Precision Oncology Hub
Targeted Cancer Therapy: Biomarkers, TKIs & Molecular Protocols
A comprehensive clinical overview of oncogenic driver alterations (EGFR, ALK, BRAF, KRAS G12C, HER2), small molecule kinase inhibitors, synthetic lethality, and liquid biopsy monitoring.
80+
FDA Approved Targeted Drugs
500+
Actionable Gene Alterations
3-5x
PFS Improvement vs Chemo
1,500+
Targeted Clinical Trials
Principles of Molecularly Targeted Oncology
Targeted cancer therapies are drugs designed to interfere with specific molecular entities and pathways necessary for tumor growth, invasion, and vascularization. Unlike cytotoxic chemotherapeutics that disrupt fundamental cell division processes across all proliferative tissues, targeted therapies exploit cancer-specific biochemical dependencies (often termed "oncogene addiction").
The paradigm of modern oncology mandates comprehensive genomic profiling (CGP) via tissue Next-Generation Sequencing (NGS) or circulating tumor DNA (ctDNA liquid biopsy) prior to therapy initiation to pinpoint actionable target mutations.
Frequently Asked Questions (Clinical FAQ)
Targeted therapy acts on specific molecular switches, mutated proteins, or aberrant genes that control tumor cell survival. Chemotherapy is cytotoxic to all rapidly multiplying cells. Because targeted drugs zero in on tumor-specific genetic vulnerabilities, they spare many healthy cells and offer higher tumor selectivity.
Targeted drugs are precision tools that work exclusively in tumors expressing the specific matching gene mutation or fusion. Comprehensive Genomic Profiling through tissue NGS or blood-based liquid biopsy (ctDNA) is necessary to determine which targeted drug or clinical trial will be clinically effective.
TKIs are small molecule medications (most taken orally) that penetrate cell membranes to block intracellular kinase enzyme domains. They interrupt oncogenic cascade signals like MAPK/ERK and PI3K/AKT, stopping cell division and inducing apoptosis.
PARP inhibitors utilize the principle of 'synthetic lethality.' In cancer cells with defective homologous recombination DNA repair (due to BRCA1/2 mutations), inhibiting PARP prevents base-excision repair of single-strand breaks. This causes accumulation of lethal double-strand breaks that normal, repair-proficient cells can withstand.
Cancers frequently develop secondary resistance mutations (e.g., EGFR C797S) or activate bypass signaling loops. Oncologists use serial liquid biopsies (ctDNA) to detect resistance mutations early and switch to next-generation brain-penetrant inhibitors, antibody-drug conjugates, or combination regimens.
Clinically Reviewed by Dr. Elena Rostova, MD, PhD
Director of Molecular Oncology & Precision Therapeutics • ONCorg Genomics Working Group
Clinical review updated August 2026. Aligned with ESMO and NCCN Precision Oncology Biomarker Testing Guidelines.