Submitted:
20 August 2025
Posted:
01 September 2025
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Abstract
Background: The aim of this study was to present the technique and preliminary results of efficacy and safety for single-fraction SBRT for LAPC using Total Intravenous Anaesthesia and Optical Surface Guidance as motion management. Methods: Fifty-five patients were treated with SBRT in a single-fraction receiving median BED10 = 128.9 Gy. Forty-two patients received systemic treatment. End points were OS, FFLP, PFS, and toxicity. Actuarial survival analysis and univariate analysis were investigated. Results: Median follow-up was 15 months. Mean OS was 26.7 months. One-year FFLP and 1-year OS were 100% and 90.9%, respectively. Median PFS was 18 months, and 1-year PFS was 85.5%. Thirty-five patients (63.6%) were alive at the time of analysis. No acute/late toxicity > G2/G1 was reported. Conclusions: SBRT for LAPC using Total Intravenous Anaesthesia and Optical Surface Guidance presented as an effective and safe treatment with very low toxicity.
Keywords:
1. Introduction
2. Materials and Methods
2.1. Patients

2.2. Patients’ Preparations for the Treatment (Title - Impossible to Revise)
2.3. Total Intravenous Anaesthesia with Assist-Control Mechanical Ventilation
2.4. Optical Surface Guidance
2.5. Tumour Movements During SBRT in TIVA Controlled BH - Assessed by Calypso System
- Movement Analysis and Positioning Accuracy: TIVA controlled BH achieved the smallest geometric displacement (0.05 cm) and rotation (3.8 degrees), indicating improved positioning stability.
- Movement Tracking and Treatment Time: TIVA controlled BH reduces median radial movement during treatment to 0.26 cm with a total treatment time of 46.2 minutes (~2 hours), compared to FB and voluntary BH which have higher movement and longer treatment times. During beam-on, TIVA controlled BH showed the lowest median radial movement (0.1 cm) and longest average treatment interval (19.5 s), indicating better motion control
- Movement Histograms and Data Visualization: Normalized histograms of tracking movement during all treatment phases and beam-on periods confirmed reduced motion with TIVA controlled BH compared to FB and voluntary BH, supporting improved treatment precision.
- Clinical Implications and Future Directions: TIVA controlled BH reduced uncertainties, improved repeatability and imaging, enabling single-fraction treatment with elective lymph nodes irradiation, and eliminating the need for fiducials.
2.6. Stereotactic Ablative Radiotherapy
- The mean dose to the SIB-PTV was considerably higher than the prescription dose,
- No planning constraints on the dose maximums were set, as long as they were inside the SIB-PTV.
- The optimization of the dose distribution was performed with the purpose of achieving a required target coverage of V(98–99.5%) = 80% of the prescribed dose for the SIB-PTV.
- Σ = 0.4 mm, as determined by end-to-end tests; for systemic error
- σ = 2 mm, defined as gating windows; for random error.
- Primary (directly adjacent to pancreas and highly radiosensitive) OARs: (stomach, duodenum, small bowel)
- 2. Other OARs (liver, great vessels, spinal cord, kidneys)
2.7. Response Evaluation and Follow-Up
2.8. Statistical Analysis
3. Results
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| SBRT | Stereotactic body radiotherapy |
| SABR | Stereotactic ablative radiotherapy |
| LC | Local control |
| BED | Biologically Effective Dose |
| OS | Overall survival |
| FB | Free breathing |
| ITV | Internal Tumour Volume |
| BH | Breath hold |
| CTV | Clinical target volume |
| PTV | Planning target volume |
| MRI | Magnetic resonance imaging |
| LAPC | Locally advanced pancreatic cancer |
| TIVA | Total Intravenous Anaesthesia |
| ACMV | Assist-Control Mechanical Ventilation |
| OSG | Optical surface guidance |
| OAR | Organs at risk |
| ECOG PS | Eastern Cooperative Oncology Group Performance Status |
| MDT | Multidisciplinary team |
| NCCN | National Comprehensive Cancer Network |
| MSCT | Multi-Slice Computed Tomography |
| PET/CT | Positron emission tomography/computed tomography |
| ASA | American Society of Anaesthesiology |
| NIPB | Non-invasive blood pressure |
| IBP | Invasive arterial pressure |
| CBCT | Cone beam CT |
| IG | Image guidance |
| DBC | Default body contour |
| ROI | Region of interest |
| GTV | Gross tumour volume |
| ESTRO | European Society for Radiotherapy and Oncology |
| ASTRO | American Society for Radiation Oncology |
| SIB | Simultaneous integrated boost |
| NCI | National Cancer Institute |
| CTCAE | Common Terminology Criteria for Adverse Events |
| FFLP | Freedom from local progression |
| PFS | Progression-free survival |
| CI | Confidence interval |
| GI | Gastrointestinal |
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| Primary OAR (Stomach, Duodenum, Small Bowel) |
Dmax (0.03 cm3) < 23 Gy V(20 Gy) < 3.3 cm3 V(15 Gy) < 9.1 cm3 |
|---|---|
| Liver | V(9.1 Gy) < 700 cm3 |
| Great Vessels | Dmax < 37 Gy |
| Spinal Cord | Dmax < 14 Gy |
| Kidneys | V(8.4 Gy) < 200 cm3 |
| End Points | Median/Mean | 1 Year |
| FFLP | 23 months * | 100% |
| PFS | 12 months (95% CI: 9.5 to 14.4) | 85.5% |
| OS | 26.7 months ** (95% CI: 23,5 to 29,9) | 90.9% |
| Acute (patients, %) | Late (patients, %) | |
|---|---|---|
| Grade 1 | 35 (63.6%) | 4 (7.3%) |
| Grade 2 | 9 (16.4%) | none |
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