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Updated: Oct 2, 2025

Skeletal Phenotype Analysis of a Conditional Stat3 Deletion Mouse Model
Published on: July 3, 2020
Loss of chaperone-mediated autophagy is associated with low vertebral cancellous bone mass
Nisreen Akel1, Ryan S MacLeod2,3, Stuart B Berryhill4
1Department of Physiology and Cell Biology, University of Arkansas for Medical Sciences, Little Rock, AR, USA.
Abstract:
Chaperone-mediated autophagy (CMA) is a protein degradation pathway that eliminates soluble cytoplasmic proteins that are damaged, incorrectly folded, or targeted for selective proteome remodeling. However, the role of CMA in skeletal homeostasis under physiological and pathophysiological conditions is unknown. To address the role of CMA for skeletal homeostasis, we deleted an essential component of the CMA process, namely Lamp2a, from the mouse genome. CRISPR-Cas9-based genome editing led to the deletion of both Lamp2a and Lamp2c, another Lamp2 isoform, producing Lamp2AC global knockout (L2ACgKO) mice. At 5 weeks of age female L2ACgKO mice had lower vertebral cancellous bone mass compared to wild-type (WT) controls, whereas there was no difference between genotypes in male mice at this age. The low bone mass of L2ACgKO mice was associated with elevated RANKL expression and the osteoclast marker genes Trap and Cathepsin K. At 18 weeks of age, both male and female L2ACgKO mice had lower vertebral cancellous bone mass compared to WT controls. The low bone mass of L2ACgKO mice was associated with increased osteoclastogenesis and decreased mineral deposition in cultured cells. Consistent with these findings, specific knockdown of Lamp2a in an osteoblastic cell line increased RANKL expression and decreased mineral deposition. Moreover, similar to what has been observed in other cell types, macroautophagy and proteasomal degradation were upregulated in CMA-deficient osteoblasts in culture. Thus, an increase in other protein degradation pathways may partially compensate for the loss of CMA in osteoblasts. Taken together, our results suggest that CMA plays a role in vertebral cancellous bone mass accrual in young adult mice and that this may be due to an inhibitory role of CMA on osteoclastogenesis or a positive role of CMA in osteoblast formation or function.
Insights
Chaperone-mediated autophagy (CMA) deficiency reduces vertebral bone mass in young adult mice by increasing osteoclast activity. This suggests CMA is crucial for maintaining skeletal homeostasis.
Area of Science:
- Molecular Biology
- Cell Biology
- Skeletal Biology
Background:
- Chaperone-mediated autophagy (CMA) is a key cellular pathway for degrading soluble cytoplasmic proteins.
- The role of CMA in skeletal homeostasis remains largely unexplored.
- Understanding CMA's function is vital for addressing bone-related disorders.
Purpose of the Study:
- To investigate the role of CMA in skeletal homeostasis.
- To determine the impact of CMA deficiency on bone mass and cellular function in mice.
Main Methods:
- Generated Lamp2AC global knockout (L2ACgKO) mice using CRISPR-Cas9 to delete Lamp2a and Lamp2c.
- Assessed vertebral cancellous bone mass in L2ACgKO and wild-type (WT) mice at different ages.
- Analyzed osteoclastogenesis, mineral deposition, and gene expression (RANKL, Trap, Cathepsin K) in vitro and in vivo.
- Investigated compensatory upregulation of macroautophagy and proteasomal degradation in CMA-deficient osteoblasts.
Main Results:
- Female L2ACgKO mice showed reduced vertebral bone mass at 5 weeks, with both sexes affected by 18 weeks.
- Low bone mass correlated with elevated RANKL expression and osteoclast markers.
- In vitro studies revealed increased osteoclastogenesis and decreased mineral deposition in CMA-deficient cells.
- Lamp2a knockdown in osteoblasts increased RANKL and reduced mineral deposition.
- Macroautophagy and proteasomal degradation were upregulated in CMA-deficient osteoblasts.
Conclusions:
- CMA plays a significant role in vertebral cancellous bone mass accrual in young adult mice.
- CMA deficiency may impair skeletal homeostasis by promoting osteoclast activity and/or hindering osteoblast function.
- Alternative protein degradation pathways can partially compensate for CMA loss in osteoblasts.
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