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Updated: Mar 25, 2026

Tumor Transplantation for Assessing the Dynamics of Tumor-Infiltrating CD8+ T Cells in Mice
Published on: June 12, 2021
Cutting Edge: Engineering Active IKKβ in T Cells Drives Tumor Rejection
César Evaristo1, Stefani Spranger2, Sarah E Barnes1
1Department of Medicine, University of Chicago, Chicago, IL 60637; and.
Abstract:
Acquired dysfunction of tumor-reactive T cells is one mechanism by which tumors can evade the immune system. Identifying and correcting pathways that contribute to such dysfunction should enable novel anticancer therapy design. During cancer growth, T cells show reduced NF-κB activity, which is required for tumor rejection. Impaired T cell-intrinsic NF-κB may create a vicious cycle conducive to tumor progression and further T cell dysfunction. We hypothesized that forcing T cell-intrinsic NF-κB activation might break this cycle and induce tumor elimination. NF-κB was activated in T cells by inducing the expression of a constitutively active form of the upstream activator IκB kinase β (IKKβ). T cell-restricted constitutively active IKKβ augmented the frequency of functional tumor-specific CD8(+) T cells and improved tumor control. Transfer of constitutively active IKKβ-transduced T cells also boosted endogenous T cell responses that controlled pre-established tumors. Our results demonstrate that driving T cell-intrinsic NF-κB can result in tumor control, thus identifying a pathway with potential clinical applicability.
Insights
Tumors evade the immune system through dysfunctional T cells. Activating NF-κB (nuclear factor kappa-light-chain-enhancer of activated B cells) in T cells can restore their function and eliminate tumors, offering a novel cancer therapy approach.
Area of Science:
- Immunology
- Cancer Biology
- Molecular Medicine
Background:
- Tumors evade immune detection via acquired dysfunction in tumor-reactive T cells.
- Reduced NF-κB (nuclear factor kappa-light-chain-enhancer of activated B cells) activity in T cells impairs tumor rejection and promotes tumor progression.
- This creates a detrimental cycle of T cell dysfunction and tumor growth.
Purpose of the Study:
- To investigate if forcing T cell-intrinsic NF-κB activation can overcome T cell dysfunction.
- To determine if this approach can break the cycle of tumor progression and induce tumor elimination.
- To explore the potential clinical applicability of targeting T cell NF-κB signaling for anticancer therapies.
Main Methods:
- Engineered T cells to express a constitutively active form of IκB kinase β (IKKβ), an upstream activator of NF-κB.
- Administered these modified T cells in a tumor model to assess their impact on anti-tumor immunity.
- Evaluated the frequency of functional tumor-specific CD8(+) T cells and overall tumor control.
Main Results:
- T cell-restricted expression of constitutively active IKKβ significantly increased the frequency of functional tumor-specific CD8(+) T cells.
- This intervention led to improved control of tumor growth.
- Transfer of engineered T cells also enhanced endogenous T cell responses, leading to the control of established tumors.
Conclusions:
- Activating T cell-intrinsic NF-κB signaling is a viable strategy to enhance anti-tumor immunity.
- Targeting the NF-κB pathway in T cells can overcome immune evasion mechanisms employed by tumors.
- This approach holds promise for developing novel immunotherapies against cancer.
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