| 1 |
Copper-dependent CuET formation |
↑ CuET formation and accumulation |
↔ or ↑ exposure (context-dependent) |
P–R |
Generation of the principal cytotoxic species |
DSF metabolites chelate copper to form CuET; extracellular copper concentration, protein binding and cellular copper handling strongly determine activity. |
| 2 |
NPL4 and p97/VCP segregase |
↓ NPL4 function; ↑ NPL4 aggregation |
↓ at sufficient exposure |
P–R |
Collapse of ubiquitin-dependent protein processing |
CuET immobilizes NPL4 and disrupts p97/VCP-mediated extraction and turnover of ubiquitinated proteins. This is the best-supported direct anticancer target. |
| 3 |
Proteostasis and unfolded protein stress |
↑ ubiquitinated proteins; ↑ proteotoxic stress |
↑ at cytotoxic exposure |
R–G |
Loss of protein homeostasis and cell viability |
Frequently described as proteasome inhibition, but much of the effect may arise upstream through NPL4 and p97/VCP disruption rather than direct catalytic proteasome blockade. |
| 4 |
Replication stress and ATR response |
↑ stalled forks; ↑ DNA damage; ↓ ATR signaling |
↑ damage at sufficient exposure |
R–G |
Defective replication-fork protection and checkpoint signaling |
BRCA1-deficient, BRCA2-deficient or replication-stressed cells may be especially vulnerable (model-dependent). |
| 5 |
Mitochondrial ROS increase |
↑ ROS and oxidative injury |
↑ ROS (dose-dependent) |
P–R |
Amplification of proteotoxic and mitochondrial stress |
ROS is an important downstream or parallel mechanism but is not necessarily the initiating molecular event. |
| 6 |
Mitochondrial membrane integrity |
↓ membrane potential; ↓ ATP; ↑ cytochrome c release |
↓ at cytotoxic exposure |
R–G |
Intrinsic apoptotic signaling |
Mitochondrial dysfunction is reported across several tumour models, especially with added copper. |
| 7 |
NRF2 and antioxidant adaptation |
↑ or ↓ NRF2 (context-dependent) |
↑ antioxidant response (context-dependent) |
R–G |
Determination of oxidative-stress sensitivity or resistance |
Some models show NRF2 suppression, whereas others show compensatory NRF2 and HO-1 activation that protects against DSF–Cu-induced ferroptosis. A single fixed direction is not justified. |
| 8 |
Glutathione and ferroptosis |
↓ GSH; ↑ lipid peroxidation; ↑ ferroptosis |
↔ or ↑ oxidative injury |
R–G |
Iron-dependent oxidative cell death |
Prominent in selected tumour models and enhanced when NRF2, HO-1 or glutathione defenses are impaired. |
| 9 |
NF-κB survival signaling |
↓ NF-κB activation |
↓ inflammatory signaling (context-dependent) |
R–G |
Reduced survival and inflammatory transcription |
May reflect altered proteostasis, redox signaling or inhibition of upstream regulatory protein turnover rather than a single direct binding interaction. |
| 10 |
AKT and MAPK signaling |
↓ AKT; ↑ or ↓ MAPK signaling (model-dependent) |
↔ or ↓ signaling |
R–G |
Suppression of proliferation and survival |
MAPK direction varies by tumour type, exposure and sampling time; stress-associated JNK activation commonly accompanies apoptosis. |
| 11 |
ALDH and cancer stem-like state |
↓ ALDH activity; ↓ stem-like phenotype |
↓ ALDH activity |
R–G |
Potential depletion of ALDH-high tumour populations |
Biologically relevant in some models, but ALDH inhibition should not be presented as the dominant CuET anticancer mechanism. |
| 12 |
Cell cycle progression |
↓ proliferation; ↑ G1 or G2/M arrest |
↓ proliferation at sufficient exposure |
G |
Cytostatic response preceding cell death |
Cell-cycle outcome varies with tumour genotype, copper availability and treatment duration. |
| 13 |
Apoptosis and proteotoxic cell death |
↑ caspase-dependent and non-apoptotic death |
↑ toxicity at high exposure |
G |
Terminal execution of accumulated cellular stress |
The mode of death depends on copper, redox state, NRF2 capacity, genotype and treatment combination. |
| 14 |
Chemosensitization |
↑ sensitivity to DNA-damaging agents and selected proteostasis-targeting drugs |
↑ combination toxicity possible |
G |
Lowered tolerance of treatment-induced damage |
Reported with platinum agents, temozolomide and other drugs, but clinical efficacy has not been consistently reproduced. |
| 15 |
Radiosensitization |
↑ radiation response (model-dependent) |
↑ radiation injury possible |
G |
Enhanced oxidative, DNA and proteotoxic damage |
Supported by preclinical studies and early clinical testing; tumour selectivity and optimal copper exposure remain unresolved. |
| 16 |
Clinical Translation Constraint |
↔ variable tumour CuET exposure |
↑ hepatic, neurologic and drug-interaction risk |
G |
Uncertain correspondence between laboratory activity and oral dosing |
Rapid metabolism, variable bioavailability, copper speciation, formulation, intratumoural delivery, heterogeneous trial designs and mostly small or negative studies currently limit translation. |