Supplementary Data from Rapid Immune Recovery and Graft-versus-Host Disease–like Engraftment Syndrome following Adoptive Transfer of Costimulated Autologous T Cells
Carl June and colleagues report the results of a phase I/II trial of adoptively transferred engineered T cells in patients with advanced multiple myeloma. Despite recent therapeutic advances, multiple myeloma (MM) remains largely incurable. Here we report results of a phase I/II trial to evaluate the safety and activity of autologous T cells engineered to express an affinity-enhanced T cell receptor (TCR) recognizing a naturally processed peptide shared by the cancer-testis antigens NY-ESO-1 and LAGE-1. Twenty patients with antigen-positive MM received an average 2.4 × 109 engineered T cells 2 d after autologous stem cell transplant. Infusions were well tolerated without clinically apparent cytokine-release syndrome, despite high IL-6 levels. Engineered T cells expanded, persisted, trafficked to marrow and exhibited a cytotoxic phenotype. Persistence of engineered T cells in blood was inversely associated with NY-ESO-1 levels in the marrow. Disease progression was associated with loss of T cell persistence or antigen escape, in accordance with the expected mechanism of action of the transferred T cells. Encouraging clinical responses were observed in 16 of 20 patients (80%) with advanced disease, with a median progression-free survival of 19.1 months. NY-ESO-1–LAGE-1 TCR–engineered T cells were safe, trafficked to marrow and showed extended persistence that correlated with clinical activity against antigen-positive myeloma.
Abstract Background: Adoptive immunotherapy for cancer has been limited by lack of antigen specificity, low levels of target expression, and failure to break self-tolerance. We are conducting an early phase clinical trial (NCT01352286) attempting to overcome these barriers using T cells engineered with an HLA-A0201 restricted, affinity-enhanced TCR that recognizes an epitope expressed by the NY-ESO-1 and LAGE-1 cancer testis antigens; these cells are infused in the setting of profound lymphodepletion that accompanies high-dose chemotherapy with autologous stem cell transplant (aSCT) for patients with high risk or relapsed multiple myeloma (MM). Methods: Inclusion criteria include: 1) eligibility for aSCT, 2) PS of 0-2, 3) high risk MM or relapse after prior therapy, 4) HLA-A0201 positive, and 5) NY-ESO-1 and/or LAGE-1 positive tumor by PCR. CD25 depleted T cells are activated and expanded using anti-CD3/28 antibody conjugated microbeads, and genetically modified with a lentiviral vector. T cells are administered four days after high dose melphalan and two days following auto-SCT. Patients are evaluated for MM responses in accordance with the IMWG criteria at 6 weeks, and 3 and 6 months. At 3 months, patients with adequate marrow function start lenalidomide maintenance. Blood and marrow are monitored for persistence of engineered cells by qPCR and by surface expression of the NY-ESO-1 / LAGE-1 TCR using dextramerTM reagents. NY-ESO-1 and LAGE-1 antigen expression in marrow was assessed by qRT-PCR at baseline and post infusion. Results: As of November 2012, 21 patients have been enrolled, 15 have been infused; 4 were taken off study prior to infusion due to disease progression. An average of 2.7 x 109 engineered T cells were administered per patient (range 8.3 x 108-4.2 x 109), and the average transduction efficiency was 33% (range 30%-45%). More than 50% (8/15) of patients have high risk chromosomal abnormalities, and 3 (20%) have received prior aSCT. At 3 months post aSCT, 73% of patients were in a very good partial response (VGPR) or better. Gastrointestinal toxicity resulting from autologous GVHD (aGVHD) occurred in a subset of patients at a higher rate than reported following aSCT alone or aSCT and T cell infusion, and was resolved in all cases. Infused T cells typically showed peak expansion in blood at day 14, followed by durable persistence in blood and marrow at 6-12 months in all but one patient. Disease progression is typically accompanied by very low levels or loss of engineered T cell persistence or loss of target antigen on tumor. Conclusions: We report for the first time that possible correlates of clinical response in this study include persistence of engineered T cells and loss of antigen, suggesting specific activity of the infused cells. Infusions are well tolerated with a possible risk of manageable aGVHD. Citation Format: Aaron P. Rapoport, Edward A. Stadtmauer, Dan T. Vogl, Brendan Weiss, Gwendolyn K. Binder-Scholl, Dominic P. Smethurst, Jeffrey Finkelstein, Irina Kulikovskaya, Minnal Gupta, Erica Suppa, Tatiana Mikheeva, Joanna E. Brewer, Alan D. Bennett, Andrew B. Gerry, Nick J. Pumphrey, Helen K. Tayton-Martin, Lilliam Ribeiro, Elizabeth Veloso, Zhaohui Zheng, Ashraf Z. Bados, Saul Yanovich, Gorgun Akpek, Karen Dengel, Naseem Kerr, Sunita Philip, Kelly-Marie Betts, Sandra Westphal, Bruce L. Levine, Bent K. Jakobsen, Carl H. June, Michael Kalos. Correlates of clinical response following autologous stem cell transplant and adoptive immunotherapy with engineered T cells expressing an affinity-enhanced T cell receptor in patients with mutliple myeloma. [abstract]. In: Proceedings of the 104th Annual Meeting of the American Association for Cancer Research; 2013 Apr 6-10; Washington, DC. Philadelphia (PA): AACR; Cancer Res 2013;73(8 Suppl):Abstract nr 4575. doi:10.1158/1538-7445.AM2013-4575
![Graphic][1] Background Despite recent therapeutic advances, multiple myeloma (MM) remains primarily an incurable cancer. Patients experiencing rapid recovery of T cells post autologous stem cell transplant (auto-SCT) may have improved outcomes, and spontaneous cellular responses to tumor can occur, suggesting immune mediated control of tumor is possible. We and others have investigated therapeutic cancer vaccines that have shown promise in pilot studies, in particular following post-transplant infusion of activated autologous T cells. However, efficacy of these approaches may be limited by thymic selection which restricts the repertoire of T cell receptors (TCRs) to low affinity TCRs that cannot recognize the low level of antigen present on most tumor cells. We hypothesized that incorporation of affinity-enhanced tumor antigen-specific TCRs into autologous T cells infused post-transplant would overcome this limitation and improve response rates in the post auto-SCT setting. Methods We report interim results of a Phase II clinical trial ([NCT01352286][2]) to evaluate the safety and activity of autologous T cells genetically engineered to express an affinity-enhanced TCR that recognizes the NY-ESO-1/LAGE-1 peptide complex HLA‐A*0201‐SLLMWITQC; these cells are infused in the setting of profound lymphodepletion that accompanies high dose chemotherapy administered during auto-SCT. Patients with high risk or relapsed MM, who are HLA‐A*0201 positive, and whose tumor is positive for NY-ESO-1 and/or LAGE-1 by RT-PCR are eligible. CD25 depleted CD4 and CD8 T cells are activated and expanded using anti-CD3/CD28 antibody conjugated microbeads, and genetically modified with a lentiviral vector containing the TCR construct at a multiplicity of infection of 1. Engineered T cells are administered four days after high dose melphalan and two days following auto-SCT, at a dose range of 1-10 billion total cells with a minimum gene modification requirement of 10%. Patients are evaluated for MM responses in accordance with the IMWG criteria at 6 weeks, and 3 and 6 months post infusion. At 3 months, patients start lenalidomide maintenance. The initial 6 patient phase is complete and a 20 patient extension phase is ongoing. Results Prior to enrollment on study, patients had received a median of 3 prior therapies including 6 with prior transplant. 50% of tumors contained high risk chromosomal abnormalities, and NY-ESO-1 expression is correlated with adverse prognosis. 20 patients (average age of 57) have been infused with an average of 2.3 X 109 engineered T cells (range 4.5 X 108-3.9 X 109); this reflects an average clinical scale transduction efficiency of 34% (range 18% – 49%). Infusions have been well tolerated, and the majority of adverse events were related to the high dose melphalan. Possibly related SAEs were neutropenia and thrombocytopenia, and GI and metabolism disorders including diarrhea, colitis, hyponatremia and hypomagnesemia. 10, 4, 2, and 2 patients have reached the 1 year, 9 month, 6 month and 3 month assessment timepoints, respectively, and 17/20 patients are alive. Best response by day 100 is sCR/CR in 2/15 (13%), nCR in 10/15 (67%), and PR in 3/15% (20%), which compares favorably to historic responses in patients undergoing first or second transplant. Engineered T cells expanded and persisted in blood and marrow at 180 days by Q-PCR and flow-cytometry in all but one case (Figure). 7 patients progressed after day 100, which was accompanied either by loss of engineered T cells or loss of tumor antigen. Detailed phenotyping and functional analysis of engineered T cells, and correlates with clinical responses, is underway. Summary This is the first clinical evaluation of engineered T cells in the MM setting. Infusions are safe, well tolerated, and are associated with encouraging responses in a high risk myeloma population. A study evaluating the engineered T cells in a non-transplant study is underway. Disclosures: Stadtmauer: Celgene: Consultancy. Binder-Scholl: Adaptimmune: Employment. Smethurst: Adaptimmune: Employment. Brewer: Adaptimmune: Employment. Bennett: Adaptimmune: Employment. Gerry: Adaptimmune: Employment. Pumphrey: Adaptimmune: Employment. Tayton-Martin: Adaptimmune: Employment. Ribeiro: Adaptimmune: Employment. Levine: Novartis: cell and gene therapy IP, cell and gene therapy IP Patents & Royalties. Jakobsen: Adaptimmune: Employment. Kalos: Novartis corporation: CART19 technology, CART19 technology Patents & Royalties; Adaptive biotechnologies: Member scientific advisory board , Member scientific advisory board Other. June: Novartis: Patents & Royalties, Research Funding. ![Figure][3] [1]: /embed/inline-graphic-2.gif [2]: /lookup/external-ref?link_type=CLINTRIALGOV&access_num=NCT01352286&atom=%2Fbloodjournal%2F122%2F21%2F766.atom [3]: pending:yes
Meeting abstracts We report on a 26 patient phase I/II clinical trial ([NCT01352286][1]) to investigate the safety, feasibility and anti-tumor activity of T cells engineered to express an affinity-enhanced TCR that recognizes the NY-ESO-1/LAGE-1 peptide complex HLA-A*0201-SLLMWITQC. Patients with
Abstract Abstract 352 Background: Autologous stem cell transplantation (ASCT) for MM leads to complete responses in ∼20–40% of patients but rare cures. Patients with rapid recovery of T cells post ASCT may have improved outcomes suggesting possible immune mediated tumor control. We have shown that adoptive T-cell transfers after ASCT for MM using vaccine-primed and ex-vivo costimulated autologous T-cells in combination with pre- and post-transplant immunizations using a tumor antigen vaccine (+ GM-CSF and montanide) led to vaccine-directed T-cell responses in about 1/3 of patients and enhanced recovery of polyclonal T and B cell counts and function. We hypothesized that addition of Poly-ICLC (Hiltonol®) – a TLR-3 agonistic vaccine adjuvant could increase tumor antigen vaccine responses through better priming and boosting. Methods: We report interim results of a Phase II clinical trial (NCT01245673) evaluating safety and activity of autologous T cells primed in-vivo with a MAGE-A3 multipeptide vaccine (Orphan Drug Designation: GL-0817) mixed with GM-CSF and Poly-ICLC (Hiltonol®) +/− montanide. Inclusion criteria included measurable disease or high-risk cytogenetics. MAGE-A3 is expressed in ∼50% MM cases and more frequently in relapsed/extramedullary/proliferative disease. The MAGE-A3 vaccine has 2 HLA-A2-restricted class I peptides and 1 promiscuous class II peptide linked to an HIV-1-TAT membrane translocation sequence (Trojan peptide) to enhance peptide presentation. Vaccine-primed T cells were collected by leukapheresis, costimulated and expanded ex-vivo using anti-CD3/anti-CD28 mAb conjugated beads. T-cells were infused at day +2 after ASCT followed by booster immunizations at days 14, 42, 90, 120 and 150 post-transplant. Lenalidomide maintenance was started at day +100. Patients were evaluated for MM responses in accordance with IMWG criteria at days 60, 100, 180 post-transplant and Q3 months thereafter. T-cell and B-cell responses to the vaccine were evaluated by IFN-g or IL-2 cytokine production (all patients), dextramer binding to CD8 cells (HLA-A2 positive patients) and ELISA antibody assays at days 14, 60, 100 and 180 post-transplant. Results: 25 patients were transplanted on study. At a median followup of 6 months (range 2–18 months), 24 patients are surviving while 1 patient relapsed at about day +60 and died. Four additional patients have relapsed at 7,9,18 and 18 months post-transplant, yielding a 1-year Kaplan-Meier EFS of 77%. Of the 16 patients evaluable for response at day 100, 7/16 (44%) had CR/nCR using the study enrollment (post-induction) myeloma markers as a baseline while at day 180, 7/13 (53%) had CR/nCR. T-cell infusions were well-tolerated with no probable/definite grade 3 or higher toxicities. Vaccinations were associated with > 50 mm injection site reactions (redness, induration or both) after 1 or more immunizations in the majority of patients. Two patients developed large and prolonged inflammatory reactions which evolved into sterile abscesses. These resolved over 2–3 months with conservative management but as a result montanide was eliminated from the vaccine formulation for patients 11–25. Thereafter vaccine reactogenicity was decreased with no additional sterile abscesses. Of 16 patients tested for immune responses to date, 2 patients were unevaluable due to poor sample viability. Dextramer staining demonstrated MAGE-A3-specific CD8 T-cells in 4/4 (100%) of evaluable HLA-A2+ patients. Cytokine production in response to MAGE-A3 stimulation was seen in 11/14 (79%) patients; responses usually peaked at day 100 or day 180. Robust MAGE-A3 antibody responses were detected in 7/9 patients who received montanide in the vaccine formulation but in 0/7 patients who did not. Conclusions: Combination immunotherapy using a MAGE-A3 multipeptide tumor antigen vaccine plus vaccine-primed and costimulated autologous T-cells after ASCT for MM is well-tolerated and associated with encouraging early clinical responses. The addition of Poly-ICLC (Hiltonol®) to the vaccine formulation was associated with a high frequency of post-ASCT T-cell functional responses. The combination of Poly-ICLC +GM-CSF + Montanide led to robust injection site reactions that were occasionally severe and prolonged. Elimination of the montanide reduced injection site reactogenicity but may also have compromised the B-cell responses to the tumor antigen vaccine. Disclosures: Rapoport: Gliknik, Inc: Research Funding. Stadtmauer:Celgene: Consultancy, Speakers Bureau; Millenium: Consultancy, Speakers Bureau. Vogl:Celgene: Consultancy, Membership on an entity's Board of Directors or advisory committees; Millennium/Takeda: Consultancy, Research Funding; Otsuka: Consultancy; Acetylon: Research Funding. Strome:Gliknik, Inc: Equity Ownership, Patents & Royalties, Research Funding. Salazar:Oncovir, Inc: Employment. Levine:TxCell: Consultancy, Membership on an entity's Board of Directors or advisory committees; University of Pennsylvania: financial interest due to intellectual property and patents in the field of cell and gene therapy. Conflict of interest is managed in accordance with University of Pennsylvania policy and oversight, financial interest due to intellectual property and patents in the field of cell and gene therapy. Conflict of interest is managed in accordance with University of Pennsylvania policy and oversight Patents & Royalties. June:Novartis: Research Funding, entitled to receive royalties from patents licensed to Novartis, entitled to receive royalties from patents licensed to Novartis Patents & Royalties.
Abstract Abstract 472 Background: Despite recent therapeutic advances, multiple myeloma (MM) remains primarily an incurable cancer. Patients experiencing rapid recovery of T cells post auto-SCT may have improved outcomes, and spontaneous cellular responses to tumor can occur, suggesting immune mediated control of tumor is possible. We and others have investigated therapeutic cancer vaccines that have shown promise in pilot studies. However, vaccine efficacy may be limited by thymic selection which restricts the repertoire of T cell receptors (TCRs) to low affinity TCRs that cannot recognize the reduced level of antigen present on most tumor cells. We hypothesized that incorporation of affinity-enhanced tumor antigen specific TCRs into autologous T cells would overcome this limitation. Methods: We report interim results of a Phase II clinical trial (NCT01352286) to evaluate the safety and activity of autologous T cells genetically engineered to express an HLA-A201 restricted, affinity-enhanced TCR targeting an epitope shared by the NY-ESO-1 and LAGE-1 tumor antigens (gene engineered cells, or GEC). Inclusion criteria include: 1) eligibility for auto-SCT, 2) PS of 0–2, 3) high risk MM or relapse after prior therapy (prior allo-SCT excluded), 4) HLA-A201 positive, and 5) NY-ESO-1 and/or LAGE-1 positive tumor. GEC are manufactured from monocyte and T regulatory cell depleted apheresis, followed by lentivector gene transfer and T cell expansion by bead-based artificial antigen presenting cells. GEC are administered four days after high dose melphalan and two days following auto-SCT, at a dose range of 1–10 billion cells. Patients are evaluated for MM responses in accordance with the IMWG criteria at 6 weeks, and 3 and 6 months post infusion. At 3 months, patients start lenalidomide maintenance. The initial 6 patient phase is complete and a 20 patient extension phase is ongoing. Results: 19 patients have been enrolled, 12 have been infused, 3 are pending infusion, and 4 were taken off study prior to infusion due to disease progression. The average TCR transfer efficiency was 31.9% (range 18.2%-45%). 6, 4, and 1 patients have reached the 6 month, 3 month, and 6 week post infusion MM assessment time points, respectively. All treated patients are alive. 3/11 (27%) and 7/11 (64%) patients have a stringent CR or best response of VGPR or better, respectively; 3/11 (27%) have stable or partial responses, and 1/11 (9%) had progressive disease. In patients with VGPR, oligoclonal banding was common, marrow showed no expansion of clonal plasma cells, and all had normalized light chain ratios, suggesting at most minimal residual disease. These results are encouraging, especially considering that 3/11 patients had prior ASCT and 8/11 had adverse cytogenetics. GEC infusions have been well tolerated. The majority of adverse events are related to the high dose melphalan. Several patients had a transient skin rash with lymphocytosis and others had a diarrheal syndrome that occurred later than expected for melphalan-induced mucositis. In all cases GI toxicity has been self-limited or treatable with a short dose of corticosteroids. Possibly related SAEs were cytopenias such as neutropenia and thrombocytopenia, and GI and metabolism disorders such as diarrhea, colitis, hyponatremia and hypomagnesemia. GEC have been detected for up to 1 year at 1% in the circulation and bone marrow. Detailed correlative analysis is reported elsewhere in this meeting (Kalos, M. et al). Summary: This is the first test of GEC in the MM setting. Infusion of GEC administered post auto-SCT is safe, well tolerated, and leads to high response rate in a high risk myeloma population. Phase II accrual continues and a study evaluating GEC outside of auto-SCT is planned. Disclosures: Stadtmauer: celgene: Consultancy; millenium: Consultancy. Binder-Scholl:Adaptimmune : Employment. Brewer:Adaptimmune Ltd: Employment. Bennett:Adaptimmune Ltd: Employment. Gerry:Adaptimmune Ltd: Employment. Pumphrey:Adaptimmune Ltd: Employment. Smethurst:Adaptimmune Ltd: Employment. Tayton-Martin:Adaptimmune Ltd: Employment. Lilliam:Adaptimmune: Employment. Levine:TxCell: Consultancy, Membership on an entity's Board of Directors or advisory committees; University of Pennsylvania: financial interest due to intellectual property and patents in the field of cell and gene therapy. Conflict of interest is managed in accordance with University of Pennsylvania policy and oversight, financial interest due to intellectual property and patents in the field of cell and gene therapy. Conflict of interest is managed in accordance with University of Pennsylvania policy and oversight Patents & Royalties. Jakobsen:Adaptimmune Ltc: Employment. June:Novartis: Research Funding, entitled to receive royalties from patents licensed to Novartis, entitled to receive royalties from patents licensed to Novartis Patents & Royalties.
AbstractPurpose: Previously, we showed that adoptive transfer of in vivo vaccine-primed and ex vivo (anti-CD3/anti-CD28) costimulated autologous T cells (ex-T) at day +12 after transplant increased CD4 and CD8 T-cell counts at day +42 and augmented vaccine-specific immune responses in patients with myeloma. Here, we investigated the safety and kinetics of T-cell recovery after infusing ex-T at day +2 after transplant.Experimental Design: In this phase I/II two-arm clinical trial, 50 patients with myeloma received autografts after high-dose melphalan followed by infusions of ex-T at day +2 after transplant. Patients also received pretransplant and posttransplant immunizations using a pneumococcal conjugate vaccine only (arm B; n = 24) or the pneumococcal conjugate vaccine plus an HLA-A2–restricted multipeptide vaccine for HLA-A2+ patients (arm A; n = 26).Results: The mean number of T cells infused was 4.26 × 1010 (range, 1.59-5.0). At day 14 after transplant, the median CD3, CD4, and CD8 counts were 4,198, 1,545, and 2,858 cells/μL, respectively. Interleukin (IL)-6 and IL-15 levels increased early after transplant and IL-15 levels correlated significantly to day 14 T-cell counts. Robust vaccine-specific B- and T-cell responses were generated. T-cell infusions were well tolerated with no effect on hematopoietic recovery. Eight patients (16%) developed a T-cell “engraftment syndrome” characterized by diarrhea and fever that was clinically and histopathologically indistinguishable from grade 1 to 3 acute graft-versus-host disease (GVHD) of the gastrointestinal tract (seven patients) and/or grade 1 to 2 cutaneous GVHD (four patients).Conclusions: Adoptive T-cell transfers achieve robust T-cell recovery early after transplant and induce moderate-to-severe autologous GVHD in a subset of patients.
BACKGROUND:In preclinical studies, bortezomib was shown to suppress tumor growth, sensitize malignant cells to apoptosis, and reverse chemotherapy resistance.PATIENTS AND METHODS:We evaluated the addition of escalating doses of bortezomib 0.7, 1, and 1.3 mg/m2 intravenously on days 1, 4, and 8 to DT-PACE (cisplatin 10 mg/m2, doxorubicin 10 mg/m2, cyclophosphamide 400 mg/m2, and etoposide 40 mg/m2 per day by intravenous continuous infusion on days 1-4) plus oral dexamethasone 40 mg on days 1-4 and thalidomide 200 mg on days 1-8 in newly diagnosed patients with multiple myeloma. Peripheral blood stem cells were collected after cycle 1. Twelve patients completed the study, and all received autologous stem cell transplantation (SCT).RESULTS:Hematologic toxicities were predictable, with 3 episodes of neutropenic fever. Grade >/= 2 nonhematologic toxicities included diarrhea (n = 1), deep vein thrombosis (n = 2), hypotension (n = 2), syncope (n = 1), and peripheral neuropathy (n = 3). The median number of CD34+ cells collected was 20.57 x 10 superset6 CD34+ cells/kg. After 2 cycles, 10 of 12 patients exhibited a partial response or better. Best response after autologous SCT, complete response/near complete response was exhibited in 9 patients, and partial response was exhibited in 3 patients. At a median of 20 months, 4 patients experienced relapse and 1 had died. Bortezomib/DT-PACE compared favorably with DT-PACE with regard to leukapheresis days, total CD34+ cell collection, and engraftment.CONCLUSION:This novel strategy of simultaneous proteasome inhibition in combination with thalidomide and chemotherapy was effective and safe, allowing for adequate stem cell collection and early autologous SCT; its impact on overall survival, especially in patients with high-risk myeloma, awaits further investigation.
Immunodeficiency is a barrier to successful vaccination in individuals with cancer and chronic infection. We performed a randomized phase 1/2 study in lymphopenic individuals after high-dose chemotherapy and autologous hematopoietic stem cell transplantation for myeloma. Combination immunotherapy consisting of a single early post-transplant infusion of in vivo vaccine-primed and ex vivo costimulated autologous T cells followed by post-transplant booster immunizations improved the severe immunodeficiency associated with high-dose chemotherapy and led to the induction of clinically relevant immunity in adults within a month after transplantation. Immune assays showed accelerated restoration of CD4 T-cell numbers and function. Early T-cell infusions also resulted in significantly improved T-cell proliferation in response to antigens that were not contained in the vaccine, as assessed by responses to staphylococcal enterotoxin B and cytomegalovirus antigens (P < 0.05). In the setting of lymphopenia, combined vaccine therapy and adoptive T-cell transfer fosters the development of enhanced memory T-cell responses.
Abstract Ex-vivo co-stimulation of autologous T-cells with anti-CD3/anti-CD28-conjugated magnetic beads followed by adoptive transfer may augment T-cell responses toward tumor antigens or infectious agents. 54 patients (pts) were treated with ex-vivo co-stimulated autologous T-cells after autotransplantation for myeloma. The median age was 56 (range 38–71), 67% were male, 20% were African-American, 22% had IgA paraproteins, 11% had del 13 or complex karyotypes and the median β2m level at diagnosis was 3.31 mg/L (range 1.09–73.7). After lymphocyte collections, pts received cyclophosphamide (4.5 g/m2) + G-CSF for stem cell mobilization, and high dose melphalan (200 mg/m2 or 140 mg/m2 for pts ≥ 70) for conditioning. T-cells were cultured for ~12 days with anti-CD3/anti-CD28-immobilized immunomagnetic beads + IL-2 supplementation (100 units/ml). During a run-in phase, 12 pts received co-stimulated T-cells post-transplant ( day +12) alone. In a second phase, 42 pts who participated in a 2 x 2 randomization, received T-cells either early (day +12) or late (day + 100) after transplant. These pts also received either 2 immunizations with the pneumococcal conjugate vaccine (PCV, Prevnar) at days +30, +90 or 3 immunizations (prior to T-cell collection, at days + 30, + 90) to test immune responses to a well-defined antigen. 42 pts received PCV immunizations with no grade 3/4 adverse events. Anti-pneumococcal antibody responses developed in 51% of 31 pts tested thus far. Details of these studies will be presented separately. 52 pts received a mean dose of 8.04 x 109 costimulated T-cells (range 1.6–11). Infusion-related adverse effects included grade I–II rigors/chills (40%), grade I–II facial/upper body rashes (12%) at a median of 13 days after T-cells, grade I cardiovascular events (10%), grade I–III hypoxia (5%), grade II fever (5%), and 1 episode of DVT. At T-cell harvesting, the mean % of CD3 + cells in culture was 94.8%, the mean T-cell doubling level was 4.81 (28-fold expansion). Among the 42 randomized pts, at day + 42 post-transplant ( 30 days after T-cell infusion for the early groups), the median CD4/CD3 count was 462/mcl (range 202–1439) for the early T-cell recipients vs 230/mcl (range 50–915) for the late T-cell recipients (T-cells not yet infused) [P=0.004]. The median CD8/CD3 counts were 1399/mcl (range 465–2810) vs 1084/mcl (range 103–3422) for the early and late T-cell recipients respectively at day +42 [P=0.04]. For clinical responses there were 11 CRs, 22 VGPRs ( 90% reduction in paraprotein levels), 18 PRs (50–90% reductions), 2 pts had no response and 1 pt was unevaluable. 2 pts had delayed reductions in M-protein levels of ~ 50% between day 42 and day 180 or 270. For the entire cohort, the probability of overall survival at 1.5 years was 78% [95%CI 64%–92%]. Infusions of ex-vivo expanded autologous T-cells are well-tolerated and associated with accelerated T-cell recovery early after autotransplantation. This study may provide a platform for combining costimulated T-cells and tumor vaccines in the autograft setting.
BACKGROUND:To date, very little data are available about the nature of tomato allergens. Immunoglobulin E (IgE) cross-reactive profilins have been suggested to account for allergic symptoms in patients suffering from tomato allergy.METHODS:The cDNA of tomato profilin was amplified by reversely transcribed polymerase chain reaction (RT-PCR) from total RNA extracted from ripe tomato fruit. The gene was cloned into the pET101D expression plasmid and the protein was produced in Escherichia coli BL21. Purification was performed via poly-l-proline (PLP) affinity chromatography. IgE reactivity of recombinant tomato profilin was investigated by immunoblot and enzyme-linked immunosorbent assay. IgE-inhibition studies were performed to analyse cross-reactivity with other profilins. To determine the allergenic activity of the recombinant protein, basophil histamine release assays using sera of patients with adverse reactions to tomato were performed.RESULTS:Profilin was identified as a new minor allergen in tomato fruits. The recombinant tomato profilin comprises 131 amino acids and high sequence identity to other allergenic food and pollen profilins. It was shown to be IgE-reactive with a prevalence of 22% (11/50) in tomato-allergic patients. In patients with tomato allergy and multiple sensitization to other foods and birch pollen, IgE directed against tomato profilin showed a strong cross-reactivity with profilins from plant food sources and birch pollen. The tomato profilin was able to induce mediator release from human basophils.CONCLUSION:The tomato profilin is a minor allergen in tomato fruit. Thus, it shows biological activity, as confirmed by in vitro histamine release assays with human basophils and thereby has the potential to account for clinical symptoms in tomato-allergic patients.
BACKGROUND The clinical relevance of IgE specific for cross-reactive carbohydrate determinants (CCDs) has been a matter of controversy. Until now, no convincing experiments have been performed to test the biologic significance of individual multivalent allergens that carry multiple carbohydrate epitopes. OBJECTIVE We sought to contribute to the understanding of the role of CCD-specific IgE antibodies and to study whether CCD-specific IgE antibodies are able to activate basophils using different multivalent glycoproteins as antigens. METHODS Purified natural tomato beta-fructofuranosidase (nLyc e 2) and rLyc e 2.02 expressed in Escherichia coli were compared by means of histamine release tests. In addition, native and deglycosylated horseradish peroxidase and a neoglycoprotein consisting of a defined glycopeptide (Manalpha1-6[Xylbeta1-2]Manbeta1-4GlcNAcbeta1-4[Fucalpha1-3]GlcNAc) coupled to BSA were used in histamine release assays using stripped basophils from normal donors resensitized with IgE from CCD-reactive patients with food allergy to tomato. RESULTS Ten CCD-positive and 2 CCD-negative sera from patients with tomato allergy underwent histamine release testing by using the glycoproteins and nonglycosylated controls as antigens, respectively. All sera induced histamine release with tomato extract (up to 100%), confirming the allergic status of the donors. Four of the CCD-positive sera induced releases ranging from 12% to 82% with all of the glycoproteins but not with the nonglycosylated or monovalent controls. All other sera showed no response or only very weak response to the glycoproteins. CONCLUSION Approximately one third of the CCD-positive sera from patients with tomato allergy have biologically relevant CCD-specific IgE antibodies. Therefore the general claim that CCD-specific IgE is clinically irrelevant has to be reconsidered critically. Hence IgE specific for CCDs should be taken into consideration in the diagnosis and therapy of certain allergies. In the subgroup of patients sensitized to CCDs, the use of natural allergens should be preferred over the use of recombinant allergens expressed in prokaryotic organisms.
Until now, only a small amount of information is available about tomato allergens. In the present study, a glycosylated allergen of tomato (Lycopersicon esculentum), Lyc e 2, was purified from tomato extract by a two-step FPLC method. The cDNA of two different isoforms of the protein, Lyc e 2.01 and Lyc e 2.02, was cloned into the bacterial expression vector pET100D. The recombinant proteins were purified by electroelution and refolded. The IgE reactivity of both the recombinant and the natural proteins was investigated with sera of patients with adverse reactions to tomato. IgE-binding to natural Lyc e 2 was completely inhibited by the pineapple stem bromelain glycopeptide MUXF (Man alpha 1-6(Xyl beta 1-2)Man beta 1-4GlcNAc beta 1-4(Fuc alpha 1-3)GlcNAc). Accordingly, the nonglycosylated recombinant protein isoforms did not bind IgE of tomato allergic patients. Hence, we concluded that the IgE reactivity of the natural protein mainly depends on the glycan structure. The amino acid sequences of both isoforms of the allergen contain four possible N-glycosylation sites. By application of MALDI-TOF mass spectrometry the predominant glycan structure of the natural allergen was identified as MMXF (Man alpha 1-6(Man alpha 1-3)(Xyl beta 1-2)Man beta 1-4GlcNAc beta 1-4(Fuc alpha 1-3) GlcNAc). Natural Lyc e 2, but not the recombinant protein was able to trigger histamine release from passively sensitized basophils of patients with IgE to carbohydrate determinants, demonstrating that glycan structures can be important for the biological activity of allergens.