Bio-orthogonal truncated NKG2D ligand-based nano-igniter unleashes a self-sustaining antitumor immune circuit via NK
Yao Gong1, Xiaoying Zhang1, Wenlong Ren1
1The Center for Clinical Molecular Medical Detection, Engineering Research Center of Chongqing Education Commission of China for IVD Technology Innovation and Translation, Laboratory Medicine Center, The First Affiliated Hospital of Chongqing Medical University, Chongqing 400016, P.R.China.
Abstract:
Despite the crucial role of natural killer (NK) cells in initiating antitumor immune circuits, their efficacy is limited by tumor immune evasion mechanisms, including low surface density or proteolytic shedding of activating ligands and immunosuppression. Here, we constructed a bioorthogonal truncated NKG2D (natural killer group 2, member D) ligand-based nano-igniter (ZIL15-D-trMULT1) to synchronously enhance NK cell recognition and function, thereby igniting antitumor immune circuits. This system incorporates a truncated NKG2D ligand (trMULT1) lacking the cleavable α3 domain while retaining the NKG2D-binding α1/α2 domains, conjugated to dibenzocyclooctyne (DBCO) for bioorthogonal tagging of azide-modified tumor cells. Concurrently, interleukin-15 (IL-15) was encapsulated within zeolitic imidazolate frameworks (ZIF-8) for responsive release, sustaining NK cell function and upregulating NKG2D receptor expression. This synergistic design created a positive feedback loop for NK cell recognition and activation. Consequently, this strategy suppressed multiple tumor types and improved the immune microenvironment. Mechanistically, both innate and adaptive immunity were mobilized by orchestrating crosstalk between dendritic cells and T cells, facilitated by NK cell-derived chemokine secretion. In combination with anti-PD-1 antibody, ZIL15-D-trMULT1 induced durable immune memory, restraining distal tumor growth and lung metastasis. Our work unveils a self- sustaining immune circuit triggered by NK cells through upregulating the un-cleavable NKG2D ligand density, providing a robust strategy against solid tumors.
Insights
A novel nano-igniter enhances natural killer (NK) cell recognition and function by increasing NKG2D ligand density and delivering IL-15. This approach ignites antitumor immune circuits, suppressing tumors and improving the immune microenvironment.
Area of Science:
- Immunology
- Nanotechnology
- Oncology
Background:
- Natural killer (NK) cells are vital for antitumor immunity but are hindered by tumor immune evasion.
- Tumors reduce NK cell efficacy through mechanisms like decreased activating ligand density and immunosuppression.
Purpose of the Study:
- To develop a bioorthogonal nano-igniter (ZIL15-D-trMULT1) to enhance NK cell recognition and function.
- To overcome tumor immune evasion and establish robust antitumor immune circuits.
Main Methods:
- Constructed a nano-igniter using a truncated NKG2D ligand (trMULT1) conjugated to DBCO for bioorthogonal tagging.
- Encapsulated interleukin-15 (IL-15) within zeolitic imidazolate frameworks (ZIF-8) for sustained release.
- Utilized azide-modified tumor cells for targeted delivery and activation.
Main Results:
- The nano-igniter created a positive feedback loop, enhancing NK cell recognition and activation.
- Demonstrated suppression of multiple tumor types and improvement of the tumor immune microenvironment.
- Mobilized both innate and adaptive immunity, orchestrating crosstalk between dendritic cells and T cells.
- Combination therapy with anti-PD-1 antibody induced durable immune memory and restrained tumor growth and metastasis.
Conclusions:
- The developed nano-igniter strategy effectively ignites self-sustaining immune circuits triggered by NK cells.
- Upregulating uncleavable NKG2D ligand density offers a potent approach against solid tumors.
- This strategy holds promise for overcoming tumor immune evasion and enhancing cancer immunotherapy.
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