Comparative Efficacy and Safety of First-Line Immune Checkpoint Inhibitors Plus Chemotherapy with or Without Bevacizumab in Advanced Non-Squamous Non-Small Cell Lung Carcinoma
Simple Summary
Abstract
1. Introduction
2. Methods
2.1. Inclusion Criteria and Data Collection of Real-World Cohort
2.2. Study Eligibility and Data Extraction of Meta-Analysis
2.3. Endpoints and Statistical Analysis
3. Results
3.1. Clinical Characteristics of the Real-World Cohort
3.2. Survival Analyses of the Real-World Cohort
3.3. Subgroup Analyses of the Real-World Cohort
3.4. Characteristics of Included Clinical Trials of Meta-Analysis
3.5. Meta-Analysis of Survival and Tumor Response
3.6. Toxicity
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| NSCLC | Non-Small Cell Lung Carcinoma |
| EGFR | Epidermal Growth Factor Receptor |
| ALK | Anaplastic Lymphoma Kinase |
| I + C | Immune Checkpoint Inhibitors combined with Chemotherapy |
| PFS | Progression-Free Survival |
| HR | Hazard Ratio |
| ORR | Objective Response Rate |
| OS | Overall Survival |
| PD-L1 | Programmed Death-Ligand 1 |
| VEGF | Vascular Endothelial Growth Factor |
| I + C + B | Immune Checkpoint Inhibitors plus Chemotherapy and Bevacizumab |
| AEs | Adverse Events |
| RR | Relative Risk |
| CIs | Confidence Intervals |
| PSM | Propensity Score Matching |
| SMDs | Standardized Mean Differences |
| SD | Stable Disease |
| CR | Complete Response |
| PR | Partial Response |
| PD | Progressive Disease |
| RECIST | Response Evaluation Criteria in Solid Tumors |
| CNS | Central Nervous System |
| SEER | Surveillance Epidemiology and End Results |
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| Characteristics | Before PSM | After PSM | ||||
|---|---|---|---|---|---|---|
| I + C | I + C + B | p Value | I + C | I + C + B | p Value | |
| (N = 110) | (N = 167) | (N = 80) | (N = 80) | |||
| Sex | 0.798 | 0.853 | ||||
| Female | 28 (25.5%) | 39 (23.4%) | 20 (25.0%) | 18 (22.5%) | ||
| Male | 82 (74.6%) | 128 (76.7%) | 60 (75.0%) | 62 (77.5%) | ||
| Age, years (Q1, Q3) | 0.050 | 0.693 | ||||
| 60 (54, 68) | 58 (52, 65) | 60 (54, 65) | 59 (54, 66) | |||
| History of smoking | 0.771 | 0.769 | ||||
| No | 54 (49.1%) | 87 (52.1%) | 39 (48.8%) | 42 (52.5%) | ||
| Yes | 48 (43.6%) | 71 (42.5%) | 35 (43.8%) | 34 (42.5%) | ||
| Unknown | 8 (7.3%) | 9 (5.4%) | 6 (7.5%) | 4 (5.0%) | ||
| History of alcohol intake | 0.922 | 0.384 | ||||
| No | 86 (78.2%) | 129 (77.3%) | 65 (81.3%) | 60 (75.0%) | ||
| Yes | 15 (13.6%) | 22 (13.2%) | 8 (10.0%) | 14 (17.5%) | ||
| Unknown | 9 (8.2%) | 16 (9.6%) | 7 (8.8%) | 6 (7.5%) | ||
| Liver metastasis | 0.993 | 0.839 | ||||
| No | 92 (83.6%) | 141 (84.4%) | 64 (80.0%) | 66 (82.5%) | ||
| Yes | 18 (16.4%) | 26 (15.6%) | 16 (20.0%) | 14 (17.5%) | ||
| Brain metastasis | 0.096 | 1.000 | ||||
| No | 86 (78.2%) | 114 (68.3%) | 63 (78.8%) | 63 (78.8%) | ||
| Yes | 24 (21.8%) | 53 (31.7%) | 17 (21.3%) | 17 (21.3%) | ||
| Bone metastasis | 0.807 | 0.872 | ||||
| No | 67 (60.9%) | 98 (58.7%) | 46 (57.5%) | 48 (60.0%) | ||
| Yes | 43 (39.1%) | 69 (41.3%) | 34 (42.5%) | 32 (40.0%) | ||
| Intrapulmonary metastasis | 0.843 | 1.000 | ||||
| No | 77 (70.0%) | 120 (71.9%) | 57 (71.3%) | 57 (71.3%) | ||
| Yes | 33 (30.0%) | 47 (28.1%) | 23 (28.8%) | 23 (28.8%) | ||
| Other metastases * | 0.962 | 1.000 | ||||
| No | 90 (81.8%) | 135 (80.8%) | 63 (78.8%) | 62 (77.5%) | ||
| Yes | 20 (18.2%) | 32 (19.2%) | 17 (21.3%) | 18 (22.5%) | ||
| Number of metastases | 0.736 | 0.424 | ||||
| 1 | 65 (59.1%) | 94 (56.3%) | 49 (61.3%) | 43 (53.8%) | ||
| >1 | 45 (40.9%) | 73 (43.7%) | 31 (38.8%) | 37 (46.3%) | ||
| Pleural and pericardial effusion | 0.209 | 0.215 | ||||
| No | 76 (69.1%) | 128 (76.7%) | 62 (77.5%) | 54 (67.5%) | ||
| Yes | 34 (30.9%) | 39 (23.4%) | 18 (22.5%) | 26 (32.5%) | ||
| ECOG performance status | 0.298 | 0.635 | ||||
| 0 | 47 (42.7%) | 82 (49.1%) | 37 (46.3%) | 41 (51.3%) | ||
| 1~2 | 63 (57.3%) | 85 (50.9%) | 43 (53.8%) | 39 (48.8%) | ||
| Chemotherapy regimen | <0.001 | 0.249 | ||||
| Pemetrexed and platinum † | 82 (74.6%) | 71 (42.5%) | 52 (65.0%) | 48 (60.0%) | ||
| Paclitaxel and platinum | 26 (23.6%) | 96 (57.5%) | 26 (32.5%) | 32 (40.0%) | ||
| Others | 2 (1.8%) | 0 (0.0%) | 2 (2.5%) | 0 (0.0%) | ||
| Pathology | 0.412 | 1.000 | ||||
| Adenocarcinoma | 110 (100.0%) | 164 (98.2%) | 80 (100.0%) | 79 (98.8%) | ||
| Others ‡ | 0 (0.0%) | 3 (1.8%) | 0 (0.0%) | 1 (1.3%) | ||
| PD-L1 expression ※ | 0.450 | 0.548 | ||||
| <1% | 24(21.8%) | 28(16.8%) | 17(21.3%) | 12(15.0%) | ||
| ≥1% | 40(36.4%) | 58(34.7%) | 29(36.3%) | 29(36.3%) | ||
| Miss | 46(41.8%) | 81(48.5%) | 34(42.5%) | 39(48.8%) | ||
| Study | Year | Phase | Treatment Strategies | Sample Size | Primary Endpoint | EGFR/ALK Wild-Type Subgroup PFS HR (95% CI) | EGFR/ALK Wild-Type Subgroup OS HR (95% CI) | EGFR/ALK Wild-Type Subgroup Median PFS (95% CI) | EGFR/ALK Wild-Type Subgroup Median OS HR (95% CI) | Any Grade AEs | Grade 3–5 AEs |
|---|---|---|---|---|---|---|---|---|---|---|---|
| APPLE | 2024 | III | I + C + B | 143 | PFS | 0.97 (0.75–1.25) | 0.99 (0.71–1.38) | 9.3 (7.7–11.6) | 28.0 (23.1–32.4) | 99.0% | 55.1% |
| I + C | 144 | 9.5 (7.6–23.8) | 26.9 (22.0-NR) | 99.5% | 56.6% | ||||||
| ONO-4538-52 | 2023 | III | I + C + B | 275 | OS | 0.56 (0.43–0.71) | 0.74 (0.58–0.94) | 12.1 (9.8–14.0) | 30.8 (26.8–34.7) | 98.5% | 74.7% |
| C + B | 275 | NA | NA | NA | NA | ||||||
| IMpower151 | 2023 | III | I + C + B | 71 | PFS | 0.81 (0.55–1.19) | NA | 10.4 (7.6–13.3) | NA | 99.3% | 74.3% |
| C + B | 71 | NA | NA | NA | NA | ||||||
| IMpower150 | 2019 | III | I + C + B | 359 | PFS, OS, Safety | 0.57 (0.48–0.67) * | 0.80 (0.67–0.95) * | 8.3 (7.7–9.8) | 19.5 (17.0–22.2) | 98.2% | 71.5% |
| I + C | 350 | 0.82 (0.70–0.97) * | 0.84 (0.71–1.00) * | 6.3 (5.6–7.0) | 19.0 (15.7–21.5) | 97.8% | 63.1% | ||||
| C + B | 338 | NA | NA | NA | NA |
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Chen, P.; Wang, M.; Peng, S.; Zhu, H.; Wang, Y.; Wan, Z.; Yang, X.; Yu, Z.; Zhou, Y. Comparative Efficacy and Safety of First-Line Immune Checkpoint Inhibitors Plus Chemotherapy with or Without Bevacizumab in Advanced Non-Squamous Non-Small Cell Lung Carcinoma. Curr. Oncol. 2026, 33, 173. https://doi.org/10.3390/curroncol33030173
Chen P, Wang M, Peng S, Zhu H, Wang Y, Wan Z, Yang X, Yu Z, Zhou Y. Comparative Efficacy and Safety of First-Line Immune Checkpoint Inhibitors Plus Chemotherapy with or Without Bevacizumab in Advanced Non-Squamous Non-Small Cell Lung Carcinoma. Current Oncology. 2026; 33(3):173. https://doi.org/10.3390/curroncol33030173
Chicago/Turabian StyleChen, Ping, Mengchi Wang, Siyan Peng, Honglin Zhu, Yanming Wang, Zixuan Wan, Xuan Yang, Zhixin Yu, and Yixin Zhou. 2026. "Comparative Efficacy and Safety of First-Line Immune Checkpoint Inhibitors Plus Chemotherapy with or Without Bevacizumab in Advanced Non-Squamous Non-Small Cell Lung Carcinoma" Current Oncology 33, no. 3: 173. https://doi.org/10.3390/curroncol33030173
APA StyleChen, P., Wang, M., Peng, S., Zhu, H., Wang, Y., Wan, Z., Yang, X., Yu, Z., & Zhou, Y. (2026). Comparative Efficacy and Safety of First-Line Immune Checkpoint Inhibitors Plus Chemotherapy with or Without Bevacizumab in Advanced Non-Squamous Non-Small Cell Lung Carcinoma. Current Oncology, 33(3), 173. https://doi.org/10.3390/curroncol33030173

