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A Novel in vivo Gene Transfer Technique and in vitro Cell Based Assays for the Study of Bone Loss in Musculoskeletal Disorders
Published on: June 8, 2014
Construction a novel osteoporosis model in immune-deficient mice with natural ageing
Zhaoxia Ma1, Lihua Qiu1, Jinyan Li1
1Yunnan Key Laboratory for Basic Research on Bone and Joint Diseases, Kunming University, Kunming, Yunnan, 650214, China.
Abstract:
Osteoporosis (OP) predominantly affects elderly individuals. Stem cells show potential for treating OP. However, animal models with normal immune function can eliminate implanted human cells. This study utilized naturally aging NOD/SCID mice, which exhibit immunodeficiency, to create a human osteoporosis model. This approach helps to minimize the premature immune clearance of transplanted allogeneic or xenogeneic cells in preclinical studies, allowing for a more accurate replication of the clinical pharmacological and pharmacokinetic processes involved in stem cell interventions for osteoporosis. NOD/SCID mice were fed until 12, 32, and 43 weeks of age, respectively, and then euthanized. We harvested lumbar vertebra for Micro-Computed Tomography (Micro-CT) scanning and pathological examination. Additionally, we performed biomechanical testing of lumbar vertebra to assess the severity of osteoporosis. We utilized real-time RT-PCR to assess gene expression changes associated with bone metabolism, aging, inflammation, oxidative stress, and the Tgf-β1/Smad3 signaling pathway. In addition, the protein expression levels of P16, Tgf-β1 and Smad3 were detected using Western Blotting (WB). In comparison to 12-week-old mice, the 32-week-old and 43-week-old mice displayed significantly sparser and fractured trabeculae in their lumbar vertebra, lower bone mineral density (BMD), and changes in bone microstructural parameters (∗∗P < 0.01, ∗∗∗P < 0.001). Additionally, compared to 12-week-old mice, the 32-week-old and 43-week-old mice exhibited decreased expression of osteogenic genes (Alp, Opg, Sp7, Col1a1), increased expression of osteoclastic gene (Rankl), the number of TRAP-positive osteoclasts significantly increased in 32-week-old and 43-week-old mice compared to 12-week-old mice. The expression of genes related to aging and inflammatory (P16, Il-1β, Tnf-α) increases with advancing age (∗P < 0.05, ∗∗P < 0.01, ∗∗∗P < 0.001). The expression of oxidative stress-related genes (Sod1, Sod2, Foxo3, Nrf2), as well as Tgf-β1 and Smad3 decreased with age (∗P < 0.05, ∗∗P < 0.01, ∗∗∗P < 0.001). As age increases, the levels of P16 protein increase, Tgf-β1 and Smad3 proteins decrease. Our study successfully replicated osteoporosis models in NOD/SCID mice at both 32 and 43 weeks, with the latter exhibiting more severe osteoporosis. This condition seems to be driven by factors such as aging, inflammation, oxidative stress, and the Tgf-β1/Smad3 signaling pathway.
Insights
Naturally aging NOD/SCID mice provide a viable model for studying osteoporosis. This research highlights aging, inflammation, oxidative stress, and the Tgf-β1/Smad3 pathway as key drivers of osteoporosis progression.
Area of Science:
- Biomedical Science
- Immunology
- Gerontology
Background:
- Osteoporosis (OP) is a prevalent condition in elderly individuals.
- Stem cell therapies show promise for OP treatment, but immune rejection in animal models hinders preclinical research.
- Naturally immunodeficient NOD/SCID mice offer a solution for modeling human OP and evaluating cell-based therapies.
Purpose of the Study:
- To establish a human osteoporosis model in aged NOD/SCID mice.
- To investigate the pathological and molecular changes associated with aging-induced osteoporosis.
- To assess the utility of this model for preclinical stem cell intervention studies.
Main Methods:
- Aging NOD/SCID mice were analyzed at 12, 32, and 43 weeks.
- Bone structure was evaluated using Micro-Computed Tomography (Micro-CT) and biomechanical testing.
- Gene and protein expression related to bone metabolism, aging, inflammation, oxidative stress, and the Tgf-β1/Smad3 pathway were analyzed via RT-PCR and Western Blotting.
Main Results:
- Aged mice (32 and 43 weeks) exhibited significantly reduced bone mineral density, sparser trabeculae, and increased fractures compared to younger mice.
- Osteogenic gene expression decreased, while osteoclastic gene expression and osteoclast numbers increased with age.
- Aging was associated with increased expression of aging/inflammatory markers (P16, Il-1β, Tnf-α) and decreased expression of oxidative stress markers and Tgf-β1/Smad3 pathway components.
Conclusions:
- Aged NOD/SCID mice effectively model human osteoporosis, with 43-week-old mice showing more severe disease.
- The model facilitates studying osteoporosis pathogenesis driven by aging, inflammation, oxidative stress, and the Tgf-β1/Smad3 pathway.
- This immunodeficient mouse model is suitable for preclinical evaluation of stem cell therapies for osteoporosis, minimizing premature immune clearance of cells.
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