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A Machine Learning-Based Diagnostic Model for Crohn's Disease and Ulcerative Colitis Utilizing Fecal Microbiome

Hyeonwoo Kim1, Ji Eun Na2, Sangsoo Kim1

  • 1Department of Bioinformatics, Soongsil University, Seoul 06978, Republic of Korea.

Microorganisms
|January 23, 2024
PubMed
Summary
This summary is machine-generated.

Machine learning analysis of fecal microbiome data shows promise for diagnosing inflammatory bowel disease (IBD). A sparse partial least squares discriminant analysis (sPLS-DA) model accurately distinguished between IBD and healthy individuals, and between Crohn

Keywords:
Crohn’s diseasefecal microbiomeinflammatory bowel diseasemachine learningsparse partial least squares discriminant analysisulcerative colitis

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Area of Science:

  • Microbiome research
  • Machine learning applications in medicine
  • Gastroenterology

Background:

  • Fecal microbiome analysis shows potential for diagnosing inflammatory bowel disease (IBD).
  • Machine learning (ML) techniques can be applied to microbiome data for disease prediction.
  • Distinguishing between Crohn's disease (CD), ulcerative colitis (UC), and healthy controls (HCs) is crucial for effective IBD management.

Purpose of the Study:

  • To develop and validate a machine learning model for differentiating IBD subtypes and healthy controls using fecal microbiome data.
  • To assess the diagnostic performance of the sparse partial least squares discriminant analysis (sPLS-DA) model.

Main Methods:

  • 16S rRNA gene sequencing was performed on fecal samples from CD (n=671), UC (n=114), and HC (n=1462) cohorts.
  • A streamlined bioinformatics pipeline (HmmUFOTU) was used for data processing, retaining 1517 phylotypes and 1846 samples.
  • Sparse partial least squares discriminant analysis (sPLS-DA) was employed to build binary prediction models after downsampling and data splitting.

Main Results:

  • The sPLS-DA model achieved high accuracy in differentiating IBD from HC (mean accuracy=0.950, AUC=0.992).
  • The model also demonstrated high accuracy in distinguishing CD from UC (mean accuracy=0.945, AUC=0.988).
  • These results were validated on a separate test set derived from multicenter cohorts.

Conclusions:

  • Machine learning models, specifically sPLS-DA, based on fecal microbiome analysis hold significant diagnostic potential for IBD.
  • The developed model can effectively differentiate between IBD and healthy individuals.
  • The model also shows strong capability in distinguishing between Crohn's disease and ulcerative colitis.