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Biomedical subjects

S M Larson

Publications and source records attributed to S M Larson.

At least 19 recordsLinked to original sources

The correct dose: pharmacologically guided end point for anti-growth factor therapy.

Strategies to block the effects of tumor growth factors, such as estrogen, and to recruit other regulatory elements, such as with retinoids, have focused interest on the possibility of successful tumor intervention approaches. Approaches that neutralize the effects of critical molecules that drive tumor promotion are attractive targets for evaluation as new intervention agents. Clinical intervention trials with early stage patients or with subjects from "high risk" populations impose stricter types of constraints than conventional chemotherapy approaches in advanced stage patients. The potential for short-term toxicity has to be considered, as it may affect subject accrual or compliance. The longer expected survival of intervention subjects mandates closer attention to the possibilities of unexpected long-term toxicities with chronic administration of an intervention agent. As part of a Phase I clinical trial evaluating the utility of a monoclonal antibody directed against the autocrine growth factor, gastrin-releasing peptide to block the growth of small cell lung cancer, we developed a mathematical model to predict the requisite amount of antibody to neutralize growth factor effect. This model requires knowledge of the equilibrium concentration of the secreted growth factor, specific receptor, and bioavailability of the antibody in the tumor interstitium. A range of possible target doses of antibody can be developed to address the potential for heterogeneity frequently encountered in such systems, including a range of levels for peptide production and specific receptor expression. This approach could be applied to rationally derive treatment or intervention in which specific information regarding the relevant binding parameters is available. Through refinement of this modeling approach more context-specific dosing of agonist/antagonists could be determined which may decrease side effects associated with the drug administration.

Antibodies, Monoclonal

Therapeutic alternatives for hormone-refractory prostatic cancer.

The currently available prognostic factors allow the identification of patients who are destined to do poorly with primary hormone therapy. Standardization of these factors is required so that they become incorporated into routine practice. For patients who relapse in osseous sites radiolabeled diphosphonates are one therapeutic alternative that can provide palliation. Future use will be directed to optimize treatment schedules, and use earlier in the course of the disease so that more durable palliation of bony metastases can be achieved. Evolving data on the use of PSA show that elevations antedate clinical relapse for most patients. In these cases, sequential changes can be used to assess therapeutic effects, which in turn can allow novel therapies to be screened more rapidly in the clinic. Criteria for the degree of change that is indicative of response must be standardized. Preliminary data suggest a 50% decline be the minimum that is used. The results with agents such as suramin, which interrupts autocrine and paracrine growth factor loops, are a therapeutic strategy that need further study. Future efforts will focus on defining which patients are best suited for specific therapeutic approaches.

Antigens, Neoplasm

PET scanning of iodine-124-3F9 as an approach to tumor dosimetry during treatment planning for radioimmunotherapy in a child with neuroblastoma.

A patient with advanced neuroblastoma who had failed chemotherapy presented with a large abdominal mass and virtually total bone marrow replacement by tumor on repeated marrow biopsies. She was considered a candidate for a Phase I 131I-3F8 radioimmunotherapy trial, (MSKCC 89-141A). As a potential aid to treatment planning, a test dose of 124I-3F8 was injected and the patient was imaged over the 72 hr postinjection using two BGO based PET scanners of different designs. Time activity curves were obtained, and the cumulated activity concentration of radiolabeled 3F8 in tumor was determined. Based on MIRD, an estimated radiation absorbed dose for 131I-3F8 was 7.55 rad/mCi, in the most antibody avid lesions. Because of low uptake and unfavorable dosimetry in some bulky tumor sites, it was decided not to treat the patient with radiolabeled antibody. Positron emission tomography of 124I-labeled antibodies can be used to measure cumulated activity or residence time in tumor for more accurate estimates of radiation absorbed tumor dose from radioiodinated antibodies and can help guide management decisions in patients who are candidates for radioimmunotherapy.

Adrenal Gland Neoplasms

In-vivo identification of tumor multidrug resistance with 3H-colchicine [corrected].

Multidrug resistance (MDR) is a major obstacle in the clinical treatment of cancer with natural-product anticancer agents. Identification of MDR in vivo could be important in the design of chemotherapeutic regimens. As a first step in developing radiolabeled drugs to detect MDR, we measured the in vivo distribution of radiolabel from [ring C, methoxy-3H]-colchicine ([3H]-CHC) in immunosuppressed mice bearing xenografts of colchicine-resistant and sensitive tumor cell lines. Experiments were done at trace (1 microgram/kg) and LD50 (4 mg/kg) dose levels. Activity concentration/injected dose was more than twice as great in sensitive as in resistant tumors (p less than 0.01) at 60 min following retroorbital injection of [3H]-CHC. There was no significant difference in activity distribution between trace- and high-dose injections for any of the tissues sampled. Chromatographic analysis of plasma and tumor extracts demonstrated extensive extravascular metabolic degradation of [3H]-CHC. The ratio of [3H]-CHC concentration of injected dose between sensitive and resistant tumors was 3:1 (p less than 0.05), due primarily to protein-bound [3H]-CHC. This preliminary study demonstrates that it is possible to distinguish multidrug resistant from sensitive tumors in vivo on the basis of radiolabel uptake from an injected MDR drug. Colchicine, labeled with 11C at the [ring C]-methoxy group, may be useful as a radiopharmaceutical for quantitative identification of MDR in human tumors using PET.

Animals

Comparison of technetium-99m-MIBI and thallium-201-chloride uptake in primary thyroid lymphoma.

A case of primary thyroid lymphoma demonstrating uptake of 99mTc-hexakis-2-methoxy isobutyl isonitrile (MIBI) is presented. The 99mTc-MIBI image more clearly delineated the extent of tumor as demonstrated on CT compared to 201Tl-chloride and [99mTc]pertechnetate images. Following two courses of chemotherapy, repeat radionuclide studies and CT scan showed complete resolution of the thyroid tumor. Technetium-99m-MIBI may be useful in the assessment of disease activity and monitoring response to treatment in patients with lymphoma.

Female

Validation of gallium-67-citrate single-photon emission computed tomography in biopsy-confirmed residual Hodgkin's disease in the mediastinum.

In a retrospective study of a series of 30 adult patients during restaging of Hodgkin's disease after therapy, computed tomography (CT) and biopsy results were correlated with 67Ga SPECT in order to determine the value of SPECT imaging in monitoring recurrent mediastinal Hodgkin's disease. SPECT had an overall accuracy of 93% (28/30) and correctly identified active disease in 24 of 25, 96% of histopathologically proven recurrent Hodgkin's disease. Thus in this post-therapy setting, we have confirmed the high sensitivity of 67GA SPECT scans in patients selected for biopsy. Gallium-67 may prove particularly useful in detecting residual disease activity in patients in whom biopsy was positive but the interpretations of the CT scans were uncertain in regard to presence of tumors [8/30 (27%)]. In this group of patients, we found SPECT particularly helpful. A larger prospective series is under way to assess this possibility.

Adult

Radioimmunology. Imaging and therapy.

Targeting of radioactivity to tumors using antitumor antibodies is evolving from a laboratory curiosity toward a practical diagnostic and therapeutic technique that promises widespread benefits for many common human cancers. The development of the hybridoma technique by Kohler and Milstein for producing monoclonal antibodies is probably the single most important contribution to the development of this field. A large array of monoclonal antibodies against many human tumors have been created and labeled with a variety of radioisotopes; 110 clinical trials have been identified from the literature between the interval of 1978 to the present. These studies are beginning to form the basis for certain conclusions regarding likely benefits for certain combinations of antitumor antibodies and isotopes in specific instances of clinical management in patients with malignant neoplasms. For example, in melanoma, lymphoma, neuroblastoma, and colorectal malignancies, radiolabeled antibodies have demonstrated occult tumors, which could not be disclosed with conventional methodologies. Radioimmunotherapy of malignant lymphoma is achieving durable remissions in patients who have failed conventional forms of therapy. For the most part, these advances have been achieved through intelligent application of known principles of immunochemistry, imaging physics, and tumor immunology. Progress has been slow but steady. In a few instances, the term "magic bullet" is warranted in describing the targeting of a particular radiolabeled antibody to a human tumor. I-131, 3-F8, an IgG3 against the GD2 antigen of neuroblastoma, which was introduced by Cheung, and In-111 T-101, against the CD5 antigen of T-cells, which was developed by Royston, stand out because of the consistency and high concentration of radioactive targeting to human tumors in clinical trials. If certain technical innovations fulfill their initial promise, the future will be bright for radioimmunologic methods of diagnosis and therapy. Genetic engineering will permit the development of "humanized" antibodies with biologic properties that favor tumor localization. New chemical approaches will broaden the range of isotopes available as diagnostic and therapeutic radiolabels. Application of modern imaging methodologies, such as positron emission tomography (PET), will detect more lesions of smaller size and permit quantitative imaging for dosimetry considerations. Greater speed and ease of use of computerized work stations will lead to the broader application of fusion imaging in which radioantibody images will be viewed simultaneously with TCT or MRI for better anatomic correlation of abnormal sites of antigen-reactive tumor deposits.

Antibodies, Monoclonal

Phase I and imaging trial of indium 111-labeled anti-epidermal growth factor receptor monoclonal antibody 225 in patients with squamous cell lung carcinoma.

Murine monoclonal antibody (MAb) 225 (IgG1) against the epidermal growth factor (EGF) receptor competitively blocks EGF binding and inhibits EGF-induced activation of receptor tyrosine kinase and cell proliferation. The effect of MAb 225 was studied in a phase I trial in patients with inoperable squamous cell carcinoma of the lung, which invariably expresses high levels of EGF receptors. Groups of three patients received total doses of MAb 225 ranging from 1 mg to 300 mg. Except at the lowest dose, each infusion included 4 mg of indium 111 (111In)-labeled MAb 225. No toxicity was observed. Tumors were imaged in all patients who received doses of 20 mg or greater. Presumed metastases greater than or equal to 1 cm in diameter were imaged with doses of 40 mg or greater. Single-photon-emission-computed tomography could be carried out at the 120-mg and 300-mg doses and significantly improved tumor visualization. All patients produced anti-murine antibodies. We conclude that treatment with an MAb that inhibits EGF receptor function is safe at the doses and schedule studied. 111In-labeled MAb images squamous cell lung carcinoma; tumor uptake of the labeled MAb is dose dependent. Further studies are warranted to explore the potential therapeutic efficacy of anti-EGF receptor MAbs and other agents that act in a comparable manner.

Adult

Detection of hepatic metastases from colorectal carcinoma using indium-111 (111In) labeled monoclonal antibody (mAb): MSKCC experience with mAb 111In-C110.

Sixteen patients with colorectal carcinoma and a rising serum carcinoembryonic antigen (CEA) level and no evidence of extra-abdominal disease were administered 5 mg of an anti-CEA monoclonal antibody (mAb), C110, labeled with approx. 5 mCi of 111In. All patients subsequently underwent exploratory laparotomy, and samples of tumor and normal tissue were obtained. Hepatic lesions (confirmed by histopathology) were visualized as areas of increased radiotracer uptake in 13 of 16 patients. Single photon emission computed tomography (SPECT) considerably aided detection, being positive in two patients with normal planar images. Ten of the 16 patients had positive x-ray computed tomographic (CT) images. The radioimmunodiagnostic study was falsely negative in 3 of 16 patients with subsequently proven hepatic disease, in one of whom CT was also normal. The antibody study was positive in 80% of lesions, thus being, in this small series, significantly more sensitive (P less than 0.01) than CT. 111In-C110 is a promising monoclonal antibody for the detection of hepatic metastases from colorectal carcinoma; this is the first study to show consistently greater concentration of 111In-labeled antibody in hepatic lesions than in surrounding normal hepatic parenchyma.

Adult

Technical challenges associated with the radiolabeling of monoclonal antibodies utilizing short-lived, positron emitting radionuclides.

Many factors, both physical and chemical, affect the radiolabeling of a chemical compound. These factors add a new dimension of complexity when the labeling of monoclonal antibodies is attempted with short-lived, positron emitting radionuclides. A lack of appreciation for the unique chemical separations associated with the radionuclide incorporated into the synthetic precursor can often lead to unexpected or non-reproducible results.

Antibodies, Monoclonal

Estimates of radiation absorbed dose for intraperitoneally administered iodine-131 radiolabeled B72.3 monoclonal antibody in patients with peritoneal carcinomatoses.

Using a newly available model for determining estimates of radiation absorbed dose of radioisotopes administered intraperitoneally, we have calculated absorbed dose to tumor and normal tissues based on a surgically controlled study of radiolabeled antibody distribution. Ten patients with peritoneal carcinomatosis received intraperitoneal injections of the murine monoclonal antibody B72.3 radiolabeled with 131I. Biodistribution studies were performed using nuclear medicine methods until laparotomy at 4-14 days after injection. Surgical biopsies of normal tissues and tumor were obtained. The marrow was predicted to be the critical organ, with maximum tolerated dose [200 rad (2 Gy) to marrow] expected at about 200 mCi (7.4 GBq). In patients with large intraperitoneal tumor deposits, the tumor itself is an important source tissue for radiation exposure to normal tissues. Local "hot-spots" for tumor-absorbed dose were observed, with maximum tumor-absorbed dose calculated at 11,000 rad (11 Gy) per 100 mCi (3.7 GBq) administered intraperitoneal; however, tumor rad dose varied considerably. This may pose serious problems for curative therapy, especially in patients with large tumor burdens.

Absorption

Radioimmunodetection of neuroblastoma with iodine-131-3F8: correlation with biopsy, iodine-131-metaiodobenzylguanidine and standard diagnostic modalities.

Iodine-131-3F8, a murine IgG3 monoclonal antibody specific for ganglioside GD2 was evaluated by radioimmunoscintigraphy in 42 patients with neuroblastoma. Comparison was made with 131I-metaiodobenzylguanidine (MIBG), 99mTc-methylene diphosphonate (MDP) bone scans, as well as computed axial tomography (CT) or magnetic resonance imaging (MRI). Iodine-131-3F8 detected more abnormal sites (283) than [131I] MIBG (138) or 99mTc-MDP (69), especially in patients with extensive disease. In 20 patients with soft-tissue tumors demonstrated by CT/MRI, 131I-3F8 detected the disease in 18. Upon surgical resection, two tumors interpreted as negative with 131I-3F8 imaging revealed ganglioneuroma, one showing microscopic foci of neuroblastoma. In contrast, 131I-3F8 imaging identified tumors that were confirmed histologically as neuroblastomas. In 26 patients with evidence of marrow disease by antibody scans, 14/26 had confirmation by iliac crest marrow aspirate/biopsy examinations. We conclude that 131I-3F8 scintigraphy has clinical utility in the management of patients with neuroblastoma by improving the sensitivity of tumor detection.

3-Iodobenzylguanidine