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Published on: October 27, 2020
Cancer-associated transforming growth factor beta type II receptor gene mutant causes activation of bone morphogenic
Savita Bharathy1, Wen Xie, Jonathan M Yingling
1Department of Internal Medicine, University of Medicine and Dentistry of New Jersey-Robert Wood Johnson Medical School, The Cancer Institute of New Jersey, New Brunswick, NJ 08903, USA.
Abstract:
Transforming growth factor beta (TGFbeta) plays a key role in maintaining tissue homeostasis by inducing cell cycle arrest, differentiation and apoptosis, and ensuring genomic integrity. Furthermore, TGFbeta orchestrates the response to tissue injury and mediates repair by inducing epithelial to mesenchymal transition and by stimulating cell motility and invasiveness. Although loss of the homeostatic activity of TGFbeta occurs early on in tumor development, many advanced cancers have coopted the tissue repair function to enhance their metastatic phenotype. How these two functions of TGFbeta become uncoupled during cancer development remains poorly understood. Here, we show that, in human keratinocytes, TGFbeta induces phosphorylation of Smad2 and Smad3 as well as Smad1 and Smad5 and that both pathways are dependent on the kinase activities of the type I and II TGFbeta receptors (T beta R). Moreover, cancer-associated missense mutations of the T beta RII gene (TGFBR2) are associated with at least two different phenotypes. One type of mutant (TGFBR2(E526Q)) is associated with loss of kinase activity and all signaling functions. In contrast, a second mutant (TGFBR2(R537P)) is associated with high intrinsic kinase activity, loss of Smad2/3 activation, and constitutive activation of Smad1/5. Furthermore, this TGFBR2 mutant endows the carcinoma cells with a highly motile and invasive fibroblastoid phenotype. This activated phenotype is T beta RI (Alk-5) independent and can be reversed by the action of a dual T beta RI and T beta RII kinase inhibitor. Thus, identification of such activated T beta RII receptor mutations in tumors may have direct implications for appropriately targeting these cancers with selective therapeutic agents.
Insights
Transforming growth factor beta (TGFbeta) signaling is crucial for tissue repair and cancer metastasis. Specific mutations in TGFbeta receptor type II (TGFBR2) can drive cancer cell motility and invasion.
Area of Science:
- Cell Biology
- Molecular Oncology
- Signal Transduction
Background:
- Transforming growth factor beta (TGFbeta) signaling is vital for tissue homeostasis and repair.
- Dysregulation of TGFbeta signaling contributes to cancer progression and metastasis.
- The dual role of TGFbeta in homeostasis and repair, and its uncoupling in cancer, is not fully understood.
Purpose of the Study:
- To investigate how TGFbeta receptor type II (TGFBR2) mutations affect its signaling pathways.
- To determine the functional consequences of specific TGFBR2 mutations in cancer cells.
- To explore therapeutic strategies targeting aberrant TGFbeta signaling in cancer.
Main Methods:
- Analysis of TGFbeta-induced Smad phosphorylation in human keratinocytes.
- Characterization of cancer-associated TGFBR2 missense mutations (TGFBR2(E526Q) and TGFBR2(R537P)).
- Assessment of cell motility and invasiveness in response to TGFBR2 mutations.
- Evaluation of therapeutic inhibition using a dual T beta RI and T beta RII kinase inhibitor.
Main Results:
- TGFbeta signaling involves Smad2/3 and Smad1/5 pathways, dependent on T beta R kinase activity.
- TGFBR2(E526Q) mutation leads to loss of kinase activity and signaling.
- TGFBR2(R537P) mutation results in constitutive Smad1/5 activation, loss of Smad2/3 activation, and a highly motile, invasive phenotype.
- This activated phenotype is Alk-5 independent and reversible with kinase inhibitors.
Conclusions:
- Cancer-associated TGFBR2 mutations can uncouple TGFbeta's homeostatic and repair functions.
- The TGFBR2(R537P) mutation confers a pro-metastatic phenotype through constitutive Smad1/5 activation.
- Targeting activated TGFbeta receptor kinases may offer a therapeutic strategy for specific cancers.
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