cGAS-STING Signalling: Pathway, Regulation and Key Assays
Double-stranded DNA in the cytosol is always a mistake. A virus has uncoated, a mitochondrion has ruptured, a micronucleus has burst, or a chromosome has been broken and left unrepaired. cGAS treats all of these identically: it binds the sugar-phosphate backbone without reading a base, makes a cyclic dinucleotide, and hands the alarm to STING. What follows — interferon, inflammation, autophagy or death — is decided by trafficking and by a set of brakes as important as the sensor itself.
Key takeaways
- cGAS senses the DNA backbone, not sequence: it ladders along long duplexes and phase-separates, making the response switch-like rather than graded.
- 2′3′-cGAMP is transmissible — imported by SLC19A1, destroyed extracellularly by ENPP1.
- STING signals only while moving, from ER through Golgi to lysosome; the itinerary that activates it also terminates it.
- STING drives two outputs: TBK1–IRF3 for type I interferon, NEMO–IKK–NF-κB for TNF-α and IL-6.
- Losing the brakes — TREX1, ULK1, p62-dependent degradation — turns a self-limiting alarm into a chronic interferon signature.
Explore the interactive version. Every protein in this map is clickable and links straight to the matching Assay Genie In Vivo antibody, ELISA kit or research antibody, with a tooltip explaining its role.
Open the interactive pathway →Sensing DNA where it should not be
cGAS binds B-form double-stranded DNA through two basic surfaces without reading a single base. Two enzymes and two duplexes assemble into a 2:2 ladder, and that geometry — not simple occupancy — reorganises the catalytic pocket. Long DNA nucleates cooperative laddering and phase separation, so cGAS acts as a length-dependent, switch-like sensor. Its product, 2′3′-cGAMP, carries one 2′–5′ and one 3′–5′ bond, a mixed linkage that binds STING roughly a hundred-fold more tightly than bacterial cyclic dinucleotides.
cGAS is not alone. DDX41 feeds the same STING module, while AIM2 diverts cytosolic dsDNA into an inflammasome instead of interferon, so the two arms compete for one ligand. cGAMP also leaves the cell, crossing gap junctions and entering neighbours via the folate carrier SLC19A1, arming bystanders that never saw DNA. Tumours counter here, using ENPP1 to hydrolyse extracellular cGAMP into immunosuppressive adenosine. Upstream, TREX1 clears cytosolic DNA before cGAS meets it.
STING: the trafficking is the signal
STING sits in the ER as a dimer with a V-shaped cleft. cGAMP closes a lid over it and rotates the ligand-binding domain about 180 degrees relative to the transmembrane region, relieving autoinhibition and permitting oligomerisation. Release requires disengaging its retention factors — STIM1, better known as the ER calcium sensor, moonlights as the anchor holding resting STING in place. STING then travels by COPII to the ERGIC and Golgi, where palmitoylation clusters it into lipid rafts.
At the Golgi the STING C-terminal tail recruits TBK1, which trans-autophosphorylates and marks STING at Ser366. That phospho-serine docks IRF3, which TBK1 phosphorylates on its C-terminal serine cluster; the dimer enters the nucleus and drives IFN-β. IKKε is partly redundant and itself interferon-induced, contributing a second wave through IRF7. Activation and shutdown share one itinerary: ULK1 phosphorylates inhibitory sites and p62/SQSTM1 delivers ubiquitinated STING to the lysosome.
The second output: NEMO, IKK and NF-κB
Trafficking STING also assembles a TRAF6-dependent ubiquitin scaffold recruiting NEMO (IKKγ) with IKKα and IKKβ. IKKβ phosphorylates IκBα on Ser32/Ser36, marking it for proteasomal degradation and freeing NF-κB p65/p50. The output is inflammatory: TNF-α, IL-6 and, in primed myeloid cells, pro-IL-1β. This arm is not a side reaction — the IFN-β enhanceosome needs IRF3 and NF-κB bound cooperatively, so IKK inhibition lowers interferon even when IRF3 is phosphorylated normally.
Kinetics decide the biology. An acute STING pulse in a tumour bed gives an IRF3-dominant interferon burst, dendritic-cell licensing and CD8 priming. Chronic low-grade signalling in the same tissue drifts toward an NF-κB-dominant output that recruits suppressive myeloid cells and supports metastasis. Reading only IFN-β, or only TNF-α, gives opposite conclusions about the same intervention; both arms belong in any agonist study, measured from the same sample.
Amplification: IFNAR, ISGF3 and the ISG output
Secreted IFN-β acts back on the producing cell and its neighbours through IFNAR1/IFNAR2. IFNAR2 carries the high-affinity site and constitutive JAK1; IFNAR1 contributes TYK2 and sets the step discriminating IFN-β from the IFN-α subtypes. Dimerisation brings the kinases into range to trans-phosphorylate and create docking sites. STAT1 and STAT2 are then recruited, phosphorylated and joined by IRF9 to form ISGF3, which reads ISREs rather than the GAS elements bound by STAT1 homodimers.
The map shows the informative products: the ubiquitin-like modifier ISG15, the antiviral GTPase MX1, the RNase-L activator OAS1, the chemoattractant CXCL10, and IRF7, which converts one IFN-β pulse into a self-amplifying multi-subtype response. This matters for quantification. IFN-β protein is transient and often already cleared before tissue is harvested, whereas CXCL10 integrates the response over hours, sits comfortably in ELISA range, and tracks effector T-cell recruitment.
Brakes, inflammasome crosstalk and where this goes wrong
The clinical relevance is almost entirely a story about failed brakes. Biallelic TREX1 loss causes Aicardi–Goutières syndrome, an interferonopathy fully rescued in mice by deleting cGAS or STING; heterozygous variants recur in lupus, and ligand-independent STING alleles cause SAVI. The other route is self DNA from the wrong compartment: BAX/BAK macropores release mtDNA, and micronuclei rupture after mis-segregation — the link between genome instability, radiotherapy and interferon in tumours.
The same DNA feeds the inflammasome branch. AIM2 nucleates ASC filaments directly, while NLRP3 responds indirectly and is transcriptionally primed by the very NF-κB and interferon signals STING produces. Either route activates caspase-1, which matures pro-IL-1β and cleaves gasdermin D into membrane pores; pyroptosis then releases more DNA and closes the loop. Whether a cell makes interferon or dies is largely a race between sensors for one ligand.
Key targets and matching reagents
| Target | Role in the pathway | Reagent |
|---|---|---|
| IFN-β | Primary IRF3-driven output; drives the ISG programme | Anti-mouse IFN-β In Vivo In Vivo |
| TNF-α | Reports the STING–NF-κB arm in vivo | Anti-mouse TNF In Vivo In Vivo |
| IL-1β | Inflammasome output downstream of caspase-1 | Anti-mouse IL-1β In Vivo In Vivo |
| cGAS | Sequence-independent cytosolic dsDNA sensor | Human cGAS ELISA kit ELISA |
| STING (TMEM173) | cGAMP receptor and trafficking signalling platform | Human STING ELISA kit ELISA |
| TBK1 | Phosphorylates STING and IRF3 at the Golgi | Mouse TBK1 ELISA kit ELISA |
| IRF3 | Transcription factor for IFN-β induction | Mouse IRF3 ELISA kit ELISA |
| TREX1 | Cytosolic exonuclease; the main upstream brake | Human TREX1 ELISA kit ELISA |
| ENPP1 | Hydrolyses extracellular cGAMP; tumour immune evasion | Mouse ENPP1 ELISA kit ELISA |
| CXCL10 (IP-10) | Durable ISG readout and T-cell chemoattractant | Mouse CXCL10 ELISA kit ELISA |
Studying cGAS-STING in vivo
Most of this pathway is intracellular, so in vivo intervention happens at the secreted outputs. Experiments fall into three groups.
1. Neutralising the secreted output
Functional-grade anti-mouse IFN-β, anti-mouse TNF and anti-mouse IL-1β let you ask which arm a phenotype depends on. Blocking IFN-β while leaving TNF-α intact separates the IRF3 branch from the NF-κB branch far more cleanly than any kinase inhibitor, since TBK1 and IKK compounds cross-react at working concentrations. Use low-endotoxin, azide-free preparations: residual LPS primes NF-κB and the inflammasome directly, manufacturing the signal you are trying to measure.
2. Quantifying the two arms in parallel
Run both axes on the same samples. For the IRF3 branch: IRF3, TBK1 and IKKε upstream, then STAT1, STAT2, IRF9, JAK1 and TYK2 at the receptor, with ISG15, MX1, OAS1 and CXCL10 as durable output. For the NF-κB branch: NEMO, IKKβ, IκBα and p65, with TNF-α and IL-6 secreted. Add IFNAR1 and IFNAR2 when a model looks interferon-resistant rather than interferon-poor.
3. Mapping the brakes and the inflammasome branch
The regulatory nodes are where unexplained phenotypes live. Assay TREX1 and ENPP1 to see how much DNA and cGAMP the system disposes of, SLC19A1 for cGAMP import, and ULK1 with p62/SQSTM1 for the autophagic shutdown limb. STIM1 and DDX41 cover ER retention and the parallel sensor. On the death side, pair AIM2, NLRP3, ASC, caspase-1, gasdermin D and BAX to tell an interferon-dominant response from one tipped into pyroptosis.
All functional-grade antibodies in this pathway are supplied low-endotoxin and azide-free, formulated for direct administration in mouse models.
Browse the In Vivo range →Featured products for this pathway
Low-endotoxin functional-grade antibody for neutralising the primary IRF3-driven output of STING.
View productBlocks the NF-κB arm, isolating inflammatory from interferon-dependent effects in vivo.
View productNeutralises the mature inflammasome product where DNA sensing tips into pyroptosis.
View productQuantifies the cytosolic DNA sensor that initiates the entire pathway.
View productMeasures the cGAMP receptor whose trafficking and turnover set interferon output.
View productThe most robust downstream ISG readout of STING activation in serum and tissue.
View productFrequently asked questions
How does cGAS avoid being activated by the cell's own genomic DNA?
Two ways. Physically, the nuclear envelope keeps chromatin out of the cytosolic pool. Biochemically, nuclear cGAS is tethered to the nucleosome acidic patch, which occupies the same basic surface it would otherwise use to ladder along naked DNA, holding the enzyme catalytically inert. The system fails when the barrier fails: micronuclei that rupture after chromosome mis-segregation, and mitochondrial DNA released through BAX/BAK macropores, both present naked duplex in the cytosol and are read as foreign. Compartmentalisation, not sequence discrimination, is what keeps this pathway silent at rest.
What is the best single readout of STING pathway activation?
For a functional readout, CXCL10/IP-10 is the most practical: strongly interferon-inducible, secreted well within ELISA range, and stable enough to survive a realistic harvest schedule. IFN-β itself is more direct but transient, and is frequently already cleared by the time a tissue or serum sample is taken. If you need to place the block within the pathway rather than simply detect it, pair CXCL10 with IRF3 and STAT1: loss of ISGs with intact IRF3 phosphorylation points to a receptor-level defect rather than a sensing defect.
Why do STING agonists sometimes promote tumour growth?
Because STING has two outputs and their balance depends on duration. Acute stimulation favours the TBK1–IRF3 arm, type I interferon and CD8 priming. Sustained or low-grade signalling shifts the balance toward NF-κB, with TNF-α and IL-6 recruiting suppressive myeloid cells, and prolonged STING activity can drive T-cell death directly. Tumours additionally upregulate ENPP1 to strip extracellular cGAMP and generate adenosine. Dose, schedule and route can therefore change the sign of the effect, which is why both arms should be quantified in parallel.
How does the cGAS-STING pathway connect to the inflammasome?
Through a shared ligand and shared priming. AIM2 binds cytosolic dsDNA directly and recruits ASC to activate caspase-1, competing with cGAS for the same substrate. Separately, the NF-κB and type I interferon signals STING generates transcriptionally prime NLRP3 and pro-IL-1β, so STING activity raises the inflammasome's readiness even without providing the second signal. Caspase-1 then cleaves gasdermin D, and the resulting pores release mature IL-1β along with more DNA. In myeloid cells the two branches behave as one system with a shared input.
Explore the full interactive map. Click any protein for its role and the matching validated reagent.
Open the interactive pathway →In Vivo antibodiesFor research use only. Not for use in diagnostic or therapeutic procedures.
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