Curcumin / AntiBio Cancer Research Results

CUR, Curcumin: Click to Expand ⟱
Features:
Curcumin is the main active ingredient in Turmeric. Member of the ginger family.Curcumin is a polyphenol extracted from turmeric with anti-inflammatory and antioxidant properties.
- Has iron-chelating, iron-chelating properties. Ferritin. But still known to increase Iron in Cancer cells.
- GSH depletion in cancer cells, exhaustion of the antioxidant defense system. But still raises GSH↑ in normal cells.
- Higher concentrations (5-10 μM) of curcumin induce autophagy and ROS production
- Inhibition of TrxR, shifting the enzyme from an antioxidant to a prooxidant
- Strong inhibitor of Glo-I, , causes depletion of cellular ATP and GSH
- Curcumin has been found to act as an activator of Nrf2, (maybe bad in cancer cells?), hence could be combined with Nrf2 knockdown
-may suppress CSC: suppresses self-renewal and pathways (Wnt/Notch/Hedgehog).

Curcumin — Curcumin is a turmeric-derived polyphenolic curcuminoid and diarylheptanoid from Curcuma longa, functionally best classified as a natural-product small molecule / nutraceutical candidate with pleiotropic redox, inflammatory, transcriptional, metabolic, and chemosensitizing activity. The standard abbreviation is CUR. It is the principal active pigment of turmeric rhizome, usually studied as purified curcumin, curcuminoid mixtures, turmeric extract, phytosomal curcumin, liposomal curcumin, nanoparticle curcumin, or piperine-enhanced formulations. Its oncology relevance is mechanistically broad but clinically constrained by poor aqueous solubility, rapid metabolism, low free systemic exposure, formulation variability, and insufficient well-powered cancer outcome trials.

Primary mechanisms (ranked):

  1. Suppression of NF-κB / STAT3 inflammatory-survival signaling, reducing cytokine, COX-2, iNOS, anti-apoptotic, invasion, and treatment-resistance programs.
  2. Biphasic redox modulation: ROS buffering in normal/inflamed tissue but ROS↑, GSH depletion, thioredoxin reductase disruption, and oxidative stress amplification in susceptible cancer models at sufficient exposure.
  3. Mitochondrial injury and intrinsic apoptosis, including mitochondrial membrane potential loss, cytochrome-c release, caspase activation, PARP cleavage, and ER-stress/UPR involvement.
  4. PI3K/AKT/mTOR and MAPK pathway modulation, contributing to growth arrest, autophagy modulation, apoptosis sensitization, and reduced survival signaling.
  5. Wnt/β-catenin, Hedgehog/GLI, Notch, and cancer-stem-cell suppression, reducing stemness, EMT, invasion, and recurrence-associated phenotypes in models.
  6. Hypoxia / HIF-1α and glycolysis inhibition, including reduced GLUT1, HK2, LDHA, PKM2, lactate/ECAR, and Warburg-like metabolic support in selected models.
  7. Anti-angiogenic and anti-metastatic modulation, including VEGF, MMPs, uPA, CXCR4/SDF-1, TGF-β/α-SMA, FAK, and EMT-related axes.
  8. Epigenetic and transcriptional reprogramming, including reported HDAC, DNMT, EZH2, Sp-family, p53, and microRNA-related effects.
  9. NRF2 modulation: generally cytoprotective in normal cells but potentially protective for cancer cells when NRF2 is activated; NRF2 suppression/knockdown can increase curcumin-induced ROS stress in some tumor models.
  10. Chemosensitization and radiosensitization, with parallel normal-tissue protective signals reported in some mucositis, dermatitis, oxidative-stress, and radioprotection contexts.

Bioavailability / PK relevance: Conventional oral curcumin has poor systemic bioavailability because of low solubility, low absorption, rapid conjugation, and rapid elimination. Oral trials have used doses up to gram-level daily dosing, but circulating free curcumin is typically low; measured plasma exposure often reflects conjugated curcumin. Piperine, phospholipid/phytosome, micellar, liposomal, nanoparticle, and other enhanced formulations can raise exposure, but each formulation should be treated as a distinct translational entity. Delivery constraints are central for oncology interpretation.

In-vitro vs systemic exposure relevance: Common in-vitro anticancer concentrations, often in the low-to-mid micromolar range and sometimes higher, frequently exceed achievable free plasma exposure from standard oral curcumin. Therefore, direct systemic anticancer claims from cell culture should be weighted cautiously unless supported by tissue-local exposure, enhanced formulation data, local delivery, IV/liposomal delivery, or clinically measured pharmacodynamic biomarkers.

Clinical evidence status: Preclinical evidence is extensive; human oncology evidence is mainly small human, biomarker, pilot, chemoprevention, adjunctive, symptom-management, and formulation trials. Current authoritative oncology summaries judge evidence inadequate to recommend curcumin-containing products as cancer treatment or as routine adjunct anticancer therapy, although symptom-support areas such as oral mucositis, radiation dermatitis, oxidative-status measures, and quality of life have more suggestive but still confirmatory-level evidence.


Clinical studies testing curcumin in cancer patients have used a range of dosages, often between 500 mg and 8 g per day; however, many studies note that doses on the lower end may not achieve sufficient plasma concentrations for a therapeutic anticancer effect in humans.
• Formulations designed to improve curcumin absorption (like curcumin combined with piperine, nanoparticle formulations, or liposomal curcumin) are often employed in clinical trials to enhance its bioavailability.

-Note half-life 6 hrs.
BioAv is poor, use piperine or other enhancers
Pathways:
- induce ROS production at high concentration. Lowers ROS at lower concentrations
curcumin can act as a pro-oxidant when blue light is applied
- ROS↑ related: MMP↓(ΔΨm), ER Stress↑, UPR↑, GRP78↑, Cyt‑c↑, Caspases↑, DNA damage↑, cl-PARP↑, HSP↓
- Lowers AntiOxidant defense in Cancer Cells: GSH↓ Catalase↓ HO1↓ GPx↓
but conversely is known as a NRF2↑ activator in cancer
- Raises AntiOxidant defense in Normal Cells: ROS↓, NRF2↑, SOD↑, GSH↑, Catalase↑,
- lowers Inflammation : NF-kB↓, COX2↓, p38↓, Pro-Inflammatory Cytokines : TNF-α↓, IL-6↓, IL-8↓
- inhibit Growth/Metastases : TumMeta↓, TumCG↓, EMT↓, MMPs↓, MMP2↓, MMP9↓, uPA↓, VEGF↓, NF-κB↓, CXCR4↓, SDF1↓, TGF-β↓, α-SMA↓, ERK↓
- reactivate genes thereby inhibiting cancer cell growth : HDAC↓, DNMT1↓, DNMT3A↓, EZH2↓, P53↑, HSP↓, Sp proteins↓,
- cause Cell cycle arrest : TumCCA↑, cyclin D1↓, CDK2↓, CDK4↓, CDK6↓,
- inhibits Migration/Invasion : TumCMig↓, TumCI↓, ERK↓, EMT↓, TOP1↓, TET1↓,
- inhibits glycolysis /Warburg Effect and ATP depletion : HIF-1α↓, PKM2↓, cMyc↓, GLUT1↓, LDHA↓, HK2↓, PFKs↓, PDKs↓, HK2↓, ECAR↓, OXPHOS↓, GRP78↑, GlucoseCon↓
- inhibits angiogenesis↓ : VEGF↓, HIF-1α↓, Notch↓, FGF↓, PDGF↓, EGFR↓, Integrins↓,
- inhibits Cancer Stem Cells : CSC↓, CK2↓, Hh↓, GLi1↓, CD133↓, CD24↓, β-catenin↓, n-myc↓, sox2↓, OCT4↓,
- Others: PI3K↓, AKT↓, JAK↓, STAT↓, Wnt↓, β-catenin↓, AMPK↓, ERK↓, JNK, TrxR**,
- Synergies: chemo-sensitization, chemoProtective, RadioSensitizer, RadioProtective, Others(review target notes), Neuroprotective, Cognitive, Renoprotection, Hepatoprotective, CardioProtective,

- Selectivity: Cancer Cells vs Normal Cells

Curcumin Cancer Mechanism Ranking

Rank Pathway / Axis Cancer Cells Normal Cells TSF Primary Effect Notes / Interpretation
1 NF-κB / STAT3 inflammatory survival signaling NF-κB ↓; STAT3 ↓; IL-6/TNF-α/COX-2/iNOS ↓; Bcl-2/Bcl-xL/survivin programs ↓ Inflammatory tone ↓; tissue-protective anti-inflammatory effect likely context-dependent R/G Reduced survival, inflammation, invasion, and therapy-resistance signaling Most central and industry-relevant axis; explains many downstream effects but is not curcumin-specific.
2 Biphasic redox stress and antioxidant buffering ROS ↑ (dose-dependent); GSH ↓; antioxidant reserve ↓; oxidative apoptosis ↑ ROS ↓; NRF2/SOD/GSH/catalase/HO-1 often ↑ in stress models R/G Selective redox pressure in susceptible tumor cells with normal-cell protection in lower-stress settings Direction depends strongly on concentration, formulation, light exposure, basal redox state, and tumor antioxidant capacity.
3 Thioredoxin reductase and GSH linked redox systems TrxR inhibition or redox cycling ↑; GSH depletion ↑; oxidative stress ↑ Usually buffered or antioxidant response ↑ at non-toxic exposure R/G Collapse of tumor redox compensation Mechanistically important for ROS amplification and radiosensitization; achievable exposure remains a major constraint.
4 Mitochondrial depolarization and intrinsic apoptosis ΔΨm ↓; cytochrome-c ↑; caspase-3/9 ↑; PARP cleavage ↑; apoptosis ↑ Generally ↔ or protected under oxidative/inflammatory stress R/G Execution of apoptosis after upstream redox and survival-signal disruption Central cytotoxic endpoint in many cell models; often downstream of ROS, ER stress, AKT/mTOR suppression, or p53 modulation.
5 PI3K / AKT / mTOR and autophagy balance PI3K ↓; AKT ↓; mTOR ↓; survival signaling ↓; autophagy ↑ or mixed Stress-adaptive autophagy ↔ or ↑ (context-dependent) R/G Growth suppression and apoptosis sensitization Autophagy may be cytotoxic or protective depending on model and timing; combination logic may require autophagy-state interpretation.
6 Wnt / β-catenin / Hedgehog / Notch stemness signaling β-catenin ↓; GLI/Hedgehog ↓; Notch ↓; CD133/CD44/OCT4/SOX2-like stemness markers ↓ Generally ↔; possible normal stem-cell effects are tissue/context-dependent G Reduced cancer stemness, EMT, self-renewal, and recurrence-associated phenotypes Important for anti-metastatic and anti-CSC positioning; evidence is mainly preclinical.
7 HIF-1α / glycolysis / Warburg metabolism HIF-1α ↓; GLUT1 ↓; HK2 ↓; LDHA ↓; PKM2 ↓; lactate/ECAR ↓; ATP stress ↑ Metabolic effects ↔ or adaptive; normal-cell toxicity depends on exposure G Reduced hypoxic adaptation and glycolytic energy support Mechanistically relevant but formulation and tissue exposure are critical; hypoxic tumors may be more relevant than normoxic cell culture.
8 EMT / invasion / metastasis matrix axis EMT ↓; MMP2/MMP9 ↓; uPA ↓; FAK ↓; CXCR4/SDF-1 ↓; migration/invasion ↓ Inflammation-linked remodeling ↓; wound-healing effects context-dependent G Anti-invasive and anti-metastatic phenotype Strongly supported in models; clinical anti-metastatic efficacy is not established.
9 VEGF / angiogenesis / hypoxia interface VEGF ↓; HIF-1α ↓; angiogenic signaling ↓ Angiogenesis modulation ↔ or ↓ (context-dependent) G Reduced tumor vascular-support signaling Overlaps with NF-κB, HIF-1α, STAT3, and inflammatory cytokine suppression.
10 Epigenetic and transcriptional reprogramming HDAC ↓; DNMT1/3A ↓; EZH2 ↓; Sp proteins ↓; p53 ↑ or restored in selected models Broad transcriptional effects possible; selectivity uncertain G Reactivation of growth-control and differentiation-associated programs Biologically plausible but highly model-dependent; direct target specificity is lower than pathway-level interpretation.
11 Ferroptosis and iron redox stress Iron/redox stress ↑; lipid peroxidation ↑; GPX4/GSH axis may ↓ (model-dependent) Iron-chelation and antioxidant protection may occur (context-dependent) R/G Potential ferroptosis contribution in susceptible tumor models Curcumin can behave as an iron chelator, antioxidant, or pro-oxidant depending on exposure, formulation, and cancer redox context.
12 NRF2 cytoprotection risk NRF2 ↑ may protect tumor cells; NRF2 depletion can enhance curcumin-induced ROS stress in some models NRF2 ↑ supports antioxidant and anti-inflammatory tissue protection G Dual-edged stress-response modulation Important caution for antioxidant matrix use: NRF2 activation is favorable in normal-cell protection but may be undesirable in NRF2-addicted tumors.
13 Chemosensitization and radiosensitization Chemo response ↑; radiation response ↑; apoptosis ↑; resistance pathways ↓ Chemo/radiation injury may ↓ in mucositis, dermatitis, and oxidative-stress contexts R/G Adjunct sensitization with possible normal-tissue protection Attractive translational axis, but clinical evidence remains mainly pilot/small-study; interaction risk should be checked per regimen.
14 Clinical Translation Constraint Free systemic exposure often insufficient for direct cytotoxic extrapolation from in-vitro micromolar data Enhanced formulations may improve exposure but may also alter safety, liver-risk profile, and interaction potential G Bioavailability and formulation dominate translational interpretation Separate ordinary curcumin, turmeric extract, piperine-enhanced, phytosomal, micellar, liposomal, nanoparticle, and IV/liposomal products where possible.

TSF legend:

P: 0–30 min

R: 30 min–3 hr

G: >3 hr



AntiBio, Antibiotic/Antimicrobial activity: Click to Expand ⟱
Source:
Type:

Antibiotic / antimicrobial activity: The ability of a substance to suppress or kill microorganisms, especially bacteria, by disrupting microbial survival, growth, biofilm formation, cell-wall integrity, membrane function, protein synthesis, nucleic-acid synthesis, quorum sensing, or virulence.

Natural Products that might have antimicrobial properties

Natural supplement or product Principal constituents Potential antimicrobial activity Evidence assessment Reference
Garlic
Allium sativum
Allicin, ajoene and diallyl sulfides Antibacterial and antifungal activity, with some antiviral and antiparasitic effects reported in laboratory studies. Extensive laboratory evidence, but insufficient clinical evidence to use garlic as a treatment for established infections. Tesfaye A. Revealing the therapeutic uses of garlic and its potential for drug discovery. Scientific review.
Berberine Berberine isoquinoline alkaloid May damage bacterial membranes, inhibit efflux pumps, interfere with nucleic-acid and protein synthesis, and inhibit biofilm formation. Strong preclinical evidence and limited indication-specific clinical evidence. Poor oral bioavailability and drug interactions limit its use as a general antimicrobial. Berberine as a therapeutic alkaloid against ESKAPE and multidrug-resistant bacteria: a comprehensive review.
Cranberry extract
Vaccinium macrocarpon
A-type proanthocyanidins Primarily reduces adhesion of uropathogenic bacteria, particularly Escherichia coli, to urinary epithelial cells. May reduce recurrent urinary tract infections in selected populations. It is preventive rather than a reliable treatment for an active UTI. National Center for Complementary and Integrative Health: Cranberry—Usefulness and Safety.
Probiotics
Lactobacillus, Bifidobacterium and Saccharomyces boulardii
Live microorganisms; effects are strain-specific Competitive exclusion of pathogens, production of bacteriocins, inhibition of pathogen adhesion and restoration of microbiome function. Some human evidence for antibiotic-associated diarrhea and selected gastrointestinal or vaginal indications. Results cannot be generalized from one strain to another. NIH Office of Dietary Supplements: Probiotics—Health Professional Fact Sheet.
Medical-grade honey / Manuka honey Methylglyoxal, hydrogen peroxide, defensin-1, organic acids and high osmolarity Broad topical antibacterial and antibiofilm activity; also supports autolytic debridement and wound healing. Clinically relevant primarily as a standardized, medical-grade topical wound product. Ordinary food honey is not equivalent. Jull AB et al. Honey as a topical treatment for wounds. Cochrane systematic review.
Oregano oil
Origanum vulgare
Carvacrol and thymol Antibacterial, antifungal and antibiofilm activity, largely through disruption of microbial membranes. Strong laboratory activity, but inadequate human evidence for oral treatment of infections. Concentrated oil can cause irritation. Chemical composition, biological activity and potential uses of oregano and oregano essential oil: a review.
Thyme
Thymus vulgaris
Thymol and carvacrol Antibacterial, antifungal and antibiofilm activity through membrane damage and altered microbial permeability. Better established as a constituent of topical antiseptic and oral-care formulations than as an oral treatment for systemic infection. PubMed literature: thyme, thymol and antimicrobial activity.
Tea tree oil
Melaleuca alternifolia
Terpinen-4-ol and related monoterpenes Topical antibacterial and antifungal activity with some antiviral laboratory activity. Some clinical evidence for topical acne and fungal skin conditions. Tea tree oil is toxic when swallowed and may cause contact dermatitis. Carson CF et al. Melaleuca alternifolia oil: a review of antimicrobial and other medicinal properties.
Echinacea
Echinacea species
Alkamides, caffeic-acid derivatives, polysaccharides and glycoproteins Primarily immunomodulatory; relatively weak and inconsistent direct antimicrobial activity. Evidence for preventing or shortening respiratory infections is inconsistent and preparation-dependent. National Center for Complementary and Integrative Health: Echinacea—Usefulness and Safety.
Elderberry
Sambucus nigra
Anthocyanins, flavonols and phenolic acids Antiviral effects have been reported in cell-culture and preclinical studies, including interference with viral entry or replication. Small human trials have examined respiratory symptoms, but evidence remains insufficient to establish treatment of influenza or other viral infections. National Center for Complementary and Integrative Health: Elderberry.
Curcumin / turmeric
Curcuma longa
Curcumin and related curcuminoids Antibacterial, antifungal, antiviral and antibiofilm activity through multiple membrane, enzyme and signalling effects. Predominantly laboratory evidence. Poor aqueous solubility and low systemic bioavailability are major clinical limitations. Moghadamtousi SZ et al. A review on antibacterial, antiviral and antifungal activity of curcumin.
Ginger
Zingiber officinale
Gingerols, shogaols and zingerone Antibacterial and antifungal activity, including possible inhibition of microbial adhesion and biofilm formation. Primarily laboratory evidence; there is little direct clinical evidence that ginger supplements treat infections. PubMed literature: ginger, gingerols and antimicrobial activity.
Clove
Syzygium aromaticum
Eugenol and eugenyl acetate Antibacterial, antifungal and local antiseptic activity, principally through membrane and protein disruption. Relevant mainly to topical, food-preservation and dental applications. Evidence for systemic infection treatment is insufficient. PubMed literature: clove, eugenol and antimicrobial activity.
Cinnamon
Cinnamomum species
Cinnamaldehyde, eugenol and cinnamic acid derivatives Antibacterial, antifungal and antibiofilm activity; may alter microbial membranes and quorum-sensing pathways. Predominantly laboratory evidence. Cassia cinnamon can contribute substantial coumarin exposure when consumed in concentrated amounts. PubMed literature: cinnamon, cinnamaldehyde and antimicrobial activity.
Neem
Azadirachta indica
Nimbidin, nimbin, nimbolide, azadirachtin and other limonoids Antibacterial, antifungal, antiparasitic and antibiofilm effects have been reported. Some topical and dental research exists, but systemic clinical evidence is inadequate. Oral neem preparations have important safety concerns. PubMed literature: Azadirachta indica and antimicrobial activity.
Black seed
Nigella sativa
Thymoquinone, thymohydroquinone and related volatile compounds Antibacterial, antifungal, antiparasitic and possible antiviral activity. Considerable laboratory research but limited, heterogeneous clinical evidence for infectious diseases. PubMed literature: Nigella sativa, thymoquinone and antimicrobial activity.
Green tea extract
Camellia sinensis
Epigallocatechin gallate (EGCG) and other catechins Antibacterial, antiviral and antibiofilm activity; may damage membranes, inhibit microbial enzymes and enhance some antibiotics. Some localized oral-health evidence, but limited evidence for treating systemic infections. Concentrated extracts may cause liver injury in susceptible individuals. PubMed literature: EGCG, green tea and antimicrobial activity.
Licorice root
Glycyrrhiza species
Glycyrrhizin, glycyrrhetinic acid, liquiritigenin and other flavonoids Antiviral, antibacterial and antifungal effects have been reported in laboratory and preclinical studies. Limited clinical antimicrobial evidence. Glycyrrhizin can cause hypertension, hypokalemia, fluid retention and clinically important drug interactions. National Center for Complementary and Integrative Health: Licorice Root.
Andrographis
Andrographis paniculata
Andrographolide and related diterpenoid lactones Immunomodulatory, anti-inflammatory and possible antiviral or antibacterial activity. Some evidence for modest symptom reduction in uncomplicated respiratory infections, but this does not establish direct pathogen eradication. PubMed literature: Andrographis and respiratory infections.
Pelargonium sidoides Proanthocyanidins, phenolic acids and oxygenated coumarin derivatives Possible antiviral, antibacterial anti-adhesive and immunomodulatory activity. Some human evidence for modest symptom improvement in acute bronchitis and selected respiratory infections. It is not a substitute for antibiotics when bacterial treatment is indicated. Timmer A et al. Pelargonium sidoides extract for acute respiratory tract infections. Cochrane systematic review.
Monolaurin
Glycerol monolaurate
Monolaurin, a monoester derived from lauric acid May disrupt lipid membranes and interfere with signalling or virulence in certain bacteria and enveloped viruses. Predominantly laboratory and animal evidence. There is insufficient clinical evidence to recommend oral monolaurin for infections. PubMed literature: glycerol monolaurate and antimicrobial activity.
Caprylic acid Octanoic acid, an eight-carbon medium-chain fatty acid Antifungal and membrane-disrupting activity, particularly against Candida species, has been reported in vitro. Insufficient human evidence for treating candidiasis or systemic fungal infection. Marketing claims commonly exceed the evidence. PubMed literature: caprylic acid and Candida.
Olive leaf extract
Olea europaea
Oleuropein, hydroxytyrosol and elenolic-acid derivatives Antibacterial, antiviral and antifungal activity has been observed in laboratory studies. Preliminary evidence only; clinical trials have not established it as a treatment for infectious disease. PubMed literature: olive leaf, oleuropein and antimicrobial activity.
Goldenseal
Hydrastis canadensis
Hydrastine, canadine and berberine Extracts and individual alkaloids show antibacterial activity in laboratory studies. There is no good clinical evidence that goldenseal treats human infections. Product composition, absorption and drug interactions are important limitations. National Center for Complementary and Integrative Health: Goldenseal.
Sweet wormwood / artemisinin
Artemisia annua
Artemisinin and related sesquiterpene lactones Artemisinin derivatives are potent antimalarial agents. Additional antibacterial, antiviral and antiparasitic effects are being studied. Artemisinin-based combination therapies are established medicines, not ordinary supplements. Herbal preparations should not replace standardized malaria treatment because dose variability can promote treatment failure and resistance. World Health Organization: Guidelines for malaria.

Evidence interpretation

  • Clinical evidence: Effects have been studied in human participants, but usually for a specific preparation, route, dose and indication.
  • Preclinical evidence: Activity has mainly been demonstrated in cell culture, microbial cultures or animal models.
  • Anti-adhesive or probiotic activity: The product may reduce colonization or pathogen attachment without directly killing the microorganism.
  • Topical evidence: Results from topical use cannot be assumed to apply to an orally administered supplement.


Scientific Papers found: Click to Expand⟱
6770- CUR,    A Review on Antibacterial, Antiviral, and Antifungal Activity of Curcumin
- Review, Nor, NA
*AntiBio↑, *Bacteria↓, *AntiViral↑, *BioAv↓, *Half-Life↓,

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:


Total Targets: 0

Pathway results for Effect on Normal Cells:


NA, unassigned(tgid=0)

AntiBio↑, 1,  

Drug Metabolism & Resistance(tgid=21)

BioAv↓, 1,   Half-Life↓, 1,  

Infection & Microbiome(tgid=24)

AntiViral↑, 1,   Bacteria↓, 1,  
Total Targets: 5

Scientific Paper Hit Count for: AntiBio, Antibiotic/Antimicrobial activity
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#:65  Target#:1483  State#:%  Dir#:%
wNotes=0 sortOrder:rid,rpid

 

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