TY - JOUR
T1 - Distinct Signatures of Tumor-Associated Microbiota and Metabolome in Low-Grade vs. High-Grade Dysplastic Colon Polyps
T2 - Inference of Their Role in Tumor Initiation and Progression
AU - Clavenna, Michela Giulia
AU - La Vecchia, Marta
AU - Sculco, Marika
AU - Joseph, Soni
AU - Barberis, Elettra
AU - Amede, Elia
AU - Mellai, Marta
AU - Brossa, Silvia
AU - Borgonovi, Giulia
AU - Occhipinti, Pietro
AU - Boldorini, Renzo
AU - Robotti, Elisa
AU - Azzimonti, Barbara
AU - Bona, Elisa
AU - Pasolli, Edoardo
AU - Ferrante, Daniela
AU - Manfredi, Marcello
AU - Aspesi, Anna
AU - Dianzani, Irma
N1 - Publisher Copyright:
© 2023 by the authors.
PY - 2023/6
Y1 - 2023/6
N2 - According to the driver–passenger model for colorectal cancer (CRC), the tumor-associated microbiota is a dynamic ecosystem of bacterial species where bacteria with carcinogenic features linked to CRC initiation are defined as “drivers”, while opportunistic bacteria colonizing more advanced tumor stages are known as “passengers”. We reasoned that also gut microbiota-associated metabolites may be differentially enriched according to tumor stage, and be potential determinants of CRC development. Thus, we characterized the mucosa- and lumen-associated microbiota (MAM and LAM, respectively) and mucosa-associated metabolites in low- vs. high-grade dysplastic colon polyps from 78 patients. We show that MAM, obtained with a new biopsy-preserving approach, and LAM differ in composition and α/β-diversity. By stratifying patients for polyp histology, we found that bacteria proposed as passengers by previous studies colonized high-grade dysplastic adenomas, whereas driver taxa were enriched in low-grade polyps. Furthermore, we report altered “mucosa-associated metabolite” levels in low- vs. high-grade groups. Integrated microbiota-metabolome analysis suggests the involvement of the gut microbiota in the production and consumption of these metabolites. Altogether, our findings support the involvement of bacterial species and associated metabolites in CRC mucosal homeostasis in a tumor-stage-specific manner. These distinct signatures may be used to distinguish low-grade from high-grade dysplastic polyps.
AB - According to the driver–passenger model for colorectal cancer (CRC), the tumor-associated microbiota is a dynamic ecosystem of bacterial species where bacteria with carcinogenic features linked to CRC initiation are defined as “drivers”, while opportunistic bacteria colonizing more advanced tumor stages are known as “passengers”. We reasoned that also gut microbiota-associated metabolites may be differentially enriched according to tumor stage, and be potential determinants of CRC development. Thus, we characterized the mucosa- and lumen-associated microbiota (MAM and LAM, respectively) and mucosa-associated metabolites in low- vs. high-grade dysplastic colon polyps from 78 patients. We show that MAM, obtained with a new biopsy-preserving approach, and LAM differ in composition and α/β-diversity. By stratifying patients for polyp histology, we found that bacteria proposed as passengers by previous studies colonized high-grade dysplastic adenomas, whereas driver taxa were enriched in low-grade polyps. Furthermore, we report altered “mucosa-associated metabolite” levels in low- vs. high-grade groups. Integrated microbiota-metabolome analysis suggests the involvement of the gut microbiota in the production and consumption of these metabolites. Altogether, our findings support the involvement of bacterial species and associated metabolites in CRC mucosal homeostasis in a tumor-stage-specific manner. These distinct signatures may be used to distinguish low-grade from high-grade dysplastic polyps.
KW - colon polyp
KW - colorectal cancer
KW - driver bacteria
KW - gut
KW - lumen-associated microbiota
KW - microbiota-derived metabolites
KW - mucosa-associated microbiota
KW - passenger bacteria
UR - https://www.scopus.com/pages/publications/85164014629
U2 - 10.3390/cancers15123065
DO - 10.3390/cancers15123065
M3 - Article
SN - 2072-6694
VL - 15
JO - Cancers
JF - Cancers
IS - 12
M1 - 3065
ER -