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Biomedical subjects

R K Puri

Publications and source records attributed to R K Puri.

At least 37 records · Page 2Linked to original sources

Overexpressed cell surface interleukin-4 receptor molecules can be successfully targeted for antitumor cytotoxin therapy.

A variety of human solid cancer cell lines and primary cell cultures has been reported to overexpress high-affinity receptors (R) for interleukin-4 (IL-4), a pleiotropic immunoregulatory cytokine. The significance of IL-4R expression is not known; however, IL-4 is able to upregulate adhesion molecules, inhibit cell proliferation, and mediate signal transduction in tumor cell lines. To target IL-4R, we produced a chimeric protein composed of a circular permuted IL-4 and a mutated form of Pseudomonas exotoxin [termed IL4(38-37)-PE38KDEL or cpIL4-PE]. The recombinant cpIL4-PE was highly cytotoxic to cancer cells, but not toxic to normal B cells, T cells, monocytes, and CD34+, even though these cells express detectable numbers of IL-4R. The cytotoxicity was specific because excess of recombinant IL-4 neutralized the cpIL4-PE effect. To further develop this molecule, in vivo antitumor activity was tested in animal models of human cancer. This agent showed remarkable antitumor activity in AIDS-Kaposi's sarcoma, glioblastoma multiforme, and breast cancer models in immunodeficient animals. cpIL4-PE caused partial or complete regression of established human tumors. Preclinical efficacy and toxicity studies provided a therapeutic window in which this cancer-targeted agent could be used. On the basis of these studies, we initiated a Phase I clinical trial for the treatment of recurrent glioblastoma multiforme. Our preliminary clinical results suggest that cpIL4-PE has antitumor activity against the deadliest form of brain tumors, without detectable toxicity to normal brain tissues. Thus, IL-4 receptors represent novel targets for cancer cytotoxin therapy.

Animals↗

Characterization of tumor vaccines during product development.

The term tumor vaccines encompasses a wide variety of diverse agents capable of interacting with the immune system to produce local inflammation, delayed type hypersensitivity reaction and/or tumor regression and, hopefully, a therapeutic effect. These vaccines may be grouped into the following general areas: (1) Cell-based vaccines such as manipulated tumor cells, activated peripheral blood or bone marrow-derived lymphocytes, dendritic cells or other antigen presenting cells (APC) and gene-modified tumor cells or other cells engineered to express cytokines, growth factors or tumor antigens. (2) Antigen preparations, such as synthetic peptides, purified antigens and tumor cell lysates. (3) Viral and plasmid vectors expressing therapeutic genes. (4) Liposome containing antigen, peptides, plasmids encoding tumor antigens. While no tumor vaccine has been licensed by the FDA, numerous clinical trials are ongoing and some products have advanced to Phase III pivotal stages of development. However, as with many novel products, major regulatory and scientific issues associated with clinical use of tumor vaccines remain to be addressed. In this paper, we address issues associated with different types of tumor vaccines and provide recommendations for the characterization of these vaccines at various stages of development.

Cancer Vaccines↗

Sensitization of cancer cells to interleukin 13-pseudomonas exotoxin-induced cell death by gene transfer of interleukin 13 receptor alpha chain.

We have demonstrated that primary interleukin 13 (IL-13) binding protein IL-13 receptor (IL-13R) alpha chain plays an important role in IL-13 binding and internalization in the IL-13R system. Although IL-13R alpha chain is expressed on many cancer cell lines, some cancer types do not express or express low levels of this receptor chain. Consequently, these cells show no or low sensitivity to the cytotoxic effect of a recombinant chimeric protein composed of IL-13 and a mutated form of a Pseudomonas exotoxin, IL13-PE38QQR. Here we demonstrate that pancreatic cancer, renal cell carcinoma, head and neck cancer, and glioblastoma cell lines that were genetically altered to express high levels of IL-13R alpha chain increase their binding affinity for IL-13, and increase their sensitivity to IL13-PE38QQR by at least 6-fold to 1000-fold compared with mock-transfected control cells. This observation was made by protein synthesis inhibition assay and confirmed by clonogenic assay. Our studies provide a proof of principle for a novel strategy for cancer therapy that combines gene transfer and targeted cytotoxin therapy.

ADP Ribose Transferases↗

Interleukin-13 fusion cytotoxin as a potent targeted agent for AIDS-Kaposi's sarcoma xenograft.

Clinically advanced and rapidly progressive AIDS-associated Kaposi sarcoma (AIDS-KS) tumors require an aggressive tumor-directed therapy. We have observed that AIDS-KS cells express high levels of receptors for immune regulatory cytokine, interleukin-13 (IL-13). Two tumorigenic AIDS-KS cell lines, KS Y-1 and KS-imm, expressed 4560 and 9480 IL-13 binding sites per cell with an affinity (kd) of approximately 0.9 and 3.7 nmol/L, respectively. IL-13 cytotoxin IL13-PE38QQR, consisting of human IL-13 and a derivative of Pseudomonas exotoxin, is specifically cytotoxic to KS tumor cells. Systemic and loco regional administration of IL13-PE38QQR in immunodeficient mice with established human KS tumors produced remarkable antitumor activity. Three intratumoral (IT) injections of IL-13 toxin (250 microg/kg per dose) on alternate days (qod) or 5 daily (qd) IT injections with lower doses (50 or 100 microg/kg per dose) resulted in a complete regression of established subcutaneous tumors in most animals. Daily IT treatment with 250 microg/kg of IL-13 toxin in another KS-derived cell line also produced complete responses. Twice daily intraperitoneal injections of IL13-PE38QQR (25 or 50 microg/kg per dose) for 10 days (total injections = 20) also completely eradicated KS Y-1 tumors. Intravenous administration of IL13-PE38QQR also suppressed tumor growth; however, complete responses were not observed. All animals tolerated the therapeutic doses of IL-13 toxin without any visible signs of toxicity. The efficacy of receptor-directed IL13-PE38QQR therapy in mice warrants further exploration of this drug for AIDS-KS treatment.

ADP Ribose Transferases↗

Structure, function, and targeting of interleukin 4 receptors on human head and neck cancer cells.

Despite advances in diagnosis and treatment, survival rates for patients with head and neck cancer have remained unchanged for the last 30 years. In an attempt to develop novel therapeutic agents, we have observed that a variety of murine and human carcinoma cells expresses high levels of receptors for interleukin 4 (IL-4) in vitro and in vivo. Here, we demonstrate that 17 head and neck cancer cell lines also express surface IL-4 receptors (IL-4R) and IL-4 binds to IL-4R on one cell line studied with low affinity ((k)d = 37.9 +/- 0.4 nM). The investigation of the subunit structure of IL-4R demonstrated that head and neck cancer cell lines expressed mRNA for IL-4R beta chain (also known as IL-4R alpha) and IL-13R alpha' chain (also known as IL-13R alpha1). However, no cell line expressed IL-2R common gamma-chain, which is known to be shared with IL-4R in immune cells. IL-4R is functional because IL-4 strongly induced activation of signal transducers and activators of transcription 6 (STAT-6) in these cell lines. A fusion protein, IL4(38-37)-PE38KDEL, containing translocation and enzymatic domains of Pseudomonas exotoxin and a circularly permuted human IL-4 was found to be highly and specifically cytotoxic to IL-4R-positive head and neck cancer cells, as determined by protein synthesis inhibition assay and confirmed by clonogenic assay. IL4(38-37)-PE38KDEL induced DNA fragmentation and condensation of nuclei indicative of apoptotic cell death. These results establish uniform expression of IL-4R on head and neck cancer cell lines and IL-4 toxin IL4(38-37)-PE38KDEL as a novel therapeutic agent for the possible treatment of human head and neck cancers.

Apoptosis↗

Conversion of interleukin-13 into a high affinity agonist by a single amino acid substitution.

We created a novel mutated form of human interleukin-13 (IL-13) in which a positively charged arginine (R) at position 112 was substituted to a negatively charged aspartic acid (D). This mutant, termed IL-13R112D, was expressed in Escherichia coli and purified to near homogeneity. IL-13R112D was found to be a potent IL-13 agonist with 5-10-fold improved binding affinity to IL-13 receptors compared with wild-type IL-13 (wtIL-13). The conclusion of IL-13 agonist activity was drawn on the basis of approximately 10-fold improved activity over wtIL-13 in several assays: (a) inhibition of CD14 expression in primary monocytes; (b) proliferation of TF-1 and B9 cell lines; and (c) activation of STAT6 in Epstein-Barr virus-immortalized B cells, primary monocytes, and THP-1 monocytic cell line. Furthermore, mutant IL-13R112D neutralized the cytotoxic activity of a chimeric fusion protein composed of wtIL-13 and a Pseudomonas exotoxin A (IL-13-PE38) approximately 10 times better than wtIL-13. Based on these results, it was concluded that IL-13R112D interacts with much stronger affinity than wtIL-13 on all cell types tested and that Arg-112 plays an important role in the interaction with its receptors (IL-13R). Thus, these results suggest that IL-13R112D may be a useful ligand for the study of IL-13 interaction with its receptors or, alternatively, in designing specific targeted agents for IL-13R-positive malignancies.

Amino Acid Sequence↗

Interleukin-13 receptor alpha chain: a novel tumor-associated transmembrane protein in primary explants of human malignant gliomas.

Human malignant glioma cell lines express high levels of interleukin-13 receptor (IL-13R). However, the subunit structure of this receptor in primary brain tumor cells is not known. Herein, we examined the subunit composition of IL-13R by analyzing the expression of four different putative subunits of IL-13R complex in 25 primary explants of malignant brain tumors. Reverse transcription-PCR (RT-PCR) of RNA from these tumor cells, normal astrocytes, and normal brain tissue showed that transcripts of IL-13R alpha chain were present in greater abundance in malignant glioma cells compared with normal astrocytes or normal brain tissues. The transcripts for two other chains (e.g., IL-13Ralpha' and IL-4Rbeta), on the other hand, yielded similar PCR positivity in brain tumors as well as in normal samples, whereas transcripts for gammac chain were absent in all brain tumor cells and normal tissues. The specificity of RT-PCR products for these genes was confirmed by oligo liquid hybridization analysis using a radiolabeled sequence-specific internal probe. Indirect immunofluorescence studies for different receptor chains confirmed the RT-PCR results and demonstrated a striking difference in the level of expression of IL-13Ralpha protein between normal astrocytes and malignant astrocytoma cells. These studies establish the IL-13Ralpha subunit as a novel tumor-specific protein that may be useful as a tumor marker, a target for cytotoxin/immunotoxin, or alternatively, a tumor-associated antigen for active, specific immunotherapy.

Adult↗

Preclinical studies with IL-13PE38QQR for therapy of malignant glioma.

To develop novel therapeutic agents for the treatment of brain tumors, we have been investigating the expression of unique tumor-associated receptors or antigens on the tumor cell surface. About six years ago, we discovered that human solid tumor cell lines, including human malignant glioma, express high- to intermediate-affinity receptors (R) for a Th2 cell-derived cytokine, interleukin-13 (IL-13). Analysis of the subunit composition of IL-13R in primary explants of malignant glioma cells has demonstrated that IL-13R is composed of three different chains (IL-13R alpha 1, IL-13R alpha 2 and IL-4R alpha, also known as IL-13R alpha', alpha and IL-4R beta, respectively) and that IL-13R alpha 2 chain is overexpressed on these cells. Normal brain tissues express IL-13R alpha 1 and IL-4R alpha chains, but show only marginal expression of IL-13R alpha 2 chain. Thus IL-13R alpha 2 chain appears to be overexpressed on glioma cells and may serve as a novel tumor biomarker or a target for receptor-directed therapeutic agents for brain tumors. To target IL-13 receptors, we have produced a recombinant fusion protein composed of IL-13 and a mutated form of Pseudomonas exotoxin (PE). This cytotoxin, termed IL-13PE38QQR or IL-13 cytotoxin, is highly and specifically cytotoxic to a spectrum of human glioma cell lines. In preclinical models of human glioblastoma tumors growing subcutaneously in immunodeficient mice, IL-13 cytotoxin has been found to have remarkable antitumor activity. The data that emerged from these studies reveal that localized or systemic administration of IL-13 cytotoxin can produce nontoxic drug levels and that IL-13 cytotoxin is potently effective against established glioblastoma tumors. On the basis of these and other preclinical studies, we have begun a phase I clinical trial using IL-13PE38QQR for therapy of recurrent malignant glioma.

Journal Article↗

IL-4 receptor-directed cytotoxin for therapy of AIDS-associated KS tumors.

AIDS-associated Kaposi's sarcoma (AIDS-KS) represents one of the most common malignancies associated with human immunodeficiency virus infection. To target effective therapeutic agents, we have discovered that AIDS-KS cells express high-affinity receptors for interleukin-4 (IL-4), a pleiotropic immune regulatory cytokine. Molecular studies have revealed that AIDS-KS cells express type II IL-4 receptors, in which IL-4 forms a productive complex with primary IL-4 binding protein (IL-4R beta, also known as IL-4R alpha) and a shared subunit between IL-4 and IL-13R systems (IL-13R alpha', also known as IL-13R alpha 1). A recombinant fusion protein composed of IL-4 and a mutated form of a powerful bacterial toxin called Pseudomonas exotoxin (PE)--the fusion protein is termed IL4(3837)-PE38KDEL or cpIL4-PE--was found to be highly and specifically cytotoxic to AIDS-KS cells in vitro. Normal human immune cells (e.g., resting T and B cells and monocytes) or endothelial cells, a possible precursor of AIDS-KS, expressed low numbers of IL-4R and showed little or no sensitivity to cpIL4-PE. Administration of cpIL4-PE in nude mice with established subcutaneously growing AIDS-KS tumors produced remarkable antitumor activity in a dose-dependent manner with the highest dose exhibiting complete responses without any visible toxicity. KS tumors produced metabolic changes including cachexia, hypoglycemia and lymphopenia, all of which were prevented by cpIL4-PE treatment. These studies indicate that cpIL4-PE is a promising experimental therapeutic agent for treatment of AIDS-KS.

Journal Article↗

Intratumoral administration of recombinant circularly permuted interleukin-4-Pseudomonas exotoxin in patients with high-grade glioma.

Human glioblastoma but not normal brain cells express numerous receptors for the cytokine interleukin (IL)-4. To target these receptors, we have investigated the safety and activity of directly infusing IL-4(38-37)-PE38KDEL, a chimeric protein composed of circularly permuted IL-4 and a truncated form of Pseudomonas exotoxin (PE), into recurrent malignant high-grade gliomas. IL-4(38-37)-PE38KDEL (IL-4-toxin) was infused over a 4-8-day period into gliomas of nine patients by one to three stereotactically placed catheters. No apparent systemic toxicity occurred in any patient. The infusion of IL-4-toxin in six of nine patients showed glioma necrosis as evidenced by diminished gadolinium enhancement on magnetic resonance imaging. Seven of nine patients underwent craniotomy because of increased intracranial pressure at 16-101 days after the beginning of infusion. In six of these seven patients, partial-to-extensive tumor necrosis with edema was confirmed pathologically. No histological evidence of neurotoxicity to normal brain was identified in any patient. Two patients were not operated on; by magnetic resonance imaging, one showed mottled gadolinium enhancement, and the other showed extensive necrosis of tumor leading to complete remission; this patient remains disease-free > 18 months after the procedure. We conclude that direct glioma injection of IL-4(38-37)-PE38KDEL is safe without systemic toxicity. Local toxicity seemed attributable mainly to tumor necrosis or occasionally to the volume of infusion. Histological evidence of toxicity to normal brain was not observed and in many patients, could be pathologically excluded. Additional patients are being treated to determine the maximal tolerated concentration and volume of IL-4(38-37)-PE38KDEL.

Adult↗

Human breast carcinoma cells express type II IL-4 receptors and are sensitive to antitumor activity of a chimeric IL-4-Pseudomonas exotoxin fusion protein in vitro and in vivo.

BACKGROUND: Human breast carcinoma cell lines express high-affinity interleukin-4 receptors (IL-4R). We examined the expression and structure of these receptors on primary and cultured breast carcinoma cell lines and normal breast epithelial cells. We also tested the antitumor activity in vitro and in vivo of a fusion protein comprised of circular permuted IL-4 and truncated Pseudomonas exotoxin, termed IL-4(38-37)-PE38KDEL. MATERIALS AND METHODS: Eight different primary cell cultures and cell lines of human breast carcinomas were examined for the expression of IL-4R by radiolabeled binding, reverse transcription polymerase chain reaction (RT-PCR) and Northern analyses, and subunit structure by crosslinking studies. The antitumor activity of IL-4 toxin was tested in vitro by cytotoxicity assays and in vivo in a xenograft model in immunodeficient animals. RESULTS: 125I-IL-4 specifically bound to primary cell cultures and cell lines with a Kd ranging between 0.2 and 1 nM. Breast tumor cells were found to express IL-4R beta and IL-13R alpha' chains, but not IL-2R gamma c chain. These cells were highly sensitive to the cytotoxic effect of IL-4(38-37)-PE38KDEL. The IC50 (concentration inhibiting protein synthesis by 50%) ranged between approximately 0.005-1.5 nM. A normal breast epithelial cell culture was not sensitive to the cytotoxic activity of IL-4(38-37)-PE38KDEL. MDA-MB231 human breast carcinoma cell line formed a rapidly growing tumor in nude mice. Intratumor and intraperitoneal administration of IL-4(38-37)-PE38KDEL caused a dose dependent regression of established tumors. A control toxin, anti-Tac(Fv)-PE38KDEL, targeted to the IL-2 receptor alpha chain did not cause regression of these tumors. CONCLUSIONS: These results suggest that IL-4(38-37)-PE38KDEL may be a useful agent for targeting of IL-4 receptor positive human breast carcinomas and further studies should be performed to explore fully its potential.

ADP Ribose Transferases↗

Kinetic analysis of high affinity forms of interleukin (IL)-13 receptors: suppression of IL-13 binding by IL-2 receptor gamma chain.

Interleukin-13 (IL-13) is a pleiotropic cytokine that controls growth, differentiation, and apoptosis of immune and tumor cells. To understand the mechanisms of interaction between IL-13 and IL-13 receptors (IL-13R), and the role of the IL-2 receptor common gamma chain (gammac) in IL-13 binding and processing, we have examined IL-13 binding kinetics, dissociation/shedding, and internalization in renal cell carcinoma (RCC) cell lines. We observed a new phenomena in that the apparent rate of association, but not the dissociation, was strongly related to IL-13 concentration. We also observed cooperativity phenomena in IL-13 and IL-13R interaction in control RCC (MLneo) cells, but not in cells transfected with gammac chain (MLgammac). The number of IL-13 binding sites, the effective rate of ligand association, and the dissociation rate constants were reduced in gammac-transfected cells compared to control RCC cells. Two forms of IL-13R were detected in these cell lines, which differed in the kinetics of endocytosis and dissociation/exocytosis. Only a small fraction of bound receptors (14-24%) was rapidly internalized and the same fraction of the ligand-receptor complexes was shed and/or dissociated. The expression of gammac chain did not change any of these processes. A two independent high-affinity and moderate-affinity receptor model fit the kinetic observations in gammac-transfected cells. However, in control cells, the binding kinetics were more complicated. A mathematical model that fit a set of kinetic and steady state data in control cells was selected from a set of possible models. This best-fit model predicts that 1) two different IL-13R are expressed on the cell membrane, 2) a minor fraction of IL-13R exist as microclusters (homodimers and/or heterodimers) without exogenous IL-13, 3) high morphological complexity of the gammac-negative control cell membrane affects the cooperativity phenomena of IL-13 binding, and 4) a large number of co-receptor molecules is present, which helps keep the ligand on the cell surface for a long period of time after fast IL-13 binding and provides a negative control for ligand binding via production of the high affinity inhibitor bound to IL-13. Our data demonstrate that gammac exerts dramatic changes in the kinetic mechanisms of IL-13 binding.

Binding, Competitive↗

Interleukin-4 receptor-directed cytotoxin therapy of AIDS-associated Kaposi's sarcoma tumors in xenograft model.

The elusive and enigmatic origin of AIDS-associated Kaposi's sarcoma (AIDS-KS) makes it a complex tumor and therefore difficult to treat. Here we demonstrate that AIDS-KS cells express surface interleukin-4 (IL-4) receptors, and that IL-4 toxin (IL-4(38-37)-PE38KDEL) is specifically cytotoxic to these cells. Intratumoral, intraperitoneal and intravenous administration of IL-4 toxin in nude mice with established subcutaneous AIDS-KS tumors caused considerable anti-tumor activity in a dose-dependent manner, with highest dose producing durable complete responses. Metabolic changes, including cachexia and lymphopenia, induced by KS tumors were prevented by IL-4 toxin treatment. This report establishes IL-4(38-37)-PE38KDEL as an experimental therapeutic agent for the treatment of AIDS-KS.

ADP Ribose Transferases↗

Sharing of receptor subunits and signal transduction pathway between the IL-4 and IL-13 receptor system.

In this review, we summarize the subunit structure of the interleukin (IL)-4 and IL-13 receptor system and the molecular mechanism of signals through the cytokine receptor systems. We have demonstrated that two different forms of IL-4R exist, classical and alternative. Classical IL-4R is predominantly expressed in hematopoietic cells and consists of IL-4R p140 (beta) and IL-2R gamma (gamma c) chains. The alternative form of IL-4R is predominantly expressed in nonhematopoietic cells and consists of IL-4R beta and IL-13R alpha' chains. Moreover, the alternative form of IL-4R is also used as a functional component in the IL-13R complex. For signal transduction through IL-4R and IL-13R, we have demonstrated that in nonhematopoietic cells, Janus protein tyrosine kinase (JAK) 2 is phosphorylated and activated instead of JAK3 tyrosine kinase. While JAK3 is required for signal transducer and activator of transcription-6 (STAT6) activation in hematopoietic cells, we recently demonstrated that in nonhematopoietic cells JAK2 is required for STAT6 activation for the alternative form of IL-4R. Thus, a major difference exists between hematopoietic and nonhematopoietic cells with regard to structure and signal transduction through the IL-4R and IL-13R systems.

Hematopoietic System↗

Complete regression of established human glioblastoma tumor xenograft by interleukin-4 toxin therapy.

No curative therapy is available for malignant gliomas. We have discovered that human glioblastoma cells express high affinity interleukin-4 receptor (IL-4R), which is an attractive target for receptor-directed IL-4 toxin therapy. The IL-4 toxin, IL-4(38-37)-PE38KDEL, is a fusion protein containing translocation and enzymatic domains of Pseudomonas exotoxin and a circularly permuted human IL-4. The IL-4 toxin binds specifically to the IL-4R and is highly cytotoxic to glioblastoma cells, as determined by clonogenic and protein synthesis inhibition assays. Intratumoral administration of the IL-4 toxin given on alternate days for 3-4 doses into U251 glioblastoma flank tumors in nude mice, showed a complete remission of small (approximately 13 mm3) and large (approximately 60 mm3) tumors in all animals, without any evidence of toxicity. A significant antitumor activity was also observed when the IL-4 toxin was administered via i.p. and i.v. routes. These results demonstrate that the IL-4 toxin may be a new therapeutic drug for the treatment of human glioblastoma. Therefore, we have begun a Phase I clinical trial with IL-4(38-37)-PE38KDEL for treatment of human glioblastoma.

ADP Ribose Transferases↗

Novel way to increase targeting specificity to a human glioblastoma-associated receptor for interleukin 13.

Human brain cancers (gliomas) overexpress large numbers of a receptor for interleukin 13 (IL13), making this receptor an attractive target for anti-glioma therapies. We have recently proposed that the glioma-associated IL13 receptor is different from the one expressed on some hemopoietic and somatic cells. In an attempt to identify an even more glioma-specific target, we have used an antagonist of a related cytokine, IL4, which neutralizes the physiological effects of both IL13 and IL4 on normal cells. Here we demonstrate that the IL4 antagonist also counteracts the action of cytotoxins targeted to the IL13 receptor on normal human cells. Importantly, the IL4 antagonist does not inhibit IL13-based cytotoxins on glioma cells at all. Thus, the IL13 receptor on glioma cells can be categorized as tumor-specific in the presence of an IL4 antagonist. We conclude that IL13 receptor-directed cytotoxins can be delivered to glioma cells without being cytotoxic to normal cells.

ADP Ribose Transferases↗

Interleukin-13 receptor alpha' but not alpha chain: a functional component of interleukin-4 receptors.

In hematopoietic cells, interleukin-2 receptor (IL-2R) gamma chain (termed gammac) is shown to be a component of the IL-4R system, whereas in nonhematopoietic cells, gammac is absent and it is not a component of the IL-4R system. Here, we show that the IL-13R alpha' chain (termed IL-13Ralpha') but not the IL-13R alpha chain (termed IL-13Ralpha) can substitute for gammac and, thus, IL-13Ralpha' forms a novel component of the IL-4R system. This conclusion was drawn on the basis of chemical cross-linking, immunoprecipitation, the ability of IL-13Ralpha' but not IL-13Ralpha to augment IL-4 binding affinity, and the requirement of IL-13Ralpha' for IL-4-induced STAT6 activation in Chinese hamster ovary (CHO) cells transfected with various receptor subunits. Cotransfection of IL-4 receptor p140 (termed IL-4Rbeta) with gammac or IL-13Ralpha' increased IL-4 binding affinity and allowed for STAT6 activation in response to IL-4. However, cotransfection of all three chains did not further increase IL-4 binding or alter the extent of STAT6 activation suggesting that all three chains together do not seem to participate in IL-4 function. Instead, IL-4Rbeta heterodimerizes with gammac or IL-13Ralpha' and mediates STAT6 activation. Cotransfection of IL-4Rbeta with IL-13Ralpha neither increased IL-4 binding affinity nor allowed for STAT6 activation in response to IL-4 indicating that IL-13Ralpha does not convert binding affinity nor transmit signals for IL-4. Because IL-4 phosphorylates JAK1 and JAK2 tyrosine kinases in nonhematopoietic cells, we investigated whether JAK1 and JAK2 are required for IL-4-induced STAT6 activation in various transfectants. Cotransfection experiments with different chains of IL-4R and kinase-deficient JAK1 and JAK2 mutants in CHO cells showed that JAK1 and JAK2 are required for optimal activation of STAT6 in the alpha' beta transfectant but only partially in the beta gammac transfectant. Taken together, our results show that IL-13Ralpha' is a novel functional component of the IL-4R system and that JAK1 and JAK2 mediate IL-4-induced optimal activation of STAT6 in nonhematopoietic cells.

Animals↗

Novel anti-brain tumor cytotoxins specific for cancer cells.

The vast majority of brain cancers (gliomas) express a receptor (R) for interleukin 13 (IL13). In order to achieve specific targeting of the IL13R in gliomas, we have mutagenized human (h) IL13. The mutation was made to alter IL13 interaction with the shared functional IL13/4 normal tissue receptor, but not with the glioma-associated receptor. We have thus produced hIL13.E13K (glutamic acid at position 13 changed to lysine) and fused it to derivatives of Pseudomonas exotoxin A. The hIL13.E13K-based cytotoxins are less active on normal cells and thus less toxic, and are better antitumor agents compared with the cytotoxins containing nonmutagenized hIL13.

Antineoplastic Agents↗