Medical oncology in the 1990s.
Explore the source record for details and available documents.
Biomedical subjects
Publications and source records attributed to B A Chabner.
Explore the source record for details and available documents.
Explore the source record for details and available documents.
Expeditious clinical development and approval of new drugs that are beneficial to patients are matters of high priority. There has been a great deal of discussion within the oncology community about what should constitute evidence of effectiveness of new anticancer agents for purposes of drug approval. This commentary is intended to illustrate a variety of end points that can lead to approval of new anticancer agents for specific clinical situations. Although the ultimate hope of antineoplastic therapy is prolongation of life, there are other effects of anticancer drugs that constitute clear clinical benefit and represent evidence of effectiveness. The guiding principle is that the beneficial effects obtained from a new drug should sufficiently outweigh the adverse effects such that the potential risk:benefit ratio achieved by an individual patient is favorable. The assessment of a new drug should flexibly evaluate safety and efficacy in the context of the specific clinical condition being treated. Early discussions with the Food and Drug Administration (FDA) and the National Cancer Institute (NCI) are recommended to identify prospectively the end points and trial designs needed to demonstrate effectiveness of a new drug. The general principles discussed will likely apply to the drug approval process for other medical disciplines as well.
Explore the source record for details and available documents.
Since our original proposal 4 years ago, considerable support has evolved for the concept of pharmacologically guided dose escalation in phase I clinical trials with new anticancer drugs. The original focus has been broadened to develop additional links between preclinical testing and phase I clinical trials. Recent experiences with very lengthy phase I trials for at least eight drugs have provided particular impetus for this project. The original pharmacodynamic hypothesis for the proposal was equal toxicity at equal plasma levels. Specifically, two facets of the concept were that (a) dose-limiting toxicity correlates with, and in turn is predicted by, drug concentrations in plasma and (b) that the quantitative relationship between toxicity and drug exposure, as measured by plasma drug concentration times time (C x T), holds across species. If true, this hypothesis would suggest that dose escalations in humans could be safely based on measurement of drug levels in plasma, rather than on empirical escalation schemes. In addition to the collection of a larger retrospective data base to validate this hypothesis, practical results have already been achieved. In two studies sponsored by the National Cancer Institute (NCI), the escalation pattern was prospectively modified on the basis of measurements of drug levels in plasma. In addition, for three NCI-sponsored drugs, more careful matching of schedules between clinical and preclinical testing produced entry doses that were up to 25 times higher than doses used in standard procedures. Consequently, the phase I trials for each drug were completed with a savings of 12-24 months. As a result of work in both the United States and Europe, a substantial collection of data now demonstrates that coordination with preclinical pharmacology and toxicology studies can save both time and resources in early clinical trials without a loss of safety.
Explore the source record for details and available documents.
Toxoplasma gondii is a common protozoan disease that often causes life-threatening disease, particularly among patients with the acquired immunodeficiency syndrome. This study demonstrates that the dihydropteroate synthase in T. gondii is kinetically distinct from the enzyme characterized from other sources and can be highly purified with a high yield using sequential dye-affinity chromatography. Conditions have been identified that allow for stabilization of the purified enzyme, and its physical characteristics have been elucidated. The molecular weight of the native protein was 125,000 and the protein appeared to contain both dihydropteroate synthase and 6-hydroxymethyl-dihydropterin pyrophosphokinase activities. The sulfonamide class of compounds vary in inhibitory potency by more than three orders of magnitude. Sulfathiazole, sulfamethoxazole, and sulfamethazine, with 50% inhibitory concentrations (IC50's) of 1.7, 2.7, and 5.7 microM, respectively, represent the most potent of this class of inhibitors. Several sulfone analogues, including dapsone, were identified as highly potent inhibitors with IC50's less than 1 microM. The results of these cell-free experiments were corroborated by investigating the metabolic inhibition produced by the various inhibitors in intact organisms. The qualitative and quantitative relations among the inhibitors were preserved in both the cell-free and intact cell assay systems. These studies suggest that the sulfones may be important therapeutic agents for the treatment of toxoplasmosis.
4-Ipomeanol (IPO) is the first agent to undergo preclinical development at the National Cancer Institute (NCI) based principally on a specific biochemical-biological rationale for clinical investigation as an antineoplastic agent targeted against lung cancer. This disease-specific development of IPO was initially stimulated by observations that the compound was activated by metabolism, preferentially within the mammalian lung, specifically within bronchiolar Clara cells, and that its predominant toxicity was to the lung in most species. IPO is inactive or only minimally active against most conventional antitumor test systems. However, some human lung cancer cell lines, as well as a variety of fresh human lung tumor biopsy specimens, have been shown to be capable of mediating the in situ biotransformation of IPO to a potentially cytotoxic intermediate. In this report, the biochemistry, metabolism, preclinical pharmacology, and toxicology of IPO are reviewed and the clinical development plans for this unique and challenging new agent are presented.
Explore the source record for details and available documents.
We have discussed potential ways by which new antifolates could be designed and utilized to effect both sensitive and resistant cell/tumor inhibition. Targeting of alternative folate-dependent enzymes and increasing net intracellular accumulation (transport) and polyglutamation of antifolates should be useful approaches. In addition, antibodies to and cloned cDNAs of the transport components (e.g., folate transport proteins) will allow better characterization and understanding of de novo and acquired antifolate resistance states and may provide insights into new drug development.
Explore the source record for details and available documents.
Explore the source record for details and available documents.
The folate compound 10-formyldihydrofolate (H2folate) has not been found as a component of intracellular folates in normal tissues but has been identified in the cytosol of methotrexate (MTX)-treated MCF-7 breast cancer cells and normal human myeloid precursor cells. Its identity was verified by coelution of this compound with a synthetic marker on high pressure liquid chromatography, its reduction to 10-formyltetrahydrofolate (H4folate) in the presence of dihydrofolate reductase, and its enzymatic deformylation to dihydrofolate in the presence of aminoimidazolecarboxamide ribonucleotide (AICAR) transformylase. Chemically synthesized monoglutamated or pentaglutamated 10-formyl-H2folate was examined for its interaction with three folate-dependent enzymes: AICAR transformylase, glucinamide ribotide (GAR) transformylase, and thymidylatesynthase. 10-Formyl-H2folate-Glu5 was a competitive inhibitor of thymidylate synthase (Ki = 0.16 microM with 5,10-methylene-H4folate-Glu1 as substrate and 1.6 microM with 5,10-methylene-H4folate-Glu5) and inhibited GAR transformylase (Ki = 2.0 microM). It acted as a substrate for AICAR transformylase (Km = 5.3 microM), and its efficiency was equal to that of the natural substrate 10-formyl-H4folate-Glu5. The inhibition of thymidylate synthase by 10-formyl-H2folate was highly dependent on the inhibitor's polyglutamation state, the -Glu5 derivative having a 52-85-fold greater affinity as compared to the affinity of -Glu1. Polyglutamation of 10-formyl-H2folate did not affect its inhibition of GAR transformylase. While the actual role of 10-formyl-H2folate contributing to the cytotoxicity of MTX has not been determined, this compound has the potential to enhance inhibition of GAR transformylase and thymidylate synthase, and at the same time provides additional substrate for AICAR transformylase. The MTX-induced intracellular accumulation of 10-formyl-H2folate and H2folate may play a role in the drug-related cytotoxicity through the contribution of these folates to the inhibition of thymidylate synthase and de novo purine synthesis.