Cardiac Magnetic Resonance Findings and Their Association with Clinical Outcomes in Pediatric Pulmonary Arterial Hypertension: An Exploratory Study
Abstract
1. Introduction
2. Material and Methods
2.1. Study Design
2.2. Data Collection
2.3. Cardiac Magnetic Resonance
2.4. Statistical Analysis
3. Results
4. Discussion
5. Limitations
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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| Assessment | Sequence | Plane | Aim |
|---|---|---|---|
| Anatomy | |||
| Scout images | Axial, sagittal, and coronal | Morphology (hypertrophy, akinesia, hypokinesia, septal shift, the diameter of aorta and pulmonary arteries) | |
| Cine SSFP | 2-C, 3-C, 4-C, LVOT, RV-2C, RV-3C, RVOT, RVOT cross-cut | ||
| 3D-Whole heart | 3D volume covering the heart and lung fields | ||
| Function | |||
| SAX cine SSFP | A stack of short-axis slices from the base of the heart to the apex | EF, SV, EDV and ESV of the ventricle, LVCO, LV and RV mass | |
| Flow | 2D-phase contrast CMR | Aa, MPA, RPA, LPA | PARF, mvPA, Qp/Qs, RPA, and LPA flow distribution |
| Viability | LGE | SAX, 4-C | Scar |
| Data * | |
|---|---|
| Gender | Female = 24 (66.7%) Male = 11 (30.6%) |
| Age (years) | 13.1 (6.4–17.6) |
| Height (cm) | 158 (101–175) |
| Weight (kg) | 42 (24–87) |
| BSA (m2) | 1.32 (0.9–2.0) |
| Follow-up (months) | 14 (2–29) |
| Diagnosis | |
| IPAH | 19 (52.7%) |
| PAH-CHD | 16 (44.4%) |
| Porto-systemic shunt | 1 (2.8%) |
| Medication use duration (months) | 4.2 (2–18.4) |
| Anti-PAH | |
| Single | 16 (44.4%) |
| Multiple | 20 (55.5%) |
| NYHA class | |
| 1 | None |
| 2 | 16 (44.4%) |
| 3 | 14 (38.8) |
| 4 | 6 (16.7) |
| Six-minute walking test | |
| Distance (m) | 450 (150–650) |
| SpO2 before the test | 94 (63–100) |
| SpO2 after the test | 86 (40–98) |
| SpO2 differences | 6.5 (0–31) |
| BNP (pg/mL) | 360 (0–11,490) |
| IPAH (n = 19) | PAH Associated Heart Disease (n = 17) | p Value | |
|---|---|---|---|
| RV | |||
| EF (%) | 52 (22–82) | 54 (24–77) | 0.585 |
| EDVi (mL/m2) | 88 (36–221) | 86 (39–201) | 0.562 |
| ESVi (mL/m2) | 41 (10–142) | 41 (16–152) | 0.765 |
| SVi (mL/m2) | 44 (18–79) | 41 (23–75) | 0.476 |
| RVMi (gr) | 42 (12–168) | 39 (23–89) | 0.890 |
| LV | |||
| EF (%) | 63 (49–85) | 58 (31–85) | 0.196 |
| EDVi (mL/m2) | 56 (25–136) | 61 (40–168) | 0.253 |
| ESVi (mL/m2) | 17 (4–53) | 28 (6–65) | 0.169 |
| SVi (mL/m2) | 32 (21–83) | 36 (15–103) | 0.497 |
| COI (mL/m2) | 2.9 (1.3–7.1) | 3.1 (2.4–13.9) | 0.086 |
| LVMi (gr) | 49 (30–90) | 56 (21–102) | 0.227 |
| VMI | 0.74 (0.19–4) | 0.221 | |
| RV/LV EDVi | 1.82 (0.71–4.59) | 1.10 (0.56–3.65) | 0.175 |
| RV/LV ESVi | 2.31 (0.53–19.17) | 1.25 (0.70–13.8) | 0.233 |
| RAVi (mL/m2) | 37 (10–111) | 28 (14–66) | 0.235 |
| Flow | |||
| mvPA (cm/s)) | 85 (44–140) | 85 (49–162) | 0.930 |
| PARF (%) | 2 (0–10) | 1 (0–10) | 0.642 |
| Qp: Qs | 0.7 (0.4–0.8) | 0.8 (0.3–0.9) | 0.413 |
| PA/Ao ratio | 1.5 (0.8–3.2) | 1.4 (0.9–2.8) | 0.726 |
| SCDI | 43 (0–80) | 38 (0–90) | 0.905 |
| RAC (%) | 22 (7–34) | 11 (4–33) | 0.177 |
| Univariate Analysis | ||
|---|---|---|
| OR (95% CI) | p Value | |
| RV | ||
| EF (%) | 0.87 (0.76–0.99) | 0.045 |
| EDVi (mL/m2) | 1.02 (1.00–1.05) | 0.054 |
| ESVi (mL/m2) | 1.03 (1.00–1.06) | 0.036 |
| SVi (mL/m2) | 0.98 (0.91–1.05) | 0.587 |
| RVMi (gr) | 1.06 (1.00–1.12) | 0.043 |
| LV | ||
| EF (%) | 1.20 (1.03–1.39) | 0.089 |
| EDVi (mL/m2) | 0.92 (0.83–1.02) | 0.148 |
| ESVi (mL/m2) | 0.75 (0.57–0.98) | 0.040 |
| SVi (mL/m2) | 1.01 (0.96–1.06) | 0.669 |
| COi (L/min/m2) | 1.09 (0.75–1.61) | 0.628 |
| LVMi (gr) | 0.98 (0.92–1.04) | 0.527 |
| Ratios | ||
| VMI (RVMi/LVMi) | 3.55 (1.22–10.57) | 0.020 |
| RV/LV EDVi ratio | 3.92 (1.45–13.47) | 0.065 |
| RV/LV ESVi ratio | 1.57 (1.03–2.40) | 0.089 |
| RAVi (mL/m2) | 1.01 (0.97–1.05) | 0.478 |
| Flow study | ||
| mvPA (cm/s)) | 0.96 (0.90–1.02) | 0.187 |
| PARF (%) | 1.18 (0.85–1.64) | 0.307 |
| Qp:Qs | 0.01 (0.0001–1.91) | 0.089 |
| Tissue characterization (LGE) | ||
| RV-LV insertion (basal) | 0.29 (0.04–1.84 | 0.191 |
| RV-LV insertion (mid-ventricular) | 0.58 (0.09–3.68) | 0.566 |
| Septal extending | 0.61 (0.05–7.12) | 0.700 |
| PA/Ao ratio | 0.79 (0.07–8.21) | 0.850 |
| SCDI | 1.01 (0.97–1.04) | 0.535 |
| RAC (%) | 1.05 (0.92–1.21) | 0.412 |
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Beyazal, M.; Keceli, M.; Dogan, O.; Ece, I. Cardiac Magnetic Resonance Findings and Their Association with Clinical Outcomes in Pediatric Pulmonary Arterial Hypertension: An Exploratory Study. J. Clin. Med. 2026, 15, 1107. https://doi.org/10.3390/jcm15031107
Beyazal M, Keceli M, Dogan O, Ece I. Cardiac Magnetic Resonance Findings and Their Association with Clinical Outcomes in Pediatric Pulmonary Arterial Hypertension: An Exploratory Study. Journal of Clinical Medicine. 2026; 15(3):1107. https://doi.org/10.3390/jcm15031107
Chicago/Turabian StyleBeyazal, Meryem, Merter Keceli, Oguzhan Dogan, and Ibrahim Ece. 2026. "Cardiac Magnetic Resonance Findings and Their Association with Clinical Outcomes in Pediatric Pulmonary Arterial Hypertension: An Exploratory Study" Journal of Clinical Medicine 15, no. 3: 1107. https://doi.org/10.3390/jcm15031107
APA StyleBeyazal, M., Keceli, M., Dogan, O., & Ece, I. (2026). Cardiac Magnetic Resonance Findings and Their Association with Clinical Outcomes in Pediatric Pulmonary Arterial Hypertension: An Exploratory Study. Journal of Clinical Medicine, 15(3), 1107. https://doi.org/10.3390/jcm15031107

