Radiological Assessment After Pancreaticoduodenectomy for a Precision Approach to Managing Complications: A Narrative Review
Abstract
:1. Introduction
2. Imaging Modalities
2.1. Computed Tomography
2.2. Magnetic Resonance Imaging
3. Biliary Leakage
4. Fluid Collections and Abscesses
5. Pancreatitis
6. Postoperative Hemorrhage
7. Postoperative Pancreatic Fistula
8. Anastomotic Strictures
9. Hepatic Complications
9.1. Steatosis
9.2. Hepatic Infarction
10. Splenic Complications
11. Peculiar Issue After Pancreaticoduodenectomy: Disease Recurrence
12. Imaging Strategy and Proposed Algorithm for Post-PD Complications
13. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Del Chiaro, M.; Presciuttini, S.; Bertacca, L.; Zerbi, A.; Longoni, B.M.; Giovannetti, A.; Cipollini, G.; Caligo, M.A.; Boggi, U.; Bevilacqua, G.; et al. Clinical Pancreatic Cancer. HPB 2005, 7, 76–90. [Google Scholar] [CrossRef]
- Grossberg, A.J.; Chu, L.C.; Deig, C.R.; Fishman, E.K.; Hwang, W.L.; Maitra, A.; Marks, D.L.; Mehta, A.; Nabavizadeh, N.; Simeone, D.M.; et al. Multidisciplinary standards of care and recent progress in pancreatic ductal adenocarcinoma. CA Cancer J. Clin. 2020, 70, 375–403. [Google Scholar] [CrossRef] [PubMed]
- Luchini, C.; Grillo, F.; Fassan, M.; Vanoli, A.; Capelli, P.; Paolino, G.; Ingravallo, G.; Renzulli, G.; Doglioni, C.; D’Amuri, A.; et al. Malignant epithelial/exocrine tumors of the pancreas: Review. Pathol.-J. Ital. Soc. Anat. Pathol. Diagn. Cytopathol. 2020, 112, 210–226. [Google Scholar] [CrossRef]
- Omar, I.; Miller, K.; Madhok, B.; Amr, B.; Singhal, R.; Graham, Y.; Pouwels, S.; Abu Hilal, M.; Aggarwal, S.; Ahmed, I.; et al. The first international Delphi consensus statement on Laparoscopic Gastrointestinal surgery. Int. J. Surg. 2022, 104, 106766. [Google Scholar] [CrossRef]
- Topkan, E.; Senyurek, S.; Kılic Durankus, N.; Ozturk, D.; Selek, U. Novel Somay’s GLUCAR Index Efficiently Predicts Survival Outcomes in Locally Advanced Pancreas Cancer Patients Receiving Definitive Chemoradiotherapy: A Propensity-Score-Matched Cohort Analysis. J. Pers. Med. 2024, 14, 746. [Google Scholar] [CrossRef]
- Valian, S.K.; Khorasanizadeh, F.; Kamyab, K.; Nourazar, S.; Montazeri, S.; Azizpour, A. Basal cell carcinoma and squamous cell carcinoma: Comparison of high-frequency ultrasound and pathology. Ski. Res. Technol. 2024, 30, e13897. [Google Scholar] [CrossRef]
- PancreasGroup.org Collaborative. Pancreatic surgery outcomes: Multicentre prospective snapshot study in 67 countries. Br. J. Surg. 2024, 111, znad330. [Google Scholar] [CrossRef]
- Brunner, M.; Loeser, I.; Weber, G.F.; Grützmann, R.; Krautz, C. Postoperative outcomes and their risk factors in left pancreatectomy with and without multivisceral resection. Sci. Rep. 2025, 15, 5504. [Google Scholar] [CrossRef]
- Jabłońska, B.; Mrowiec, S. Pancreatectomy and Pancreatic Surgery. Life 2023, 13, 1400. [Google Scholar] [CrossRef]
- Aaquist, T.; Fristrup, C.W.; Hasselby, J.P.; Hamilton-Dutoit, S.; Eld, M.; Pfeiffer, P.; Mortensen, M.B.; Detlefsen, S. Prognostic value of margin clearance in total and distal pancreatectomy specimens with pancreatic ductal adenocarcinoma in a Danish population-based nationwide study. Pathol.-Res. Pract. 2024, 254, 155077. [Google Scholar] [CrossRef]
- Jang, C.W.; Yu, T.Y.; Jeong, J.W.; Ha, S.E.; Singh, R.; Lee, M.Y.; Ro, S. Fasting GLP-1 Levels and Albuminuria Are Negatively Associated in Patients with Type 2 Diabetes Mellitus. J. Pers. Med. 2024, 14, 280. [Google Scholar] [CrossRef] [PubMed]
- Maino, C.; Cereda, M.; Franco, P.N.; Boraschi, P.; Cannella, R.; Gianotti, L.V.; Zamboni, G.; Vernuccio, F.; Ippolito, D. Cross-sectional imaging after pancreatic surgery: The dialogue between the radiologist and the surgeon. Eur. J. Radiol. Open 2024, 12, 100544. [Google Scholar] [CrossRef] [PubMed]
- Fernández-Aceñero, M.J.; Hernández, D.; del Arco, C.D. A Review and Update on Therapy of Gastrointestinal Tract Tumors: From the Bench to Clinical Practice. J. Clin. Transl. Pathol. 2024, 4, 136–143. [Google Scholar] [CrossRef]
- Mir, R.; Elfaki, I.; Elangeeb, M.E.; Moawadh, M.S.; Tayeb, F.J.; Barnawi, J.; Albalawi, I.A.; Alharbi, A.A.; Alhelali, M.H.; Alsaedi, B.S.O. Comprehensive Molecular Evaluation of HNF-1 Alpha, miR-27a, and miR-146 Gene Variants and Their Link with Predisposition and Progression in Type 2 Diabetes Patients. J. Pers. Med. 2023, 13, 1270. [Google Scholar] [CrossRef]
- Caban, M.; Małecka-Wojciesko, E. Pancreatic Incidentaloma. J. Clin. Med. 2022, 11, 4648. [Google Scholar] [CrossRef]
- Alhulaili, Z.M.; Pleijhuis, R.G.; Nijkamp, M.W.; Klaase, J.M. External Validation of a Risk Model for Severe Complications following Pancreatoduodenectomy Based on Three Preoperative Variables. Cancers 2022, 14, 5551. [Google Scholar] [CrossRef]
- Canto, M.I.; Kerdsirichairat, T.; Yeo, C.J.; Hruban, R.H.; Shin, E.J.; Almario, J.A.; Blackford, A.; Ford, M.; Klein, A.P.; Javed, A.A.; et al. Surgical Outcomes After Pancreatic Resection of Screening-Detected Lesions in Individuals at High Risk for Developing Pancreatic Cancer. J. Gastrointest. Surg. 2020, 24, 1101–1110. [Google Scholar] [CrossRef]
- D’Cruz, J.R.; Misra, S.; Menon, G.; Shamsudeen, S. Pancreaticoduodenectomy (Whipple Procedure). In StatPearls [Internet]; StatPearls Publishing: Treasure Island, FL, USA, 2025. Available online: https://www.ncbi.nlm.nih.gov/books/NBK560747/ (accessed on 1 January 2025).
- Patel, H.; Chaudhary, N.; Nundy, S. Pancreaticoduodenectomy: Techniques and controversies. Curr. Med. Res. Pract. 2014, 4, 274–283. [Google Scholar] [CrossRef]
- Aoki, S.; Miyata, H.; Konno, H.; Gotoh, M.; Motoi, F.; Kumamaru, H.; Wakabayashi, G.; Kakeji, Y.; Mori, M.; Seto, Y.; et al. Risk factors of serious postoperative complications after pancreaticoduodenectomy and risk calculators for predicting postoperative complications: A nationwide study of 17,564 patients in Japan. J. Hepato-Biliary-Pancreat. Sci. 2017, 24, 243–251. [Google Scholar] [CrossRef]
- Bencini, L.; Annecchiarico, M.; Farsi, M.; Bartolini, I.; Mirasolo, V.; Guerra, F.; Coratti, A. Minimally invasive surgical approach to pancreatic malignancies. World J. Gastrointest. Oncol. 2015, 7, 411–421. [Google Scholar] [CrossRef]
- Chen, Y.-J.; Lai, E.C.H.; Lau, W.-Y.; Chen, X.-P. Enteric reconstruction of pancreatic stump following pancreaticoduodenectomy: A review of the literature. Int. J. Surg. 2014, 12, 706–711. [Google Scholar] [CrossRef] [PubMed]
- Di Carlo, A.; Gunder, M.; Doria, C. Surgical Management of Pancreatic Adenocarcinoma. In Hepato-Pancreato-Biliary Malignancies: Diagnosis and Treatment in the 21st Century; Doria, C., Rogart, J.N., Eds.; Springer International Publishing: Cham, Switzerland, 2022; pp. 557–568. [Google Scholar]
- Boumitri, C.; Brown, E.; Kahaleh, M. Necrotizing Pancreatitis: Current Management and Therapies. Clin. Endosc. 2017, 50, 357–365. [Google Scholar] [CrossRef] [PubMed]
- Komori, K.; Kano, K.; Yamada, T.; Watanabe, H.; Takahashi, K.; Maezawa, Y.; Fujikawa, H.; Numata, M.; Aoyama, T.; Tamagawa, H.; et al. Usefulness of Surgical Staging of Gastric Cancer in Neoadjuvant Chemotherapy Candidates: A Single-center Retrospective Study. Anticancer Res. 2022, 42, 2719–2725. [Google Scholar] [CrossRef]
- Garonzik-Wang, J.M.; Majella Doyle, M.B. Pylorus preserving pancreaticoduodenectomy. Clin. Liver Dis. 2015, 5, 54–58. [Google Scholar] [CrossRef]
- Luchini, C.; Pea, A.; Yu, J.; He, J.; Salvia, R.; Riva, G.; Weiss, M.J.; Bassi, C.; Cameron, J.L.; Hruban, R.H.; et al. Pancreatic cancer arising in the remnant pancreas is not always a relapse of the preceding primary. Mod. Pathol. 2019, 32, 659–665. [Google Scholar] [CrossRef]
- Tummers, W.S.; Groen, J.V.; Sibinga Mulder, B.G.; Farina-Sarasqueta, A.; Morreau, J.; Putter, H.; van de Velde, C.J.; Vahrmeijer, A.L.; Bonsing, B.A.; Mieog, J.S.; et al. Impact of resection margin status on recurrence and survival in pancreatic cancer surgery. Br. J. Surg. 2019, 106, 1055–1065. [Google Scholar] [CrossRef]
- Hajibandeh, S.; Hajibandeh, S.; Evans, D.; Athwal, T.S. Meta-analysis of pancreatic re-resection for locally recurrent pancreatic cancer following index pancreatectomy. Ann. Hepato-Biliary-Pancreat. Surg. 2024, 28, 315–324. [Google Scholar] [CrossRef]
- Faccioli, N.; Santi, E.; Foti, G.; D’Onofrio, M. Cost-effectiveness analysis of including contrast-enhanced ultrasound in management of pancreatic cystic neoplasms. Radiol. Med. 2022, 127, 349–359. [Google Scholar] [CrossRef]
- Shen, X.; Yang, F.; Yang, P.; Yang, M.; Xu, L.; Zhuo, J.; Wang, J.; Lu, D.; Liu, Z.; Zheng, S.S.; et al. A Contrast-Enhanced Computed Tomography Based Radiomics Approach for Preoperative Differentiation of Pancreatic Cystic Neoplasm Subtypes: A Feasibility Study. Front. Oncol. 2020, 10, 248. [Google Scholar] [CrossRef]
- Luchini, C.; Fassan, M.; Doglioni, C.; Capelli, P.; Ingravallo, G.; Renzulli, G.; Pecori, S.; Paolino, G.; Florena, A.M.; Scarpa, A.; et al. Inflammatory and tumor-like lesions of the pancreas. Pathologica 2020, 112, 197–209. [Google Scholar] [CrossRef]
- Shearer, D.D.; Demos, T.C.; Sichlau, M.J. Pancreatic arteriovenous malformation: A case report and literature review. J. Radiol. Case Rep. 2011, 5, 8–13. [Google Scholar] [CrossRef] [PubMed]
- Nonikashvili, M.; Kereselidze, M.; Toidze, O.; Beruchashvili, T. Incidence and Patterns of Digestive Organ Cancer in Georgia: Insights from a Population-Based Registry Study in 2021. J. Pers. Med. 2023, 13, 1121. [Google Scholar] [CrossRef] [PubMed]
- D’Onofrio, M.; De Robertis, R.; Tinazzi Martini, P.; Capelli, P.; Gobbo, S.; Morana, G.; Demozzi, E.; Marchegiani, G.; Girelli, R.; Salvia, R.; et al. Oncocytic Intraductal Papillary Mucinous Neoplasms of the Pancreas: Imaging and Histopathological Findings. Pancreas 2016, 45, 1233–1242. [Google Scholar] [CrossRef] [PubMed]
- D’Onofrio, M.; Gallotti, A.; Falconi, M.; Capelli, P.; Mucelli, R.P. Acoustic radiation force impulse ultrasound imaging of pancreatic cystic lesions: Preliminary results. Pancreas 2010, 39, 939–940. [Google Scholar] [CrossRef]
- D’Onofrio, M.; Gallotti, A.; Mucelli, R.P. Pancreatic mucinous cystadenoma at ultrasound acoustic radiation force impulse (ARFI) imaging. Pancreas 2010, 39, 684–685. [Google Scholar] [CrossRef]
- Fernández-Cruz, L.; Orduña, D.; Cesar-Borges, G.; López-Boado, M.A. Distal pancreatectomy: En-bloc splenectomy vs spleen-preserving pancreatectomy. HPB 2005, 7, 93–98. [Google Scholar] [CrossRef]
- Amendolara, R.; Zampetti, S.; Siena, A.; D’Onofrio, L.; De Vita, F.; Barbaro, F.; Notarnicola, D.; Sessa, R.L.; Luverà, D.; Risi, R.; et al. Residual C-peptide secretion is associated with better CGM-metrics in adults with short-lasting type 1 diabetes. Diabetes Res. Clin. Pract. 2025, 221, 112006. [Google Scholar] [CrossRef]
- Musiu, C.; Adamo, A.; Caligola, S.; Agostini, A.; Frusteri, C.; Lupo, F.; Boschi, F.; Busato, A.; Poffe, O.; Anselmi, C.; et al. Local ablation disrupts immune evasion in pancreatic cancer. Cancer Lett. 2025, 609, 217327. [Google Scholar] [CrossRef]
- Bi, S.; Liu, Y.; Dai, W.; Pang, L.; Yang, S.; Zheng, Y.; Zhang, X.; Wu, S.; Kong, J. Effectiveness and safety of central pancreatectomy in benign or low-grade malignant pancreatic body lesions: A systematic review and meta-analysis. Int. J. Surg. 2023, 109, 2025–2036. [Google Scholar] [CrossRef]
- Chen, D.; Yang, S.; Chen, J.; Li, T.; Liu, Y.; Zhao, X.; Zhang, T.; Xu, M.; Wang, H.; Zhao, K.; et al. Comparison of [(18)F]-OC PET/CT and contrast-enhanced CT/MRI in the detection and evaluation of neuroendocrine neoplasms. Eur. J. Nucl. Med. Mol. Imaging 2023, 50, 2420–2431. [Google Scholar] [CrossRef]
- Bello, B.; Matthews, J.B. Minimally invasive treatment of pancreatic necrosis. World J. Gastroenterol. 2012, 18, 6829–6835. [Google Scholar] [CrossRef]
- Vigia, E.; Ramalhete, L.; Ribeiro, R.; Barros, I.; Chumbinho, B.; Filipe, E.; Pena, A.; Bicho, L.; Nobre, A.; Carrelha, S.; et al. Pancreas Rejection in the Artificial Intelligence Era: New Tool for Signal Patients at Risk. J. Pers. Med. 2023, 13, 1071. [Google Scholar] [CrossRef] [PubMed]
- Vegni, F.; D’Alessandris, N.; Santoro, A.; Angelico, G.; Scaglione, G.; Carlino, A.; Arciuolo, D.; Valente, M.; Sfregola, S.; Natale, M.; et al. Primary Mucinous Cystadenocarcinoma of the Breast Intermixed with Pleomorphic Invasive Lobular Carcinoma: The First Report of This Rare Association. J. Pers. Med. 2023, 13, 948. [Google Scholar] [CrossRef] [PubMed]
- Mori, T.; Abe, N.; Sugiyama, M.; Atomi, Y. Laparoscopic pancreatic surgery. J. Hepato-Biliary-Pancreat. Surg. 2005, 12, 451–455. [Google Scholar] [CrossRef]
- Javed, A.A.; Aziz, K.; Bagante, F.; Wolfgang, C.L. Pancreatic Fistula and Delayed Gastric Emptying After Pancreatectomy: Where do We Stand? Indian J. Surg. 2015, 77, 409–425. [Google Scholar] [CrossRef]
- Gaballah, A.H.; Kazi, I.A.; Zaheer, A.; Liu, P.S.; Badawy, M.; Moshiri, M.; Ibrahim, M.K.; Soliman, M.; Kimchi, E.; Elsayes, K.M. Imaging after Pancreatic Surgery: Expected Findings and Postoperative Complications. RadioGraphics 2024, 44, e230061. [Google Scholar] [CrossRef]
- Karim, S.A.M.; Abdulla, K.S.; Abdulkarim, Q.H.; Rahim, F.H. The outcomes and complications of pancreaticoduodenectomy (Whipple procedure): Cross sectional study. Int. J. Surg. 2018, 52, 383–387. [Google Scholar] [CrossRef]
- Kennedy, E.P.; Yeo, C.J. Dunking pancreaticojejunostomy versus duct-to-mucosa anastomosis. J. Hepato-Biliary-Pancreat. Sci. 2011, 18, 769–774. [Google Scholar] [CrossRef]
- Kokkinakis, S.; Kritsotakis, E.I.; Maliotis, N.; Karageorgiou, I.; Chrysos, E.; Lasithiotakis, K. Complications of modern pancreaticoduodenectomy: A systematic review and meta-analysis. Hepatobiliary Pancreat. Dis. Int. 2022, 21, 527–537. [Google Scholar] [CrossRef]
- Marin, D.; Cappabianca, S.; Serra, N.; Sica, A.; Lassandro, F.; D’Angelo, R.; La Porta, M.; Fiore, F.; Somma, F. CT Appearance of Hepatocellular Carcinoma after Locoregional Treatments: A Comprehensive Review. Gastroenterol. Res. Pract. 2015, 2015, 670965. [Google Scholar] [CrossRef]
- Campa, D.; Gentiluomo, M.; Stein, A.; Aoki, M.N.; Oliverius, M.; Vodičková, L.; Jamroziak, K.; Theodoropoulos, G.; Pasquali, C.; Greenhalf, W.; et al. The PANcreatic Disease ReseArch (PANDoRA) consortium: Ten years’ experience of association studies to understand the genetic architecture of pancreatic cancer. Crit. Rev. Oncol./Hematol. 2023, 186, 104020. [Google Scholar] [CrossRef] [PubMed]
- Orkut, S.; De Marini, P.; Tan, A.S.M.; Garnon, J.; Koch, G.; Tricard, T.; Lang, H.; Cazzato, R.L.; Gangi, A. Profile and methodology of ancillary protective measures employed during percutaneous renal cryoablation in a single high-volume centre. Radiol. Med. 2025, 130, 493–507. [Google Scholar] [CrossRef] [PubMed]
- Hideura, K.; Tanabe, M.; Higashi, M.; Ihara, K.; Kiyoyama, H.; Kamamura, N.; Inoue, A.; Kawano, Y.; Nomura, K.; Ito, K. Pancreatic changes in patients with visceral fat obesity: An evaluation with contrast-enhanced dual-energy computed tomography with automated three-dimensional volumetry. Radiol. Med. 2025, 130, 577–585. [Google Scholar] [CrossRef] [PubMed]
- Brendel, J.M.; Dehdab, R.; Herrmann, J.; Ursprung, S.; Werner, S.; Almansour, H.; Weiland, E.; Nickel, D.; Nikolaou, K.; Afat, S.; et al. Deep learning reconstruction for accelerated 3-D magnetic resonance cholangiopancreatography. Radiol. Med. 2025, 130, 714–722. [Google Scholar] [CrossRef]
- Turner, M.A.; Cox, K.E.; Neel, N.; Amirfakhri, S.; Nishino, H.; Clary, B.M.; Hosseini, M.; Natarajan, G.; Mallya, K.; Mohs, A.M.; et al. Highly Selective Targeting of Pancreatic Cancer in the Liver with a Near-Infrared Anti-MUC5AC Probe in a PDOX Mouse Model: A Proof-of-Concept Study. J. Pers. Med. 2023, 13, 857. [Google Scholar] [CrossRef]
- Busireddy, K.K.; AlObaidy, M.; Ramalho, M.; Kalubowila, J.; Baodong, L.; Santagostino, I.; Semelka, R.C. Pancreatitis-imaging approach. World J. Gastrointest. Pathophysiol. 2014, 5, 252–270. [Google Scholar] [CrossRef]
- Ioannidis, A.; Menni, A.; Tzikos, G.; Ioannidou, E.; Makri, G.; Vouchara, A.; Goulas, P.; Karlafti, E.; Psoma, E.; Mavropoulou, X.; et al. Surgical Management of Groove Pancreatitis: A Case Report. J. Pers. Med. 2023, 13, 644. [Google Scholar] [CrossRef]
- Alfaro-Lara, V.; Muñoz-Hernández, R.; Giménez-Miranda, L.; Beltrán-Romero, L.; Castell-Montsalve, F.J.; Stiefel, P. Pancreas fat content, insulin homeostasis and circulating endothelial microparticles in male essential hypertensive patients. J. Clin. Hypertens. 2023, 25, 38–46. [Google Scholar] [CrossRef]
- Flammia, F.; Innocenti, T.; Galluzzo, A.; Danti, G.; Chiti, G.; Grazzini, G.; Bettarini, S.; Tortoli, P.; Busoni, S.; Dragoni, G.; et al. Branch duct-intraductal papillary mucinous neoplasms (BD-IPMNs): An MRI-based radiomic model to determine the malignant degeneration potential. Radiol. Med. 2023, 128, 383–392. [Google Scholar] [CrossRef]
- Catania, R.; Dasyam, A.K.; Miller, F.H.; Borhani, A.A. Noninvasive Imaging Prior to Biliary Interventions. Semin. Interv. Radiol. 2021, 38, 263–272. [Google Scholar] [CrossRef]
- Foti, G.; Ascenti, G.; Agostini, A.; Longo, C.; Lombardo, F.; Inno, A.; Modena, A.; Gori, S. Dual-Energy CT in Oncologic Imaging. Tomogr. 2024, 10, 299–319. [Google Scholar] [CrossRef] [PubMed]
- Reginelli, A.; Vacca, G.; Segreto, T.; Picascia, R.; Clemente, A.; Urraro, F.; Serra, N.; Vanzulli, A.; Cappabianca, S. Can microvascular invasion in hepatocellular carcinoma be predicted by diagnostic imaging? A critical review. Future Oncol. 2018, 14, 2985–2994. [Google Scholar] [CrossRef] [PubMed]
- Chan, H.P.; Samala, R.K.; Hadjiiski, L.M.; Zhou, C. Deep Learning in Medical Image Analysis. Adv. Exp. Med. Biol. 2020, 1213, 3–21. [Google Scholar] [CrossRef]
- Chan, R.; Kumar, G.; Abdullah, B.; Ng, K.; Vijayananthan, A.; Mohd Nor, H.; Liew, Y. Optimising the scan delay for arterial phase imaging of the liver using the bolus tracking technique. Biomed. Imaging Interv. J. 2011, 7, e12. [Google Scholar] [CrossRef]
- Sandstede, J.J.; Tschammler, A.; Beer, M.; Vogelsang, C.; Wittenberg, G.; Hahn, D. Optimization of automatic bolus tracking for timing of the arterial phase of helical liver CT. Eur. Radiol. 2001, 11, 1396–1400. [Google Scholar] [CrossRef]
- D’Amuri, F.V.; Maestroni, U.; Pagnini, F.; Russo, U.; Melani, E.; Ziglioli, F.; Negrini, G.; Cella, S.; Cappabianca, S.; Reginelli, A.; et al. Magnetic resonance imaging of adrenal gland: State of the art. Gland Surg. 2019, 8, S223–S232. [Google Scholar] [CrossRef]
- Chaudhary, V.; Bano, S. Imaging of the pancreas: Recent advances. Indian J. Endocrinol. Metab. 2011, 15, S25–S32. [Google Scholar] [CrossRef]
- Lee, E.S.; Lee, J.M. Imaging diagnosis of pancreatic cancer: A state-of-the-art review. World J. Gastroenterol. 2014, 20, 7864–7877. [Google Scholar] [CrossRef]
- Sengupta, N.; Kastenberg, D.M.; Bruining, D.H.; Latorre, M.; Leighton, J.A.; Brook, O.R.; Wells, M.L.; Guglielmo, F.F.; Naringrekar, H.V.; Gee, M.S.; et al. The Role of Imaging for GI Bleeding: ACG and SAR Consensus Recommendations. Radiology 2024, 310, e232298. [Google Scholar] [CrossRef]
- Kulkarni, N.M.; Fung, A.; Kambadakone, A.R.; Yeh, B.M. Computed Tomography Techniques, Protocols, Advancements, and Future Directions in Liver Diseases. Magn. Reson. Imaging Clin. N. Am. 2021, 29, 305–320. [Google Scholar] [CrossRef]
- Sun, H.; Zuo, H.-D.; Lin, Q.; Yang, D.-D.; Zhou, T.; Tang, M.-Y.; Wáng, Y.X.J.; Zhang, X.-M. MR imaging for acute pancreatitis: The current status of clinical applications. Ann. Transl. Med. 2019, 7, 269. [Google Scholar] [CrossRef] [PubMed]
- Noda, Y.; Goshima, S.; Fujimoto, K.; Kawada, H.; Kawai, N.; Tanahashi, Y.; Matsuo, M. Utility of the portal venous phase for diagnosing pancreatic necrosis in acute pancreatitis using the CT severity index. Abdom. Radiol. 2018, 43, 3035–3042. [Google Scholar] [CrossRef] [PubMed]
- Popoviciu, M.S.; Kaka, N.; Sethi, Y.; Patel, N.; Chopra, H.; Cavalu, S. Type 1 Diabetes Mellitus and Autoimmune Diseases: A Critical Review of the Association and the Application of Personalized Medicine. J. Pers. Med. 2023, 13, 422. [Google Scholar] [CrossRef]
- Cowzer, D.; Zameer, M.; Conroy, M.; Kolch, W.; Duffy, A.G. Targeting KRAS in Pancreatic Cancer. J. Pers. Med. 2022, 12, 1870. [Google Scholar] [CrossRef]
- Solomon, D.Z.; Ayalew, B.; Dellie, S.T.; Admasie, D. Justification and Optimization Principles of ALARA in Pediatric CT at a Teaching Hospital in Ethiopia. Ethiop. J. Health Sci. 2020, 30, 761–766. [Google Scholar] [CrossRef]
- Faggian, A.; Berritto, D.; Iacobellis, F.; Reginelli, A.; Cappabianca, S.; Grassi, R. Imaging Patients With Alimentary Tract Perforation: Literature Review. Semin. Ultrasound CT MR 2016, 37, 66–69. [Google Scholar] [CrossRef]
- Sikaris, K.A. Enhancing the Clinical Value of Medical Laboratory Testing. Clin. Biochemist. Rev. 2017, 38, 107–114. [Google Scholar]
- Morris, Z.S.; Wooding, S.; Grant, J. The answer is 17 years, what is the question: Understanding time lags in translational research. J. R. Soc. Med. 2011, 104, 510–520. [Google Scholar] [CrossRef]
- Marzuillo, P.; Guarino, S.; Di Sessa, A.; Rambaldi, P.F.; Reginelli, A.; Vacca, G.; Cappabianca, S.; Capalbo, D.; Esposito, T.; De Luca Picione, C.; et al. Congenital Solitary Kidney from Birth to Adulthood. J. Urol. 2021, 205, 1466–1475. [Google Scholar] [CrossRef]
- Reginelli, A.; Patanè, V.; Urraro, F.; Russo, A.; De Chiara, M.; Clemente, A.; Atripaldi, U.; Balestrucci, G.; Buono, M.; D’Ippolito, E.; et al. Magnetic Resonance Imaging Evaluation of Bone Metastases Treated with Radiotherapy in Palliative Intent: A Multicenter Prospective Study on Clinical and Instrumental Evaluation Assessment Concordance (MARTE Study). Diagnostics 2023, 13, 2334. [Google Scholar] [CrossRef]
- Martinelli, E.; Sforza, V.; Cardone, C.; Capasso, A.; Nappi, A.; Martini, G.; Napolitano, S.; Rachiglio, A.M.; Normanno, N.; Cappabianca, S.; et al. Clinical outcome and molecular characterisation of chemorefractory metastatic colorectal cancer patients with long-term efficacy of regorafenib treatment. ESMO Open 2017, 2, e000177. [Google Scholar] [CrossRef] [PubMed]
- Reginelli, A.; Silvestro, G.; Fontanella, G.; Sangiovanni, A.; Conte, M.; Nuzzo, I.; Calvanese, M.; Traettino, M.; Ferraioli, P.; Grassi, R.; et al. Validation of DWI in assessment of radiotreated bone metastases in elderly patients. Int. J. Surg. 2016, 33 (Suppl. 1), S148–S153. [Google Scholar] [CrossRef] [PubMed]
- Urraro, F.; Nardone, V.; Reginelli, A.; Varelli, C.; Angrisani, A.; Patanè, V.; D’Ambrosio, L.; Roccatagliata, P.; Russo, G.M.; Gallo, L.; et al. MRI Radiomics in Prostate Cancer: A Reliability Study. Front. Oncol. 2021, 11, 805137. [Google Scholar] [CrossRef]
- Murali, S.; Ding, H.; Adedeji, F.; Qin, C.; Obungoloch, J.; Asllani, I.; Anazodo, U.; Ntusi, N.A.B.; Mammen, R.; Niendorf, T.; et al. Bringing MRI to low- and middle-income countries: Directions, challenges and potential solutions. NMR Biomed. 2024, 37, e4992. [Google Scholar] [CrossRef]
- Van Beek, E.J.R.; Kuhl, C.; Anzai, Y.; Desmond, P.; Ehman, R.L.; Gong, Q.; Gold, G.; Gulani, V.; Hall-Craggs, M.; Leiner, T.; et al. Value of MRI in medicine: More than just another test? J. Magn. Reson. Imaging 2019, 49, e14–e25. [Google Scholar] [CrossRef]
- Bonomi, P.D.; Crawford, J.; Dunne, R.F.; Roeland, E.J.; Smoyer, K.E.; Siddiqui, M.K.; McRae, T.D.; Rossulek, M.I.; Revkin, J.H.; Tarasenko, L.C. Mortality burden of pre-treatment weight loss in patients with non-small-cell lung cancer: A systematic literature review and meta-analysis. J. Cachexia Sarcopenia Muscle 2024, 15, 1226–1239. [Google Scholar] [CrossRef]
- Fatima, K.; Dasgupta, A.; DiCenzo, D.; Kolios, C.; Quiaoit, K.; Saifuddin, M.; Sandhu, M.; Bhardwaj, D.; Karam, I.; Poon, I.; et al. Ultrasound delta-radiomics during radiotherapy to predict recurrence in patients with head and neck squamous cell carcinoma. Clin. Transl. Radiat. Oncol. 2021, 28, 62–70. [Google Scholar] [CrossRef]
- Calabrò, N.; Abruzzese, F.; Valentini, E.; Gambaro, A.C.L.; Attanasio, S.; Cannillo, B.; Brambilla, M.; Carriero, A. Evaluating the impact of delayed-phase imaging in Contrast-Enhanced Mammography on breast cancer staging: A comparative study of abbreviated versus complete protocol. Radiol. Med. 2024, 129, 989–998. [Google Scholar] [CrossRef]
- Garwany, S.E.; Gad, A.A.; Mansour, S.M.; Al-Shatouri, M.A.; Alshafeiy, T.; AlSerafi, A.F. Accuracy of abbreviated magnetic resonance compared to 3-dimensional mammography and ultrasound in early detection of breast cancer. Radiol. Med. 2025, 130, 683–693. [Google Scholar] [CrossRef]
- Iacobellis, F.; Brillantino, A.; Renzi, A.; Monaco, L.; Serra, N.; Feragalli, B.; Iacomino, A.; Brunese, L.; Cappabianca, S. MR Imaging in Diagnosis of Pelvic Floor Descent: Supine versus Sitting Position. Gastroenterol. Res. Pract. 2016, 2016, 6594152. [Google Scholar] [CrossRef]
- Najjar, R. Clinical applications, safety profiles, and future developments of contrast agents in modern radiology: A comprehensive review. iRADIOLOGY 2024, 2, 430–468. [Google Scholar] [CrossRef]
- Parillo, M.; van der Molen, A.J.; Asbach, P.; Elsholtz, F.H.J.; Laghi, A.; Ronot, M.; Wu, J.S.; Mallio, C.A.; Quattrocchi, C.C. The role of iodinated contrast media in computed tomography structured Reporting and Data Systems (RADS): A narrative review. Quant. Imaging Med. Surg. 2023, 13, 7621–7631. [Google Scholar] [CrossRef] [PubMed]
- Pomara, C.; Pascale, N.; Maglietta, F.; Neri, M.; Riezzo, I.; Turillazzi, E. Use of contrast media in diagnostic imaging: Medico-legal considerations. Radiol. Med. 2015, 120, 802–809. [Google Scholar] [CrossRef] [PubMed]
- Kajiwara, T.; Midorikawa, Y.; Yamazaki, S.; Higaki, T.; Nakayama, H.; Moriguchi, M.; Tsuji, S.; Takayama, T. Clinical score to predict the risk of bile leakage after liver resection. BMC Surg. 2016, 16, 30. [Google Scholar] [CrossRef]
- Koch, M.; Garden, O.J.; Padbury, R.; Rahbari, N.N.; Adam, R.; Capussotti, L.; Fan, S.T.; Yokoyama, Y.; Crawford, M.; Makuuchi, M.; et al. Bile leakage after hepatobiliary and pancreatic surgery: A definition and grading of severity by the International Study Group of Liver Surgery. Surgery 2011, 149, 680–688. [Google Scholar] [CrossRef]
- Al-Dhuhli, H. Role of magnetic resonance cholangiopancreatography in the evaluation of biliary disease. Sultan Qaboos Univ. Med. J. 2009, 9, 341–352. [Google Scholar] [CrossRef]
- Asbun, D.; Stauffer, J.A.; Asbun, H.J. Laparoscopic distal pancreatectomy for pancreatic cancer: An overview of evaluation and treatment strategies. J. Gastrointest. Oncol. 2024, 15, 1827–1835. [Google Scholar] [CrossRef]
- Belfiore, M.P.; Reginelli, A.; Maggialetti, N.; Carbone, M.; Giovine, S.; Laporta, A.; Urraro, F.; Nardone, V.; Grassi, R.; Cappabianca, S.; et al. Preliminary results in unresectable cholangiocarcinoma treated by CT percutaneous irreversible electroporation: Feasibility, safety and efficacy. Med. Oncol. 2020, 37, 45. [Google Scholar] [CrossRef]
- Canellas, R.; Patel, M.J.; Agarwal, S.; Sahani, D.V. Lesion detection performance of an abbreviated gadoxetic acid-enhanced MRI protocol for colorectal liver metastasis surveillance. Eur. Radiol. 2019, 29, 5852–5860. [Google Scholar] [CrossRef]
- Cannella, R.; Pilato, G.; Mazzola, M.; Bartolotta, T.V. New microvascular ultrasound techniques: Abdominal applications. Radiol. Med. 2023, 128, 1023–1034. [Google Scholar] [CrossRef]
- Chen, Y.W.; Xu, J.; Li, X.; Chen, W.; Gao, S.L.; Shen, Y.; Zhang, M.; Wu, J.; Que, R.S.; Yu, J.; et al. Central pancreatectomy for benign or low-grade malignant pancreatic tumors in the neck and body of the pancreas. World J. Gastrointest. Surg. 2022, 14, 896–903. [Google Scholar] [CrossRef] [PubMed]
- Han, Z.; Dai, H.; Chen, X.; Gao, L.; Chen, X.; Yan, C.; Ye, R.; Li, Y. Delta-radiomics models based on multi-phase contrast-enhanced magnetic resonance imaging can preoperatively predict glypican-3-positive hepatocellular carcinoma. Front. Physiol. 2023, 14, 1138239. [Google Scholar] [CrossRef] [PubMed]
- Hazhirkarzar, B.; Khoshpouri, P.; Shaghaghi, M.; Ghasabeh, M.A.; Pawlik, T.M.; Kamel, I.R. Current state of the art imaging approaches for colorectal liver metastasis. Hepatobiliary Surg. Nutr. 2020, 9, 35–48. [Google Scholar] [CrossRef]
- Ho, C.K.; Kleeff, J.; Friess, H.; Büchler, M.W. Complications of pancreatic surgery. HPB 2005, 7, 99–108. [Google Scholar] [CrossRef]
- Hu, Z.; Liang, H.; Zhao, H.; Hou, F.; Hao, D.; Ji, Q.; Huang, C.; Xu, J.; Tian, L.; Wang, H. Preoperative contrast-enhanced CT-based radiomics signature for predicting hypoxia-inducible factor 1alpha expression in retroperitoneal sarcoma. Clin. Radiol. 2023, 78, e543–e551. [Google Scholar] [CrossRef]
- Ji, G.W.; Zhu, F.P.; Xu, Q.; Wang, K.; Wu, M.Y.; Tang, W.W.; Li, X.C.; Wang, X.H. Radiomic Features at Contrast-enhanced CT Predict Recurrence in Early Stage Hepatocellular Carcinoma: A Multi-Institutional Study. Radiology 2020, 294, 568–579. [Google Scholar] [CrossRef]
- Ji, G.W.; Zhu, F.P.; Xu, Q.; Wang, K.; Wu, M.Y.; Tang, W.W.; Li, X.C.; Wang, X.H. Machine-learning analysis of contrast-enhanced CT radiomics predicts recurrence of hepatocellular carcinoma after resection: A multi-institutional study. EBioMedicine 2019, 50, 156–165. [Google Scholar] [CrossRef]
- Jin, M.; Zhang, Y.; Gao, G.; Xi, Q.; Yang, Y.; Yan, L.; Zhou, H.; Zhao, Y.; Wu, C.; Wang, L.; et al. MRI Contrast Agents Based on Conjugated Polyelectrolytes and Dendritic Polymers. Macromol. Rapid Commun. 2018, 39, e1800258. [Google Scholar] [CrossRef]
- Nakai, Y.; Gonoi, W.; Kurokawa, R.; Nishioka, Y.; Abe, H.; Arita, J.; Ushiku, T.; Hasegawa, K.; Abe, O. MRI Findings of Liver Parenchyma Peripheral to Colorectal Liver Metastasis: A Potential Predictor of Long-term Prognosis. Radiology 2020, 297, 584–594. [Google Scholar] [CrossRef]
- Renzulli, M.; Clemente, A.; Ierardi, A.M.; Pettinari, I.; Tovoli, F.; Brocchi, S.; Peta, G.; Cappabianca, S.; Carrafiello, G.; Golfieri, R. Imaging of Colorectal Liver Metastases: New Developments and Pending Issues. Cancers 2020, 12, 151. [Google Scholar] [CrossRef]
- Yuan, J.; Liu, K.; Liu, M.; Zhan, S. Magnetic Resonance Imaging Findings of an Intrahepatic Bile Duct Adenoma: A Case Report. Cureus 2022, 14, e27082. [Google Scholar] [CrossRef] [PubMed]
- Huang, J.; Chen, J.; Xu, M.; Zheng, Y.; Lin, M.; Huang, G.; Xie, X.; Xie, X. Contrast-Enhanced Ultrasonography Findings Correlate with Pathologic Grades of Pancreatic Neuroendocrine Tumors. Ultrasound Med. Biol. 2021, 47, 2097–2106. [Google Scholar] [CrossRef] [PubMed]
- Griffin, N.; Charles-Edwards, G.; Grant, L.A. Magnetic resonance cholangiopancreatography: The ABC of MRCP. Insights Imaging 2012, 3, 11–21. [Google Scholar] [CrossRef] [PubMed]
- Perez-Girbes, A.; Lee, J.M.; Martí-Bonmatí, L. Hepatobiliary contrast agents for Liver Magnetic Resonance Imaging. Radiologia 2024, 66 (Suppl. 2), S75–S88. [Google Scholar] [CrossRef]
- Di Serafino, M.; Iacobellis, F.; Ronza, R.; Martino, A.; Grimaldi, D.; Rinaldo, C.; Caruso, M.; Dell’Aversano Orabona, G.; Barbuto, L.; Verde, F.; et al. Hepatobiliary-specific magnetic resonance contrast agents: Role in biliary trauma. Gland Surg. 2023, 12, 1425–1433. [Google Scholar] [CrossRef]
- Ryska, M.; Rudis, J. Pancreatic fistula and postoperative pancreatitis after pancreatoduodenectomy for pancreatic cancer. Hepatobiliary Surg. Nutr. 2014, 3, 268–275. [Google Scholar] [CrossRef]
- Kantarcı, M.; Pirimoglu, B.; Karabulut, N.; Bayraktutan, U.; Ogul, H.; Ozturk, G.; Aydinli, B.; Kizrak, Y.; Eren, S.; Yilmaz, S. Non-invasive detection of biliary leaks using Gd-EOB-DTPA-enhanced MR cholangiography: Comparison with T2-weighted MR cholangiography. Eur. Radiol. 2013, 23, 2713–2722. [Google Scholar] [CrossRef]
- Kul, M.; Erden, A.; Düşünceli Atman, E. Diagnostic value of Gd-EOB-DTPA-enhanced MR cholangiography in non-invasive detection of postoperative bile leakage. Br. J. Radiol. 2017, 90, 20160847. [Google Scholar] [CrossRef]
- Shrikhande, S.V.; Barreto, S.G.; Goel, M.; Arya, S. Multimodality imaging of pancreatic ductal adenocarcinoma: A review of the literature. HPB 2012, 14, 658–668. [Google Scholar] [CrossRef]
- Sica, A.; Vitiello, P.; Caccavale, S.; Sagnelli, C.; Calogero, A.; Doraro, C.A.; Pastore, F.; Ciardiello, F.; Argenziano, G.; Reginelli, A.; et al. Primary Cutaneous DLBCL Non-GCB Type: Challenges of a Rare Case. Open Med. 2020, 15, 119–125. [Google Scholar] [CrossRef]
- Nardone, V.; Reginelli, A.; Patanè, V.; Sangiovanni, A.; Grassi, R.; Russo, A.; Correale, P.; Giordano, D.S.; Zaccaria, C.; Belfiore, M.P.; et al. Prognostic Value of Sarcopenia in Elderly Patients with Metastatic Non-Small-Cell Lung Cancer Undergoing Radiotherapy. Curr. Oncol. 2024, 31, 6673–6685. [Google Scholar] [CrossRef] [PubMed]
- Rondelli, F.; Desio, M.; Vedovati, M.C.; Balzarotti Canger, R.C.; Sanguinetti, A.; Avenia, N.; Bugiantella, W. Intra-abdominal drainage after pancreatic resection: Is it really necessary? A meta-analysis of short-term outcomes. Int. J. Surg. 2014, 12, S40–S47. [Google Scholar] [CrossRef] [PubMed]
- Demir, E.; Abdelhai, K.; Demir, I.E.; Jäger, C.; Scheufele, F.; Schorn, S.; Rothe, K.; Friess, H.; Ceyhan, G.O. Association of bacteria in pancreatic fistula fluid with complications after pancreatic surgery. BJS Open 2020, 4, 432–437. [Google Scholar] [CrossRef]
- Nahm, C.B.; Connor, S.J.; Samra, J.S.; Mittal, A. Postoperative pancreatic fistula: A review of traditional and emerging concepts. Clin. Exp. Gastroenterol. 2018, 11, 105–118. [Google Scholar] [CrossRef]
- Yoon, S.J.; Yoon, D.Y.; Kim, S.S.; Rho, Y.S.; Chung, E.J.; Eom, J.S.; Lee, J.S. CT differentiation of abscess and non-infected fluid in the postoperative neck. Acta Radiol. 2013, 54, 48–53. [Google Scholar] [CrossRef]
- Zhao, K.; Adam, S.Z.; Keswani, R.N.; Horowitz, J.M.; Miller, F.H. Acute Pancreatitis: Revised Atlanta Classification and the Role of Cross-Sectional Imaging. Am. J. Roentgenol. 2015, 205, W32–W41. [Google Scholar] [CrossRef]
- Rashid, M.; Aljohani, M.; Al Mufareh, B. Pneumatosis intestinalis with pneumobilia. BMJ Case Rep. 2021, 14, e241823. [Google Scholar] [CrossRef]
- Marchegiani, G.; Barreto, S.G.; Bannone, E.; Sarr, M.; Vollmer, C.M.; Connor, S.; Falconi, M.; Besselink, M.G.; Salvia, R.; Wolfgang, C.L.; et al. Postpancreatectomy Acute Pancreatitis (PPAP): Definition and Grading From the International Study Group for Pancreatic Surgery (ISGPS). Ann. Surg. 2022, 275, 663–672. [Google Scholar] [CrossRef]
- Quero, G.; Fiorillo, C.; Massimiani, G.; Lucinato, C.; Menghi, R.; Longo, F.; Laterza, V.; Schena, C.A.; De Sio, D.; Rosa, F.; et al. The Impact of Post-Pancreatectomy Acute Pancreatitis (PPAP) on Long-Term Outcomes after Pancreaticoduodenectomy: A Single-Center Propensity-Score-Matched Analysis According to the International Study Group of Pancreatic Surgery (ISGPS) Definition. Cancers 2023, 15, 2691. [Google Scholar] [CrossRef]
- Berritto, D.; Iacobellis, F.; Rossi, C.; Reginelli, A.; Cappabianca, S.; Grassi, R. Ultra high-frequency ultrasound: New capabilities for nail anatomy exploration. J. Dermatol. 2017, 44, 43–46. [Google Scholar] [CrossRef]
- Pinto, A.; Russo, A.; Reginelli, A.; Iacobellis, F.; Di Serafino, M.; Giovine, S.; Romano, L. Gunshot Wounds: Ballistics and Imaging Findings. Semin. Ultrasound CT MR 2019, 40, 25–35. [Google Scholar] [CrossRef] [PubMed]
- Biondetti, P.; Fumarola, E.M.; Ierardi, A.M.; Carrafiello, G. Bleeding complications after pancreatic surgery: Interventional radiology management. Gland Surg. 2019, 8, 150–163. [Google Scholar] [CrossRef] [PubMed]
- Wente, M.N.; Veit, J.A.; Bassi, C.; Dervenis, C.; Fingerhut, A.; Gouma, D.J.; Izbicki, J.R.; Neoptolemos, J.P.; Padbury, R.T.; Sarr, M.G.; et al. Postpancreatectomy hemorrhage (PPH): An International Study Group of Pancreatic Surgery (ISGPS) definition. Surgery 2007, 142, 20–25. [Google Scholar] [CrossRef]
- Crivelli, P.; Carboni, M.; Montella, R.A.; Amadu, A.M.; Profili, S.; Conti, M.; Meloni, G.B. Gastroduodenal stenting: Is still useful in the treatment of malignant obstruction? Radiol. Med. 2017, 122, 564–567. [Google Scholar] [CrossRef]
- Loveček, M.; Havlík, R.; Köcher, M.; Vomáčková, K.; Neoral, C. Pseudoaneurysm of the gastroduodenal artery following pancreatoduodenectomy. Stenting for hemorrhage. Videosurgery Miniinv. 2014, 9, 297–301. [Google Scholar] [CrossRef]
- Treckmann, J.; Paul, A.; Sotiropoulos, G.C.; Lang, H.; Ozcelik, A.; Saner, F.; Broelsch, C.E. Sentinel bleeding after pancreaticoduodenectomy: A disregarded sign. J. Gastrointest. Surg. 2008, 12, 313–318. [Google Scholar] [CrossRef]
- Kronenfeld, J.P.; Kutlu, O.C. Post-Pancreatectomy Hemorrhage. In The SAGES Manual of Evolving Techniques in Pancreatic Surgery; Ceppa, E.P., El-Hayek, K.M., Hogg, M.E., Pecorelli, N., Eds.; Springer Nature: Cham, Switzerland, 2025; pp. 609–618. [Google Scholar]
- Koizumi, J.; Inoue, S.; Yonekawa, H.; Kunieda, T. Hemosuccus pancreaticus: Diagnosis with CT and MRI and treatment with transcatheter embolization. Abdom. Imaging 2002, 27, 77–81. [Google Scholar] [CrossRef]
- Ma, L.W.; Dominguez-Rosado, I.; Gennarelli, R.L.; Bach, P.B.; Gonen, M.; D’Angelica, M.I.; DeMatteo, R.P.; Kingham, T.P.; Brennan, M.F.; Jarnagin, W.R.; et al. The Cost of Postoperative Pancreatic Fistula Versus the Cost of Pasireotide: Results from a Prospective Randomized Trial. Ann. Surg. 2017, 265, 11–16. [Google Scholar] [CrossRef]
- Smits, F.J.; Henry, A.C.; van Eijck, C.H.; Besselink, M.G.; Busch, O.R.; Arntz, M.; Bollen, T.L.; van Delden, O.M.; van den Heuvel, D.; van der Leij, C.; et al. Care after pancreatic resection according to an algorithm for early detection and minimally invasive management of pancreatic fistula versus current practice (PORSCH-trial): Design and rationale of a nationwide stepped-wedge cluster-randomized trial. Trials 2020, 21, 389. [Google Scholar] [CrossRef]
- Lee, H.J.; Kim, J.W.; Hur, Y.H.; Lee, B.K.; Cho, S.B.; Hwang, E.C.; Lee, S.J.; Yoon, E.J.; Seon, H.J. Multidetector CT findings differ between surgical grades of pancreatic fistula after pancreaticoduodenectomy. Eur. Radiol. 2019, 29, 2399–2407. [Google Scholar] [CrossRef]
- Zerem, E. Treatment of severe acute pancreatitis and its complications. World J. Gastroenterol. 2014, 20, 13879–13892. [Google Scholar] [CrossRef] [PubMed]
- Fukushima, R.; Harimoto, N.; Araki, K.; Hoshino, K.; Hagiwara, K.; Kawai, S.; Ishii, N.; Tsukagoshi, M.; Igarashi, T.; Kubo, N.; et al. Impact of body composition on the development of pancreatic fistula after pancreaticoduodenectomy. Surg. Today 2025. epub ahead of print. [Google Scholar] [CrossRef] [PubMed]
- Jin, Q.; Zhang, J.; Jin, J.; Zhang, J.; Fei, S.; Liu, Y.; Xu, Z.; Shi, Y. Preoperative body composition measured by bioelectrical impedance analysis can predict pancreatic fistula after pancreatic surgery. Nutr. Clin. Pract. 2025, 40, 156–166. [Google Scholar] [CrossRef] [PubMed] [PubMed Central]
- Javed, A.A.; Mirza, M.B.; Sham, J.G.; Ali, D.M.; Jones, G.F.t.; Sanjeevi, S.; Burkhart, R.A.; Cameron, J.L.; Weiss, M.J.; Wolfgang, C.L.; et al. Postoperative biliary anastomotic strictures after pancreaticoduodenectomy. HPB 2021, 23, 1716–1721. [Google Scholar] [CrossRef]
- Dumonceau, J.M.; Delhaye, M.; Charette, N.; Farina, A. Challenging biliary strictures: Pathophysiological features, differential diagnosis, diagnostic algorithms, and new clinically relevant biomarkers—Part 1. Ther. Adv. Gastroenterol. 2020, 13, 1756284820927292. [Google Scholar] [CrossRef]
- Villa, N.A.; Harrison, M.E. Management of Biliary Strictures After Liver Transplantation. Gastroenterol. Hepatol. 2015, 11, 316–328. [Google Scholar]
- Hu, F.; Liu, J.; Xu, G.; Wang, H.; Shen, J.; Zhou, Y. Bisphenol A exposure inhibits contrast sensitivity in cats involving increased response noise and inhibitory synaptic transmission. Brain Res. Bull. 2020, 157, 1–9. [Google Scholar] [CrossRef]
- Tang, S.; Wu, J.; Xu, S.; Li, Q.; He, J. Clinical-radiomic analysis for non-invasive prediction of liver steatosis on non-contrast CT: A pilot study. Front. Genet. 2023, 14, 1071085. [Google Scholar] [CrossRef]
- Nagaya, T.; Tanaka, N.; Kimura, T.; Kitabatake, H.; Fujimori, N.; Komatsu, M.; Horiuchi, A.; Yamaura, T.; Umemura, T.; Sano, K.; et al. Mechanism of the development of nonalcoholic steatohepatitis after pancreaticoduodenectomy. BBA Clin. 2015, 3, 168–174. [Google Scholar] [CrossRef]
- Bozic, D.; Podrug, K.; Mikolasevic, I.; Grgurevic, I. Ultrasound Methods for the Assessment of Liver Steatosis: A Critical Appraisal. Diagnostics 2022, 12, 2287. [Google Scholar] [CrossRef]
- Lortie, J.; Gage, G.; Rush, B.; Heymsfield, S.B.; Szczykutowicz, T.P.; Kuchnia, A.J. The effect of computed tomography parameters on sarcopenia and myosteatosis assessment: A scoping review. J. Cachexia Sarcopenia Muscle 2022, 13, 2807–2819. [Google Scholar] [CrossRef] [PubMed]
- Azizi, N.; Naghibi, H.; Shakiba, M.; Morsali, M.; Zarei, D.; Abbastabar, H.; Ghanaati, H. Evaluation of MRI proton density fat fraction in hepatic steatosis: A systematic review and meta-analysis. Eur. Radiol. 2025, 35, 1794–1807. [Google Scholar] [CrossRef] [PubMed]
- Cho, S.K.; Kim, S.S.; Do, Y.S.; Park, K.B.; Shin, S.W.; Park, H.S.; Choo, S.W.; Choo, I.W. Ischemic liver injuries after hepatic artery embolization in patients with delayed postoperative hemorrhage following hepatobiliary pancreatic surgery. Acta Radiol. 2011, 52, 393–400. [Google Scholar] [CrossRef]
- Hsieh, C.L.; Tsai, T.S.; Peng, C.M.; Cheng, T.C.; Liu, Y.J. Spleen-preserving distal pancreatectomy from multi-port to reduced-port surgery approach. World J. Gastrointest. Surg. 2023, 15, 1501–1511. [Google Scholar] [CrossRef]
- Nardone, V.; Belfiore, M.P.; De Chiara, M.; De Marco, G.; Patanè, V.; Balestrucci, G.; Buono, M.; Salvarezza, M.; Di Guida, G.; D’Angiolella, D.; et al. CARdioimaging in Lung Cancer PatiEnts Undergoing Radical RadioTherapy: CARE-RT Trial. Diagnostics 2023, 13, 1717. [Google Scholar] [CrossRef]
- Ottaiano, A.; Grassi, F.; Sirica, R.; Genito, E.; Ciani, G.; Patanè, V.; Monti, R.; Belfiore, M.P.; Urraro, F.; Santorsola, M.; et al. Associations between Radiomics and Genomics in Non-Small Cell Lung Cancer Utilizing Computed Tomography and Next-Generation Sequencing: An Exploratory Study. Genes 2024, 15, 803. [Google Scholar] [CrossRef]
- Strobel, O.; Hartwig, W.; Hackert, T.; Hinz, U.; Berens, V.; Grenacher, L.; Bergmann, F.; Debus, J.; Jäger, D.; Büchler, M.; et al. Re-resection for isolated local recurrence of pancreatic cancer is feasible, safe, and associated with encouraging survival. Ann. Surg. Oncol. 2013, 20, 964–972. [Google Scholar] [CrossRef]
- Conroy, T.; Pfeiffer, P.; Vilgrain, V.; Lamarca, A.; Seufferlein, T.; O’Reilly, E.M.; Hackert, T.; Golan, T.; Prager, G.; Haustermans, K.; et al. Pancreatic cancer: ESMO Clinical Practice Guideline for diagnosis, treatment and follow-up. Ann. Oncol. 2023, 34, 987–1002. [Google Scholar] [CrossRef]
- Stam, W.T.; Goedknegt, L.K.; Ingwersen, E.W.; Schoonmade, L.J.; Bruns, E.R.J.; Daams, F. The prediction of surgical complications using artificial intelligence in patients undergoing major abdominal surgery: A systematic review. Surgery 2022, 171, 1014–1021. [Google Scholar] [CrossRef]
Surgical Procedure | Main Indications | Structures Resected | Surgical Approach |
---|---|---|---|
Pancreaticoduodenectomy (PD)(Whipple or PPPD) | Resectable pancreatic head adenocarcinoma (PDAC), periampullary tumors (distal cholangiocarcinoma, ampullary carcinoma, duodenal tumors), neuroendocrine tumors (NETs), GISTs, mucinous cystic neoplasms, chronic pancreatitis with head mass, severe trauma | Pancreatic head, distal bile duct, gallbladder, duodenum, proximal jejunum, ±gastric antrum (if PPPD: pylorus is preserved) | Open or laparoscopic; reconstruction via gastro-/duodenojejunostomy, pancreaticojejunostomy, choledochojejunostomy |
Distal Pancreatectomy (DP) | Lesions in the body and tail of the pancreas, localized chronic pancreatitis, trauma, vascular malformations | Pancreatic body and/or tail ± spleen | Open or laparoscopic; with or without spleen preservation |
Central Pancreatectomy (CP) | Benign or low-grade malignant lesions in the neck or central body of the pancreas | Central segment of pancreas; preserves both head and tail | Open or laparoscopic; parenchyma-sparing to reduce endocrine/exocrine insufficiency |
Total Pancreatectomy (TP) | Multicentric IPMN with high-risk features, multifocal NETs, unresectable margins with partial resection, recurrence, extensive trauma, complications like infected leaks or hemorrhage | Entire pancreas, bile duct, duodenum, gallbladder, ±spleen and part of stomach | Open or laparoscopic; leads to complete endocrine and exocrine insufficiency |
Pancreatic Necrosectomy (PN) | Infected pancreatic necrosis not responsive to less invasive drainage | Necrotic pancreatic tissue | Open, laparoscopic, or endoscopic; part of step-up approach for necrotizing pancreatitis |
Complication | Incidence (%) | Optimal Modality | Pathognomonic Signs |
---|---|---|---|
Postoperative Pancreatic Fistula (POPF) | 13–41 | CECT Portal Venous/Delayed Phase | Peri-anastomotic fluid collection with elevated drain amylase |
Delayed Gastric Emptying (DGE) | 15–30 | Clinical + CECT Portal Venous Phase | Persistent gastric distension with normal anastomoses |
Biliary Leakage | 5–8 | MRI with HBA, Hepatobiliary Delayed Phase | HBA extravasation into collection on MRI |
Fluid Collection/Abscesses | Up to 30 | CECT/MRI | Hypoattenuating peri-anastomotic collections with or without gas collection within |
Postoperative Hemorrhage | 2–8 | CECT Arterial Phase | Contrast extravasation; sentinel clot sign |
Pancreatitis | Variable | CECT/MRI | Pancreatic enlargement; fat stranding; decreased apparent diffusion coefficient values (on MRI) |
Anastomotic Strictures | Low | Contrast-Enhanced MRCP | Tapered biliary narrowing at anastomosis |
Hepatic Infarction | Rare | CECT | Wedge-shaped hypoenhancing hepatic area |
Splenic Infarction | Rare | CECT | Wedge-shaped hypoenhancing splenic area |
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Urraro, F.; Patanè, V.; Clemente, A.; Giordano, N.; Caputo, D.; Cammarata, R.; Costa, G.; Reginelli, A. Radiological Assessment After Pancreaticoduodenectomy for a Precision Approach to Managing Complications: A Narrative Review. J. Pers. Med. 2025, 15, 220. https://doi.org/10.3390/jpm15060220
Urraro F, Patanè V, Clemente A, Giordano N, Caputo D, Cammarata R, Costa G, Reginelli A. Radiological Assessment After Pancreaticoduodenectomy for a Precision Approach to Managing Complications: A Narrative Review. Journal of Personalized Medicine. 2025; 15(6):220. https://doi.org/10.3390/jpm15060220
Chicago/Turabian StyleUrraro, Fabrizio, Vittorio Patanè, Alfredo Clemente, Nicoletta Giordano, Damiano Caputo, Roberto Cammarata, Gianluca Costa, and Alfonso Reginelli. 2025. "Radiological Assessment After Pancreaticoduodenectomy for a Precision Approach to Managing Complications: A Narrative Review" Journal of Personalized Medicine 15, no. 6: 220. https://doi.org/10.3390/jpm15060220
APA StyleUrraro, F., Patanè, V., Clemente, A., Giordano, N., Caputo, D., Cammarata, R., Costa, G., & Reginelli, A. (2025). Radiological Assessment After Pancreaticoduodenectomy for a Precision Approach to Managing Complications: A Narrative Review. Journal of Personalized Medicine, 15(6), 220. https://doi.org/10.3390/jpm15060220