We outline a highly adaptable approach to using CRISPR-Cas9 ribonucleoprotein complex-mediated gene ablation in murine naïve CD4 T cells to investigate gene function in CD4 T cell differentiation.
A subscription to JoVE is required to view this content. Sign in or start your free trial.
Method Article
We outline a highly adaptable approach to using CRISPR-Cas9 ribonucleoprotein complex-mediated gene ablation in murine naïve CD4 T cells to investigate gene function in CD4 T cell differentiation.
The widespread accessibility of clustered regularly interspaced short palindromic repeat (CRISPR)-Cas9 technology has made gene targeting in primary cells a routine method for evaluating gene function in T cells. Given the cost and limited availability of knockout (KO) mouse strains, testing preliminary hypotheses involving gene function in T cells can be prohibitive using gene-targeted animal models. However, using commercially available resources, including predesigned guide RNAs (gRNAs), researchers can conveniently generate gene-targeted naïve T cells that can be used for T cell activation and differentiation studies.
Here we outline a protocol for using nucleofection-delivered CRISPR-Cas9 ribonucleoprotein complexes (RNPs) to efficiently generate gene KO murine naïve CD4 T cells that can be used to evaluate gene function in CD4 T cell differentiation, in vitro. Isolation of naïve CD4 T cells from mouse secondary lymphoid organs, followed by nucleofection with Cas9-gRNA complexes ensures gene KO is initiated before downstream T cell activation, offering a strategic advantage over retroviral-mediated gRNA delivery, which typically requires preactivation of T cells, preventing the evaluation of effects in naïve T cells. Furthermore, this nucleofection-based method bypasses potential developmental issues associated with gene KO animals.
Following Cas9-gRNA delivery, we describe protocols for studying CD4 T cell differentiation into Th1, Th2, Th17, and Treg lineages using in vitro polarization. In addition, this protocol is adaptable to using gene-targeted CD4 or CD8 T cells for numerous downstream applications, including other T cell activation studies in vitro and adoptive transfer studies in vivo. The use of CRISPR-Cas9 methods has streamlined our ability to evaluate gene function in T cells and allows for the routine KO of many genes of interest, freeing researchers from limitations associated with studying gene KO animals.
The use of clustered regularly interspaced short palindromic repeat (CRISPR)-based technologies has transformed our ability to manipulate genomic DNA sequences, greatly enhancing our ability to study gene function in countless biological systems. With respect to CD4 T cells, methods utilizing CRISPR-Cas9 ribonucleoprotein (RNP) complexes have emerged, facilitating efficient gene knock-out (KO) in primary naïve T cells that can be used for in vitro and in vivo studies1,2,3,4. Identification of new putative genes regulating CD4 T cell differentiation is often driven by transcriptomic and epigenomic analyses, generating novel targets for which there can be few or difficult-to-obtain resources to investigate, particularly if the gene affects multiple tissues and may require evaluation using conditional gene-targeted mice. Gene-targeting via retroviral transduction of gRNAs5,6 has been used to evaluate gene function in T cells, yet requires T cell activation for retroviral infection, and cannot be used to target genes in naïve T cells. Nucleofection-delivered CRISPR-Cas9 in naïve T cells offers a relatively inexpensive and fast alternative tool to validate and interrogate new genes of interest before investing in time-consuming and costly mouse models.
In our protocol described here, CRISPR-Cas9-mediated gene editing is carried out using recombinant Cas9 protein complexed with guide RNA (gRNA) molecules that are delivered into naïve CD4 T cells via nucleofection. The gRNA is made up of two distinct components, a trans-activating CRISPR RNA (tracrRNA) and a CRISPR RNA (crRNA). Functionally, tracrRNA-derived sequences facilitate association of the gRNA with Cas9, while the crRNA sequences contain specificity for target DNA regions of interest. Cas9-gRNA complexes mediate targeted double-stranded DNA (dsDNA) breaks, with gRNAs mediating the sequence specificity of Cas9 endonuclease activity7,8. The Cas9-mediated cleavage of dsDNA leads to gene inactivation, through the generation of indel mutations following non-homologous end joining in target cells9. In this protocol, we recommend using multiple gRNAs targeting genes of interest to ensure robust KO in naïve CD4 T cells.
Helper CD4 T cells are key players in the immune system, guiding immune responses through the production of a variety of cytokines that modulate the function of many immune cell types. Upon stimulation through the T cell receptor (TCR) in the presence of specific cytokines, naïve CD4 T cells can differentiate into distinct lineages of T helper (Th) CD4 T cells, including Th1, Th2, Th17, and regulatory T cells (Treg)10,11,12. Defining these distinct CD4 T cell lineages is the expression of specific lineage-defining transcription factors (TFs) and cytokines (Figure 1). CD4 T cell differentiation can be modeled using in vitro polarization13,14,15, using naïve CD4 T cells activated through the TCR in the presence of lineage-promoting cytokines and blocking antibodies that prevent inappropriate lineage adoption.
Combining CRISPR-Cas9 gene targeting in naïve CD4 T cells with in vitro CD4 T cell polarization offers a robust system to evaluate gene function in these cells (Figure 2). Given the widespread availability of reagents to assess CD4 differentiation by flow cytometry, key aspects of CD4 T cell differentiation, including TF expression and cytokine production, can easily be interrogated using the protocols described here. The identification of novel genes regulating CD4 T cell function enhances our understanding of these cells, and CRISPR-Cas9 methods paired with in vitro polarization offer a robust modality for assessing gene function before committing to gene KO mouse models.
Access restricted. Please log in or start a trial to view this content.
For all procedures described here, we used wild-type (WT) C57/BL6J mice. Mice were maintained and treated under specific pathogen-free (SPF) conditions in accordance with the guidelines of NIAID (protocol LISB-22E) and the Animal Care and Use committees at the NIH (Animal Welfare Assurance #A-4149-01).
1. Considerations before beginning
2. Naïve CD4 T cell isolation
NOTE: Naïve CD4 T cells may be isolated using magnetic isolation or through cell sorting. Purity obtained from magnetic isolation is typically 97%, and cell viability is very high, whereas electronic sorting can improve cell purity at the expense of cell viability. The protocol described here will use magnetic isolation but can be adapted to either scenario. Ensure the LS columns are prepared appropriately (Table of Materials).
3. Cas9-gRNA complex formation
NOTE: Prepare negative control and gene-specific crRNA stocks. We outline using one unique crRNA for negative control conditions and three unique crRNAs for gene-targeting conditions. Using three distinct crRNAs simultaneously ensures KO of the genes of interest.
4. Nucleofection - Cas9-gRNA-mediated gene ablation
5. Antigen-presenting cell (APC) isolation
NOTE: Ensure that the mitomycin reagent has been prepared, which will be used to treat APCs following isolation (Table of Materials). Read the manufacturer's anti-FITC microbead protocol before starting and ensure that the LS columns are prepared appropriately (Table of Materials).
6. CD4 T cell differentiation
NOTE: This protocol is set to culture cells in a 48-well plate format-2 × 105 naïve CD4 + 1 × 106 APC per well-a 1:5 ratio. Cells are cultured in complete IMDM media. Here, we will provide conditions for the differentiation of Th1, Th2, Th17, and Treg CD4 T cells; however, individual lineage conditions may be chosen depending on the focus of the user.
7. Assessing the impact of gene ablation in CD4 T cell differentiation
NOTE: For all staining steps, prepare a master mix of antibodies added at the appropriate dilution to the required staining buffer. A 50 µL volume of the antibody/buffer cocktail is used per sample. Adjust specific antibodies used based on the experiment. Users should choose antibody panels relevant to their specific experiments; here we provide a template with which to approach this in the context of the genes targeted here.
Access restricted. Please log in or start a trial to view this content.
To validate that a pure population of naïve CD4 T cells was obtained using our protocol (Section 2), we used flow cytometry to identify these cells before and after magnetic isolation. Using our approach, we obtained a highly pure population of live CD4+TCRb+CD25-CD44-CD62L+ naïve CD4 T cells following isolation (Figure 3A). Furthermore, to confirm that Cas9-gRNA complexes were successfully nucleofected into naïve CD4 T ...
Access restricted. Please log in or start a trial to view this content.
Integrating protocols for delivering CRISPR-Cas9 complexes into naïve CD4 T cells with methods for studying CD4 T cell differentiation provides a robust tool to explore novel genes that regulate CD4 T cell biology. Here, we provide a comprehensive guide for utilizing commercially available Cas9 and gRNA reagents that are straightforward to work with. Nucleofection-mediated delivery of Cas9-gRNA complexes into naïve CD4 T cells provides highly efficient gene editing, facilitating near-total knockout of genes of ...
Access restricted. Please log in or start a trial to view this content.
The authors have no conflicts of interest to declare.
This research was supported by the Intramural Research Program of NIAID, NIH.
Access restricted. Please log in or start a trial to view this content.
| Name | Company | Catalog Number | Comments |
|---|---|---|---|
| 0.5 M EDTA, pH = 8.0 | IPM Scientific | 11005-016 | |
| 16% Paraformaldehyde, PFA | Electron Microscopy Sciences | 15710 | Dilute with PBS to make 4% PFA fixative solution |
| 1x eBioscience Buffer (1x Permeabilization buffer) | Thermo Fisher Scientific | 00-5523-00 | Use permeabilization buffer from kit to make 1x solution |
| 1x PBS, pH = 7.4 | Quality Biological | 114-058-101 | |
| 2-mercaptoethanol (1000x) | Gibco | 21985-023 | |
| 4D Nucleofector Core Unit | Lonza | AAF-1003B | |
| 4D Nucleofector X Unit | Lonza | AAF-1003X | |
| 60 mm dish | Falcon | 353002 | |
| 70 µm nylon mesh strainer | Fisherbrand | 22363548 | |
| ACK Lysing Buffer | Gibco | A10492-01 | |
| Amaxa P3 Primary Cell 4D-Nucleofector X Kit | Lonza | V4XP-3032 | This kit includes: P3 Primary Cell Solution, Supplement 1, and 16-well nucleocuvette strips |
| anti-FITC microbeads | Miltenyi Biotec | 130-048-701 | Follow Miltenyi Anti-FITC Microbeads Protocol |
| anti-mouse CD28 (37.51) | bioXcell | BE0015-1 | see Table 1 for stock concentration |
| anti-mouse CD3e (145-2C11) | bioXcell | BE0001-1 | see Table 1 for stock concentration |
| anti-mouse IFNγ (XMG1.2) | bioXcell | BE0055 | see Table 1 for stock concentration |
| anti-mouse IL-12p40 (C17.8) | bioXcell | BE0051 | see Table 1 for stock concentration |
| anti-mouse IL-4 (11B11) | bioXcell | BE0045 | see Table 1 for stock concentration |
| BioLite 48-well Mutlidish | Thermo Fisher Scientific | 130187 | |
| Bovine Serum Albumin, BSA | Sigma Life Science | A3059 | |
| Cas9 enzyme | IDT | 1081059 | Alt-R S.p. Cas9 Nuclease V3 (10mg/mL) - contains nuclear localization sequence |
| Complete IMDM + IL-7 Media | Complete IMDM with 5 ng/mL IL-7 | ||
| Complete IMDM Media | IMDM+GlutMAX, 10% FBS, 1% L-Glutamine, 1% Pen/Strep, 0.1% BME | ||
| Complete RPMI Media | RPMI-1640, 10% FBS, 1% L-Glutamine, 1% Pen/Strep, 0.1% BME | ||
| CRISPick | https://portals.broadinstitute.org/gppx/crispick/public | ||
| Desired crRNAs | IDT | Used predesigned from IDT website: https://www.idtdna.com/site/order/designtool/index/CRISPR_PREDESIGN | |
| eBioscience FOXP3/Transcription Factor Staining Buffer Set | Thermo Fisher Scientific | 00-5523-00 | The kit contains three reagents: Fixation/Permeabilization Concentrate (4x), Fixation/Permeabilization Diluent, and Permeabilization Buffer (10x) |
| FACS Buffer | 1x PBS, 1% FBS, 1 mM EDTA | ||
| Fetal Bovine Serum (FBS) | VWR Seradigm Life Science | 97068-085 | Heat inactivate prior to use (warm to 56°C for 45 minutes) |
| FITC anti-mouse CD4 (RM4-5) | Biolegend | 100510 | 1/200 dilution (0.5 mg/mL stock concentration) |
| FITC anti-mouse CD8α (53-6.7) | Biolegend | 100706 | 1/200 dilution (0.5 mg/mL stock concentration) |
| Golgi Stop | BD Biosciences | 51-2092KZ | 1/2000 dilution |
| IMDM (1x) + GlutMAX-1 Media | Gibco | 31980-030 | |
| Ionomycin calcium salt from Streptomyces conglobatus (1 mg/mL) | Sigma Aldrich | 10634 | Recommended final concentration of 500 ng/mL |
| L-Glutamine 200 mM (100x) | Gibco | 25030-081 | |
| LS columns | Miltenyi Biotec | 130-042-401 | |
| MACS Buffer | 1x PBS, 0.5% BSA, 1 mM EDTA, filter sterilized | ||
| Mitomycin C (0.5 mg/mL) | Millipore Sigma | M4287-2MG | |
| Mouse Naïve CD4 T Cell Isolation Kit | Miltenyi Biotec | 130-104-453 | Follow Miltenyi Naïve CD4 T Cell Isolation Protocol. This kit includes Naïve CD4+ T Cell Biotin Antibody Cocktail, Anti-Biotin Microbeads and CD44 Microbeads |
| Negative control crRNA | IDT | 1072544 | alternative to designing own negative control |
| Nuclease Free Duplex Buffer | IDT | 1072570 | |
| PCR tube strips | USA Scientific | 1402-2700 | |
| Penicillin Streptomycin | Gibco | 15140-023 | |
| Phorbol 12-myristate 13-acetate, PMA (100 µg/mL) | Sigma Aldrich | P8139 | Recommended final concentration of 50 ng/mL |
| ProSeries High Performance 15mL Centrifuge Tubes | Alkali Scientific | PS5600 | 15 mL conical tubes |
| recombinant human (h) IL-2 | Peprotech | 200-02 | see Table 1 for stock concentration |
| recombinant human TGF-b1 (HEK293 derived) | Peprotech | 100-21 | see Table 1 for stock concentration |
| recombinant murine IL-12p70 | Peprotech | 210-12 | see Table 1 for stock concentration |
| recombinant murine IL-4 | Peprotech | 214-14 | see Table 1 for stock concentration |
| recombinant murine IL-6 | Peprotech | 216-16 | see Table 1 for stock concentration |
| recombinant murine IL-7 | Peprotech | 217-17 | Prepare at 100 ng/mL |
| RPMI 1640 Media | Gibco | 21870-076 | |
| Thermal Cycler | Applied Biosystems | 4375786 | We use this model of thermocycler, however any similar equipment will work well in this protocol |
| tracrRNA Atto550 labeled | IDT | 1075928 | Allows detection of Cas9-gRNA complexes after nuceloefection using Atto550 fluoresence as a readout. We recommend this reagent if feasible. |
| Triton-X Buffer | 1x PBS, 0.5% TritonX-100, 0.1% BSA | ||
| TritonX-100 | BioRad | 161-0407 | |
| unlabeled tracrRNA | IDT | 1072534 | A more cost effective tracrRNA option, but does not permit evaluation of nucelofection efficiency of Cas9-gRNA complexes |
| Veriti Thermal Cycler, 96-well Fast | Thermo Fisher Scientific | 4375305 | We use this model of thermocycler, however any similar equipment will work well in this protocol |
Access restricted. Please log in or start a trial to view this content.
