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Primary and acquired resistance to immune checkpoint inhibitors in NSCLC involves antigen presentation and TME remodelingUnderstanding why some lung cancer treatments do not work for every patient

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Key Takeaway
Note that primary and acquired resistance in NSCLC involve distinct pathways including antigen presentation and TME evolution.

This systematic review explores the mechanisms underlying both primary and acquired resistance to immune checkpoint inhibitors (ICIs) targeting the PD-1/PD-L1 axis in patients with non-small cell lung cancer. The scope of the review focuses on identifying biological barriers that prevent initial treatment success and adaptive mechanisms that allow tumors to escape therapy over time.

Primary resistance is characterized by a failure of immune activation at the start of treatment. These failures are attributed to tumor-intrinsic or microenvironmental barriers, including impaired antigen presentation (MHC-I, TAP2, B2M), defective IFN-gamma/JAK-STAT signaling, low tumor immunogenicity, and 'cold' phenotypes within the tumor microenvironment (TME).

Acquired resistance involves the evolution of the tumor and immune ecosystem under therapeutic pressure. Key mechanisms include neoantigen loss, HLA or B2M alterations, compensatory checkpoint activation, progressive T cell exhaustion, TME remodeling, and epigenetic stabilization of immune escape. While these findings identify potential targets for overcoming resistance, they represent a framework of biological mechanisms rather than clinical trial data.

How this fits prior evidence

This systematic review addresses gaps in understanding the specific biological drivers of treatment failure in NSCLC. It complements prior evidence regarding the comparative efficacy of PD-1 and PD-L1 inhibitors in advanced non-small cell lung cancer by identifying why some patients fail to respond despite standard protocols. While previous coverage noted that lncRNA signatures may predict ICI response, this review focuses on intrinsic mechanisms like antigen presentation defects and TME remodeling as targets for overcoming resistance.

Some patients with non-small cell lung cancer do not respond well to immunotherapy. This type of treatment uses the body's own immune system to find and attack cancer cells. When it fails at the start, it is often because the tumor has built a wall that keeps immune cells away or hides the cancer from the body.

These barriers can include problems with how the cell shows its identity or signals that turn off the immune response. In some cases, the area around the tumor becomes a hostile environment where immune cells cannot function properly. These factors are known as primary resistance and happen right at the beginning of treatment.

Sometimes, a patient responds well to treatment for a while before the cancer starts growing again. This is called acquired resistance. It happens when the cancer changes over time to hide from the drugs. The tumor might change its surface markers or find new ways to exhaust the immune cells so they stop fighting back.

By identifying these specific biological hurdles, doctors can better understand why treatments fail. This knowledge helps researchers develop new combinations of drugs to overcome these defenses. The goal is to create more effective ways to keep the immune system active against lung cancer.

What this means for you:
Identifying how tumors hide from the immune system helps doctors find better ways to treat lung cancer.

Common questions

Why do some patients not respond to immunotherapy at first?

Initial resistance can happen because of pre-existing barriers. These include issues with how the body recognizes cancer cells, a lack of immune activity near the tumor, or a protective environment that hides the cancer from the immune system right from the start.

What causes lung cancer to stop responding to treatment over time?

Acquired resistance happens when the tumor and its surrounding area adapt to the medicine. This can involve changes like losing specific markers, turning on other defense pathways, or the immune cells becoming exhausted from fighting the cancer.

How does this research help patients with lung cancer?

This review identifies specific biological mechanisms that cause resistance. While it is not a clinical trial for new drugs, these findings help scientists develop better ways to overcome treatment barriers and create more effective therapies for the future.

Study Details

Study typeSystematic review
EvidenceLevel 1
PublishedJul 2026
View Original Abstract ↓
Non-small cell lung cancer (NSCLC) is one of the leading causes of cancer incidence and mortality worldwide. In recent years, immune checkpoint inhibitors (ICIs), particularly those targeting the programmed cell death protein 1/programmed death-ligand 1 (PD-1/PD-L1) axis, have significantly improved survival outcomes in a subset of patients. However, the magnitude and durability of clinical benefit vary considerably according to PD-L1 expression, treatment setting, histological subtype, oncogenic driver status, and whether ICIs are administered as monotherapy or in combination regimens. A substantial proportion of patients therefore exhibit either primary resistance or acquired resistance after an initial response. This review systematically summarizes the key mechanisms underlying immune resistance in lung cancer. These include defects in antigen presentation, such as abnormalities in major histocompatibility complex class I (MHC-I), transporter associated with antigen processing 2 (TAP2), and β2-microglobulin (B2M), as well as dysregulation of the interferon-γ/Janus kinase-signal transducer and activator of transcription (IFN-γ/JAK-STAT) signaling pathway. Tumors frequently exhibit an immune-excluded or ‘cold’ phenotype, which further limits immune recognition and reduces responsiveness to immunotherapy. This review summarizes immune resistance in NSCLC through a framework that distinguishes primary resistance from acquired resistance. Primary resistance reflects failure of immune activation at treatment initiation, usually due to pre-existing tumor-intrinsic or microenvironmental barriers, including impaired antigen presentation, defective IFN-γ/JAK-STAT signaling, low tumor immunogenicity, immune-cold or immune-excluded phenotypes, and suppressive TME states. In contrast, acquired resistance reflects adaptive tumor and immune ecosystem evolution under therapeutic pressure, leading to neoantigen loss, HLA or B2M alterations, compensatory checkpoint activation, progressive T cell exhaustion, TME remodeling, and epigenetic stabilization of immune escape. We further discuss mechanism-based biomarkers, translational correlates, and rational therapeutic strategies for overcoming resistance.
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