方法文章

Efficient Tonsillar T Follicular Helper Cell Processing and Functional Analysis through High-dimensional Flow Cytometry

DOI:

10.3791/67188

2025年7月11日

本文内容

摘要

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Here, we present a protocol for collecting and processing tonsil samples, phenotyping using high-dimensional spectral flow cytometry, and conducting unsupervised analysis.

摘要

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T follicular helper cells (Tfh) are a subset of CD4+ T helper cells that aid in B cell isotype switching, germinal center (GC) formation, somatic hypermutation, and affinity maturation, thereby helping to orchestrate adaptive humoral immune responses in secondary lymphoid tissues during infection, autoimmunity, and vaccination. Understanding the development and function of Tfh cells is crucial for designing effective vaccines and developing targeted treatment strategies for diseases involving this population. Human tonsil cells are accessible mucosal lymphoid organs. They offer a unique opportunity to profile distinct immune populations like Tfh and GC cells, interrogate cell-to-cell interactions, evaluate dynamic cellular functions, and uncover their regulatory mechanisms at the organ level. In addition, in vitro cultures of tonsil cells are straightforward to process and enable the assessment of Tfh cell biology under various conditions. Here, we introduce a protocol for collection, isolation, preservation, and culture of human tonsil cells. We also describe two optimized spectral flow cytometry panels designed for in-depth characterization of Tfh cells. Last, using a phosphatase protein 2A (PP2A) inhibitor treatment as an example, we demonstrate the efficiency and power of unsupervised analyses of high-dimensional flow cytometry data, effectively uncovering treatment-induced differences on a high-dimensional scale.

引言

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T follicular helper cells (Tfh) are a distinct subset of CD4+ helper T cells that are essential for the formation and function of germinal centers (GCs) and B cell antibody production. Tfh cells originate from naïve CD4+ T cells through interactions with antigen-presenting cells and the integration of intrinsic and extrinsic factors, including T cell receptor signaling, costimulatory interactions with B cells, cytokines, and chemokines1. Tfh cells express CXCR5 and PD-1, which guide their position within or near the GC. BCL-6 is the master transcription factor critical for Tfh development, maintenance, and function1,2. Tfh cells are pivotal for mounting humoral immune responses, particularly in vaccine responses and in the defense against bacterial and viral pathogens. Abnormal Tfh cell responses are implicated in various disorders, including autoimmune diseases, immunodeficiency, and potentially some forms of cancer3,4,5,6. Understanding their function and regulation is, therefore, important for developing effective vaccine and therapeutic strategies7.

In contrast to other CD4+ T helper cells like Th1, Treg, and Th17, for which in vitro differentiation systems are well-established8, Tfh cells are more complex to study because their development involves dynamic cell-to-cell interactions and specialized anatomical structures7. Thus, studies of Tfh cells have largely relied on ex vivo phenotyping of human peripheral circulating Tfh cells (cTfh) and in vivo mouse models. Investigating the regulation of specific molecules on Tfh cells is therefore challenging, particularly for human Tfh cells9. Thus, an in-depth ex vivo study of Tfh cells derived from lymphoid tissues is essential for enhancing our understanding of human Tfh cells.

Tonsils, as secondary lymphoid organs, harbor unique cell populations that are not present in peripheral blood, such as pre-Tfh (CXCR5intPD-1int CD4+) and GC-Tfh (CXCR5hiPD-1hi CD4+) cells, both of which are instrumental in forming GCs. Moreover, the palatine tonsils are some of the most commonly removed tissues in pediatric surgeries and are readily accessible, making them an invaluable human tissue source for exploring complex immune mechanisms involving Tfh cells. Because they are situated in the upper airway, a primary site for respiratory viral infections, the tonsils offer an advantageous tissue for investigating immune responses to such viral infections. For example, our lab previously characterized Tfh cells in tonsils and adenoids of children who had convalesced from COVID-19 and compared these tissues to those from uninfected controls10. Here, we outline our protocol for processing and storing tonsil cells. Using PP2A inhibitor-treated tonsils as an example, we detail how to characterize these cells through high-dimensional spectral flow cytometry and analyze the data using unsupervised analysis.

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方案

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The Code of Ethics of the World Medical Association (Declaration of Helsinki) was followed in all the human research in this study. Human tonsil specimens were obtained from patients with adenotonsillar hypertrophy causing sleep disordered breathing or obstructive sleep apnea, sourced from the Division of Pediatric Otolaryngology, Children's National Hospital, Washington, DC, USA. This study received approval from the Institutional Review Board (IRB) at the Children's National Hospital (IRB protocol number 00009806). Informed consent was signed by the parents or guardians of all enrolled participants, and assent was obtained from minor participants aged 7 years and older.

1. Human tonsil collection and single-cell isolation and storage

  1. Isolation of tonsillar single cells
    1. Surgical specimen collection
      1. Obtain tonsils from patients undergoing tonsillectomy and collect the fresh tissue pieces in the operating room in a 50 mL centrifuge tube filled with 25-35 mL of ice-cold sterile tonsil medium: RPMI supplemented with 5% heat inactivated fetal bovine serum (FBS), 0.05 mg/mL gentamicin, 10 mM glutamine, and antibiotic-antimycotic mix (100 units/mL streptomycin, 100 units/mL penicillin, and 0.25 µg/mL amphotericin B).
        NOTE: Tonsils in the above medium can be stored at 4 °C overnight and processed the following day. Minimal loss of cell viability was noted with overnight storage versus same-day processing (Figure 1A). Tonsils can also be shipped overnight on ice.
    2. Tonsil processing
      NOTE: All media, buffers, and surgical tools must be sterile, and the tonsil cell isolation should be performed on ice in a biosafety hood.
      1. Place the tonsils on a 60 mm plastic cell culture dish containing 5 mL of chilled tonsil medium. Work on ice. Using sterile tweezers and scissors or a scalpel, carefully remove any visible blood clots, fat, and connective tissue (Figure 1B,C).
      2. Move the tonsils to a new 60 mm cell culture dish with 5 mL of ice-cold tonsil medium. Slice the tonsil pieces into 3-5 mm fragments.
      3. Prepare a new 60 mm cell culture dish with 10 mL of cold tonsil medium and place a 70 μm cell strainer in the dish.
      4. Move the tonsil fragments to the strainer and smash the tonsil fragments by using the plunger end of a sterile 3 mL syringe through the strainer.
      5. Collect the medium containing cells outside the strainer in the dish and transfer to a 50 mL conical tube.
      6. Add an additional 10 mL of tonsil medium to the dish with the strainer, smash the tonsil fragments with the plunger, and collect the medium in the conical tube. For large tonsils, repeat this step 2-3x more until only connective tissue fragments are left in the strainer. Put the remaining tissue and used plates in a biohazard bag and in the medical waste.
      7. Fill the 50 mL conical tube to the top with tonsil medium.
      8. Centrifuge at 400 × g for 5 min at 4 °C.
        NOTE: Extending the centrifugation to 20 min may increase the yield.
      9. Remove the supernatant by carefully suctioning or pipetting out and resuspend the pellet in 5 mL of ammonium-chloride-potassium (ACK) lysing buffer at room temperature (RT) to lyse red blood cells. Incubate for 5 min at RT, then add 35 mL of chilled PBS to prevent further lysis. Centrifuge at 400 × g for 5 min at 4 °C.
      10. Wash once with 50 mL of chilled PBS and centrifuge. Resuspend with 10 mL of PBS and strain cells through a 70 μm plastic strainer. Count cells.
  2. Cryopreservation of tonsillar cells
    1. Prepare freezing medium (90% heat-inactivated FBS and 10% dimethyl sulfoxide (DMSO)).
      ​NOTE: This may be stored at 4 °C for up to 1 month.
    2. Centrifuge the cell suspension (step 1.1.2.10) at 400 × g for 5 min at 4 °C. Discard the supernatant and resuspend the cell pellet with freezing medium.
      NOTE: We advise freezing the cells at a density of 10 × 106 to 50 × 106 cells/mL of freezing medium11.
    3. Aliquot 0.5-1 mL of the cell suspension into sterile cryovials. Freeze the vials in rate-controlled freezing containers in a -80 °C freezer. Transfer the vials into a storage tank containing liquid nitrogen within one week for long-term preservation.
  3. Thawing frozen cells
    NOTE: A sequential-dilution thawing approach referenced from a sample preparation protocol for single-cell RNA sequencing is outlined below12. Other thawing methods may also work, but we found greater cell viability with this approach compared with immediately putting cells into warm thaw buffer (Figure 1D). The wash buffer can be prepared ahead of time. Thaw buffer is comprised of wash buffer plus 0.1 mg/mL DNase I (DNase I should be added just prior to starting the thaw). Increasing centrifugation time to 1 min/mL (for 15 mL tubes) is optional to increase the cell yield.
    1. Warm a water bath to 37 °C. Prewarm the thaw and wash buffer in the 37 °C water bath.
      NOTE: All cell washes are performed at RT.
    2. Thaw the cryovials in the 37 °C water bath for 2-3 min immediately after removing from storage. Avoid fully submerging the vial in the water bath. Remove the vial from the water bath while a small ice crystal remains visible.
    3. Gently transfer thawed cells to a 15 mL conical tube using a wide-bore pipette tip in a biosafety hood. Rinse the cryovial with 0.5 mL of prewarmed thawing buffer, and add the rinse drop by drop (1 drop every 5 s) to the 15 mL conical tube, gently shaking the tube to mix.
    4. Dilute cells sequentially in the 15 mL conical tube by incrementally adding 2 mL and then 4 mL of medium with ~1 min waiting time between additions. Add medium at a rate of 1 mL every 3-5 s to the tube, gently swirling to mix.
    5. Centrifuge at 400 × g for 5 min at RT.
    6. Remove the supernatant; resuspend the cell pellet in 300 μL of thawing buffer; and incubate at RT for 5 min.
    7. Add 10 mL of wash buffer (no DNase I). Centrifuge again at 400 × g for 5 min at RT.
    8. Wash one more time: remove the supernatant and resuspend the cell pellet in 10 mL of wash buffer. Centrifuge at 400 × g for 5 min at RT.
    9. Filter the cells through a 70 μm strainer. Centrifuge again for 5 min at 400 × g at RT and count the cells. Resuspend in culture medium.

2. Measuring expression of intracellular cytokines and transcription factors after ex vivo treatment

NOTE: Here, we detail our method for phenotypic characterization of tonsillar Tfh cells using two high-dimensional flow cytometry panels. Given that PP2A activity is essential for optimal BCL-6 protein expression and Tfh differentiation4, we illustrate our evaluation of Tfh cell maintenance and functionality through the examination of tonsil cells treated with the PP2A inhibitor cantharidin (CAN).

  1. Flow cytometric staining
    1. Intracellular cytokine staining
      NOTE: Incubations are performed in the dark. Reagents, antibodies, and their respective quantities per well used in both panels are listed in the Table of Materials. To assess T cell degranulation, the anti-CD107a antibody is added during the treatment step to minimize false-negative results caused by its internalization13.
      1. Plate 2 × 106 tonsil cells with 200 µL of culture medium (1 × 107 cells/mL) in a 96-well U bottom plate well with the following amounts of PP2A inhibitor CAN for 16 h: vehicle control, 3 μM, and 6 μM.
        NOTE: CAN was reconstituted at 0.1 M with 1% DMSO.
      2. Add monensin (0.7 μL/mL), brefeldin (1:1,000), phorbol myristate acetate (50 ng/mL, PMA), ionomycin (1,000 ng/mL), and 2 μL anti-CD107a to each well for 2.5 h in 5% CO2 incubator at 37 oC. Total culture volume is 200 μL per well.
      3. Centrifuge staining antibodies at ~16,000 × g for 3-5 min at 4 °C to remove antibody aggregates. Prepare the surface antibody mix for step 2.1.1.8, which includes all the surface antibodies except the chemokine receptors, Brilliant Stain Buffer Plus, and FACS buffer (volume of each noted in Table of Materials, total 112 μL of mix per reaction).
      4. After completing 2.5 h in culture, wash the cells 2x with 200 μL of ice-cold PBS by centrifuging at 400 × g for 2 min at 4 °C. Between washes, discard the supernatant by inverting the plate quickly. Perform staining in the same plate.
      5. Incubate the cells in 100 μL/well of 1:800 diluted LIVE/DEAD Blue dye in PBS for 15 min at RT. Wash 2x with 200 μL of FACS buffer.
      6. Resuspend the cells with True Stain Monocyte Blocker (5 μL monocyte blocker + 45 μL FACS buffer per well) for 5 min at RT.
      7. Sequentially add chemokine receptor antibodies directly to the staining reaction (first, anti-CXCR3 and anti-CCR7 for 10 min each, followed by a mix of anti-CXCR5 and anti-CCR6 along with 10 μL of Brilliant Stain Buffer Plus for 5 min at RT). Mix well after each addition by pipetting up and down several times. See the Table of Materials for antibody volumes.
      8. Add the surface antibody mix prepared in step 2.1.1.3 directly to the staining reaction and incubate for 30 min at RT. Total staining volume per reaction is 180 μL: 50 μL monocyte blocker in buffer (see step 2.1.1.6) + 18 μL of anti-chemokine receptor antibodies (see step 2.1.1.7) + 112 μL of surface antibody mix (see step 2.1.1.3).
      9. Wash 2x with 200 μL of cold FACS buffer.
      10. Resuspend the cells and incubate with 80 μL/well of paraformaldehyde-based fixation buffer at RT for 20 min.
      11. Add 160 μL of 1x permeabilization buffer to each well, which already contains fixation buffer. Centrifuge the plate at 400 × g for 2 min at RT and wash 1x with 200 μL of permeabilization buffer.
      12. Prepare intracellular cytokine (ICS) antibody mix, which includes anti-cytokine antibodies, Brilliant Stain Buffer Plus, and permeabilization buffer (total volume 50 μL/well, Table of Materials). Incubate the cells with this intracellular cytokine antibody mix at RT for 30 min.
      13. Wash 2x with 200 μL/well permeabilization buffer. Resuspend with 200 μL/well of FACS buffer.
      14. Store the stained cells at 4 °C in the dark and acquire data on a spectral flow cytometer within 24 h to minimize loss of staining intensity14.
    2. Nuclear transcription factor staining
      1. Culture the cells with CAN as in step 2.1.1.1 (without stimulating the cells).
      2. Add anti-human CD40 antibody (0.5 μg/mL) to the culture medium and culture with cells for 15 min before beginning the staining. If cells are stimulated, add this antibody 15 min before starting the stimulation to prevent the internalization of CD40L upon activation15,16.
      3. Centrifuge the staining antibodies and prepare the surface antibody mix similar to step 2.1.1.3: surface antibodies in the Table of Materials, 10 μL/well of Brilliant Stain Buffer Plus, and 54.1 μL/well of FACS buffer.
        NOTE: Total staining volume per well is 180 μL: 50 μL of monocyte blocker in buffer + 13 μL of chemokine receptor antibodies + 117 μL of surface antibody mix.
      4. Wash the cells and perform LIVE/DEAD Blue staining and surface staining and washes as in steps 2.1.1.5-2.1.1.8.
        NOTE: The anti-CXCR3 antibody is not included in this panel.
      5. Fix the cells with 80  μL of nuclear transcription factor fixation buffer from FoxP3/Transcription Factor Staining Buffer Set. Incubate for 30 min at RT.
      6. Wash the cells with permeabilization buffer as in step 2.1.1.11.
      7. Prepare the intracellular transcription factor (TF) antibody mix, which includes anti-transcription factor antibodies listed in the Table of Materials, 10 μL of Brilliant Stain Buffer Plus, and 16 μL of permeabilization buffer (total volume 40 μL/well). Incubate the cells with this mix for 1 h at 4 °C.
      8. Wash and acquire on a spectral cytometer as in steps 2.1.1.13-2.1.1.14.

3. Unsupervised analysis of high-dimensional flow cytometry data

NOTE: Software, packages, and their versions used for analysis are listed in the Table of Materials. Screen captures from steps 3.2 to 3.4 are in Supplemental File 1. Exemplar scripts from steps 3.5 to 3.7 are in Supplemental File 2 and Supplemental File 3, steps 3.8 to 3.9 are in Supplemental File 4 and Supplemental File 5. ICS raw files and TF raw files for the scripts are provided in Supplemental File 6 and Supplemental File 7, respectively.

  1. Open the flow cytometry analysis software workspace where the ".fcs" files are stored and complete gating as shown in Figure 1E.
  2. Right-click on the target node (CD4+ T cells in this case). Choose Select Equivalent Nodes.
  3. Right-click on the target node again. Select Export/Concatenate Populations.
  4. Wait for the Populations: Export or Concatenate window to open, choose CSV-channel values, and choose the destination for exported files. Include all the cells in the Include Events box and select All compensated parameters in the Parameters box. Expand the Advanced Options, type a prefix to rename the files, and click export to export the files to the destination folder (export one .csv file for each sample).
  5. Read the exported "*.csv" files with R (one for each sample). Assign a sample ID to each cell and combine cells from all samples into a single data frame.
  6. Add or merge metadata (additional information about samples) into the data frame.
  7. Randomly downsample an equal number of cells per sample for the following analysis. This step is optional.
    NOTE: In this example, 8,000 CD4+ T cells were downsampled from the total CD4+ T cells of each condition, representing at least 1/7 of the total number of CD4+ T cells.
  8. Create Seurat object: interpret Channel values for antibody markers as gene expression levels when creating a Seurat object.
    1. Create Seurat object with the data frame generated from step 3.6. Skip the NormalizeData step and save them directly as "data" assay.
    2. Select the surface markers from the flow panel to use as VariableFeatures in the unsupervised clustering.
    3. Run ScaleData, RunPCA, FindNeighbors, FindClusters, RunUMAP as the standard pipeline introduced from Seurat except the NormalizeData step17.
    4. Adjust the resolution parameter in the FindClusters step to modify the number of clusters, ensuring they more accurately reflect the underlying biological context.
  9. Use visualization tools such as DimPlot and FeaturePlot compatible with the Seurat package. For comparing groups that contain multiple samples per group, calculate the percentage of each cluster on a per-subject basis and perform statistical comparisons. Subsequently, use mathematical models for more sophisticated statistical analyses10.

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结果

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To compare overall cell viability, we cut the tonsil into three similar pieces and processed them using our protocol under three conditions: (1) same-day processing, (2) overnight storage at 4 °C, and (3) overnight storage on ice. The viability among these three conditions was quite similar without any significant difference (Figure 1A). We also assessed the impact of the thawing process on the viability of cells. The dropwise thawing method we used resulted in significantly higher cell viab...

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讨论

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In contrast to previous reports that fresh tonsils should be processed within 3 h after surgery19, we found that fresh tonsil samples could retain their viability when stored at 4 °C and processed within 24 h. To optimize cell viability from tonsil tissue upon thawing from liquid nitrogen storage, we adopted the dropwise thawing method recommended in single-cell sequencing, where high cell viability is greatly valued12. This approach allowed for an optimized recovery o...

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披露

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The authors have no conflicts of interest to disclose.

致谢

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This research was supported by the Division of Intramural Research of NIAID, NIH.

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材料

本文使用的材料清单
姓名公司目录编号评论
<强>机器和仪器
3 mL 塑料注射器BD309657
96 孔 U 底板Thermo Scientific163320
1.2 mL 低温样品瓶康宁430487
细胞过滤器 70 和微量;m NylonFalcon352350
细胞培养皿 (60 mm)VWR10062-890
离心机Thermo ScientificSorvall Legend XTR
Benchmark B2000-2 MyBath 2L 数字水浴BenchmarkB2000-2
细剪刀 - SharpF.S.T14060-11
塑料仪器盒F.S.T20830-05
光谱流式细胞仪,AuroraCytek5L 16UV-16V-14B-10YG-8R
标准型镊FST11000-13
标准型镊子FST11000-20
Vi-cell Blu 细胞活力分析仪 贝克曼库尔特C19201
试剂
0.5 M EDTA pH 8.0质量生物学351-027-101
2-巯基乙醇Gibco21985-023
ACK 裂解缓冲液GibcoA10492-01
抗生素-抗真菌混合物(青霉素-链霉素-两性霉素 B 混悬液,100x)Gibco15240-062
Brilliant Stain Buffer Plus (RUO)BD566385
CantharidinSigmaC7632-25MG
Cytofix 固定缓冲液BD554655
甲基亚砜 (DMSO)SigmaD8418-250ml
DNAase IRoche10104159001
Fetal牛血清 (FBS)VWR97068-085
FoxP3/转录因子染色缓冲液套装eBioscience00-5523-00
庆大霉素 (50 mg/mL)Gibco15750-060
高尔基塞BD555029
高尔基STOPBD554724
HEPES (1 M)Gibco15630-080
离子霉素Sigma I0634-1mg
L-谷氨酰胺 (200 mM)Gibco25030-081
MEM NEAA (100x)Gibco11140-050
多聚甲醛 16% 溶液,EM 级 (PFA)电子显微镜
 Science
15710用 PBS 稀释
PBS,pH 7.4Gibco10010072
青霉素-链霉素 (10,000 U/mL)Gibco15140-122
佛波醇 12-肉豆蔻酸酯 13-乙酸酯 (PMA)SigmaP8139-1mg
速率控制冷冻容器MilliporeCorning CoolCell FTS30
RPMI (+L-谷氨酰胺)Gibco11875-085
丙酮酸钠 (100 mM)Gibco11360-070
True-Stain 单核细胞阻滞剂BioLegend426103
缓冲液
培养基10% 热灭活 FBS (VWR),
2 nM 谷氨酰胺,
0.055 mM 2-巯基乙醇,
1% 青霉素/链霉素,
1 mM 丙酮酸钠,
10 mM HEPES,
RPMI 中的 1% 非必需氨基酸
(+L-谷氨酰胺)
FACS 缓冲液PBS 中的 2 mM EDTA 和 2% 热灭活 FBS
冻培养基90% 热灭活 FBS 和 10% DMSO
解冻缓冲液洗涤缓冲液 + 0.1 mg/mL DNaseI
扁桃体培养基RPMI补充5%热灭活FBS,
10 mM谷氨酰胺,
0.05 mg/mL庆大霉素,
1%抗生素-抗真菌混合物
 (青霉素、链霉素和两性霉素 B)。
洗涤缓冲液RPMI(+L-谷氨酰胺)补充有10% 热灭活FBS和10 mM HEPES
细胞因子组 抗体和其他摄政因子;
生物素抗人CD107a(LAMP-1)抗体BioLegend3286042 &L在200亩;每孔 L 个完全培养基。
在 PMA/离子霉素刺激期间将该抗体与细胞一起添加。
Live Dead染色100 μ每孔
LIVE DEAD BlueThermoL23105 1 : 800, 0.125 &m;100亩中的L;L PBS/孔。
<强>单核细胞阻滞50 μ每孔
核细胞阻滞剂缓冲液BioLegend4261035 & μ;l True Stain 单核细胞阻滞剂和 45 &μ;L FACS 缓冲液
<强>细胞因子组表面抗体
趋化因子受体混合物μL/井 
抗人 CCR6-BV711BioLegend3534361
抗人 CCR7-BV421BioLegend3532081
抗人 CXCR3-PE-Cy5BD5511285
抗人 CXCR5-BV750BD7471111
Brilliant Stain Buffer Plus (RUO)BD56638510
        18 &亩;趋化因子受体每孔 L 混合;
用单核细胞阻断缓冲液
其他表面抗体混合物;L/井 
抗人CD103-BUV661BD749993 2.5
抗人CD14-火花蓝550BioLegend367148 2.5
抗人CD19-Spark NIR 685BioLegend3022702.5
人CD25-BB515 BD56446710
抗人 CD27- Super Bright 436Thermo62-0279-425
抗人 CD3-BV510BioLegend3448282.5
抗人 CD38 APC-Fire810BioLegend3035501
抗人 CD4 CF YG584CytekR7-200412.5
抗人 CD45RA-BUV395BD7403150.6
抗人 CD56-BUV737BD6127663.5
抗人 CD57-FITCBioLegend3596041.2
抗人 CD69-BUV563BD7487641
抗人 CD8-BUV805BD6128891.2
抗人 FAS-BB700BD5665420.6
抗人 HLA-DR APC-Fire 750BioLegend3076582
抗人 PD1-BV785BioLegend3299291.2
抗人 CD45-PerCPThermoMHCD45311.2
Brilliant Stain Buffer Plus (RUO)BD56638510
FACS 缓冲液61
                                112 &亩;L每孔混合其他表面抗体;
直接添加到单核细胞块缓冲液中(50 &L)和趋化因子受体混合物(18&μ;L,50+18+112 = 180 &m;每孔总 L)
细胞因子组的细胞内细胞因子抗体μL/井 
抗人颗粒酶 B-PEBD561142 1
抗人 IL10-PE-Dazzle 594BioLegend5068121
抗人 IL17A-BV605BioLegend5123261
抗人 IL2-BV650BioLegend5003343
抗人 IL21- Alexa Fluor 647BD56049310
抗人 IL4-PerCP Cy5.5BD5612341
抗人穿孔素-APCBioLegend3533122.5
抗人 TNFa-PE-Cy7BioLegend5029300.1
抗干扰素&γ;-Pacific BlueBioLegend502522 1
SAv-BUV615BD613013 0.25
Brilliant Stain Buffer Plus (RUO)BD566385 10
1x 透化缓冲液&NBSP;eBioscience00-5523-0019.15
       (50 & 亩;L 混合每孔)
Antibodies & Other regents for transcription factor panel
CD40 Antibody, anti-humanMiltenyi Biotec130-094-1330.5 & mu;工作浓度培养基g/mL
<强>活死染色100 &μ;每孔
LIVE DEAD BlueThermoL23105 1 : 800, 0.125 &m;100亩中的L;L PBS/孔。
单核细胞阻滞剂缓冲液BioLegend4261035 & μ;l True Stain 单核细胞阻滞剂和 45 &μ;L FACS缓冲液<
转录因子组强>表面抗体组
<强>趋化因子受体混合物μL/井 
抗人 CCR6-BV711BioLegend3534361
抗人 CCR7-BV421BioLegend3532081
抗人 CXCR5-BV750BD7471111
Brilliant Stain Buffer Plus (RUO)BD566385 10
      13 &亩;L混合每孔
其他表面抗体混合物μL/井 
抗人 4-1BB-PE-CY7BioLegend309818 2.5
抗人 CD14-Spark Blue 550BioLegend367148 2.5
抗人 CD19-Spark NIR 685BioLegend3022702.5
抗人 CD200-PerCP-eFluor 710ThermoFisher46-9200-422.5
抗人 CD25-PE-Cy5BioLegend3026085
抗人CD3-BV510BioLegend3448282.5
抗人CD38-APC-Fire810BioLegend3035501
抗人CD4-Pacific BlueBioLegend3174231
抗人CD40L-PEBD557299 15
抗人CD45RA-BUV395BD7403150.6
抗人CD56-BUV737BD6127663.5
抗人 CD69-BUV650BioLegend3109342.5
抗人 CD8-BUV805BD6128891.2
抗人 HLA-DR APC-Fire 750BioLegend3076582
抗人 ICOS-BUV563BD7414211.2
抗人 OX40-APCBioLegend3500085
抗人 PD1-BV785BioLegend3299291.2
抗人 CD45-PerCPThermoMHCD45311.2
Brilliant Stain Buffer Plus (RUO)BD56638510
FACS 缓冲液54.1
               117  μL每孔混合其他表面抗体;
直接添加到单核细胞块 缓冲液(50 &mU;L)和趋化因子受体混合物(13 &μ;L,50+13+117 = 180 μ每孔总 L)
转录因子组的转录因子抗体μL/井 
抗人 T-bet-BV605BioLegend6448174
抗人 Bcl6-PE-CF594BD5624014
抗人 FoxP3-Alexa Fluor 488BD5608871.6
抗人 GATA3-BB700BD5666422
抗人 Ki67-Alexa Fluor 700BD5612770.4
抗人Rorgt-Alexa Fluor 647BD5636202
Brilliant Stain Buffer Plus (RUO)BD56638510
1 x 透化缓冲液 eBioscience00-5523-0016
                             40 &亩;L 每口井混合<
strong>用于无监督分析的软件和软件包
Software/package版本<strong>Source
1data.表1.16.2综合 R 档案网络
2FlowJO10.9.0Becton,Dickinson and Company
3热图1.0.12综合 R 档案网络
4R4.3.2综合 R 档案网络
5readxl1.4.3综合 R 档案网络
6Rstudio2023.12.1+402Posit PBC
7修拉5.1.0综合 R 档案网络
8SeuratData0.2.2.9001综合 R 档案网络
9SpectroFlo3.0Cytek
10tidyverse2.0.0综合 R 档案网络
11viridis0.6.5综合 R 档案网络
子 二 冷L 混合L 混合单&mu 直接添加到细胞中抗L 混合

参考文献

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