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Leucine Repeat Rich Kinase 1 Controls Osteoclast Activity by Managing Lysosomal Trafficking and Secretion
Sandi Shen1,2, Mingjue Si1,2, Canjun Zeng1,2
1Musculoskeletal Disease Center, Jerry L Pettis VA Medical Center, Loma Linda, CA 92357, USA.
Abstract:
We previously demonstrated that mice with targeted deletion of the leucine repeat rich kinase 1 (Lrrk1) gene were osteopetrotic due to the failure of osteoclasts to resorb bone. To determine how LRRK1 regulates osteoclast activity, we examined the intracellular and extracellular acidification with an acidotropic probe, acridine orange, in live osteoclasts on bone slices. We examined lysosome distribution in osteoclasts by localization of LAMP-2, cathepsin K, and v-ATPase by immunofluorescent staining with specific antibodies. We found that both vertical and horizontal cross-sectional images of the wild-type (WT) osteoclasts showed orange-staining of the intracellular acidic vacuoles/lysosomes dispersed to the ruffled border. By contrast, the LRRK1 deficient osteoclasts exhibited fluorescent orange staining in the cytoplasm away from the extracellular lacunae because of an altered distribution of the acidic vacuoles/lysosomes. In addition, WT osteoclasts displayed a peripheral distribution of LAMP-2 positive lysosomes with a typical actin ring. The clustered F-actin constitutes a peripheral sealing zone and a ruffled border which was stretched out into a resorption pit. The LAMP-2 positive lysosomes were also distributed to the sealing zone, and the cell was associated with a resorption pit. By contrast, LRRK1-deficient osteoclasts showed diffused F-actin throughout the cytoplasm. The sealing zone was weak and not associated with a resorption pit. LAMP-2 positive lysosomes were also diffuse in the cytoplasm and were not distributed to the ruffled border. Although the LRRK1-deficient osteoclast expressed normal levels of cathepsin K and v-ATPase, the lysosomal-associated cathepsin K and v-ATPase were not accumulated at the ruffled border in Lrrk1 KO osteoclasts. Our data indicate that LRRK1 controls osteoclast activity by regulating lysosomal distribution, acid secretion, and protease exocytosis.
Insights
Leucine repeat rich kinase 1 (LRRK1) is crucial for osteoclast function. LRRK1 deficiency impairs lysosomal distribution and acid secretion, hindering bone resorption in osteopetrotic mice.
Area of Science:
- Bone Biology
- Cell Biology
- Molecular Biology
Background:
- Osteopetrosis is a bone disorder characterized by impaired osteoclast function.
- Leucine repeat rich kinase 1 (LRRK1) has been implicated in osteoclast activity.
Purpose of the Study:
- To elucidate the role of LRRK1 in regulating osteoclast activity and bone resorption.
- To investigate the mechanisms by which LRRK1 influences lysosomal function and secretion in osteoclasts.
Main Methods:
- Utilized live osteoclasts on bone slices with acridine orange for acidification analysis.
- Employed immunofluorescent staining for LAMP-2, cathepsin K, and v-ATPase to assess lysosome distribution.
- Analyzed F-actin distribution and sealing zone formation in wild-type and LRRK1-deficient osteoclasts.
Main Results:
- LRRK1-deficient osteoclasts showed altered lysosomal distribution, with acidic vacuoles located away from the ruffled border.
- Impaired actin ring formation and sealing zone development were observed in LRRK1-deficient osteoclasts.
- While cathepsin K and v-ATPase levels were normal, their accumulation at the ruffled border was reduced in LRRK1-deficient osteoclasts.
Conclusions:
- LRRK1 is essential for proper lysosomal trafficking and exocytosis in osteoclasts.
- LRRK1 regulates osteoclast-mediated bone resorption by controlling acid secretion and protease release.
- Targeting LRRK1 may offer therapeutic strategies for bone disorders characterized by impaired osteoclast function.
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