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J D Beatty

Publications and source records attributed to J D Beatty.

At least 19 recordsLinked to original sources

A mouse model for calculating cross-organ beta doses from yttrium-90-labeled immunoconjugates.

BACKGROUND: The organs of laboratory mice used in radioimmunotherapy experiments are relatively small compared to the ranges of high-energy yttrium-90 (Y-90) beta particles. Current Medical Internal Radiation Dose (MIRD) dosimetry methods do not account for beta energy that escapes an organ. A dosimetry model was developed to provide more realistic dose estimates for organs in mice who received Y-90-labeled antibodies by accounting for physical and geometric factors, loss of beta dose due to small organ sizes, and cross-organ doses. METHODS: The dimensions, masses, surface areas, and overlapping areas of different organs of 10 athymic nude mice, each weighing approximately 25 g, were measured to form a realistic geometric model. Major organs in this model include the liver, spleen, kidneys, lungs, heart, stomach, small intestine, large intestine, thyroid, pancreas, bone, marrow, and carcass. A subcutaneous tumor mass also was included in the model. By accounting for small organ absorbed fractions and cross-organ beta doses, the MIRD methodology was extended from humans to mice for beta dose calculations. RESULTS: Absorbed fractions of beta energy were calculated using the Berger's point kernels and the electron transport code EGS4. Except for the tumor and carcass, the self-organ absorbed fractions ranged from 15% to 20% in smaller organs (the marrow and thyroid) to 65%-70% in larger organs (the liver and small intestine). Cross-organ absorbed fractions also were calculated from estimates of the overlapping surface areas between organs. CONCLUSION: The mathematic mouse model presented here provides more realistic organ dosimetry of radiolabeled monoclonal antibodies in the nude mouse, which should, in turn, contribute to a better understanding of the correlation of biodistribution study results and organ-tumor toxicity information.

Animals

Application of the cross-organ beta dose method for tissue dosimetry in tumor-bearing mice treated with a 90Y-labeled immunoconjugate.

BACKGROUND: Radioimmunotherapy of nude mice bearing human tumor xenografts using 90Y-labeled monoclonal antibodies has resulted in slower tumor growth, decreased tumor burden, and increased survival times. Dosimetry estimates in the murine model usually were based on biodistribution data and standard Medical Internal Radiation Dose approaches. A new dosimetric model for the mouse that takes into consideration the small dimensions, mass, and proximity of murine organs has been developed based on self-organ absorbed and cross-organ doses. METHODS: Nude mice bearing carcinoembryonic antigen-expressing WiDr human colon cancer xenografts were injected with 240 microCi 90Y-anti-carcinoembryonic-antigen monoclonal antibodies and then killed at 12, 24, 72, 120, and 168 hours. Tumors and major organs were removed, weighed, and counted on a gamma counter. Using the resulting biodistribution data, the radiation doses to tumor and normal organs were calculated using the new dosimetric model for the mouse. RESULTS: Three organs (the liver, kidneys, and large bowel) directly received > 50% of the total absorbed beta dose from radioactivity. Lungs, stomach, and marrow received the highest percentage (70-75%) of the total absorbed dose from adjacent organs. Tumor absorbed dose, estimated with the new dosimetric model, was three times less than that obtained with a MIRD-style calculation without correction for self-absorbed and cross-organ doses. CONCLUSIONS: The new dosimetric model, which accounts more accurately for self-organ absorbed and cross-organ beta dose fraction, allows the calculation of tumor and organ doses in the murine model. Accurate estimation of radiation doses to tumor and critical organs, such as the marrow, spleen and kidneys, is important in determining the efficacy and toxicity of radioimmunotherapy regimens in animals and in subsequent human applications.

Animals

A method including edge effects for the estimation of radioimmunotherapy absorbed doses in the tumor xenograft model.

The temporal relationship of radiolabeled monoclonal antibody (Mab) uptake to tumor size in a nude mouse human colon cancer xenograft model (LS174T) was evaluated as an aid to developing a method for estimation of radioimmunotherapy absorbed dose. Tumors of heterogeneous size were treated with 4.4 MBq (120 microCi) of 90Y-labeled anti-Carcinoembryonic Antigen Mab (90Y-ZCE025). Regression analysis demonstrated an inverse log-log relationship of antibody uptake (%ID/g) to tumor mass in four time intervals investigated (N > 10 points/interval):12-24 h, 2-3 d, 5-7 d, and 10-14 d. Curves of predicted radionuclide concentration vs time were then constructed for a range of constant tumor sizes. Xenograft radiation dose was obtained by temporal integration of each curve and application of appropriate dose estimation formulas. For each assumed tumor mass, an edge correction for loss of beta energy outside the target volume was applied assuming a spherical tumor shape. Estimated average absorbed doses were found to vary only from 13.8-10.3 Gy for a 20-fold change in tumor sizes (0.1-2.0 g, respectively). Such constancy of dose may explain xenograft stasis observed by our group in earlier experiments at this level of administered 90Y activity.

Animals

Behavioral research.

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Administrative Personnel

Comparison of radioimmunotherapy and external beam radiotherapy in colon cancer xenografts.

Radioimmunotherapy and external beam radiotherapy were compared in a nude mouse human colon cancer model. Radioimmunotherapy was delivered by intraperitoneal injection of 90Y-labeled anticarcinoembryonic antigen monoclonal antibody (anti-CEA MAB). Single fraction external beam radiotherapy was delivered using a 60Co teletherapy unit. Control groups received saline, unlabeled anti-CEA monoclonal antibody and labeled nonspecific monoclonal antibody. Subcutaneous CEA-expressing LS174T human colon carcinoma tumors were measured over time. Tumor growth suppression was expressed as delay to reach 2g compared to saline controls. Unlabeled anti-CEA monoclonal antibody and labeled nonspecific monoclonal antibody had no effect. External beam radiotherapy of 300, 600, 1000 and 2000 cGy produced growth delays of 3, 12, 17, and 22 days, respectively. Radioimmunotherapy with 120 microCi, 175 microCi, and 225 microCi resulted in growth delays of 20, 34, and 36 days. Estimated absorbed tumor dose was 1750 cGy in the 120 microCi group. Similar comparisons were done with the more radioresistant WiDr human colon carcinoma cell line. External beam radiotherapy doses of 400, 800, 1200, and 1600 cGy resulted in growth delays of 6, 21, 36 and 48 days, respectively. Radioimmunotherapy of 120 microCi and 175 microCi resulted in growth delays of 9 and 19 days, respectively. The 120 microCi dose delivered an estimated absorbed tumor dose of 1080 cGy to WiDr tumors. In summary, for the radiosensitive LS174T line, radioimmunotherapy produced biologic effects that were comparable to a similar dose of single fraction external beam radiotherapy. For the more radioresistant WiDr tumor, radioimmunotherapy produced a biologic effect which was less than a similar dose of single fraction external beam radiotherapy. These studies suggest that a tumor's response to radioimmunotherapy relative to that of external beam radiotherapy is, in part, dependent on tumor radiosensitivity and repair capacity.

Animals

Pharmacokinetics of an anti-carcinoembryonic antigen monoclonal antibody conjugated to a bifunctional transition metal carborane complex (venus flytrap cluster) in tumor-bearing mice.

An anticarcinoembryonic antigen (CEA) monoclonal antibody, T84.66, has been conjugated to a metallocarborane complex (Venus flytrap cluster, VFC) containing 57Co. This radioimmunoconjugate, 57Co-VFC-T84.66, retained > 90% immunoreactivity, was stable in serum (7 days) and demonstrated good localization in LS174T tumor xenografts. Pharmacokinetics of 57Co-VFC-T84.66 in tumor-bearing mice were compared to T84.66 Mab conjugated with either DTPA or its benzylisothiocyanate derivative (BzDTPA) labeled with 111In. Whole-body half-life for VFC-T84.66 was less (t1/2 = 62 hr) than that for either DTPA-T84.66 (t1/2 = 157 hr) or BzDTPA-T84.66 (t1/2 = 167 hr). Blood clearance was similar for all three radioimmunoconjugates (t1/2 = 22 hr). Hepatic uptake of the radiolabel was rapid and remained constant for 7 days for both DTPA radioimmunoconjugates (DTPA radioimmunoconjugate = 13.7 +/- 1.5 %ID/g; BzDTPA radioimmunoconjugate = 10.4 +/- 1.7%ID/g). For VFC, however, liver radioactivity decreased from 19.1 +/- 0.6%ID/g at 1 hr to 0.9 +/- 0.1 %ID/g 7 days postinjection, suggesting a possible role for VFC radioimmunoconjugate in the imaging and therapy of liver metastases.

Animals

Immunotherapy of colorectal cancer.

Specific and nonspecific stimulation of the host immune system to reject cancer is an attractive concept that is just beginning to mature. Results with crude extracts and nonspecific immune stimulation have been variable. However, the recent observations of improved survival after administration of levamisole plus 5-fluorouracil in the adjuvant setting have made an impact on the treatment of colorectal cancer. Animal studies consistently show that immune therapies are most effective for disease that is not advanced. Thus, the small benefit seen with levamisole, a low toxicity immunomodulator, suggests that much more impressive results can be anticipated with more potent and specific agents. Postsurgical autologous tumor cell vaccine has been effective in some prospective randomized trials; in others, no benefit was found. The identification and purification of allogeneic tumor-associated antigens has lead to enhanced antigen-specific host cell-mediated immunity; this may result in more consistent antitumor effects. The current development of chemically defined immune adjuvants of low toxicity allows tumor-specific immune stimulation to be tested in high-risk apparently healthy patients after resection of colorectal cancer (Stages II and III). The influx of information regarding immune cell populations, cell-surface markers, and cytokines has fostered extensive exploration of lymphocyte stimulation, in vitro cell growth and expansion, and in vivo evaluation in patients with advanced cancer. Modest tumor response rates have been documented with adoptive transfer of lymphokine-activated killer cells and interleukin-2. Improved results are anticipated with the more potent tumor-infiltrating lymphocytes and specific in vitro sensitization of draining lymph node cells to autologous and allogeneic tumor antigens. Murine monoclonal antibodies specific for cell-surface markers, such as carcinoembryonic antigen, have been tested for their value in the diagnosis and therapy of colorectal cancer. A small response rate has been seen with single and multiple injections of C017-1A, a monoclonal antibody specific for colonic and pancreatic cancer. The development of antiidiotypic antibodies in these patients may have been important in those that responded to this type of therapy. However, laboratory evidence suggests that monoclonal antibody conjugated to a cytotoxic agent (i.e., radionuclide, drug, or toxin) should be much more effective. Radioimmunotherapy trials in the nude mouse model bearing human colon cancer xenografts showed good tumor incorporation of the radionuclide (yttrium 90 or iodine 131), inhibition of tumor growth, and long-term survival.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals

Effects of recombinant human gamma-interferon on carcinoembryonic antigen expression of human colon cancer cells.

The effects of human recombinant gamma-interferon (gamma-IFN) on the levels of carcinoembryonic antigen (CEA) expression were investigated in vitro in three human colon adenocarcinoma cell lines (WiDr, HT29, and SW403). Subconfluent cultures were exposed continuously to IFN at concentrations of 1-1,000 antiviral units/ml for up to 6 consecutive days. IFN resulted in a significant increase in CEA levels when assayed by cellular enzyme-linked immunosorbent assay (ELISA), with higher concentrations and longer exposure times resulting in greater CEA enhancement. A three to five-fold enhancement of CEA was observed after 5-6 days of continuous exposures at concentrations of 100-1,000 antiviral units/ml. CEA levels returned to baseline over a 4-day period after discontinuation of IFN. Levels of IFN that resulted in CEA enhancement also resulted in cell growth inhibition, with a direct correlation observed. Flow cytometric studies, which evaluated changes in CEA membrane expression of only the viable cells remaining after IFN exposure, gave similar results to cellular ELISA. Quantitative CEA ELISA, which quantitated changes in total cellular CEA content, demonstrated greater increase in CEA than predicted by cellular ELISA. Continuous IFN exposures for 5-6 days at 1,000 U/ml led to a 96-, 26-, and 5-fold increase in total CEA for the WiDr, HT29, and SW403 cell lines, respectively. WiDr cells exposed to daily 6-h IFN pulses demonstrated intermediate increases in CEA compared with cells exposed continuously to IFN.(ABSTRACT TRUNCATED AT 250 WORDS)

Adenocarcinoma

Gamma-interferon enhancement of carcinoembryonic antigen expression in human colon carcinoma xenografts.

Athymic nu/nu mice bearing a subcutaneous human colon cancer xenograft (WiDr, low CEA expression) were treated with gamma-interferon (gamma IFN) at varying doses, frequencies, and periods of duration. CEA content (micrograms/g) and uptake of radiolabeled anti-CEA monoclonal antibody (MAB) (percent injected dose per gram, % ID/g) were measured at 48 h following administration of the MAB, The optimal enhancement of tumor CEA content and tumor localization of [111In] anti-CEA monoclonal antibody (MAB) was seen at gamma IFN doses of 100,000 U i.p. every 8 h for 4 days (4.7 micrograms/g; 29% ID/g) compared to control animals (0.9 micrograms/g; 10% ID/g). The effects of gamma IFN on CEA content and MAB localization were less pronounced when administered (a) at lower doses: 5,000 to 50,000 U i.p. every 8 h, (b) at varying frequencies: 300,000 U/day delivered in divided doses every 4 or 24 h, or (c) for varying periods: 2 or 6 days of therapy. In each case, the biologic effects on tumor CEA content and uptake of [111In]MAB correlated closely with the serum gamma IFN level. Therefore, we conclude that enhancement of in vivo CEA expression by gamma IFN may have clinical relevance for tumor imaging and therapy using radiolabeled monoclonal antibodies.

Animals

Comparison of immunoscintigraphy and computerized tomography in identifying colorectal cancer: individual lesion analysis.

Monoclonal antibody scintigraphy with 111In-ZCE025 was used in presurgical staging of 45 patients prior to abdominal exploration for primary, recurrent or metastatic colorectal carcinoma. A total of 186 lesions were identified, of which 147 were evaluated by abdominal surgery and pathology. Sensitivity was 40.5% (49 of 121) for immunoscintigraphy (IS), 61.2% (74 of 121) for computerized tomography (CT), and 72.7% (88 of 121) for IS and CT combined. The positive predictive value was 83.1% (49 of 59) for IS and 88.1% (74 of 84) for CT. Sensitivity of IS was 100% (23 of 23) for primary tumors, 17.7% (11 of 62) for hepatic metastases, and 41.7% (15 of 36) for extrahepatic abdominal metastases. Of the 50 hepatic lesions evaluated by single-proton emission computerized tomography, 11 were localized by IS. Only one was visualized by planar scintigraphy. Sensitivity of CT was 87% (20 of 23) for primary tumors, 67.7% (42 of 62) for hepatic metastases, and 33.3% (12 of 36) for extrahepatic abdominal metastases. Sensitivity of IS combined with CT was 72.6% (45 of 62) for hepatic and 55.6% (20 of 36) for extrahepatic abdominal metastases. Of 24 malignant lesions measured by the pathologist to be less than 3.0 cm (maximum dimension), 7 (29.2%) were detected by IS and 3 (12.5%) by CT. Of 28 malignant lesions greater than 3.0 cm, 23 (82.1%) were detected by IS and 24 (85.7%) by CT. Overall, IS and CT complemented each other in presurgical staging of colorectal carcinoma. IS was of greater value for identification of extrahepatic and small metastases. CT was more effective for identification of hepatic metastases.

Abdominal Neoplasms