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Loss of tumor suppressor TMEM127 drives RET-mediated transformation through disrupted membrane dynamics
Timothy J Walker1, Eduardo Reyes-Alvarez1, Brandy D Hyndman1
1Division of Cancer Biology and Genetics, Cancer Research Institute, and Department of Pathology and Molecular Medicine, Queen's University, Kingston, Canada.
Abstract:
Internalization from the cell membrane and endosomal trafficking of receptor tyrosine kinases (RTKs) are important regulators of signaling in normal cells that can frequently be disrupted in cancer. The adrenal tumor pheochromocytoma (PCC) can be caused by activating mutations of the rearranged during transfection (RET) receptor tyrosine kinase, or inactivation of TMEM127, a transmembrane tumor suppressor implicated in trafficking of endosomal cargos. However, the role of aberrant receptor trafficking in PCC is not well understood. Here, we show that loss of TMEM127 causes wildtype RET protein accumulation on the cell surface, where increased receptor density facilitates constitutive ligand-independent activity and downstream signaling, driving cell proliferation. Loss of TMEM127 altered normal cell membrane organization and recruitment and stabilization of membrane protein complexes, impaired assembly, and maturation of clathrin-coated pits, and reduced internalization and degradation of cell surface RET. In addition to RTKs, TMEM127 depletion also promoted surface accumulation of several other transmembrane proteins, suggesting it may cause global defects in surface protein activity and function. Together, our data identify TMEM127 as an important determinant of membrane organization including membrane protein diffusability and protein complex assembly and provide a novel paradigm for oncogenesis in PCC where altered membrane dynamics promotes cell surface accumulation and constitutive activity of growth factor receptors to drive aberrant signaling and promote transformation.
Insights
Loss of TMEM127 causes receptor tyrosine kinase (RTK) accumulation on cell surfaces, driving pheochromocytoma (PCC) cell proliferation. This suggests TMEM127 is crucial for regulating cell surface protein trafficking and preventing cancer signaling.
Area of Science:
- Oncology
- Cell Biology
- Molecular Biology
Background:
- Receptor tyrosine kinases (RTKs) regulate cell signaling, and their dysregulation is common in cancer.
- Pheochromocytoma (PCC) can arise from mutations in RET or loss of the tumor suppressor TMEM127.
- The precise role of aberrant receptor trafficking in PCC pathogenesis remains unclear.
Purpose of the Study:
- To investigate the role of TMEM127 in regulating receptor tyrosine kinase (RTK) trafficking and signaling in pheochromocytoma (PCC).
- To elucidate the mechanisms by which TMEM127 loss contributes to oncogenesis in PCC.
Main Methods:
- Studied the effect of TMEM127 loss on wildtype RET protein localization and activity.
- Analyzed cell membrane organization, clathrin-coated pit dynamics, and protein internalization.
- Assessed the impact of TMEM127 depletion on various transmembrane proteins.
Main Results:
- Loss of TMEM127 leads to accumulation of wildtype RET on the cell surface, promoting constitutive activity and downstream signaling.
- TMEM127 deficiency impairs cell membrane organization, clathrin-coated pit maturation, and receptor internalization/degradation.
- TMEM127 depletion causes surface accumulation of multiple transmembrane proteins, indicating broader effects on protein trafficking.
Conclusions:
- TMEM127 is essential for maintaining normal membrane organization, protein complex assembly, and controlling the surface levels of transmembrane proteins.
- Altered membrane dynamics due to TMEM127 loss promote cell surface accumulation and constitutive activity of growth factor receptors, driving PCC oncogenesis.
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