Computational Learning of microRNA-Based Prediction of Pouchitis Outcome After Restorative Proctocolectomy in Patients With Ulcerative Colitis

Author:

Morilla Ian123,Uzzan Mathieu124,Cazals-Hatem Dominique125,Colnot Nathalie5,Panis Yves126ORCID,Nancey Stéphane7,Boschetti Gilles7,Amiot Aurélien8,Tréton Xavier124,Ogier-Denis Eric12ORCID,Daniel Fanny12

Affiliation:

1. INSERM U1149, Université de Paris, Centre de Recherche sur l’inflammation, Team Gut Inflammation, Paris, France

2. Laboratory of Excellence Labex INFLAMEX, Sorbonne Paris-Cité, Paris, France

3. Université Sorbonne Paris-Nord, Laboratoire d’Excellence Inflamex, Villetaneuse, France

4. Département de Gastroentérologie, Assistance Publique Hôpitaux de Paris, Hôpital Beaujon, Clichy la Garenne, Clichy Cedex, France

5. Service d’anatomopathologie, Assistance Publique Hôpitaux de Paris, Hôpital Beaujon, Clichy la Garenne, France

6. Service de chirurgie colorectale, Assistance Publique Hôpitaux de Paris, Hôpital Beaujon, Clichy la Garenne, France

7. Service d’Hépato-Gastroentérologie, Hospices Civils de Lyon, Lyon, France

8. Service de Gastroentérologie, Hôpital Henri Mondor, Créteil, France

Abstract

Abstract Background Ileal pouch-anal anastomosis (IPAA) is the standard of care after total proctocolectomy for ulcerative colitis (UC). However, inflammation often develops in the pouch, leading to acute or recurrent/chronic pouchitis (R/CP). MicroRNAs (miRNA) are used as accurate diagnostic and predictive biomarkers in many human diseases, including inflammatory bowel diseases. Therefore, we aimed to identify an miRNA-based biomarker to predict the occurrence of R/CP in patients with UC after colectomy and IPAA. Methods We conducted a retrospective study in 3 tertiary centers in France. We included patients with UC who had undergone IPAA with or without subsequent R/CP. Paraffin-embedded biopsies collected from the terminal ileum during the proctocolectomy procedure were used for microarray analysis of miRNA expression profiles. Deep neural network–based classifiers were used to identify biomarkers predicting R/CP using miRNA expression and relevant biological and clinical factors in a discovery cohort of 29 patients. The classification algorithm was tested in an independent validation cohort of 28 patients. Results A combination of 11 miRNA expression profiles and 3 biological/clinical factors predicted the outcome of R/CP with 88% accuracy (area under the curve = 0.94) in the discovery cohort. The performance of the classification algorithm was confirmed in the validation cohort with 88% accuracy (area under the curve = 0.90). Apoptosis, cytoskeletal regulation by Rho GTPase, and fibroblast growth factor signaling were the most dysregulated targets of the 11 selected miRNAs. Conclusions We developed and validated a computational miRNA-based algorithm for accurately predicting R/CP in patients with UC after IPAA.

Funder

French Institute of Health

Université de Paris, and the Investisements d’Avenir

Laboratoire d’Excellence LABEX INFLAMEX

Publisher

Oxford University Press (OUP)

Subject

Gastroenterology,Immunology and Allergy

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