The protocol described here enables intracellular staining of protein targets for which commercial antibodies validated for flow cytometry are unavailable. As a representative example, staining of splicing factor 3a subunit 1 (SF3A1), a ubiquitously expressed splicing protein that localizes to the nucleus, was evaluated using a rabbit polyclonal antibody raised against a peptide corresponding to amino acids 18–37 of SF3A1 (SF3A118–37; EPKQPTEEEASSKEDSAPSK)18,19.
To evaluate the staining workflow, cells were stained with the unconjugated anti-SF3A118–37 primary polyclonal antibody either before or after treatment with paraformaldehyde (PFA) alone or sequential PFA + EtOH treatment (Figures 1 and 2). As expected, no SF3A1-positive population was detected in samples stained before PFA treatment (Pre-PFA) or before sequential PFA and EtOH treatment (Pre-EtOH) (Figure 2A). Staining performed after PFA treatment alone (Post-PFA) identified a small SF3A1-positive population (Figure 2B). In contrast, a distinct SF3A1-positive population was observed only when staining was performed after EtOH permeabilization (Post-EtOH) (Figure 2B). These findings indicate that the workflow detects substantially greater SF3A1 staining following EtOH permeabilization than following PFA treatment alone.

Figure 2. Assessment of SF3A1 staining following paraformaldehyde fixation and ethanol permeabilization. Representative flow cytometry plots of live, viability dye-negative K562 cells showing DyLight 488 (DL488) fluorescence versus side scatter area (SSC-A). The boxed region indicates the SF3A1-positive (SF3A1⁺) population. SF3A1, splicing factor 3a subunit 1; PFA, paraformaldehyde; EtOH, ethanol. (A) SF3A1 antibody staining performed before PFA fixation (Pre-PFA; left) or before sequential PFA fixation and EtOH permeabilization (Pre-EtOH; right). (B) SF3A1 antibody staining performed after PFA fixation (Post-PFA; left) or after sequential PFA fixation and EtOH permeabilization (Post-EtOH; right). (C) Comparison of SF3A1 staining following EtOH permeabilization for 2 h or overnight. Please click here to view a larger version of this figure.
To determine whether the duration of EtOH exposure affected staining or cell integrity, cells were treated with EtOH for either 2 h or overnight. Flow cytometric analysis showed no appreciable differences in staining intensity or apparent cell integrity between the two conditions (Figure 2C). These findings indicate that 2 h of EtOH permeabilization produced staining comparable to overnight incubation under the conditions tested.
After confirming that EtOH permeabilization produced detectable SF3A1 staining (Figure 2B) and establishing baseline SF3A1 staining in the absence of competing peptide (Figure 3A), antibody specificity was evaluated by peptide competition. Cells were incubated with either SF3A118–37 or a nonspecific control peptide corresponding to amino acids 778–793 of SF3A1 (SF3A1778–793; GAVIHLALKERGGRKK). Peptides were added together with the primary antibody (Protocol, Step 7). Incubation with an excess of the specific peptide SF3A118–37 reduced the percentage of SF3A1-positive cells to a level comparable to the unstained control, whereas the nonspecific peptide SF3A1778–793 did not measurably alter the staining profile (Figure 3B,C). Peptide titration experiments demonstrated dose-dependent inhibition of antibody binding by the cognate peptide SF3A118–37 (IC50 = 21.6 nM), whereas no inhibition was observed with up to a 50-fold molar excess of the nonspecific peptide SF3A1778–793 (Figure 3D). These results demonstrate that the peptide competition assay can be used to evaluate inhibition of antibody binding by flow cytometry.

Figure 3. Dose-dependent competitive inhibition of SF3A1 antibody staining by a cognate peptide. Representative flow cytometry plots of live, viability dye-negative K562 cells showing DyLight 488 (DL488) fluorescence versus side scatter area (SSC-A). The boxed region indicates the SF3A1-positive (SF3A1⁺) population. SF3A1, splicing factor 3a subunit 1. (A) Unstained control and anti-SF3A1 antibody staining. (B) SF3A1 staining following dose-dependent addition of the cognate SF3A1(18–37) peptide. (C) SF3A1 staining following dose-dependent addition of the nonspecific SF3A1(778–793) peptide. Peptide concentrations were 216, 43.3, 21.7, 10.8, 5.4, and 2.7 nM, the corresponding peptide-to-antibody molar ratios shown in the figure were calculated relative to a 4.33 nM SF3A1 antibody concentration. (D) Competitive inhibition curve showing the percentage of SF3A1-positive cells as a function of peptide concentration. The cognate SF3A1(18–37) peptide inhibited antibody binding in a dose-dependent manner, whereas the SF3A1(778–793) peptide did not. The half-maximal inhibitory concentration (IC₅₀) for the cognate peptide was 21.6 nM, determined using a best-fit nonlinear inhibitor-versus-normalized-response model with a variable slope. Please click here to view a larger version of this figure.
Finally, the protocol was evaluated for detection of erythropoietin receptor (EpoR), a cell-surface receptor that is also present intracellularly during receptor biosynthesis and following ligand-induced internalization20,21. EpoR is a 508-amino-acid protein consisting of an extracellular N-terminal domain, a single transmembrane region spanning amino acids 251–273, and an intracellular C-terminal domain. An unconjugated rabbit polyclonal anti-EpoR antibody (BS-1424R), previously validated for western blotting, immunohistochemistry, and immunofluorescence but not for flow cytometry22,23,24,25,26, was applied using the staining workflow described above. According to the manufacturer, BS-1424R was raised against amino acids 330–365 within the intracellular domain of EpoR.
When cells were stained before PFA treatment (Pre-PFA), <10% of K562 cells were positive for EpoR staining (Figure 4A). In contrast, approximately 77% and 84% of K562 cells were positive following PFA treatment alone (Post-PFA) and sequential PFA plus EtOH treatment (Post-EtOH), respectively (Figure 4B–D). In contrast with SF3A1 staining, increased EpoR staining was observed following both the Post-PFA and Post-EtOH workflows (compare Figures 2B and 4D). These findings are consistent with the location of the BS-1424R epitope within the intracellular domain of EpoR. Detection of EpoR immunoreactivity under both staining conditions indicates that PFA treatment sufficiently permeabilizes the plasma membrane of K562 cells to permit antibody binding to the intracellular epitope. In this workflow, use of a single secondary antibody requires assessment of surface and intracellular EpoR pools using separately treated and stained samples. This limitation may be overcome by using primary antibodies raised in different host species to enable multiplex detection with species-specific secondary antibodies.

Figure 4. Detection of erythropoietin receptor (EpoR) in K562 cells following different fixation and permeabilization conditions. Representative flow cytometry plots of live, viability dye-negative K562 cells showing DyLight 488 (DL488) fluorescence versus side scatter area (SSC-A). The boxed region indicates the EpoR-positive (EpoR⁺) population. EpoR staining was performed using the BS-1424R polyclonal antibody raised against amino acids 330–365 within the intracellular domain of EpoR. (A) EpoR staining before PFA fixation (Pre-PFA). (B) EpoR staining after PFA fixation (Post-PFA). (C) EpoR staining after sequential PFA fixation and EtOH permeabilization (Post-EtOH). (D) Quantification of EpoR-positive cells under each staining condition. Data are presented as the mean ± standard error of the mean (SEM) from three independent experiments (n = 3). Statistical significance was determined using Student's t-test. P < 0.01 is indicated by **. Comparisons shown are Pre-PFA versus Post-PFA and Pre-PFA versus Post-EtOH. Ab, antibody; EpoR, erythropoietin receptor; PFA, paraformaldehyde; EtOH, ethanol. Please click here to view a larger version of this figure.