Published online before print November 2, 2004
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T cell clones that express unique T cell receptors

* Department of Veterinary Microbiology and Pathology, Washington State University, Pullman; and
Department of Veterinary Pathobiology, University of Minnesota, St. Paul
1 Correspondence: Department of Veterinary Microbiology and Pathology, Washington State University, Grimes Way, Pullman, WA 99164-7040. E-mail: wbrown{at}vetmed.wsu.edu
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T cells and CD4+
ß T cells proliferated, leading to a predominance of 
T cells. As 
T cells proliferate in A. marginale-stimulated lymphocyte cultures, this study hypothesized that 
T cells respond to the abundant, immunodominant MSP2. To test this hypothesis, 
T cell clones were isolated from MSP2 vaccinates and assessed for antigen-specific proliferation and interferon-
secretion. Seven WC1+ 
T cell clones responded to A. marginale and MSP2, and three of these proliferated to overlapping peptides from the conserved carboxy region. The 
T cell response was not major histocompatibility complex-restricted, although it required antigen-presenting cells and was blocked by addition of antibody specific for the T cell receptor (TCR). Sequence analysis of TCR-
and -
chains of peripheral blood lymphocytes identified two novel TCR-
chain constant (C
) regions. It is important that all seven MSP2-specific 
T cell clones used the same one of these novel C
regions. The TCR complementarity-determining region 3 was less conserved than those of MSP2-specific CD4+
ß T cell clones. Together, these data indicate that WC1+ 
T cells recognize A. marginale MSP2 through the TCR and contribute to the immunodominant response to this protein.
Key Words: MSP2 
TCR bovine
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(IFN-
) are important for control of closely related pathogens [4
5
6
], and in cattle immunized with A. marginale outer membranes, complete protection against challenge correlated with CD4+ T cell-mediated IFN-
production [2
]. The immune response to the A. marginale surface is directed predominantly to a subset of outer membrane proteins, including major surface protein 2 (MSP2), which is an immunodominant 3644 kDa protein that has highly conserved amino and carboxy regions flanking a central hypervariable region (HVR) [3 , 7 8 9 ]. Conserved regions and HVR of MSP2 contain numerous major histocompatibility complex (MHC) class II-restricted CD4+ T cell epitopes, consistent with the immunodominant nature of this surface protein [10 , 11 ]. The CD4+ T cell epitopes recognized by a large number of immune animals expressing many different class II haplotypes are clustered in the HVR [amino acids (aa) 171229] and conserved regions (aa 101170 and aa 272361), whereas linear B cell epitopes are found predominantly in the HVR, suggesting the structure of the protein influences T and B cell recognition [12 ].

T lymphocytes have been implicated in immunity against many viral, bacterial, and protozoal diseases of mice and humans [13
]. In cattle 
, T cells may also play a role in immunity to A. marginale infection. First, young calves, which have high circulating levels of workshop cluster 1 (WC1)+ 
T lymphocytes, are more resistant than adults to Anaplasma infection [14
, 15
]. Second, the number of peripheral 
T cells decreases significantly late in acute A. marginale infection [16
]. The reason for this is unknown, but it could be the result of sequestration of 
T cells out of the peripheral blood into other tissues such as the spleen, which is involved in controlling the infection. Finally, WC1+ 
T cells from cattle immunized with A. marginale outer membranes expand in cultures of peripheral blood mononuclear cells (PBMC) stimulated with bacterial antigen [17
]. As PBMC cultured with A. marginale develop into long-term cell lines containing more than 90% WC1+ 
T cells [17
], and MSP2 is an abundant outer-membrane protein that contains numerous CD4+ T cell epitopes, we hypothesized that 
T cells respond to MSP2. To test this hypothesis, seven 
T cell clones were isolated from two MSP2-immunized cattle and evaluated for proliferative and cytokine responses to antigen. We describe the responses of these clones to A. marginale, MSP2, and an epitope present in aa 292311. Furthermore, we identify the T cell receptor (TCR)-
and -
chain sequences used by the MSP2-specific 
T cell clones and compare the TCR-
and -
chain complementarity determining region-3 (CDR3) sequences with those of TCR-
and -ß chain CDR3 sequences, used by CD4+ T cell clones shown previously to respond to a different epitope (aa 280291) within the same cluster [18
].
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Cattle and immunization with MSP2
Two Holstein steers (98B61 and 01B71), 45 months old, weighing 150200 kg at the start of separate experiments, were verified to be serologically negative for A. marginale by competitive inhibition enzyme-linked immunosorbent assay (ELISA) [20
, 22
, 23
]. The calves were immunized six times with MSP2 and interleukin (IL)-12 as described in detail [20
, 23
]. Animal C97 is a Brahman X Angus cow that was used as a donor of MHC-mismatched antigen-presenting cells (APC) in some assays. The MHC class II DRB3, DQA, and DQB alleles were determined by sequencing using the protocol described previously [24
]. The DRB3 and DQ haplotypes for the animals used in this study are listed in Table 1
. As a result of linkage disequilibrium, cattle with unrelated class II alleles will also have different class I alleles [25
].
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Table 1. MHC Class II Haplotypes of Animals Used in This Study
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T cell clones from MSP2 vaccinates
T cell clones 61.1G9, 61.1G10, and 61.1G11 and CD4+
ß T cell clones 61.1C8, 61.1E8, and 61.1F12 were obtained from animal 98B61 after stimulating PBMC for 1 week with 10 µg per ml MSP2 peptide P12 and for 1 week with 10 µg per ml peptide P10 and cloning with peptide P10 [18
]. WC1+ 
T cell clones 61.1A4 and 61.2D7 and CD4+
ß T cell clone 61.2G4 were obtained from animal 98B61 and after stimulating PBMC for 1 week with 5 µg per ml peptide P12, 1 week with 5 µg per ml peptide P10 and cloning with peptide P10, which corresponds to aa 272301; P12 corresponds to aa 312341 in the sequence predicted from the Florida strain msp2 11.2 genomic DNA clone [8
] (see Table 3
). 
T cell clones 71.1G7 and 71.2B1 were obtained from animal 01B71 after stimulating PBMC for 2 weeks with 5 µg per ml A. marginale (Florida strain) sonicate and cloning with A. marginale. As controls for assays measuring MSP2 peptide stimulation of MSP2-responsive 
T cell clones, WC1+ 
T cell clone G1.2A9 obtained from cow G1, which was infected with Fasciola hepatica [28
], and clones C15.1A7 and C15.2F12 obtained from cow C15, which was infected with Babesia bovis [29
], were also used. Clone G1.2A9 was obtained by limiting dilution cloning of a cell line cultured with 25 µg per ml F. hepatica adult worm antigen as described [28
], and clones C15.1A7 and C15.2F12 were obtained by cloning a cell line cultured with 20 µg per ml recombinant B. bovis spherical body protein-1-glutathione-S-transferase fusion protein as described [29
]. |
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Table 3. Proliferation of ![]() T Cell Clones to Peptides P10 and P18 of A. marginale MSP2
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-chain of the 
TCR (mAb CACT 61A or GB21A), 
TCR subset markers N6 (mAb CACTB6A) and N7 (mAb CACTB81A), the WC1 marker (mAb BAQ 4A or IL-A29), and subsets of WC1 N3 (mAb CACTB15A) and N4 (mAb BAQ89A). mAb IL-A29 was obtained from the International Laboratory for Research on Animal Diseases (Nairobi, Kenya), and all other mAb were purchased from the Monoclonal Antibody Center [Washington State University (WSU), Pullman]. mAb GD3.1, GD3.5, and GD3.8, which recognize other 
T cell-surface markers and delineate cell subsets [31
], were kindly provided by Dr. Mark Jutila (Montana State University, Bozeman).
Lymphocyte proliferation assays
Proliferation assays were carried out in replicate wells of round-bottomed 96-well plates for 34 days, essentially as described [3
]. T cell clones were assayed 7 days after the last stimulation with antigen and APC. T cells (3x104 per well) were cultured in duplicate wells in a total volume of 100 µl complete medium containing 2 x 105 APC and antigen. Antigens consisted of 130 µg per ml A. marginale sonicate, native MSP2, synthetic MSP2 peptides, and as a control, membranes prepared from uninfected bovine red blood cells (URBC) or B. bovis [26
]. Protein concentrations in all antigen preparations were determined by the Bradford assay. To measure proliferation, cells were radiolabeled for the last 18 h of culture with 0.25 µCi [3H]thymidine (Dupont New England Nuclear, Boston, MA), radiolabeled nucleic acids were harvested onto glass filters, and radionucleotide incorporation was measured with a Betaplate 1205 liquid scintillation counter (Wallac, Gaithersburg, MD). In some experiments, 50 µg per ml protein G-affinity-purified immunoglobulin G (IgG)2b mAb GB21A (antibovine
TCR chain) [32
] was added to proliferation assays. An irrelevant, isotype-matched control mAb PIq45A2, specific for bovine IgM (Monoclonal Antibody Center, WSU), was used to as a negative control. Cells were cultured for 34 days in duplicate or triplicate wells. All experiments were performed at least twice. Results are presented as the mean number of counts per minute (cpm) of replicate cultures ± 1 SD or the stimulation index (SI), which represents the mean cpm of replicate cultures of cells plus antigen/the mean cpm of replicate cultures of cells plus medium or URBC.
Detection of IFN-
in supernatants of T cell clones

T cell clones (3x105 cells per ml) were cultured for 3 days with APC (2x106 cells per ml) and 10 µg per ml URBC, MSP2, or A. marginale antigen, and supernatants were tested for IFN-
using a commercial ELISA kit (Bovigam, CSL Ltd., Parkville, Victoria, Australia) according to the manufacturers protocol. The IFN-
activity in culture supernatants, diluted 1:41:20, was determined by comparison with a standard curve obtained with a supernatant from a Mycobacterium bovis-purified protein derivative-specific T cell clone, which contained 440 U IFN-
per ml (previously determined by the neutralization of vesicular stomatitis virus [30
]). In our assay, 0.6 U corresponds to 1 ng IFN-
[33
]. The results are presented as units of IFN-
per ml supernatant.
Statistical analysis
Significance in proliferation and IFN-
production in response to antigen compared with medium or URBC was determined by the Students one-tailed t-test. Comparisons of proliferation in the presence of TCR-blocking mAb versus control mAb or autologous versus MHC-mismatched APC were analyzed using the two-tailed Students t-test. P < 0.05 is considered significant.
Sequencing the 
TCR of MSP2-responsive T cell clones

T cell clones were washed after 7 days of culture with antigen and APC and were then cultured for 20 h with 10% TCGF without antigen or APC. RNA was collected using the TRIzol reagent (Gibco-BRL, Gaithersburg, MD) as described by the manufacturer. RNA was reverse-transcribed, and cDNA was amplified using the switching mechanism at the 5' end of RNA transcript rapid amplification of cDNA ends (SMART RACE) cDNA amplification kit (BD Biosciences, Clontech, Palo Alto, CA). TCR cDNA was specifically amplified using the SMART RACE protocol and the Advantage 2 polymerase chain reaction (PCR) enzyme system (BD Biosciences, Clontech). The sequence was obtained using SMART RACE and primers designed from previous reports [34
, 35
]. The primers used for the RACE reverse primers were the
-chain constant (C
) region 5'-GCAGGTCACTGGAGCTTCAGCTT-3' (GenBank accession no. D90419) and known bovine C
regions 5'-ATGGTCAGCCAGCTGAACTTCATGTAGG-3' (GenBank accession no. X63684), 5'-ACGGTCAGCCAGCTGAACTTCATGTATG-3' (GenBank accession no. AY644517), 5'-ACGGTCAGCCAGCTTAACTTCATGTATG-3' (GenBank accession no. D90412), and 5'-ACGGTCAGCCAGCTGAGCTTCATGTATG-3' (GenBank accession no. X63680). All sequences were confirmed by PCR using primers based on sequence obtained in the SMART RACE protocol. The forward primer used for confirmation of PCR for the
-chain was based on RACE sequence and was 5'-CATTTGTGCAGGAAAATCCATGCCTC-3'. Two new reverse primers made for two previously undescribed C
regions, based on preliminary data from this study and M. S. Abrahamsens laboratory, were 5'-TAATTGAAGGAAGAAAAATTGTGGGTTTTG-3' and 5'-TGCAGGCATGTGTAGCGACCTCTTT-3'.
Using sequence data obtained by performing SMART RACE with PBMC, forward primers were identified that amplified sequence from the two new C
regions. The forward primer used to amplify the
-chain, including the C
region similar to the fourth sheep constant region, is 5'-CATGATCTTTGGTGAAGGAACAAAAG-3'. The forward primer used to amplify the
-chain, including the C
region similar to the fifth sheep constant region, is 5'-GAGACTTCCTTCCAACAGACCTTGCCT-3'. The GenBank accession numbers for the fourth and fifth sheep C
regions are Z12967 and Z13986, respectively.
5' RACE was also used for sequencing the
- and ß-chains of MSP2 peptide P10-specific
ß T cell clones 61.1C8, 61.1E8, 61.1F12, and 61.2G4. The primers used were as follows for the
-chain, 5'-CCGCAGCGTCATGAGCAGAT-3' (GenBank accession no. AY227782.2) and 5'-CCATGTTGAGCACGGTGCTG-3' (GenBank accession no. D10394.1), and for the ß-chain, 5'-ACAGCGTACAGGGTGGCCTT-3' (GenBank accession no. D90140.1) and 5'-CCGTGGAACTGGACTTGGCA-3' (GenBank accession no. D90139.1).
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T cells
T cells expanded in cultures of PBMC from A. marginale outer membrane-immunized cattle [17
]. In the present study, 
T cells were similarly found to expand in cultures of PBMC from MSP2-immunized cattle. Seven antigen-responsive 
T cell clones were isolated from two animals. All clones were 
TCR+, WC1+, CD2, CD3+, CD4, CD8, GD3.1+, GD3.5+, and GD3.8+ when examined by flow cytometry. In addition, the clones were positive for TCR markers N6 and N7 as well as N3, a surface marker corresponding to WC1.2 [36
]. The expression of the same surface phenotype by all 
T cell clones suggests that these clones represent a subset of 
T cells.
All clones were tested in proliferation assays with MSP2 and A. marginale, and all responded significantly to both antigens (Fig. 1
). IFN-
levels in the supernatants of three T cell clones stimulated with antigen were analyzed by ELISA. 
T cell clones 61.1G9 and 61.1G11 produced significant IFN-
in response to A. marginale and less IFN-
in response to MSP2, whereas clone 61.1G10 produced a small amount of IFN-
in response to A. marginale only (Table 2
). IFN-
levels correlated with proliferation (SI) by these clones (r2=0.71; P<0.05).
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Figure 1. Proliferative response of ![]() T cell clones to A. marginale and MSP2. ![]() T cell clones were cultured for three days with APC and 10 µg per ml A. marginale, MSP2, or negative control URBC antigen. Results are reported as SI, determined as the mean cpm of cells cultured with antigen/mean cpm of cells cultured with medium. Responses to A. marginale and MSP2 are statistically significant (P 0.05) when compared with the negative control antigen URBC, as indicated by asterisks.
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Table 2. Production of IFN- by ![]() T Cells Stimulated with A. marginale or MSP2
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ß CD4+ T cells derived from the same animal [10
, 11
, 18
] and constituted an epitope cluster when a large number of cattle were tested [12
]. It is interesting that the response by three 
T cell clones from animal 61 derived by cloning in the presence of peptide P10 responded weakly to peptide P10 but not to peptide P12 or P13 (Table 3)
. Additional experiments were then performed with peptide P18, which overlaps peptide P10 by 10 aa, and peptide P18 elicited significant dose-dependent proliferation of these clones in three independent experiments (representative data are presented in Table 3
). We found that for the majority of clones tested, when equal amounts of antigen were used in the same experiment, the response to A. marginale was greater than the response to MSP2, which was in turn greater than the response to peptide (Fig. 1
and Tables 2
and 3
). Several of the other 
T cell clones described in this study were tested but did not respond to any peptide (data not shown). In addition, three WC1+ 
T cell clones derived from cattle infected with the helminth parasite F. hepatica (clone G1.2A9) or the protozoan parasite B. bovis (clones C15.1A7 and C15.2F12) did not respond to A. marginale, MSP2, or peptides P10 and P18 (Table 3) . Incidentally, these 
clones did not proliferate to the specific antigens used to generate the cell lines and clones (data not shown).
To determine whether the antigen response by 
T cell clones was MHC-restricted, proliferation of clones 61.1G9 and 61.1G10 was compared using autologous APC and APC from animal C97, which are mismatched at MHC alleles (Table 1)
. The 
T cells responded similarly to A. marginale in the presence of autologous APC and APC expressing different MHC molecules, whereas the response to B. bovis was not significant when either source of APC was used (Fig. 2a
and 2b
). However, APC were required for the response to A. marginale, as both clones failed to proliferate in response to this antigen when APC were absent (Fig. 2c)
.
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Figure 2. The proliferative response of ![]() T cell clones to A. marginale is not MHC-restricted. Clones 61.1G9 (a) and 61.1G10 (b) were stimulated in duplicate with 10 µg per ml A. marginale antigen or control antigen B. bovis membranes with autologous and mismatched APC from animal C97. In a separate experiment, the same clones were stimulated with 10 µg per ml A. marginale without or with autologous APC (c). The response to A. marginale is significant (P<0.05) with autologous or MHC-mismatched APC, as indicated by asterisks.
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TCR was required for proliferation to antigen, mAb GB21A specific for the
-chain of the TCR was added during proliferation assays. mAb GB21A effectively blocked proliferation to A. marginale, whereas the isotype control mAb had no statistically significant effect (Fig. 3
).
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Figure 3. Antibody specific for the ![]() TCR blocks A. marginale-induced proliferation of ![]() T cell clones, where clones 61.1G11 and 61.1A4 were cultured in duplicate with autologous APC and 10 µg per ml A. marginale antigen in the presence of 50 µg per ml mAb GB21A specific for the TCR- chain or isotype control mAb PIq45A2. Responses were significantly decreased (P 0.05) with mAb GB21A when compared with A. marginale alone or with the isotype control mAb, as indicated by asterisks. FL, A. marginale, Florida strain.
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and -
chains
TCR sequences was performed to identify any areas of sequence homology that might clarify the mechanism of antigen recognition. To determine primers for sequencing the TCR-
and -
chains, RACE was performed on RNA isolated from PBMC from three animals, including animals 98B61 and 01B71, which were the source of the 
T cell clones. We identified two novel C
regions not described previously in cattle that are similar to the fourth and fifth C
regions in sheep [37
], which we have designated C
6 (GenBank accession no. AY35450) and C
5 (GenBank accession no. AY35449), respectively (Table 4
). The bovine C
5 region has 91% identity with the nucleotide sequence of the ovine C
5 region (Fig. 4a
), and the bovine C
6 region has 86% identity with the ovine C
4 region (Fig. 4b)
. The bovine variable (V)
and joining (J)
regions also have considerable homology with previously described ovine sequences [37
]. |
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Table 4. Nomenclature and Relationship of Ovine and Bovine C Regions
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Figure 4. Comparison of two novel bovine C and ovine C 5 and C 4 nucleic acid sequences. Nucleotide positions are listed above the sequence. (a) Comparison of bovine and ovine C 5 sequences. (b) Comparison of bovine C 6 and ovine C 4 sequences.
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TCRs from PBMC, TCR sequences were determined for each of the 
T cell clones. Clones 61.1G9 and 61.1G11 have identical V
regions, whereas all others are different. There seems to be no association between animals and use of a V
region. There are two J
regions used, but again, there is no association between the animal and the J
region used. Sequences were confirmed by PCR based on the RACE sequence (Fig. 5a
). Overall, there is 91.4% aa similarity and 62.4% identity between the
-chains of the seven clones. The
-chain CDR3 varies greatly in length from 13 to 22 aa and has only two conserved residues, as based on the ImMunoGeneTics database (http://imgt.cines.fr) [38
]. The lack of conservation of the
-chain CDR3 is similar to what was reported for human
-chains [39
].
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Figure 5. Comparison of TCR- and TCR- chain sequences of A. marginale MSP2-responsive ![]() T cell clones. The aa sequence alignment of TCR- chains (a) and TCR- chains (b) from the indicated clones is shown. Position for aa is shown above the sequence. Identical aa are shaded black. Conserved substitution aa are gray. Lines indicate leader (L), variable (V), joining (J), constant (C), and CDR3. Asterisks indicate conserved cysteine residues. The diversity (D) region is not indicated because of the ambiguous boundary. Boundaries of L, V, J, and C regions and CDR3 are predicted based on data from Lefranc [38
].
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-chain sequences for all T cell clones were also determined. All clones used the same previously undescribed bovine C
region that corresponds to the fifth sheep C
region. In addition, all clones have an identical J
region. The translated
-chain sequences obtained from all seven clones are presented in Figure 5b
and have 97.7 and 72.9% similarity and identity, respectively. The
-chain sequences from clones 61.1G9 and 61.1G11 are identical. Despite the conservation of the C
and J
regions in 
T cell clones from the two animals, the V
region, which is identical in T cell clones derived from one individual, differed between individuals. Also noticeable is the conservation of the J
region use among the clones of both individuals. The conservation of use of the V, J, and C regions of the
-chain is striking compared with that of the
-chain, suggesting that the conserved V
, J
, and C
regions of the TCR may be important for antigen recognition. Despite the conservation of the V
, J
, and C
regions, the CDR3 is not highly conserved. There are 3 conserved aa in the CDR3, but the length varies from 5 to 11 aa.
Sequence analysis of TCR-
and -ß chains
The specific requirements for interaction between the TCR and antigen could not be clearly determined, as many blocks of sequences in the
- and
-chains were conserved between 
T cell clones. As the requirements for antigen specificity, including conservation in CDR3 regions, are more clearly defined in
ß T cells, it was of interest to compare the 
TCR sequences with the
ß TCR sequence of four CD4+ T cell clones, which were also isolated from animal 98B61 and also responded to peptide P10. All CD4+ T cell clones responded to aa 272291 (VAGAFARAVEGAEVIEVRAI), and the epitope within peptide P10 was further mapped for clones 61.1E8, 61.1C8, and 61.2G4 to aa VEGAEVIEVRAI (ref. [18
] and unpublished observations). When compared, the TCR-
chains have 100% similarity and 93.3% identity, and the CDR3 region only varies by 1 aa in length and has 3 aa, which are conserved within the region (Fig. 6a
). The TCR-ß chains have 99% similarity and 82.9% identity, and the CDR3 are uniform in length and contain 5 identical aa (Fig. 6b)
. It is interesting that clones 61.2G4 and 61.1C8 have the identical TCR sequence, although they were isolated in separate cloning experiments. Thus, the TCR-
and -
chains of the 
T cell clones are more diverse than the TCR-
and -ß chains of the CD4+ T cell clones.
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Figure 6. Comparison of TCR- and TCR-ß chain sequences of A. marginale MSP2 peptide P10-specific ß T cell clones. The aa sequence alignment of TCR- chains (a) and TCR-ß chains (b) from the indicated clones is shown. Position for aa is shown above the sequence. Identical aa are shaded black. Conserved substitution aa are gray. Lines indicate the L, V, J, C, and CDR3 regions. Asterisks indicate conserved cysteine residues. The Dß region is not indicated because of the ambiguous boundary. Boundaries of L, V, J, and C regions and CDR3 are predicted based on data from Lefranc [38
].
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T cells respond to the A. marginale immunodominant outer membrane protein MSP2 known to stimulate CD4+ T cells [10
, 11
]. We demonstrate that WC1+ 
T cell clones do proliferate and secrete IFN-
following stimulation with APC and A. marginale or MSP2 but not with APC and medium alone. Furthermore, control antigens, which included membranes prepared from uninfected bovine erythrocytes or B. bovis merozoites isolated from parasite-infected bovine erythrocyte cultures, did not stimulate the MSP2-responsive 
T cell clones. Together, these controls suggest that irradiated monocytes within the APC [40
] are not stimulating the 
T cell clones to proliferate in the absence of A. marginale or MSP2.
Using peptides from the conserved C region of MSP2, which were known to stimulate CD4+ T cells, the 30-mer peptide P10 (VAGAFARAVEGAEVIEVRAIGSTSVMLNAC), present in the epitope-rich region of MSP2 consisting of aa 272361 [12
], also stimulated significant proliferation of three MSP2-responsive 
T cell clones. Upon further analysis, the clones were shown to respond more strongly to peptide P18 (GSTSVMLNACYDLLTDGIGV), which overlaps peptide P10 by 10 N-terminal aa. Peptide P18 was not recognized by peptide P10-specific CD4+ T cell clones obtained from this same animal, and in fact, the epitope (VEGAEVIEVRAI) recognized by these
ß CD4+ T cell clones does not overlap peptide P18. Thus, peptide P10 apparently contains at least two nonoverlapping T cell epitopes: aa VEGAEVIEVRAI, recognized by CD4+
ß T cells [18
], and contiguous aa GSTSVMLNAC, also present in peptide P18, which stimulates 
T cells from animal 61. The novel finding that 
T cells as well as CD4+ T cells respond to MSP2 may additionally explain the immunodominance of this surface protein.
All seven 
T cell clones identified in this study used one of two newly identified C
regions. The novel C
regions are similar to those described in sheep and correspond to the ovine fourth and fifth C
regions. As predicted by Hein and Dudler [37
], this sequence information indicates that the bovine genome contains all of the C
regions found in sheep and an apparent duplication of the second ovine C
region. We have designated the new bovine C
sequences as C
5, most closely related to ovine C
5 sequence, and C
6, which is most closely related to the ovine C
4 sequence (Table 3)
. In other species, different C
regions have been associated with different tissue distributions and function [13
].
The TCR CDR3 is important for antigen recognition by
ß T cells [39
, 41
]. However, with the exception of clones 61.1G9 and 61.1G11, sequences of the CDR3 of the TCR-
and -
chains of the MSP2-specific 
T cell clones in this study do not show a high degree of similarity in number of conserved aa or length of the CDR3. Overall, the
- and
-chain CDR3 are less conserved than the corresponding CDR3 in the MSP2 peptide P10-specific
ß T cell clones. Conversely, there is significant homology of other portions of the 
TCR, including the consistent use of previously undescribed J
and C
regions by all clones and conservation as well in V
, V
, and J
sequences. These findings indicate that unlike
ß T cells, the interaction of 
T cells with antigen is not likely through the CDR3. This is supported by the finding that the CDR3 of clones 61.1G9/61.1G11 and 61.1G10, which respond to MSP2 peptide P18, differ by 10 (
-chain) and 7 (
-chain) aa. However, blocking the TCR by addition of mAb specific for the
-chain led to a significant decrease in the proliferative response to antigen, suggesting that the TCR is involved in antigen recognition.
The response to antigen by the 
T cell clones in this study required irradiated PBMC as a source of APC, although APC, expressing class I and class II alleles distinct from those expressed by the clones, were competent. The requirement for APC and ability of MHC-mismatched APC to stimulate 
Tcell clones in the presence of A. marginale antigen are consistent with surface presentation of antigen by molecules other than conventional MHC. Alternatively, noncognate interactions of APC with 
T cells through production of soluble growth factors in response to antigen may contribute to their activation [42
, 43
]. However, this possibility is less likely, as other 
T cell clones isolated from cattle infected with unrelated pathogens did not proliferate in response to A. marginale or MSP2 in the presence of APC.
Murine and human 
T cells can directly recognize nonconventional MHC class I-related molecules such as MHC class I-related chain A/B and T10/T22 [44
, 45
]. Furthermore, in cattle, 
cells proliferate strongly to self-antigens expressed on irradiated monocytes [40
]. Thus, if nonconventional MHC class I-like molecules were up-regulated on APC, stressed or activated by A. marginale antigen, 
T cells with limited TCR diversity could respond to multiple stressors through recognition of the nonclassical MHC molecule. In this model, A. marginale sonicate could potentially induce more stress or stimulation to APC than a peptide, which would in turn lead to a more robust up-regulation of the stress molecules and a more intense stimulation of the 
T cells. Our data are consistent with such a model, as there was a general hierarchy of responsiveness of A. marginale > MSP2 > peptide.
In summary, bovine WC1+ 
T cells respond to the immunodominant A. marginale outer membrane protein MSP2 by proliferating and producing IFN-
. The MSP2 epitope recognized by three 
T cell clones is located within a CD4+ T cell epitope cluster in the conserved C region of the protein. All MSP2-responsive 
T cell clones express a novel TCR C
region sequence. Further study is needed to elucidate the mechanisms of antigen presentation and 
T cell activation by A. marginale, MSP2, and specific peptide. Possible mechanisms include presentation of A. marginale antigen by nonclassical MHC molecules, antigen-induced up-regulation of a molecule on APC, which is directly recognized by the 
T cell clones, response to cytokines secreted by the APC in response to antigen, or direct recognition of microbial products by 
T cells via Toll-like receptor 2 [46
], with required accessory molecules provided by APC. Studies are planned to determine which of these mechanisms is important for the 
T cell response to MSP2.
Received August 31, 2004; revised October 6, 2004; accepted October 9, 2004.
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by CD4 T cells is essential for resolving Ehrlichia infection J. Immunol. 172,6894-6901
responses in MSP2 vaccinates J. Immunol. 170,3790-3798
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T cell-specific monoclonal antibody (GD3.5). Biochemical comparisons of GD3.5 antigen with the previously described workshop cluster 1 (WC1) family J. Immunol. 156,3772-3779[Abstract]
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Gene 210,103-108[CrossRef][Medline]
+ cells are prominent in normal bovine skin and express a diverse repertoire of antigen receptors Immunology 91,58-64[CrossRef][Medline]
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/
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/
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