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Published on: November 30, 2016
GDF15: A Hijacked Metabo-Hormone Orchestrating Cachexia and Immunosuppression in Cancer
Dong-Yang Qi1,2, Yong-Fei Wang1,2, Wei-Lin Jin1,2
1The First Clinical Medical College, Lanzhou University, Lanzhou 730000, China.
Abstract:
Cancer is responsible for systemic burdens, most notably cachexia and immunosuppression, that extend far beyond local tumor growth and collectively dictate poor outcomes. While often studied separately, these debilitating syndromes are deeply interconnected. On the basis of emerging evidence of growth differentiation factor 15 (GDF15)'s dual actions in immunity and metabolism, we propose that the stress-responsive hormone GDF15 is hijacked by tumors and repurposed as a central metaboceptive hub that integrates diverse oncogenic stress signals to launch a coordinated, dual pathological cascade. Systemically, it disrupts brain-body communication via glial cell line-derived neurotrophic factor family receptor alpha-like (GFRAL) activation in the brainstem, driving anorexia, metabolic rewiring, and progressive wasting of skeletal muscle and adipose tissue that define cachexia. GDF15 acts as a potent immunosuppressor within the local tumor microenvironment, impairing T cell cytotoxicity and increasing the abundance of regulatory T cells. Crucially, these effects are not parallel but interlinked, forming a self-reinforcing detrimental cycle that accelerates host deterioration and therapeutic failure. This positions the GDF15-GFRAL axis as a unique dual-benefit therapeutic target with the potential to simultaneously ameliorate cachexia, improve patient function and quality of life, and revitalize anti-tumor immunity. Reframing cancer through the lens of a hijacked metabolic sensing system provides an integrated perspective that transforms this formidable challenge of concurrent host wasting and immune evasion into a druggable opportunity, charting a course for novel host-directed therapies that restore systemic homeostasis.
Insights
Growth differentiation factor 15 (GDF15) hijacks the body's systems, causing cancer cachexia and immune suppression. Targeting the GDF15-GFRAL axis may simultaneously treat both conditions and improve cancer therapy outcomes.
Area of Science:
- Oncology
- Metabolism
- Immunology
Background:
- Cancer causes systemic burdens like cachexia and immunosuppression, worsening patient outcomes.
- These debilitating syndromes are interconnected and often studied in isolation.
- Growth differentiation factor 15 (GDF15) shows dual actions in immunity and metabolism.
Purpose of the Study:
- Propose GDF15 as a central metaboceptive hub hijacked by tumors.
- Investigate GDF15's role in integrating oncogenic stress signals.
- Explore the GDF15-GFRAL axis as a therapeutic target.
Main Methods:
- Analyzing GDF15's systemic effects on brain-body communication via GFRAL.
- Evaluating GDF15's impact on anorexia, metabolic rewiring, and tissue wasting.
- Assessing GDF15's immunosuppressive role in the tumor microenvironment.
Main Results:
- GDF15 disrupts brainstem GFRAL signaling, driving cachexia.
- GDF15 impairs T cell cytotoxicity and promotes regulatory T cells within tumors.
- A self-reinforcing cycle of host deterioration and therapeutic failure is driven by GDF15.
Conclusions:
- The GDF15-GFRAL axis is a central mediator of cancer-induced cachexia and immunosuppression.
- Targeting the GDF15-GFRAL axis offers a dual therapeutic strategy.
- This approach may ameliorate cachexia, enhance patient function, and revitalize anti-tumor immunity.
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