Melanoma

Clinical / Scientific

Cutaneous melanoma is UV-mutagenized with BRAF/NRAS/NF1 subtypes, high tumour-mutational burden, and established checkpoint and BRAF/MEK therapy in appropriate disease. KIT-mutant and uveal maps differ. Adjunctive adrenergic and metabolic ideas are secondary to that established map.

Molecular / histological subtypes

Core Biological Drivers

BRAF / NRAS / NF1

subtypes.

High TMB

UV signature.

MITF lineage

Melanocyte identity.

Key Pathways

RAS/RAF

Scientific explanation

RAS GTPases and RAF kinases are frequent oncogenic nodes. KRAS, NRAS and BRAF mutations lock mitogenic signalling on in a ligand-independent way in many tumours.

MAPK/ERK

Scientific explanation

The RAS–RAF–MEK–ERK cascade transmits mitogenic RTK signals to programmes for proliferation and differentiation.

PI3K/AKT

Scientific explanation

phosphorylates PIP2 to PIP3, recruiting . supports growth, survival, glucose uptake and mTORC1 input. Pathway activation is common via PIK3CA mutation, PTEN loss or -tyrosine- signalling.

PD-1 / PD-L1

Scientific explanation

PD-1 on T cells engaging PD-L1/PD-L2 restrains cytotoxic function. Tumour or myeloid PD-L1 is a canonical adaptive immune-evasion axis.

CTLA-4

Scientific explanation

CTLA-4 competes with CD28 for B7 ligands, restraining priming of T cells mainly in lymphoid tissues and Tregs.

Autophagy

Scientific explanation

recycles organelles and can support survival under nutrient or therapy stress. Context determines tumour-suppressive versus therapy-protective roles.

Glycolysis

Scientific explanation

Aerobic (Warburg metabolism) supports ATP, biomass and redox buffering even when oxygen is available. Hexokinase, PKM2 and lactate export are frequent nodes.

EMT

Scientific explanation

Epithelial–mesenchymal plasticity, driven by TWIST/SNAIL/ZEB and TGF-β/Wnt/Notch inputs, reduces adhesion and increases motility and stem-like features.

Angiogenesis

Scientific explanation

New vessel formation supplies oxygen and routes for dissemination. It is driven by , angiopoietins, FGF and inflammatory cytokines under .

Pathway Convergence

Target → pathway → downstream effect → biological consequence. Shared intersections are mechanistic maps, not protocols.

Growth-factor signalling

Ligand or mutation-driven RTK input feeds PI3K/AKT and mTORC1, supporting anabolic growth. This is a map of signalling, not a treatment protocol.

Receptor tyrosine kinase
↓
PI3K/AKT
↓
mTOR
↓
Protein synthesis / growth

Inflammatory survival

Chronic cytokine tone activates NF-κB and STAT3 transcriptional programmes that favour survival, invasion and sometimes immune evasion.

Cytokines
↓
NF-κB / STAT3
↓
Survival and invasion genes
↓
Therapy-tolerant phenotype

Hypoxia to vessels

Low oxygen stabilizes HIF-1α, inducing VEGF and endothelial sprouting. Anti-angiogenic pharmacology intersects this axis but does not erase the tumour ecosystem.

Hypoxia
↓
HIF-1α
↓
VEGF
↓
Angiogenesis

Metabolic Vulnerabilities

Aerobic supports ATP, biomass and acidification even when oxygen is available. Extent varies by tumour and remains a vulnerability hypothesis rather than a uniform target.

Phenotype switching includes MITF-low invasive states with different fuel use.

Tumor Microenvironment

Tumour-associated macrophages and myeloid-derived suppressor cells secrete cytokines that support invasion and blunt cytotoxic T cells.

Disordered vasculature creates , HIF-1α stabilization, induction and immune-suppressive adenosine/lactate milieus.

Metastasis Module

, protease-mediated invasion, , circulating tumour-cell survival and organ-specific colonization form the metastatic cascade. Pre-metastatic niches and vascular permeability influence tropism.

Resistance Biology

reactivation, phenotype switching, and checkpoint immuno-editing.

Cancer Stemness

Wnt, Notch, Hedgehog, ALDH and CD44-associated programmes can mark stem-like fractions with quiescence and therapy tolerance. These markers are not interchangeable across tumour types.

Mechanism-Based Adjunctive Strategies

Compounds appear only where a mechanistic overlap exists for this cancer. Evidence tiers are not equivalent. Nothing here is a treatment recommendation.

Propranolol

Early ClinicalIn VivoIn Vitro

Target / Mechanism

Non-selective β-adrenergic . Adrenergic signalling can support and invasion in some tumours; selected clinical experiences (e.g. infantile haemangioma is established vascular biology, oncology uses are a different question).

Cancer relevance

β-adrenergic signalling can support and invasion in selected tumours. Oncology uses remain investigational except where a specific vascular indication is separately established.

Adrenergic / vascular adjunctive research. Convergence: Angiogenesis, Invasion.

Hydroxychloroquine

Early ClinicalIn VivoIn Vitro

Target / Mechanism

Lysosomotropic agent that raises endosomal/autophagosomal pH, impairing flux. Combination trials in oncology have been mixed; blockade is not equivalent to proven benefit.

Cancer relevance

Lysosomal pH elevation impairs flux. Early combination trials exist; benefit is not established and toxicity/retinal risk remain labelled concerns.

Autophagy-modulation research combinations. Convergence: Autophagy.

Metformin

Clinical / Human EvidenceIn VivoIn VitroMechanistically Plausible

Target / Mechanism

Modest complex I inhibition raises AMP:ATP, activating and restraining hepatic and -linked anabolism. Direct antineoplastic efficacy is not established from that pharmacology alone.

Cancer relevance

activation and restraint provide a metabolic rationale in - and -linked tumours. Human data are mixed and do not establish metformin as cancer therapy.

Metabolic adjunctive research context. Convergence: AMPK, mTOR, Glycolysis.

Statins (HMG-CoA reductase inhibitors)

Clinical / Human EvidenceIn VitroMechanistically Plausible

Target / Mechanism

Inhibit HMG-CoA reductase, depleting mevalonate-pathway isoprenoids needed for RAS/RHO prenylation and some sterol-dependent growth programmes. Observational oncology signals are mixed and not a licence to treat cancer with statins.

Cancer relevance

Mevalonate-pathway blockade can affect prenylation of RAS-family GTPases. Observational human signals are mixed and confounding is substantial.

Mevalonate / prenylation mechanistic overlap. Convergence: RAS/RAF, Fatty-acid metabolism.

Curcumin

In VitroMechanistically Plausible

Target / Mechanism

Polyphenol with promiscuous in-vitro NF-κB, and ROS effects. Bioavailability is poor; dish activity does not establish clinical anticancer efficacy.

Cancer relevance

In-vitro NF-κB/ effects are frequent. Poor bioavailability and absence of robust clinical anticancer efficacy keep this pathway-level.

Inflammatory-signalling dish models. Convergence: NF-κB, JAK/STAT.

Mebendazole

In VitroIn VivoMechanistically Plausible

Target / Mechanism

Benzimidazole that binds β-. Mammalian disruption, mitotic arrest and related signalling in cancer models are preclinical and are not an approved anticancer use.

Cancer relevance

disruption can trigger mitotic stress and in cell and animal models. This is not an established oncology use.

Experimental antimitotic / microtubule stress. Convergence: Apoptosis, p53.

Research Context

  1. BRAF. Davies H, et al. Mutations of the BRAF gene in human cancer. Nature. 2002;417(6892):949-954. https://doi.org/10.1038/nature00766
  2. Checkpoints. Pardoll DM. The blockade of immune checkpoints in cancer immunotherapy. Nat Rev Cancer. 2012;12(4):252-264. https://doi.org/10.1038/nrc3239
  3. Resistance. Holohan C, Van Schaeybroeck S, Longley DB, Johnston PG. Cancer drug resistance: an evolving paradigm. Nat Rev Cancer. 2013;13(10):714-726. https://doi.org/10.1038/nrc3599

This oncology atlas is educational. Pathway maps, adjunctive strategies, and compound listings describe mechanistic relevance. They do not establish clinical efficacy, do not recommend treatment, and are not a substitute for oncology care. Evidence tiers are not equivalent.