No-wash, no-lyse detection of phagocytic cells via a phrodo BioParticles functional assay in human whole blood on the

Similar documents
High-throughput automation with the Attune NxT Autosampler: consistent results across all wells and across plates

Attune NxT Acoustic Focusing Cytometer The next generation in acoustic cytometry

Detecting human circulating endothelial cells using the Attune Acoustic Focusing Cytometer

Boundary-breaking acoustic focusing cytometry

Phagocytosis Assay Kit (IgG FITC)

E. coli Phagocytosis Assay Kit

IncuCyte phrodo Red Phagocytosis Assay

IncuCyte Phagocytosis Assay

IncuCyte Phagocytosis Assay

flow cytometry reinvented

Identification of red and white blood cells from whole blood samples using the Agilent 2100 bioanalyzer. Application Note

Cancer inflammation research applications and products

Strategies for Assessment of Immunotoxicology in Preclinical Drug Development

Titration of Fluorochrome-Conjugated Antibodies for Labeling Cell Surface Markers on Live Cells

InhibiScreen Kinase Inhibitor Assay

Neutrophil/Monocyte Respiratory Burst Assay Kit

PERFECT-COUNT MICROSPHERES

Flow cytometry analysis of transcription factor expression during differentiation of hpsc-derived cardiomyocytes

CytoSelect 96-Well Phagocytosis Assay (Zymosan, Colorimetric Format)

Application Information Bulletin: DuraClone IM Tubes Compensation setup for high content DuraClone reagents

Application Note. Assay Portability on the BD FACSVerse System. Summary. Maria Jaimes, Yibing Wang, Catherine McIntyre, and Dev Mittar

a Beckman Coulter Life Sciences: White Paper

Phagocytosis Assay Kit (IgG PE)

Flow Cytometry Immune Activation SOP

CFSE Cell Division Assay Kit

Flow Cytometry - The Essentials

CytoSelect 96-Well Phagocytosis Assay (Zymosan Substrate)

TITLE: LIVE/DEAD VIABILITY FOR CLINICAL SAMPLES

NovoCyte Flow Cytometer

Ruud Hulspas, Mike Keeney, Ben Hedley and Andrea Illingworth

Anatomy of a flow cytometer

Visualization of digital data Interpretation of the visual

CFSE Cell Division Assay Kit

Interest in any of the products, request or order them at Bio-Connect Diagnostics.

2. SUMMARY AND EXPLANATION

Flow Cytometry SOP: Monocytes from Frozen Cells

FLOW CYTOMETRY METHODS FOR IDENTIFYING MOUSE HEMATOPOIETIC STEM AND PROGENITOR CELLS

Challenges for Product Evaluation by Flow Cytometry for Cellular Therapy Product Processing Laboratories

TECHNICAL BULLETIN. QUANTUM SIMPLY CELLULAR KIT Product Numbers QSC-20 AND QSC-100 Storage Temperature 2-8 C. Do Not Freeze

Application Note. Introduction. Robbie Narang, Zhaoping Liu, Kim Luu IntelliCyt Corporation

Hematopoietic Progenitor Cell Product Characterization

CytoSelect 96- Well Phagocytosis Assay (Red Blood Cell Substrate)

Qdot nanocrystal. wide range of biological investigations, Qdot nanocrystals are powerful complements

Supplementary Figure. S1

IMMUNOTOXICOLOGY: THE WHY, WHAT, WHEN, AND HOW

Antibody Titrations. Institut für HIV Forschung SOP #06-03 (Nov BS) Background. Reagents

Flow Cytometry SOP: 14 color flow for immune activation, senescence, and exhaustion

For in vitro killing assays with lysed cells, neutrophils were sonicated using a 550 Sonic

Principles of Immunophenotyping

DURACLONE IM ACCELERATE YOUR PACE IN IMMUNE SYSTEM RESEARCH. For Reseach Use Only - Not for use in Diagnostic procedures

Nature Methods: doi: /nmeth Supplementary Figure 1. Real-time deformability cytometry: contour detection and theoretical modeling.

Different Potential of Extracellular Vesicles to Support Thrombin Generation: Contributions of Phosphatidylserine, Tissue Factor, and Cellular Origin

FLOW CYTOMETRY. CyAn ADP. Analyzer

ab pdc Subset Phenotyping Kit

ab Phagocytosis Assay Zymosan Substrate

Rhesus CD16 / FCGR3 ELISA Pair Set

a Beckman Coulter Life Sciences: White Paper

PRINCIPLES OF THE PROCEDURE

About ATCC. Established partner to global researchers and scientists

Vybrant DyeCycle Violet stain

Vybrant DyeCycle Green and Orange Stains

What you need to know before designing a panel

Using the Attune NxT Flow Cytometer for rapid and accurate analysis of nuclear DNA content in plants

Human IL10RB ELISA Pair Set ( CRFB4 )

Measuring cell proliferation using the CyQUANT Cell Proliferation Assay with SpectraMax Microplate Readers

Return to Web Version

ENUMERATION OF LYMPHOCYTES SUBSETS (IMMUNOPHENOTYPING-IPT) (CD3, CD4, CD8, CD19 & CD16/56)

Antibody drug conjugate screening and characterization

Fitness Measurements of Evolved Escherichia coli Migla Miskinyte and Isabel Gordo *

Data Sheet HVEM/NF-κB Reporter Jurkat Recombinant Cell Line Catalog # 79310

Add Live, Dead and Total Dyes. Overnight Variable 30 min. 10 min 5 min. 30 min

ab CFSE Fluorescent Cell Labeling Kit

Human ICAM-2 / CD102 ELISA Pair Set

determine optimum instrument settings for their own instruments and establish their own daily values.

Using xcelligence Real-Time Cell Analysis to Monitor Immune Cell-Mediated Killing of B Cells

Minimum Information about a Flow Cytometry Experiment (MIFlowCyt) Annotation

Immuno-oncology research

Managing Specimen Stability for Robust Flow Cytometric Clinical Biomarker Assays

Assay Name: Antibody-Dependent Receptor Internalization Assay

Assay Name: Antibody-Dependent Drug Uptake Assay

Violet Chromatin Condensation/Dead Cell Apoptosis Kit with Vybrant DyeCycle Violet and SYTOX AADvanced for Flow Cytometry

MAXimum results. Minimum effort.

CytoPainter Cell Tracking Staining Kit Green Fluorescence

CytoPainter Cell Tracking Staining Kit Green Fluorescence

ACTG Laboratory Technologist Committee Revised Version 2.0 ACTG Lab Man CD38 Quantitation 07 May 2004

Detection of bacterial aggregation by flow cytometry

A previous ICCS Module entitled Instrument optimization - Adjusting PMT voltages and compensation 1 should be read as a prerequisite to this module.

Principles of Multicolor Panel Design BD. BD, the BD Logo and all other trademarks are property of Becton, Dickinson and Company.

SYTOX Green Dead Cell Stain

Detection of antibody-stained cell surface and intracellular protein targets with the Agilent 2100 bioanalyzer. Application

Assay Name: HPC proliferation measurement using Ki-67 cellular marker

MAXimum results. Minimum effort.

Flexible Purecell Select System Enables Protocol Modifications to Optimize Enriched MNC Population for Downstream Applications

Cholesterol Uptake Cell-Based Assay Kit

ab Hypoxic Response Human Flow Cytometry Kit


Flow Cytometry Support Reagents

ISCT Telegraft Column: Mesenchymal Stromal Cell (MSC) Product Characterization and Potency Assay Development

Murine in vivo CD8 + T Cell Killing Assay Myoungjoo V. Kim 1*, Weiming Ouyang 2, Will Liao 3, Michael Q. Zhang 4 and Ming O. Li 5

Modeling Cardiomyocyte Differentiation:

Transcription:

APPLICATION NOTE Attune NxT Flow Cytometer No-wash, no-lyse detection of phagocytic cells via a phrodo BioParticles functional assay in human whole blood on the Attune NxT Flow Cytometer Introduction Analysis of biological samples in the most physiologically relevant state with minimal sample preparation and manipulation is a key objective in many cell biology workfl ows. Normally, whole blood samples require time-consuming enrichment and manipulation in preparation for analysis on conventional hydrodynamic focusing fl ow cytometers. These manipulations can result in loss of rare cell types and undesirable phenotypic changes [1]. Acoustic focusing cytometry, introduced with the Applied Biosystems Attune Flow Cytometer, allows high sample collection rates without any loss in data resolution, thus eliminating the need for pre-acquisition enrichment and manipulation and helping to enable detection of rare events in a timely manner. In human whole blood, red blood cells outnumber white blood cells ~1,000-fold. This creates two hurdles in attempting to analyze whole blood samples without manipulation: 1) collection of a suffi cient number of white blood cell events for statistically meaningful data, and 2) distinguishing white blood cells from red blood cells given the high probability of coincident red blood cell events. This application note outlines a strategy for a no-wash, nolyse approach to a functional assay using Molecular Probes phrodo BioParticles Conjugates and the Applied Biosystems Attune NxT Flow Cytometer to assess phagocyte function in human whole blood. Phagocytic cells are a key component of the innate immune system, serving as a fi rst line of defense against invading pathogens. Neutrophils are the most abundant white blood cells in humans and are often the fi rst cell types recruited to the site of infection where they phagocytose and kill invading bacteria [2]. The signifi cance of neutrophils as a fi rst line of defense against infection is highlighted by certain diseases that result in a reduction of total neutrophil numbers or function, resulting in susceptibility to bacterial infection. There are additional phagocytic cells in blood, including monocytes and dendritic cells. Monocytes mature into cell types such as macrophages or infl ammatory dendritic cells upon receiving various stimuli [3]. Dendritic cells are specialized antigen-presenting cells that bridge innate and adaptive immunity. Dendritic cells acquire bacterial antigens through phagocytosis and present these antigens to T cells of

the adaptive immune system, which are critical players in mediating protection against certain pathogens [4]. Phagocytosis can be detected using phrodo BioParticles Conjugates ph-sensitive reagents that fluoresce upon their ingestion into acidic phagosomes. Characterizing the functional capacity of these phagocytic cell types in a whole blood no-wash, no-lyse assay can save time and reduce the potential artifacts that are introduced in alternative protocols that require red blood cell lysis and multiple purification and wash steps. Materials Whole blood 96-well plates Flow cytometry tubes Gibco RPMI 1640 Medium (Cat. No. 11875119) Molecular Probes Vybrant DyeCycle stain (e.g., Ruby, Cat. No. V10309)* phrodo BioParticles Conjugates (choose one or more per experiment) phrodo Red E. coli BioParticles Conjugate (Cat. No. P35361) phrodo Red S. aureus BioParticles Conjugate (Cat. No. A10010) phrodo Green E. coli BioParticles Conjugate (Cat. No. P35366) phrodo Green S. aureus BioParticles Conjugate (Cat. No. P35367) Attune NxT Flow Cytometer Protocol Sample setup 1. Transfer 50 µl aliquots of whole blood to each of two 96-well plates; the number of wells will depend on the number of assay conditions. One plate will be kept at 37 C and 5% CO 2 and the other plate at 4 C as a negative control. 2. Add the concentration indicated in the product insert of the phrodo E. coli or S. aureus BioParticles Conjugate to the wells, being sure to include control wells with blood only and the phrodo BioParticles Conjugate only. 3. Bring volumes up to 100 µl per well with RPMI 1640 Medium; incubate one plate at 37 C and 5% CO 2 and the other plate at 4 C for 15 30 min. 4. Prepare flow cytometry tubes with 500 µl of RPMI 1640 Medium and 1 µl of Vybrant DyeCycle dye. 5. Transfer 1 5 µl from each well of the 96-well plate into the tubes prepared in step 4; incubate all tubes for 15 min at 37 C and 5% CO 2. 6. Dilute the samples to 4 ml with RPMI 1640 Medium in each flow cytometry tube. 7. Set up the Attune NxT Flow Cytometer (see the instrument setup protocol). 8. Acquire the samples on the Attune NxT Flow Cytometer. Instrument setup 1. Turn on the Attune NxT Flow Cytometer and run startup and performance tests. 2. Create a new experiment, and in the first sample workspace insert 3 dot plots. See Figure 1 for parameters and recommended gating strategy. 3. Use the blood-only control that is stained with your Vybrant DyeCycle dye of choice to set a threshold on the cells positive for Vybrant DyeCycle dye in plot A. * There are a variety of Vybrant DyeCycle dyes with multiple color options.

A B C phrodo Red E. coli BioParticles Conjugate (YL-1) Forward scatter (x 10 3 ) Figure 1. Gating strategy for identifying phagocytes using Vybrant DyeCycle Ruby Stain and phrodo BioParticles Conjugates in a whole blood no-wash, no-lyse assay on the Attune NxT Flow Cytometer. Human whole blood was incubated with 15 µg/ml phrodo Red E. coli BioParticles Conjugate for 30 min at 37 C and 5% CO 2, diluted, and then labeled with Vybrant DyeCycle Ruby Stain for 15 min at 37 C and 5% CO 2. (A) Threshold set based on the Vybrant DyeCycle Ruby Stain signal, which labels nucleated white blood cells. (B) phrodo Red E. coli BioParticles Conjugate signal in phagocytic white blood cells. Backgating on cells that are positive and negative for phrodo BioParticles Conjugate in a scatter plot (C) demonstrates which cell populations in human whole blood are phagocytic. 4. The blood-only control should be negative for the phrodo BioParticles Conjugate signal; adjust the corresponding channel s voltage to reflect this in plot B. 5. Draw a gate around the population negative for the phrodo BioParticles Conjugate, and another gate about where the population positive for the phrodo BioParticles Conjugate will lie, as shown in plot B. 6. In plot C, adjust the forward scatter and side scatter voltages such that the three main leukocyte populations are evident: lymphocytes, monocytes, and granulocytes. 7. To include both cell scatter profiles in plot C that are positive and negative for the phrodo BioParticles Conjugate, first ensure that the parent gate for plot C is the Vybrant DyeCycle dye gate drawn in plot A. Right click on plot C, select Back Gates, and then select the phrodo BioParticles Conjugate gates and negative gates that were drawn in plot B. The colors of the populations in plot C should match the colors of the gates in plot B. 8. Run a positive control sample that contains blood, phrodo BioParticles Conjugate, and a Vybrant DyeCycle dye, and make appropriate adjustments to gates. 9. Acquire samples at collection rates of 200 µl/min. Results and conclusions Whole blood was incubated with various concentrations of phrodo BioParticles Conjugate for 15 30 min followed by labeling with Vybrant DyeCycle Ruby Stain. Phagocytic cells that take up phrodo BioParticles Conjugates into their acidic phagosomes acquire a positive signal; this allows comparison of cells that have undergone phagocytosis with those that have not (Figures 1B, 1C). The no-lyse, no-wash phrodo BioParticles phagocytosis assays are highly specific,

A B C No BioParticles conjugate added 4 C 37 C phrodo Green S. aureus BioParticles Conjugate (BL-1) D E F Forward scatter (x 10 3 ) Figure 2. A no-wash, no-lyse assay for identifying phagocytes in whole human blood on the Attune NxT Flow Cytometer. Whole blood was incubated with or without 5 µg/ml phrodo Green S. aureus BioParticles Conjugate for 30 min at 4 C or 37 C and 5% CO 2, diluted, and then labeled with Vybrant DyeCycle Ruby Stain for 15 min at 37 C and 5% CO 2. There is very little background fluorescence present when whole blood is cultured with 5 µg/ml phrodo Green S. aureus BioParticles Conjugate at 4 C (B, E) compared to the strong signal seen at 37 C (C, F), demonstrating the specificity and efficacy of this reagent in a whole blood no-lyse, no-wash assay. as shown by the lack of signal when phagocytosis is inhibited at 4 C (Figure 2, middle column). Furthermore, neutrophils (a highly phagocytic cell type) are the primary cell type that acquires a positive phrodo dye signal, as expected (blue dots in Figure 2C and 2F). A dose response to phrodo Green E. coli BioParticles Conjugate elucidates the presence of multiple phagocyte subpopulations within the three major leukocyte scatter populations (Figure 3). At concentrations of 5 µg/ml phrodo Green E. coli BioParticles Conjugate or less, neutrophils and monocytes appear to be the primary phagocytic cell types. As the concentration of phrodo Green E. coli BioParticles Conjugate increases, greater frequencies of neutrophils and monocytes show a positive phrodo signal, and a population within the standard lymphocyte gate acquires a positive phrodo signal; these are likely dendritic cells (Figure 3, far right column). With a 4-laser Attune NxT Flow Cytometer, this assay could be further multiplexed to identify specific cell types and changes in activation state due to phagocytic activity. Additional functional probes could be included to detect oxidative burst, a critical microbicidal function in phagocytes. The Attune NxT Flow Cytometer coupled with Molecular Probes reagents allows analysis of biological samples with no manipulation and minimal preparation.

A No BioParticles conjugate added 1 µg/ml 5 µg/ml 15 µg/ml phrodo Green E. coli BioParticles Conjugate (BL-1) B Forward scatter (x 10 3 ) Figure 3. A phrodo Green E. coli BioParticles Conjugate dose response reveals multiple phagocytic cell types in a human whole blood no-wash, no-lyse assay. Whole blood was incubated with 1, 5, or 15 µg/ml phrodo Green E. coli BioParticles Conjugate or left untreated for 30 min at 37 C and 5% CO 2, diluted, and then labeled with Vybrant DyeCycle Ruby Stain for 15 min at 37 C and 5% CO 2. (A) As the concentration of phrodo BioParticles Conjugate increases, the frequency of phagocytic cells that are positive for phrodo dye increases along with a shift in green fluorescence MFI at the higher concentrations of phrodo BioParticles Conjugate. (B) At 15 µg/ml of the phrodo BioParticles Conjugate, it is evident that there are subpopulations within the granulocyte, monocyte, and lymphocyte gates that are actively phagocytosing phrodo BioParticles Conjugate.

References 1. Gratama JW, Menendez P, Kraan J, Orfao A (2000) Loss of CD34(+) hematopoietic progenitor cells due to washing can be reduced by the use of fixative-free erythrocyte lysing reagents. J Immunol Methods 239:13 23. 2. Segal AW (2005) How neutrophils kill microbes. Annu Rev Immunol 23:197 223. 3. Tacke F, Randolph GJ (2006) Migratory fate and differentiation of blood monocyte subsets. Immunobiology 211:609 18. 4. Delamarre L, Mellman I (2011) Harnessing dendritic cells for immunotherapy. Semin Immunol 23:2 11. Find out more at thermofisher.com/attune For Research Use Only. Not for use in diagnostic procedures. 2015 Thermo Fisher Scientific Inc. All rights reserved. All trademarks are the property of Thermo Fisher Scientific and its subsidiaries unless otherwise specified. CO017301 0915