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Latent transforming growth factor binding protein 4 regulates transforming growth factor beta receptor stability
Chi-Ting Su1, Jenq-Wen Huang2, Chih-Kang Chiang2
1Department of Human Genetics, University of Pittsburgh Graduate School of Public Health, 130 DeSoto Street, Crabtree Hall A300, Pittsburgh, PA 15261, USA.
Abstract:
Mutations in the gene for the latent transforming growth factor beta binding protein 4 (LTBP4) cause autosomal recessive cutis laxa type 1C. To understand the molecular disease mechanisms of this disease, we investigated the impact of LTBP4 loss on transforming growth factor beta (TGFβ) signaling. Despite elevated extracellular TGFβ activity, downstream signaling molecules of the TGFβ pathway, including pSMAD2 and pERK, were down-regulated in LTBP4 mutant human dermal fibroblasts. In addition, TGFβ receptors 1 and 2 (TGFBR1 and TGFBR2) were reduced at the protein but not at the ribonucleic acid level. Treatment with exogenous TGFβ1 led to an initially rapid increase in SMAD2 phosphorylation followed by a sustained depression of phosphorylation and receptor abundance. In mutant cells TGFBR1 was co-localized with lysosomes. Treatment with a TGFBR1 kinase inhibitor, endocytosis inhibitors or a lysosome inhibitor, normalized the levels of TGFBR1 and TGFBR2. Co-immunoprecipitation demonstrated a molecular interaction between LTBP4 and TGFBR2. Knockdown of LTBP4 reduced TGFβ receptor abundance and signaling in normal cells and supplementation of recombinant LTBP4 enhanced these measures in mutant cells. In a mouse model of Ltbp4 deficiency, reduced TGFβ signaling and receptor levels were normalized upon TGFBR1 kinase inhibitor treatment. Our results show that LTBP4 interacts with TGFBR2 and stabilizes TGFβ receptors by preventing their endocytosis and lysosomal degradation in a ligand-dependent and receptor kinase activity-dependent manner. These findings identify LTBP4 as a key molecule required for the stability of the TGFβ receptor complex, and a new mechanism by which the extracellular matrix regulates cytokine receptor signaling.
Insights
Latent transforming growth factor beta binding protein 4 (LTBP4) loss impairs transforming growth factor beta (TGFβ) signaling by reducing TGFβ receptor stability. LTBP4 stabilizes TGFβ receptors, preventing their degradation and maintaining signaling pathways.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- Mutations in the latent transforming growth factor beta binding protein 4 (LTBP4) gene cause autosomal recessive cutis laxa type 1C.
- The precise molecular mechanisms linking LTBP4 deficiency to altered transforming growth factor beta (TGFβ) signaling remain unclear.
Purpose of the Study:
- To investigate the impact of LTBP4 loss on TGFβ signaling pathways.
- To elucidate the role of LTBP4 in the regulation of TGFβ receptor stability and function.
Main Methods:
- Analysis of TGFβ signaling molecules (pSMAD2, pERK) in LTBP4 mutant fibroblasts.
- Assessment of TGFβ receptor 1 and 2 (TGFBR1, TGFBR2) protein and RNA levels.
- Investigating the effect of exogenous TGFβ1, TGFBR1 kinase inhibitors, endocytosis inhibitors, and lysosome inhibitors.
- Co-immunoprecipitation to determine LTBP4-TGFBR2 interaction.
- LTBP4 knockdown and recombinant LTBP4 supplementation experiments.
- Evaluation in a mouse model of Ltbp4 deficiency.
Main Results:
- LTBP4 mutant fibroblasts exhibited down-regulated pSMAD2 and pERK despite elevated extracellular TGFβ.
- Reduced protein levels of TGFBR1 and TGFBR2 were observed in LTBP4 mutant cells.
- LTBP4 interacts with TGFBR2 and stabilizes TGFβ receptors, preventing their endocytosis and lysosomal degradation.
- Inhibition of endocytosis or lysosomal degradation normalized TGFβ receptor levels.
- LTBP4 deficiency reduced TGFβ receptor abundance and signaling in normal cells.
Conclusions:
- LTBP4 is crucial for maintaining TGFβ receptor stability and signaling.
- LTBP4 prevents ligand-dependent and receptor kinase activity-dependent endocytosis and lysosomal degradation of TGFβ receptors.
- This study reveals a novel mechanism for extracellular matrix regulation of cytokine receptor signaling.
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