FGFR3 Alterations and Nectin-4 Expression as Therapeutic Biomarkers in Bladder Cancer: A Systematic Review and Single-Arm Meta-Analysis
Abstract
1. Introduction
2. Methods
2.1. Eligibility Criteria
2.2. Search Strategy and Data Extraction
2.3. Endpoints and Subgroup Analyses
2.4. Quality Assessment
2.5. Statistical Analysis
3. Results
3.1. Study Selection and Baseline Characteristics
| Study/Characteristics | Design | Level of Evidence | Geographic Region | No. of Patients | FGFR3 alt | Nectin-4 Exp. | Age * | Males % | Race | ECOG Status | Metastases | Tumor Stage |
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Guercio et al. 2023 [30] | Prospective observational | 2b | Multicountry | 1030 | 274 | N/A | 67.8 | 65 | Caucasian; Non-Hispanic: 90% | NR | NR | Non-muscle-invasive |
| Miyake et al. 2025 [27] | Multimodal translational | 2b | Japan and USA | 70 | N/A | 67 | 67 | N/A | NR | NR | NR | Muscle-invasive |
| Catto et al. 2024 [20] | Randomized controlled trial | 1b | Multicountry | 882 | 336 | N/A | 69 | 76 | White: 55%; Asian: 25%; NR: 20% | 0–80% 1–20% | NR | Non-muscle-invasive |
| Loriot Y. et al. 2023 [22] | Randomized controlled trial | 1b | Multicountry | 177 | 177 | N/A | 66 | 70 | White: 60%; Asian: 27% | 0–46% 1–43% 2–9% | 74% | Advanced/metastatic |
| Siefker-Radtke et al. 2024 [21] | Randomized controlled trial | 1b | Multicountry | 264 | 264 | N/A | 67 | 81 | White: 54%; Asian: 21%; NR: 22% | 0–51% 1–42% 2–6% | 67% | Advanced/metastatic |
| Ueki H. et al. 2022 [11] | Retrospective observational | 2b | Japan | 23 | N/A | 18 | 68 | 78 | Asian | 0.1–83% 2.3–17% | 57% | Advanced/metastatic |
| Gupta et al. 2025 [25] | Retrospective observational | 2b | USA | 1048 | 176 | N/A | 72 | 71 | White: 76%; Other: 12% | 0–40% 1–41% 2–18% | NR | Advanced/metastatic |
| Teo et al. 2020 [26] | Retrospective observational | 2b | USA | 151 | 23 | N/A | 67 | 70 | NR | 0–80% 1–20% | 70% | Muscle-invasive |
| Rose et al. 2021 [29] | Retrospective observational | 2b | USA | 88 | 17 | N/A | 72 | 60 | White: 76%; Black: 18% | 0–23% 1–35% 2–24% | 60% | Advanced/metastatic |
| Reverdy et al. 2025 [24] | Retrospective observational | 2b | France | 142 | 47 | N/A | 71 | 74 | White | 0.1–88% 2–12% | 48% | Advanced/metastatic |
| Hsueh et al. 2025 [23] | Retrospective observational | 2b | Taiwan | 37 | N/A | 25 | 63 | 50 | Asian | 0–25% 1–70% 2–5% | 55% | Advanced/metastatic |
| Klumper N. et al. 2023 [31] | Retrospective observational | 2b | Germany | 137 | NR | 110 | 68 | 65 | NR | NR | NR | Muscle-invasive |
| Necchi A. et al. 2024 [10] | Prospective observational | 2b | Multicountry | 173 | 134 | NR | 69 | 77 | White: 62%; Asian: 12%; NR: 22% | 0–34% 1–52% 2–13% | 70% | Advanced/metastatic |
| Olah et al. 2025 [28] | Retrospective observational | 2b | Multicountry | 23 | NR | 18 | 69 | 77 | NR | NR | 5% | Muscle-invasive |
| Study (Author, Year) | Study Design | N | Population | Treatment Context | Biomarker | Assessment Method | Key Findings |
|---|---|---|---|---|---|---|---|
| Gupta et al., 2025 [25] | Real-world clinicogenomic cohort | 1048 | mUC | ICPI/chemotherapy | FGFR3; TMB | Hybrid-capture NGS/CGP | FGFR3 alone not predictive; FGFR3 + high TMB may predict ICPI benefit |
| Teo et al., 2020 [26] | Retrospective cohort analysis | 151 | MIBC/mUC | Platinum-based chemotherapy | FGFR3 | MSK-IMPACT NGS; TCGA genomic data | FGFR3 alteration linked to poorer NAC response; no clear impact in mUC |
| Rose et al., 2021 [29] | Retrospective | 88 | mUC | ICPI | FGFR3 | DNA and RNA sequencing | FGFR3 alterations did not predict ICB response or survival |
| Reverdy et al., 2025 [24] | Multicenter retrospective cohort | 142 | mUC | First-line platinum-based chemotherapy ± ICI | FGFR3 | NGS/local genomic testing | FGFR3 status did not predict PFS, OS, or ORR with platinum chemotherapy |
| Necchi et al., 2024 [10] | Phase II single-arm trial | 173 | Unresectable/mUC | Pemigatinib | FGFR3 | Genomic testing | Pemigatinib showed modest activity in FGFR3-altered UC |
| Siefker-Radtke et al., 2024 [21] | Phase III RCT | 264 | mUC | Erdafitinib vs. pembrolizumab | FGFR3 | Central/local genomic testing | Erdafitinib improved ORR but not OS vs. pembrolizumab |
| Guercio et al., 2023 [30] | Real-world clinicogenomic cohort | 1030 | UC across disease states | Erdafitinib/ICI | FGFR2/3 | MSK-IMPACT NGS; cfDNA MSK-ACCESS | FGFR3 varied by disease state; erdafitinib ORR: 40%; short PFS |
| Catto et al., 2024 [20] | Phase II randomized trial | 882 | High-risk NMIBC | Erdafitinib vs. intravesical chemotherapy | FGFR3/2 | Genomic testing | Erdafitinib improved RFS vs. intravesical chemotherapy |
| Loriot et al., 2023 [22] | Phase III RCT | 177 | mUC | Erdafitinib vs. chemotherapy | FGFR3 | Central genomic testing | Erdafitinib improved OS and PFS vs. chemotherapy |
| Hsueh et al., 2025 [23] | Retrospective | 37 | mUC | First-line GC/Gcarbo | Nectin-4 | Immunohistochemistry (H-score) | High nectin-4 showed trend toward better PFS/OS, especially with GC |
| Klümper et al., 2023 [31] | Retrospective | 137 | UC with matched metastases; EV-treated mUC | Enfortumab vedotin | Nectin-4 | IHC (membranous expression; H-score) | Low/absent nectin-4 associated with EV resistance and shorter PFS |
| Oláh et al., 2025 [28] | Retrospective | 23 | MIBC | Perioperative platinum/EV relevance | Nectin-4 | IHC; membranous H-score | Nectin-4 varied by subtype; no OS association; low expression linked to greater platinum benefit |
| Miyake et al., 2025 [27] | Translational cohort study | 70 | MIBC | Chemotherapy/EV resistance | Nectin-4 | IHC; RNA-seq; RT-PCR/Western blot | Chemotherapy downregulated nectin-4; low nectin-4/basal subtype linked to worse prognosis |
| Ueki et al., 2022 [11] | Retrospective cohort | 23 | Advanced/metastatic UC | Pembrolizumab after chemotherapy | Nectin-4 | IHC; nectin-4 H-score/intensity | Strong nectin-4 expression associated with higher DCR |
3.2. Pooled Analyses of the Included Studies
3.2.1. FGFR3 Alteration


3.2.2. Narrative Synthesis
3.2.3. Nectin-4 Expression


3.3. Subgroup Analyses
3.3.1. Tumor Stage
FGFR3
Nectin-4


3.3.2. Study Design
FGFR3

3.3.3. ROB Assessment
FGFR3

Nectin-4

3.3.4. Geographic Region
FGFR3

Nectin-4

3.4. Quality Assessment


4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
| FGFR3 | Fibroblast growth factor receptor 3 |
| ICIs | Immune checkpoint inhibitors |
| PCR | Polymerase chain reaction |
| ADC | Antibody–drug conjugate |
| CAR-T | Chimeric antigen receptor T-cell therapy |
| EV | Enfortumab vedotin |
| ROB | Risk of bias |
| NMIBC | Non-muscle invasive bladder cancer |
| MIBC | Muscle-invasive bladder cancer |
| ROBINS-I | Risk of bias in non-randomized studies |
| REML | Restricted maximum likelihood |
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Antonov, P.; Raycheva, G.; Eshrefov, D.; Belov, A.; Uchikov, P.; Ivanov, A.; Popov, V.; Pacini, M.; Zucchi, A.; Nicolini, A.; et al. FGFR3 Alterations and Nectin-4 Expression as Therapeutic Biomarkers in Bladder Cancer: A Systematic Review and Single-Arm Meta-Analysis. Int. J. Mol. Sci. 2026, 27, 5007. https://doi.org/10.3390/ijms27115007
Antonov P, Raycheva G, Eshrefov D, Belov A, Uchikov P, Ivanov A, Popov V, Pacini M, Zucchi A, Nicolini A, et al. FGFR3 Alterations and Nectin-4 Expression as Therapeutic Biomarkers in Bladder Cancer: A Systematic Review and Single-Arm Meta-Analysis. International Journal of Molecular Sciences. 2026; 27(11):5007. https://doi.org/10.3390/ijms27115007
Chicago/Turabian StyleAntonov, Petar, Gabriela Raycheva, Denis Eshrefov, Angel Belov, Petar Uchikov, Atanas Ivanov, Veselin Popov, Matteo Pacini, Alessandro Zucchi, Andrea Nicolini, and et al. 2026. "FGFR3 Alterations and Nectin-4 Expression as Therapeutic Biomarkers in Bladder Cancer: A Systematic Review and Single-Arm Meta-Analysis" International Journal of Molecular Sciences 27, no. 11: 5007. https://doi.org/10.3390/ijms27115007
APA StyleAntonov, P., Raycheva, G., Eshrefov, D., Belov, A., Uchikov, P., Ivanov, A., Popov, V., Pacini, M., Zucchi, A., Nicolini, A., & Penchev, P. (2026). FGFR3 Alterations and Nectin-4 Expression as Therapeutic Biomarkers in Bladder Cancer: A Systematic Review and Single-Arm Meta-Analysis. International Journal of Molecular Sciences, 27(11), 5007. https://doi.org/10.3390/ijms27115007

