Belkin U. Schwartz; Tel-Aviv University; HealthPhysics, Vol. 56, No. 5, May 1989; pp. 687-690
Macrophage Responsiveness to Light Therapy, S Young PhD, P Bolton BSc, U Dyson PhD, W Harvey PhD, C Diamantopoulos BSc; London: Lasers in Surgery and Medicine, 9; pp. 497-505 (1989) 
Photobiology of Low-Power Laser Effects, Tina Karu PhD; Laser Technology Centre of Russia; Health Physics, Vol. 56, No. 5. May 89, pp. 691-704
A Review of Low Level Laser Therapy, S Kitchen MSCMCSP C Partridge PhD; Centre for Physiotherapy Research, King's College London Physiotherapy, Vol. 77, No. 3, March 1991Systemic Effects of Low-Power Laser Irradiation on the Peripherial Central Nervous System, Cutaneous Wounds a
Burns, S Rochkind MD, M Rousso MD, M Nissan PhD, M Villarreal MD, L Barr-Nea PhD. DG Rees PhD, Lasers in Surgery and Medicine, 9; pp. 174-182 (1989)
Use of Laser Light to Treat Certain Lesions in Standardbreds, L.S McKibbin DVM, D Paraschak BSc., MA; Mod Veterinary Practice, March 1984, Sec. 3, p. 13
Low Level Laser Therapy: Current Clinical Practice In Northern Ireland, GD Baxter BSc, AJ Bet, MA,,JM AtienPhD, J Ravey PhD; Blamed Research Centre University Ulster Physiotherapy, Vol. 77, No. 3, March 1991 
The Effects of Low Energy Laser on Soft Tissue in Veterinary Medicine, LS McKibbin R Downie; The Acupuncture Institute, Ontario Canada; J. Wiley Sons 
A Study of the Effects or Lasering of Chronic Bowed Tendons, Wheatley, LS McKibbin DVM, and DM Paraschak Bsc MA; Lasers in Surg Medicine, Vol. pp. 55-59 (1983) Scc 3
Lasers and Wound Healing, Albert J. Nemeth, MD; Laser and Dermatology Center, Clearwater FL, Dermatologic Clinics, Vol.. 11 #4, 1993 
Low Level Laser Therapy: A Practical Introduction, T. Ohshiro RG Caiderhead, Wiley and Sons
Low Reactive-Level Laser Therapy: A Practical Application, T. Ohshiro;Book:Wiley and Sons 
Laser Biostimulation of Healing Wounds: Specific Effects and Mechanisms of Action,Chukuka S Enwemeka, PhD; Assistant Professor of Physical Therapy - U. of Texas, Health Science Center, San Antonio, TX; The Journal of Orthopaedic Sports Physical Therapy, Vol. 9. No.10, 1988
Effect of Helium-Neon and Infrared Laser Irradiation on Wound Healing in Rabbits, B Braverman, PhD; R McCarthy. Pharmd, A Lyankovich, MD; D Forde, BS, M Overfield, BS and M Bapna, PhD; Rush- Presbyterian-St. Luke's Medical Center; University of Illinois, Lasers in Surgery and Medicine 9:50-58 (1989)
Bone Fracture Consolidates Faster With Low-Power Laser, MA Trelles, MD and E Mayayo, MD, Barcelona, Spain; Lasers in Surgery Med. 7:36-45 (1987) 
Wound Management with Whirlpool and Infrared Cold Laser Treatment,P Gogia; B Hurt and T Zim; AMI-Park Plaza Hospital, Houston TX, Physical Therapy, Vol. 68, No. 8, August 1988
Effects of Low-Level Energy Lasers on the Healing of Full-Thickness Skin Defects, J Surinchak. MA; M Alago, BS,, R Bellamy, MD; B Stuck, MS and M Belkin, MD; Lettennan Army Institute of Research. Presido of San Fransico, CA; Lasers in Surgery Medicine, 2:267-274 (1983)
Biostimulation of Wound Healing by Lasers: Experimental Approaches in Animal Models and in Fibroblast Cultures, RP Abergel, MD; R Lyons. MD; J Castel, MS, R Dwyer. MD and i Uitlo. MD, PhD; Harbor UCLA Medical Center. CA: J Dennatol. Surgery Oncol., 13:2 Feb. 1987
Effects of Low Energy Laser on Wound Healing In a Porcine Model, J Hunter, MD; L Leonard, MD; R Wilsom MD; G Snider, MD and J DLxon, MD; Department of Surgery, University of Utah Medical Center, Salt Lake City UT, Lasers in Surgery Med. 3:285-290, 84
Effect of Laser Rays on Wound Healing, E Mester, MD; T Spiry, MD; B Szende. MD and J Tola; Semmelweis Medical Univ. Budapes, The American Journal of Surgery. Vol 122, Oct 1971
Low Level Laser Therapy in the United Kingdom, Kevin C Moore, MD; The Royal Oldham Hospital, Oldhant, UK
Effects of Skin-Contact Monochromatic Infrared Irradiation on Tendonitis, Capsulitis and Myofascial Pain, T.L Thomassoi DDS, 19th Annual Scientific Meeting, American Academy of Neurological Orthopaedic Surgeons, Aug. 27-30, 1995 Facial Pain/TMJ Centre, Denver, CO
 


For further information please call 1-866-843-5273 or visit www.theralase.com

Tuesday, July 26, 2011

Accelerate Wound Healing by Using Cold Laser Therapy (for Humans, Equines and Pets) Veterinary http://ping.fm/aEOXl