Abstract Canonical leader peptides, derived from the signal sequences of classical MHC class I molecules, are presented by HLA-E in humans and Qa1 in mice. These peptides serve as ligands for the NKG2A/CD94 receptor complex on NK cells and CD8+ T cells, promoting immune homeostasis. Disruptions of this inhibitory axis—such as during viral infection—can lead to the display of novel peptides that override this inhibition and activate immune responses. However, the mechanisms controlling canonical peptide presentation remain unclear. To better understand how Qa1-restricted inhibitory peptide presentation is regulated, we targeted Signal Peptide Peptidase (SPP), an ER-resident protease that cleaves signal peptides. SPP was knocked out in two tumor models: YUMMER melanoma and KPC pancreatic adenocarcinoma. Changes in Qa1-bound peptides were evaluated using mass spectrometry, and tumor growth was assessed in vivo. Loss of SPP markedly reduced canonical peptide loading in both tumor models. SPP-deficient melanoma tumors were strongly rejected in vivo, while pancreatic tumors lacking SPP showed no such reduction, despite similar decreases in canonical inhibitory peptide levels. Interestingly, the dominant Qa1-bound peptide in both models remained the canonical peptide, indicating that alternative, SPP-independent mechanisms can liberate and generate this peptide for presentation. In the KPC model, novel peptides with potential inhibitory properties were identified. Ongoing studies aim to determine whether these peptides can sustain immune suppression in the absence of the canonical peptide. Our findings demonstrated that even in the absence of SPP, alternative mechanisms maintain inhibitory peptide presentation in tumor cells. Ongoing studies targeting other SPP family members and newly identified candidate inhibitory peptides aim to elucidate these compensatory pathways. A clearer definition of the Qa1/HLA-E inhibitory pathway will help determine whether this axis can be more effectively disrupted to improve anti-tumor immune responses. Citation Format: Roya Solhi, Clara Wolfe, Hu Chen, Achintya Perumal, Kyle Ockerman, Grant Brennan, Jiayao Ye, Adrienne H. Long, Marc Schwartz, Susan Klaeger, Steven A. Carr, Thorbald van Hall, Jon A. Weidanz, Soroush Ghaffari, Kathleen B. Yates, Robert T. Manguso, Qin Ma, Hakimeh Ebrahimi-Nik. Investigating the role of signal peptide peptidase in tumor immune evasion via Qa-1-mediated peptide presentation [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2026; Part 1 (Regular Abstracts); 2026 Apr 17-22; San Diego, CA. Philadelphia (PA): AACR; Cancer Res 2026;86(7 Suppl):Abstract nr 6579.
Despite the success of PD-1 blockade in melanoma and other cancers, effective treatment strategies to overcome resistance to cancer immunotherapy are lacking1,2. Here we identify the innate immune kinase TANK-binding kinase 1 (TBK1)3 as a candidate immune-evasion gene in a pooled genetic screen4. Using a suite of genetic and pharmacological tools across multiple experimental model systems, we confirm a role for TBK1 as an immune-evasion gene. Targeting TBK1 enhances responses to PD-1 blockade by decreasing the cytotoxicity threshold to effector cytokines (TNF and IFNγ). TBK1 inhibition in combination with PD-1 blockade also demonstrated efficacy using patient-derived tumour models, with concordant findings in matched patient-derived organotypic tumour spheroids and matched patient-derived organoids. Tumour cells lacking TBK1 are primed to undergo RIPK- and caspase-dependent cell death in response to TNF and IFNγ in a JAK–STAT-dependent manner. Taken together, our results demonstrate that targeting TBK1 is an effective strategy to overcome resistance to cancer immunotherapy. Targeting TBK1 is an effective strategy to overcome resistance to cancer immunotherapy.
The immune system can eliminate tumors, but checkpoints enable immune escape. Here, we identify immune evasion mechanisms using genome-scale in vivo CRISPR screens across cancer models treated with immune checkpoint blockade (ICB). We identify immune evasion genes and important immune inhibitory checkpoints conserved across cancers, including the non-classical major histocompatibility complex class I (MHC class I) molecule Qa-1 b /HLA-E. Surprisingly, loss of tumor interferon-γ (IFNγ) signaling sensitizes many models to immunity. The immune inhibitory effects of tumor IFN sensing are mediated through two mechanisms. First, tumor upregulation of classical MHC class I inhibits natural killer cells. Second, IFN-induced expression of Qa-1 b inhibits CD8 + T cells via the NKG2A/CD94 receptor, which is induced by ICB. Finally, we show that strong IFN signatures are associated with poor response to ICB in individuals with renal cell carcinoma or melanoma. This study reveals that IFN-mediated upregulation of classical and non-classical MHC class I inhibitory checkpoints can facilitate immune escape.
Abstract During the last decade, there has been notable progress in cancer immunotherapy, including promising clinical success of immune checkpoint inhibitors. Moreover, there is an increasing number of new potential targets for cancer immunotherapy that are currently being developed both as monotherapy or in combination. However, the lack of durable clinical responses due in part to the resistance mechanisms that tumors exhibit in a significant proportion of patients urges novel approaches to find the right therapeutic strategies. The understanding of such tumor evasion mechanisms and the complex interactions that take place in the tumor microenvironment is essential to obtain successful treatments. Functional genomics has emerged as a powerful tool that can help to reveal some of these unknown processes, with CRISPR-Cas9 technology the most prominent example. However, in vivo genetic screens require stable expression of several components that in most cases are not derived from murine cells, which represents a major obstacle in the context of cancer immunology. The inoculation of engineered tumor cell lines in immunocompetent mice results in either tumor rejection or an aberrant response to immunotherapy, making the experiments technically impossible in the first case or providing inconsistent results in the latter. We have designed new vector strategies to overcome the altered immunogenicity of Cas9-expressing tumor cell lines using the Cre-lox system. Expression and effective removal of Cas9 and vector components are monitored using fluorescent reporter proteins. Both genome-editing capacity and normal in vivo behavior of all tested cell lines remain largely unaltered using this novel strategy. This technology represents a major advance for preclinical functional genomics, allowing studies in fully competent animals looking for better combination treatments and resistance mechanism in particular cancer models, and ultimately will help in the design of clinical trials. Citation Format: Juan Dubrot, Robert T. Manguso, Sarah Kate Lane-Reticker, Austin Ayer, Emily Kessler, Clara Wolfe, Animesh Mahapatra. Novel CRISPR/Cas9 vectors for in vivo tumor functional genomics [abstract]. In: Proceedings of the AACR Special Conference on Tumor Immunology and Immunotherapy; 2019 Nov 17-20; Boston, MA. Philadelphia (PA): AACR; Cancer Immunol Res 2020;8(3 Suppl):Abstract nr B10.
Abstract The ability to make rapid genetic alterations to tumor cells with CRISPR for screens and single-gene studies has been transformative for studying cancer biology. Recently, we and others have used CRISPR in murine tumor models in vivo to identify targets and resistance mechanisms for immunotherapy. However, the use of these techniques in immunocompetent mice is limited by endogenous immune recognition of CRISPR components such as Cas9. Here we report the design of a screening-compatible lentiviral vector system which allows selective CRISPR antigen removal (SCAR) from tumor cells before they are implanted in vivo. The SCAR system enables highly efficient genome engineering and reverses CD8+ T cell-mediated rejection of CRISPR modified tumor cells in vivo. Using this technology, we conducted a pooled, in vivo screen designed to probe tumor-immune interactions in the highly immunogenic CT26 colon carcinoma model and discovered that these tumors require intact interferon signaling to evade immune destruction. The SCAR system enables the study of tumor-immune interactions in any cancer model and can be more broadly applied to generate non-immunogenic lentivirally-engineered cells. Citation Format: Juan Dubrot, Sarah Kate Lane-Reticker, Emily Kessler, Clara Wolfe, Animesh Mahapatra, Peter Du, Robert T. Manguso. SCAR (Selective CRISPR Antigen Removal) vector system expands cancer immunology discovery with in vivo functional genomics [abstract]. In: Proceedings of the Annual Meeting of the American Association for Cancer Research 2020; 2020 Apr 27-28 and Jun 22-24. Philadelphia (PA): AACR; Cancer Res 2020;80(16 Suppl):Abstract nr 5866.
Apoptosis or programmed cell death is important for multicellular organisms to keep cell homeostasis and for the clearance of mutated or infected cells. Apoptosis can be induced by intrinsic or extrinsic stimuli. The first event in extrinsic apoptosis is the formation of the Death-Inducing Signalling Complex (DISC), where the initiator caspases-8 and -10 are fully activated by several proteolytic cleavage steps and induce the caspase cascade leading to apoptotic cell death. Analysing the processing of procaspases-8 and -10 by Western blot is a commonly used method to study the induction of apoptosis by death receptor stimulation. To analyse procaspase-8 and -10 cleavage, cells are stimulated with a death ligand for different time intervals, lysed and subjected to Western blot analysis using anti-caspase-8 and anti-caspase-10 antibodies. This allows monitoring the caspase cleavage products and thereby induction of apoptosis.