OA susceptibility in mice is partially mediated by the gut microbiome, is transferrable via microbiome

Emmaline Prinz1,2, Leoni Schlupp1, Gabby Dyson1

  • 1Arthritis & Clinical Immunology Program, Oklahoma Medical Research Foundation, Oklahoma City, Oklahoma, USA.

PubMed
Abstract

Insights

The gut microbiome in MRL mice protects against osteoarthritis (OA). Transferring this microbiome reduces OA severity and alters immune cell profiles, demonstrating its protective role.

Area of Science:

  • Microbiome research
  • Immunology
  • Osteoarthritis (OA) research

Background:

  • The Murphy Roths Large (MRL)/MpJ mouse strain exhibits inherent protection against post-traumatic osteoarthritis (OA).
  • The role of the microbiome in this OA protection has not been previously investigated.

Purpose of the Study:

  • To characterize microbiome differences between MRL and wild-type (B6) mice.
  • To evaluate the impact of microbiome transplantation on OA development and progression.
  • To investigate microbiome-associated immunophenotypes in the context of OA protection.

Main Methods:

  • Cecal microbiota transplantation from MRL to B6 mice before and after surgical induction of OA (disruption of the medial meniscus - DMM).
  • Assessment of OA histopathology (OARSI scores), synovitis, and osteophyte formation 8 weeks post-DMM.
  • 16S rRNA gene sequencing for microbiome analysis and metagenomic function imputation.
  • Mass cytometry for immunophenotyping.

Main Results:

  • Microbiome transplantation from MRL to B6 mice prior to DMM significantly reduced OA histopathology (70%), synovitis (60%), and osteophyte scores (30%).
  • Transplantation performed shortly after DMM (48 hours) also improved OA outcomes, but delayed transplantation (1-2 weeks) did not.
  • Progeny (F1 and F2 generations) of transplanted mice also showed OA protection.
  • Specific bacterial clades, such as *Lactobacillus* and *Rikenellaceae*, were correlated with OA outcomes.
  • Transplanted mice exhibited altered immunophenotypes, including reduced double-negative T cells and increased CD25+CD4+ T cells.

Conclusions:

  • The gut microbiome plays a significant role in the osteoarthritis protection observed in MRL mice.
  • Microbiome transplantation is a viable method to transfer this protective effect.
  • Transplantation induces systemic immunophenotypic changes that correlate with OA protection.

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