IntraOmmaya compartmental radioimmunotherapy using <sup>131</sup>I-omburtamab-pharmacokinetic modeling to optimize therapeutic index.
basic_science · Level V
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- Record sourced from PubMed, PMID 33047248.
- Also identified by DOI 10.1007/s00259-020-05050-z and PMC identifier 8279045.
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Abstract
Radioimmunotherapy (RIT) delivered through the cerebrospinal fluid (CSF) has been shown to be a safe and promising treatment for leptomeningeal metastases. Pharmacokinetic models for intraOmmaya antiGD2 monoclonal antibody <sup>131</sup>I-3F8 have been proposed to improve therapeutic effect while minimizing radiation toxicity. In this study, we now apply pharmacokinetic modeling to intraOmmaya <sup>131</sup>I-omburtamab (8H9), an antiB7-H3 antibody which has shown promise in RIT of leptomeningeal metastases. Serial CSF samples were collected and radioassayed from 61 patients undergoing a total of 177 intraOmmaya administrations of <sup>131</sup>I-omburtamab for leptomeningeal malignancy. A two-compartment pharmacokinetic model with 12 differential equations was constructed and fitted to the radioactivity measurements of CSF samples collected from patients. The model was used to improve anti-tumor dose while reducing off-target toxicity. Mathematical endpoints were (a) the area under the concentration curve (AUC) of the tumor-bound antibody, AUC [C<sub>IAR</sub>(t)], (b) the AUC of the unbound "harmful" antibody, AUC [C<sub>IA</sub>(t)], and (c) the therapeutic index, AUC [C<sub>IAR</sub>(t)] ÷ AUC [C<sub>IA</sub>(t)]. The model fit CSF radioactivity data well (mean R = 96.4%). The median immunoreactivity of <sup>131</sup>I-omburtamab matched literature values at 69.1%. Off-target toxicity (AUC [C<sub>IA</sub>(t)]) was predicted to increase more quickly than AUC [C<sub>IAR</sub>(t)] as a function of <sup>131</sup>I-omburtamab dose, but the balance of therapeutic index and AUC [C<sub>IAR</sub>(t)] remained favorable over a broad range of administered doses (0.48-1.40 mg or 881-2592 MBq). While antitumor dose and therapeutic index increased with antigen density, the optimal administered dose did not. Dose fractionization into two separate injections increased therapeutic index by 38%, and splitting into 5 injections by 82%. Increasing antibody immunoreactivity to 100% only increased therapeutic index by 17.5%. The 2-compartmental pharmacokinetic model when applied to intraOmmaya <sup>131</sup>I-omburtamab yielded both intuitive and nonintuitive therapeutic predictions. The potential advantage of further dose fractionization warrants clinical validation. ClinicalTrials.gov , NCT00089245.
Medical subject headings
- Iodine Radioisotopes
- Radioimmunotherapy