Diclofenac / Casp3 Cancer Research Results

DFC, Diclofenac: Click to Expand ⟱
Features:
Diclofenac is a nonsteroidal anti-inflammatory drug (NSAID) commonly used to treat pain, inflammation, and fever.

Diclofenac — a synthetic phenylacetic-acid derivative and nonsteroidal anti-inflammatory drug used clinically for analgesic, anti-inflammatory, and antipyretic effects. It is a nonselective cyclooxygenase inhibitor with moderately greater functional inhibition of COX-2 than COX-1. Standard abbreviations include DCF, DIC, and Dicl. Diclofenac is approved in oral, topical, ophthalmic, rectal, and injectable formulations for non-cancer indications; its proposed anticancer use is drug repurposing and remains investigational.

Primary mechanisms (ranked):

  1. Inhibition of COX-2 and COX-1, reducing prostaglandin E2 production and downstream inflammatory, angiogenic, immunosuppressive, and tumor-promoting signalling.
  2. Suppression of MYC-dependent glucose metabolism, including reduced glucose uptake, glycolytic flux, lactate production, and expression of glycolysis-associated proteins.
  3. Disruption of tumor lactate handling through context-dependent inhibition of monocarboxylate transport and lactate dehydrogenase activity, potentially increasing intracellular metabolic stress and limiting extracellular acidification.
  4. Inhibition of angiogenesis through reduced VEGF expression and tumor vascularization.
  5. Microtubule destabilization, defective mitotic-spindle assembly, G2/M arrest, and mitotic cell death at sufficiently high concentrations.
  6. Mitochondrial dysfunction and ROS accumulation, causing loss of mitochondrial membrane potential and intrinsic apoptosis; this mechanism overlaps with diclofenac toxicity in normal hepatic and cardiac cells.
  7. Context-dependent chemosensitization and radiosensitization through suppression of prostaglandin signalling, tumor metabolism, angiogenesis, and lactate-associated antioxidant capacity.

Bioavailability / PK relevance: Oral diclofenac is extensively absorbed but undergoes substantial first-pass metabolism, producing approximately 50–55% systemic bioavailability. It reaches peak plasma concentration in roughly 2–3 hours, is more than 99% albumin-bound, and has a terminal plasma half-life of approximately 2 hours. Metabolism is primarily hepatic through CYP2C9, with additional CYP2C8, CYP3A4, and UGT2B7 contributions. High protein binding, short systemic exposure, and dose-limiting cardiovascular, gastrointestinal, renal, and hepatic toxicity constrain sustained anticancer exposure. Topical formulations provide high local tissue exposure but substantially lower systemic exposure.

In-vitro vs systemic exposure relevance: Many direct antiproliferative, mitochondrial, ROS, and microtubule effects are reported at approximately 50–500 µM and frequently exceed the sustained unbound concentrations achievable with standard oral dosing. Effects on COX/PGE2 signalling, MYC, lactate metabolism, angiogenesis, or treatment sensitization may occur at lower or intermittently achievable concentrations, but their dependence on tumor type, formulation, exposure duration, and protein content is substantial. High-concentration cytotoxic findings should not be interpreted as evidence that conventional analgesic dosing will directly kill tumors.

Clinical evidence status: Established approved NSAID for pain and inflammatory disorders; preclinical-to-early-human evidence for oncology repurposing. Animal studies and tumor-cell studies support metabolic, antiangiogenic, and cytotoxic activity. Human oncology evidence consists mainly of topical treatment studies in actinic keratosis, perioperative or supportive-care investigations, biomarker studies, and small or ongoing trials. A phase II study is evaluating systemic diclofenac in non-small-cell lung cancer, but diclofenac is not an approved systemic anticancer therapy and there is no established survival benefit from randomized oncology trials.


Diclofenac Mechanistic Profile

Rank Pathway / Axis Cancer Cells Normal Cells TSF Primary Effect Notes / Interpretation
1 COX and PGE2 signalling COX-2 activity ↓
PGE2 ↓
EP receptor signalling ↓
Protective prostaglandins ↓ R–G Inflammatory and tumor-promoting signalling ↓ Core pharmacological mechanism. May reduce proliferation, angiogenesis, invasion, and immunosuppression, but normal-cell COX inhibition contributes to gastrointestinal, renal, and cardiovascular toxicity.
2 MYC and glucose metabolism MYC ↓
Glucose uptake ↓
Glycolysis ↓
Lactate production ↓
Metabolic effects ↔ or ↓ (context-dependent) G Tumor bioenergetic capacity and proliferation ↓ Observed in melanoma, leukemia, carcinoma, glioma, and triple-negative breast-cancer models. Magnitude depends on dose and exposure duration.
3 Lactate transport and extracellular acidification MCT-dependent lactate transport ↓
LDHA activity ↓
Extracellular lactate ↓
Acidification ↓
Lactate transport ↓ (context-dependent) R–G Metabolic stress ↑ and acidic tumor microenvironment ↓ Direct MCT4 inhibition by diclofenac remains model- and assay-dependent. Reduced lactate production through MYC and LDHA modulation may be equally or more important.
4 VEGF and angiogenesis VEGF ↓
Vascularization ↓
Endothelial recruitment ↓
Angiogenic repair ↓ (context-dependent) G Tumor perfusion and growth ↓ Supported mainly by animal tumor models. Effects may derive from COX-2/PGE2 inhibition and altered tumor metabolism.
5 Microtubules and mitotic spindle Microtubule stability ↓
Spindle defects ↑
G2/M arrest ↑
Mitotic injury ↑ (high concentration only) R–G Mitotic catastrophe and cell death ↑ COX-independent mechanism demonstrated in experimental cancer models, generally at concentrations above routine unbound clinical exposure.
6 Mitochondrial ROS and intrinsic apoptosis Mitochondrial ROS ↑
Membrane potential ↓
Cytochrome c release ↑
Caspase signalling ↑
Hepatocyte and cardiomyocyte ROS ↑
Mitochondrial injury ↑
R–G Apoptosis ↑ Potential anticancer leverage overlaps directly with recognized organ toxicity. Reactive metabolites and mitochondrial hydrogen peroxide are important in normal-cell injury.
7 NRF2 antioxidant response NRF2 response ↑ or overwhelmed (dose-dependent) NRF2 stress response ↑ R–G Adaptive antioxidant defence or oxidative death Secondary mechanism. NRF2 activation may protect cells at moderate stress, whereas severe mitochondrial oxidative injury can exceed antioxidant capacity.
8 PI3K AKT and MAPK survival signalling AKT phosphorylation ↓
ERK signalling ↓ or mixed
p38 and JNK stress signalling ↑
Stress kinase signalling ↑ (context-dependent) R–G Survival signalling ↓ and apoptosis ↑ Reported in selected esophageal, neuroblastoma, and other experimental models; not established as a universal direct target.
9 Radiosensitization and chemosensitization Treatment sensitivity ↑ (context-dependent)
Lactate-mediated ROS buffering ↓
Normal-tissue injury ↔ or ↑ G Response to radiation or chemotherapy ↑ Preclinical and limited translational evidence. Potential interaction with pemetrexed and other cytotoxic agents may increase renal, gastrointestinal, or marrow toxicity.
10 Clinical Translation Constraint Sustained free-drug exposure limited GI bleeding ↑
Cardiovascular thrombosis ↑
Renal injury ↑
Hepatotoxicity ↑
G Therapeutic window narrowed Approximately 55% oral bioavailability, greater than 99% protein binding, short half-life, first-pass metabolism, CYP2C9 interactions, and systemic NSAID toxicity limit chronic high-dose oncology use. Local or reformulated delivery may improve exposure but remains investigational.

P: 0–30 min    R: 30 min–3 hr    G: >3 hr



Casp3, CPP32, Cysteinyl aspartate specific proteinase-3: Click to Expand ⟱
Source:
Type:
Also known as CP32.
Cysteinyl aspartate specific proteinase-3 (Caspase-3) is a common key protein in the apoptosis and pyroptosis pathways, and when activated, the expression level of tumor suppressor gene Gasdermin E (GSDME) determines the mechanism of tumor cell death.
As a key protein of apoptosis, caspase-3 can also cleave GSDME and induce pyroptosis. Loss of caspase activity is an important cause of tumor progression.
Many anticancer strategies rely on the promotion of apoptosis in cancer cells as a means to shrink tumors. Crucial for apoptotic function are executioner caspases, most notably caspase-3, that proteolyze a variety of proteins, inducing cell death. Paradoxically, overexpression of procaspase-3 (PC-3), the low-activity zymogen precursor to caspase-3, has been reported in a variety of cancer types. Until recently, this counterintuitive overexpression of a pro-apoptotic protein in cancer has been puzzling. Recent studies suggest subapoptotic caspase-3 activity may promote oncogenic transformation, a possible explanation for the enigmatic overexpression of PC-3. Herein, the overexpression of PC-3 in cancer and its mechanistic basis is reviewed; collectively, the data suggest the potential for exploitation of PC-3 overexpression with PC-3 activators as a targeted anticancer strategy.
Caspase 3 is the main effector caspase and has a key role in apoptosis. In many types of cancer, including breast, lung, and colon cancer, caspase-3 expression is reduced or absent.
On the other hand, some studies have shown that high levels of caspase-3 expression can be associated with a better prognosis in certain types of cancer, such as breast cancer. This suggests that caspase-3 may play a role in the elimination of cancer cells, and that therapies aimed at activating caspase-3 may be effective in treating certain types of cancer.
Procaspase-3 is a apoptotic marker protein.
Prognostic significance:
• High Cas3 expression: Associated with good prognosis and increased sensitivity to chemotherapy in breast, gastric, lung, and pancreatic cancers.
• Low Cas3 expression: Linked to poor prognosis and increased risk of recurrence in colorectal, hepatocellular carcinoma, ovarian, and prostate cancers.


Scientific Papers found: Click to Expand⟱
6697- DFC,    Diclofenac induces apoptosis in hepatocytes by alteration of mitochondrial function and generation of ROS
Inflam↓, Casp3↑, Casp8↑, Casp9↑, MPT↑, mt-ROS↑,
6707- DFC,    Markers of mitochondrial dysfunction during the diclofenac-induced apoptosis in melanoma cell lines
- in-vitro, Melanoma, NA
TumCP↓, ROS↑, Bax:Bcl2↑, Casp3↑, SOD2↑, Cyt‑c↑,

Showing Research Papers: 1 to 2 of 2

* indicates research on normal cells as opposed to diseased cells
Total Research Paper Matches: 2

Pathway results for Effect on Cancer / Diseased Cells:


Redox & Oxidative Stress(tgid=1)

ROS↑, 1,   mt-ROS↑, 1,   SOD2↑, 1,  

Mitochondria & Bioenergetics(tgid=3)

MPT↑, 1,  

Cell Death(tgid=5)

Bax:Bcl2↑, 1,   Casp3↑, 2,   Casp8↑, 1,   Casp9↑, 1,   Cyt‑c↑, 1,  

Migration(tgid=13)

TumCP↓, 1,  

Immune & Inflammatory Signaling(tgid=16)

Inflam↓, 1,  
Total Targets: 11

Pathway results for Effect on Normal Cells:


Total Targets: 0

Scientific Paper Hit Count for: Casp3, CPP32, Cysteinyl aspartate specific proteinase-3
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#:200  Target#:42  State#:%  Dir#:%
wNotes=0 sortOrder:rid,rpid

 

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