Tuesday, October 30, 2018

National MagLab is brainstorming magnet designs

Scientists are proposing a 20-tesla instrument for human brain imaging and chemical detection — almost seven times stronger than a typical hospital MRI and twice as powerful as the strongest MRIs used in human research. Its resolution would be 10 times what can be achieved today, said Thomas Mareci, professor of biochemistry and molecular biology at the University of Florida. In a square millimeter of brain tissue, he said, that's the difference between seeing a lump representing tens of thousands of fibers and being able to identify each individual fiber.

1.2 GHz will shed more light on what goes on inside a cell, such as how they build proteins or ribonucleic acid (RNA). In the latter process, cells add about 20 new nucleotides to the molecule per second. Due to limited field strength, current instruments aren’t sensitive enough to keep up with that pace.
"If we want to get real in these kind of things, I have to actually increase my sensitivity toward the speed at which cellular machines work," said Schwalbe. "That's another dream of NMR."
Because of its very high field, the SCH can detect atoms that, until now, have been invisible to NMR, notably oxygen. The ability to observe oxygen in molecules is a game-changing capability that will allow scientists to watch the body in action at the molecular level.
"Oxygen has a number of interesting things about it," Brey said. "It's real biochemistry, not just structure — right in the active places on the molecule."
Oxygen, neurons, drug targets, weird electron behaviors: just a few of the mysteries atop scientists’ most wanted list. With the higher fields promised in next-generation magnets, researchers say, more dreamed-of discoveries will land squarely in their crosshairs.

Low-intensity electromagnetic fields induce human cryptochrome to modulate intracellular reactive oxygen species

Exposure to man-made electromagnetic fields (EMFs), which increasingly pollute our environment, have consequences for human health about which there is continuing ignorance and debate. 

Whereas there is considerable ongoing concern about their harmful effects, magnetic fields are at the same time being applied as therapeutic tools in regenerative medicine, oncology, orthopedics, and neurology. 

This paradox cannot be resolved until the cellular mechanisms underlying such effects are identified. 

Here, we show by biochemical and imaging experiments that exposure of mammalian cells to weak pulsed electromagnetic fields (PEMFs) stimulates rapid accumulation of reactive oxygen species (ROS), a potentially toxic metabolite with multiple roles in stress response and cellular ageing.

 Following exposure to PEMF, cell growth is slowed, and ROS-responsive genes are induced. 

These effects require the presence of cryptochrome, a putative magnetosensor that synthesizes ROS. 

We conclude that modulation of intracellular ROS via cryptochromes represents a general response to weak EMFs, which can account for either therapeutic or pathological effects depending on exposure. 

Clinically, our findings provide a rationale to optimize low field magnetic stimulation for novel therapeutic applications while warning against the possibility of harmful synergistic effects with environmental agents that further increase intracellular ROS.

https://journals.plos.org/plosbiology/article?id=10.1371/journal.pbio.2006229

Fas/FasL pathway and cytokines in keratinocytes in atopic dermatitis – Manipulation by the electromagnetic field

Apoptotic and nonapoptotic activation of the Fas/FasL-dependent signaling pathway may play a significant role in the pathogenesis of AD, by adjusting the local cytokine and chemokine environment at the site of inflammation. 

Moreover, the electromagnetic field exhibits strong immunomodulatory effects on AD-modified keratinocytes.

https://journals.plos.org/plosone/article?id=10.1371/journal.pone.0205103

Static Magnetic Field Remotely Boosts the Efficiency of Doxorubicin through Modulating ROS Behaviors

Exposure to magnetic field (MF) can affect cellular metabolism remotely. 

Cardio-toxic effects of Doxorubicin (DOXO) have limited clinical uses at high dose. 

MF due to its effect on reactive oxygen species (ROS) lifetime, may provide a suitable choice to boost the efficacy of this drug at low dose. 

Here, we investigated the potential effects of homogenous static magnetic field (SMF) on DOXO-induced toxicity and proliferation rate of cancer cells. 

The results indicated that SMF similar to DOXO decreased the cell viability as well as the proliferation rate of MCF-7 and HFF cells. 

Moreover, combination of 10 mT SMF and 0.1 µM DOXO decreased the viability and proliferation rate of cancer and normal cells in a synergetic manner. 

In spite of high a GSH level in cancer cell, SMF boosts the generation and lifetime of ROS at low dose of DOXO, and overcame to GSH mediated drug resistance. 

The results also confirmed that SMF exposure decreased 50% iron content of cells, which is attributed to iron homeostasis. 

In conclusion, these findings suggest that SMF can decrease required dose of chemotherapy drugs such as DOXO and thereby decrease their side effect.

https://www.nature.com/articles/s41598-018-19247-8

Wednesday, October 24, 2018

Inhibition of Angiogenesis Mediated by Extremely Low-Frequency Magnetic Fields (ELF-MFs)

The formation of new blood vessels is an essential therapeutic target in many diseases such as cancer, ischemic diseases, and chronic inflammation. 

In this regard, extremely low-frequency (ELF) electromagnetic fields (EMFs) seem able to inhibit vessel growth when used in a specific window of amplitude. 

To investigate the mechanism of anti-angiogenic action of ELF-EMFs we tested the effect of a sinusoidal magnetic field (MF) of 2 mT intensity and frequency of 50 Hz on endothelial cell models HUVEC and MS-1 measuring cell status and proliferation, motility and tubule formation ability. MS-1 cells when injected in mice determined a rapid tumor-like growth that was significantly reduced in mice inoculated with MF-exposed cells. 

In particular, histological analysis of tumors derived from mice inoculated with MF-exposed MS-1 cells indicated a reduction of hemangioma size, of blood-filled spaces, and in hemorrhage. In parallel, in vitro proliferation of MS-1 treated with MF was significantly inhibited. 

We also found that the MF-exposure down-regulated the process of proliferation, migration and formation of tubule-like structures in HUVECs. 

Using western blotting and immunofluorescence analysis, we collected data about the possible influence of MF on the signalling pathway activated by the vascular endothelial growth factor (VEGF). In particular, MF exposure significantly reduced the expression and activation levels of VEGFR2, suggesting a direct or indirect influence of MF on VEGF receptors placed on cellular membrane. In conclusion MF reduced, in vitro and in vivo, the ability of endothelial cells to form new vessels, most probably affecting VEGF signal transduction pathway that was less responsive to activation. 

These findings could not only explain the mechanism of anti-angiogenic action exerted by MFs, but also promote the possible development of new therapeutic applications for treatment of those diseases where excessive angiogenesis is involved.

https://journals.plos.org/plosone/article?id=10.1371/journal.pone.0079309

Coincident Nonlinear Changes in the Endocrine and Immune Systems due to Low-Frequency Magnetic Fields

Objective: The characteristic biological effects of low-frequency electromagnetic fields (EMFs) appear to be functional changes in the central nervous, endocrine and immune systems. 

For unapparent reasons, however, the results of similar studies have often differed markedly from one another. 

We recognized that it had generally been assumed, in the studies, that EMF effects would exhibit a dose-effect relationship, which is a basic property of linear systems. 

Prompted by recent developments in the theory on nonlinear systems, we hypothesized that there was a nonlinear relationship between EMFs and the effects they produced in the endocrine and immune systems. 

Methods: We developed a novel analytical method that could be used to distinguish between linear and nonlinear effects, and we employed it to examine the effect of EMFs on the endocrine and immune systems. Results: Mice exposed to 5 G, 60 Hz for 1–175 days in 7 independent experiments reliably exhibited changes in serum corticosterone and lymphoid phenotype when the data were analyzed while allowing that the field exposure and the resulting effects could be nonlinearly related. When the analysis was restricted to linear relationships, no effects due to the field were found. Conclusions: The results indicated that transduction of EMFs resulted in changes in both the endocrine and immune systems, and that the laws governing the changes in each system were not the type that govern conventional dose-effect relationships. Evidence based on mathematical modeling was found suggesting that the coincident changes could have been causally related.
https://www.karger.com/Article/Pdf/49009

Magnetic fields and immune response modulation

The effects of extremely low frequency magnetic fields (ELF MF) on biological systems have been studied for decades with focus on possible health risks. Many experimental studies reported various biological effects of exposure to ELF MF, however the biological relevance for these effects is unclear and a convincing evidence for mechanistic explanation is still missing. Nevertheless the modulation of oxidative response after ELF MF exposure has often been described and the release of reactive oxygen species (ROS) or other relevant effects were reported (Simkó, 2004, Simkó & Mattsson, 2004, Simkó, 2007, Mattsson & Simko, 2014). These effects are on a relatively low level (around 30-60 %). At low level “oxidative responses”, ROS can act as second messengers and activate signaling cascades, which in turn can lead to physiological responses such as gene expression, metabolic changes, cell proliferation etc., which subsequently can lead to “cell activation”. Immune-relevant cells use the reactive potential of ROS also to fulfill important physiological functions such as regulating the vascular tone and the cell functions controlled by oxygen concentration but also to activate the immune system functions. The aim of this part of the Action is to focus on possible beneficial effects related to oxidative responses and modulation of immune system functions of ELF MF in order to 1) provide a better understanding of underlying physical and biological mode of action and 2) to contribute to the development of innovative EMF-based medical treatment.
 http://cost-emf-med.eu/wp-content/uploads/2015/01/WM-prop-Myrtill-Simko-Mats-Olof-Mattsson-ELF-magnetic-fields-and-immune-response-modulation.pdf

Immune-Modulating Perspectives for Low Frequency Electromagnetic Fields in Innate Immunity

In recent years, the effects of electromagnetic fields (EMFs) on the immune system have received a considerable interest, not only to investigate possible negative health impact but also to explore the possibility to favorably modulate immune responses. 

To generate beneficial responses, the immune system should eradicate pathogens while “respecting” the organism and tolerating irrelevant antigens. 

According to the current view, damage-associated molecules released by infected or injured cells, or secreted by innate immune cells generate danger signals activating an immune response. 

These signals are also relevant to the subsequent activation of homeostatic mechanisms that control the immune response in pro- or anti-inflammatory reactions, a feature that allows modulation by therapeutic treatments. 

In the present review, we describe and discuss the effects of extremely low frequency (ELF)-EMF and pulsed EMF on cell signals and factors relevant to the activation of danger signals and innate immunity cells. 

By discussing the EMF modulating effects on cell functions, we envisage the use of EMF as a therapeutic agent to regulate immune responses associated with wound healing.

https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5879099/

Monday, October 22, 2018

Specifically Targeted Electromagnetic Fields Arrest Proliferation of Glioblastoma Multiforme U-87 Cells in Culture.

Abstract

BACKGROUND/AIM:

Glioblastoma multiforme is an aggressive primary tumor that arises in the glial cells of the brain. Standardized first-line treatment has considerable morbidity and less than one-year median survival after intervention. Ultra-low intensity electromagnetic fields have been shown to interact with biological organisms without anticipated deleterious side-effects. The aim of the study was to determine if a novel, non-invasive application of non-ionizing radiation has an inhibitory effect on proliferation of glioblastoma multiforme cells.

MATERIALS AND METHODS:

U-87 MG cells were continuously exposed for 54 h to an electromagnetic field tuned to simultaneously interact with DNA/RNA oligonucleotides (mutated alpha-kinase 2 gene/Hsa-miR-381-5p respectively) and proteins (HSP70/CHI3L1).

RESULTS:

Exposed cells demonstrated a significant inhibition of cell growth and concurrent increase in cell death.

CONCLUSION:

This technology induces cell death by novel non-cytotoxic mechanisms unlikely to induce side-effects in patients; can be customized for individual tumors and may contribute to the emerging strategy of personalized medicine.

https://www.ncbi.nlm.nih.gov/pubmed/29848672

Monday, October 15, 2018

Electromagnetic field investigation on different cancer cell lines

There is a strong interest in the investigation of extremely low frequency Electromagnetic Fields (EMF) in the clinic. While evidence about anticancer effects exists, the mechanism explaining this effect is still unknown.

Methods

We investigated in vitro, and with computer simulation, the influence of a 50 Hz EMF on three cancer cell lines: breast cancer MDA-MB-231, and colon cancer SW-480 and HCT-116. After 24 h preincubation, cells were exposed to 50 Hz extremely low frequency (ELF) radiofrequency EMF using in vitro exposure systems for 24 and 72 h. A computer reaction-diffusion model with the net rate of cell proliferation and effect of EMF in time was developed. The fitting procedure for estimation of the computer model parameters was implemented.

Results

Experimental results clearly showed disintegration of cells treated with a 50 Hz EMF, compared to untreated control cells. A large percentage of treated cells resulted in increased early apoptosis after 24 h and 72 h, compared to the controls. Computer model have shown good comparison with experimental data.

Conclusion

Using EMF at specific frequencies may represent a new approach in controlling the growth of cancer cells, while computer modelling could be used to predict such effects and make optimisation for complex experimental design. Further studies are required before testing this approach in humans.
https://cancerci.biomedcentral.com/articles/10.1186/s12935-014-0084-x

Potential Energy and the Body Electric

From MIT:
Physics tells us that potential energy is the capacity to do work that a body possesses as a result of its position in electric, magnetic, or gravitational fields. Thinking of “potentiality” in an electric idiom and with reference to its place in human biological processes that implicate electric phenomena, such as the pulses of action potentials that animate the heart and brain, can afford novel angles into contemporary biomedical enactments of humanness. This paper explores the material and rhetorical power of electric potential in cardiac and neurological medicine, paying attention to how discourses of “waves” of energy format the way scientists apprehend bodies as emplaced in time—in a time that can be about both cyclicity and futurity. Attention to electrophysiological phenomena may enrich the way anthropologists of the biosciences think about potentiality, taking scholars beyond our established attentions to the genetic, cellular, or pharmacological to think about the body electric.
https://www.journals.uchicago.edu/doi/full/10.1086/670968

Thursday, October 11, 2018

Cancer Stem Cells: Foe or Reprogrammable Cells for Efficient Cancer Therapy?

"The ultimate goal should not be to destroy cancer stem cells, but to differentiate and reprogram them"

Extremely – low frequency pulsed electromagnetic fields (ELF-MF) of 50 HZ, 0.8mTesla (rms), are able to orchestrate stem cell commitment towards one of the most complex embryogenetic outcomes, inducing cardiogenesis in embryonic stem cells [72]. ELF-MF are also able to modulate a cardiogenic program throughout the adulthood, as shown by the ability to increase the expression of genes needed for cardiogenesis and the maintenance of a myocardial phenotype in adult ventricular cardiomyocytes [73].
We have recently shown that asymmetrically conveyed electromagnetic fields (ACEF) of 2.4 GHz optimize the expression of pluripotency in mouse ES cells, inducing myocardial, neuronal and skeletal muscle differentiation [74]. Similar results are obtained upon exposure to ACEF of ADhMSCs [75]. This effect is the result of a fine modulation (initial increase and subsequent transcriptional inhibition) of the expression of stemness related genes [75]. Exposure to ACEF was able to induce a biphasic effect, i.e. overexpression followed by transcriptional inhibition of Sox2, Nanog, Oct3/4, Klf4 and c-myc in human skin fibroblasts, affording for the first time a direct high-yield reprogramming of adult nonstem somatic cells into myocardial, neural and skeletal muscle cells (about 15-20% for each phenotypic commitment) [76].
For the first time, through the exposure to ACEF we were able to reverse the process of stem cell senescence in human adult stem cells (ADhMSCs) subjected to prolonged (30 to 90 days) in vitro expansion [77, 78]. This effect resulted from and was associated with (i) the activation of a telomerase dependent pathway, linked to the re-expression of TERT, the gene coding for the catalytic core of telomerase with subsequent increase in telomere length [77], (ii) the induction of a telomerase independent pathway associated with the activation of Bmi-1 and the transient increase in the expression of pluripotency genes, such as Nanog, Sox2 and Oct4 [77], and (iii) the resumption of multilineage differentiation potential, as shown by recovery of high throughput of differentiation along vasculogenic, osteogenic, and adipogenic fates [78].
On the whole, these findings suggest that electromagnetic fields may have a role not only in the specification but also in the persistence of a complex cellular identity. The ability of electromagnetic fields to drive efficient cardiogenesis in both embryonic and adult stem cells and to reprogram even human skin fibroblasts into myocardial-like cells poses intriguing trans-disciplinary musing. In fact, the heart has the lowest risk for primary malignant transformation, which may very rarely develop in the form of cardiac sarcomas [79-81]. Cardiogenesis is the first morphogenetic event in different animal species, including humans. The risk for tumorigenesis throughout embryo development is also very rare [5-7]. The canonical view speculating that primary cardiac malignant tumors are so rare since cardiac cells divide very rarely appears to be too simplistic. An alternative although nonmutually exclusive hypothesis may consider the heart as a tumor suppressor organ, capable of secreting a large network of growth regulatory and differentiating peptides that may potentially limit the onset and progression of a local cancer. In this regard, the attainment of cardiogenesis in the presence of either chemical agents or physical stimulation encompasses the transcription and protein expression of endorphin peptides [33]. These molecules, besides their role in cardiogenesis [55-57], have long been shown to act as negative regulators for the development and spreading of different types of cancer [82-87].
In isolated (stem) cell nuclei endorphin peptides have been shown to bind and activate nuclear receptors and signaling leading to the transcription of their own coding gene (self-sustaining loop), as well as the transcription of the cardiogenic genes GATA4 and Nkx-2.5 [88, 56]. These findings suggest that a consistent part of the action of these growth factors on stem cell dynamics may have occurred intracellularly (intracrine action) [89, 90]. Cell plasma membrane has long been considered an insuperable barrier for hydrosoluble peptides. The discovery that regulatory peptides and transcription factors can be exchanged among cells being packaged inside exosomes, acting in an intracrine fashion, discloses novel paradigms in cell-to-cell communication and adds further relevance for intracrine regulation of cell biology [90, 91]. We cannot exclude that cardiogenesis, within its morphogenetic role, may act as a paracrine/intracrine process that contributes to make the developing embryo remarkably refractory to cancerogenic risks. Whether exposure of human cancer stem cells to electromagnetic fields may resume the ability to differentiate along a cardiogenic lineage and other differentiation patterns remain to be elucidated. Addressing this issue will require thorough investigation in vitro and in vivo in different animal models for cancerogenesis.
http://jnanoworld.com/articles/v1n3/nwj-010-carlo-ventura.html

Thursday, August 9, 2018

A review on the use of magnetic fields and ultrasound for non-invasive cancer treatment

Extensive paper:

Abstract

Current popular cancer treatment options, include tumor surgery, chemotherapy, and hormonal treatment. These treatments are often associated with some inherent limitations. For instances, tumor surgery is not effective in mitigating metastases; the anticancer drugs used for chemotherapy can quickly spread throughout the body and is ineffective in killing metastatic cancer cells. Therefore, several drug delivery systems (DDS) have been developed to target tumor cells, and release active biomolecule at specific site to eliminate the side effects of anticancer drugs. However, common challenges of DDS used for cancer treatment, include poor site-specific accumulation, difficulties in entering the tumor microenvironment, poor metastases and treatment efficiency. In this context, non-invasive cancer treatment approaches, with or without DDS, involving the use of light, heat, magnetic field, electrical field and ultrasound appears to be very attractive. These approaches can potentially improve treatment efficiency, reduce recovery time, eliminate infections and scar formation. In this review we focus on the effects of magnetic fields and ultrasound on cancer cells and their application for cancer treatment in the presence of drugs or DDS.

https://www.sciencedirect.com/science/article/pii/S2090123218300778

Friday, June 22, 2018

How electromagnetic fields can influence adult stem cells: positive and negative impacts.

The electromagnetic field (EMF) has a great impact on our body. It has been successfully used in physiotherapy for the treatment of bone disorders and osteoarthritis, as well as for cartilage regeneration or pain reduction. Recently, EMFs have also been applied in in vitro experiments on cell/stem cell cultures. Stem cells reside in almost all tissues within the human body, where they exhibit various potential. These cells are of great importance because they control homeostasis, regeneration, and healing. Nevertheless, stem cells when become cancer stem cells, may influence the pathological condition. In this article we review the current knowledge on the effects of EMFs on human adult stem cell biology, such as proliferation, the cell cycle, or differentiation. We present the characteristics of the EMFs used in miscellaneous assays. Most research has so far been performed during osteogenic and chondrogenic differentiation of mesenchymal stem cells. It has been demonstrated that the effects of EMF stimulation depend on the intensity and frequency of the EMF and the time of exposure to it. However, other factors may affect these processes, such as growth factors, reactive oxygen species, and so forth. Exploration of this research area may enhance the development of EMF-based technologies used in medical applications and thereby improve stem cell-based therapy and tissue engineering.
http://europepmc.org/articles/pmc4834823

Thursday, June 14, 2018

The Possible Role of Dehydrating Effect of Static Magnetic Fields in Cancer Treatment

Very objective and detailed paper, with a good theory:
https://www.researchgate.net/publication/321348988_The_Possible_Role_of_Dehydrating_Effect_of_Static_Magnetic_Fields_in_Cancer_Treatment

Moderate and strong static magnetic fields directly affect EGFR kinase domain orientation to inhibit cancer cell proliferation

Static magnetic fields (SMFs) can affect cell proliferation in a cell-type and intensity-dependent way but the mechanism remains unclear. At the same time, although the diamagnetic anisotropy of proteins has been proposed decades ago, the behavior of isolated proteins in magnetic fields has not been directly observed. Here we show that SMFs can affect isolated proteins at the single molecular level in an intensity-dependent manner. We found that Epidermal Growth Factor Receptor (EGFR), a protein that is overexpressed and highly activated in multiple cancers, can be directly inhibited by SMFs. Using Liquid-phase Scanning Tunneling Microscopy (STM) to examine pure EGFR kinase domain proteins at the single molecule level in solution, we observed orientation changes of these proteins in response to SMFs. This may interrupt inter-molecular interactions between EGFR monomers, which are critical for their activation. In molecular dynamics (MD) simulations, 1-9T SMFs caused increased probability of EGFR in parallel with the magnetic field direction in an intensity-dependent manner. A superconducting ultrastrong 9T magnet reduced proliferation of CHO-EGFR cells (Chinese Hamster Ovary cells with EGFR overexpression) and EGFR-expressing cancer cell lines by ~35%, but minimally affected CHO cells. We predict that similar effects of magnetic fields can also be applied to some other proteins such as ion channels. Our paper will help clarify some dilemmas in this field and encourage further investigations in order to achieve a better understanding of the biological effects of SMFs.
https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5173076/

Thursday, May 31, 2018

Immune-Modulating Perspectives for Low Frequency Electromagnetic Fields in Innate Immunity

In recent years, the effects of electromagnetic fields (EMFs) on the immune system have received a considerable interest, not only to investigate possible negative health impact but also to explore the possibility to favorably modulate immune responses. To generate beneficial responses, the immune system should eradicate pathogens while “respecting” the organism and tolerating irrelevant antigens. According to the current view, damage-associated molecules released by infected or injured cells, or secreted by innate immune cells generate danger signals activating an immune response. These signals are also relevant to the subsequent activation of homeostatic mechanisms that control the immune response in pro- or anti-inflammatory reactions, a feature that allows modulation by therapeutic treatments. In the present review, we describe and discuss the effects of extremely low frequency (ELF)-EMF and pulsed EMF on cell signals and factors relevant to the activation of danger signals and innate immunity cells. By discussing the EMF modulating effects on cell functions, we envisage the use of EMF as a therapeutic agent to regulate immune responses associated with wound healing.
https://www.frontiersin.org/articles/10.3389/fpubh.2018.00085/full

The antitumor effect of static and extremely low frequency magnetic fields against nephroblastoma and neuroblastoma.

Certain magnetic fields (MF) have potential therapeutic antitumor effect whereas the underlying mechanism remains undefined. In this study, a well-characterized MF was applied to two common childhood malignancies, nephroblastoma and neuroblastoma. This MF has a time-averaged total intensity of 5.1 militesla (mT), and was generated as a superimposition of a static and an extremely low frequency (ELF) MF in 50 Hertz (Hz). In nephroblastoma and neuroblastoma cell lines including G401, CHLA255, and N2a, after MF exposure of 2 h per day, the cell viability decreased significantly after 2 days. After 3 days, inhibition rates of 17-22% were achieved in these cell lines. Furthermore, the inhibition rate was positively associated with exposure time. On the other hand, when using static MF only while maintaining the same time-averaged intensity of 5.1 mT, the inhibition rate was decreased. Thus, both time and combination of ELF field were positively associated with the inhibitory effect of this MF. Exposure to the field decreased cell proliferation and induced apoptosis. Combinational use of MF together with chemotherapeutics cisplatin (DDP) was performed in both in vitro and in vivo experiments. In cell lines, combinational treatment further increased the inhibition rate compared with single use of either DDP or MF. In G401 nephroblastoma tumor model in nude mice, combination of MF and DDP resulted in significant decrease of tumor mass, and the side effect was limited in mild liver injury. MF exposure by itself did not hamper liver or kidney functions. In summary, the antitumor effect of an established MF against neuroblastoma and nephroblastoma is reported, and this field has the potential to be used in combination with DDP to achieve increased efficacy and reduce side effects in these two childhood malignancies.
https://onlinelibrary.wiley.com/doi/abs/10.1002/bem.22124

Tuesday, May 29, 2018

Bio-soliton model that predicts non-thermal electromagnetic frequency bands, that either stabilize or destabilize living cells

Solitons, as self-reinforcing solitary waves, interact with complex biological phenomena such as cellular self-organization. A soliton model is able to describe a spectrum of electromagnetism modalities that can be applied to understand the physical principles of biological effects in living cells, as caused by endogenous and exogenous electromagnetic fields and is compatible with quantum coherence. A bio-soliton model is proposed, that enables to predict which eigen-frequencies of non-thermal electromagnetic waves are life-sustaining and which are, in contrast, detrimental for living cells. The particular effects are exerted by a range of electromagnetic wave eigen-frequencies of one-tenth of a Hertz till Peta Hertz that show a pattern of 12 bands, and can be positioned on an acoustic reference frequency scale. The model was substantiated by a meta-analysis of 240 published articles of biological electromagnetic experiments, in which a spectrum of non-thermal electromagnetic waves were exposed to living cells and intact organisms. These data support the concept of coherent quantized electromagnetic states in living organisms and the theories of Fröhlich, Davydov and Pang. It is envisioned that a rational control of shape by soliton-waves and related to a morphogenetic field and parametric resonance provides positional information and cues to regulate organism-wide systems properties like anatomy, control of reproduction and repair.
https://www.researchgate.net/publication/321268842_Bio-soliton_model_that_predicts_non-thermal_electromagnetic_frequency_bands_that_either_stabilize_or_destabilize_living_cells

Thursday, May 24, 2018

Electromagnetic Medicine Non-Inductive Non-Thermal Modalities

The area of electromagnetic medicine (EM) encompasses the applications of electricity and magnetism to medical practice. Although this includes both diagnostic and therapeutic applications, the medical community is far more familiar with the former, notably with techniques such as magnetic resonance imaging (MRI), electromyography (EMG), electroencephalography (EEG), electrocardiography (EKG), and magnetocardiography (MKG). There are historical reasons for the medical unfamiliarity (even antipathy) with electromagnetically-based therapies. One has only to look at the beginnings of modern medicine in the United States, specifically the 1910 Flexner report 1,2 that provided the basis for medical education today. Prior to this report there was widespread use of electromagnetic techniques in medicine, often little more than late 19th century versions of snake-oil cures. In great measure the present aversion to electromagnetic therapies built into modern medicine is a direct result of Victorian age quackery. Another reason for this antipathy, apart from the constraint on the teaching curriculum, has been the extraordinary success of, first, the germ theories of Pasteur and Koch, and, second, the development of molecular biology following the work of Watson and Crick. These have engendered a sense of completeness, a feeling that there is no place for alternate, radically new approaches to the way that illness is treated. Even when electromagnetically-based therapies have proven beneficial, they have been usually ignored. There is little impetus to replace the existing approach, since it is firmly believed that nothing is more fundamental than the existing paradigm, that questions of wellness and illness are ultimately biochemical in nature. The divisions in electromagnetic medicine are outlined in Fig. 1. Beyond the separation into diagnostic and therapeutic applications another distinction is made for applications of weak-field ELF magnetic in the treatment of illness. The description non-inductive non-thermal helps emphasize that the effects obtained by applying low intensity low-frequency electromagnetic fields to biological systems are not the result of either inductive emf generation or the delivery of thermal energies through Joule heating. By contrast, a number of clinical devices that make use of Faraday induction or Joule heating are recognized by the medical community not only because 3 they are effective, but also because the applied voltages, currents or heat are fully consistent with what is expected biochemically. In sharp contrast, the non-inductive non-thermal category includes clinical applications where this is not true, that is, where the electromagnetic variables that are part of the therapy fall outside those permitted by the current medical paradigm. 
http://bioinitiative.org/report/wp-content/uploads/pdfs/sec17_2012_Electromagnetic_Medicine_non_thermal_modalities.pdf

Molecular bioelectricity: how endogenous voltage potentials control cell behavior and instruct pattern regulation in vivo

Very detailed:
https://www.molbiolcell.org/doi/full/10.1091/mbc.e13-12-0708

Tuesday, May 22, 2018

Electromagnetic frequencies of living cells and bio-molecules

In 1905 Einstein proposed the idea that electromagnetic radiation is quantized and appears only in defined energy packets. The energy of a photon for a given type of radiation can be computed using the frequency relation published in 1900 by Planck. 

It is proposed in the present paper that the energy distribution of these packets is according to a Pythagorean distribution of frequencies. 

Evidence for this hypothesis has been found by a meta-analyses of 500 biomedical papers related to electromagnetic frequencies of living cells and bio-molecules, in addition to an analyses of 60 papers in physics that deal with the influence of electromagnetic frequencies on the promotion of entangled states in Einstein, Podolsky and Rosen-experiments, as well as a study on measurements of the masses of 37 different elementary particles. 

It turns out that Einstein was right, and that electromagnetic radiation is quantized according to a precise distribution of defined energy packets.https://www.researchgate.net/publication/325013224_Evidence_for_a_Guiding_Coherence_Principle_in_Quantum_Physics

Friday, May 18, 2018

Cellular ATP levels are affected by moderate and strong static magnetic fields

Mitochondrion is the major cellular energy producing organelle that is at the boundary between chemical reactions and physical processes. 

Although mitochondria have been shown to be affected by physical methods such as nonthermal plasma, whether static magnetic field (SMF) could also affect them is still unclear. 

Here we used rat adrenal PC12 cells to compare SMFs of different intensities for their effects on ATP (adenosine‐5′‐triphosphate), the major energy source produced by mitochondria, which is essential for various cellular processes. 

Our results show that although 0.26 or 0.50 T SMFs did not affect ATP, 1 T and 9 T SMFs affected ATP level differently and time‐dependently. 

Moreover, SMF‐induced ATP level fluctuations are correlated with mitochondrial membrane potential changes. 

Our study provides insights not only into understanding various cellular effects of SMFs, but also the potential clinical applications of SMFs.