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Biomedical subjects

V L Alvarez

Publications and source records attributed to V L Alvarez.

17 recordsLinked to original sources

Thrombus imaging with technetium-99m synthetic peptides based upon the binding domain of a monoclonal antibody to activated platelets.

UNLABELLED: Monoclonal antibodies which recognize fibrin or platelets have enabled imaging of vascular thrombi, however, early imaging has been difficult because of the slow blood disappearance of even small antibody fragments. It was theorized that it might be possible to synthesize peptides which possess the same thrombus affinity as monoclonal antibodies, but which would leave the blood pool much more rapidly. METHODS: In this study, peptides were synthesized with amino acid sequences based on the primary binding region of the platelet glycoprotein IIb/IIIa-directed monoclonal antibody PAC1. Both termini of the peptides were blocked to prevent rapid proteolysis and a metallothionein-derived sequence was incorporated as a chelating agent for reduced technetium. RESULTS: Technetium-99m-labeled peptides produced images of fresh clots in the jugular veins of rabbits and day-old thrombi in the femoral veins of dogs within 2 hr after injection. In control experiments, a 99mTc-labeled nonspecific peptide failed to produce focal images of thrombus. Another control compound, 99mTc-glucoheptonate, did produce images of fresh clots in rabbits but failed to produce focal images of day-old thrombi. As was hoped, blood clearance of the 99mTc peptides was rapid, with excretion through the kidneys, however, none of the peptides studied had better thrombus-to-blood ratios than iodinated fibrinogen and all had significantly lower deposition in the thrombus. CONCLUSION: Using labeled synthetic peptides appears to be technically feasible but the absolute binding to thrombus is not yet sufficient for reliable imaging of pre-existing thrombi.

Amino Acid Sequence

Site-specifically radioiodinated antibody for targeting tumors.

Labeling of an antibody site specifically through its carbohydrate regions preserves its antigen-binding activity (Rodwell et al., Proc. Natl. Acad. Sci., 83: 2632, 1986). Previously site-specific labeling studies have conjugated antibodies with metallic radioisotopes or drugs. We now report site-specific labeling with a new radioiodinated compound, 2-hydroxy-5-iodo-3-methylbenzoyl hydrazide, whose synthesis we described earlier (Belinka et al., Biochemistry, 27: 3084, 1988). The compound is reacted with aldehyde groups produced by specific oxidation of the carbohydrate portion of the antibody with sodium m-periodate. Optimized conjugation conditions give good recovery of active antibody containing 10 groups per molecule. The conjugate is stable in solution for at least several weeks at both 4 and -70 degrees C. When injected into nude mice bearing LS174T human cancer xenografts, the conjugate of B72.3 antibody localizes well to tumor tissue, with low uptake by other organs. This biodistribution is similar to that of conjugate prepared by using solid-phase chloramine-T (Iodohead). There are only two significant differences. First, the carbohydrate conjugate is much less susceptible to dehalogenation, and thus shows much less thyroid uptake. Secondly, the biological half-life of the carbohydrate conjugate was about half that of the chloramine-T one. This could be due primarily to lysis of the hydrazine bond through which the antibody is attached to the compound, which would then be excreted rapidly by itself. The new reagent will be especially useful for antibodies which either cannot be labeled by chloramine-T methods, or whose activity is impaired by them.

Animals

Radioimmunotherapy of peritoneal human colon cancer xenografts with site-specifically modified 212Bi-labeled antibody.

212Bi is a radioisotope that emits highly cytotoxic alpha-particles. alpha-particles have a high linear energy transfer over a short path length. These properties and the 1-h half-life make this isotope suitable for radioimmunotherapy of peritoneal tumors. Therefore, we wanted to test whether monoclonal antibodies labeled with 212Bi would be effective in treating such tumors. We conjugated the antibody B72.3, which is reactive with many human adenocarcinomas, to the chelator linker glycyltyrosyl-lysyl-N-epsilon-diethylenetriaminepentaacetic acid, by reductive amination to the carbohydrate residues of the antibody (J. Rodwell, et al. Proc. Natl. Acad. Sci. USA, 83: 2632-2636, 1986). Athymic nude mice were injected i.p. with LS174T cells, a human colon cancer cell line. Seven to 13 days later the mice were treated with the 212Bi-labeled antibody. We treated the mice using single doses of 180-450 microCi or multiple doses of 80-180 microCi on consecutive days. Dissections were performed 9-16 days after the end of treatment. Both the single and multiple doses resulted in a decrease in tumor burden when compared to tumor from mice receiving unlabeled antibody. Mice in the optimum group showed tumor reductions of greater than 90%. Treatment with a 212Bi-labeled irrelevant antibody was significantly less effective than that with labeled B72.3 antibody. Survival studies showed that mice receiving the labeled antibody had a prolonged survival when compared to control mice.

Animals

Radioimmunoscintigraphy and radioimmunotherapy in nude mouse models. Studies with site-specifically modified monoclonal antibodies.

Site-specific covalent modification of monoclonal antibodies at the oligosaccharide offers advantages over more conventional modification processes that involve direct attachment at tyrosine, lysine or glutamic/aspartic acid side chains. Using the site-specific modification process, attachment sites on the antibody are distal to the antigen-binding region. Thus, homogeneity of antigen-binding properties and affinity for the unmodified protein are preserved. Furthermore, higher derivatization ratios with no resultant loss of immunoreactivity can be achieved for monoclonal antibodies modified at the oligosaccharide. In vivo biodistribution and tumor localization studies in nude mouse models suggest that antibodies radiolabeled at their oligosaccharide might represent improved immunoscintigraphic reagents. In a variety of tumor xenograft models, site-specific modified 111In-labeled antibody conjugates localized to the tumor site with little non-specific localization in other tissues or organs. The degree of localization at the target site was substantially greater than that of 111In-labeled antibodies directly modified at the tyrosine side chain. Preliminary studies with 212Bi- and 90Y-labeled antibodies modified at the oligosaccharide indicate that both of these radioisotopes have immunotherapeutic potential. Because of its preferential uptake by the kidney, the use of 212Bi may be best suited for tumors localized within the peritoneal cavity, such as ovarian and colorectal carcinomas. The toxicity of 90Y at high specific activities suggests that a regimen of repeated smaller doses of this radioisotope is best suited for therapeutic use. Studies in tumor-bearing mouse models are currently underway to better define the optimal dosage and administration regimens for both of these radioisotopes when attached to site-specific modified antibodies.

Animals

Site-specifically modified 111In labelled antibodies give low liver backgrounds and improved radioimmunoscintigraphy.

Site-specific modification of monoclonal antibodies at their oligosaccharide had previously been demonstrated to produce excellent 111In imaging in a xenograft model using a Brown Norway (BN) rat lymphoma and a rat anti-BN MHC monoclonal antibody [Lee C. et al. Fed. Proc. Abstr. 43 3014 (1984)]. These results are due, in part, to lack of liver uptake, so we wanted to evaluate the extent of hepatic uptake observed with different monoclonal antibodies in normal mice. Biodistribution data were obtained for four monoclonal antibodies by first modifying each antibody at its carbohydrate with a diethylenetriaminepentaacetic acid (DTPA) derivative. The antibodies were then labelled with 111In and injected into normal mice. Images were obtained 24 h post-injection, and at 48 h the mice were dissected and the tissue-to-blood (T:B) ratios determined. T:B ratios were approximately 1 (or less) for every organ evaluated, indicating minimal non-specific uptake into these organs. Data is also presented for the BN-rat system which shows excellent localization into the tumor xenograft and low non-specific organ uptake. These data indicate that modification of antibodies site-specifically at their oligosaccharide results in minimal non-specific uptake into non-target tissues and enhanced localization into the tumor target, and that this may represent a preferred method for production of 111In labelled antibodies.

Animals

Site-specific covalent modification of monoclonal antibodies: in vitro and in vivo evaluations.

A strategy for covalent modification of monoclonal antibodies utilizing the oxidized oligosaccharide moieties on the molecule was evaluated and compared to more conventional methods. As judged by quantitative in vitro measurements, a monoclonal antibody conjugate prepared via the oligosaccharides retained the homogeneous antigen binding property and affinity of the unmodified antibody. In contrast, conjugates of the same antibody, modified to the same degree on either lysines or aspartic and glutamic acid side chains, were heterogeneous in their antigen binding and had lowered affinity. In vivo biodistribution and nuclear-imaging experiments were also performed with a second monoclonal antibody and a tumor xenograft model. Antibodies modified on the oligosaccharides with either a peptide labeled with iodine-125 or a diethylenetriaminepentaacetic acid chelate with indium-111 localize into target tumors more efficiently than the same antibody radiolabeled on either tyrosines or lysines. These in vivo results, when compared to those reported in the literature for conventionally modified antibodies, suggest that oligosaccharide modification of monoclonal antibodies is a preferred method of preparing conjugates.

Animals

Direct analysis of differentiation proteins in normal and leukemic human granulocytes by high-performance liquid chromatography.

The feasibility of the use of reverse-phase high-performance liquid chromatography (RP-HPLC) for detecting differences in the protein phenotypes of highly purified fractions of normal and chronic myelogenous leukemic (CML) mature granulocytes isolated from peripheral blood was determined. At least 21 protein peaks were consistently and reproducibly detected in the RP-HPLC profiles of acetonitrile-trifluoroacetic acid extracts of normal granulocytes. This assay takes only 60 minutes to perform and can be done on 4 X 10(6) granulocytes (approximately the number of granulocytes in 1 ml normal blood). Furthermore, sodium dodecyl sulfate-gel electrophoresis of the RP-HPLC fractions provides a second dimension to the analysis of the polypeptide pattern of these cell lysates. Analyses of subcellular fractions by these methods revealed that most of the major peaks in the RP-HPLC profiles of intact granulocytes originate mainly from the granule and membrane fractions. Although the protein phenotypes of mature granulocytes were remarkably uniform among normal individuals, those of mature granulocytes obtained from the blood of CML patients were consistently abnormal and varied considerably among individual patients. The results indicate that the approach used here could have useful application in the study of abnormal granulocyte differentiation in leukemia.

Acetonitriles

Elastin covalent structure as determined by solid phase amino acid sequencing.

The amino acid sequences of 16 large tryptic fragments of aortic tropoelastin have been determined establishing the presence of several repeating structures: GVP, GGVP, PGVGV, PGVGVA, and AGVPGFGVG. The methodologies for achieving these results by solid phase sequencing are reviewed and also the possible biologic significance of the unusual primary structures of elastin are discussed.

Amino Acid Sequence

The antigenicity of soluble porcine elastins: I. Measurement of antibody by a radioimmunoassay.

Immunization of rabbits with either porcine tropoelastin, lung alpha-elastin, or aortic alpha-elastin resulted in the production of antibodies against the respective antigens. The assay of antibody activity with a radioimmunoassay indicated a high degree of cross reactivity between these three soluble elastin preparations. Through the use of competitive protein binding experiments it was possible to detect antigen-specific differences between tropoelastin and the two alpha-elastins. No antigenic differences were observed between lung or aortic alpha-elastin by any of the assay procedures uded in this investigation. Absorption of the various antisera with either insolubilized tropoelastin, lung elastin or aortic elastin allowed the preparation of non-crossreactive antibodies and provided further evidence for the antigenic differences between tropoelastin and the soluble alpha-elastins. The implications of the findings, as they relate to our current understanding of the molecular and structural arrangement of elastin and the elastin precursor, are discussed.

Animals