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Blood, Vol. 90 No. 12 (December 15), 1997: pp. 4832-4841

Expression of Cytokine Receptors on Follicular Dendritic Cells

By Kazuhiko Yamada, Mitsunori Yamakawa, Yutaka Imai, and Masaru Tsukamoto

From the Second Department of Pathology, First Department of Surgery, Yamagata University School of Medicine, Yamagata, Japan; the Second Department of Pathology, Tokyo Women's Medical College, Tokyo, Japan; and the Division of Pathology, Yamagata Medical Center, Yamagata, Japan.


    ABSTRACT
Abstract
Introduction
Methods
Results
Discussion
References

Follicular dendritic cells (FDCs) in the lymphoid follicle (LF) are essential to the sequential processes of B-cell proliferation, selection, and differentiation. Although the importance of some cytokines in these processes has been pointed out, there is little information about the follicular localization of their receptors. We investigated, with special reference to FDCs, the localization of cytokine receptors as well as cytokines themselves in human tonsils by several means, including immunochemistry, immunoelectron microscopy, reverse transcriptase polymerase chain reaction, and in situ hybridization. FDCs in the follicular apical light zone expressed transforming growth factor-beta receptor II (TGF-beta R II), granulocyte-macrophage colony-stimulating factor receptor alpha (GM-CSFRalpha ; CDw116), tumor necrosis factor receptor I (TNFR I; CD120a), interleukin-1 receptor II (IL-1R II; CDw121b), IL-2 receptor beta (IL-2Rbeta ; CD122), IL-4 receptor (IL-4R; CDw124), and IL-6 receptor (IL-6R; CD126), among the 10 receptors examined. Those in the basal light zone expressed strongly TNFR I and weakly GM-CSFR alpha , IL-1R II, IL-2Rbeta , IL-4R, and IL-6R, and often those in the outer and mantle zones expressed GM-CSFR alpha , IL-4R, and IL-6R. FDCs in the apical light zone expressed only TGF-beta among the 7 cytokines examined. On the other hand, follicular lymphocytes mainly in the light zone expressed 9 kinds of receptors, with the exception being TGF-beta R II; expression was rather frequent for TNF-alpha , IL-1alpha , and IL-2 and less frequent for TGF-beta , GM-CSF, IL-4, and IL-6. These data indicate that only FDCs mainly in the light zone express many cytokine receptors, although FDCs may produce the cytokine, TGF-beta . Cytokines may act not only on some follicular lymphocytes but also on most FDCs in the light zone expressing cytokine receptors.

    INTRODUCTION
Abstract
Introduction
Methods
Results
Discussion
References

LYMPHOID TISSUES ARE composed of B-cell-dependent and T-cell-dependent areas. Follicular B cells and follicular dendritic cells (FDCs) play a central role in events related to humoral immunity in the lymphoid follicle (LF). Mantle zone (MZ) B cells activated in the T-cell zone may migrate to the dark zone (DZ) to proliferate with the somatic mutation of the V region of the Ig gene, resulting in class switches from IgM to IgA, IgE, or IgG.1-4 Whereas B cells with low affinity to antigen die by means of apoptosis in the basal light zone (BLZ), those with high affinity for the antigen survive and mature into plasmablasts and memory B cells in the apical light zone (ALZ).5 FDCs are essential to these sequential events of B cells by (1) supporting the framework of the LF by extending their long cytoplasmic processes,6-8 (2) trapping and retaining immune complexes on their surfaces with well-developed labyrinth-like structures, and (3) presenting antigen to B cells.9,10

It has been pointed out that some cytokines play an important role in the sequential processes of B cells from proliferation in the DZ to maturation in the ALZ.8,11-13 However, the results of some studies were controversial, partly because of technical problems involved in detecting cytokines.14-16 On the other hand, there is little information about cytokine receptors, although the follicular localization of some receptors, such as tumor necrosis factor receptor type I and II (TNFR I and II), interleukin-2 receptor alpha (IL-2Ralpha ), and IL-4R, has been reported.17-19 Evaluation from the viewpoint of cytokine receptors is crucial to understanding the cytokine network in the LF. The aim of the present study is to investigate the localization of cytokine receptors, as well as cytokines themselves, with special reference to FDCs in human LFs by means of immunochemistry, reverse transcriptase-polymerase chain reaction (RT-PCR), and in situ hybridization. We showed here that FDCs mainly in the follicular light zone (LZ) express seven cytokine receptors such as transforming growth factor-beta receptor type II (TGF-beta R II), granulocyte-macrophage colony-stimulating factor receptor alpha (GM-CSFRalpha ; CDw116), TNF receptor I (TNFR I, CD120a), IL-1 receptor II (IL-1R II; CDw121b), IL-2 receptor beta (IL-2Rbeta ; CD122), IL-4 receptor (IL-4R; CDw124), and IL-6 receptor (IL-6R; CD126). These data indicate that FDCs mainly in the LZ express a variety of cytokine receptors and that cytokines may act not only on some follicular lymphocytes but also on most FDCs in the LZ-expressing cytokine receptors.

    MATERIALS AND METHODS
Abstract
Introduction
Methods
Results
Discussion
References

Tissue Samples

Human tonsillar tissues were obtained from 15 patients with chronic tonsillitis. The tissue samples were cut into sections 5-mm thick and then immediately fixed in periodate-lysine-paraformaldehyde (PLP),20 4% paraformaldehyde (PFA), or buffered 10% formalin for 6 hours at 4°C. Samples fixed in PLP or 4% PFA were washed with 0.01 mol/L phosphate-buffered saline (PBS; pH 7.4) containing a graded series of sucrose (10%, 15%, and 20%), embedded and frozen in Tissue-Tek II OCT compound (Miles Inc, Elkhart, IN) in acetone cooled with dry ice, and stored at -80°C until cryostat sectioning for immunohistochemistry and in situ hybridization. Buffered 10% formalin and 4% PFA-fixed samples were embedded in paraffin and cut into 5-µm-thick sections for immunohistochemistry.

Immunohistochemistry

The antibodies used for immunohistochemistry are listed in Table 1. Representative cryostat and paraffin sections were immunostained using the avidin-biotin-peroxidase (ABC) complex.21 Paraffin sections were digested with 0.1% trypsin (DIFCO Laboratories, Detroit, MI) for 30 minutes at 37°C and immunostained for TGF-beta R II. Biotinylated F(ab' )2 fragment of affinity-isolated rabbit antimouse Igs (DAKO, Glostrup, Denmark), antirabbit IgG (Protos Immuno Research, San Francisco, CA), and biotinylated affinity-isolated rabbit antirat Igs (DAKO) were used as secondary antibodies. The sections were incubated with the ABC reagent (Vectastain, ABC Elite; Vector Laboratories, Burlingame, CA), followed by 3,3'-diaminobenzidine (DAB; Dojin Chemicals, Kumamoto, Japan) as the chromogen. Finally, the slides were counterstained with methyl green. Negative controls were run in parallel with replacement of the specific antibody with 0.01 mol/L PBS (pH 7.4) or mouse IgG1 or IgG2 (DAKO). Secondary LF were divided into the MZ, OZ, DZ, BLZ, and ALZ, as previously described.22 Each zone was recognized by findings of hematoxylin and eosin stain and CD23 immunostain using serial cryostat sections. The reactivity in each zone was estimated as follows: -, negative; +/-, often positive; +, weakly positive; and ++, strongly positive.

 
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Table 1. List of Antibodies

Immunoelectron Microscopy

Immunoelectron microscopy was used for the localization of GM-CSFRalpha , TNFR I, and IL-4R in tonsillar LFs. PLP-fixed tonsillar tissues were sliced to a 60-µm thickness using a Microslicer (Dosaka EM, Kyoto, Japan) and immunostained by means of the streptavidin-biotin complex (SAB).23,24 Biotinylated antimouse and rabbit IgG (Vector Laboratories) were used as secondary antibodies. Sections were incubated with streptavidin-DAB. Immunostained tissue sections were postfixed in 1.25% glutaraldehyde and 2% osmium, dehydrated in graded ethanols and propylene, and embedded in Epon 812. Representative areas of LFs were selected for electron microscopy. The ultrathin sections were observed using a Zeiss EM109 electron microscope (Carl Zeiss, Oberkochen, Germany). For the negative control, the primary antibodies were replaced with 0.01 mol/L PBS.

Isolation of FDCs and Germinal Center (GC) Lymphocytes

FDCs were isolated by a magnetic cell sorter (MACS; Miltenyi Biotec, Bergisch-Gladbach, Germany).25 Tonsillar tissues were cut in 300-µm-thick sections by Microslicer (Dosaka EM). GCs were enucleated under a stereoscope as described26 and digested with an enzyme cocktail of RPMI 1640 (Life Technologies, Gaithersburg, MD) containing collagenase IV (450 U/mL; Sigma Chemical Co, St Louis, MO) and deoxyribonuclease I (28k U/mL; Sigma) for 1 hour at 37°C. The cell suspension was washed with RPMI 1640 and passed through a 133-µm nylon mesh to remove nondigested tissue debris. A discontinuous density gradient was prepared by adjusting BSA (Patho-o-cyte; Miles Inc) with RPMI 1640 to a density of 1.052 g/mL and 1.030 g/mL. Diluted Patho-o-cyte (6 mL) at a density of 1.052 g/mL was placed in a centrifugation tube and overlaid with 4 mL of 1.030 g/mL solution. The cell suspension (4 mL) was layered on top of the gradient and centrifuged at 8,500g for 1 hour. The interphase was collected, washed with RPMI 1640, incubated with the biotinylated monoclonal antibody R4/23 (DAKO; mouse IgM)27-29 for 30 minutes at 4°C, and then incubated with streptavidin conjugated microbeads (Miltenyi Biotec) for 30 minutes at 4°C. The cell suspension was divided into the biotinylated FDC-rich fraction and nonbiotinylated cell (lymphocytes) fraction using MACS.

Cytospin slides were prepared from the two collected fractions. Immunocytochemistry using antibodies listed in Table 1, of which subclasses were all mouse IgG or heterologous rabbit sera, was performed using alkaline phosphatase-antialkaline phosphatase (APAAP).30 AP-conjugated affinity-isolated rabbit antimouse and swine antirabbit Igs (DAKO) were used as secondary antibodies. New fuchsin (DAKO) was used as the substrate. After immunostaining, the slides were double-stained by R4/23 using ABC method followed by DAB as the chromogen. Finally, the slides were counterstained with hematoxylin.

RT-PCR

Total cellular RNA was extracted from four tonsillar samples by means of acid guanidinium thiocyanate-phenol-chloroform (AGPC) using ISOGEN (Nippon Gene Co, Ltd, Tokyo, Japan) according to the manufacturer's instructions, as described by Chomczynski et al.31 In brief, tonsillar samples were homogenized with ISOGEN (1 mL/100 mg). Samples were centrifuged at 12,000g for 10 minutes at 4°C; and the supernatant was collected with a Pasteur pipette. Chloroform (0.2 mL) was added and centrifuged at 12,000g for 15 minutes at 4°C. RNA in the aqueous phase was transferred to a fresh tube, mixed with 0.5 mL of isopropanol, and centrifuged at 12,000g for 10 minutes at 4°C. The precipitate was dissolved in 1 mL of 70% ethanol, vortexed, and centrifuged at 7,500g for 5 minutes at 4°C. The precipitate was dried and dissolved with diethylpyrocarbonate (DEPC; Boehringer Ingelheim Bioproducts Partnership, Heidelberg, Germany)-treated water at a concentration of 1 to 2 mg/mL. RNA was separated from the GC and the extra-GC (EGC) in the tonsillar samples. Initially, whole tonsillar samples were digested as described above.25,26 Thereafter, the GC was enucleated under a stereoscope. RNA obtained from GC and EGC was extracted using AGPC and ISOGEN. Oligonucleotide primers for the RT-PCR amplification of TGF-beta (amplified PCR fragment, 161 bp; Table 2A) and GM-CSF R alpha (amplified PCR fragment, 682 bp; Table 2A) mRNA were obtained from Clontech (Palo Alto, CA). The cDNA was synthesized from mRNA using a RNA LA PCR Kit (Takara, Ohtsu, Japan) including Avian Myeloblastosis Virus reverse transcriptase and random 9 mers.32 The final volume of 20 µL consisted of 1× RNA PCR buffer, 5 mmol/L MgCl2 , 1 mmol/L dNTP mixture, 1 U/µL RNase inhibitor, 0.25 U/µL reverse transcriptase, 2.5 mmol/L random 9 mers, and 1 µg total RNA sample. The reaction was incubated for 10 minutes at 30°C and for 1 hour at 42°C and terminated by heating the mixture for 5 minutes at 99°C. The PCR mixture consisted of 2.5 mmol/L MgCl2 , 1× LA PCR buffer II, 2.5 U/100 µL Takara LA Taq, 20 pmol of the upstream and downstream primers, as well as the synthesized cDNA. Finally, 100 µL of mineral oil (Sigma) was added to prevent evaporation. The samples were amplified in an ASTEC (PC-800, Tokyo, Japan) thermal cycler for 30 cycles (45 seconds at 94°C, 45 seconds at 60°C, and 2 minutes at 72°C). The PCR products were stained with ethidium bromide and resolved by 2% agarose gel electrophoresis.

 
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Table 2. The Primer of RT-PCR and the Oligonucleotide of In Situ Hybridization

 
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Table 3. Immunochemical Expression on FDC in Tonsillar Follicles

 
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Table 4. Immunochemical Expression on Lymphocytes in Tonsillar Follicles

The controls for TGF-beta and GM-CSFRalpha were as follows: (1) positive controls using a glyceraldehyde 3-phosphate dehydrogenase (G3PDH) primer for housekeeping mRNA (Table 2A; amplified PCR fragment, 983 bp; Clontech), (2) cDNA fragment of each previously confirmed primer (Clontech), and negative controls using (3) DEPC-treated water instead of reverse transcriptase, (4) upstream and downstream primer, and (5) Taq polymerase. One hundred basepair ladders (Pharmacia Biotech, Uppsala, Sweden) were molecular weight markers.

In Situ Hybridization

The antisense oligonucleotide probes TGF-beta R II (1012-51, 40 mer; Table 2B)33 and GM-CSF R alpha (841-880, 40 mer; Table 2B)34 were constructed by means of a DNA synthesizer (Nihon Gene Research Laboratory, Inc, Sendai, Japan) and labeled with digoxigenin using a Digoxigenin Oligotailing Kit (Boehringer Mannheim, GmBH, Mannheim, Germany). The cDNA probe TGF-beta (1.05 kb) purchased from American Type Culture Collection (Rockville, MD) was labeled with digoxigenin using a Nick Translation Kit (Boehringer Mannheim GmBH). Four percent PFA-fixed paraffin-embedded and cryostat tonsillar sections were digested with 0.1 to 10 mg/mL proteinase-K (DAKO) for 10 minutes at 37°C and postfixed with 4% PFA/PBS for 5 minutes at 4°C. The sections were acetylated with 0.1 mol/L triethanolamine (pH 8.0) containing 0.25% acetic anhydride for 10 minutes at room temperature and dehydrated. The hybridization temperature was 40°C, and the probe concentration was 2 ng/mL. The sections were washed with 2× SSC/50% formamide (1× SSC: 0.15 mol/L sodium chloride, 0.03 mol/L sodium citrate) for 30 minutes at 37°C, 2× SSC for 10 minutes at 37°C, and 1× SSC for 10 minutes at room temperature. Digoxigenin-labeled probes were detected using a Digoxigen Detection Kit (Boehringer Mannheim GmBH) and AP-conjugated rabbit antidigoxigenin antibody, with 5-bromo-4-chloro-3-indoxyl phosphate/nitro blue tetrazolium chloride solution (BCIP/NBT; Boehringer Mannheim GmBH) as the substrate. The slides were counterstained with methyl green.


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Fig 1. Expression of TGF-beta and TGF-beta receptor II in tonsillar lymphoid follicle. (A) Immunostain of TGF-beta . There is the reticular and dotted positive stain in the apical and basal light zones but not the other follicular zones. MZ, mantle zone; LZ, light zone; DZ, dark zone. Counterstained with methyl green. Original magnification × 132. (B) Immunostain of TGF-beta R II. There is the reticular expression in the apical light zone. OZ, outer zone; ALZ, apical light zone; BLZ, basal light zone; DZ, dark zone. Counterstained with methyl green. Original magnification × 100. (C) Immunocytochemical single staining (red color) of TGF-beta on an isolated FDC. Original magnification × 1,280. (D) Double staining of TGF-beta and R4/23 on the same FDC. There is a positive signal in the cytoplasm of FDC (brown). Counterstained with hematoxylin. Original magnification × 1,280. (E) In situ hybridization of TGF-beta cDNA in the ALZ. Dendritic-shaped cells heavily labeled (arrows). Scattered lymphocytes are also stained (arrowheads). Uncounterstained. Original magnification × 860. (F) In situ hybridization of a TGF-beta R II oligonucleotide in the ALZ. Many dendritic-shaped cells are strongly positive. Uncounterstained. Original magnification × 400.

Four control studies were performed to test the specificities of the oligonucleotide probes and the stainability as follows: (1) a positive control using a fluorescein isothiocyanate (FITC)-labeled beta -actin probe (DAKO), followed by AP-conjugated rabbit anti-FITC antibody and BCIP/NBT as a substrate, and negative controls using (2) PBS instead of the probe for the hybridization, (3) a sense probe instead of the antisense probe, and (4) RNase-digested sections (200 mg/mL for 1 hour at 37°C).

Control Studies

Isolation of FDCs and GC lymphocytes. More than 80% of FDCs isolated from GC were positive for the antibodies R4/23 and Ki-M4, and none were positive for epithelial membrane antigen. More than 90% of lymphocytes isolated from GC were positive for the B-cell marker, CD20; about 5% for the T-cell marker, CD45RO; and less than 1% for the marker of MZ lymphocytes, CD62L, showing that they were isolated from GC.

RT-PCR. The agarose-gel resolution of RNA isolated from whole tonsillar tissue and GC and EGC areas showed 18S and 28S bands. No bands were seen in the absence of reverse transcriptase, 5' and 3' primer, and Taq polymerase. Positive bands were observed on confirmed PCR products that were positive for G3PDH (983 bp; see Table 6 and Fig 2C).

 
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Table 6. The Results of RT-PCR


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Fig 2. The RT-PCR expression of TGF-beta , GM-CSFRalpha , and G3PDH. (A) RT-PCR of TGF-beta in samples of complete tonsil, germinal center (GC), and extra-germinal center (EGC), showing a single-positive band (161 bp). Lane 1, 100-bp ladder; lane 2, total tonsil (case 1); lane 3, total tonsil except reverse transcriptase (patient 1); lanes 4 and 5, total tonsil (patients 2 and 3); lane 6, GC (patient 4); lane 7, EGC (patient 4); lane 8, primer confirmed as a positive control. (B) RT-PCR of GM-CSFRalpha in samples of total tonsil and GC, showing a single-positive band (682 bp). Lane 1, 100-bp ladder; lane 2, total tonsil (patient 1); lane 3, total tonsil except reverse transcriptase (patient 1); lanes 4 and 5, total tonsil (patients 2 and 3); lane 6, GC (patient 4); lane 7, EGC (patient 4); lane 8, primer confirmed as a positive control. (C) RT-PCR of G3PDH in samples of total tonsil, GC, and EGC, showing a single-positive band (983 bp). Lane 1, 100-bp ladder; lane 2, total tonsil (patient 1); lanes 3 and 4, total tonsil (patients 2 and 3); lane 5, GC (patient 4); lane 6, EGC (patient 4); lane 7, primer confirmed as a positive control.

In situ hybridization. The FITC-labeled beta -actin probe as the positive control was detected in LF. Negative controls were not detected on any sections.

    RESULTS
Abstract
Introduction
Methods
Results
Discussion
References

TGF-beta and TGF-beta Receptor II

Immunohistochemically, the ALZ but not the other follicular zones was positive in the reticular meshwork and dotted patterns for TGF-beta and TGF-beta R II (Tables 3 and 4 and Fig 1A and B). Immunocytochemically, FDCs isolated with MACS were single-positive for TGF-beta in their cytoplasm (Fig 1C) and double-positive for TGF-beta and R4/23 (Fig 1D). Less frequently, lymphocytes isolated with MACS were positive for TGF-beta (<1%). In situ hybridization using a cDNA probe for TGF-beta showed the reticular and dotted patterns only in the ALZ labeling cells such as dendritic-shaped cells and lymphocytes and the scattered pattern labeling vascular walls within the whole LF (Table 5 and Fig 1E). In situ hybridization using an oligonucleotide probe for TGF-beta RII showed only the reticular pattern in the ALZ labeling dendritic-shaped cells (Fig 1F). Vascular walls within the whole LF were also reacted. Follicular lymphocytes were negative. RT-PCR of samples obtained from the whole tonsillar sample as well as the GC and EGC showed a single-positive band of TGF-beta (161 bp; Table 6 and Fig 2A).

 
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Table 5. The Results of In Situ Hybridization

GM-CSF and GM-CSFRalpha

Some GC lymphocytes were positive for GM-CSF (Fig 3A). No distinct positive reticular pattern was found in GC. On the other hand, the ALZ was heavily labeled in the reticular pattern and rarely in the dotted pattern for GM-CSFRalpha (Fig 3B). The BLZ was also weakly positive, and the OZ and MZ were often reacted. Immunoelectron microscopy confirmed that FDCs were positive for GM-CSFRalpha on their surface (Fig 3C). In situ hybridization also showed the expression of mRNA of GM-CSFRalpha in the cytoplasm of dendritic-shaped cells in the LZ and often in the OZ and MZ (Table 5 and Fig 3D). A few of the lymphocytes were positive for GM-CSFRalpha in the LZ. RT-PCR of samples from complete tonsillar tissue as well as GC and EGC showed a single-positive band (682 bp; Table 6 and Fig 2B).


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Fig 3. Expression of GM-CSF and GM-CSFRalpha in tonsillar lymphoid follicle. (A) Immunostain of GM-CSF. Some positive lymphocytes are scattered in the germinal center, but the distinct reticular pattern was not found. Counterstained with methyl green. Original magnification × 90. (B) Immunostain of GM-CSFRalpha . The distinct lacy pattern is found in the light zone and often in the outer and mantle zones. MZ, mantle zone; ALZ, apical light zone. Counterstained with methyl green. Original magnification × 240. (C) Immunoelectron micrograph of GM-CSFRalpha on FDC. Note a positive reaction on the surface of binucleated FDC embracing lymphocyte (L) of FDC. Bar = 1 nm. Original magnification × 5,700. (D) In situ hybridization of GM-CSFRalpha oligonucleotide. Dendritic-shaped cells are heavily labeled. Uncounterstained. Original magnification × 386.

TNF-alpha , TNFR I, and TNFR II

Immunohistochemically, the LZ was positive in the reticular pattern for TNFR I (Fig 4A). Particularly, the BLZ was more heavily labeled than the ALZ (Fig 4B). Isolated FDCs were positive for TNFR I. Immunoelectron microscopy also confirmed that FDCs were positive for TNFR I (Fig 4C and D). A small group of GC lymphocytes were positive for TNF-alpha (about 8% of lymphocytes isolated with MACS) and a few in the LZ for TNFR I and II. However, positive dendritic pattern for TNF-alpha and TNFR II was not found.


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Fig 4. Expression of TNFR I in tonsillar lymphoid follicle. (A and B) Immunostains of TNFR I. A lacy positive pattern (A) is evident in the apical and basal light zones. High-power view of the basal light zone, showing a heavily labeled lacy pattern (B). MZ, mantle zone; LZ, light zone; DZ, dark zone. (A) Original magnification × 98, (B) Original magnification × 300. (C and D) Immunoelectron micrographs of TNFR I in the tonsillar light zone. The cell surface of a binucleated FDC and the surface of the labyrinth-like structure of FDC embracing lymphocyte (L) are positively stained. Bar = 1 nm. (C) Original magnification × 5,700, (D) Original magnification × 10,080.

IL-1alpha , IL-1R I, and IL-1R II

Immunohistochemically, the LZ was positive in the lacy pattern for IL-1R II but not for IL-1alpha and IL-1R I. IL-1R II was also detected on tonsillar epithelium. GC lymphocytes were positive for IL-1alpha , and those in the LZ were positive for IL-1R I and often for IL-1R II. Immunocytochemically, a few lymphocytes isolated with MACS were positive for IL-1alpha (3.8%).

IL-2, IL-2R alpha (CD25), and IL-2Rbeta (CD122)

Immunohistochemically, the positive reticular reaction for IL-2Rbeta but not for IL-2 and IL-2Ralpha was found in the LZ. Isolated FDCs were positive for IL-2Rbeta but negative for IL-2Ralpha . GC lymphocytes, particularly in the LZ, were positive for IL-2, IL-2Ralpha , and IL-2Rbeta . A relatively large percentage of isolated lymphocytes were positive for IL-2 (11.5%).

IL-4 and IL-4R (CDw124)

Immunohistochemically, the reticular reaction for IL-4R, but not for IL-4 in the LZ as well as often the OZ and MZ, was found (Fig 5A). Isolated FDC with MACS was single-positive for IL-4R (Fig 5B) and double-positive for IL-4R and R4/23 on their cell surface (Fig 5C). Immunoelectron microscopically, IL-4R was found on the surface of FDCs. Lymphocytes in the LF were positive for IL-4, and IL-4R was found especially in the ALZ, but not in the DZ. Isolated lymphocytes were positive for IL-4 (<1%).


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Fig 5. Expression of IL-4 R and IL-6R in tonsillar lymphoid follicle. (A and D) Immunostains of IL-4R (A) and IL-6R (D). There is a positive lacy pattern of dendritic-shaped cells as well as a few lymphocytes mainly in the light zone. Counterstained with methyl green. (A and D) Original magnification × 328. (B, C, and E) Immunocytochemical stainings of IL-4R (B, single staining of IL-4R; C, double staining of IL-4R and R4/23) and IL-6R (E, single staining of IL-6R) on isolated FDCs. The positive reaction on FDCs is found. Counterstained with hematoxylin. (B), (C), and (E) Original magnification × 1,280.

IL-6 and IL-6R (CD126)

Immunohistochemically, the LZ, as well as often the OZ and MZ, was positive in the reticular pattern for IL-6R (Fig 5D), but not for IL-6. GC lymphocytes were positive for IL-6. Isolated FDC was positive for IL-6R (Fig 5E). Less frequently, isolated lymphocytes were positive for IL-6 (<1%). Lymphocytes in the LZ, but not in the DZ, were positive for IL-6R.

    DISCUSSION
Abstract
Introduction
Methods
Results
Discussion
References

With special reference to FDCs, we investigated the localization of cytokine receptors as well as cytokines themselves in humans by several means. Dendritic-shaped cells were positive for various types of cytokine receptors, including TGF-beta R II in the ALZ, TNFR I relatively markedly in the BLZ, and GM-CSFRalpha , IL-1R II, IL-2Rbeta , IL-4R, and IL-6R, and the cytokine TGF-beta in the BLZ and ALZ. GM-CSFRalpha , IL-4R, and IL-6R were often found in the OZ and MZ. Immunocytochemistry, using isolated FDCs, showed that TGF-beta is localized diffusely in the cytoplasm of FDCs, whereas GM-CSFRalpha , TNFR I, and IL-4R were found on the surface of FDCs. In situ hybridization showed that dendritic-shaped cells in the LZ were positive for mRNA of TGF-beta , TGF-beta RII, and GM-CSFRalpha , and RT-PCR also showed that the GC contained single bands of TGF-beta and GM-CSFRalpha . These data showed that FDCs exhibiting mainly in the LZ expressed a variety of cytokine receptors and the cytokine TGF-beta .

TGF-beta plays a potent, modulating, and immunosuppressive role.35,36 It promotes murine B cells stimulated with lipopolysaccharide to undergo isotype switching to IgA, whereas the persistent presence of TGF-beta inhibits IgA secretion. Among the three types of TGF-beta R, types I and II are essential for signal transduction.33,37 The expression of TGF-beta in the LF has been reported,15 but the precise follicular localization of it and its receptor is not fully understood. The present immunochemical and in situ hybridization studies showed that most FDCs and very few lymphocytes in the ALZ are positive for TGF-beta . Our RT-PCR study also indicated TGF-beta in the GC as well as the extra-GC area. These data showed that FDCs as well as lymphocytes are the main source of TGF-beta in the LF. TGF-beta R II was positive in FDCs in the ALZ but not on follicular lymphocytes. To date, the effect of TGF-beta is not completely clear, but these data indicate that FDCs may themselves amplify the autocrine or paracrine response to TGF-beta that may be associated with the function of FDCs, in the ALZ, where B cells mature into memory B cells and plasmablasts.

Cultured FDCs can be maintained for a long time in the presence of GM-CSF.38 This study showed that a few lymphocytes but none of the FDCs in the GC expressed GM-CSF, and most FDCs in the LZ as well as often the OZ and MZ and a few LZ lymphocytes expressed its receptor under immuno-light and electron microscopy. RT-PCR and in situ hybridization showed the localization of GM-CSFRalpha and its mRNA on/in the FDCs. GM-CSF released from lymphocytes in the LZ may be important for FDC survival.

Ruco et al39 have reported that FDCs produce TNF-alpha . However, as indicated by others,40 we found that TNF-alpha was expressed on follicular lymphocytes but not on FDCs. Whereas TNFR I was expressed on FDCs and weakly on lymphocytes in the LZ according to light and electron microscopic findings, TNFR II was found only on lymphocytes in the LZ. Ryffel et al19 have reported that FDCs express TNFR I and TNF-alpha acting through autocrine and paracrine pathways. It has been recently shown that TNFalpha is essential to form primary LF, FDC network, and GC.4,41,42 TNFR also associates with apoptosis and a high level of intercellular adhesion molecule-1 expression.43

In the signal transduction of IL-1, IL-1RI positively transduces signals, but IL-1RII is an antagonist of IL-1.44 Ruco et al39 have described the positive staining of FDCs for IL-1beta . This study suggested that IL-1 released from follicular lymphocytes acts on lymphocytes in the LZ via both types of receptors, but on FDCs in the LZ only via IL-1RII. It has been pointed out that the synergetic effect of IL-1alpha and CD23 induces B cells to differentiate into IgG-positive plasma cells in the ALZ.45

Zola et al46 have described the p55 and p75 expression of tonsillar B cells at low levels. In the present immunohistochemical study, FDCs in the LZ expressed IL-2Rbeta but not IL-2Ralpha . A relatively large amount of IL-2-expressing lymphocytes were found extensively in the GC as well as in the extrafollicular area. IL-2Ralpha was the only 1 among the 10 receptors examined that was expressed on lymphocytes in the DZ, showing that it may involve in B-cell proliferation. B cells as well as FDCs in the LZ may mediate IL-2 signals.

CD57+ T cells in the LF produce IL-412 and express biphasic IL-4 mRNA14,47 and tonsillar B cells express IL-4R.18 FDCs express CD23 after stimulation by IL-4 and secrete soluble CD23.48 Here, FDCs in the LZ as well as often the OZ and MZ and lymphocytes in the GC expressed IL-4R, indicating that IL-4 produced by GC T cells bind to FDCs as well as to lymphocytes to secrete soluble CD23, which is important in promoting B-cell differentiation and proliferation.

IL-6 induces Ig production in the late phase of B-cell differentiation.49 IL-6 localizes outside the GC,50 and isolated and cultured FDCs express IL-6 mRNA51 and produce IL-6.38 Here, FDCs in the LZ as well as often the OZ and MZ expressed IL-6R but not IL-6, and FDCs may relate to B-cell differentiation into plasmablasts.

We showed here that FDCs in the follicular LZ express 7 of 10 cytokine receptors examined, but only TGF-beta among the 7 cytokines examined. On the other hand, follicular lymphocytes expressed 9 receptors (except for TGF-beta R II) and frequently expressed TNF-alpha , IL-1alpha , and IL-2 and less frequently TGF-beta , GM-CSF, IL-4, and IL-6. These data indicate that cytokines affect only FDCs in the LZ as well as lymphocytes expressing receptors for some cytokines and may be important in regulating the function of FDCs. The simultaneous evaluation of both cytokines and their receptors may provide a powerful strategy for clarifying the cytokine network in the LF. This work, therefore, significantly increases our knowledge on the network in the LF, which is important for the understanding of the differentiation of B cells in lymphoid tissues.

    FOOTNOTES

   Submitted February 10, 1997; accepted August 11, 1997.
   Address reprint requests to Kazuhiko Yamada, MD, First Department of Surgery, Yamagata University School of Medicine, 2-2-2 Iida-Nishi, Yamagata 990-23, Japan.

   The publication costs of this article were defrayed in part by page charge payment. This article must therefore be hearly marked ``advertisment'' in accordance with 18 U.S.C. section 1734 solely to indicate this fact.

    ACKNOWLEDGMENT

We thank the doctors of the Department of Otorhinolaryngology of Yamagata Saiseikan, Yamagata Kahoku, Yonezawa City Hospitals, and Yamagata University School of Medicine; the Department of Pathology of Yamagata Saiseikan Hospital; and the Department of Surgery, Yamagata Saisei Hospital for providing fresh materials. We also thank Dr Kanichi Nakagawara (Nihon Gene Research Laboratories, Inc, Sendai, Japan) for the synthesis of cDNA probes and Prof Takeshi Kasajima (Second Department of Pathology, Tokyo Women's Medical College) and Junko Higuchi (Second Department of Pathology, Yamagata University School of Medicine) for technical support.

    REFERENCES
Abstract
Introduction
Methods
Results
Discussion
References

1. MacLennan ICM, Liu YJ, Johnson GD: Maturation and dispersal of B-cell clones during T cell-dependent antibody responses. Immunol Rev 126:143, 1992[Medline] [Order article via Infotrieve]

2. Liu YJ, Joshua DE, Williams GT, Smith CA, Gordon J, MacLennan ICM: Mechanism of antigen-driven selection in germinal centers. Nature 342:929, 1989[Medline] [Order article via Infotrieve]

3. Jacob J, Przylepa J, Miller C, Kelsoe G: In situ studies of the primary immune response to (4-hydroxy-3-nitrophenyl) acetyl. III. The kinetics of V region mutation and selection in germinal center B cells. J Exp Med 178:1293, 1993[Abstract/Free Full Text]

4. Freedman AS, Munro JM, Rhynhart K, Schow P, Daley J, Lee N, Svahn J, Eliseo L, Nadler LM: Follicular dendritic cells inhibit human B-lymphocyte proliferation. Blood 80:1284, 1992[Abstract/Free Full Text]

5. Bancherau J, Rousset F: Human B lymphocytes: Phenotype, proliferation, and differentiation. Adv Immunol 52:125, 1992[Medline] [Order article via Infotrieve]

6. Ogata T, Yamakawa M, Imai Y, Takahashi T: Follicular dendritic cells adhere to fibronectin and laminin fibers via their respective receptors. Blood 88:2995, 1996[Abstract/Free Full Text]

7. Imai Y, Yamakawa M: Morphology, function and pathology of follicular dendritic cells. Pathol Int 46:807, 1996[Medline] [Order article via Infotrieve]

8. Schriever F, Nadler LM: The central role of follicular dendritic cells in lymphoid tissues. Adv Immunol 51:243, 1992[Medline] [Order article via Infotrieve]

9. Yamakawa M, Imai Y: Complement activation in the follicular light zone of human lymphoid tissues. Immunology 76:378, 1992[Medline] [Order article via Infotrieve]

10. Burton GF, Conrad DH, Szakal AK, Tew JG: Follicular dendritic cells and B cell costimulation. J Immunol 150:31, 1993[Abstract]

11. Grouard G, Bouteiller O, Banchereau J, Liu YJ: Human follicular dendritic cells enhance cytokine-dependent growth and differentiation of CD40-activated B cells. J Immunol 155:3345, 1995[Abstract]

12. Butch AW, Chung GH, Hoffmann JW, Nahm MH: Cytokine expression by germinal center cells. J Immunol 150:39, 1993[Abstract]

13. Armitage RJ, Macduff BM, Spriggs MK, Fanslow WC: Human B cell proliferation and Ig secretion induced by recombinant CD40 ligand are modulated by soluble cytokines. J Immunol 150:3671, 1993[Abstract]

14. Autschbach F, Schürmann G, Qiao L, Merz H, Wallich R, Meuer SC: Cytokine messenger RNA expression and proliferation status of intestinal mononuclear cells in noninflamed gut and Crohn's disease. Virchows Arch 426:51, 1995[Medline] [Order article via Infotrieve]

15. Andersson J, Abrams J, Bjök L, Funa K, Litton M, Ågren K, Andersson U: Concomitant in vivo production of 19 different cytokines in human tonsils. Immunology 83:16, 1994[Medline] [Order article via Infotrieve]

16. Hoefakker S, Erve EHM, Deen C, Eertwegh AJM, Boersma WJA, Notten WRF, Claassen E: Immunohistochemical detection of co-localizing cytokine and antibody producing cells in the extrafollicular area of human palatine tonsils. Clin Exp Immunol 93:223, 1993[Medline] [Order article via Infotrieve]

17. Yamada K, Yamakawa M, Tsuge T, Ogata T, Ohrui H, Tsunoda T, Suzuki A, Niino K, Dobashi M, Imai Y: Expression of cytokine and their receptors in secondary lymphoid follicles. Dendritic Cells 5:61, 1995

18. Zola H, Flego L, Weedon H: Expression of IL-4 receptor on human T and B lymphocytes. Cell Immunol 150:149, 1993[Medline] [Order article via Infotrieve]

19. Ryffel B, Brockhaus M, Greiner B, Mihatsch MJ, Gudat F: Tumor necrosis factor receptor distribution in human lymphoid tissue. Immunology 74:446, 1991[Medline] [Order article via Infotrieve]

20. McLean IW, Nakane PK: Periodate-lysine-paraformaldehyde fixative. A new fixation for immunoelectron microscopy. J Histochem Cytochem 22:1077, 1974[Abstract]

21. Hsu SM, Raine L, Fanger H: Use of avidin-biotin-peroxidase complex in immunoperoxidase techniques. J Histochem Cytochem 29:577, 1981[Abstract]

22. Hardie DL, Johnson GD, Khan M, MacLennan ICM: Quantitative analysis of molecules which distinguish functional compartments within germinal centers. Eur J Immunol 23:997, 1993[Medline] [Order article via Infotrieve]

23. Shi ZR, Itzkowitz SH, Kim YS: A comparison of three immunoperoxidase techniques antigen detection in colorectal carcinoma tissues. J Histochem Cytochem 36:317, 1988[Abstract]

24. Farr AG, Nakane PK: Immunohistochemistry with enzyme labeled antibodies; a brief review. J Immunol Methods 47:129, 1981[Medline] [Order article via Infotrieve]

25. Schmitz J, Petrasch S, Lunzen JV, Racz P, Kleine HD, Hufert F, Kern P, Schmitz H, Tenner-Racz K: Optimizing follicular dendritic cell isolation by discontinuous gradient centrifugation and use of the magnetic cell sorter (MACS). J Immunol Methods 159:189, 1993[Medline] [Order article via Infotrieve]

26. Tsunoda R, Nakayama M, Onozaki K, Heinen E, Cormann N, Kinet-Denoël C, Kojima M: Isolation and long-term cultivation of human tonsil follicular dendritic cells. Virchows Archiv B Cell Pathol 59:95, 1990

27. Guesdon JL, Ternynck T, Avrameas S: The use of avidin-biotin interaction in immunoenzymatic techniques. J Histochem Cytochem 27:1131, 1979[Abstract]

28. Naiem M, Gerdes J, Abdulaziz Z, Stein H, Mason DY: Production of a monoclonal antibody reactive with human dendritic reticulum cells and its use in the immunohistological analysis of lymphoid tissue. J Clin Pathol 36:167, 1983[Abstract/Free Full Text]

29. Liu YJ, Xu J, Bouteiller O, Parham CL, Grouard G, Djossou O, Saint-Vis B, Lebecque S, Banchereau J, Moore KW: Follicular dendritic cells specifically express the long CR2/CD21 isoform. J Exp Med 185:165, 1997[Abstract/Free Full Text]

30. Cordell JL, Fatini B, Erbe WN, Ghosh AK, Abdulaziz Z, MacDonald S, Pulford K, Stein H, Mason DK: Immunoenzymatic labelling of monoclonal antibodies using immune complexes of alkaline phosphatase and monoclonal anti-alkaline phosphatase (APAAP) complexes. J Histochem Cytochem 32:219, 1984[Abstract]

31. Chomczynski P, Sacchi N: Single-step method of RNA isolation by acid guanidinium thiocyanate-phenol-chloroform extraction. Anal Biochem 162:156, 1987[Medline] [Order article via Infotrieve]

32. Kawasaki ES, Wang AM: Detection of gene expression in Erlich HA (ed): PCR technology. Stockton, 1989, p 88

33. Lin HY, Wang XF, Eaton EN, Weinberg RA, Lodish HF: Expression cloning of the TGF-beta type II receptor, a functional transmembrane serine/threonine kinase. Cell 68:775, 1992[Medline] [Order article via Infotrieve]

34. Gearing DP, King JA, Gough NM, Nicola N: Expression cloning of a receptor human granulocyte-macrophage colony stimulating factor. EMBO J 8:3667, 1989[Medline] [Order article via Infotrieve]

35. Ruscetti F, Varesio L, Ochoa A, Ortaldo J: Pleiotropic effects of transforming growth factor-beta on cells of the immune system. Ann NY Acad Sci 485:488, 1993

36. Coffman RL, Lebman DA, Shrader B: Transforming growth factor-beta specifically enhances IgA production by lipopolysaccharide-stimulated murine B lymphocytes. J Exp Med 170:1039, 1989[Abstract/Free Full Text]

37. Miyazono K, Dijke PT, Ichijo H, Heldin CH: Receptors for transforming growth factor-beta. Adv Immunol 55:181, 1994[Medline] [Order article via Infotrieve]

38. Clark EA, Grabstein KH, Shu GL: Cultured human follicular dendritic cells. Growth characteristics and interactions with B lymphocytes. J Immunol 148:3327, 1992[Abstract]

39. Ruco LP, Stoppacciaro A, Pomponi D, Boraschi D, Santoni A, Tagliabue A, Uccini S, Baroni CD: Immunoreactivity for IL-1 beta and TNF alpha in human lymphoid and nonlymphoid tissues. Am J Pathol 135:889, 1989[Abstract]

40. Rodriguez C, Roldan E, Navas G, Brieva JA: Essential role of tumor necrosis factor-alpha in the diffentiation of human tonsil in vivo induced B cells capable of spontaneous and high-rate immunoglobulin secretion. Eur J Immunol 23:1160, 1993[Medline] [Order article via Infotrieve]

41. Pasparakis M, Alexopoulou L, Episkopou V, Kollias G: Immune and inflammatory responses in TNFalpha -deficient mice: A critical requirement for TNFalpha in the formation of primary B cell follicles, follicular dendritic cell networks and germinal centers, and in the maturation of the humoral immune response. J Exp Med 184:1397, 1996[Abstract/Free Full Text]