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Blockade of interleukin-6 (IL-6) signaling in dedifferentiated liposarcoma (DDLPS) decreases mouse double minute 2
Abeba Zewdu1, Danielle Braggio2, Gonzalo Lopez3,4
1University of North Carolina, Department of Internal Medicine, Chapel Hill, North Carolina, United States of America.
Abstract:
Effective therapies for retroperitoneal (RP) dedifferentiated liposarcoma (DDLPS) remain unavailable. Loco-regional recurrence occurs in >80% of cases; 5-year disease-specific survival is only 20%. DDLPS is especially prevalent in the retroperitoneum and abdomen; evaluation of the DDLPS microenvironment in these high-fat compartments appears pertinent. Adipose is a main supplier of interleukin-6 (IL6); excessive activation of IL6 signal transducer glycoprotein 130 (GP130) underlies the development of some diseases. The role of GP130 pathway activation remains unstudied in DDLPS, so we examined the role of microenvironment fat cell activation of the IL6/GP130 signaling cascade in DDLPS. All DDLPS tumors and cell lines studied expressed elevated levels of the GP130-encoding gene IL6ST and GP130 protein compared to normal tissue and cell line controls. IL6 increased DDLPS cell growth and migration, possibly through increased signal transducer and activator of transcription 1 (STAT1) and 3 (STAT3) activation, and upregulated mouse double minute 2 (MDM2). GP130 loss conveyed opposite effects; pharmacological blockade of GP130 by SC144 produced the MDM2 splice variant MDM2-ALT1, known to inhibit full length MDM2 (MDM2-FL). Although genomic MDM2 amplification is pathognomonic for DDLPS, mechanisms driving MDM2 expression, regulation, and function beyond the MDM2:p53 negative feedback loop are poorly understood. Our findings suggest a novel preadipocyte DDLPS-promoting role due to IL6 release, via upregulation of DDLPS MDM2 expression. Pharmacological GP130 blockade reduced the IL6-induced increase in DDLPS MDM2 mRNA and protein levels, possibly through enhanced expression of MDM2-ALT1, a possibly targetable pathway with potential as future DDLPS patient therapy.
Insights
Retroperitoneal dedifferentiated liposarcoma (DDLPS) growth is promoted by interleukin-6 (IL6) from fat cells activating glycoprotein 130 (GP130). Blocking GP130 may offer new DDLPS therapies by inhibiting MDM2.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Retroperitoneal dedifferentiated liposarcoma (DDLPS) has poor prognosis and limited therapies.
- The tumor microenvironment, particularly adipose tissue, may influence DDLPS progression.
- Interleukin-6 (IL6) and its signaling pathway involving glycoprotein 130 (GP130) are implicated in other diseases but unstudied in DDLPS.
Purpose of the Study:
- To investigate the role of the IL6/GP130 signaling pathway in DDLPS.
- To explore the influence of microenvironment fat cells on DDLPS via IL6.
- To examine the therapeutic potential of targeting the IL6/GP130 pathway in DDLPS.
Main Methods:
- Analyzed GP130 (IL6ST) gene and protein expression in DDLPS tumors and cell lines versus normal controls.
- Assessed the effects of IL6 on DDLPS cell growth and migration.
- Investigated the impact of GP130 blockade (using SC144) on DDLPS cells, including MDM2 expression and splice variants.
Main Results:
- DDLPS tumors and cell lines showed elevated IL6ST and GP130 levels compared to controls.
- IL6 enhanced DDLPS cell growth and migration, potentially via STAT1/STAT3 activation and increased MDM2.
- GP130 blockade reduced IL6-induced DDLPS cell proliferation and migration, induced MDM2-ALT1, and inhibited MDM2-FL.
Conclusions:
- The IL6/GP130 pathway, activated by microenvironment fat cells, promotes DDLPS growth and migration.
- Upregulation of mouse double minute 2 (MDM2) is a key mechanism in IL6-driven DDLPS progression.
- Pharmacological GP130 blockade, potentially via MDM2-ALT1, represents a promising therapeutic strategy for DDLPS.
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