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Disulphide-isomerase-enabled shedding of tumour-associated NKG2D ligands
Brett K Kaiser1, Daesong Yim, I-Ting Chow
1Fred Hutchinson Cancer Research Center, 1100 Fairview Avenue North, Seattle, Washington 98109, USA.
Abstract:
Tumour-associated ligands of the activating NKG2D (natural killer group 2, member D; also called KLRK1) receptor-which are induced by genotoxic or cellular stress-trigger activation of natural killer cells and co-stimulation of effector T cells, and may thus promote resistance to cancer. However, many progressing tumours in humans counter this anti-tumour activity by shedding the soluble major histocompatibility complex class-I-related ligand MICA, which induces internalization and degradation of NKG2D and stimulates population expansions of normally rare NKG2D+CD4+ T cells with negative regulatory functions. Here we show that on the surface of tumour cells, MICA associates with endoplasmic reticulum protein 5 (ERp5; also called PDIA6 or P5), which, similar to protein disulphide isomerase, usually assists in the folding of nascent proteins inside cells. Pharmacological inhibition of thioreductase activity and ERp5 gene silencing revealed that cell-surface ERp5 function is required for MICA shedding. ERp5 and membrane-anchored MICA form transitory mixed disulphide complexes from which soluble MICA is released after proteolytic cleavage near the cell membrane. Reduction of the seemingly inaccessible disulphide bond in the membrane-proximal alpha3 domain of MICA must involve a large conformational change that enables proteolytic cleavage. These results uncover a molecular mechanism whereby domain-specific deconstruction regulates MICA protein shedding, thereby promoting tumour immune evasion, and identify surface ERp5 as a strategic target for therapeutic intervention.
Insights
Tumors evade immune attack by shedding MICA ligands, which is facilitated by cell-surface ERp5. Inhibiting ERp5 blocks MICA shedding, offering a new cancer therapy target.
Area of Science:
- Immunology
- Cancer Biology
- Molecular Biology
Background:
- Tumor-associated ligands like MICA activate natural killer (NK) cells and effector T cells, promoting anti-cancer immunity.
- Progressing tumors shed soluble MICA, which impairs NKG2D receptor function and promotes immunosuppressive T cells, aiding cancer immune evasion.
Purpose of the Study:
- To elucidate the molecular mechanism of MICA shedding by tumor cells.
- To identify therapeutic targets for overcoming MICA-mediated tumor immune evasion.
Main Methods:
- Investigated the association of MICA with endoplasmic reticulum protein 5 (ERp5) on tumor cell surfaces.
- Utilized pharmacological inhibition of ERp5 thioreductase activity and ERp5 gene silencing.
- Analyzed the formation of mixed disulphide complexes between ERp5 and MICA.
- Studied the proteolytic cleavage of MICA following reduction of its disulfide bond.
Main Results:
- Cell-surface ERp5 is essential for the shedding of MICA.
- ERp5 forms transient mixed disulphide complexes with membrane-anchored MICA.
- Proteolytic cleavage near the cell membrane releases soluble MICA after ERp5-mediated reduction of a critical disulfide bond.
- This process involves conformational changes in MICA's alpha3 domain.
Conclusions:
- Domain-specific deconstruction by ERp5 regulates MICA shedding, a key mechanism for tumor immune evasion.
- Surface ERp5 represents a strategic therapeutic target to block MICA shedding and enhance anti-tumor immunity.
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