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Distinct characteristics and features of allogeneic chimerism in the NOD mouse model of autoimmune diabetes.

The adaptation of allogeneic chimerism in treatment of autoimmune diabetes has been shown as a promising approach in numerous studies in both experimental and clinical settings. Establishment of hemopoietic chimerism in NOD mice is the most adequate animal model to study mechanisms involved in the multiple aspects of the curative effects of chimerism in autoimmunity-prone individuals. However, there are some discrepancies in the current literature for parameters and criteria used to characterize chimerism in the NOD model. This study was aimed to standardize the criteria for the different pathological stages of diabetogenesis in chimeric versus unmanipulated NOD mice. We report two well-defined scoring systems and a new Index N for the assessment of the pathological characteristics of diabetogenesis and GVHD in chimeric NOD mice. Also, we have demonstrated that, in the NOD model, recipient conditioning resulting in as low as 1% of chimerism is sufficient to promote engraftment of the BM donor-specific islets of Langerhans.

Animals↗

[Progress of chimerism research after allo-bone marrow transplantation].

Bone marrow transplantation (BMT) is an effective therapy for a variety of hematologic and immunodeficient diseases. Two possible situations of chimerism can be encountered when assessing the hematological status in recipient post-allo-BMT: 1. complete chimerism, where the marrow and circulating blood cells all are donor origin; 2. mixed chimerism, the cell components in recipient are both donor and recipient origins. Formation of the different kinds of chimerism are influenced by some factors, included the amount of infused hematopoietic stem cells, the ratio of T cells from donor and recipient, conditioning regimen and patient's condition. The clinical significance was different for the forms and development of chimerism. There are several detecting methods for chimerism, such as microsatellite assay, karyotyping of chromosome, conversion of blood group, red blood cell antigen, restriction fragment length polymorphism, variable number of tandem repeat, and PCR. Above-mentioned aspects of chimerism research were reviewed.

Bone Marrow Transplantation↗

Using apoptosis for targeted cancer therapy by a new gonadotropin releasing hormone-DNA fragmentation factor 40 chimeric protein.

PURPOSE: GnRH-based chimeric proteins have been shown to specifically target and kill adenocarcinomas both in vitro and in vivo. The purpose of this study is to construct a new GnRH-based chimeric protein for the treatment of adenocarcinomas in humans. RESULTS: In this study, we constructed and characterized a new chimeric protein, GnRH-DFF40, composed of a new human killing moiety: the apoptotic DNase-DFF40 (DNA fragmentation factor), known also as caspase-activated DNase (CAD). GnRH-DFF40 exhibits DNase activity in vitro. We found that this chimeric protein can target and kill adenocarcinoma cells. Such death occurs via apoptotic pathways, resulting in an increase in the sub-G(1) population, DNA fragmentation, terminal deoxynucleotidyl transferase-mediated nick end labeling (TUNEL)-positive cells, and morphology typical of apoptotic cells. These apoptotic events involve the mitochondria because we found cytochrome c depletion and caspase-9 and caspase-3 activation. Preliminary in vivo results showed that treatment of colon adenocarcinoma xenografts in nude mice with the new chimeric protein caused a reduction in tumor weight. CONCLUSIONS: Because GnRH-DFF40 is a whole human-based chimeric protein when applied to humans, the nonspecific toxicity and immunogenicity seen with bacterial/plant-based chimeric proteins should be avoided. Thus, GnRH-DFF40 is a promising candidate for the treatment of adenocarcinomas in humans.

Adenocarcinoma↗

Chimerism status is a useful predictor of relapse after allogeneic stem cell transplantation for acute leukemia.

BACKGROUND AND OBJECTIVES: The role of hematopoietic chimerism after allogeneic stem cell transplantation (SCT) for acute leukemia remains controversial. We studied the relationship between hematopoietic chimerism and several prognostic variables on the outcome of SCT in patients with acute leukemia. DESIGN AND METHODS: Chimerism was determined by a semiquantitative method, based on polymerase chain reaction (PCR) amplification of variable number tandem repeat (VNTR) minisatellites, in 133 consecutive patients who underwent allogeneic SCT for acute leukemia (68 myeloid, 58 lymphoid and 7 biphenotypic), all receiving a myeloablative conditioning regimen. RESULTS: The median follow-up for the surviving patients was 44.8 months (range: 12.0-129.0). Recipient hematopoiesis (mixed chimerism, MC) was detected in 40 cases (30.1%). Two types of patients could be distinguished in this MC group: 29 with increasing MC and 9 with decreasing MC. The remaining 93 cases maintained complete donor chimerism (CC) over the whole follow-up period. Patients with increasing MC showed a significantly higher (p<0.001) rate of relapse (93.1%) and death (89.7%) in comparison to both those with CC (26.9% relapse, 44.1% dead) or decreasing MC (11.1% relapse, 44.4% dead). The detection of increasing MC preceded relapse by a median of 74 days (range: 5-434) and was significantly related with the absence of chronic graft-versus-host disease. Univariate and multivariate analysis confirmed that chimerism was the most significant variable involved in relapse, leukemia-free survival and overall survival after SCT. INTERPRETATION AND CONCLUSIONS: These results demonstrate that sequential determination of chimerism allows the prediction of relapse and death after SCT for acute leukemia. The interval between detection of increasing MC and relapse may permit timely implementation of therapeutic measures.

Acute Disease↗

[Construction of expression vector for human-mouse chimeric antibody and expression of an antibody against human HER2].

AIM: To construct universal eukaryotic expression vector for expressing human-mouse chimeric antibody and have application in expression of PCR-obtained mouse variable region gene fragments in the form of human-mouse chimeric antibody, for the purpose of clinical therapy. METHODS: By using human Tac antigen signal peptide and kappa chain and gamma 1 heavy chain gene fragments of human Ig, we constructed a versatile expression vector for human-mouse chimeric antibody and used it to transfect cultured 293T cells. The expressed product was detected using RT-PCR, FACS and ELISA. RESULTS: An expression vector for PCR-derived V genes of mouse Ig as human-mouse chimeric antibody was constructed. The V(L) and V(H) genes encoding mouse anti-human HER2 antibody were amplified with primers designed for this expression system, and an expression vector for chimeric antibody against human HER2 was constructed. By transfection of 293T cells, we demonstrated that a chimeric antibody was produced and secreted to the culture medium. CONCLUSION: This expression system is useful for antibody engineering for it provides a simple way to express chimeric antibody from V genes of mouse antibody obtained by PCR.

Animals↗

Utilizing a GnRH-based chimeric protein for the detection of adenocarcinoma.

Since early diagnosis of many types of cancer greatly improves the chances for successful treatment, high-quality methods for cancer detection are necessary. Our laboratory develops chimeric proteins for targeted therapy, such as gonadotropin releasing hormone (GnRH)-based chimeric proteins for the targeted therapy of adenocarcinomas in humans. For chimeric proteins to cause specific cell death, they must first recognize specific receptors/binding sites expressed on the surface of target cells. Thus, we examined whether we could exploit these binding sites not only as targets for the killing of specific cells but also as a diagnostic marker for identifying adenocarcinomas, using the same chimeric proteins. In this report, we show that one such GnRH-based chimeric protein, GnRH-Caspase3, can indeed serve as a diagnostic tool. GnRH-Caspase3 was able to specifically bind adenocarcinoma cells, as measured by FACS analysis and demonstrated with the aid of confocal microscopy and specific antibodies. Moreover, we found a correlation between cell sensitivity to treatment and the binding level of the chimeric protein to the cells. Hence, we suggest that in addition to their therapeutic potential, GnRH-based chimeric proteins can be used as a diagnostic tool for the detection of adenocarcinomas.

Adenocarcinoma↗

[Establishment and application of a method for assessing hemopoietic chimerism in rhesus after allogeneic stem cell transplantation].

Monitoring engraftment of donor cells after allogeneic transplantation is the key of assessing successful establishment of animal transplantation model. The purpose of this study was to establish a method for analysis of chimerism in rhesus transplantation model. Y-specific sequence in rhesus was amplified by the polymerase chain reaction (PCR), method for analysis of chimerism in rhesus after sex-mismatched transplantation was established; the feasibility and sensitivity of the approach were tested by using serial DNA mixtures of sex-mismatched individuals; the accuracy of results was confirmed by chromosome karyotype analysis simultaneously; Chimerisms of one rhesus received allogeneic stem cell transplantation and the other received mesenchymal stem cells (MSC) transfusion were detected by this method. The results showed that a 176 bp long sequence of PCR product was gained in male rhesus, while no product was gained in female rhesus. The sensitivity of this method was up to 0.05% (male/female DNA ratio). Male donor chimerism were found on day 7 and 14 after allogeneic stem cell transplantation by Y-specific sequence and chromosome karyotype analysis. Otherwise, male donor chimerism was found in peripheral blood at 1 hour and in bone marrow on day 30 after MSC transfusion by this method, but no male donor chimerism was found after MSC transfusion using chromosome karyotype analysis. In conclusion, this rapid, sensitive approach can used to assess chimerism in experiments of rhesus alloorgan transplantation and cell transfusion.

Animals↗

Mixed hematologic chimerism after allogeneic marrow transplantation for severe aplastic anemia is associated with a higher risk of graft rejection and a lessened incidence of acute graft-versus-host disease.

Ninety-six patients with severe aplastic anemia who received a sex-mismatched, HLA-identical allogeneic sibling marrow transplant had sequential cytogenetic analyses performed to determine the incidence and implications of posttransplant mixed hematologic chimerism. Of the 96 patients, 56 (58.3%) became mixed chimeras with coexisting host and donor cells detected in peripheral blood or marrow 14 days or later after transplant, and 40 patients (41.7%) were complete chimeras with 100% donor-type hematopoietic cells. The incidence of mixed chimerism was independent of prior blood production transfusions and infusion of donor buffy coat. The rejection rate was significantly increased in the mixed chimeric group, particularly in patients not receiving buffy coat (14 of 36 rejecting), although overall, the majority (69.7%) retained their first graft. Rejection was seen almost exclusively in patients exposed to multiple transfusions before transplantation. If patients who reject their first graft are censored, the overall incidence of grades II through IV acute graft-v-host disease (GVHD) was significantly reduced in those with mixed chimerism. Transfused patients with mixed chimerism in particular were less likely to develop grades II through IV acute GVHD. The incidence of chronic GVHD was similar in the two groups and did not significantly influence survival. In this study, mixed chimerism persisted for up to 395 days posttransplant, either the first graft being rejected or, more commonly, hematopoiesis reverting to 100% donor-type cells. Mixed lymphohematopoietic chimerism may persist in patients with aplastic anemia who have received matched allogeneic marrow transplants for significant periods before hematopoiesis reverts to donor cell type.

Adolescent↗

Characterization of a mouse/human chimeric monoclonal antibody (17-1A) to a colon cancer tumor-associated antigen.

Mouse monoclonal antibody 17-1A is specific for an antigen expressed on cells of human gastrointestinal malignancies and has been used in radioimmune imaging and therapy trials for patients with colon and pancreatic cancer. The cell line SG3/5 was generated by transfection of a nonproducing mouse myeloma line (SP2/0) with a chimeric gene construct composed of variable regions from the mouse 17-1A immunoglobulin (gamma 2a, kappa) and constant regions of human k and gamma 3 immunoglobulin genes. The secreted immunoglobulin was bound by mouse monoclonal antibodies to human IgG(Fc) and IgG3 but not by staphylococcal protein A. Gel filtration HPLC profiles of purified chimeric antibody were similar to normal human IgG3 but quite different from native 17-1A and normal human IgG1, 2, and 4. Native and chimeric 17-1A had similar patterns of reactivity with colon cancer, other adenocarcinoma, and leukemic cell lines. Competitive inhibition documented that native and chimeric 17-1A had identical capacities to inhibit radiolabeled native 17-1A binding to colon cancer cell lines. Thus, the chimeric 17-1A exhibits molecular characteristics of normal human IgG3 but retains the specificity and binding affinity of the native 17-1A murine monoclonal antibody. The native and chimeric 17-1A mediated similar modest degrees of human lymphocyte and monocyte ADCC in a 4-hr 51Cr release assay, and both failed to mediate complement lysis of colon carcinoma cell lines in the presence of human complement. This human/mouse chimeric monoclonal antibody may be a good candidate for use in clinical trials because it retains the tumor antigen specificity and human effector cell recognition of the native 17-1A, would presumably have a fivefold to 10-fold longer circulating half-life in man, and should be considerably less immunogenic as compared with native murine immunoglobulins.

Animals↗

Chimeric galanin analogs that function as antagonists in the CNS are full agonists in gastrointestinal smooth muscle.

Galanin has numerous effects on gastrointestinal smooth muscle. However, because of the lack of specific inhibitors, it is not known which are physiological and which are pharmacological. This study investigates the ability of two chimeric galanin analogs, [# 1-galantide = (M-15) = [galanin (1-13)-substance P(5-11)] and #2-M-35[galanin(1-13)bradykinin (2-9)], which were recently reported to function as galanin-receptor antagonists in the CNS, to interact with galanin receptors on rat jejunal muscle strips or dispersed smooth muscle cells from guinea pig stomach. In both systems each chimeric analog had agonist activity and was as efficacious as galanin. Cross-desensitization experiments demonstrated that in the jejunal muscle strips, both chimeric analogs were causing muscle contraction by interacting with the galanin receptor. In dispersed smooth muscle cells, galanin, as well as each chimeric analog, caused muscle relaxation, whereas substance P and bradykinin both caused muscle contraction. Each chimeric analog was equipotent to galanin in inhibiting binding of 125I-galanin, and there was close agreement between their abilities to occupy the galanin receptor and cause relaxation. Each chimeric analog also activated adenylate cyclase and increased cAMP characteristic of relaxants. These studies demonstrate these chimeric analogs will not be useful for defining the physiological role of galanin in altering gastrointestinal motility, because they function as full galanin-receptor agonists instead of as galanin-receptor antagonists.

Animals↗

Chimeric anti-ganglioside GM2 antibody with antitumor activity.

Ganglioside GM2, which is one of the major gangliosides expressed on the cell surface of human tumors of neuroectodermal origin, has been focused on as a target molecule for passive immunotherapy. GM2 is thought to be one of the T-cell-independent antigens and to elicit only IgM antibody responses in rodents and humans. We have previously established two murine anti-GM2 monoclonal antibodies with high specificity and strong binding activity, KM696 and KM697, both of which are of the IgM class. Variable heavy and light chain complementary DNAs of these two murine monoclonal antibodies were cloned and used in the construction of mouse/human IgG1 chimeric antibodies, KM966 and KM967, respectively, in this study. One of the chimeric antibodies, KM966, retained strong and specific reactivity with GM2 and showed the similarity of the binding activity with tumor cell lines to that of the original murine monoclonal antibody. Indirect immunofluorescence staining of tumor cell lines with the chimeric KM966 revealed that the antigen was expressed in substantial amounts on pulmonary tumor cells and leukemia cells as well as neuroectodermal origin tumor cells. When human serum and human peripheral blood mononuclear cells were used as effectors in complement-dependent cytotoxicity and antibody-dependent cell-mediated cytotoxicity, respectively, chimeric KM966 was fully effective in killing GM2-expressing tumor cells. In addition, i.v. injection of chimeric KM966 markedly suppressed the establishment of human tumor xenografts in nude mice. Taken together, chimeric KM966 is the first antibody of the human IgG class to ganglioside GM2 and has strong antitumor activity both in vitro and in vivo. It is likely that chimeric KM966 will be a useful agent for passive immunotherapy of human cancer.

Amino Acid Sequence↗

Ca(2+)-dependent and thapsigargin-inhibited phosphorylation of Na+,K(+)-ATPase catalytic domain following chimeric recombination with Ca(2+)-ATPase.

Two chimeric proteins comprising the Na,K-ATPase catalytic domain (large cytosolic loop) and the two flanking regions of the Ca-ATPase were obtained by transient or stable expression in mammalian cells transfected with recombinant DNA. In the first chimera (CpNC), a large portion (containing the nucleotide-binding site) of the cytosolic loop between putative membrane spans M4 and M5 of the sarcoendoplasmic reticulum Ca2+ (SERCA) 1 (fast muscle) ATPase was replaced by the corresponding portion of the Na,K-ATPase alpha 1 subunit. In the second chimera (CNpC), an even larger portion (containing the nucleotide-binding site and the phosphorylation site) of the analogous cytosolic loop of the SERCA2 (cardiac muscle) ATPase was replaced by the corresponding portion of the Na,K-ATPase alpha 1 subunit. Steady state Ca2+ transport and coupled ATP hydrolysis by the chimeric proteins were negligible as compared to those obtained with SERCA enzymes. Nevertheless, the chimeric proteins were able to utilize ATP to form phosphoenzyme levels equal to those formed by SERCA ATPases. Chimeric and SERCA enzymes exhibited an identical Ca2+ requirement for ATP utilization and sensitivity to thapsigargin (TG) which is a specific inhibitor of SERCA ATPase and not of Na,K-ATPase. Furthermore, both SERCA and chimeric enzymes could be phosphorylated with P(i), and this reaction required removal of Ca2+. In comparative experiments, the functional pattern of seemingly unaffected phosphoenzyme formation and inhibited Ca2+ transport was produced in the SERCA ATPase even by single mutation of Pro337 to Ala, evidently due to defective protein conformation. Retention of Ca2+ and TG sensitivity by the chimeric proteins demonstrates that the Ca(2+)- and TG-binding domains do not reside within the cytosolic loop replaced by chimeric substitution and strongly support previous studies suggesting that binding of calcium required for enzyme activation occurs within the membrane-bound region of the SERCA ATPases (Clarke et al., 1989a; Sumbilla et al., 1991).

Amino Acid Sequence↗

Chimerism does not influence graft-versus-myeloma and graft-versus-host disease in reduced intensity setting.

In this study we serially evaluated the chimerism status in 20 multiple myeloma patients allotransplanted with a reduced intensity regimen. All patients engrafted, with total 75% overall responses and 35% of CRs. After a median follow-up of 35 months, seven patients (35%) died, three of them due to disease progression. Four patients died before day +100, with a TRM of 20%. Nine patients (45%) developed aGVHD and six (40%) had cGVHD. Twenty-five percent of patients achieved full donor chimerism (FDC) before day +100, 42% before day +200 and 75% 24 months after graft. In our series, level of chimerism did not correlate with either the quality of response or aGVHD. No significant differences were found between bone marrow and peripheral blood samples. Analogously, even if donor DNA percentage often resulted higher in the PMN fraction than in the mononuclear one, these differences were not significant after statistical analysis. On the other hand, cGVHD was associated with increased rates of FDC, with 6/6 cases showing a full donor pattern in concomitance of the cGVHD versus 5/9 cases presenting a FDC in the group of patients without cGVHD (p=0.057). The Kaplan-Meier estimates of OS and PFS at 2 years were 59% and 58%, respectively; chimerism pattern did not impact in the predicting clinical outcome. In summary, our study shows that a stable engraftment and high frequency of donor chimerism are achievable after a reduced intensity conditioning regimen. Moreover, even as result of a single center experience, we suggest that chimerism, graft-versus-myeloma and GVHD would represent distinct entities that require larger immunological studies for further clarification.

Adult↗

Chimerism and tolerance post-in utero transplantation with embryonic stem cells.

BACKGROUND: Clinical application of in utero transplantation (IUT) in human fetuses with intact immune systems resulted in a very low level of donor chimerism. In this study, we examined whether the fetal immune system early in the second trimester of pregnancy (13.5 dpc) can initiate immune tolerance for major histocompatibility complex (MHC)-mismatched embryonic stem (ES) cells. We also examined whether immune tolerance mechanisms respond differently to ontogenetically different stem cells. METHODS: MHC-mismatched ES, fetal liver (FL), and bone-marrow (BM) cells (H-2kd) at 1 x 10(9) cells/kg fetal body weight were injected intraperitoneally into 13.5 dpc BALB/c fetuses (H-2Kd). Peripheral chimerism was determined in blood by flow cytometry (sensitivity< or =0.1%) at monthly intervals. Donor-specific immune responses were determined by cytotoxic lymphocyte (CTL) assay, mixed lymphocyte reaction, and T helper (Th)1 and Th2 cytokine assays. Chimeric mice at the age of 9 months received postnatal boosts (PB) with minimal conditioning of 200 cGy by intravenous injection of 1 x 10(9) of the corresponding cells/kg body weight. RESULTS: After IUT with ES, FL, or BM cells, the level of peripheral chimerism within the first 9 months of life was 0% to 0.4%. PB with 1 x 10(9)/kg of corresponding cells resulted in a decrease in the peripheral chimerism to 0% within 2 weeks of PB. CTL and cytokine assays before and after PB demonstrated a shift toward immunity. CONCLUSIONS: Immunologic tolerance was not achieved after IUT of murine fetuses at 13.5 dpc with MHC-mismatched ES cells, and only a low level chimerism was achieved.

Animals↗

Peripheral blood chimerism following human liver transplantation.

The aim of this study was to prospectively investigate the peak levels and kinetics of donor leucocyte chimerism in human recipients following liver transplantation. The peak levels of chimerism were observed within the first 48 hours following transplantation and ranged from 0.15% to 20% of total peripheral blood mononuclear cells. In all but one patient, who developed graft versus host disease, there was an early peak level of chimerism that declined over time such that donor leukocytes were only intermittently detectable after 3 to 4 weeks. In 8 patients who had no episodes of graft rejection, the peak level of donor leukocyte chimerism ranged from 1.3% to 20% (mean +/- SEM; 5.5% +/- 2.1%). In 3 patients who were treated for episodes of acute graft rejection during the first four postoperative weeks, the peak level of donor leukocyte chimerism ranged from 0.15% to 0.2% (0.18 +/- 0.02, P = .012). The results demonstrate a marked variation in the total number of donor leukocytes detectable in the peripheral blood early after liver transplantation and also, that lower levels of chimerism may be associated with lower rates of initial graft acceptance and a higher incidence of acute rejection.

Adult↗

Targeting of G(D2)-positive tumor cells by human T lymphocytes engineered to express chimeric T-cell receptor genes.

Genetic engineering of human T lymphocytes to express tumor antigen-specific chimeric immune receptors is an attractive means for providing large numbers of effector cells for adoptive immunotherapy while bypassing major mechanisms of tumor escape from immune recognition. We have applied this strategy to the targeting of a G(D2)-positive tumor, neuroblastoma, which is the commonest extracranial solid tumor of childhood. Chimeric immune receptors were generated by joining an extracellular antigen-binding domain derived from either of the 2 ganglioside G(D2)-specific antibodies sc7A4 and sc14.G2a to a cytoplasmic signaling domain. The variable domains of hybridoma antibody 14.G2a were cloned and selected using a phage display approach. Upon coincubation with G(D2)-expressing tumor cell targets, human T lymphocytes transduced with recombinant retroviruses encoding chimeric receptors based on sc14.G2a, but not sc7A4, secreted significant levels of cytokines in a pattern comparable to the cytokine response obtained by engagement of the CD3 receptor. T cells transduced with the sc14.G2a-based chimeric T-cell receptors also displayed specific lysis of G(D2)-positive neuroblastoma cells, which was blocked in the presence of monoclonal antibody 14.G2a. In the absence of nonspecific stimulation of transduced cells, their functionality declined over time and antigenic stimulation of the chimeric receptor alone did not induce commitment to proliferation. These results support the feasibility of redirecting human T lymphocytes to a tumor-associated ganglioside epitope but emphasize that successful chimeric receptor-mediated adoptive immunotherapy will require additional strategies that overcome functional inactivation of gene-modified primary T lymphocytes.

Cytokines↗

Combined prophylactic and therapeutic cancer vaccine: enhancing CTL responses to HPV16 E2 using a chimeric VLP in HLA-A2 mice.

We identified the strategies to induce a CTL response to human papillomavirus (HPV) 16 E2 in HLA-A2 transgenic mice (AAD). A chimeric HPV16 virus-like particle (VLP) that includes full length HPV16 E7 and E2 (VLP-E7E2) was generated. The combination of E2 and E7 has the advantage that E2 is expressed in early dysplasia and neoplasia lesions, where E7 is expressed in more advance lesions. Since T cell response to E2 is less defined, we first evaluated the strategies to enhancing CD8(+) T cell responses to HPV E7, using different combinations of immune-modulators with VLP-E7E2. Data showed that the CTL response to E7 could be significantly enhanced by coinjection of GM-CSF and anti-CD40 antibodies with chimeric VLP-E7E2 without adjuvant. However, using the same combination, a low level of CD8(+) T cell response to E2 was detected. To enhance the CD8+ T cell response to E2, we analyzed T cell epitopes from E2 sequence. A heterogenous prime-boost with chimeric VLP-E7E2 and E2 peptides was performed. The data showed that the priming with chimeric VLP-E7E2, followed by boosting with E2 peptides, gave a better CTL response than 2 immunizations with E2 peptides. The enhanced immunity is due to the increase of CD11c(+) and CD11c(+) CD40(+) double positive dendritic cells in mice that received immune-modulators, GM-CSF and anti-CD40. Furthermore, the level of anti-L1 antibodies remains similar in mice immunized with chimeric VLP with/without immune-modulators. Thus, the data suggested that the chimeric VLP-E7E2 has a therapeutic potential for the treatment of HPV-associated CINs and cancer without diminishing VLPs potential as a prophylactic vaccine by inducing anti-L1 antibodies against free virus.

Animals↗

The inability of adoptive immunotherapy to eradicate tumor cells in radiation-induced chimeric mice: the possible down-regulation of intratumor immune amplification.

Tumors were eradicated following adoptive immunotherapy of (C57BL/6J X DBA/2J) F1 (B6D2F1) hybrid mice bearing the C57B1/6J (B6) sarcoma, MCA/76-9, by treatment with cyclophosphamide (CY) and adoptively transferred tumor-sensitized B6D2F1 T cells. Identical treatment of B6----B6D2F1 or DBA----B6D2F1 chimeric tumor-bearing mice resulted in temporary tumor regression only. Immunotherapy in both systems resulted in the appearance at the tumor site of large numbers of T lymphocytes and macrophages, which were shown to be derived from the adoptively transferred donor immune B6D2F1 cells or from the original reconstituting bone marrow respectively. The TAC and TAL isolated from either B6D2F1 or chimeric mice expressed potent toxicity in vitro towards tumor target cells. In addition, TAC from both systems inhibited tumor growth in a Winn assay in an immunologically specific manner. Suppressor cells detected in spleens 8 days after CY injection of normal B6, DBA, B6D2F1 hybrid and chimeric mice and also after adoptive immunotherapy of tumor-bearing B6, B6D2F1 and chimeric mice and were shown to persist in the spleens of chimeric mice for at least 31 days after adoptive immunotherapy. In contrast, spleen cells taken 31 days after therapy of B6D2F1 mice did not contain detectable suppressor cells and were able to induce tumor eradication when adoptively transferred to CY-treated tumor-bearing B6D2F1 mice. The possibility is discussed that two forms of suppressor mechanisms are induced after adoptive immunotherapy of chimeric mice and that they may down-regulate donor T cell responses at the tumor site.

Animals↗