Literature DB >> 31961065

Identification of Cartilage Microbial DNA Signatures and Associations With Knee and Hip Osteoarthritis.

Christopher M Dunn1, Cassandra Velasco1, Alexander Rivas2, Madison Andrews1, Cassandra Garman1, Paul B Jacob3, Matlock A Jeffries1.   

Abstract

OBJECTIVE: Alterations of the gut microbiota have been implicated in many forms of arthritis, but an examination of cartilage microbial patterns has not been performed. This study was undertaken to characterize the microbial DNA profile of articular cartilage and determine changes associated with osteoarthritis (OA).
METHODS: We performed 16S ribosomal RNA gene deep sequencing on eroded and intact cartilage samples from knee OA patients (n = 21 eroded and 21 intact samples) and hip OA patients (n = 34 eroded and 33 intact samples) and cadaver controls (n = 10 knee samples and 10 hip samples). Microbial DNA diversity was assessed, groups were compared, and metagenomic profiles were reconstructed. Confirmation was performed in an independent cohort by clade-specific quantitative polymerase chain reaction. Findings in human cartilage were compared to those in cartilage from OA-susceptible C57BL/6 (B6) mice and OA-resistant MRL/MpJ (MRL) mice. Germ-free B6 mouse cartilage was analyzed as a methodologic control.
RESULTS: Alpha diversity was reduced in human OA versus control samples (P < 0.0001), and in hip versus knee samples (P < 0.0001). Numerous clades were different in human OA versus control samples, and similar findings were noted in comparisons of murine B6 versus MRL mice. Hip samples were microbiologically distinct from knee samples. OA microbial DNA demonstrated increased gram-negative constituents (P = 0.02). Functional analysis demonstrated increases in lipopolysaccharide production (P = 9.9 × 10-3 ), phosphatidylinositol signaling (P = 4.2 × 10-4 ), and nitrogen metabolism (P = 8 × 10-3 ) and decreases in sphingolipid metabolism (P = 7.7 × 10-4 ) associated with OA.
CONCLUSION: Our study reveals a microbial DNA signature in human and mouse cartilage. Alterations in this signature, including increases in gram-negative constituents, occur during the development and progression of human OA. Furthermore, our findings indicate that strain-specific signatures exist within mouse cartilage that mirror human patterns. Further study of the establishment and potential pathogenic role of these DNA signatures is needed.
© 2020, American College of Rheumatology.

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Year:  2020        PMID: 31961065      PMCID: PMC7336391          DOI: 10.1002/art.41210

Source DB:  PubMed          Journal:  Arthritis Rheumatol        ISSN: 2326-5191            Impact factor:   10.995


  53 in total

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10.  Detection and characterization of bacterial nucleic acids in culture-negative synovial tissue and fluid samples from rheumatoid arthritis or osteoarthritis patients.

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Journal:  Sci Rep       Date:  2018-09-24       Impact factor: 4.379

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Authors:  Richard F Loeser; Liubov Arbeeva; Kathryn Kelley; Anthony A Fodor; Shan Sun; Veronica Ulici; Lara Longobardi; Yang Cui; Delisha A Stewart; Susan J Sumner; M Andrea Azcarate-Peril; R Balfour Sartor; Ian M Carroll; Jordan B Renner; Joanne M Jordan; Amanda E Nelson
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7.  Ear wound healing in MRL/MpJ mice is associated with gut microbiome composition and is transferable to non-healer mice via microbiome transplantation.

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9.  Identification and Characterization of the Intra-Articular Microbiome in the Osteoarthritic Knee.

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Review 10.  Another Look at the Contribution of Oral Microbiota to the Pathogenesis of Rheumatoid Arthritis: A Narrative Review.

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