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Published on: May 12, 2023
SHOX triggers the lysosomal pathway of apoptosis via oxidative stress
Georgi Hristov1, Tiina Marttila, Claudia Durand
1Tumour Virology Division F010, German Cancer Research Center (DKFZ), Im Neuenheimer Feld 242, Heidelberg 69120, Germany.
Abstract:
The SHOX gene encodes for a transcription factor important for normal bone development. Mutations in the gene are associated with idiopathic short stature and are responsible for the growth failure and skeletal defects found in the majority of patients with Léri-Weill dyschondrosteosis (LWD) and Langer mesomelic dysplasia. SHOX is expressed in growth plate chondrocytes where it is supposed to modulate the proliferation, differentiation and cell death of these cells. Supporting this hypothesis, in vitro studies have shown that SHOX expression induces cell cycle arrest and apoptosis in both transformed and primary cells. In this study, we further characterized the cell death mechanisms triggered by SHOX and compared them with the effects induced by one clinically relevant mutant form of SHOX, detected in LWD patients (SHOX R153L) and a SHOX C-terminally truncated version (L185X). We show that SHOX expression in U2OS osteosarcoma cells leads to oxidative stress that, in turn, induces lysosomal membrane rupture with release of active cathepsin B to the cytosol and subsequent activation of the intrinsic apoptotic pathway characterized by mitochondrial membrane permeabilization and caspase activation. Importantly, cells expressing SHOX R153L or L185X did not display any of these features. Given the fact that many of the events observed in SHOX-expressing cells also characterize the complex cell death process occurring in the growth plate during endochondral ossification, our findings further support the hypothesis that SHOX may play a central role in the regulation of the cell death pathways activated during long bone development.
Insights
The SHOX gene, crucial for bone development, triggers cell death via oxidative stress and apoptosis. Mutant SHOX forms, linked to Léri-Weill dyschondrosteosis, do not induce these effects, highlighting SHOX
Area of Science:
- Molecular Biology
- Genetics
- Cell Biology
Background:
- The SHOX gene is vital for bone development and its mutations cause short stature, Léri-Weill dyschondrosteosis (LWD), and Langer mesomelic dysplasia.
- SHOX is expressed in growth plate chondrocytes, regulating cell proliferation, differentiation, and death.
Purpose of the Study:
- To investigate the cell death mechanisms induced by SHOX.
- To compare SHOX-induced cell death with that caused by LWD-associated mutant forms (SHOX R153L and L185X).
Main Methods:
- SHOX expression in U2OS osteosarcoma cells.
- Analysis of oxidative stress, lysosomal membrane integrity, cathepsin B release, mitochondrial function, and caspase activation.
- Comparison with cells expressing SHOX R153L or L185X mutants.
Main Results:
- SHOX expression induced oxidative stress, leading to lysosomal rupture and cathepsin B release.
- This triggered the intrinsic apoptotic pathway, involving mitochondrial damage and caspase activation.
- SHOX R153L and L185X mutants did not induce these cell death events.
Conclusions:
- SHOX induces cell death through oxidative stress and apoptosis, involving lysosomal and mitochondrial pathways.
- Mutant SHOX forms found in LWD patients lack these cell death-inducing properties.
- These findings support SHOX's role in regulating cell death during long bone development.
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