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Preclinical Pharmacokinetic Evaluation of Mithramycin and Mithramycin SA Tryptophan-Conjugated Analog
Kumar Kulldeep Niloy1,2, Jamie Horn1, Nazmul H Bhuiyan3,4
1Department of Pharmacy and Pharmaceutical Sciences, St. Jude Children's Research Hospital, Memphis, TN 38105, USA.
Abstract:
Background: Mithramycin (MTM) is a polyketide anti-cancer natural product previously identified as an EWS-FLI1 inhibitor. This oncogenic transcription factor is a canonical target for drug development in Ewing sarcoma. However, poor pharmacokinetics have been identified as a critical liability of MTM, preventing its further development. Through semisynthetic chemical modifications, we identified mithramycin SA-Trp (MTMSA-Trp) as being a pharmacologically superior congener. To explore their pharmacokinetic (PK) differences, this study examined the plasma PKs and plasma protein binding (PPB) of MTM and MTMSA-Trp in mice, rats, and monkeys. Methods: Protein binding was investigated by rapid equilibrium dialysis in plasma from mice, rats, monkeys, and humans. The pharmacokinetics were investigated at milligram- and microgram-level doses in mice and rats. The pharmacokinetics in monkeys were investigated using the cassette dosing approach at two microgram-level doses. The MTMSA-Trp pharmacokinetic linearity was evaluated in mice at 0.3, 1, 3, and 10 mg/kg doses. All samples were analyzed using LC-MS/MS. Results: Plasma protein binding was higher for MTMSA-Trp (1-4% unbound) than for MTM (10-30% unbound) across species, except in athymic nude mice (1-4% unbound and <1% for mithramycin and MTMSA-Trp, respectively). In mice and rats, MTMSA-Trp had significantly lower clearance than MTM at both milligram and microgram doses; however, the difference in plasma exposure was more pronounced at milligram doses. Consistent with the rodent PK results, cassette microdosing in monkeys showed that the clearance of MTMSA-Trp was lower than that of MTM, but the differences were less pronounced. In the dose proportionality study, MTMSA-Trp showed linear pharmacokinetics at 1, 3, and 10 mg/kg doses. Conclusions: MTMSA-Trp has significantly lower clearance than MTM in rodent models. This is a significant improvement compared to the parent drug, MTM, and warrants further evaluation of PKs in non-rodent models to enable the prediction of MTMSA-Trp PK in humans.
Insights
Mithramycin SA-Trp shows improved pharmacokinetics, including lower clearance and higher plasma protein binding compared to mithramycin, suggesting enhanced potential for treating Ewing sarcoma.
Area of Science:
- Pharmacology
- Drug Development
- Oncology
Background:
- Mithramycin (MTM) is an anti-cancer natural product and EWS-FLI1 inhibitor.
- Poor pharmacokinetics limit MTM's clinical development for Ewing sarcoma.
- Mithramycin SA-Trp (MTMSA-Trp) is a semisynthetic congener with potentially improved pharmacological properties.
Purpose of the Study:
- To compare the plasma pharmacokinetics (PK) and plasma protein binding (PPB) of MTM and MTMSA-Trp.
- To evaluate PK differences in mice, rats, and monkeys.
- To assess the dose proportionality and linearity of MTMSA-Trp.
Main Methods:
- Plasma protein binding assessed using rapid equilibrium dialysis across species.
- Pharmacokinetics evaluated at various doses (milligram and microgram) in rodents.
- Cassette microdosing used for monkey PK studies.
- LC-MS/MS employed for sample analysis.
Main Results:
- MTMSA-Trp exhibited higher plasma protein binding (lower unbound fraction) than MTM across most species.
- MTMSA-Trp demonstrated significantly lower clearance than MTM in mice and rats, especially at milligram doses.
- Monkey PK studies indicated lower clearance for MTMSA-Trp compared to MTM.
- MTMSA-Trp displayed linear pharmacokinetics across a range of doses in mice.
Conclusions:
- MTMSA-Trp possesses significantly lower clearance than MTM in rodent models.
- These improved PK properties represent a substantial advancement over MTM.
- Further evaluation in non-rodent models is warranted to predict human PK for MTMSA-Trp.
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