Study of the CD161-LLT1 Immune Regulatory Axis: Evaluation of Tumor Immunity, NK Cell Function, and T Cell Responses
Study of the CD161-LLT1 Immune Regulatory Axis: Evaluation of Tumor Immunity, NK Cell Function, and T Cell Responses
The CD161-LLT1 axis connects NK cells, T cells, and the tumor microenvironment, and is one of the important pathways for evaluating tumor immune regulation and immune escape. Research on this axis should not remain limited to detecting CD161 or LLT1 expression levels alone. It should also integrate cell source, spatial localization, cytotoxic function, cytokine release, exhaustion phenotype, and blocking validation for comprehensive evaluation.
Keywords: CD161; LLT1; tumor immunity; NK cells; T cell response; immune checkpoint; tumor microenvironment
1 Research Logic of the CD161-LLT1 Immune Regulatory Axis
1.1 Pathway composition
(1) CD161/KLRB1
CD161 is encoded by KLRB1 and belongs to the C-type lectin-like receptor family. It is expressed on NK cells, subsets of CD4+ T cells, CD8+ T cells, MAIT cells, Th17-like cells, and some tissue-resident T cells. It can serve as a marker for specific immune cell subsets and can also participate in regulating cell activation, tissue migration, cytokine production, and cytotoxic responses.
(2) LLT1/CLEC2D
LLT1 is encoded by CLEC2D and is an important ligand for CD161. It can be expressed on antigen-presenting cells, activated immune cells, and some tumor cells. When LLT1 is upregulated on tumor cells, B cells, dendritic cells, or myeloid cells, it may alter NK cell and T cell responses through interaction with CD161.
(3) Axis relationship
The CD161-LLT1 axis is not a fixed one-way “activating” or “inhibitory” pathway. Its function depends on cell type, tissue context, tumor type, co-stimulatory/co-inhibitory signals, and the inflammatory environment. In NK cell studies, the focus should be on whether cytotoxic function is suppressed. In T cell studies, it is necessary to distinguish whether CD161 represents effector, tissue-resident, Th17-like, chronic stimulation, or functional exhaustion features.
1.2 Decomposition of research questions
(1) Source of CD161
It should be clarified whether CD161 mainly originates from NK cells, CD8+ T cells, CD4+ T cells, MAIT cells, or tissue-resident T cells. CD161-positive cells from different sources have different functional meanings in tumor immunity, and total CD161 expression alone should not be used to explain immune status.
(2) Source of LLT1
LLT1 may originate from tumor cells, antigen-presenting cells, B cells, dendritic cells, or myeloid cells. If LLT1 is mainly located on the surface of tumor cells, it is more suitable for explaining tumor regulation of NK/T cell responses. If it is mainly located on immune cells, the regulatory network among immune cells should be further analyzed.
(3) Functional changes
Expression changes must be combined with functional readouts. Research on the CD161-LLT1 axis should at least cover cytotoxic indicators, cytokines, degranulation, proliferation, exhaustion markers, and tumor killing results to avoid directly equating surface marker changes with functional alterations.
Table 1 Core Detection Framework for CD161-LLT1 Axis Research
Research Level | Core Indicators | Recommended Methods | Interpretation Focus |
Receptor expression | CD161/KLRB1 | Flow cytometry, IHC, IF, qPCR, transcriptomics | Clarify expressing cell type and spatial location |
Ligand expression | LLT1/CLEC2D | Flow cytometry, IHC, IF, qPCR, Western blot | Distinguish tumor cell, myeloid cell, and lymphocyte sources |
NK cell function | CD107a, IFN-γ, Granzyme B, Perforin, killing rate | Flow cytometry, ELISA, cytotoxicity assays | Determine whether CD161-LLT1 affects cytotoxic function |
T cell response | CD69, CD25, Ki-67, IFN-γ, TNF-α, IL-17A | Flow cytometry, ELISA, ICS, transcriptomics | Distinguish activation, proliferation, inflammatory, and exhaustion-type responses |
Immunosuppression | PD-1, TIM-3, LAG-3, TIGIT, CTLA-4 | Flow cytometry, IHC, transcriptomics | Determine whether CD161+ cells are accompanied by exhaustion or suppressive phenotypes |
Tumor microenvironment | CD8, NKp46, CD56, CD68, MHC-I, PD-L1 | Multiplex IF, IHC, spatial transcriptomics | Interpret possible axis function together with spatial proximity |
2 Detection of CD161 and LLT1 Expression
2.1 CD161 expression analysis
(1) Flow cytometry
Flow cytometry is suitable for quantitative analysis of the proportion and expression intensity of CD161 in NK cells, CD8+ T cells, CD4+ T cells, and MAIT cells. Panel design should include at least CD45, CD3, CD56, CD16, CD4, CD8, TCR, or MAIT-related markers, and should be combined with live/dead staining to exclude false-positive signals caused by dead cells.
(2) Tissue localization
IHC or multiplex immunofluorescence is suitable for determining the spatial distribution of CD161+ cells in tumor nests, stroma, perivascular regions, and necrotic areas. Single-marker CD161 staining cannot confirm cell origin and is more suitable when combined with CD3, CD8, CD56, NKp46, CD103, or other tissue-residency-related markers.
(3) Transcriptomic analysis
KLRB1 expression can be used in single-cell transcriptomics or bulk RNA analysis. Single-cell data can distinguish different immune cell subsets. Bulk data reflect overall expression and are easily affected by immune infiltration proportion, so cell composition correction or immune cell deconvolution analysis should be combined.
2.2 LLT1 expression analysis
(1) Tumor cell expression
LLT1 expression on tumor cell surfaces can be detected by flow cytometry, IHC, IF, or Western blot. If high LLT1 expression occurs together with reduced NK cell killing, decreased CD107a, or reduced Granzyme B, this can support the involvement of tumor-cell-derived LLT1 in immune escape.
(2) Immune cell expression
LLT1 may also be expressed by B cells, dendritic cells, monocytes/macrophages, or activated lymphocytes. When analyzing tumor tissues, markers such as CD19, CD11c, CD14, CD68, and HLA-DR should be combined to determine the source of LLT1.
(3) Induction conditions
Inflammatory factors, tumor stimulation, Toll-like receptor signaling, or cell activation status may alter LLT1 expression. In vitro experiments may include IFN-γ, TNF-α, LPS, or tumor-conditioned medium treatment to observe whether LLT1 is inducibly upregulated.
2.3 Co-expression and spatial relationship
(1) Intercellular proximity
The CD161-LLT1 axis depends on cell contact or local interaction. Multiplex IF, spatial transcriptomics, or imaging mass cytometry can be used to determine whether CD161+ immune cells are close to LLT1+ tumor cells or antigen-presenting cells.
(2) Co-expression in the same cell
If the same cell expresses both CD161 and LLT1, interpretation should be cautious. Such results may represent autocrine/paracrine regulation or altered activation status, but may also result from antibody nonspecificity, doublet events, or cell debris adhesion. Flow cytometry singlet gating and imaging validation are required for confirmation.
(3) Functional association
Increased expression does not directly indicate pathway activation. Functional causality should be validated through blocking antibodies, gene knockdown, overexpression, co-culture, or recombinant ligand stimulation experiments.
3 CD161-LLT1 Axis in Tumor Immunity
3.1 Tumor immune escape
(1) LLT1 upregulation
Some tumor cells or tumor-associated immune cells may upregulate LLT1, allowing contact with CD161+ NK cells or T cells. If LLT1-high regions are accompanied by reduced NK cell degranulation, decreased cytotoxic molecules, or reduced tumor killing, this may suggest that this axis participates in immune escape.
(2) NK cell inhibition
NK cells rely on activating receptors such as NKG2D, DNAM-1, NKp30, NKp44, and NKp46 to recognize abnormal cells. If CD161-LLT1 signaling weakens NK cell degranulation and killing ability, it may reduce tumor immune surveillance efficiency.
(3) Remodeling of T cell responses
CD161+ T cells do not necessarily represent suppressive cells. They may display tissue-resident, inflammatory, IL-17-related, or effector memory features. When CD161+ T cells increase in tumors, PD-1, TIM-3, LAG-3, TOX, IFN-γ, GZMB, and IL-17A should be combined to determine functional status.
3.2 Differences among tumor types
(1) Solid tumors
In solid tumors, attention should focus on LLT1 expression in tumor cells, tumor-associated macrophages, and B cells, as well as whether CD161+ NK/T cells enter tumor nests. When the stromal barrier is prominent, CD161+ cells may be enriched in the stroma rather than directly adjacent to tumor cells.
(2) Hematologic tumors
In hematologic tumor samples, LLT1 expression may be associated with tumor B cells, abnormal lymphocytes, or antigen-presenting cells. Flow cytometry is more suitable for distinguishing tumor cell and immune cell sources.
(3) Immunotherapy context
In PD-1/PD-L1, CTLA-4, or NK cell therapy studies, the CD161-LLT1 axis can serve as a supplementary immune regulatory node. If CD161 or LLT1 correlates with therapeutic response, immune infiltration, or exhaustion markers, further blocking experiments can be performed to validate its therapeutic value.
Table 2 Common Result Patterns of the CD161-LLT1 Axis in Tumor Immunity
Result Pattern | Possible Interpretation | Recommended Additional Experiments |
High LLT1 expression with reduced NK killing | Tumors may inhibit NK cell function through LLT1 | CD161/LLT1 blocking, CD107a assay, killing assay |
Increased CD161+ CD8+ T cells with high GZMB | May represent enrichment of effector-like or tissue-resident-like T cells | Co-detect IFN-γ, PD-1, CD103, TCF1 |
Increased CD161+ T cells with high PD-1/TIM-3 | May be accompanied by exhaustion or chronic stimulation | TOX, LAG-3, functional stimulation assay |
LLT1 mainly located in myeloid cells | May reflect myeloid-cell-mediated immune regulation | CD68, CD163, HLA-DR, multiplex IF |
Increased KLRB1 in bulk RNA | May be driven by increased immune infiltration | Single-cell analysis or immune cell deconvolution |
Enhanced killing after LLT1 blockade | Supports a functional inhibitory role of the CD161-LLT1 axis | Validate with repeated donors and different tumor cell lines |
4 Evaluation of NK Cell Function
4.1 NK cell subsets
(1) CD56bright NK cells
CD56bright NK cells mainly produce cytokines and have immunoregulatory functions. They often express higher levels of regulatory receptors. Changes in CD161 in this subset should be interpreted together with IFN-γ, TNF-α, CD69, and proliferation markers.
(2) CD56dim NK cells
CD56dim NK cells mainly mediate cytotoxicity and commonly express CD16, Granzyme B, and Perforin. If the CD161-LLT1 axis affects this subset, CD107a, target cell lysis rate, and antibody-dependent cellular cytotoxicity should be prioritized.
(3) Tissue-resident NK-like cells
Some NK-like cells in tumor tissues may display tissue-resident, low-cytotoxicity, or exhaustion-like features. Markers such as CD69, CD103, CXCR6, TIGIT, and PD-1 should be included in analysis to avoid simply interpreting tissue adaptation as activation or inhibition.
4.2 Functional assays
(1) Degranulation assay
CD107a is a common readout for NK cell degranulation. After co-culturing NK cells with LLT1+ tumor cells, CD107a detection can evaluate whether the CD161-LLT1 axis affects release of cytotoxic granules.
(2) Cytotoxicity assay
LDH release, flow cytometric target cell death, and fluorescence/luminescence cytotoxicity assays can directly evaluate killing efficiency. If blocking CD161 or LLT1 increases target cell death, this more strongly supports the involvement of this axis in suppressing NK cell killing.
(3) Cytokine detection
IFN-γ, TNF-α, and GM-CSF reflect NK cell activation and inflammatory regulatory capacity. If cytotoxicity decreases but cytokines remain unchanged, CD161-LLT1 may mainly affect degranulation or killing. If both decline, broader functional suppression is suggested.
4.3 Mechanistic validation
(1) Blocking experiments
CD161 or LLT1 blocking antibodies can be used to observe whether NK cell killing, degranulation, and cytokine production recover. Blocking experiments should include isotype controls, non-blocking controls, and LLT1-negative target cell controls.
(2) Genetic manipulation
Knockdown or overexpression of CLEC2D in tumor cells, or regulation of KLRB1 in NK cells, can be used to validate directional effects. If LLT1 overexpression reduces NK cell killing and LLT1 knockdown restores killing, the evidence chain is more complete.
(3) Co-stimulatory background
NK cell function is jointly affected by IL-2, IL-12, IL-15, IL-18, and target cell ligands. CD161-LLT1 axis experiments should control cytokine stimulation intensity to avoid strong stimulation masking pathway effects.
Table 3 Indicators for NK Cell Function Evaluation
Functional Level | Recommended Indicators | Methods | Interpretation Focus |
Subset composition | CD3, CD56, CD16, CD161 | Flow cytometry | Distinguish CD56bright and CD56dim NK cells |
Degranulation | CD107a | Flow cytometry co-culture assay | Determine whether release of cytotoxic granules is affected by LLT1 |
Cytotoxic molecules | Granzyme B, Perforin | Flow cytometry, Western blot, ELISA | Use together with target cell death results |
Cytokines | IFN-γ, TNF-α, GM-CSF | ICS, ELISA, CBA | Determine whether functional suppression affects inflammatory output |
Killing efficiency | Target cell death rate, LDH release | Flow cytometry, luminescence/fluorescence, LDH assay | Core result for functional causality validation |
Inhibitory phenotype | TIGIT, PD-1, NKG2A, TIM-3 | Flow cytometry | Determine whether NK cells are in an inhibitory or exhaustion-like state |
5 Evaluation of T Cell Responses
5.1 CD161+ T cell subsets
(1) CD8+ T cells
CD161+ CD8+ T cells may display effector memory, tissue-resident, or chronic stimulation features. Their function should be interpreted using GZMB, PRF1, IFN-γ, PD-1, TCF1, CD103, and Ki-67, rather than defining them as suppressive or activated based only on CD161 positivity.
(2) CD4+ T cells
CD161+ CD4+ T cells are often associated with Th17-like, memory-like, or tissue inflammation-related features. IL-17A, RORγt, CCR6, IFN-γ, and TNF-α help determine their inflammatory function.
(3) MAIT cells
MAIT cells usually express high levels of CD161 and participate in mucosal immunity, antibacterial responses, and tumor immune regulation. If the sample contains a high proportion of MAIT cells, Vα7.2, MR1 tetramer, or related markers should be used to distinguish MAIT cells and avoid misinterpreting MAIT cell changes as ordinary T cell CD161 changes.
5.2 T cell functional indicators
(1) Activation and proliferation
CD69, CD25, HLA-DR, and Ki-67 can be used to evaluate T cell activation and proliferation. If CD161+ T cells also show increased Ki-67 and enhanced effector factors, they may be in an activated expansion state.
(2) Effector function
IFN-γ, TNF-α, IL-2, Granzyme B, and Perforin reflect T cell effector capacity. Whether the CD161-LLT1 axis affects T cell function should be validated through stimulation experiments, co-culture, and blocking experiments.
(3) Exhaustion and inhibition
PD-1, TIM-3, LAG-3, TIGIT, CTLA-4, and TOX can be used to evaluate exhaustion or chronic stimulation phenotypes. If CD161+ T cells simultaneously express multiple exhaustion markers and show reduced cytokines, they are more likely to represent a functionally restricted state.
5.3 Co-culture and antigen stimulation experiments
(1) Tumor co-culture
Co-culturing T cells with LLT1+ tumor cells or antigen-presenting cells can reveal the effects of the CD161-LLT1 axis on T cell activation, cytokines, and killing ability. LLT1 blocking, CD161 blocking, and ligand-negative controls are required.
(2) TCR stimulation
Anti-CD3/CD28 stimulation can be used to evaluate the maximal activation capacity of T cells. If the effect of CD161-LLT1 is weakened after strong TCR stimulation, this suggests that the axis may be more evident under weaker antigen stimulation or tumor contact conditions.
(3) Antigen-specific responses
Tumor antigen peptides, tumor cell lysates, or autologous tumor cell co-culture can be used to analyze antigen-specific T cell responses. These experiments are closer to tumor immunity scenarios but require higher sample quality and control system standards.
Table 4 Indicators for T Cell Response Evaluation
Analysis Target | Recommended Indicators | Methods | Interpretation Focus |
T cell subsets | CD3, CD4, CD8, CD161 | Flow cytometry, IF | Clarify which T cell type expresses CD161 |
MAIT cell discrimination | Vα7.2, MR1 tetramer, CD161 | Flow cytometry | Avoid mixing MAIT cells into ordinary T cell interpretation |
Activation status | CD69, CD25, HLA-DR | Flow cytometry | Determine short-term and sustained activation |
Proliferative capacity | Ki-67, CFSE dilution | Flow cytometry | Determine T cell expansion capacity |
Effector function | IFN-γ, TNF-α, IL-2, GZMB | ICS, ELISA, CBA | Use together with killing or antigen stimulation experiments |
Exhaustion status | PD-1, TIM-3, LAG-3, TIGIT, TOX | Flow cytometry, IHC, transcriptomics | Determine chronic stimulation and functional restriction |
6 Experimental Design and Quality Control
6.1 Sample types
(1) Tumor tissue
Tumor tissue is suitable for analyzing CD161+ immune cell infiltration, LLT1 spatial distribution, and immunosuppressive environment. Fresh tissue can be used for flow cytometry and single-cell analysis, while FFPE samples can be used for IHC or multiplex IF.
(2) Peripheral blood
Peripheral blood is suitable for dynamic monitoring of the proportion and functional status of CD161+ NK/T cells, but it cannot fully represent the tumor microenvironment. If tumor immune escape is studied, tumor tissue or tumor-infiltrating lymphocyte detection should be prioritized.
(3) In vitro co-culture
In vitro co-culture is suitable for validating functional causality of the CD161-LLT1 axis. The effector-to-target ratio, cytokine concentration, stimulation duration, and LLT1 expression level of target cells should be controlled.
6.2 Method combinations
(1) Flow cytometry as the foundation
Flow cytometry is suitable for resolving cell subsets, receptor expression, degranulation, cytokines, and exhaustion markers. In CD161-LLT1 axis research, flow cytometry is usually the core platform for function and phenotype analysis.
(2) Tissue localization as a supplement
IHC and multiplex IF can confirm whether CD161+ cells and LLT1+ cells are spatially in contact. Without spatial localization, overall expression alone cannot determine whether this axis interacts within tissues.
(3) Blocking experiments for causality validation
CD161 or LLT1 blocking is an important step in determining pathway function. If NK killing is enhanced, T cell cytokines recover, or tumor cell death increases after blockade, this more strongly demonstrates functional significance of the axis.
6.3 Key control points
(1) Antibody specificity
CD161 and LLT1 antibodies need to be validated for the intended platform. Flow cytometry antibodies, IHC antibodies, and Western blot antibodies should not be assumed to be interchangeable; positive controls, negative controls, and isotype controls should be validated separately.
(2) Gating strategy
NK cell analysis should exclude CD3+ T cells, while T cell analysis should distinguish CD4/CD8/MAIT/Treg and other subsets. LLT1 detection should exclude dead cells, doublets, and Fc receptor-mediated nonspecific binding.
(3) Functional readouts first
Expression data provide clues, while functional data are key. Research on the CD161-LLT1 axis should include at least one functional experiment, such as CD107a, cytotoxicity assay, cytokine release, blocking rescue, or genetic manipulation.
Table 5 Common Problems and Optimization Directions in CD161-LLT1 Axis Experimental Design
Problem | Common Cause | Optimization Direction |
Increased CD161 expression but no functional change | CD161 only represents a subset marker, or stimulation intensity is too high | Add blocking experiments and weak-stimulation conditions |
High LLT1 signal background | Antibody nonspecificity, Fc receptor binding, or dead cell interference | Add Fc blocking, live/dead staining, and negative controls |
No obvious difference in NK killing assays | Inappropriate effector-to-target ratio or insufficient LLT1 expression | Optimize effector-to-target ratio and validate target-cell LLT1 |
Confusing T cell interpretation | CD161+ T cell composition is complex | Distinguish CD4, CD8, MAIT, and tissue-resident T cells |
KLRB1 increase in bulk RNA is difficult to interpret | Changes in immune infiltration proportion | Use single-cell analysis or immune cell deconvolution |
Blocking experiment ineffective | Insufficient blocking antibody concentration or pathway is not dominant | Set positive controls and combine with other checkpoint analyses |
Tissue staining cannot determine interaction | Lack of spatial proximity information | Use multiplex IF or spatial analysis |
7 Product Selection for CD161-LLT1 Immune Regulatory Axis Research
Table 6 Product Selection for CD161-LLT1 Immune Regulatory Axis Research
Application Module | Cat. No. | Product Name | Grade/Specification | Method/System | Application Positioning |
CD161 expression detection | CD161 Mouse mAb | Carrier Free,ExactAb™,Azide Free,Validated,PBS Only,See COA | Antibody detection | Used for CD161 protein detection; suitable for analyzing CD161 expression in NK cells, T cells, and tumor-infiltrating immune cells | |
CD161 flow cytometry detection | CD161 Mouse mAb (FITC) | ExactAb™, Validated, Ex:498nm, Em:517nm, 0.5 mg/mL | Flow cytometry | Used for flow cytometric subdivision of CD161+ NK cells, CD161+ T cells, and MAIT-like cells | |
CD161 interaction validation | Recombinant Human CD161 Protein | Animal Free,Carrier Free,Bioactive,ActiBioPure™,His Tag,≥95%(SDS-PAGE) | Recombinant protein/binding assay | Used for CD161-LLT1 binding studies, antibody binding validation, and functional experimental controls | |
CD161 interaction validation | Recombinant Human CD161 Protein | Animal Free,Carrier Free,Bioactive,ActiBioPure™,Azide Free,Fc tag,≥95%(SDS-PAGE) | Recombinant protein/ligand binding assay | Used for receptor-ligand interaction, blocking validation, and protein binding experiments | |
CD161 gene intervention | KLRB1 Human Pre-designed siRNA Set A |
| siRNA | Used to knock down CD161/KLRB1 and validate the regulatory role of CD161 in NK cell or T cell function | |
LLT1 gene intervention | CLEC2D Human Pre-designed siRNA Set A |
| siRNA | Used to knock down LLT1/CLEC2D and validate the functional contribution of tumor-cell- or immune-cell-derived LLT1 | |
T cell subdivision | CD3 Mouse mAb (APC) | ExactAb™, Validated, Ex:650nm, Em:660nm, 5 μL/test | Flow cytometry | Used to identify T cell populations and assist in distinguishing CD161+ T cells from CD161+ NK cells | |
T cell subdivision | CD3 Mouse mAb (AF488) | ExactAb™, Validated, Ex:490nm, Em:525nm, 5 μL/test | Flow cytometry | Used for T cell identification and CD161 co-expression analysis in multicolor flow cytometry panels | |
T cell subdivision | CD3 Mouse mAb (PE) | ExactAb™, Validated, Ex:565nm, Em:575nm, 5 μL/test | Flow cytometry | Used for T cell subdivision, T cell activation, and CD161+ T cell proportion detection | |
T cell subdivision | Recombinant CD3 Antibody | Carrier Free,ExactAb™,Azide Free,Validated,PBS Only,≥95%(SDS-PAGE&SEC-HPLC),See COA | Antibody detection | Used for tissue- or protein-level T cell marker detection and supporting analysis of tumor-infiltrating T cells | |
NK cell subdivision | CD56 Mouse mAb | Carrier Free,ExactAb™,Azide Free,Validated,PBS Only,See COA | Antibody detection | Used to identify NK cells and some NKT-like cells, supporting CD161+ NK cell analysis | |
NK cell flow cytometry detection | CD56 Mouse mAb (APC) | ExactAb™, Validated, Azide Free, Ex:650nm, Em:660nm, 5μL/test | Flow cytometry | Used for CD56+ NK cell subdivision and CD56bright/CD56dim subset analysis | |
NK cell flow cytometry detection | CD56 Mouse mAb (FITC) | ExactAb™, Validated, Azide Free, Ex:498nm, Em:517nm, 5μL/test | Flow cytometry | Used for NK cell identification and CD161 co-expression analysis in multicolor flow cytometry | |
NK cell flow cytometry detection | CD56 Mouse mAb (PE) | ExactAb™, Validated, Azide Free, Ex:565nm, Em:575nm, 5μL/ test | Flow cytometry | Used for NK cell proportion detection and tumor-infiltrating NK cell phenotype analysis | |
NK cell marker validation | Recombinant Human NCAM-1/CD56 Protein | Animal Free,Carrier Free,Bioactive,ActiBioPure™,Azide Free,High Performance,His Tag,PBS Only,≥95%(SDS-PAGE) | Recombinant protein/control | Used as a positive control or antibody binding validation for CD56 detection systems | |
NK cell subdivision | CD16 Mouse mAb | Carrier Free, ExactAb™, Validated, See COA | Antibody detection | Used to identify CD16+ cytotoxic NK cells and support CD56dim NK cell functional analysis | |
NK cell flow cytometry detection | CD16 Mouse mAb (APC) | Validated, Ex:650nm, Em:660nm, 5 μL/test | Flow cytometry | Used for CD16+ NK cells, ADCC-related phenotype, and CD161 co-expression detection | |
NK cell flow cytometry detection | CD16 Mouse mAb (FITC) | Validated, Ex:498nm, Em:517nm, 5 μL/test | Flow cytometry | Used for NK cell subset classification and CD16 expression intensity analysis | |
NK cell flow cytometry detection | CD16 Mouse mAb (PE) | Validated, Ex:565nm, Em:575nm, 5 μL/test | Flow cytometry | Used for CD16+ NK cell proportion, cytotoxic subsets, and functional status analysis | |
Fc blocking/nonspecific control | CD16/CD32 Rat mAb | Carrier Free,ExactAb™,Azide Free,Validated,PBS Only,See COA | Fc receptor blocking/flow cytometry pretreatment | Used to reduce Fc receptor-mediated nonspecific binding in myeloid cells and tumor tissue single-cell suspensions | |
Myeloid source determination | CD163 Mouse mAb | Azide Free, Validated, Carrier Free, 1.0 mg/mL | Antibody detection | Used to identify CD163+ macrophages and assist in determining whether LLT1 originates from immunosuppressive myeloid cells | |
Myeloid source determination | Recombinant CD163 Antibody | KD Validation | Antibody detection | Used for macrophage marker detection and supporting analysis of myeloid-cell source in the tumor microenvironment | |
Myeloid marker detection | Human Cluster Of Differentiation 163 (CD163) ELISA Kit | BioReagent | ELISA | Used to detect CD163 levels in human samples and support evaluation of tumor-associated macrophage responses | |
T/NK cell activation | Recombinant Human CD69 Protein | Animal Free,Carrier Free,His Tag,PBS Only,≥95%(SDS-PAGE),See COA | Recombinant protein/control | Used for validation of CD69 detection systems and supporting T cell and NK cell activation studies | |
T/NK cell activation intervention | CD69 Human Pre-designed siRNA Set A |
| siRNA | Used for CD69 expression regulation and supporting research on downstream activation status changes under the CD161-LLT1 axis | |
NK degranulation detection | LAMP1/CD107a Mouse mAb | See COA | Antibody detection/flow cytometry | Used for detecting NK cell and cytotoxic T cell degranulation; a core indicator for evaluating killing function | |
NK degranulation detection | LAMP1 /CD107a Antibody | KD Validation | Antibody detection | Used for CD107a/LAMP1 detection and supporting evaluation of cytotoxic granule release | |
NK degranulation control | Recombinant Human LAMP-1/CD107a Protein | Animal Free,Carrier Free,Bioactive,ActiBioPure™,His Tag,PBS Only,≥95%(SDS-PAGE),See COA | Recombinant protein/control | Used for validation and positive control of CD107a detection systems | |
Cytotoxic molecule detection | Recombinant Granzyme B Antibody | ExactAb™, Validated, Carrier Free, Recombinant, 0.3 mg/mL | Antibody detection | Used to detect Granzyme B expression in NK cells and cytotoxic T cells | |
Cytotoxic function control | Recombinant Human Granzyme B Protein | Animal Free,Carrier Free,Bioactive,ActiBioPure™,His Tag,PBS Only,≥95%(SDS-PAGE) | Recombinant protein/control | Used as a positive control and method validation material for Granzyme B detection systems | |
Cytotoxic molecule detection | Granzyme M Antibody | ExactAb™, Validated, Carrier Free, 0.6 mg/mL | Antibody detection | Used to supplement evaluation of NK cell granzyme profiles and cytotoxic molecule expression | |
Cytotoxic mechanism intervention | Perforin-IN-2 | ≥99% | Perforin inhibitor | Used to validate whether perforin-dependent killing participates in functional effects of the CD161-LLT1 axis | |
Antigen presentation/activation status | HLA-DR Mouse mAb | Carrier Free,ExactAb™,Azide Free,Validated,High Performance,PBS Only,≥95%(SDS-PAGE),0.5 mg/mL | Antibody detection | Used for analyzing antigen-presenting cells, activated T cells, and immune status in the tumor microenvironment | |
Antigen presentation flow cytometry detection | HLA-DR Mouse mAb (APC) | ExactAb™, Validated, Azide Free, Ex:650nm, Em:660nm, 5 μL/test | Flow cytometry | Used to detect HLA-DR+ antigen-presenting cells and support determination of LLT1 immune cell source | |
Antigen presentation flow cytometry detection | HLA-DR Mouse mAb (PE) | Validated, Ex:565nm, Em:575nm, 5 μL/test | Flow cytometry | Used for multicolor flow cytometry analysis of HLA-DR with CD161, CD3, CD56, and other markers | |
IFN-γ protein detection | IFN-γ Mouse mAb | Carrier Free,ExactAb™,Azide Free,Validated,PBS Only,≥95%(SDS-PAGE),See COA | Antibody detection | Used to detect IFN-γ expression in NK cells and T cells and evaluate effector function output | |
IFN-γ flow cytometry detection | IFN-γ Mouse mAb (FITC) | ExactAb™, Validated, 5 μL/test | Intracellular cytokine flow cytometry | Used for ICS detection of IFN-γ and evaluation of CD161+ NK/T cell effector function | |
IFN-γ detection | Human Interferon Gamma (IFN-γ) ELISA Kit | BioReagent | ELISA | Used to detect IFN-γ in human samples, cell supernatants, or co-culture systems | |
IFN-γ detection | Mouse Interferon Gamma (IFN-γ) ELISA Kit | BioReagent | ELISA | Used to detect IFN-γ in mouse tumor models and evaluate anti-tumor effects of NK/T cells | |
IFN-γ stimulation/control | IFN-γ1b (human recombinant) | Moligand™ | Recombinant cytokine | Used for in vitro stimulation, positive control, or analysis of inflammatory regulation under LLT1 induction conditions | |
TNF-α detection | Human Tumor Necrosis Factor Alpha (TNF-α) ELISA Kit | BioReagent | ELISA | Used to detect TNF-α in human samples or co-culture supernatants and evaluate pro-inflammatory effects of T/NK cells | |
TNF-α detection | Mouse Tumor Necrosis Factor Alpha (TNF-α) ELISA Kit | BioReagent | ELISA | Used to detect TNF-α in mouse tumor models and support evaluation of immune effector responses | |
TNF-α stimulation/control | Recombinant Human TNF-α Protein | Animal Free,Carrier Free,Bioactive,ActiBioPure™,High Performance,≥95%(SDS-PAGE),expressed in E. coli; See COA | Recombinant cytokine | Used for in vitro stimulation, inflammatory condition modeling, and LLT1 induction studies | |
T cell activation/proliferation | Recombinant IL-2 Receptor alpha/CD25 Antibody | Animal Free,Carrier Free,Recombinant,ExactAb™,Azide Free,Validated,High Performance,PBS Only,≥95%(SDS-PAGE),See COA | Antibody detection | Used to detect CD25/IL-2Rα and evaluate T cell activation and proliferation status | |
T cell activation flow cytometry | Recombinant IL-2 Receptor alpha/CD25 Antibody (PE) | ExactAb™,Validated,Recombinant,5 μL/test | Flow cytometry | Used to detect CD25+ activated T cells and analyze CD161+ T cell functional phenotype | |
IL-2 detection | Human Interleukin 2 (IL-2) ELISA Kit | BioReagent | ELISA | Used to detect IL-2 secretion after T cell activation and evaluate T cell response intensity | |
IL-2 detection | Mouse Interleukin 2 (IL-2) ELISA Kit | BioReagent | ELISA | Used to detect IL-2 in mouse tumor models or T cell co-culture systems | |
T/NK cell culture stimulation | Recombinant Human IL-2 Protein | Animal Free,Carrier Free,Bioactive,ActiBioPure™,High Performance,His Tag,≥95%(SDS-PAGE),See COA | Cytokine stimulation | Used for NK cell and T cell culture, expansion, and functional maintenance | |
T/NK cell culture stimulation | Recombinant Mouse IL-2 Protein | Animal Free,Carrier Free,Bioactive,ActiBioPure™,High Performance,His Tag,≥95%(SDS-PAGE),See COA | Cytokine stimulation | Used for culture and functional experiments of mouse-derived T/NK cells | |
Th17-like response detection | Human Interleukin 17A (IL-17A) ELISA Kit | BioReagent | ELISA | Used to detect CD161+ T cell Th17-like responses and IL-17A secretion levels | |
Th17-like response detection | Mouse Interleukin 17 A(IL-17A) ELISA Kit | BioReagent | ELISA | Used to detect IL-17A in mouse models and support evaluation of inflammatory features of CD161+ T cells | |
IL-17A protein detection | Recombinant IL-17A Antibody | Carrier Free,Recombinant,ExactAb™,Azide Free,Validated,PBS Only,See COA | Antibody detection | Used for IL-17A protein detection and supporting analysis of CD161+ CD4+ T cells or Th17-like responses | |
IL-17A stimulation/control | Recombinant Human IL-17A Protein | Animal Free,Carrier Free,Bioactive,ActiBioPure™,His Tag,PBS Only,≥95%(SDS-PAGE),See COA | Recombinant cytokine | Used for IL-17A pathway stimulation, positive control, and Th17-like functional research | |
Th17 transcriptional feature detection | Human Transcription Factor Vincristine-associated Solitary Receptor Gamma t(RORγt) ELISA Kit | BioReagent | ELISA | Used to detect RORγt in human samples and support evaluation of Th17-like differentiation features in CD161+ T cells | |
Th17 transcriptional feature detection | Mouse Transcription Factor Retinoic Acid-related Orphan Receptor γt (RORγt) ELISA Kit | BioReagent | ELISA | Used to detect RORγt in mouse models and support evaluation of Th17-like T cell responses | |
RORγt mechanism intervention | SR1001 | Moligand™, ≥98% | RORγt pathway intervention | Used to validate the relationship between CD161+ T cell Th17-like responses and the RORγt pathway |
8 Common Questions
8.1 Is CD161 an NK cell marker or a T cell marker?
CD161 is not a marker of a single cell type. It can be expressed on NK cells, subsets of CD4+ T cells, CD8+ T cells, MAIT cells, and tissue-resident-like T cells. In research, markers such as CD3, CD56, CD4, CD8, and Vα7.2 must be combined to determine cell origin.
8.2 Does high LLT1 expression necessarily indicate tumor immunosuppression?
Not necessarily. High LLT1 expression suggests possible CD161-related regulation, but whether it causes immunosuppression requires functional validation. Only when high LLT1 expression is accompanied by reduced NK/T cell function and functional recovery after CD161-LLT1 blockade does it more strongly support an immunosuppressive role.
8.3 Are CD161+ T cells effector or suppressive cells?
This depends on tumor type, cell subset, and functional state. CD161+ T cells may have effector, tissue-resident, Th17-like, or exhaustion-like features. GZMB, IFN-γ, IL-17A, PD-1, TIM-3, TOX, and Ki-67 should be evaluated together.
8.4 Are blocking experiments necessary for studying the CD161-LLT1 axis?
Expression analysis can provide correlative clues. To prove functional effects, blocking experiments, knockdown/overexpression, or recombinant ligand stimulation experiments are recommended. Functional causality validation is key in studying this axis.
8.5 Which indicators should be prioritized for evaluating NK cell function?
CD107a degranulation, Granzyme B/Perforin, IFN-γ, and target cell death rate should be prioritized. If CD161-LLT1-mediated suppression is studied, restoration of killing after LLT1 or CD161 blockade is important evidence.
8.6 How can the source of LLT1 be determined?
The source can be determined using multicolor flow cytometry, IHC/multiplex IF, or single-cell transcriptomics. Tumor cell origin should be co-localized with tumor markers, while myeloid origin should be analyzed together with markers such as CD68, CD163, or HLA-DR.
8.7 Can the CD161-LLT1 axis serve as an immunotherapy target?
This axis has research value, but its relevance should be judged according to tumor type, expression location, functional experiments, and clinical correlation. If blocking this axis enhances NK/T cell killing and correlates with patient prognosis or immunotherapy response, it provides stronger support for its use as a candidate target.
Research on the CD161-LLT1 axis should move from expression localization to functional validation, and then be interpreted in the context of the tumor microenvironment and immunotherapy. CD161-marked immune cells are highly heterogeneous, and LLT1 may also have different cellular sources. Only by integrating cell subsets, spatial relationships, blocking experiments, and NK/T cell functional readouts can the true role of this axis in tumor immunity be determined.
For more related articles, please see below:
[1] Functional assay of cytotoxic T cells induced by specific antigens
