Magnetic Fields Cancer Research Results

MF, Magnetic Fields: Click to Expand ⟱
Features: Therapy
Magnetic Fields can be Static, or pulsed. The most common therapy is a pulsed magnetic field in the uT or mT range.
The main pathways affected are:
Calcium Signaling: -influence the activity of voltage-gated calcium channels.
Oxidative Stress and Reactive Oxygen Species (ROS) Pathways
Heat Shock Proteins (HSPs) and Cellular Stress Responses
Cell Proliferation and Growth Signaling: MAPK/ERK pathway.
Gene Expression and Epigenetic Modifications: NF-κB
Angiogenesis Pathways: VEGF (improving VEGF for normal cells)
PEMF was found to have a 2-fold increase in drug uptake compared to traditional electrochemotherapy in rat melanoma models

Pathways:
- most reports have ROS production increasing in cancer cells , while decreasing in normal cells.
- ROS↑ related: MMP↓(ΔΨm), ER Stress↑, UPR↑, GRP78↑, Ca+2↑, Cyt‑c↑, Caspases↑, DNA damage↑, cl-PARP↑, HSP↓, Prx,
- Raises AntiOxidant defense in Normal Cells: ROS↓, NRF2↑, SOD↑, GSH↑, Catalase↑,
- lowers Inflammation : NF-kB↓, COX2↓, Pro-Inflammatory Cytokines : NLRP3↓, IL-1β↓, TNF-α↓, IL-6↓, IL-8↓
- inhibit Growth/Metastases : TumMeta↓, TumCG↓, VEGF↓(mostly regulated up in normal cells),
- cause Cell cycle arrest : TumCCA↑,
- inhibits Migration/Invasion : TumCMig↓, TumCI↓, TNF-α↓,
- inhibits glycolysis /Warburg Effect and ATP depletion : HIF-1α↓, PKM2↓, GLUT1↓, LDH↓, HK2↓, PFKs↓, PDKs↓, ECAR↓, OXPHOS↓, GRP78↑, Glucose↓, GlucoseCon↓
- inhibits angiogenesis↓ : VEGF↓, HIF-1α↓, Notch↓, FGF↓, PDGF↓, EGFR↓, Integrins↓,
- Others: PI3K↓, AKT↓, STAT↓, Wnt↓, β-catenin↓, ERK↓, JNK, - SREBP (related to cholesterol).
- Synergies: chemo-sensitization, chemoProtective, cytoProtective, RadioSensitizer, RadioProtective, Others(review target notes), Neuroprotective, Hepatoprotective, CardioProtective,

- Selectivity: Cancer Cells vs Normal Cells

Non-Static Magnetic Fields (AC / Pulsed / Oscillating MF)
Rank Pathway / Axis Cancer Cells Normal Cells TSF Primary Effect Notes / Interpretation
1 Reactive oxygen species (ROS) ↑ ROS (P→R); often sustained (G) ↑ ROS (P); ↔/↓ net ROS (R→G) P, R, G Upstream redox perturbation MF perturbs electron/radical dynamics: normal cells often adapt (ROS setpoint ↓), cancer cells less so
2 NRF2 antioxidant response ↔ / insufficient NRF2 induction (R→G) ↑ NRF2 activation (R→G) R, G Adaptive redox defense Explains mixed ROS direction in normal cells (initial ↑ then adaptive ↓)
3 Glutathione (GSH) homeostasis ↓ GSH (R→G) ↔ or transient ↓ (R) with recovery (G) R, G Redox buffering capacity GSH depletion reflects sustained oxidative load; recovery indicates successful adaptation
4 Superoxide dismutase (SOD) / antioxidant enzymes ↔ or inadequate enzyme upshift (G) ↑ SOD/GPx/CAT capacity (G) G Longer-term antioxidant remodeling Often the “endpoint” readout that correlates with ROS-normalization in normal tissue
5 Mitochondrial ETC / respiration ↓ ETC efficiency; ↑ electron leak (P→R) ↔ mild, reversible ETC perturbation (P→R) P, R Bioenergetic destabilization ETC perturbation is a mechanistic bridge between MF exposure and ROS/ΔΨm changes
6 Mitochondrial membrane potential (ΔΨm / MMP) ↓ ΔΨm (R); may progress (G) ↔ preserved or reversible dip (R) R, G Mitochondrial dysfunction thresholding ΔΨm loss typically follows ROS/ETC disruption rather than preceding it
7 Ca²⁺ signaling (VGCC / ER–mitochondria Ca²⁺ flux) ↑ dysregulated Ca²⁺ influx/transfer (P→R); overload may persist (G) ↑ transient Ca²⁺ signaling (P); homeostasis restored (R→G) P, R, G Stress signal amplification Ca²⁺ dysregulation links ROS/ETC perturbation to ER stress and mitochondrial dysfunction (amplifies ΔΨm loss and UPR commitment)
8 Mitochondrial permeability transition pore (MPTP) ↑ MPTP opening propensity (R); sustained opening possible (G) ↔ transient or closed (R→G) P, R, G Commitment point for mitochondrial failure MPTP opening integrates ROS, Ca²⁺ overload, and ΔΨm loss; acts as a threshold event converting reversible stress into irreversible mitochondrial dysfunction
9 ER stress / UPR ↑ ER stress (R); CHOP-commitment possible (G) ↑ adaptive UPR (R); resolves (G) R, G Proteostasis stress Often downstream of ROS + Ca²⁺ handling perturbations
10 DNA damage (oxidative) ↑ damage markers (R→G) ↔ or repaired (G) R, G Checkpoint pressure Generally secondary to ROS; interpret as stress consequence not “direct genotoxicity”
11 LDH / glycolytic flux ↓ glycolytic performance (R→G) ↔ flexible substrate switching (R→G) R, G Metabolic vulnerability Redox imbalance can destabilize high-rate glycolysis in cancer-biased contexts
12 Thioredoxin system (Trx / TrxR) ↓ functional reserve / overload (R→G) ↔ preserved capacity (G) R, G Parallel antioxidant system stress Useful when GSH-only does not explain redox phenotype
Time-Scale Flag: TSF = P / R / G
  P: 0–30 min (physical / electron / radical effects)
  R: 30 min–3 hr (redox signaling & stress response)
  G: >3 hr (gene-regulatory adaptation)
MPTP: opening represents a mitochondrial commitment event integrating ROS and Ca²⁺ stress; sustained opening indicates irreversible bioenergetic failure.


Scientific Papers found: Click to Expand⟱
356- AgNPs,  MF,    Anticancer and antibacterial potentials induced post short-term exposure to electromagnetic field and silver nanoparticles and related pathological and genetic alterations: in vitro study
- in-vitro, BC, MCF-7 - in-vitro, Bladder, HTB-22
"highlight2" >Apoptosis↑, "highlight2" >P53↑, "highlight2" >iNOS↑, "highlight2" >NF-kB↑, "highlight2" >Bcl-2↓, "highlight2" >ROS↑, "highlight2" >SOD↑, "highlight2" >TumCCA↑, "highlight2" >eff↑, "highlight2" >Catalase↑, "highlight2" >other↑,
400- AgNPs,  MF,    Polyvinyl Alcohol Capped Silver Nanostructures for Fortified Apoptotic Potential Against Human Laryngeal Carcinoma Cells Hep-2 Using Extremely-Low Frequency Electromagnetic Field
- in-vitro, Laryn, HEp2
"highlight2" >TumCP↓, "highlight2" >Casp3↑, "highlight2" >P53↑, "highlight2" >Beclin-1↑, "highlight2" >TumAuto↑, "highlight2" >GSR↑, "highlight2" >ROS↑, "highlight2" >MDA↑, "highlight2" >ROS↑, "highlight2" >SIRT1↑, "highlight2" >Ca+2↑, "highlight2" >Endon↑, "highlight2" >DNAdam↑, "highlight2" >Apoptosis↑, "highlight2" >NF-kB↓,
402- AgNPs,  MF,    Anticancer and antibacterial potentials induced post short-term exposure to electromagnetic field and silver nanoparticles and related pathological and genetic alterations: in vitro study
- in-vitro, BC, MCF-7
"highlight2" >P53↑, "highlight2" >iNOS↑, "highlight2" >NF-kB↑, "highlight2" >Bcl-2↓, "highlight2" >miR-125b↓, "highlight2" >ROS↑, "highlight2" >SOD↑,
2612- Ba,  MF,    The effect of a static magnetic field and baicalin or baicalein interactions on amelanotic melanoma cell cultures (C32)
- in-vitro, Melanoma, NA
"highlight2" >SOD1↑, "highlight2" >SOD2↑, "highlight2" >GPx1↑, "highlight2" >Dose?, "highlight2" >eff↝, "highlight2" >SOD1↓, "highlight2" >SOD2↓, "highlight2" >GPx1↓,
2018- CAP,  MF,    Capsaicin: Effects on the Pathogenesis of Hepatocellular Carcinoma
- Review, HCC, NA
"highlight2" >TRPV1↑, "highlight2" >eff↑, "highlight2" >Akt↓, "highlight2" >mTOR↓, "highlight2" >p‑STAT3↑, "highlight2" >MMP2↑, "highlight2" >ER Stress↑, "highlight2" >Ca+2↑, "highlight2" >ROS↑, "highlight2" >selectivity↑, "highlight2" >MMP↓, "highlight2" >eff↑,
659- EGCG,  MNPs,  MF,    Augmented cellular uptake of nanoparticles using tea catechins: effect of surface modification on nanoparticle-cell interaction
- in-vivo, Nor, NA
"highlight2" >*BioEnh↑,
658- EGCG,  MNPs,  MF,    Laminin Receptor-Mediated Nanoparticle Uptake by Tumor Cells: Interplay of Epigallocatechin Gallate and Magnetic Force at Nano-Bio Interface
- in-vitro, GBM, LN229
"highlight2" >*BioEnh↑,
657- EGCG,  MNPs,  MF,    Interaction of poly-l-lysine coating and heparan sulfate proteoglycan on magnetic nanoparticle uptake by tumor cells
- in-vitro, GBM, U87MG
"highlight2" >*BioEnh↑,
654- EGCG,  MNPs,  MF,    Characterization of mesenchymal stem cells with augmented internalization of magnetic nanoparticles: The implication of therapeutic potential
- in-vitro, Var, NA
"highlight2" >*BioEnh↑,
401- GoldNP,  MF,    In vitro evaluation of electroporated gold nanoparticles and extremely-low frequency electromagnetic field anticancer activity against Hep-2 laryngeal cancer cells
- in-vitro, Laryn, HEp2
"highlight2" >Casp3↑, "highlight2" >P53↑, "highlight2" >BAX↑, "highlight2" >Bcl-2↓,
539- MF,    Pulsed Magnetic Field Improves the Transport of Iron Oxide Nanoparticles through Cell Barriers
- in-vitro, NA, NA
"highlight2" >eff↑,
538- MF,    The extremely low frequency electromagnetic stimulation selective for cancer cells elicits growth arrest through a metabolic shift
- in-vitro, BC, MDA-MB-231 - in-vitro, Melanoma, MSTO-211H
"highlight2" >TumCG↓, "highlight2" >Ca+2↑, "highlight2" >COX2↓, "highlight2" >ATP↑, "highlight2" >MMP↑, "highlight2" >ROS↑, "highlight2" >OXPHOS↑, "highlight2" >mitResp↑,
582- MF,  immuno,  VitC,    Magnetic field boosted ferroptosis-like cell death and responsive MRI using hybrid vesicles for cancer immunotherapy
- in-vitro, Pca, TRAMP-C1 - in-vivo, NA, NA
"highlight2" >Fenton↑, "highlight2" >Ferroptosis↑, "highlight2" >ROS↑, "highlight2" >TumCG↓, "highlight2" >Iron↑, "highlight2" >GPx4↓,
585- MF,  VitC,    Impact of pulsed magnetic field treatment on enzymatic inactivation and quality of cloudy apple juice
"highlight2" >other↓,
587- MF,  VitC,    Effect of stationary magnetic field strengths of 150 and 200 mT on reactive oxygen species production in soybean
"highlight2" >ROS↑, "highlight2" >SOD↓, "highlight2" >other↓,
590- MF,  VitC,    Sub-millitesla magnetic field effects on the recombination reaction of flavin and ascorbic acid radicals
- in-vitro, NA, NA
"highlight2" >RPM↑,
592- MF,  VitC,    Alternative radical pairs for cryptochrome-based magnetoreception
"highlight2" >RPM↑,
594- MF,  VitC,    Static Magnetic Field Effect on the Fremy's Salt-Ascorbic Acid Chemical Reaction Studied by Continuous-Wave Electron Paramagnetic Resonance
- Analysis, NA, NA
"highlight2" >RPM↑,
1762- MF,  Fe,    Triggering the apoptosis of targeted human renal cancer cells by the vibration of anisotropic magnetic particles attached to the cell membrane
- in-vitro, RCC, NA
"highlight2" >Dose∅, "highlight2" >Apoptosis↑, "highlight2" >Casp↑, "highlight2" >tumCV↓, "highlight2" >Casp3↑, "highlight2" >Casp7↑, "highlight2" >Ca+2↑, "highlight2" >Cyt‑c↑,
2235- MF,    Increase of intracellular Ca2+ concentration in Listeria monocytogenes under pulsed magnetic field
- in-vitro, Inf, NA
"highlight2" >Ca+2↑, "highlight2" >TumCD↑,
2236- MF,    Changes in Ca2+ release in human red blood cells under pulsed magnetic field
- in-vitro, Nor, NA
"highlight2" >*Ca+2↓, "highlight2" >*eff↓, "highlight2" >*ROS↓,
529- MF,    Low-frequency magnetic field therapy for glioblastoma: Current advances, mechanisms, challenges and future perspectives
- Review, GBM, NA
"highlight2" >Ca+2↑, "highlight2" >ROS↑, "highlight2" >ChemoSen↑, "highlight2" >QoL↑, "highlight2" >OS↑,
519- MF,    Effects of 50-Hz magnetic field exposure on superoxide radical anion formation and HSP70 induction in human K562 cells
- in-vitro, AML, K562
"highlight2" >HSP70/HSPA5↑,
520- MF,    Exposure to a 50-Hz magnetic field induced mitochondrial permeability transition through the ROS/GSK-3β signaling pathway
- in-vitro, Nor, NA
"highlight2" >*MPT↑, "highlight2" >*Cyt‑c↑, "highlight2" >*ROS↑, "highlight2" >*p‑GSK‐3β↑, "highlight2" >*eff↓, "highlight2" >*MMP∅, "highlight2" >*BAX↓, "highlight2" >*Bcl-2∅,
521- MF,    Magnetic field effects in biology from the perspective of the radical pair mechanism
- Analysis, NA, NA
"highlight2" >*RPM↑, "highlight2" >*ROS↝,
523- MF,  MTX,    Extremely low-frequency magnetic fields significantly enhance the cytotoxicity of methotrexate and can reduce migration of cancer cell lines via transiently induced plasma membrane damage
- in-vitro, AML, THP1 - in-vitro, NA, PC12 - in-vivo, Cerv, HeLa
"highlight2" >H2O2↑, "highlight2" >TumCD↑, "highlight2" >CellMemb↑, "highlight2" >eff↑,
524- MF,    Inhibition of Angiogenesis Mediated by Extremely Low-Frequency Magnetic Fields (ELF-MFs)
- vitro+vivo, PC, MS-1 - vitro+vivo, PC, HUVECs
"highlight2" >other↓, "highlight2" >TumCP↓, "highlight2" >TumCMig↓, "highlight2" >VEGFR2↓, "highlight2" >TumVol↓, "highlight2" >HSP70/HSPA5↓, "highlight2" >HSP90↓, "highlight2" >TumCCA↑, "highlight2" >angioG↓,
525- MF,    Pulsed electromagnetic fields regulate metabolic reprogramming and mitochondrial fission in endothelial cells for angiogenesis
- in-vitro, Nor, HUVECs
"highlight2" >*angioG↑, "highlight2" >*GPx1↑, "highlight2" >*GPx4↑, "highlight2" >*SOD↑, "highlight2" >*PFKM↑, "highlight2" >*PFKL↑, "highlight2" >*PKM2↑, "highlight2" >*PFKP↑, "highlight2" >*HK2↑, "highlight2" >*GLUT1↑, "highlight2" >*GLUT4↑, "highlight2" >*ROS↓, "highlight2" >*MMP↝, "highlight2" >*Glycolysis↑, "highlight2" >*OXPHOS↓,
526- MF,    Inhibition of Cancer Cell Growth by Exposure to a Specific Time-Varying Electromagnetic Field Involves T-Type Calcium Channels
- in-vitro, BC, MDA-MB-231 - in-vitro, BC, MCF-7 - in-vitro, Pca, HeLa - vitro+vivo, Melanoma, B16-BL6 - in-vitro, Nor, HEK293
"highlight2" >TumCG↓, "highlight2" >Ca+2↑, "highlight2" >selectivity↑, "highlight2" >*Ca+2∅, "highlight2" >ROS↑, "highlight2" >HSP70/HSPA5↑, "highlight2" >AntiCan↑,
527- MF,    Effects of Fifty-Hertz Electromagnetic Fields on Granulocytic Differentiation of ATRA-Treated Acute Promyelocytic Leukemia NB4 Cells
- in-vitro, AML, APL NB4
"highlight2" >ROS↑, "highlight2" >other↑, "highlight2" >p‑ERK↑, "highlight2" >TumCP↓,
528- MF,  Caff,    Pulsed electromagnetic fields affect the intracellular calcium concentrations in human astrocytoma cells
- in-vitro, GBM, U373MG
"highlight2" >Ca+2↑, "highlight2" >TumCP∅, "highlight2" >TumCD∅, "highlight2" >eff↑,
2237- MF,    The Effect of Pulsed Electromagnetic Field Stimulation of Live Cells on Intracellular Ca2+ Dynamics Changes Notably Involving Ion Channels
- in-vitro, AML, KG-1 - in-vitro, Nor, HUVECs
"highlight2" >Ca+2↑, "highlight2" >selectivity↑, "highlight2" >*Inflam↓, "highlight2" >*TNF-α↓, "highlight2" >*NF-kB↓, "highlight2" >*Ca+2↓,
530- MF,    Low frequency sinusoidal electromagnetic fields promote the osteogenic differentiation of rat bone marrow mesenchymal stem cells by modulating miR-34b-5p/STAC2
- in-vivo, Nor, NA
"highlight2" >*miR-34b-5p↓, "highlight2" >*ALP↑, "highlight2" >*RUNX2↑, "highlight2" >*BMP2↑, "highlight2" >*OCN↑, "highlight2" >*OPN↑, "highlight2" >*β-catenin/ZEB1↑, "highlight2" >*STAC2↑, "highlight2" >*Diff↑, "highlight2" >*BMD↑,
531- MF,    6-mT 0-120-Hz magnetic fields differentially affect cellular ATP levels
- in-vitro, Cerv, HeLa - in-vitro, CRC, HCT116 - in-vitro, BC, MCF-7 - in-vitro, Lung, A549 - in-vitro, Nor, RPE-1 - in-vitro, Nor, GP-293
"highlight2" >ATP⇅,
532- MF,    A 50 Hz magnetic field influences the viability of breast cancer cells 96 h after exposure
- in-vitro, BC, MDA-MB-231 - in-vitro, BC, MCF-7 - in-vitro, Nor, MCF10
"highlight2" >TumCP↓, "highlight2" >MMP↓, "highlight2" >ROS↑, "highlight2" >eff↝, "highlight2" >selectivity↑,
533- MF,    Effects of extremely low-frequency magnetic fields on human MDA-MB-231 breast cancer cells: proteomic characterization
- in-vitro, BC, MDA-MB-231 - in-vitro, Nor, MCF10
"highlight2" >TumCD↑, "highlight2" >necrosis↑, "highlight2" >mt-ROS↑, "highlight2" >other↑, "highlight2" >*STAT3↓, "highlight2" >STAT3↑,
534- MF,    Effect of extremely low frequency electromagnetic field parameters on the proliferation of human breast cancer
- in-vitro, BC, MCF-7 - in-vitro, BC, MDA-MB-231 - in-vivo, Nor, MCF10
"highlight2" >Ca+2↑, "highlight2" >Apoptosis↑, "highlight2" >eff↝, "highlight2" >eff↑, "highlight2" >selectivity↑, "highlight2" >eff↝, "highlight2" >eff↝,
535- MF,    Electromagnetic Fields Trigger Cell Death in Glioblastoma Cells through Increasing miR-126-5p and Intracellular Ca2+ Levels
- in-vitro, Pca, PC3 - in-vitro, GBM, A172 - in-vitro, Pca, HeLa
"highlight2" >Apoptosis↑, "highlight2" >miR-129-5p↑, "highlight2" >Ca+2↑, "highlight2" >eff↝,
536- MF,    Comparison of pulsed and continuous electromagnetic field generated by WPT system on human dermal and neural cells
- in-vitro, Nor, SH-SY5Y - in-vitro, GBM, T98G - in-vitro, Nor, HDFa
"highlight2" >other∅,
537- MF,  immuno,    Integrating electromagnetic cancer stress with immunotherapy: a therapeutic paradigm
- Review, Var, NA
"highlight2" >Apoptosis↑, "highlight2" >ROS↑, "highlight2" >TumAuto↑, "highlight2" >Ca+2↑, "highlight2" >ATP↓, "highlight2" >eff↑, "highlight2" >eff↑,
3465- MF,    Magnetic fields and angiogenesis
- Review, Var, NA
"highlight2" >angioG↓, "highlight2" >*angioG↑, "highlight2" >selectivity↑, "highlight2" >Ca+2↝, "highlight2" >ROS↝,
2257- MF,  HPT,    HSP70 Inhibition Synergistically Enhances the Effects of Magnetic Fluid Hyperthermia in Ovarian Cancer
- in-vitro, Ovarian, NA
"highlight2" >eff↑, "highlight2" >eff↑,
2260- MF,    Alternative magnetic field exposure suppresses tumor growth via metabolic reprogramming
- in-vitro, GBM, U87MG - in-vitro, GBM, LN229 - in-vivo, NA, NA
"highlight2" >TumCP↓, "highlight2" >TumCG↓, "highlight2" >OS↑, "highlight2" >ROS↑, "highlight2" >SOD2↑, "highlight2" >eff↓, "highlight2" >ECAR↓, "highlight2" >OCR↑, "highlight2" >selectivity↑, "highlight2" >*toxicity∅, "highlight2" >TumVol↓, "highlight2" >PGC-1α↑, "highlight2" >OXPHOS↑, "highlight2" >Glycolysis↓, "highlight2" >PKM2↓,
2261- MF,    Tumor-specific inhibition with magnetic field
- in-vitro, Nor, GP-293 - in-vitro, Liver, HepG2 - in-vitro, Lung, A549
"highlight2" >ROS↑, "highlight2" >Ca+2↓, "highlight2" >Apoptosis↑, "highlight2" >*selectivity↑, "highlight2" >TumCG↓, "highlight2" >*i-Ca+2↓, "highlight2" >i-Ca+2↑,
3457- MF,    Cellular stress response to extremely low‐frequency electromagnetic fields (ELF‐EMF): An explanation for controversial effects of ELF‐EMF on apoptosis
- Review, Var, NA
"highlight2" >Apoptosis↑, "highlight2" >H2O2↑, "highlight2" >ROS↑, "highlight2" >eff↑, "highlight2" >eff↑, "highlight2" >Ca+2↑, "highlight2" >MAPK↑, "highlight2" >*Catalase↑, "highlight2" >*SOD1↑, "highlight2" >*GPx1↑, "highlight2" >*GPx4↑, "highlight2" >*NRF2↑, "highlight2" >TumAuto↑, "highlight2" >ER Stress↑, "highlight2" >HSPs↑, "highlight2" >SIRT3↑, "highlight2" >ChemoSen↑, "highlight2" >UPR↑, "highlight2" >other↑, "highlight2" >PI3K↓, "highlight2" >JNK↑, "highlight2" >p38↑, "highlight2" >eff↓, "highlight2" >*toxicity?,
3458- MF,    Magnetic Control of Protein Expression via Magneto-mechanical Actuation of ND-PEGylated Iron Oxide Nanocubes for Cell Therapy
- in-vitro, GBM, NA
"highlight2" >ER Stress↑, "highlight2" >UPR↑, "highlight2" >Ca+2↑, "highlight2" >TRAIL↓, "highlight2" >GRP78/BiP↑,
3459- MF,    EFFECT OF PULSED ELECTROMAGNETIC FIELDS ON ENDOPLASMIC RETICULUM STRESS
- in-vitro, Cerv, HeLa
"highlight2" >GRP78/BiP↑, "highlight2" >GRP94↑, "highlight2" >CHOP↑, "highlight2" >ER Stress↓,
3462- MF,    The Effect of a Static Magnetic Field on microRNA in Relation to the Regulation of the Nrf2 Signaling Pathway in a Fibroblast Cell Line That Had Been Treated with Fluoride Ions
- in-vitro, Nor, NA
"highlight2" >*NRF2↑, "highlight2" >*Keap1↓, "highlight2" >*SOD↑, "highlight2" >*GPx↑, "highlight2" >*ROS↓, "highlight2" >*MDA↓, "highlight2" >*SOD1↑, "highlight2" >*SOD2↑, "highlight2" >*GSR↑,
3463- MF,    Pulsed Electromagnetic Fields Alleviates Hepatic Oxidative Stress and Lipids Accumulation in db/db mice
- in-vivo, NA, NA
"highlight2" >*hepatoP↑, "highlight2" >*MDA↓, "highlight2" >*GSSG↓, "highlight2" >*GSH↑, "highlight2" >*GPx↑, "highlight2" >*antiOx↑, "highlight2" >*SREBP1↓,
3464- MF,    Progressive Study on the Non-thermal Effects of Magnetic Field Therapy in Oncology
- Review, Var, NA
"highlight2" >AntiTum↑, "highlight2" >TumCG↓, "highlight2" >TumCCA↑, "highlight2" >Apoptosis↑, "highlight2" >TumAuto↑, "highlight2" >Diff↑, "highlight2" >angioG↓, "highlight2" >TumMeta↓, "highlight2" >EPR↑, "highlight2" >ChemoSen↑, "highlight2" >ROS↑, "highlight2" >DNAdam↑, "highlight2" >P53↑, "highlight2" >Akt↓, "highlight2" >MAPK↑, "highlight2" >Casp9↑, "highlight2" >VEGFR2↓, "highlight2" >P-gp↓,

Showing Research Papers: 1 to 50 of 262
Page 1 of 6 Next

* indicates research on normal cells as opposed to diseased cells
Total Research Paper Matches: 262

Pathway results for Effect on Normal Cells:


Redox & Oxidative Stress

antiOx↑, 1,   Catalase↑, 1,   GPx↑, 2,   GPx1↑, 2,   GPx4↑, 2,   GSH↑, 1,   GSR↑, 1,   GSSG↓, 1,   Keap1↓, 1,   MDA↓, 2,   NRF2↑, 2,   OXPHOS↓, 1,   ROS↓, 3,   ROS↑, 1,   ROS↝, 1,   RPM↑, 1,   SOD↑, 2,   SOD1↑, 2,   SOD2↑, 1,  

Mitochondria & Bioenergetics

MMP↝, 1,   MMP∅, 1,   MPT↑, 1,  

Core Metabolism/Glycolysis

Glycolysis↑, 1,   HK2↑, 1,   PFKL↑, 1,   PFKM↑, 1,   PFKP↑, 1,   PKM2↑, 1,   SREBP1↓, 1,  

Cell Death

BAX↓, 1,   Bcl-2∅, 1,   BMP2↑, 1,   Cyt‑c↑, 1,  

Kinase & Signal Transduction

OCN↑, 1,  

Proliferation, Differentiation & Cell State

Diff↑, 1,   p‑GSK‐3β↑, 1,   RUNX2↑, 1,   STAT3↓, 1,  

Migration

Ca+2↓, 2,   Ca+2∅, 1,   i-Ca+2↓, 1,   OPN↑, 1,   STAC2↑, 1,   β-catenin/ZEB1↑, 1,  

Angiogenesis & Vasculature

angioG↑, 2,   miR-34b-5p↓, 1,  

Barriers & Transport

GLUT1↑, 1,   GLUT4↑, 1,  

Immune & Inflammatory Signaling

Inflam↓, 1,   NF-kB↓, 1,   TNF-α↓, 1,  

Drug Metabolism & Resistance

BioEnh↑, 4,   eff↓, 2,   selectivity↑, 1,  

Clinical Biomarkers

ALP↑, 1,   BMD↑, 1,  

Functional Outcomes

hepatoP↑, 1,   toxicity?, 1,   toxicity∅, 1,  
Total Targets: 59

Query results interpretion may depend on "conditions" listed in the research papers.
Such Conditions may include : 
  -low or high Dose
  -format for product, such as nano of lipid formations
  -different cell line effects
  -synergies with other products 
  -if effect was for normal or cancerous cells
Filter Conditions: Pro/AntiFlg:%  IllCat:%  CanType:%  Cells:%  prod#:172  Target#:%  State#:%  Dir#:%
wNotes=0 sortOrder:rid,rpid

 

Home Page