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March 14, 2026Cancers3 citationsOpen Access

Defining a Multi-Omic, AI-Enabled Stool Screening Paradigm for Colorectal Cancer: A Consensus Framework for Clinical Translation

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ALArturo Loaiza-BonillaYLYan LeyfmanVCViviana Cortiana

Key Points

  • To enhance the detection of advanced precancerous lesions in colorectal cancer using a multi-omic stool screening approach integrated with AI.
  • Develop a consensus framework for stool screening incorporating epigenetic markers and gut microbiome features.
  • Utilize next-generation multitarget stool DNA assays to assess sensitivity and specificity.
  • Provide mitigation strategies for microbiome model susceptibility to batch effects.
  • Improving the sensitivity for advanced precancerous lesions from approximately 43% to 55-65% could detect 13-23 additional lesions per 1000 screened individuals.
  • Highlighted the importance of integrating multi-omics for early tumor biology insights.

Abstract

Colorectal cancer (CRC) develops through both conventional adenoma–carcinoma and serrated neoplasia pathways, yet noninvasive screening still under-detects the advanced precursor lesions that enable true cancer prevention. Stool-based screening reduces CRC mortality, but its preventive impact remains constrained by limited detection of advanced precancerous lesions (APLs), including advanced adenomas and sessile serrated lesions. Next-generation multitarget stool DNA assays (mt-sDNA; e.g., Cologuard Plus) have established high sensitivity for CRC and specificity approaching 94%, leaving improved APL detection as the principal opportunity for innovation. This review presents a consensus framework for a multi-omic stool screening paradigm that integrates host epigenetic markers (DNA methylation) with gut microbiome features using artificial intelligence (AI). Multi-omics capture complementary layers of early tumor biology: epithelial shedding and field effects reflected in host methylation signals together with luminal ecological and inflammatory changes represented by microbial features. Evidence from cross-cohort microbiome studies indicates that microbial signatures provide an additive—rather than standalone—axis of information for CRC and its precursor lesions. Because microbiome-based models are highly susceptible to batch effects arising from collection devices, extraction chemistry, sequencing platforms, and bioinformatic pipelines, practical mitigation strategies are outlined, including harmonized pre-analytics, batch-aware study design, leakage-resistant validation, and computational harmonization. A translational roadmap linking analytical validity, locked-model development, and prospective colonoscopy-verified clinical validation is proposed, aligned with TRIPOD + AI, STARD, PROBAST-AI, SPIRIT-AI, CONSORT-AI, and DECIDE-AI reporting standards. Scenario modeling using BLUE-C prevalence estimates suggests that improving APL sensitivity from approximately 43% to 55–65% at ~94% specificity could translate to detecting roughly 13–23 additional advanced precancerous lesions per 1000 individuals screened, highlighting the potential prevention impact of a multi-omic approach. This framework aims to guide developers and clinical investigators toward next-generation stool tests capable of materially improving precursor-lesion detection while maintaining clinically acceptable specificity.

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Cite This Study

Loaiza-Bonilla et al. (2026) studied this question.

synapsesocial.com/papers/69b4fc33b39f7826a300cef3https://doi.org/10.3390/cancers18060909
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