J Biomed Phys EngJ Biomed Phys EngJBPEJournal of Biomedical Physics & Engineering2251-7200Shiraz University of Medical SciencesShiraz, Iran255057754258865jbpe-4-83Original ArticleDesign and Fabrication of Helmholtz Coils to Study the Effects of Pulsed Electromagnetic Fields on the Healing Process in Periodontitis: Preliminary Animal ResultsHaghnegahdarA1KhosrovpanahH2Andisheh-TadbirA3MortazaviGh4*Saeedi MoghadamM5MortazaviSMJ56ZamaniA6HaghaniM5Shojaei FardM5ParsaeiH6KoohiO7Department of Oral and Maxillofacial Radiology, School of Dentistry, Shiraz University of Medical Sciences, Shiraz, Iran Department of Periodontology, School of Dentistry, Shiraz University of Medical Sciences, Shiraz, Iran Department of Oral and Maxillofacial Pathology, School of Dentistry, Shiraz University of Medical Sciences, Shiraz, Iran Student Research Committee, School of Dentistry, Shiraz University of Medical Sciences, Shiraz, Iran Ionizing and Non-ionizing Radiation Protection Research Centre (INIRPRC), Shiraz University of Medical Sciences, Shiraz, Iran Medical Physics and Medical Engineering Department, School of Medicine, Shiraz University of Medical Sciences, Shiraz, Iran Animal laboratory, Shiraz University of Medical Sciences, Shiraz, Iran *Corresponding author: Gh Mortazavi; Dentistry Student, School of Dentistry, Shiraz University of Medical Sciences, Shiraz, Iran E-mail: mmortazavi@sums.ac.ir 92014192014438390182014© 2014: Journal of Biomedical Physics and Engineering This is an Open Access article distributed under the terms of the Creative Commons Attribution-NonCommercial 3.0 Unported License (http://creativecommons.org/licenses/by-nc/3.0/deed.en_US), which permits unrestricted use, distribution and reproduction in any medium, provided the original work is properly cited.

Background: Effects of electromagnetic fields on healing have been investigated for centuries. Substantial data indicate that exposure to electromagnetic field can lead to enhanced healing in both soft and hard tissues. Helmholtz coils are devices that generate pulsed electromagnetic fields (PEMF).

Objective: In this work, a pair of Helmholtz coils for enhancing the healing process in periodontitis was designed and fabricated.

Method: An identical pair of square Helmholtz coils generated the 50 Hz magnetic field.  This device was made up of two parallel coaxial circular coils (100 turns in each loop, wound in series) which were separated from each other by a distance equal to the radius of one coil (12.5 cm). The windings of our Helmholtz coil was made of standard 0.95mm wire to provide the maximum possible current. The coil was powered by a function generator. 

Results: The Helmholtz Coils generated a uniform magnetic field between its coils. The magnetic field strength at the center of the space between two coils was 97.6 μT. Preliminary biological studies performed on rats show that exposure of laboratory animals to pulsed electromagnetic fields enhanced the healing of periodontitis.

Conclusion: Exposure to PEMFs can lead to stimulatory physiological effects on cells and tissues such as enhanced healing of periodontitis.

KeywordsDesignProductionNon-ionizing RadiationPulsed Electromagnetic FieldsHealingPeriodontitisHelmholtz Coils
Introduction

Periodontitis, a common inflammatory disease, is highly prevalent among adults [1]. Periodontitis can be defined as the perpetuating inflammation and tissue damage into the tooth supporting structures [2]. There are several types of periodontitis such as aggressive and necrotizing but the adult periodontitis is the most common form [3]. This disease, mostly caused by gram negative bacteria, is known to be a risk factor for many systemic diseases [2, 4]. Many studies have shown a clear relationship between periodontitis and low birth weight, preterm labor, pulmonary diseases and diabetes [4-7].There are also some studies showing the inter relationship between this disorder and cardiovascular diseases [4, 8, 9].

The main goal of periodontitis treatment is to remove infection and prevention of the disease progression. Most forms of periodontitis are currently treated by nonsurgical methods such as scaling and root plaining which can lead to healthy periodontium for a long time. However, recurrence is not uncommon [3, 10].

Over the past decade, new treatment methods have been introduced to the dentistry community. Antibiotic administration has been shown to have synergistic therapeutic effects in some types of periodontitis in combination with mechanical debriment [11, 12]. Host modulation is another method which has been widely studied recently [13]. Some other studies manifest effectiveness of alternative methods such as using lasers, interdisciplinary treatments and neuromuscular stimulation. However, none of the aforementioned methods can thoroughly remove the infective agents [14-17].

Over the past years, our laboratory has focused on studying the health effects of exposure to some common and/or occupational sources of electromagnetic fields such as mobile phones [18-25] and their base stations [26], mobile phone jammers [27], laptop computers [28], radars [19], dentistry cavitrons [29] and MRI [30, 31]. In this work, we designed and produced Helmholtz coils for enhancing the healing process in periodontitis.

Effects of electromagnetic fields on healing have been investigated for centuries. These fields can be either pulsed or static [32]. Magnetic fields can be demonstrated by lines of force and these fields are produced by electric current flow. Static magnetic fields (SMF) are formed around a permanent magnet or by direct current (DC) flow, while time-varying magnetic fields are produced by alternating currents (AC) with a frequency above zero. A wide variety of biological phenomena are based on electrical functions. We know that all living cells preserve a membrane potential in the order of tens of mV across their plasma membrane. On the other hand, the energy transduction in mitochondria are electrically controlled. Furthermore, the action potentials generated in excitable cells along their membranes are in the order of -70 mV and the frequency modulation of nerve impulses plays a very basic role in conveying information along neural networks [33].

Some studies indicated the adverse biological effects of electromagnetic fields [34-36] while numerous studies showed the beneficial effects of these fields on both hard and soft tissues [37-39]. Many studies show positive effects of PEMF on healing both soft and hard tissues [40-43]. Enhanced healing of anastomoses and wounds by static electromagnetic fields has been reported by different investigators.  Cheing et al. have recently shown that pulsed electromagnetic fields significantly enhanced wound closure and re-epithelialization [44]. The authors of this report hypothesized that PEMF can increase the myofibroblast population, contributing to wound closure during diabetic wound healing. Nayci et al. also hypothesized that EMF stimulation highly strengthen the colonic anasthomoses [45]. Furthermore, Henry et al. and Shen et al. postulated that SMF may induce wound healing [46, 47]. There are also studies indicating positive effect of PEMFs in treatment of osteoarthritis and ulcers [48-51]. A study conducted by Girgin et al. suggested that PEMF will improve all physical features of the colonic anastomoses [49]. In this study, we designed and produced Helmholtz coils for enhancing the healing process in periodontitis in rodents. Helmholtz coils devices that generate pulsed electromagnetic fields. This device is made up of two parallel coaxial circular coils that are separated from each other by a distance equal to the radius of one coil for producing an approximately uniform magnetic field in the space between the coils.

In a pair of Helmholtz coils consisting of two current loops (figure 1), each with N turns and radius R, which are separated by a distance R, the magnetic field at any point along the axis of the coils (z) can be calculated by summing the individual magnetic fields of the coils using the superposition principle. In this configuration, Biot-Savart law can be used to calculate the magnetic field at the center of this system when z=0 (point O on figure 1) as follows:

Bz=0=855μ0INR

Where:

B is the magnitude of the magnetic field

R is the radius of the loop

N is the number of turns in the current loop.

μ0 is the permeability of free space

I is current

Schematic diagram of the Helmholtz coil manufactured in this study. This coil has 100 turns in each loop. The diameter of each loop was 25 cm and the distance between the two loops was 12.5 cm. The peak to peak voltage was set at 2.1 V (50 Hz, AC).

Material and MethodsAnimals

In this preliminary study, 10 male Wistar rats (200-250 g) were purchased from the SUMS animal Laboratory. All ethical codes of the SUMS regarding the use of animal models were applied. To induce periodontitis, 3-0 multi-filament braided silk suture (Supasil, SUPA medical devices, Iran) thread was placed at the cervical region of second maxillary molars and was knotted at the palatal side (right side was considered as a positive control). Later, the knot was transferred to the subgingival palatal region of the second molars. The thread was kept in the place for 21 days including 7 days of irradiation.  The ligature was not removed during exposure to PEMF. Figure 2 shows the irradiation protocol used in this study.

The ligature and irradiation protocol used in this study.

Exposure System

Two pairs of identical Helmholtz coils were designed and manufactured in the Ionizing and Non-ionizing Radiation Protection Research Center (INIRPRC) at Shiraz University of Medical Sciences, Shiraz, Iran.  As shown in figure 1, the Helmholtz coils, framed on Teflon, have 100 turns in each loop. The distance between the coils is 12.5 cm (the coils are spaced apart at a distance equal to their radii). These coils have an inner diameter of 12.5 cm and an outer diameter of 13.5 cm. The coils are driven by a sinusoidal signal from a function generator (GFG-8020H, GW Instrument Co., Ltd).  The magnetic field (B) at the center, between the coils, was measured with a Gaussmeter (Lutron 828, Taiwan). The magnetic field was relatively uniform (alterations less than 5%) in the central area of the coils. The earth magnetic field was not shielded in this exposure device. The windings of our Helmholtz coil were made of standard 0.95mm wire to provide the maximum possible current. The coil was powered by a function generator. The peak to peak voltage was set at 2.1 V (50 Hz, AC). An oscilloscope (GDS – 2202, GW Instrument Co., Ltd) was coupled to the system for monitoring the 50 Hz sinusoidal MF waveform. The strength of the magnetic field that is dependent on factors such as the number of turns in the Helmholtz coil and the current applied to the coils was measured by a recently calibrated EMF meter (Lutron 828, Taiwan).

Rats were exposed to PEMF 4h/day for 7 days. During the exposure rats were immobilized by using standard Plexiglas restrainers. The temperature inside the coil was monitored by a thermometer continuously during the experiment. In all animals, the left side was considered as experimental periodontitis side and the right side as the control (no intervention).

Results

Helmholtz Coils generated a uniform magnetic field between its coils which provided a highly homogenous field (± 5%). The magnetic field strength at the center of the space between two coils was 97.6 μT (figure 3).

a. The Helmholtz Coils manufactured in this study generated a uniform magnetic field between its coils which provided a highly homogenous field (± 5%). b. The magnetic field strength at the center of the space between two coils was 97.6 μT.

The purpose of this preliminary study was to compare tooth mobility at different time periods before and after the exposure phase. According to the American Academy of Periodontology (AAP) tooth mobility can be defined as “The movement of a tooth in its socket resulting from an applied force”. A modified version of Miller’s mobility index (modified for rats) was used for assessing and scoring the mobility of the teeth [52] Considering Miller’s mobility index, tooth mobility is divided into three classes; Score I- mobility up to 1mm, Score II- mobility of 1–2mm and finally Score III- mobility over 2 mm and/or rotation or depression.

Our preliminary results showed that exposure to EMF could significantly decrease the inflammation and mobility of the animals’ teeth.

Discussion and Conclusion

These findings are generally in line with those of other investigators who reported the healing effects of exposure to magnetic fields in cases such as fractures [53, 54].  Our findings are especially in line with the results obtained by Turk in 2001. He exposed rabbits after osteotomy of the femur to low-frequency magnetic field produced by a pair of Helmholtz-coils.  He came to this conclusion that magnetic fields have significant positive effects on fracture healing. However, he stated that the mechanisms of interaction of magnetic field and bone fracture healing should be clarified by further studies [53]. It is worth mentioning that there are reports indicating that electromagnetic fields used clinically for accelerating bone healing also affect the proliferation of lymphocytes in vitro. Johnson have previously shown that T-cell proliferation can be modulated by in vitro exposure to electromagnetic fields [54]. Based on the preliminary findings of this study, exposure of laboratory animals to PEMF enhances the healing of periodontitis. Although we cannot directly extrapolate our findings on laboratory animals to humans, our results prompt us to perform further experiments on this issue.

Acknowledgment

This study was supported by the School of Dentistry and Ionizing and Non-ionizing Radiation Protection Research Center (INIRPRC), Shiraz University of Medical Sciences (SUMS), Shiraz, Iran.

<p> <bold>Conflict of Interest: </bold>None Declared </p></sec><ref-list><title>ReferencesAbeTHajishengallisGOptimization of the ligature-induced periodontitis model in miceJ Immunol Methods20133944954doi: 10.1016/j.jim.2013.05.002. PubMed PMID: 23672778; PubMed Central PMCID: PMC370798123672778MoutsopoulosNMKlingHMAngelovNPorphyromonasgingivalis promotes Th17 inducing pathways in chronic periodontitisJ Autoimmun201239294303doi: 10.1016/j.jaut.2012.03.003. PubMed PMID: 22560973; PubMed Central PMCID: PMC341694722560973HaffajeeADSocranskySSMicrobial etiological agents of destructive periodontal diseasesPeriodontol 20001994578111PubMed PMID: 96731649673164Otomo-CorgelJPucherJJRethmanMPReynoldsMAState of the science: chronic periodontitis and systemic healthJ Evid Based Dent Pract201212208doi: 10.1016/S1532-3382(12)70006-4. PubMed PMID: 2304033723040337KawarNAlrayyesSPeriodontitis in pregnancy: the risk of preterm labor and low birth weightDis Mon201157192202doi: 10.1016/j.disamonth.2011.03.005. PubMed PMID: 2156988221569882LeuckfeldIObregon-WhittleMVLundMBGeiranOBjortuftOOlsenISevere chronic obstructive pulmonary disease: association with marginal bone loss in periodontitisRespir Med2008102448894doi: 10.1016/j.rmed.2007.12.001. PubMed PMID: 1819139218191392ChangP-CLimLPInterrelationships of periodontitis and diabetes: A review of the current literatureJ Dent Sci20127327282doi: httpss://dx.doi.org/10.1016/j.jds.2012.02.002TonettiMSVan DykeTEPeriodontitis and atherosclerotic cardiovascular disease: consensus report of the Joint EFP/AAP Workshop on Periodontitis and Systemic Diseases J Periodontol2013844 SupplS249doi: 10.1902/jop.2013.1340019. PubMed PMID: 2363158223631582HigashiYGotoCHidakaTOral infection-inflammatory pathway, periodontitis, is a risk factor for endothelial dysfunction in patients with coronary artery diseaseAtherosclerosis2009206260410doi: 10.1016/j.atherosclerosis.2009.03.037. PubMed PMID: 1941025019410250SadafNAnoopBDakshinaBShwetaBEvaluation of efficacy of tetracycline fibers in conjunction with scaling and root planing in patients with chronic periodontitisJ Indian Soc Periodontol20121633927doi: 10.4103/0972-124x.100918. PubMed PMID: 23162335; PubMed Central PMCID: PMC349871023162335MunizFWde OliveiraCCde Sousa CarvalhoRMoreiraMMde MoraesMEMartinsRSAzithromycin: a new concept in adjuvant treatment of periodontitisEur J Pharmacol20137051-31359doi: 10.1016/j.ejphar.2013.02.044. PubMed PMID: 2349968623499686HaasANSilva-BoghossianCMColomboAPSusinCAlbandarJMOppermannRVAdjunctive azithromycin in the treatment of aggressive periodontitis: microbiological findings of a 12-month randomized clinical trialJ Dent201240755663doi: 10.1016/j.jdent.2012.03.004. PubMed PMID: 2244584622445846ElavarasuSSekarSMuruganTHost modulation by therapeutic agentsJ Pharm Bioallied Sci20124Suppl 2S2569doi: 10.4103/0975-7406.100244. PubMed PMID: 23066265; PubMed Central PMCID: PMC346793623066265PassaneziEJansonMJansonGSant’AnnaAPde FreitasMRHenriquesJFInterdisciplinary treatment of localized juvenile periodontitis: a new perspective to an old problem Am J Orthod Dentofacial Orthop2007131226876doi: 10.1016/j.ajodo.2005.03.025. PubMed PMID: 1727687017276870PejcicAMirkovicDAnti-inflammatory effect of low level laser treatment on chronic periodontitisMed Laser Appl20112612734doi: httpss://dx.doi.org/10.1016/j.mla.2010.04.004SgolastraFPetrucciAGattoRMonacoAEfficacy of Er:YAG laser in the treatment of chronic periodontitis: systematic review and meta-analysisLasers Med Sci201227366173doi: 10.1007/s10103-011-0928-8. PubMed PMID: 2155300321553003PuharIKapudijaAKasajAEfficacy of electrical neuromuscular stimulation in the treatment of chronic periodontitisJ Periodontal Implant Sci201141311722doi: 10.5051/jpis.2011.41.3.117. PubMed PMID: 21811686; PubMed Central PMCID: PMC313904421811686MortazaviSMJMotamedifarMNamdariGTaheriMMortazaviARShokrpourNNon-linear adaptive phenomena which decrease the risk of infection after pre-exposure to radiofrequency radiationDose response201412223345doi: 10.2203/dose-response.12-055.Mortazavi. PubMed PMID: 24910582; PubMed Central PMCID: PMC403639624910582MortazaviSMJTaebSDehghanNAlterations of Visual Reaction Time and Short Term Memory in Military Radar PersonnelIran J Public Health201342442835PubMed PMID: 23785684; PubMed Central PMCID: PMC368473123785684MortazaviSMJRouintanMSTaebSDehghanNGhaffarpanahAASadeghiZHuman short-term exposure to electromagnetic fields emitted by mobile phones decreases computer-assisted visual reaction timeActa Neurol Belg201211221715doi: 10.1007/s13760-012-0044-y. PubMed PMID: 2242667322426673MortazaviSMJMosleh-ShiraziMTavassoliAIncreased Radioresistance to Lethal Doses of Gamma Rays in Mice and Rats after Exposure to Microwave Radiation Emitted by a GSM Mobile Phone SimulatorDose response201311228192doi: 10.2203/dose-response.12-010.Mortazavi. PubMed PMID: 23930107; PubMed Central PMCID: PMC368220323930107MortazaviSMJMosleh-ShiraziMTavassoliAA comparative study on the increased radioresistance to lethal doses of gamma rays after exposure to microwave radiation and oral intake of flaxseed oilInt J Radiat Res201191914MortavaziSMJHabibAGanj-KaramiASamimi-DoostRPour-AbediABabaieAAlterations in TSH and Thyroid Hormones following Mobile Phone UseOman Med J20092442748doi: 10.5001/omj.2009.56. PubMed PMID: 22216380; PubMed Central PMCID: PMC324387422216380MortazaviSMJDaieeEYazdiAMercury release from dental amalgam restorations after magnetic resonance imaging and following mobile phone usePak J Biol Sci200811811426PubMed PMID: 1881955418819554MortazaviSMJAhmadiJShariatiMPrevalence of subjective poor health symptoms associated with exposure to electromagnetic fields among university studentsBioelectromagnetics200728432630doi: 10.1002/bem.20305. PubMed PMID: 1733085117330851MortazaviSMJSafety Issue of Mobile Phone Base StationsJ Biomed Phys Eng20133112MortazaviSMJParsanezhadMKazempourMGhahramaniPMortazaviADavariMMale reproductive health under threat: Short term exposure to radiofrequency radiations emitted by common mobile jammersJ Hum Reprod Sci2013621248doi: 10.4103/0974-1208.117178. PubMed PMID: 24082653; PubMed Central PMCID: PMC377860124082653MortazaviSMJTavassoliARanjbariFMoammaieePEffects of Laptop Computers’ Electromagnetic Field on Sperm QualityJ Reprod Infertil20101142519MortazaviSMJVazife-DoostSYaghootiMMehdizadehSRajaie-FarAOccupational exposure of dentists to electromagnetic fields produced by magnetostrictivecavitrons alters the serum cortisol levelJ Nat Sci Biol Med201231604doi: 10.4103/0976-9668.95958. PubMed PMID: 22690053; PubMed Central PMCID: PMC336178022690053CoskunOMagnetic resonance imaging and safety aspectsToxicol Ind Health201127430713doi: 10.1177/0748233710386413. Epub 2010 Nov 26. Review. PubMed PMID: 2111292721112927MortazaviSMJNeghabMAnooshehSMHHigh Magnetic Flux MRI Accelerates Release of Mercury from Dental Amalgam FillingsInt J Occup Environ Med201452101524748001NursalTZBalNAnaratREffects of a static magnetic field on wound healing: results in experimental rat colon anastomosesAm J Surg200619217681doi: 10.1016/j.amjsurg.2006.01.024. PubMed PMID: 1676928016769280JahreisGPJohnsonPGZhaoYLHuiSWAbsence of 60-Hz, 0.1-mT magnetic field-induced changes in oncogene transcription rates or levels in CEM-CM3 cellsBiochim Biophys Acta19981443333442PubMed PMID: 98788149878814GahrMConnemannBJFreudenmannRWSchönfeldt-LecuonaCSafety of electroconvulsive therapy in the presence of cranial metallic objectsJ ECT2014301628doi: 10.1097/YCT.0b013e318295e30f. Review. PubMed PMID: 2455331824553318SalievTTachibanaKBulaninDMikhalovskySWhitbyRDBio-effects of non-ionizing electromagnetic fields in context of cancer therapyFront Biosci (Elite Ed) 2014 Jan 1617584Review. PubMed PMID: 2438915124389151LagorioSRöösliMMobile phone use and risk of intracranial tumors: a consistency analysisBioelectromagnetics20143527990doi: 10.1002/bem.21829. Epub 2013 Nov 6. Review. PubMed PMID: 2437554824375548VictoriaGPetrisorBDrewBDickDBone stimulation for fracture healing: What’s all the fuss?Indian J Orthop200943211720doi: 10.4103/0019-5413.50844. PubMed PMID: 19838359; PubMed Central PMCID: PMC276225119838359SeeligerCFalldorfKSachtlebenJvan GriensvenMLow-frequency pulsed electromagnetic fields significantly improve time of closure and proliferation of human tendon fibroblastsEur J Med Res20141937doi: 10.1186/2047-783x-19-37. PubMed PMID: 24996421; PubMed Central PMCID: PMC409654724996421PesceMPatrunoASperanzaLRealeMExtremely low frequency electromagnetic field and wound healing: implication of cytokines as biological mediatorsEur Cytokine Netw2013241110doi: 10.1684/ecn.2013.0332. PubMed PMID: 2367451723674517XuSOkanoHOhkuboCAcute effects of whole-body exposure to static magnetic fields and 50-Hz electromagnetic fields on muscle microcirculation in anesthetized miceBioelectrochemistry200153112735doi:10.1016/S0302-4598(00)00120-3. PubMed PMID: 1120692011206920HaYHHanBHLeeSYMagnetic propulsion of a magnetic device using three square-Helmholtz coils and a square-Maxwell coilMed Biol Eng Comput201048213945doi: 10.1007/s11517-009-0574-5. PubMed PMID: 2005466620054666TatarovIPandaAPetkovDEffect of magnetic fields on tumor growth and viabilityComp Med201161433945PubMed PMID: 22330249; PubMed Central PMCID: PMC315540022330249GanesanKGengadharanACBalachandranCManoharBMPuvanakrishnanRLow frequency pulsed electromagnetic field--a viable alternative therapy for arthritisIndian J Exp Biol2009471293948PubMed PMID: 2032969620329696CheingGLLiXHuangLKwanRLCheungKKPulsed electromagnetic fields (PEMF) promote early wound healing and myofibroblast proliferation in diabetic ratsBioelectromagnetics20143531619doi: 10.1002/bem.21832. PubMed PMID: 2439521924395219NayciACakmakMRendaNAksoyekSYucesanSEffect of electromagnetic fields and early postoperative 5-fluorouracil on the healing of colonic anastomosesInt J Colorectal Dis200318213641doi: 10.1007/s00384-002-0454-z. PubMed PMID: 1254841612548416HenrySLConcannonMJYeeGJThe effect of magnetic fields on wound healing: experimental study and review of the literatureEplasty20088e40PubMed PMID: 18725953; PubMed Central PMCID: PMC249080118725953ShenJGChenWSWangCXJiangTDongLQ[Effect of static magnetic field on deep wound healing of SD rats]ZhongguoGu Shang20092253714PubMed PMID: 1952240119522401CiomborDMAaronRKWangSSimonBModification of osteoarthritis by pulsed electromagnetic field--a morphological studyOsteoarthritis Cartilage200311645562PubMed PMID: 1280148512801485GirginSGedikEOzturkHEffects of combined pulse electromagnetic field stimulation plus glutamine on the healing of colonic anastomosis in rats Dig Dis Sci200954474550doi: 10.1007/s10620-008-0412-x. PubMed PMID: 1864913318649133StillerMJPakGHShupackJLThalerSKennyCJondreauLA portable pulsed electromagnetic field (PEMF) device to enhance healing of recalcitrant venous ulcers: a double-blind, placebo-controlled clinical trialBr J Dermatol1992127214754PubMed PMID: 13901431390143GuptaATalyABSrivastavaAKumarSThylothMEfficacy of pulsed electromagnetic field therapy in healing of pressure ulcers: A randomized control trialNeurol India20095756226doi: 10.4103/0028-3886.57820. PubMed PMID: 1993456319934563MillerSCTextbook of Periodontia: Oral Medicine1950PhiladelphiaBlakiston 900TurkZ[Bone healing and biochemical blood parameters after arteficial osteotomy of rabbits’ femur treated by low-frequency magnetic field]Wien Klin Wochenschr20011134752PubMed PMID: 1550362115503621JohnsonMTVanscoy-CornettAVesperDNElectromagnetic fields used clinically to improve bone healing also impact lymphocyte proliferation in vitroBiomed Sci Instrum20013721520PubMed PMID: 1134739111347391