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Biology subjects

Vuong, A. T.

Publications and source records attributed to Vuong, A. T..

4 recordsLinked to original sources

Targeting the IRE1α/XBP1 Signaling Axis Suppresses Rhabdomyosarcoma Growth and Promotes Myogenic Differentiation

Rhabdomyosarcoma (RMS) is a pediatric soft-tissue sarcoma arising from mesenchymal progenitors with skeletal muscle features. The unfolded protein response (UPR) maintains proteostasis during endoplasmic reticulum stress, with the IRE1-XBP1 axis representing a key signaling branch. Here, we demonstrate that components of this pathway are significantly upregulated in RMS cell lines and primary tumors. Genetic or pharmacological inhibition of IRE1 or spliced XBP1 (sXBP1) suppresses cell proliferation, promotes terminal myogenic differentiation, and enhances vincristine-induced cytotoxicity in RMS cells. Silencing of sXBP1 further reduces the cancer stem-like cell population and impairs migration and invasion. Mechanistically, IRE1-XBP1 signaling promotes RMS progression through sXBP1-dependent upregulation of BMPR1A and subsequent activation of BMP-SMAD1 signaling. Consistently, inducible knockdown of sXBP1 or pharmacological inhibition of IRE1 endonuclease activity significantly attenuates xenograft RMS growth. Collectively, these findings identify the IRE1-XBP1 axis as a critical regulator of RMS growth, differentiation, and chemoresistance, and support its therapeutic targeting in RMS.

cancer biology↗

TAK1 is a key regulator of oncogenic signaling and differentiation blockade in rhabdomyosarcoma

Rhabdomyosarcoma (RMS) is a malignant soft tissue sarcoma with a skeletal muscle phenotype, accounting for approximately 50% of all pediatric soft tissue sarcomas and 8% of all childhood cancers. Although RMS cells express myogenic regulatory factors, they fail to undergo terminal differentiation into mature muscle cells. Transforming growth factor {beta}-activated kinase 1 (TAK1) is a major signaling protein that activates multiple intracellular pathways in response to growth factors, cytokines, and microbial products. Emerging evidence suggests that TAK1 is also an important regulator of self-renewal, proliferation, and differentiation of muscle progenitor cells. However, the role and mechanisms of action of TAK1 in RMS remain completely unknown. In this study, we demonstrate that TAK1 expression and activity are markedly elevated in a panel of RMS cell lines and in patient tumor specimens. Reverse phase protein array (RPPA) analyses revealed that TAK1 regulates the expression and activity of many molecules involved in cell cycle control, cell proliferation, and oncogenic signaling. Genetic knockdown or pharmacological inhibition of TAK1 suppresses RMS cell proliferation, migration, and invasiveness, while also promoting terminal myogenic differentiation. TAK1 inhibits differentiation in RMS, at least in part, through up-regulating YAP1 signaling. Our results also demonstrate that inducible knockdown of TAK1 in human RMS xenografts retards tumor growth and enhances myogenic differentiation in vivo. Collectively, these findings uncover a previously unrecognized role for TAK1 in RMS growth and differentiation, and suggest that TAK1 can be a potential therapeutic target for the treatment of RMS.

cancer biology↗

Targeting the canonical ER stress IRE1α/XBP1 pathway counteracts pancreatic cancer-induced skeletal muscle wasting

Cancer-driven cachexia is a deleterious syndrome which involves progressive loss of skeletal muscle mass with or without fat loss, fatigue, and weakness that cannot be reversed by nutritional intake. Recent studies have shown deregulation of endoplasmic reticulum (ER)-induced unfolded protein response (UPR) pathways in skeletal muscle in various catabolic conditions, including cancer growth. However, the role of individual arms of the UPR in the regulation of muscle mass remains poorly understood. Here, we demonstrate that the IRE1/XBP1 arm of the UPR stimulates the activation of ubiquitin-proteasome system, autophagy, JAK-STAT3 signaling, and fatty acid metabolism in skeletal muscle of the KPC mouse model of pancreatic cancer cachexia. Furthermore, our results show that IRE1/XBP1 pathway is a key contributor to cachexia as targeted ablation of XBP1 transcription factor in mouse skeletal muscle inhibits KPC tumor-induced muscle wasting. Transcriptionally active XBP1 protein binds to the promoter region of multiple genes, such as Map1lc3b, Fbxo32, and Il6, whose products are involved in skeletal muscle wasting. Treatment of KPC tumor-bearing mice with 4{micro}8C, a small molecule IRE1 inhibitor, reverses cachexia-induced molecular changes and improves skeletal muscle mass and strength. Altogether, our study highlights that the IRE1/XBP1 signaling axis mediates pancreatic cancer-induced muscle wasting and inhibition of this pathway could be a potential approach to mitigate muscle wasting in pancreatic cancer patients.

physiology↗

The TWEAK/Fn14 signaling promotes skeletal muscle wasting during cancer cachexia

Cachexia is an involuntary loss of body weight mostly due to skeletal muscle wasting. The proinflammatory cytokine TWEAK and its receptor Fn14 constitute a major signaling system that regulates skeletal muscle mass in diverse conditions. However, the role of TWEAK/Fn14 system in the regulation of skeletal muscle mass during cancer-induced cachexia remains poorly understood. In this study, we demonstrate that the levels of Fn14, but not TWEAK, are induced in skeletal muscle of multiple mouse models of cancer cachexia. Targeted deletion of Fn14 inhibits muscle wasting and gene expression of multiple components of the ER stress-induced unfolded protein response (UPR) in the KPC mouse model of pancreatic ductal adenocarcinoma (PDAC) cancer cachexia. The TWEAK/Fn14 signaling activates PERK and IRE1 arm of the UPR and inhibits protein synthesis in cultured primary myotubes. Inhibition of PERK using pharmacological or molecular approaches improves protein synthesis and inhibits atrophy in TWEAK-treated cultured myotubes. Silencing of Fn14 in KPC cells prior to their inoculation in pancreas of mice also attenuates tumor growth without having any significant effect on muscle atrophy. The knockdown of Fn14 inhibits proliferation, migration, and invasion of cultured KPC cells. Finally, our results demonstrate that targeted ablation of Fn14 also attenuates muscle atrophy in the Lewis lung carcinoma model of cancer cachexia. Altogether, our study provides initial evidence that the inhibition of TWEAK/Fn14 signaling can prevent tumor growth and skeletal muscle wasting during cancer-induced cachexia.

cell biology↗