Prevalence and Clinical Implications of Somatic and Germline EGFR Mutations in Patients with Non-Small-Cell Lung Cancer
Simple Summary
Abstract
1. Introduction
2. Somatic EGFR Mutations
2.1. Global Prevalence of Somatic EGFR Mutations
2.2. Clinical Implications of EGFR-Targeted Therapies Based on Somatic EGFR Mutations
2.2.1. EGFR TKI Monotherapy
2.2.2. Combination Therapies for First-Line EGFR-Mutant NSCLC
2.2.3. Other Combination Therapies for First-Line and Beyond EGFR-Mutant NSCLC
3. Germline EGFR Mutations
3.1. Hereditary EGFR Mutations and Lung Cancer Predisposition
3.2. Pathogenesis and Two-Hit Tumorigenesis
3.3. Phenotype and Prevalence
3.4. Detection Workflow
3.5. Non-T790M EGFR Variants
3.6. Screening and Surveillance for Lung Cancer
3.7. Considerations for Prevention
4. Broader Germline Predisposition
5. Summary and Perspectives
6. Conclusions
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
| ABCP | atezolizumab, bevacizumab, carboplatin, and paclitaxel |
| ADC | antibody–drug conjugate |
| AE | adverse event |
| ALK | anaplastic lymphoma kinase |
| AMP | Association for Molecular Pathology |
| CAP | College of American Pathologists |
| cEFR | CNS-evaluable-for-response |
| cFAS | CNS full-analysis set |
| cfDNA | cell-free DNA |
| CI | confidence interval |
| CNS | central nervous system |
| CNV | copy-number variation |
| CT | computed tomography |
| ctDNA | circulating tumor DNA |
| DDR | DNA damage repair |
| DoR | duration of response |
| EGFR | epidermal growth factor receptor |
| ERBB2/HER2 | human epidermal growth factor receptor 2 |
| Ex20ins | exon 20 insertion |
| FDA | U.S. Food and Drug Administration |
| FLC | familial lung cancer |
| GGO | ground-glass opacity |
| GWAS | genome-wide association study |
| HR | hazard ratio |
| IASLC | International Association for the Study of Lung Cancer |
| ICI | immune checkpoint inhibitor |
| ILD | interstitial lung disease |
| IRR | infusion-related reaction |
| IV | intravenous |
| LA/mNSCLC | locally advanced or metastatic non-small-cell lung cancer |
| LDCT | low-dose computed tomography |
| LUAD | lung adenocarcinoma |
| LUSC | lung squamous-cell carcinoma |
| MET | mesenchymal–epithelial transition factor |
| mOS | median overall survival |
| mPFS | median progression-free survival |
| MRD | molecular residual disease |
| NCCN | National Comprehensive Cancer Network |
| NCT | ClinicalTrials.gov identifier |
| NE | not estimable |
| NGS | next-generation sequencing |
| NR | not reported |
| NSCLC | non-small-cell lung cancer |
| ORR | objective response rate |
| OS | overall survival |
| P/LP | pathogenic or likely pathogenic |
| PACC | P-loop and αC-helix compressing |
| PARP | poly(ADP-ribose) polymerase |
| PD-1 | programmed cell death protein 1 |
| PD-L1 | programmed death ligand 1 |
| PFS | progression-free survival |
| PGV | pathogenic germline variant |
| PRS | polygenic risk score |
| PV | pathogenic variant |
| sac-TMT | sacituzumab tirumotecan |
| TKI | tyrosine kinase inhibitor |
| TMB | tumor mutational burden |
| TRAE | treatment-related adverse event |
| TROP2 | trophoblast cell-surface antigen 2 |
| VAF | variant allele fraction |
| VEGF | vascular endothelial growth factor |
| VTE | venous thromboembolism |
| VUS | variant of uncertain significance |
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| Types of Mutations | Somatic EGFR Mutation | Germline EGFR Mutation |
|---|---|---|
| Origin | Acquired in tumor cells | Inherited in all cells |
| Prevalence in NSCLC | Common (15–50%) | Rare (1% or less) |
| Primary Role | Driver of carcinogenesis and drug target | Predisposition to lung cancer |
| Common Mutations | Classic: Exon 19 del, L858R Uncommon: exon 18 G719X, exon 20 S768I, exon 21 L861Q, etc. EGFR E20ins | T790M (50–70% of reported germline mutation carriers), V843I, R776H, P848L, V769M, etc. |
| Clinical Implication | TKIs, bispecifics, ADCs | Familial risk, early screening, prevention |
| Resistance | T790M, C797S; often with MET amplification | Often combined with somatic mutations |
| Disease Setting | Unresectable | Resectable | |||||
|---|---|---|---|---|---|---|---|
| Type of EGFR Mutation | 1L Targeted Monotherapy | 1L Targeted Combination | 1L Targeted + Chemotherapy | 2L Targeted Therapy or ADC | Post-ChemoRT | Resected Stage I–III | Neoadjuvant Stage I–III |
| Common (classic) EGFR mutations (Ex19del or L858R) | Osimertinib Erlotinib; gefitinib; afatinib; dacomitinib † Icotinib (China, November 2014) † Furmonertinib (China, June 2022) † Limertinib (China, April 2025) | Amivantamab + lazertinib (August 2024) * Afatinib + cetuximab Erlotinib + ramucirumab * Erlotinib + bevacizumab | Osimertinib + platinum/pemetrexed (February 2024) | Amivantamab + carboplatin/pemetrexed after EGFR TKI (September 2024) Datopotamab deruxtecan (June 2025) † Savolitinib + osimertinib (MET amplification; China, June 2025) † Sacituzumab tirumotecan (after EGFR TKI + platinum: China, March 2025; after EGFR TKI: China, October 2025) | Osimertinib | Osimertinib | * Osimertinib or Osimertinib + platinum/pemetrexed (NeoADAURA) |
| Acquired EGFR T790M resistance mutation | — | — | — | Osimertinib † Furmonertinib (China, March 2021) † Limertinib (China, January 2025) | — | — | — |
| Atypical/PACC EGFR mutations (G719X, S768I, L861Q; E709X, L747P/S) | Afatinib (FDA, January 2018: G719X, L861Q, S768I) * Osimertinib | * Amivantamab + lazertinib | — | — | — | — | — |
| EGFR exon 20 insertion (Ex20ins) mutations | — | — | Amivantamab + carboplatin/pemetrexed (March 2024) | Amivantamab (May 2021) Sunvozertinib (China, August 2023; US FDA, July 2025) † Furmonertinib (China, February 2026) † Andamertinib (China, April 2026) | — | — | — |
| Trial Information /Endpoint | FLAURA Osimertinib vs. First Generation EGFR TKI (NCT02296125) [11,64,66,97] | FLAURA2 Osimertinib + Platinum-Pemetrexed vs. Osimertinib (NCT04035486) [86,87,88,89,90,97] | MARIPOSA Amivantamab-Lazertinib vs. Osimertinib (NCT04487080) [89,92,94,95,96] |
|---|---|---|---|
| Trial design and baseline characteristics | |||
| Treatment arms | Osimertinib/first generation EGFR TKI (gefitinib or erlotinib) | Osimertinib + platinum-pemetrexed/osimertinib | Amivantamab-lazertinib/osimertinib |
| No. patients | 279/277 | 279/278 | 429/429 |
| Median age | 64 yr/64 yr; age < 65 yr: 298 (53.6%); age ≥ 65 yr: 258 (46.4%) | 61 (26–83)/62 (30–85) yr | 64 (25–88)/63 (28–88) yr; age ≥ 75 yr: 51 (12%)/53 (12%); age 65 to <75 yr: 143 (33%)/139 (32%); age < 65 yr: 235 (55%)/237 (55%) |
| Region/race | Asian: 162/160 | Asian: 179 (64%)/176 (63%); non-Hispanic White: 74 (27%)/83 (30%); Black: 2 (1%)/3 (1%); Other: 13 (5%)/10 (4%) | Asian: 250 (58%)/251 (59%); non-Hispanic White: 164 (38%)/165 (38%); Hispanic: 7 (2%)/7 (2%); Black: 4 (1%)/3 (1%) |
| Smoking | NR | NR | Never-smoker: 130 (30%)/134 (31%) |
| Metastatic sites | CNS: 61/67; liver: 12/13 | CNS: 116 (42%)/110 (40%); liver: 43 (15%)/66 (24%); other: 132 (47%)/142 (51%) | CNS: 178 (41%)/172 (40%); liver: 62 (15%)/72 (17%) |
| EGFR Mutations | EGFR L858R: 103 (37%)/102 (37%); EGFR exon 19 deletion: 176 (63%)/175 (63%) | EGFR L858R: 106 (38%)/107 (38%); EGFR exon 19 deletion: 169 (61%)/168 (60%); TP53 altered: 46/40; TP53 wild type: 33/34 | EGFR L858R: 172 (40%)/172 (40%); EGFR exon 19 deletion: 258 (60%)/257 (60%); TP53 altered: 149 (46.6%)/144 (45.6%); TP53 wild type: 117 (36.6%)/130 (41.1%) |
| Plasma ctDNA | 353 (63%) evaluable overall | 308 (73.2%) evaluable | 266 (83.1%)/274 (86.7%) |
| Efficacy | |||
| ORR | 80%/76% | 83%/76% | 86%/85% |
| PFS/OS | mPFS: 18.9/10.2 mo; mOS: 38.6/31.8 mo | mPFS: 25.5/16.7 mo (gain 9.9 mo); mOS: 47.5/37.6 mo; HR 0.77 (95% CI, 0.61–0.96), p = 0.02 | mPFS: 23.7/16.6 mo (gain > 12 mo); mOS: NE (42.9–NE)/36.7 (33.4–41.0) mo; HR 0.75 (95% CI, 0.61–0.92), p = 0.005 |
| CNS response subset | cFAS: 61 (22%)/67 (24%); cEFR: 22 (36%)/19 (28%) | cFAS: 118 (42%)/104 (37%); cEFR: 40 (33.9%)/38 (36.5%) | CNS metastases at baseline: 178 (41%)/172 (40%) |
| Safety and practical considerations | |||
| All-grade TRAEs | 98%/98% | 97%/88% | 98%/NR |
| Grade ≥3 AEs | 32%/41% | 64–70%/27–34% | 75–80%/43–52% |
| Key toxicities | Rash, diarrhea, dry skin, ILD (~3%) | Rash, diarrhea, dry skin, neutropenia (19%/0–2%), anemia (12%/2%), fatigue, nausea, ILD (~3%) | IRRs (61–67%), rash (60–70%), diarrhea, stomatitis, VTE (37%), ILD (~3%)/rash (40–50%), VTE (10%) |
| Dose reduction | 4%/NR | 15%/NR | 40%/NR |
| Discontinuation | 13%/14% | 12%/7% | 10%/3% |
| Supportive care | Emollient cream; topical steroid creams | Emollient cream; topical steroid creams; cytopenia monitoring; mouthwashes as needed | Emollient cream; topical steroid creams; prophylactic antibiotics; anticoagulation considerations |
| Schedule | Daily oral tablet; visits every 2–3 months | Daily oral osimertinib plus IV platinum-pemetrexed every 3 weeks/daily oral osimertinib | Daily oral lazertinib plus amivantamab infusion weekly for the first 4 weeks, then every 2 weeks/daily oral osimertinib |
| Relative financial burden | $/comparator EGFR TKI | $$/osimertinib monotherapy | $$$$/osimertinib |
| Study | Cohort/Context | Key Numbers | Clinical/Radiographic Signal | Main Message |
|---|---|---|---|---|
| Hu et al., 2017 [128] | Large plasma NGS cohort All cancer types N = 31,414 | 48 likely germline T790M carriers (0.15%); 43 had non-squamous NSCLC | cfDNA pattern/allele fraction raised suspicion | cfDNA can flag possible germline T790M; confirm with normal DNA. |
| Oxnard et al./INHERIT 2023 [129] | Confirmed/obligate germline EGFR carriers 39 kindreds N = 91 | 55% developed lung cancer; 95% of tested tumors had a second somatic EGFR driver | 52% of evaluable carriers diagnosed by age 60; 60% of unaffected carriers had lung nodules | Characterizes a family-enriched predisposition phenotype; supports two-hit/field-effect model. |
| Pan et al., 2024 (MD Anderson) [137] | Germline EGFR-associated lung adenocarcinoma N = 22 | 95.5% had germline T790M; osimertinib mPFS 20.4 mo, OS 82.0 mo | 72.7% had multifocal GGOs | Modern radiographic and outcomes dataset. |
| Melikova et al., 2025 [141] | Single-center Azerbaijani NSCLC cohort N = 507 | 11 confirmed germline T790M carriers (2.1%) | Positive family history; more often stage I-II than somatic T790M | Suggests international variation; caution for enrichment bias. |
| O’Brien et al., 2026 (Duke/Southeastern US) [140] | Duke + CATHGEN/All of Us/gnomAD/UK Biobank comparisons | Germline EGFR T790M prevalence >1 in 3000 in Duke catchment area | Enriched relative to external population datasets | Supports regional enrichment/possible founder effect. |
| Govindan et al., 2026 [142] | Paired tumor-normal sequencing Primary lung cancers N = 11,740 | P/LP germline alterations: 4.8% smokers; 5.8% never-smokers | EGFR alterations enriched in never-smoker, somatic EGFR-altered tumors | Places germline EGFR in the broader lung cancer germline landscape. |
| Variant (Evidence Level) | Clinical Clues | Second Hit/Biology | Clinical Takeaway | Refs |
|---|---|---|---|---|
| T790M (best defined) | Familial LUAD; multifocal GGOs/nodules; pretreatment or high-VAF T790M | Second EGFR driver common, often L858R or exon 19 deletion | Confirm in normal DNA; genetics referral and cascade testing; interpret baseline T790M carefully. | [127,128,129,130,131,132,133,134,135,136,137,138,139,140,141,142,143] |
| L858R (emerging) | Rare de novo syndrome; skin/hair phenotype; bilateral pulmonary nodules | V834L second hit described | Variant-specific; preventive EGFR inhibition is not established. | [156] |
| V843I (familial reports) | Familial LUAD; multiple primary tumors | L858R, L861Q, or cis L858R described | Supports two-hit model beyond T790M; TKI sensitivity remains uncertain. | [147,148,149,150] |
| R776H/R776G (emerging) | Familial or multifocal cases; suspicious VAF | Additional somatic EGFR drivers described | Confirm if suspicious; treatment is case-specific. | [151,152,153,154,155] |
| Other EGFR variants (limited/uncertain) | A871E, P848L, K757R, G863D, D1014N, T725M | Mostly case-level data | Do not assume T790M-equivalent risk without stronger evidence. | [157,158,159,160,161] |
| ERBB2/HER2 G660D (comparator) | Familial LUAD in one Japanese family | EGFR-family signaling; not an EGFR variant | Discuss separately from germline EGFR-associated lung cancer. | [162] |
| Study/Focus | Population | Key Germline Finding | Clinical Relevance |
|---|---|---|---|
| Parry et al., 2017 [175] Early signal beyond EGFR | LUAD cases N = 555 | 2.5% had pathogenic variants; genes included ATM, TP53, BRCA2, EGFR, PARK2. | Inherited susceptibility in LUAD extends beyond EGFR. |
| Mukherjee et al., 2022 [174] Paired tumor-normal cohort | Advanced lung cancer N = 5118 | 4.3% had high- or moderate-penetrance PGVs; biallelic tumor inactivation was frequent. | Germline findings may affect tumor biology, not only family risk. |
| Peng et al., 2022 [176] Diverse cohort | Chinese lung cancer cohort N = 1794 | 106/1794 (5.9%) carried P/LP variants; BRCA2 and DDR genes were represented. | Supports ancestry-aware interpretation and more diverse datasets. |
| Govindan et al., 2026 [142] Large paired tumor-normal cohort | Primary lung cancers N = 11,740 | P/LP germline alterations: 4.8% in smokers and 5.8% in never-smokers. | Places germline EGFR within the broader lung cancer germline landscape. |
| GERMLUNG 2024 [177] Selected/enriched cohort | Selected LUAD N = 201 | Approximately one-fifth carried P/LP germline variants. | Clinical selection criteria can enrich for germline predisposition. |
| INHERITY LC 2026 [145] Testing/cascade workflow | Selected Hispanic NSCLC cohort, N = 145 | 15/145 (10.3%) had PGVs; cascade testing identified unaffected relatives. | Shows practical value of genetics referral and cascade testing. |
| Cho et al., 2025 [178] Young-onset disease | Early-onset LUAD N = 348 Comparator: N = 1425 later-onset LUAD | TP53 and BRCA2 GPVs enriched in early-onset LUAD; ALKBH2 identified in larger case–control analysis. | Supports germline evaluation in young-onset LUAD. |
| GELCC/Liu et al., 2025 [179] High-risk families | Familial lung cancer N = 120 | Rare high-penetrance variants identified; pathways included mucin-type O-glycosylation and DDR. | Expands familial lung cancer biology beyond EGFR and canonical DDR genes. |
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Zhang, J.; Zha, L.; Liang, R.; Li, T. Prevalence and Clinical Implications of Somatic and Germline EGFR Mutations in Patients with Non-Small-Cell Lung Cancer. Cancers 2026, 18, 2417. https://doi.org/10.3390/cancers18152417
Zhang J, Zha L, Liang R, Li T. Prevalence and Clinical Implications of Somatic and Germline EGFR Mutations in Patients with Non-Small-Cell Lung Cancer. Cancers. 2026; 18(15):2417. https://doi.org/10.3390/cancers18152417
Chicago/Turabian StyleZhang, Jingyao, Linjun Zha, Ruqiang Liang, and Tianhong Li. 2026. "Prevalence and Clinical Implications of Somatic and Germline EGFR Mutations in Patients with Non-Small-Cell Lung Cancer" Cancers 18, no. 15: 2417. https://doi.org/10.3390/cancers18152417
APA StyleZhang, J., Zha, L., Liang, R., & Li, T. (2026). Prevalence and Clinical Implications of Somatic and Germline EGFR Mutations in Patients with Non-Small-Cell Lung Cancer. Cancers, 18(15), 2417. https://doi.org/10.3390/cancers18152417

