iodine / NRF2 Cancer Research Results

iod, iodine: Click to Expand ⟱
Features:
Iodine deficiency can lead to thyroid enlargement (goiter) and hypothyroidism. In severe cases, longstanding iodine deficiency has been linked to an increased risk of developing certain thyroid disorders, including thyroid nodules and, less frequently, thyroid cancer.

-Preliminary clinical research have suggested that molecular iodine may have antioxidant properties, modulate cell differentiation, and even exert antiproliferative effects in certain tissues.
-"antineoplasic effect of I(2) in mammary cancer involves the intracellular formation of 6-IL. Mammary cancer cells are known to contain high concentrations of AA, which might explain why I(2) exerts apoptotic effects at lower concentrations only in tumoral cells."ref

Iodine — an essential halogen trace element required for thyroid-hormone synthesis and present biologically mainly as iodide (I−). For cancer-related research, the chemically distinct form with the strongest non-radioactive experimental evidence is molecular iodine (I2), whereas iodide and radioactive iodine (especially 131I) have substantially different pharmacology and therapeutic roles. Iodine is formally classified as an essential micronutrient/trace element; standard abbreviations include I, I− for iodide, I2 for molecular iodine, and 131I for radioactive iodine. Dietary iodine originates principally from iodized salt, seafood, dairy products, seaweed, and supplements. Molecular I2 has demonstrated antiproliferative and adjuvant effects particularly in mammary/breast cancer models, but this should not be generalized to ordinary dietary iodide.

Primary mechanisms (ranked):

  1. Formation of antineoplastic iodolipids, particularly 6-iodolactone from arachidonic acid, with subsequent PPARγ activation and differentiation/apoptotic signaling.
  2. Induction of mitochondrial apoptosis through mitochondrial membrane depolarization, Bax activation, Bcl-2 suppression, thiol depletion, and apoptosis-inducing factor signaling.
  3. Antiproliferative and cell-cycle effects, with preferential effects reported in mammary cancer cells relative to normal mammary cells at moderate I2 concentrations.
  4. Chemosensitization, including suppression of Bcl-2/MDR-related chemoresistance phenotypes and increased responsiveness to anthracycline-containing chemotherapy.
  5. Suppression of angiogenic and invasive signaling, including reductions in VEGF, vascular density, uPA, EMT-associated phenotypes, and invasive capacity in breast-cancer models.
  6. Modulation of the tumor immune microenvironment, including increased Th1-associated signaling, IFNγ/T-BET expression and immune-cell infiltration with suppression of TGF-β signaling in human breast tumors.
  7. Redox modulation: molecular iodine can perturb tumor-cell thiol/redox homeostasis and mitochondrial signaling while also showing antioxidant effects in some normal tissues and in-vivo models; the direction is strongly context-dependent.

Bioavailability / PK relevance: Dietary iodide is efficiently absorbed and distributed extracellularly, with substantial thyroid uptake through the sodium/iodide symporter and predominant renal elimination. Molecular I2 behaves differently from iodide in mammary tissue: experimental breast-cancer cells can take up I2 through a mechanism largely independent of NIS and incorporate iodine into lipids and proteins. The human breast-cancer studies used approximately 5 mg/day molecular I2, substantially above ordinary nutritional requirements and above the 1.1 mg/day adult tolerable upper intake level established for routine dietary exposure. Therefore anticancer-dose I2 should not be equated with nutritional iodine supplementation.

In-vitro vs systemic exposure relevance: Many mechanistic breast-cancer experiments use approximately 10–200 µM molecular I2, including 200 µM in chemoresistance experiments. Direct equivalence between these culture concentrations and plasma iodine concentrations after oral dosing is not established because I2 is chemically reactive, undergoes reduction and organification, and can generate tissue-localized iodolipids. Consequently, high-concentration in-vitro observations should not be assumed to represent achievable systemic free-I2 exposure. Human evidence instead comes from oral dosing of 5 mg/day I2 and tumor-tissue endpoints.

Clinical evidence status: Small human randomized/Phase II breast-cancer evidence plus substantial preclinical evidence. A randomized pilot study using 5 mg/day molecular I2 alone or with FEC/TE chemotherapy reported increased tumor responses, apoptosis and immune infiltration and reduced chemoresistance/toxicity signals, but the study was small and requires independent confirmation. ClinicalTrials.gov NCT03688958 remains listed with unknown status and has not been updated since 2018. Molecular iodine is not an established standard anticancer therapy. Separately, radioactive 131I is an established, regulated treatment for iodine-avid differentiated thyroid carcinoma; this is a fundamentally different therapeutic modality and should not be interpreted as evidence for non-radioactive iodine supplementation.

Iodine Cancer-Relevant Mechanisms

Rank Pathway / Axis Cancer Cells Normal Cells Primary Effect Notes / Interpretation
1 Iodolipid formation / 6-iodolactone / PPARγ ↑ 6-iodolactone; ↑ PPARγ; ↓ PPARα Lower 6-iodolactone formation reported in normal mammary tissue Antiproliferation, differentiation and apoptosis Central proposed mechanism for molecular I2 in mammary cancer. Tumor enrichment in arachidonic acid may favor local formation of 6-iodolactone.
2 Mitochondrial apoptosis / Bax / Bcl-2 / AIF ↑ Bax; ↓ Bcl-2; ↓ mitochondrial membrane potential; ↑ AIF nuclear translocation; ↑ apoptosis Less apoptosis at moderate concentrations; apoptosis can occur at higher concentrations Selective mitochondrial cell death Molecular iodine can initiate caspase-dependent or caspase-independent apoptosis depending on model and experimental conditions.
3 Proliferation / cell cycle ↓ proliferation; ↑ cell-cycle arrest; ↑ apoptosis ↑ G1 and G2/M arrest at moderate I2 exposure; apoptosis primarily at higher exposure Growth suppression Preferential tumor-cell cytotoxicity has been demonstrated in mammary models, but selectivity is concentration-dependent.
4 Chemosensitization / drug resistance ↓ Bcl-2; ↓ MDR-associated phenotype; ↑ doxorubicin retention; ↑ chemotherapy response Potential ↓ chemotherapy-associated tissue injury (model-dependent) Reduced chemoresistance Supported by breast-cancer cell, rodent, canine and small human studies; strongest evidence concerns anthracycline-containing regimens.
5 Angiogenesis / VEGF / uPA ↓ VEGF; ↓ vascular density; ↓ uPA Not established Antiangiogenic activity Demonstrated primarily in experimental mammary tumors.
6 EMT / invasion ↓ invasive phenotype; ↓ chemoresistant stem-like populations; ↓ EMT-associated phenotype Not established Reduced invasion and progression Observed particularly in doxorubicin-resistant breast-cancer models and human tumor analyses.
7 Tumor immune response / Th1 / IFNγ / TGF-β ↑ T-BET; ↑ IFNγ; ↑ Th1/Th17-associated signaling; ↑ B-cell infiltration; ↓ TGF-β Not established Shift toward antitumor immune activity Human tumor transcriptomic findings from the molecular-I2 breast-cancer study; clinical significance remains incompletely established.
8 Redox / cellular thiols / ROS ↓ cellular thiols; altered ROS signaling; ↑ mitochondrial stress (context-dependent) Antioxidant effects reported in several tissues; oxidative toxicity possible at high exposure Redox-dependent apoptosis and tissue protection Iodine should not be classified simply as either a ROS inducer or antioxidant. Redox direction depends on chemical form, dose, tissue and baseline oxidative state.
9 I2 uptake / NIS independence ↑ I2 uptake and incorporation into lipids/proteins; largely NIS-independent in mammary cells Lower uptake/retention in some normal-cell models Enables tissue-localized iodine signaling Distinct from iodide uptake through NIS and important when interpreting molecular-I2 studies.
10 Clinical Translation Constraint Human signal demonstrated primarily in breast cancer Excess iodine can cause thyroid dysfunction Limits generalization and unsupervised high-dose use Human I2 studies used 5 mg/day, above the routine adult dietary upper intake level. Susceptible individuals may develop iodine-induced hypothyroidism or hyperthyroidism. Evidence outside breast cancer is predominantly preclinical, and recent prostate models show potentially mixed anti- and pro-neoplastic effects.


NRF2, nuclear factor erythroid 2-related factor 2: Click to Expand ⟱
Source: TCGA
Type: Antiapoptotic
Nrf2 is responsible for regulating an extensive panel of antioxidant enzymes involved in the detoxification and elimination of oxidative stress. Thought of as "Master Regulator" of antioxidant response.
-One way to estimate Nrf2 induction is through the expression of NQO1.
NQO1, the most potent inducer:
SFN 0.2 μM,
quercetin (2.5 μM),
curcumin (2.7 μM),
Silymarin (3.6 μM),
tamoxifen (5.9 μM),
genistein (6.2 μM ),
beta-carotene (7.2μM),
lutein (17 μM),
resveratrol (21 μM),
indol-3-carbinol (50 μM),
chlorophyll (250 μM),
alpha-cryptoxanthin (1.8 mM),
and zeaxanthin (2.2 mM)

1. Raising Nrf2 enhances the cell's antioxidant defenses and ↓ROS. This strategy is used to decrease chemo-radio side effects.
2. Downregulating Nrf2 lowers antioxidant defenses and ↑ROS. In cancer cells this leads to DNA damage, and cell death.
3. However there are some cases where increasing Nrf2 paradoxically causes an increase in ROS (cancer cells). Such as cases of Mitochondial overload, signal crosstalk, reductive stress

-In some cases, Nrf2 is overexpressed in cancer cells, which can lead to the activation of genes involved in cell proliferation, angiogenesis, and metastasis. This can contribute to the development of resistance to chemotherapy and targeted therapies.
-Increased Nrf2 expression: Lung, Breast, Colorectal, Prostrate.
Decreased Nrf2 expression: Skine, Liver, Pancreatic.
-Nrf2 is a cytoprotective transcription factor which demonstrated both a negative effect as well as a positive effect on cancer
- "promotes Nrf2 translocation from the cytoplasm to the nucleus," means facilitates the movement of Nrf2 into the nucleus, thereby enhancing the cell's antioxidant and cytoprotective responses. -Major regulator of Nrf2 activity in cells is the cytosolic inhibitor Keap1.

Nrf2 Inhibitors and Activators
Nrf2 Inhibitors: Brusatol, Luteolin, Trigonelline, VitC, Retinoic acid, Chrysin
Nrf2 Activators: SFN, OPZ EGCG, Resveratrol, DATS, CUR, CDDO, Api
- potent Nrf2 inducers from plants include sulforaphane, curcumin, EGCG, resveratrol, caffeic acid phenethyl ester, wasabi, cafestol and kahweol (coffee), cinnamon, ginger, garlic, lycopene, rosemany

Nrf2 plays dual roles in that it can protect normal tissues against oxidative damage and can act as an oncogenic protein in tumor tissue.
– In healthy tissues, NRF2 activation helps protect cells from oxidative damage and maintains cellular homeostasis.
– In many cancers, constitutive activation of NRF2 (often through mutations in NRF2 itself or loss-of-function mutations in KEAP1) leads to an enhanced antioxidant capacity.
– This upregulation can promote tumor cell survival by enabling cancer cells to thrive under oxidative stress, resist chemotherapeutic agents, and sustain metabolic reprogramming.
– Elevated NRF2 levels have been implicated in promoting tumor growth, metastasis, and resistance to therapy in various malignancies.
– High or sustained NRF2 activity is frequently associated with aggressive tumor phenotypes, poorer prognosis, and decreased overall survival in several cancer types.
– While its activation is essential for protecting normal cells from oxidative stress, aberrant or sustained NRF2 activation in tumor cells can lead to enhanced survival, therapeutic resistance, and tumor progression.

NRF2 inhibitors: (to decrease antioxidant defenses and increase cell death from ROS).
-Brusatol: most cited natural inhibitors of Nrf2.
-Luteolin: luteolin can reduce Nrf2 activity in specific cancer models and may enhance cell sensitivity to chemotherapy. However, luteolin is also known as an antioxidant, and its influence on Nrf2 can sometimes be context dependent.
-Apigenin: certain studies to down‑regulate Nrf2 in cancer cells: Dose and context dependent .
-Oridonin:
-Wogonin: although its effects might be cell‑ and dose‑specific.
- Withaferin A

Scientific Papers found: Click to Expand⟱
7686- iod,    Molecular Iodine Exhibited Differential Antiproliferative Actions in Progenitor and Stem Populations from Chemoresistant Cancer Cells
- vitro+vivo, BC, MCF7
PPARγ↑, Apoptosis↑, Bax:Bcl2↑, CSCs↓, NRF2↑, tumCV↓, TumCI↓,

Showing Research Papers: 1 to 1 of 1

* indicates research on normal cells as opposed to diseased cells
Total Research Paper Matches: 1

Pathway results for Effect on Cancer / Diseased Cells:


Redox & Oxidative Stress(tgid=1)

NRF2↑, 1,  

Core Metabolism/Glycolysis(tgid=4)

PPARγ↑, 1,  

Cell Death(tgid=5)

Apoptosis↑, 1,   Bax:Bcl2↑, 1,  

Transcription & Epigenetics(tgid=7)

tumCV↓, 1,  

Proliferation, Differentiation & Cell State(tgid=12)

CSCs↓, 1,  

Migration(tgid=13)

TumCI↓, 1,  
Total Targets: 7

Pathway results for Effect on Normal Cells:


Total Targets: 0

Scientific Paper Hit Count for: NRF2, nuclear factor erythroid 2-related factor 2
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#:310  Target#:226  State#:%  Dir#:2
wNotes=0 sortOrder:rid,rpid

 

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