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Updated: Aug 28, 2025

The Monoiodoacetate Model of Osteoarthritis Pain in the Mouse
Published on: May 16, 2016
Targeting CD38 to Suppress Osteoarthritis Development and Associated Pain After Joint Injury in Mice
Paulo Gil Alabarse1, Liang-Yu Chen2, Patricia Oliveira2
1VA San Diego Healthcare System, San Diego, California.
Objective:
This study was undertaken to determine the role of CD38, which can function as an enzyme to degrade NAD+ , in osteoarthritis (OA) development.
Methods:
Human knee cartilage from normal donors and OA donors were examined for CD38 expression. "Gain-of-function," through overexpression of CD38 via transient transfection, and "loss-of-function," through pharmacologic inhibition of CD38, approaches were used to assess the effects of CD38 on intracellular NAD+ :NADH ratio and catabolic activity in chondrocytes. We also initiated joint injury-induced OA by surgical destabilization of the medial meniscus (DMM) in CD38 knockout mice and wild-type (WT; C57BL/6) mice and in WT male mice in the presence or absence of apigenin treatment. Cartilage degradation, synovial inflammation, subchondral bone changes, and pain behavior were evaluated after DMM surgery. We also examined expression of CD38 and the neuropeptide calcitonin gene-related peptide (CGRP) in knee sections from these mice.
Results:
CD38 expression was up-regulated in human knee OA cartilage and in chondrocytes stimulated with the proinflammatory cytokine interleukin-1β (IL-1β). Overexpression of CD38 in chondrocytes resulted in reduced cellular NAD+ :NADH ratio and augmented catabolic responses to IL-1β. These effects were reversed by pharmacologic inhibition of CD38. Cartilage degradation and synovial inflammation, associated with increased CD38 expression in cartilage and synovium, osteophyte formation and subchondral bone sclerosis, and pain-like behavior linked to increased CGRP expression in the synovium were observed in WT mice after joint injury. Such effects were significantly reduced in mice deficient in CD38 through either genetic knockout or pharmacologic inhibition.
Conclusion:
CD38 deficiency exerts OA disease-modifying effects. Inhibition of CD38 has the potential to be a novel therapeutic approach for OA treatment.
Insights
CD38 enzyme activity contributes to osteoarthritis (OA) development by degrading NAD+. Inhibiting CD38 shows promise as a novel therapeutic strategy for OA treatment.
Area of Science:
- Biochemistry
- Immunology
- Orthopedics
Background:
- Osteoarthritis (OA) is a degenerative joint disease.
- CD38 is an enzyme that degrades NAD+.
- The role of CD38 in OA pathogenesis is not fully understood.
Purpose of the Study:
- To investigate the role of CD38 in the development of osteoarthritis.
- To determine the effect of CD38 on NAD+ levels and chondrocyte activity.
- To evaluate CD38 inhibition as a potential OA therapy.
Main Methods:
- Assessed CD38 expression in human OA cartilage.
- Utilized gain-of-function and loss-of-function approaches in chondrocytes.
- Induced OA in CD38 knockout and wild-type mice via surgical destabilization of the medial meniscus (DMM).
- Evaluated cartilage degradation, inflammation, bone changes, and pain behavior.
Main Results:
- CD38 expression is increased in human OA cartilage and IL-1β-stimulated chondrocytes.
- CD38 overexpression reduces NAD+:NADH ratio and enhances catabolic activity.
- CD38 inhibition reverses these effects.
- DMM surgery in wild-type mice led to OA hallmarks and pain, which were reduced in CD38-deficient mice.
- Apigenin treatment also mitigated OA progression.
Conclusions:
- CD38 deficiency demonstrates disease-modifying effects in OA.
- CD38 inhibition represents a potential novel therapeutic approach for OA treatment.
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