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Biomedical subjects

D J Buchsbaum

Publications and source records attributed to D J Buchsbaum.

At least 73 records · Page 4Linked to original sources

Radiotherapy in mice with yttrium-90-labeled anti-Ly1 monoclonal antibody: therapy of the T cell lymphoma EL4.

Yttrium-90 is a potent beta-emitting radionuclide with potential for therapy of lymphoma. A monoclonal antibody against Ly1, the murine homologue of human CD5, was labeled with 90Y and found to selectively bind to Ly1-positive, radiation-sensitive, EL4 mouse lymphoma cells. When tested in this aggressive model of T cell lymphoma, in vivo studies in C57BL/6 mice showed that a single 140-microCi i.p. dose of 90Y-anti-Ly1, given 1 day after i.v. injection of a lethal dose of EL4 cells, resulted in significant but transient improvement in survival. Protection was selective, since a 90Y-labeled irrelevant control antibody did not prolong survival. Biodistribution studies showed that protection was likely limited by inadequate localization of labeled antibody to tumor. Importantly, labeled anti-Ly1 specifically localized in the immunological tissue (spleen and thymus) and lowered the WBC count, perhaps limiting the tolerated dose. Myelosuppression, which is considered one of the major side effects associated with 90Y usage, was not a lethal complication, since WBC counts recovered in mice given a 140-microCi dose of 90Y-anti-Ly1 without EL4 cells and 100% of these animals survived. The maximum tolerated dose was less than 200 microCi. Despite the high localization of 90Y-anti-Ly1 in spleen, splenectomies of tumor-injected mice did not improve the antitumor efficacy of radiolabeled antibody. Further evidence for inadequate delivery of radionuclide to tumor was shown when external total-body irradiation was given to mice given injections of a lethal dose of EL4 tumor cells. Comparison of internal and external irradiation studies indicated that the partially protective effect of 140 microCi 90Y-Ly1 was equivalent to external radiation of only 100-200 cGy. Because this model reflects the current clinical limitations of radiolabeled antibodies for therapy, including partial antitumor efficacy, delivery of labeled anti-T cell antibodies to the immune system, and low maximum tolerated dose, the model may be useful for examining strategies which could increase the tolerated dose and therapeutic efficacy.

Animals↗

Radiotherapy in mice with yttrium-90-labeled anti-Ly1 monoclonal antibody: therapy of established graft-versus-host disease induced across the major histocompatibility barrier.

A monoclonal antibody recognizing Ly1, the murine homologue of CD5, was labeled with 90Y. In vivo biodistribution studies showed that 90Y-anti-Ly1 selectively localized in lymphoid tissue. Groups of B10,BR mice (H-2k) were lethally irradiated and given major histocompatibility complex-disparate C57BL/6 (H-2b) bone marrow and spleen cells to induce graft-versus-host disease (GVHD). Eight days later, mice with active GVHD were administered a single i.p. injection of 50 microCi90Y-anti-Ly1. Fifty % of these mice were alive 2 months after treatment. Long term (greater than 4-month) survival was significantly higher than in phosphate-buffered saline-treated mice. Survival was slightly improved in groups of mice receiving control irrelevant antibody labeled with 90Y or mice receiving free 90Y. However, survival in these groups was not significantly different from the phosphate-buffered saline-treated control group. The improved survival was supported by data showing improved mean animal weight. An anti-GVHD effect was confirmed by histopathological analysis. Unlabeled anti-Ly1 monoclonal antibody at comparable doses to 90Y-anti-Ly1 was not effective. Animals that died following 50-microCi treatment did not die of radiation toxicity, since all mice receiving 50 microCi 90Y-anti-Ly1 plus syngeneic bone marrow survived. The window of therapy was narrow in our studies, since 100 microCi 90Y-anti-Ly1 did not confer any survival advantage. Animals that did survive long term were studied for evidence of alloengraftment and found to have high levels of circulating donor mononuclear cells. 90Y-Anti-Ly1 localized in the spleen, thymus, liver, kidney and bone marrow but not in the bowel, lung, muscle, or skin. Animals given similar doses of free 90Y, 90Y-anti-Ly1, or labeled irrelevant antibody eliminated free 90Y fastest, followed by 90Y-anti-Ly1 and then labeled irrelevant antibody. Hematological analysis of peripheral blood from 90Y-anti-Ly1-treated mice showed reduction in total WBC counts, absolute lymphocyte numbers, and absolute neutrophil numbers on day 24 after treatment. Myelosuppression recovered by day 38. These findings indicate that Ly1-positive cells are involved in the effector phase of GVHD and that radiolabeled antibodies may be useful as cell-specific probes for studying the GVHD network. 90Y-Anti-Ly1 protected recipients long term from lethal GVHD, and the fact that it had a rather remarkable inhibitory and selective effect on the lymphoid system of mice suggests that these agents may have broader application in the field of transplantation.

Animals↗

18F-2-deoxy-2-fluoro-D-glucose uptake into human tumor xenografts. Feasibility studies for cancer imaging with positron-emission tomography.

The positron-emitting glucose analogue 18F-2-fluoro-2-deoxy-d-glucose (FDG) was evaluated for its accretion into the following subcutaneous human tumor xenografts in nude mice: B-cell lymphoma (Namalwa or Raji), ovarian carcinoma (HTB77), colon cancer (SW948), choriocarcinoma (BEWO), bladder cancer (UM-UC-2), renal cell carcinoma (UM-RC-3), neuroblastoma (Mey), melanoma (HTB63), and small cell lung carcinoma (NCI69). Two hours postinjection, tumor uptakes ranged from 0.027 (colon cancer) to 0.125% kg injected dose/g (melanoma); and was greater than 0.085 in the Namalwa lymphomas and the renal cell carcinomas. Tumor-blood ratios of up to 23:1 were seen 2 hours postinjection (melanoma) with a mean tumor-blood ratio for all tumors of 12.3 +/- 1.8. Uptake in the other tumors was intermediate. When evaluated, tumor uptake was slightly greater at 1 than at 2 hours postinjection, although target-background ratios were generally higher at 2 hours postinjection. This compound, FDG, may have broad applicability as a tracer for positron-emission tomographic imaging of many human malignancies.

Animals↗

Effect of backscatter on cell survival for a clinical electron beam.

Relative to homogeneous scattering conditions in tissue-like materials, a large increase in dose for clinical electron beams can occur upstream from high atomic number heterogeneities due to backscattered electrons. The degree of this dose increase is uncertain due to the unknown energy distribution of the backscattered electron fluence. Cell survival after irradiation was studied for Chinese hamster cells at the depth of maximum dose in a clinical 6 MeV electron beam under normal scattering conditions and with the addition of a lead backscatter. No significant difference in cell survival was found between the two geometries when the dose increase due to the backscattered electron fluence was approximated by the product of the measured ionization and the normal scattering stopping power ratio.

Animals↗

Comparative binding and preclinical localization and therapy studies with radiolabeled human chimeric and murine 17-1A monoclonal antibodies.

Murine MoAb 17-1A is an IgG2a antibody reactive with a gastrointestinal cancer-associated cell surface antigen. Human-mouse chimeric 17-1A MoAbs were constructed in which the murine variable region of 17-1A was joined with human IgG1, IgG2, IgG3, and IgG4 constant regions. Human-mouse IgG1, IgG2, and IgG4 chimeric antibodies were compared with the parental murine antibody and its F(ab')2 fragments for their ability to bind to colon carcinoma cells in vitro, for their blood clearance in normal nude mice, and for their localization and tumor growth inhibition of colon carcinoma xenografts in nude mice. Indirect immunofluorescence experiments with fluorescein-conjugated goat anti-mouse or goat anti-human antibody verified that the substitution of human constant regions in the chimeric MoAbs did not significantly alter the ability of the murine variable region to bind to colon adenocarcinoma cell lines (LS174T, SW948, and C0112). The immunoreactivities of 125I-labeled murine and chimeric 17-1A MoAbs measured in a live cell-binding assay with LS174T, SW948, and C0112 cells revealed that chimeric IgG1, IgG4, and 17-1A F(ab')2 were comparable to murine 17-1A while chimeric IgG2 showed lower binding. The blood half-lives of 125I-labeled murine 17-1A, its F(ab')2 fragments, and chimeric IgG1, IgG2, and IgG4 in normal nude mice determined by serial eye bleeding were 7.5, 0.5, 5.2, 6.9, and 1.9 days, respectively. In biodistribution studies at 4 days after injection of 125I-labeled MoAbs in nude mice bearing LS174T tumors, chimeric IgG1 had the highest tumor concentration of 20.5% injected dose/g with a tumor/blood ratio of 3.2. 131I-labeled murine 17-1A administered in a single injection of 300 microCi or 3 injections of about 300 microCi each to nude mice bearing established LS174T tumors inhibited tumor growth, whereas a comparable amount of unlabeled murine 17-1A did not inhibit tumor growth. 131I-labeled chimeric IgG1 MoAb showed a similar level of tumor growth inhibition. The results of the present study indicate that 17-1A chimeric IgG1 antibody may be the best choice for clinical radioimmunodetection and radioimmunotherapy studies.

Animals↗

A comparison of 131I-labeled monoclonal antibody 17-1A treatment to external beam irradiation on the growth of LS174T human colon carcinoma xenografts.

Inhibition of growth of LS174T human colon cancer xenografts in athymic nude mice due to 131I-labeled MoAb 17-1A treatment was compared to inhibition due to different single doses of 60Co external radiation. From those data, conditions which produced equivalent radiobiological end points could be identified and compared to dose estimates calculated using a technique analogous to the Medical Internal Radiation Dose (MIRD) Committee formalism. The tumor growth rate in mice injected with a single intraperitoneal administration of 300 microCi of 131I-labeled MoAb was reduced relative to tumor growth in untreated control animals and in mice administered unlabeled MoAb and was found to be similar to the growth rate of tumors given a single 6 Gy dose of 60Co radiation. Furthermore, the growth rate of tumors in mice that received three injections of 300 microCi of 131I-labeled MoAb on days 9, 16 and 28 after tumor cell injection was similar to the growth rate of tumors given a single 60Co dose of 8 or 10 Gy. The biodistribution data for 125I-labeled 17-1A MoAb were used to calculate total doses for the tumor and various normal tissues in animals given a single administration of 131I-labeled 17-1A MoAb. The absorbed radiation dose in tumor was approximately five times higher than in normal tissues. The results of the present study indicate that the tumor growth inhibition produced by the administration of radiolabeled antibody can equal that produced by up to 10 Gy of external beam radiation. In addition, the MIRD calculations allow comparison of this form of low dose radiation to external photon irradiation.

Animals↗

Comparison of antigen expression on normal urothelial cells in tissue section and tissue culture.

Antigenic characterization of urothelial cells cultured from normal adult ureter was performed. These cells were cultured using a simplified isolation and culture technique and a commercially available serum-free medium. The cells growing in these cultures had epithelioid morphology and normal quantities of DNA. The antigen expression on these cultured normal urothelial cells was evaluated using a panel of monoclonal antibodies: 5G6.4, AN43, URO-5, anti-keratin and anti-blood group antibodies, and 425 (anti-epidermal growth factor receptor). Lower levels of anti-A and AN43 binding on cultured cells were observed than are seen on urothelial cells in sections of normal ureter, while the binding of anti-blood group H, 5G6.4, and URO-5 was unchanged. Binding of anti-epidermal growth factor receptor antibody 425 was improved if the cells were grown in medium lacking epidermal growth factor. These results confirm the urothelial origin of these cultured urothelial cells but indicate that some antigenic differences between cultured normal urothelial cells and urothelial cells in situ in the normal ureter exist.

ABO Blood-Group System↗

New trends in the use of radioimmunoconjugates for the therapy of cancer.

Since 1980, there has been intense research in the area of radiolabeled immunoconjugates for the localization and therapy of cancer in both experimental animal models and in humans. This is based on the potential of MoAbs reactive with tumor-associated antigens as specific carriers of radionuclides, toxins, and chemotherapeutic drugs. Even though there has been much progress, a great deal of work and innovation will be required before the use of radiolabeled immunoconjugates becomes an established method for clinical tumor detection and therapy. The greatest problem is the relatively low tumor uptake of radiolabeled MoAbs in humans. This results in relatively high background levels of radioactivity in normal tissues and insufficient radioactivity in the tumor for the detection of small lesions and for therapeutic efficacy. In the future, one can expect the development of new MoAbs with greater specificity for particular tumor types, improvements in radiolabeling procedures, and the use of more effective nuclides than 131I. Biological, physiological, pathological, and dosimetric considerations need to be addressed in detail. With this additional information, it is hoped that the full potential for radiolabeled immunoconjugates will be realized.

Animals↗

A new conjugating agent for radioiodination of proteins: low in vivo deiodination of a radiolabeled antibody in a tumor model.

A new radioiodinating agent, N-(p-[125I]iodophenyl)maleimide, has been synthesized for its potential utility in the radioiodination of monoclonal antibodies and other proteins. The efficiency of incorporation of 125I in the B72.3 antibody by iodine monochloride iodination or by maleimide conjugation was 19% and 43%, respectively. The thyroid uptake following intraperitoneal administration of the two 125I-labeled antibody preparations was evaluated in nude mice implanted with LS174T colon carcinoma xenografts. The iodine monochloride preparation showed substantially greater uptake in the thyroid with values of 2.1% ID at 6 h after injection and reaching a maximum of 4.3% ID after 6 days. In contrast, the maleimide preparation showed a uniformly low uptake in thyroid of 0.1%-0.2% ID. The results of these preliminary studies demonstrate that the N-(p-[125I]iodophenyl)maleimide-labeled monoclonal antibodies showed markedly less (less than 10-fold) uptake of radioiodine in the thyroid, indicating significantly less in vivo deiodination than iodine monochloride-labeled monoclonal antibodies, while retaining some tumor localization in vivo. Studies are in progress to optimize N-(p-[125I]iodophenyl)maleimide radioiodination conditions and to improve the tumor localization.

Animals↗

The role of ricin B chain in the intracellular trafficking of anti-CD5 immunotoxins.

The mAb anti-CD5 was linked to purified ricin A chain (RTA) or intact ricin (Rc) containing B chain to determine the role of ricin B chain in the intracellular trafficking of anti-CD5 immunotoxins (IT). IT were radiolabeled with iodine-125 and then studied for their subcellular compartmentalization in an acute lymphoblastic leukemia T cell line, CEM. Ricin A chain IT was not as toxic to CEM cells as Rc-IT in protein synthesis inhibition assays. This difference was not attributed to differential binding or modulation of the CD5 determinant from the cell surface as measured by FACS analysis. However, we found a relationship between the toxicity of anti-CD5-Rc and anti-CD5-RTA and their ability to traffic to CEM lysosomes. Kinetic analysis of the transfer of radioimmunotoxin to the lysosomes showed that anti-CD5-Rc was trafficked significantly more slowly than anti-CD5-RTA, perhaps due to an extended period of time in the Golgi compartment. The possibility of a Golgi interaction was tested by adding monensin, a carboxylic ionophore that interrupts trafficking through the Golgi, to cells treated with anti-CD5-RTA. The addition of monensin caused anti-CD5-RTA to traffic in a manner identical to anti-CD5-Rc. We conclude that 1) B chain slows trafficking of anti-CD5-Rc to the lysosomes; 2) the rate-limiting step in the toxicity difference between anti-CD5-Rc and anti-CD5-RTA is the rate of transfer to the lysosomes; and 3) trafficking through the Golgi may be important for anti-CD5-IT toxicity.

Animals↗

Cytotoxic effects of anti-CD5 radioimmunotoxins on human tumors in vitro and in a nude mouse model.

An immunoconjugate, consisting of both toxin and radionuclide on the same antibody molecule, was synthesized by cross-linking the phytotoxin ricin to the T101 monoclonal antibody recognizing the CD5 cluster expressed on normal and malignant T-cells. The hybrid molecule was then labeled with iodine-125 by an iodine monochloride procedure. This radioimmunotoxin (RIT), which selectively bound to the CD5-positive CEM human leukemia cell line, was selectively inhibitory to antigen-positive cells in protein synthesis inhibition assays. RIT was only 3.0-7.8-fold less toxic and was 1.1-1.6-fold slower than unlabeled immunotoxin in inhibiting protein synthesis. Because of the radionuclide moiety, the RIT also provided information related to biodistribution and pharmacokinetics. Four days following intratumoral injection, more than 125-fold greater activity was found in CEM tumors implanted in nude mice as compared to normal tissues. The mean blood half-life for RIT was 25.7 h and for radiolabeled antibody, 91.3 h. Intratumoral injections of RIT selectively induced regression of established CEM tumors. To our knowledge, these studies are the first to demonstrate that a single immunoconjugate can combine the advantages of both a catalytic toxin and radionuclide for cancer therapy.

Animals↗

Localization and imaging with radioiodine-labeled monoclonal antibodies in a xenogeneic tumor model for human B-cell lymphoma.

Two MoAbs directed towards human B-cell malignancies have been studied in a preclinical animal model to evaluate their potential for in vivo imaging and therapy of B-cell lymphomas. Anti-B1 reacts with virtually all immunoglobulin-bearing malignancies and non-T acute lymphoblastic leukemia. Anti-J5 reacts with the common acute lymphoblastic leukemia antigen found on non-T acute lymphoblastic leukemia and follicular lymphomas. Anti-T1 which recognizes the CD5 antigen on most T-cell leukemias and lymphomas was used as a control antibody. These monoclonal antibodies were radiolabeled with 125I or 131I by the ICl method. Namalwa (B-cell) and MOLT-4 (T-cell) tumors were grown s.c. in irradiated nude mice. The highest tissue concentration of 125I-labeled anti-J5 in Namalwa-bearing mice was in blood and tumor. The tumor/blood ratio ranged from 0.7-1.2, with the highest ratio 4 days after injection. Pharmacokinetic analysis indicated that the t1/2 beta of anti-J5 from blood and other tissues ranged from 40-50 h, while the t1/2 beta for tumor averaged 65 h. The area under the curve of tumor was 2- to 5-fold higher than the area under the curve of liver, kidney, skin, and muscle. The peak tissue levels of 125I-labeled anti-B1 in Namalwa-bearing mice were again in blood and tumor and 6 days following injection more than 5-fold greater activity was found in tumor compared to normal tissues other than blood. The tumor/blood ratio was 1.2 and 0.7 at 4 and 6 days after injection. 125I-labeled anti-B1 showed minimal uptake in antigen-negative MOLT-4 tumors and 125I-labeled anti-T1 showed little uptake in Namalwa tumors. Scintigraphic images were obtained following the injection of 131I-labeled anti-J5 and anti-B1 in nude mice bearing Namalwa tumors. These results indicate that radiolabeled anti-J5 and anti-B1 show promise as diagnostic and possibly therapeutic agents for human B-cell lymphoma, although there may be a limitation to clinical utility due to cross-reactivity with some normal cells.

Animals↗

Human leukemia cell binding and killing by anti-CD5 radioimmunotoxins.

We have synthesized a reagent for antibody directed cell targeting composed of the monoclonal antibody (MoAb) T101 linked to the potent toxin ricin. The immunotoxin (IT) was subsequently radiolabeled by a cyclic anhydride procedure with 90Yttrium (90Y) to construct a radioimmunotoxin (RIT) that may have potential for cancer therapy. We evaluated the reagent for selectivity in binding and protein synthesis inhibition (PSI) assays. The RIT selectively bound antigen positive leukemia T-cell lines, with minimal binding to antigen negative control lines. The IT inhibited 87% or greater protein synthesis activity at 1 microgram/ml and exhibited an IC50 (the dose inhibiting 50% activity) of 0.18 +/- 0.08 microgram/ml in the presence of lactose. RIT and nonlabeled IT showed comparable degrees of PSI at 1 microgram/ml and 10 micrograms/ml, suggesting that labeling had little overall effect on the activity of the immunoconjugate. However, indirect evidence showed that the galactose binding site of ricin was inhibited 10-fold by its exposure to 90Y. Control RIT were minimally inhibitory. IT labeled with 131Iodine (131I) by an iodine monochloride technique also retained its capability to selectively inhibit protein synthesis. When RIT were tested for potency in a clonogenic assay against human leukemia T-cell lines, they inhibited 3.61 logs of tumor cell growth at 10 micrograms/ml. This did not represent an improvement over the log elimination with radiolabeled antibody alone, which showed 4.19 log elimination of tumor cells. Our observation that the 90Y-labeled RIT and labeled antibody can selectively eliminate about four logs of tumor cells in an in vitro clonogenic assay is unique. The ability of RIT to kill several logs of tumor cells in vitro renders RIT interesting anti-tumor reagents.

Antibodies, Monoclonal↗

Antigenic modulation by anti-CD5 immunotoxins.

We evaluated the modulation of T101 immunotoxins (IT) and free T101 antibody from the surface of normal and leukemic cells to determine whether the presence of toxin on antibody affected antigenic modulation. Reagents were made by conjugating T101, which binds to the T cell antigen CD5, to either intact ricin or purified ricin A chain. We found that T101-A chain modulated CD5 more efficiently than T101-ricin, which modulated CD5 more efficiently than T101 alone. Kinetic studies showed that maximal modulation of IT was reached within 3 hr. When toxicity of the reagents was tested in protein synthesis inhibition assays, T101-ricin in the presence of lactose inhibited 99% of the protein synthesis of CEM cells. T101-A chain was less toxic, inhibiting protein synthesis only 23 to 43%. The addition of the potentiating agent monensin nearly doubled the toxicity of T101-A chain, but did not affect T101-A chain modulation. To determine the fate of bound IT, T101 and T101-ricin were labeled with 125I. Cells were incubated under modulating conditions in the presence of radiolabeled reagents. T101 and T101-ricin were internalized into CEM cells. In contrast, T101, but not T101-ricin, appeared to be shed from peripheral blood mononuclear cells. Our findings show clearly that: 1) the presence of toxin on antibody does not inhibit--and may actually enhance--modulation; 2) T101-IT are internalized, not shed from the cell surface; 3) the lack of toxicity of T101-A chain is not attributed to inability to modulate; 4) there is no correlation between enhancement of T101-A chain toxicity by monensin and antigenic modulation by A chain reagents; and 5) modulation, which is undesirable in monoclonal antibody therapy, may be advantageous in the therapeutic use of IT.

Adjuvants, Immunologic↗

Radiolabeling of monoclonal antibody against carcinoembryonic antigen with 88Y and biodistribution studies.

The biodistribution of the 202 monoclonal antibody against CEA labeled with 88Y by the bicyclic DTPA anhydride method was studied in normal Balb/c mice. The in vitro binding to 1 X 10(7) CO112, LS174T and WiDR colon cancer cells was 21.0, 27.3 and 18.8%, respectively. The binding to an equal number of KM-3 leukemia cells and normal human lymphocytes was 8.9 and 3.2%, respectively. Liver, spleen, kidney and blood were the tissues that showed the highest uptake of radiolabeled antibody in vivo.

Animals↗

Localization of radiolabeled mouse alloantibody in a sarcoma induced by 3-methylcholanthrene.

The distribution of twice-purified I-125-labeled alloantibody, prepared from the serum of strain DBA/2J mice obtained after immunization with strain C3H/HeJ spleen cells, was studied in immunosuppressed DBA/2J mice bearing either an allogeneic C3H/HeJ MCA sarcoma (i.e., one induced by 3-methylcholanthrene) or a syngeneic MCA sarcoma. Radiolabeled antibody was isolated from labeled immune gamma globulin by adsorption onto C3H/HeJ red blood cells and elution from stroma prepared from these cells, followed by Sephadex G-200 gel filtration chromatography. This purified antibody bound specifically in vitro to C3H/HeJ red blood cells. In vivo this antibody localized preferentially in C3H/HeJ MCA sarcomas. An enrichment procedure was developed to increase the yield of radiolabeled alloantibody. The localization of I-131-labeled alloantibody in allogeneic tumor was visualized by external scintigraphy. Control I-131-labeled normal DBA/2J gamma globulin did not show such tumor localization.

Animals↗

Distribution of radiolabeled alloantibodies in mice bearing 3-methylcholanthrene-induced sarcoma.

The distribution of purified 125I-labeled alloantibodies, prepared from the serum of DBA/2J mice obtained after immunization with C3H/HeJ spleen cells, was studied in immunosuppressed DBA/2J mice bearing either allogeneic C3H/HeJ 3-methylcholanthrene sarcomas growing s.c. or syngeneic SaD2 3-methylcholanthrene sarcomas. Once purified radiolabeled antibody was isolated from 125I-labeled immune gamma-globulin by a single adsorption onto C3H/HeJ RBC and elution from stroma prepared from these cells, by using 0.1 M glycine buffer (pH 3.0). Twice-purified alloantibody was then produced by Bio-Gel P-200 or Sephadex G-200 gel filtration chromatography or DEAE A-50 ion-exchange chromatography. In vitro, such purified antibodies bound specifically to C3H/HeJ RBC. In vivo, they localized to a significant extent following i.p. injection, preferentially in C3H/HeJ 3-methylcholanthrene sarcomas (4.4 to 8.9% of the injected dose per g of tumor equal to 1% of mouse weight), with mean tumor/blood ratios of 4.0 to 7.8, at 24 or 48 hr after injection. The percentage of injected dose localized in tumor and the tumor/blood ratio did not show significant differences with respect to time or method of antibody purification. Normal tissue/blood ratios in C3H/HeJ or SaD2 sarcoma-bearing mice were less than 0.9. The tumor/blood ratios in SaD2 sarcomas were approximately 0.6. Injection of 131I-labeled normal DBA/2J gamma-globulin resulted in normal tissue/blood and tumor/blood ratios of less than 0.9 in C3H/HeJ tumor-bearing mice.

Animals↗