This protocol describes an optimized cell-free system for reconstituting STING incorporation into COPII vesicles, enabling controlled biochemical analysis of cargo sorting during ER export.
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Method Article
* These authors contributed equally
This protocol describes an optimized cell-free system for reconstituting STING incorporation into COPII vesicles, enabling controlled biochemical analysis of cargo sorting during ER export.
The cGAS–STING pathway is a central component of innate immunity. Upon activation, the endoplasmic reticulum (ER)-resident protein STING is packaged into COPII vesicles and transported to the Golgi apparatus to initiate downstream signaling. Despite the importance of this process, the molecular mechanisms governing STING sorting into COPII vesicles remain incompletely understood. Here, an optimized workflow is presented for the in vitro reconstitution of COPII vesicles to facilitate controlled analysis of cargo selection. A scalable method is described for preparing high-concentration cytosol (30–40 mg/mL) from HEK-293F suspension cells, combined with a straightforward procedure for generating semi-permeabilized HEK-293T cells as a defined membrane source. Compared to traditional adherent cell-based systems, this approach improves scalability, reduces cost, and enhances reproducibility. Using STING as a model cargo, COPII vesicle budding and cargo incorporation are validated by Western blot analysis, with a basal packaging efficiency of approximately 20% under defined conditions. This system allows controlled manipulation of biochemical parameters, including nucleotide stimulation, to assess their effects on cargo incorporation. This protocol provides a robust and adaptable platform for investigating COPII-mediated cargo sorting and can be extended to study additional transmembrane proteins and regulatory factors involved in ER export.
The cGAS-STING signaling pathway serves as a fundamental mechanism of the innate immune system, sensing cytosolic double-stranded DNA (dsDNA) to initiate an antiviral response. Upon detecting dsDNA, the enzyme cGAS produces the cyclic dinucleotide cGAMP, which acts as a second messenger that binds to the STING1,2. Crucially, STING resides as an inactive dimer in the endoplasmic reticulum (ER) under steady-state conditions3. Its activation requires rapid, highly regulated translocation from the ER to the Golgi apparatus. It is at the Golgi that STING recruits and activates the downstream kinases TBK1 and IRF3, leading to the production of type I interferons and pro-inflammatory cytokines4.
The transport of STING is mediated by COPII-coated vesicles, the universal vehicles for protein export from the ER5. The assembly of the COPII coat—comprising the small GTPase Sar1, the inner-coat Sec23/24 complex, and the outer-coat Sec13/31 complex—is responsible for both deforming the ER membrane into vesicles and selectively recruiting cargo6,7. Sec22b is sorted into COPII vesicles via a structural epitope recognized by the Sec23/24 complex of COPII8. Other cargoes include the p24 family and the ERGIC marker ERGIC-53, both of which depend on a C-terminal dihydrophobic φC motif for sorting9. In contrast, certain ER-anchored proteins, such as ribophorin I (RPN1), remain confined to the ER and serve as markers of intact ER structures, as they are not transported via COPII vesicles10. Consequently, in cell-free COPII vesicle reconstitution experiments, Sec22b and p24 are often considered as COPII cargoes, while ribophorin serves as a marker to monitor ER contamination in vesicle preparations. While the general machinery of COPII transport is well-characterized, the specific molecular cues that trigger the selective sequestration of activated STING into these vesicles remain elusive. Understanding these sorting mechanisms is vital, as dysregulation of STING transport is linked to various autoimmune and autoinflammatory diseases, such as STING-associated vasculopathy with onset in infancy (SAVI) and COPA syndrome11. However, studying these transient and highly dynamic events in intact cells remains technically challenging.
To address these challenges, an optimized cell-free reconstitution system was developed to interrogate the molecular requirements of COPII-mediated cargo sorting. While in vitro budding assays have long been a staple of cell biology12, their widespread adoption is often limited by the high cost and complexity of preparing high-quality components. In this study, a streamlined workflow is introduced that utilizes HEK-293F suspension cells as an economical source of active cytosol and semi-permeabilized HEK-293T cells as a robust membrane donor. The overall workflow of the cell-free COPII vesicle reconstitution system is illustrated in Figure 1. In this system, Sec22b was used as a positive control to confirm cargo incorporation into vesicles, while RPN1 was utilized as a negative control to monitor and rule out ER membrane contamination. Using STING as a proof-of-concept cargo, this study demonstrated that the system effectively models essential biochemical aspects of STING sorting. This platform provided a versatile, scalable tool for identifying cytosolic factors and membrane signals that govern STING sorting, with potential applications for studying a wide array of other vesicular transport pathways.
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The HEK-293F (RRID: CVCL_6642) and HEK-293T (RRID: CVCL_0063) cell lines were obtained from the Cell Resource Center at Peking Union Medical College. Both cell lines were authenticated by short tandem repeat (STR) profiling and confirmed to be free of mycoplasma contamination. The reagents and the equipment used are listed in the Table of Materials.
No human participants or vertebrate animals were involved in this study. Therefore, ethical approval was not required. All experimental procedures were conducted in accordance with institutional biosafety guidelines.
1. Preparation of HEK-293F cell cytosol
2. Preparation of semi-permeabilized HEK-293T cells
3. Cell-free COPII vesicle reconstitution experiment
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During the preparation of HEK-293F cell cytosol, two parameters were evaluated to assess cytosol quality. HEK-293F cells were cultured at high density, yielding cytosolic extracts with high protein concentrations. In addition, the extent of cell disruption following syringe-based lysis was assessed by light microscopy, confirming efficient cell lysis under the applied conditions (Figure 2B).
For the generation of semi-permeabilized HEK-293T cells, cultures were ha...
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The reconstitution of essential biochemical reactions in vitro has laid the foundation for cell-free systems, which have been instrumental in numerous landmark discoveries. These include the identification of cGAS as a cytosolic DNA sensor14,15, the elucidation of the role of cytochrome c in apoptosis, and the discovery of the first histone demethylase, JHDM116,17. Such defined biochemical approa...
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The authors have nothing to disclose.
This work was supported by the Startup Fund Program at Beijing University of Chinese Medicine (BUCM) (90011451310011). The authors are grateful to Dr. Dongxiao Cui for his valuable assistance with the experimental work.
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| Name | Company | Catalog Number | Comments |
|---|---|---|---|
| 5 mL sterile syringes | WEGO | V526273 | Used for mechanical cell lysis |
| Adenosine 5′-triphosphate (ATP) | MCE | HY-B2176 | 100 mM stock in water, pH 7.3, stored at −80 °C |
| Adobe Illustrator | Adobe Systems Incorporated | SCR_010279 | Used for creating conceptual illustrations and schematic diagrams |
| ATP regeneration system (10×) | — | — | Energy-regenerating mixture containing creatine phosphate, creatine kinase, and ATP |
| BCA Protein Assay Kit | Thermo Fisher | 23227 | Colorimetric protein assay |
| BioRender | BioRender | SCR_018361 | Used for creating conceptual illustrations and schematic diagrams |
| BSA | Biorigin | BN20815 | Blocking reagent |
| Carbon dioxide shaking incubator | ZhiChu | ZCZY-CS8 | Maintains temperature, CO2, and agitation for suspension culture |
| CO2 incubator | Thermo Fisher | 3110 | Maintains temperature and CO2 for adherent culture |
| Conventional microscope | Olympus | CX43 | Used to assess cell lysis and morphology |
| Creatine kinase | Roche | CKRO | 20 mg/mL stock in buffer, stored at −80 °C |
| Creatine phosphate | Roche | CRPHO-RO | Component of ATP regeneration system |
| Desktop centrifuge | Eppendorf | 5810R | Used for low-speed centrifugation |
| Digitonin | Sigma | D5628 | 40 mg/mL stock in DMSO, stored at −20 °C |
| DMEM | Corning | 10-013-CMR | Growth medium for HEK-293T cells |
| D-Sorbitol | Sangon | A100691 | 1 M stock solution in water, stored at 4 °C |
| ECL detection reagent | Biorigin | BN16009 | Chemiluminescent substrate |
| Electrophoresis tank | Bio-Rad | 1658001 | Apparatus for SDS-PAGE |
| Fetal bovine serum (FBS) | Corning | 35-015-CV | Serum supplement |
| Fixed-angle rotor (TFT 80.2) | Thermo Fisher | 54456 | Rotor for ultracentrifugation |
| FreeStyle 293-F cells | Thermo Fisher | R79007 | Used for cytosol preparation |
| Goat anti-mouse IgG (H+L) | Invitrogen | 31430 | HRP-conjugated secondary antibody |
| Goat anti-rabbit IgG (H+L) | Invitrogen | 31460 | HRP-conjugated secondary antibody |
| GraphPad Prism | GraphPad Software | SCR_002798 | Used for performing statistical analysis (one-way ANOVA) and generating the quantitative bar graph in Figure 4D. |
| Guanosine 5′-triphosphate (GTP) | MCE | HY-113225 | 10 mM stock in water, pH 7.3, stored at −80 °C |
| HEK-293T cells expressing human STING | — | — | Generated in-house; used as membrane source |
| HEPES buffer (1 M, pH 7.3) | Beyotime | C0215 | Buffer component for solution preparation |
| Imaging system | Bio-Rad | 12003153 | Used for signal detection |
| Magnesium acetate tetrahydrate | Hampton Research | HR2-561 | Buffer component for B88 preparation |
| Magnesium chloride hexahydrate | Hampton Research | HR2-559 | Buffer component |
| Microcentrifuge | Eppendorf | 5420R | Used for medium-speed centrifugation |
| Microcentrifuge | Eppendorf | 5420 | Used for routine centrifugation |
| NanoDrop spectrophotometer | Thermo Fisher | 840-317400 | Used for protein quantification |
| OPM-CD Trans293 medium | OPM | P82019 | Serum-free medium for HEK-293F suspension culture |
| Penicillin–streptomycin (100×) | Servicebio | G4003 | Antibiotic supplement for cell culture |
| Phenylmethyl sulfonyl fluoride (PMSF) | Sangon | A610425 | Protease inhibitor |
| Phosphatase inhibitors | Lablead | C0104 | Prevent protein dephosphorylation |
| Phosphate-buffered saline (PBS) | Servicebio | G4202 | Buffer for washing cells |
| Potassium acetate | Sigma | 236497 | 1 M stock solution in water, stored at 4 °C |
| Power supply | Bio-Rad | 1645052 | Provides voltage for electrophoresis |
| Protease inhibitor cocktail, EDTA-free | Roche | 4693132001 | Broad-spectrum protease inhibitor mixture |
| PVDF membrane | Millipore | ISEQ00010 | Membrane for Western blotting |
| RPN1 antibody (rabbit mAb) | Abcam | ab197888 | ER marker |
| SDS-PAGE gel (4–20%) | — | — | Used for protein separation |
| SDS-PAGE loading buffer (5×) | Solarbio | P1040 | Protein sample preparation buffer |
| Sec22b antibody (rabbit mAb) | Abcam | ab181076 | COPII cargo marker |
| Soybean trypsin inhibitor (SBTI) | Sigma | T9128 | 1 mg/mL stock in PBS, stored at −20 °C |
| STING antibody (rabbit mAb) | CST | 13647 | Primary antibody |
| TBST buffer | Servicebio | G0004 | Washing buffer for immunoblotting |
| Thermal cycler | Bio-Rad | 186-1096 | Used for heating and incubation |
| Thermostatic metal bath | DLAB | 5062102100 | Maintains constant temperature |
| Transfer cell | Bio-Rad | 1703930 | Used for protein transfer |
| Trypsin-EDTA (0.25%) | Servicebio | G4011 | Used for cell detachment |
| Ultracentrifuge | Thermo Fisher | 75000100 | Used for high-speed centrifugation |
| Ultracentrifuge tubes (2 mL) | Thermo Fisher | 54460 | Tubes compatible with ultracentrifugation |
| Ultrafiltration tube (4 mL, 10 kDa MWCO) | Millipore | UFC8010 | Used for cytosol concentration |