International External Validation of Risk Prediction Model of 90-Day Mortality after Gastrectomy for Cancer Using Machine Learning

被引:2
作者
Dal Cero, Mariagiulia [1 ]
Gibert, Joan [2 ]
Grande, Luis [1 ]
Gimeno, Marta [1 ]
Osorio, Javier [3 ]
Bencivenga, Maria [4 ]
Fumagalli Romario, Uberto [5 ]
Rosati, Riccardo [6 ]
Morgagni, Paolo [7 ]
Gisbertz, Suzanne [8 ]
Polkowski, Wojciech P. [9 ]
Lara Santos, Lucio [10 ]
Kolodziejczyk, Piotr [11 ]
Kielan, Wojciech [12 ]
Reddavid, Rossella [13 ]
van Sandick, Johanna W. [14 ]
Baiocchi, Gian Luca [15 ]
Gockel, Ines [16 ]
Davies, Andrew [17 ]
Wijnhoven, Bas P. L. [18 ]
Reim, Daniel [19 ]
Costa, Paulo [20 ]
Allum, William H. [21 ]
Piessen, Guillaume [22 ]
Reynolds, John V. [23 ]
Moenig, Stefan P. [24 ]
Schneider, Paul M. [25 ]
Garsot, Elisenda [26 ]
Eizaguirre, Emma [27 ]
Miro, Monica [28 ]
Castro, Sandra [29 ]
Miranda, Coro [30 ]
Monzonis-Hernandez, Xavier [2 ]
Pera, Manuel [1 ]
机构
[1] Univ Autonoma Barcelona, Hosp del Mar Res Inst IMIM, Hosp del Mar, Dept Surg,Sect Gastrointestinal Surg, Barcelona 08003, Spain
[2] Hosp Univ del Mar, Hosp del Mar Res Inst IMIM, Dept Pathol, Canc Res Program, Barcelona 08003, Spain
[3] Univ Barcelona, Hosp Clin, Dept Surg, Sect Esophagogastr & Bariatr Surg, Barcelona 08193, Spain
[4] Univ Verona, Dept Surg, Gn & Upper G I Surg Div, I-37126 Verona, Italy
[5] European Inst Oncol, Digest Surg, IRCCS, I-20122 Milan, Italy
[6] Univ Vita Salute San Raffaele, San Raffaele Hosp, Dept GI Surg, IRCCS, I-20135 Milan, Italy
[7] GB Morgagni L Pierantoni Surg Dept, I-47121 Forli, Italy
[8] Univ Med Ctr, Dept Surg, NL-1007 Amsterdam, Netherlands
[9] Med Univ Lublin, Dept Surg Oncol, PL-20080 Lublin, Poland
[10] Portuguese Inst Oncol, Surg Oncol Dept, Expt Pathol & Therapeut Grp, P-4200072 Porto, Portugal
[11] Jagiellonian Univ, Dept Surg 1, PL-31007 Krakow, Poland
[12] Wroclaw Med Univ, Dept Gen & Oncol Surg 2, PL-50367 Wroclaw, Poland
[13] Univ Turin, San Luigi Univ Hosp, Dept Oncol, Div Surg Oncol & Digest Surg, I-10043 Turin, Italy
[14] Antoni Van Leeuwenhoek Hosp, Netherlands Canc Inst, Dept Surg, NL-1066 CX Amsterdam, Netherlands
[15] Univ Brescia, Dept Clin & Expt Sci, Gen Surg Unit, ASST Cremona, I-26100 Cremona, Italy
[16] Univ Hosp Leipzig, Dept Visceral Transplant Thorac & Vasc Surg, D-04103 Leipzig, Germany
[17] Guys & St Thomas Natl Hlth Serv Fdn Trust, Dept Digest Surg, London SE1 7EH, England
[18] Erasmus MC, Dept Surg, NL-3015 Rotterdam, Netherlands
[19] Tech Univ Munich, Sch Med & Hlth, Dept Surg, D-81675 Munich, Germany
[20] Univ Lisbon, Hosp Garcia Orta, Fac Med, Dept Gen Surg, P-1649028 Lisbon, Portugal
[21] Royal Marsden NHS Fdn Trust, Dept Surg, London SW3 6JJ, England
[22] Univ Lille, Claude Huriez Univ Hosp, Dept Digest & Oncol Surg, F-59037 Lille, France
[23] Trinity Coll Dublin, St Jamess Hosp, Dept Surg, Dublin D08 W9RT, Ireland
[24] Univ Hosp Geneva, Div Abdominal Surg, CH-1205 Geneva, Switzerland
[25] Hirslanden Med Ctr, Ctr Visceral Thorac & Specialized Tumor Surg, CH-5000 Zurich, Switzerland
[26] Univ Autonoma Barcelona, Hosp Univ Germans Trias & Pujol, Dept Surg, Barcelona 08916, Spain
[27] Hosp Univ Donostia, Dept Surg, Donostia San Sebastian 20014, Spain
[28] Hosp Univ Bellvitge, Dept Surg, Lhospitalet De Llobregat 08907, Spain
[29] Univ Autonoma Barcelona, Hosp Univ Vall dHebron, Dept Surg, Barcelona 08035, Spain
[30] Hosp Univ Navarra, Dept Surg, Pamplona 31008, Spain
关键词
gastric cancer; gastrectomy; mortality; prediction; machine learning; validation; GASTRIC-CANCER; OUTCOMES; SURGERY; DIAGNOSIS;
D O I
10.3390/cancers16132463
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Simple Summary A 90-day mortality predictive model for curative gastric cancer resection based on the Spanish EURECCA Esophagogastric Cancer database was externally validated using the GASTRODATA registry. The externally validated model showed a modestly worse performance compared to the original model, nevertheless maintaining its discriminating ability in clinical practice.Abstract Background: Radical gastrectomy remains the main treatment for gastric cancer, despite its high mortality. A clinical predictive model of 90-day mortality (90DM) risk after gastric cancer surgery based on the Spanish EURECCA registry database was developed using a matching learning algorithm. We performed an external validation of this model based on data from an international multicenter cohort of patients. Methods: A cohort of patients from the European GASTRODATA database was selected. Demographic, clinical, and treatment variables in the original and validation cohorts were compared. The performance of the model was evaluated using the area under the curve (AUC) for a random forest model. Results: The validation cohort included 2546 patients from 24 European hospitals. The advanced clinical T- and N-category, neoadjuvant therapy, open procedures, total gastrectomy rates, and mean volume of the centers were significantly higher in the validation cohort. The 90DM rate was also higher in the validation cohort (5.6%) vs. the original cohort (3.7%). The AUC in the validation model was 0.716. Conclusion: The externally validated model for predicting the 90DM risk in gastric cancer patients undergoing gastrectomy with curative intent continues to be as useful as the original model in clinical practice.
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页数:13
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