When simplicity triumphs: niche specialization of gut bacteria exists even for simple fiber structures

Author:

Xu Haidi123,Pudlo Nicholas A4,Cantu-Jungles Thaisa M12,Tuncil Yunus E56,Nie Xin12,Kaur Amandeep12,Reuhs Bradley L12,Martens Eric C4,Hamaker Bruce R12

Affiliation:

1. Whistler Center for Carbohydrate Research , Department of Food Science, 745 Agriculture Mall Drive, , West Lafayette, IN 47907 , United States

2. Purdue University , Department of Food Science, 745 Agriculture Mall Drive, , West Lafayette, IN 47907 , United States

3. Present address: Nestlé Health Science , Shanghai , P.R. China

4. Department of Microbiology and Immunology, Medical Sciences Research Building II, 1150 W Medical Center Dr., University of Michigan Medical School , Ann Arbor, MI 48109 , United States

5. Food Engineering Department , Yeni Meram Boulevard Kasım Halife Street, , Konya 42090 , Turkey

6. Necmettin Erbakan University , Yeni Meram Boulevard Kasım Halife Street, , Konya 42090 , Turkey

Abstract

Abstract Structurally complex corn bran arabinoxylan (CAX) was used as a model glycan to investigate gut bacteria growth and competition on different AX-based fine structures. Nine hydrolyzate segments of the CAX polymer varying in chemical structure (sugars and linkages), CAX, five less complex non-corn arabinoxylans, and xylose and glucose were ranked from structurally complex to simple. The substrate panel promoted different overall growth and rates of growth of eight Bacteroides xylan-degrading strains. For example, Bacteroides cellulosilyticus DSM 14838 (Bacteroides cellulosilyticus) grew well on an array of complex and simple structures, while Bacteroides ovatus 3-1-23 grew well only on the simple structures. In a competition experiment, B. cellulosilyticus growth was favored over B. ovatus on the complex AX-based structure. On the other hand, on the simple structure, B. ovatus strongly outcompeted B. cellulosilyticus, which was eliminated from the competitive environment by Day 11. This adaptation to fine structure and resulting competition dynamics indicate that dietary fiber chemical structures, whether complex or simple, favor certain gut bacteria. Overall, this work supports a concept that fiber degraders diversify their competitive abilities to access substrates across the spectrum of heterogeneity of fine structural features of dietary fibers.

Publisher

Oxford University Press (OUP)

Reference12 articles.

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