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Biomedical subjects

J P Tremblay

Publications and source records attributed to J P Tremblay.

At least 19 recordsLinked to original sources

Role of non-major histocompatibility complex antigens in the rejection of transplanted myoblasts.

Myoblasts obtained from donors histoincompatible for several non-major histocompatibility complex antigens (i.e., including minor histocompatibility antigens) and from syngeneic donors were transplanted without any immunosuppression into the muscles of male dystrophic C57BL/10J mdx/mdx mice. Myoblasts from syngeneic mice resulted in the formation of a high percentage of dystrophin-positive fibers 16 weeks after the transplantation. There was no evidence of a cellular immune reaction against the donor myoblasts, i.e., no infiltration by CD4 or CD8 lymphocytes and no increased expression of granzyme B and interferon-gamma mRNAs. Transplantation of myoblasts obtained from donors histoincompatible only for non- major histocompatibility complex antigens produced a transient increase of dystrophin-positive fibers at 4 weeks after transplantation for some donor strains but not for others. For donor strains that did produce an increase at 4 weeks, the number of dystrophin-positive fibers was reduced 16 weeks after the transplantation. There was evidence of a cellular immune reaction-infiltration by CD4 and by CD8 lymphocytes and increased expression of granzyme B and interferon-gamma mRNAs. Transplantation of myoblasts obtained from male C57BL/10J +/+ mice into female C57BL/10J mdx/mdx mice also led to the presence of only a few dystrophin-positive fibers with the same signs of cellular immune reaction. In this later case, the cellular immune response was attributed to the H-Y minor antigens. Finally, antibodies against fetal calf serum were detected after both syngeneic and nonsyngeneic transplantations, indicating that the culture medium may also be a source of antigens. In mice, the presence of these antibodies against culture medium did not reduce the success of a first syngeneic transplantation.

Actins

Inflammatory damage following first-generation replication-defective adenovirus controlled by anti-LFA-1.

First-generation replication-defective adenoviruses have been reported to lead to transient reporter gene expression due to a specific immune reaction involving T and B lymphocytes. Some recent reports have also demonstrated the presence of a nonspecific inflammatory reaction involving macrophages and neutrophils after both intramuscular injections and viral vectors transduction. To further investigate this nonspecific inflammatory reaction, deltaE1/E3a adenoviruses were injected intramuscularly in immunocompetent mice. Some of these mice were treated with anti-LFA-1. The adenovirus-injected muscles showed abundant CD4+, CD8+, LFA-1+, and Mac-1+ cell infiltration 3 days after the deltaE1/E3a injection. The anti-LFA-1 monoclonal antibody was able to block the nonspecific inflammatory damage due mostly to neutrophils and macrophages. The anti-LFA-1 did not produce this effect by reducing the muscle infiltration by LFA-1+ cells. It may instead have blocked the direct interaction between LFA-1 and ICAM-1 thus preventing the damage produced by the respiratory burst of neutrophils. Blocking the resulting damage of this inflammatory reaction with anti-LFA-1 in animals also treated with FK506, a powerful immunosuppressant for gene therapy, largely increased the long-term transgene expression compared with mice only treated with FK506.

Adenoviridae

Immunosuppression with monoclonal antibodies and CTLA4-Ig after myoblast transplantation in mice.

Various combinations of monoclonal antibodies specific for lymphocyte cell surface antigens and a recombinant molecule (CTLA4-Ig) were used to immunosuppress mice after transplantation of MHC-incompatible myoblasts. To assess the effectiveness of the immunosuppression, the donor myoblasts were obtained from a transgenic mouse (TnI LacZ1/29) containing a beta-galactosidase (beta-gal) reporter gene under the control of a muscle-specific promoter. No muscle fibers expressing beta-gal were observed 1 month after the myoblast transplantation, when the animals were not immunosuppressed or were treated with CTLA4-Ig alone. Approximately 50% of the muscle fibers expressed the beta-gal reporter gene 1 month after transplantation in mice treated with CTLA4-Ig combined with an anti-CD4 monoclonal antibody and in mice treated with a combination of anti-CD4, anti-CD8, and anti-lymphocyte function-associated antigen-1. The percentage of beta-gal-labeled muscle fibers increased to 94% when this combination of the three monoclonal antibodies was administrated weekly for 3 weeks. Although excellent graft survival rates were obtained 1 month after transplantation, reflecting an effective immunosuppression by these three treatments, no beta-gal-positive fibers were found 2 months after the transplantation, indicating the inability of these immunosuppressive agents to maintain long-term graft survival and induce tolerance to the myoblasts and muscle fibers of donor origin.

Abatacept

Prevention of immune reactions triggered by first-generation adenoviral vectors by monoclonal antibodies and CTLA4Ig.

The therapeutic potential of adenovirus-mediated gene transfer using first-generation vectors is severely limited by the fact that only transient expression is achievable in immunocompetent animals. The loss in transgene expression can be attributed at least in part to the appearance of detrimental immune responses directed toward vector and/or transgene-encoded determinants. FK506 and cyclosporin A both reduced these immune responses. These immunosuppressants, however, may induce many severe side effects during prolonged use. An alternative strategy has been developed to overcome these problems following in vivo transfection of muscles of adult immunocompetent mice with a delta E1/E3a adenoviral vector encoding a beta-galactosidase (beta-Gal) expression cassette. YTS 177 (an anti-CD4 monoclonal antibody) as well as CTLA4Ig, a recombinant protein, partially controlled the immune responses. They were indeed able to reduce the muscle infiltration by CD4+ and CD8+ cells but they failed to repress the humoral response. Co-administration of YTS 191 (an anti-CD4), YTS 169 (an anti-CD8), and TIB 213 (an anti-CD11a) was, however, very efficient in blocking both cellular and humoral immune reactions. This combination of monoclonal antibodies allowed strong and stable transgene expression over 1 month. These data underline the potential of monoclonal antibodies as immunosuppressive adjunct treatment for adenovirus-mediated gene transfer.

Abatacept

Increased interferon-gamma mRNA expression following alloincompatible myoblast transplantation is inhibited by FK506.

Myoblasts from C57BL/10SnJ+/+ were transplanted in major histocompatibility complex (MHC)-compatible mice (i.e., C57BL10SnJ+/+ and C57BL/10SnSc mdx/mdx) and in MHC-noncompatible (BALB/c+/+) mice. The recipients were killed 1-21 days after transplantation. C57BL10SnJ+/+ myoblasts were also transplanted in a few BALB/c+/+ mice treated with FK506 and killed 7 days thereafter. Our results showed that after MHC-noncompatible transplantation, interferon-gamma (IFN-gamma) mRNA expression is increased from day 5 to day 21, indicating the presence of a cellular immune reaction. Short-term immunosuppressive treatment with FK506 inhibited the transcription of IFN-gamma mRNA compared with that in untreated mice. Myoblast-specific antibodies were also detected 2 and 3 weeks after MHC-incompatible transplantation, indicating that the cellular immune reaction, revealed by the increase in IFN-gamma, was followed by a humoral reaction.

Animals

Mechanism of increasing dystrophin-positive myofibers by myoblast transplantation: study using mdx/beta-galactosidase transgenic mice.

Female mdx/mdx mice were crossed with non-dystrophic transgenic males expressing the beta-galactosidase (beta-gal) gene under a muscle-specific promoter (TnILacZ1/29). All male offspring were mdx mice and about 50% of them also expressed the beta-gal gene. The beta-gal/mdx mice were selected as recipients for the transplantation of myoblasts from non-transgenic normal BALB/c mice. When host muscles were not irradiated before myoblast transplantation, 4.6% of the muscle fibers in host muscles were dystrophin positive 1 month after transplantation. Most of these dystrophin-positive muscle fibers were also beta-gal positive. About one quarter of these fibers are the result of reverse mutations; most of them have, however, been produced by fusion of donor myoblasts with host muscle fibers or with host myoblasts. The virtual absence of beta-gal-negative fibers indicates that there were no exclusively donor-donor fusions. When host muscles were irradiated before myoblast transplantation, roughly the same percentage (5.5%) of dystrophin-positive fibers were formed in the injected muscle, but 42% of them were beta-gal negative. These beta-gal-negative dystrophin-positive muscle fibers were formed by the exclusive fusion of donor myoblasts with one another rather than with host cells. This clearly indicates that myoblast transplantation can form completely new muscle fibers or muscle fiber segments when host satellite cell proliferation is reduced by irradiation. These newly formed muscle fibers had, however, a small diameter and additional myoblast transplantation may be required to increase their size. This situation has some similarities with findings in Duchenne muscular dystrophy patients of more than 6 years of age, who also have a limited proliferation capacity of their satellite cells.

Animals

Successive injections in mdx mice of myoblasts grown with bFGF.

We studied the effects of single and repeated sets of injections in the same muscle of mdx mice of myoblasts grown with or without a high concentration 100 ng ml-1 of basic fibroblast growth factor (bFGF). The injected myoblasts were obtained from non-dystrophic transgenic mice expressing the beta-galactosidase gene under the control of a muscle-specific promoter. In these experiments, the host muscle was not irradiated to prevent muscle regeneration by host myoblasts. The host muscle was not damaged before myoblast transplantation with notexin, marcaïne or cold to trigger a regeneration-degeneration cycle. Without such pretreatments, the first set of injections of myoblasts grown without bFGF produced only 8% beta-galactosidase-positive and dystrophin-positive muscle fibers 1 month after transplantation. The percentage of muscle fibers containing the donor reporter gene increased, however, to 26% following a second set of injections in the same muscle. The percentage of muscle fibers expressing the donor reporter gene was significantly higher when the myoblasts were grown with a high dose of bFGF. Indeed the first set of injections produced 34% beta-gal-positive fibers while a second set of injections raised this percentage to 54%. In all cases, the percentage of dystrophin-positive fibers was similar to that of beta-gal-positive fibers. Therefore a high percentage of muscle fibers of donor origin can be obtained without preliminary damaging treatments of the mdx muscle when myoblasts grown with bFGF are injected several times. The effects of bFGF is not produced by increasing the percentage of myoblasts in a primary muscle culture since improvement of myoblast transplantation was obtained with a pure myoblast clone even with a lower concentration (10 ng ml-1) of bFGF.

Animals

Partial laminin alpha2 chain restoration in alpha2 chain-deficient dy/dy mouse by primary muscle cell culture transplantation.

Laminin-2 is a component of skeletal and cardiac basal lamina expressed in normal mouse and human. Laminin alpha2 chain (LAMA2), however, is absent from muscles of some congenital muscular dystrophy patients and the dystrophia muscularis (dy/dy) mouse model. LAMA2 restoration was investigated following cell transplantation in vivo in dy/dy mouse. Allogeneic primary muscle cell cultures expressing the beta-galactosidase transgene under control of a muscular promoter, or histocompatible primary muscle cell cultures, were transplanted into dy/dy mouse muscles. FK506 immunosuppression was used in noncompatible models. All transplanted animals expressed LAMA2 in these immunologically-controlled models, and the degrees of LAMA2 restoration were shown to depend on the age of the animal at transplantation, on muscle pretreatment, and on duration time after transplantation in some cases. LAMA2 did not always colocalize with new or hybrid muscle fibers formed by the fusion of donor myoblasts. LAMA2 deposition around muscle fibers was often segmental and seemed to radiate from the center to the periphery of the injection site. Allogeneic conditionally immortalized pure myogenic cells expressing the beta-galactosidase transgene were characterized in vitro and in vivo. When injected into FK506-immunosuppressed dy/dy mice, these cells formed new or hybrid muscle fibers but essentially did not express LAMA2 in vivo. These data show that partial LAMA2 restoration is achieved in LAMA2-deficient dy/dy mouse by primary muscle cell culture transplantation. However, not all myoblasts, or myoblasts alone, or the muscle fibers they form are capable of LAMA2 secretion and deposition in vivo.

Age Factors

Myoblast transplantation in monkeys: control of immune response by FK506.

Myoblasts were grown from monkey muscle biopsies and infected in vitro with a defective retroviral vector containing a cytoplasmic beta-galactosidase (beta-gal) gene. These myoblasts were then transplanted to 14 different monkeys, 6 of which were immunosuppressed with FK506. Without immunosuppression, only a few myoblasts and myotubes expressing beta-gal were observed 1 week after the transplantation, but no cells expressing beta-gal were observed after 4 weeks. This result was attributed to immune responses since infiltration by CD4+ or CD8+ lymphocytes was abundant 1 week after transplantation but not after 4 weeks. The expression of interleukin 6 (IL-6), interleukin 2 (IL-2), granulocyte/macrophage colony stimulating factor (GM-CSF), transforming growth factor-beta (TGF-beta) and granzyme B mRNAs was increased in the myoblast-injected muscle indicating that the infiltrating lymphocytes were activated. Moreover, antibodies against the donor myoblasts were detected in 3 out of 6 cases. When the monkeys were immunosuppressed with FK506, muscle fibers expressing beta-galactosidase (beta-gal) were present 1, 4 and 12 weeks after the transplantation. There was neither significant infiltration by CD4 or CD8 lymphocytes, nor antibodies detected. The mRNA expression of most cytokines was significantly reduced as compared to the nonimmunosuppressed monkeys. These results indicate that FK506 is effective in controlling short-term immune reactions following myoblast transplantation in monkeys and suggest that it may prove useful for myoblast transplantation in Duchenne Muscular Dystrophy patients.

Animals

Increased granzyme B mRNA after alloincompatible myoblast transplantation.

Normal C57BL/10SnJ myoblasts were transplanted into the tibialis anterior of C57BL/10SnJ, C57BL/ScSn mdx, or BALB/c mice. These transplantations allowed us to investigate the immune response not only against MHC but also against dystrophin introduced in the dystrophic muscles by such transplantations. Recently, our group reported following myoblast transplantations cellular infiltration of the host muscle by class II MHC cells, macrophages, and lymphocytes expressing CD4 or CD8 and IL-2 receptors. In the present study, activation of these infiltrating lymphocytes was investigated by measuring the expression of granzyme B mRNA. We used reverse-transcriptase polymerase chain reaction to detect granzyme B mRNA at various intervals after myoblast transplantations. To standardize the results, the mRNA were reverse transcribed using an oligo (dt) so that beta-actin mRNA could also be amplified from the same cDNA preparation. Granzyme B mRNA was increased for at least 3 weeks after MHC alloincompatible grafts. The absence of increased granzyme B expression after allocompatible transplantation in mdx mice suggests that dystrophin is not sufficiently immunogenic to induce short term acute rejection. These results indicate that lymphocytes infiltrated in muscles injected with histoincompatible myoblasts are activated and sustain the requirement for an adequate immunosuppression after such transplantations.

Animals

Lymphocyte infiltration following allo- and xenomyoblast transplantation in mdx mice.

Human and mouse (C57BL/10SnJ+/+) myoblasts were injected separately in the muscles of C57BL/10ScSn mdx/mdx mice. Mouse myoblasts (C57BL/10SnJ+/+) were also injected in normal mice (C57BL/10SnJ+/+ and BALB/c+/+). Some muscles that received a xenotransplantation (i.e., human myoblasts) were previously injected with a myotoxin, i.e., notexin. This treatment was not used for the allografts (i.e., mouse myoblasts). Human myoblast injections did not increase the number of dystrophin-positive cells above the background level due to backmutation. Moreover, the human myoblasts detected with an anti-HLA antibody decreased rapidly during the 6-week follow-up. The injection of normal mouse myoblasts in mdx mice did, however, increase the number of dystrophin-positive fibers. Moreover, numerous cells expressing mouse MHC class II, macrophages, granulocytes, neutrophils, natural killer cells, and a subset of T lymphocytes were detected by immunohistochemistry in cryostat sections of myoblast-injected muscles. These cells were present within 1 week of the myoblast injection in the muscle regions containing injected human or mouse myoblasts, and progressively decreased during the 6-week follow-up in the human myoblast transplantation. Lymphocyte infiltration reached a significant level following xeno- and alloincompatible transplantations. Antibodies against the human myoblasts and against alloincompatible myoblasts were also detected in the serum of the recipients. These results suggest that humoral and cellular immune reactions are responsible for the poor outcome of myoblast transplantation in mice and could be involved in failure of transplantation in Duchenne muscular dystrophy patients. These results indicate that adequate immunosuppression must be used in these patients.

Animals

Pretreatment of myoblast cultures with basic fibroblast growth factor increases the efficacy of their transplantation in mdx mice.

The effect of pretreatment of cultures with basic fibroblast growth factor (bFGF) on myoblast allotransplantation to C57BL/10ScSn mdx/mdx mouse (mdx mouse) muscles not previously damaged and not irradiated was studied. Transgenic CD1 mice which have a beta-galactosidase gene under the control of the promoter of the quail fast skeletal muscle troponin I gene, were used as donors. The myoblasts were grown with 100 ng/mL bFGF during the last 2 days before injecting them in the left tibialis anterior (TA) muscles of mdx mice. Myoblasts from the same primary cultures were also grown without bFGF and injected in the right TA muscles as control. The recipient mice were immunosuppressed with FK 506. Twenty-eight days after myoblast transplantation, the percentage of beta-galactosidase-positive fibers was significantly higher (more than fourfold) following culture with bFGF than without bFGF. Almost all beta-galactosidase-positive fibers were also dystrophin positive. Direct intramuscular injections of bFGF or of Hank's balanced salt solution (HBSS) at the time of myoblast transplantation and at several intervals afterwards were also investigated. The percentage of beta-galactosidase-positive fibers did not differ significantly following intramuscular injection of bFGF from controls injected with HBSS. In vitro, this high concentration of bFGF significantly reduced the formation of myotubes, and the percentage of mononuclear cells which were myoblasts was significantly increased by 34%. These observations alone do not account for the fourfold increase in transplantation success. The presence of bFGF in the culture did not significantly increase the cell survival 3 days after their transplantation.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Quantification of normal dystrophin mRNA following myoblast transplantation in mdx mice.

A mutagenesis RT-PCR method was used to detect normal dystrophin mRNA following the injection of normal myoblasts in mdx mice using two immunosuppressors. A specific sequence of the dystrophin mRNA (257 bp) was amplified by RT-PCR from the muscle total RNA. MaeIII digestion of the amplified products allowed us to distinguish the normal messenger of dystrophin from the dystrophic one and to establish the percentage of normal and of dystrophic (mdx) dystrophin mRNA. Normal dystrophin mRNA was detected using this technique in mdx muscles transplanted with histocompatible normal myoblasts. For this type of transplantation, no significant difference in the percentage of normal dystrophin mRNA was observed between immunosuppressed mice and those not immunosuppressed. No normal dystrophin mRNA was, however, observed in mdx mice following histoincompatible normal myoblast transplantation without immunosuppression. When such transplantations were done in mice immunosuppressed with cyclosporine or FK-506, normal dystrophin mRNA accounted for 31% and 36% of the total dystrophin mRNA, respectively. In fact, one animal immunosuppressed with FK-506 expressed as much as 57% of normal dystrophin mRNA. These results thus show that FK-506 makes it possible to restore dystrophin expression to a level comparable to that observed in DMD carriers that are usually asymptomatic.

Animals

Cyclophosphamide immunosuppression does not permit successful myoblast allotransplantation in mouse.

Cyclophosphamide immunosuppression does not permit successful myoblast allotransplantation in mouse. Myoblast transplantation is a potential treatment for Duchenne muscular dystrophy. In one clinical trial, Duchenne patients were immunosuppressed with cyclophosphamide. We report here that myoblasts from transgenic mice expressing the beta-galactosidase reporter gene transplanted in mdx mice failed to form new muscle fibres when cyclophosphamide (2 or 10 mg kg-1 per day) was used for immunosuppression. At the lowest dose of cyclophosphamide (2 mg kg-1 per day), some mdx recipient mice formed antibodies against donor myoblasts; however, no humoral immune reaction was observed at the highest dose (10 mg kg-1 per day). The failure of transplantation under cyclophosphamide treatment was attributed to the low immunosuppressive activity at a low dose and to the toxic action of a high dose of this drug. These results could explain the lack of success of myoblast transplantation in a previous clinical trial.

Animals

Successful histocompatible myoblast transplantation in dystrophin-deficient mdx mouse despite the production of antibodies against dystrophin.

Myoblast transplantation has been considered a potential treatment for some muscular disorders. It has proven very successful, however, only in immunodeficient or immunosuppressed mice. In this study, myoblasts from C57BL10J +/+ mice were transplanted, with no immunosuppressive treatment, in the tibialis anterior of fully histocompatible but dystrophin-deficient C57BL10J mdx/mdx mice. One to 9 months after transplantation, the success of the graft was evaluated by immunohistochemistry. All the transplanted mice (n = 24) developed dystrophin-positive fibers following transplantation. Depending on myoblast cultures, transplantations, and time of analysis, the mice presented 15 to 80% of dystrophin-positive fibers in transplanted muscles. These fibers were correctly oriented and they were either from donor or hybrid origin. The dystrophin-positive fibers remained stable up to 9 months. Possible humoral and cellular immune responses were investigated after grafting. Antibodies directed against dystrophin and/or muscle membrane were developed by 58% of the mice as demonstrated by immunohistochemistry and Western blotting. Despite the presence of these antibodies, dystrophin-positive fibers were still present in grafted muscles 9 months after transplantation. Moreover, the muscles did not show massive infiltration by CD4 cells, CD8 cells, or macrophages, as already described in myoblast allotransplantations. This lack of rejection was attributed to the sequestrated nature of dystrophin after fiber formation. These results indicate that myoblast transplantation leads to fiber formation when immunocompetent but fully histocompatible donors and recipients are used and that dystrophin incompatibility alone is not sufficient to induce an immunological rejection reaction.

Animals

FK506 immunosuppression to control the immune reactions triggered by first-generation adenovirus-mediated gene transfer.

Despite good initial success in vivo, gene transfer using first-generation replication-defective adenovirus has been reported to lead to transient reporter gene expression and to trigger inflammatory reactions in various organs and animal models. To gain more knowledge on this phenomenon, immune reactions were investigated following in vivo transfection of adult immunocompetent mouse muscle using a delta E1/E3a adenoviral vector encoding a beta-galactosidase (beta-Gal) expression cassette. Cellular and humoral immune reactions, and rejection of beta-Gal-positive muscle fibers, occurred within 3 weeks. The muscles showed massive infiltration by macrophages, natural killer cells, and CD8+ leukocytes. The mRNA levels of granzyme B and interferon-gamma were increased 6 days after vector injection, indicating that the infiltrating lymphocytes were activated. Antibodies were formed against the adenovirus group antigen and the beta-Gal gene product 2 weeks after construct injection. The immunosuppressant FK506, however, blocked the cellular infiltration and the humoral response and allowed strong, stable transgene expression over 1 month. These data emphasize the immune problems related to the use of delta E1/E3a adenoviruses as vectors for gene therapy, and they underline the potential of FK506 as an immunosuppressant adjunct treatment for adenovirus-mediated gene transfer.

Adenoviridae