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Adenoviral Transduction of Naive CD4 T Cells to Study Treg Differentiation
Published on: August 13, 2013
Targeting the NuRD Component, CHD4, Impairs Foxp3+ Treg Cell Production and Function and Promotes Anti-Tumor Immunity
Abstract:
Little is known about why Foxp3⁺ regulatory T (Treg) cells require at least three HDAC1/HDAC2-containing chromatin-remodeling complexes (NuRD, Sin3 and CoREST), or whether selective disruption of these complexes can be exploited to enhance antitumor immunity. Here, we investigated the role of chromodomain helicase DNA-binding protein 4 (CHD4), the ATP-dependent remodeling subunit of the NuRD complex, in Treg biology. Conditional deletion of Chd4 in Foxp3⁺ Tregs resulted in severe systemic autoimmunity and early lethality, accompanied by reduced Foxp3 expression, impaired Treg suppressive function, and loss of Treg lineage stability. Transcriptomic analyses demonstrated that CHD4 deficiency closely phenocopied Hdac2 deletion, whereas quantitative proteomic analyses revealed that CHD4 assembles into highly conserved NuRD complexes in both Treg and conventional CD4⁺ T cells. These findings indicate that the selective dependence of Tregs on CHD4 does not arise from the formation of lineage-specific protein complexes but rather from the unique epigenetic program maintained by CHD4-containing chromatin-remodeling complexes that is required for Treg differentiation and stability. Using a novel cellular target-engagement platform, we identified CH41, a potent small-molecule inhibitor of CHD4 that recapitulated the effects of genetic CHD4 ablation on Treg function. Pharmacological inhibition of CHD4 impaired intratumoral Treg accumulation and function and significantly inhibited the growth of lung and hepatocellular carcinomas in immunocompetent, but not immunodeficient, mice, without inducing systemic autoimmunity. Collectively, our findings identify CHD4 as a critical epigenetic regulator of Treg lineage stability and establish pharmacological targeting of the CHD4/NuRD axis as a promising strategy to selectively disrupt tumor-associated Tregs and enhance antitumor immunity.
Insights
Targeting CHD4, a key protein in regulatory T cells (Tregs), disrupts tumor immunity. Inhibiting CHD4 selectively impairs tumor Tregs, enhancing antitumor responses without causing systemic autoimmunity.
Area of Science:
- Immunology
- Epigenetics
- Cancer Biology
Background:
- Regulatory T (Treg) cells are crucial for immune homeostasis but can hinder antitumor responses.
- The role of chromatin-remodeling complexes, like NuRD, in Treg function is not fully understood.
- Understanding Treg-specific epigenetic regulation is key to developing novel cancer immunotherapies.
Purpose of the Study:
- To investigate the function of chromodomain helicase DNA-binding protein 4 (CHD4), a component of the NuRD complex, in Treg biology.
- To determine if targeting CHD4 can selectively impair tumor-associated Tregs and enhance antitumor immunity.
Main Methods:
- Conditional deletion of the Chd4 gene in Foxp3+ Tregs in mice.
- Transcriptomic and quantitative proteomic analyses to assess molecular changes.
- Development and use of a small-molecule inhibitor (CH41) targeting CHD4.
- Evaluation of tumor growth in immunocompetent and immunodeficient mouse models.
Main Results:
- Conditional deletion of Chd4 in Tregs led to severe autoimmunity, reduced Foxp3 expression, impaired suppressive function, and loss of lineage stability.
- CHD4 deficiency phenocopied Hdac2 deletion, indicating a conserved role in Treg epigenetics.
- Pharmacological inhibition of CHD4 with CH41 impaired intratumoral Treg accumulation and function.
- CH41 significantly inhibited tumor growth in immunocompetent mice without inducing systemic autoimmunity.
Conclusions:
- CHD4 is a critical epigenetic regulator essential for Treg lineage stability and function.
- Targeting the CHD4/NuRD axis offers a promising strategy for selectively disrupting tumor-associated Tregs.
- Pharmacological inhibition of CHD4 represents a potential approach to enhance antitumor immunity in cancer patients.
