Population pharmacokinetic model for oral ORIN1001 in Chinese patients with advanced solid tumors

Xiaoqing Li1, Yunhai Bo1, Qingping Zeng2

  • 1Key Laboratory of Carcinogenesis and Translational Research (Ministry of Education), National Drug Clinical Trial Center, Peking University Cancer Hospital and Institute, Beijing, China.

PubMed

Insights

The first population pharmacokinetic (PopPK) model for ORIN1001, an IRE1-α inhibitor, identified total bilirubin and lean body weight as key factors influencing drug exposure. This model aids future development of ORIN1001 for cancer therapy.

Area of Science:

  • Pharmacology
  • Oncology
  • Clinical Pharmacology

Background:

  • ORIN1001 is a novel oral IRE1-α endoribonuclease inhibitor targeting XBP1 activation.
  • It is under clinical investigation for cancer growth inhibition and to potentiate chemotherapy or targeted treatments.

Purpose of the Study:

  • To develop the first population pharmacokinetic (PopPK) model for ORIN1001.
  • To characterize ORIN1001 pharmacokinetics (PK) and identify influencing covariates.
  • To support the ongoing clinical development of ORIN1001.

Main Methods:

  • A non-linear mixed-effects model was employed using data from a Phase I clinical trial (NCT05154201) in Chinese patients with advanced solid tumors.
  • Covariate analysis utilized a stepwise screening process.
  • Model validation included goodness-of-fit plots, non-parametric bootstrap, visual predictive checks, and normalized prediction distribution errors.

Main Results:

  • A two-compartment model with first-order absorption and elimination best described ORIN1001 PK.
  • Total bilirubin (TBIL) and lean body weight (LBW) were identified as significant covariates affecting ORIN1001 oral clearance (CL/F).
  • Simulations confirmed clinically significant impacts of TBIL and LBW on steady-state ORIN1001 exposure.

Conclusions:

  • The first PopPK model for ORIN1001 was successfully established.
  • TBIL and LBW are important covariates for ORIN1001 exposure, informing potential dose adjustments.
  • Further validation in larger populations is needed to confirm the necessity of dose adjustments.

Related Concept Videos

One-Compartment Open Model for IV Bolus Administration: General Considerations01:19

One-Compartment Open Model for IV Bolus Administration: General Considerations

The one-compartment model is a pharmacokinetic tool that models the body as a single, uniform compartment, facilitating the understanding of drug distribution and elimination. This model is particularly beneficial for intravenous (IV) bolus administration, where the drug rapidly circulates throughout the body.
The drug's presence in the body is defined by an equation representing the difference between the rates of drug entry and exit. Key parameters—elimination rate constant,...
198
One-Compartment Open Model for IV Bolus Administration: Estimation of Elimination Rate Constant, Half-Life and Volume of Distribution01:09

One-Compartment Open Model for IV Bolus Administration: Estimation of Elimination Rate Constant, Half-Life and Volume of Distribution

The one-compartment open model is a simplified approach used in pharmacokinetics to understand the distribution and elimination of a drug administered through an intravenous bolus. This model assumes rapid drug dispersal throughout the body and elimination using a first-order process. Key pharmacokinetic parameters, such as the elimination rate constant (k), half-life (t1/2), and the apparent volume of distribution (Vd), can be estimated from this model. The elimination rate is calculated...
250
Pharmacokinetic Models: Overview01:20

Pharmacokinetic Models: Overview

Pharmacokinetic models utilize mathematical analysis to achieve a detailed quantitative understanding of a drug's life cycle within the body. They are instrumental in simulating a drug's pharmacokinetic parameters, predicting drug concentrations over time, optimizing dosage regimens, linking concentrations with pharmacologic activity, and estimating potential toxicity.
There are three primary types of models: empirical, compartment, and physiological. Empirical models, with minimal...
673
Physiological Pharmacokinetic Models: Incorporating Hepatic Transporter-Mediated Clearance01:07

Physiological Pharmacokinetic Models: Incorporating Hepatic Transporter-Mediated Clearance

Drug transporters are critical in drug absorption, distribution, and excretion processes. They should be included in physiological-based pharmacokinetic (PBPK) models, which help predict human drug disposition. However, predicting this is challenging during drug development, especially when liver transport is involved. However, with a realistic representation of body transport processes, an accurate model may be possible.
A recent model describes pravastatin's hepatobiliary excretion,...
38
Model Approaches for Pharmacokinetic Data: Distributed Parameter Models01:06

Model Approaches for Pharmacokinetic Data: Distributed Parameter Models

Pharmacokinetic models are mathematical constructs that represent and predict the time course of drug concentrations in the body, providing meaningful pharmacokinetic parameters. These models are categorized into compartment, physiological, and distributed parameter models.
The distributed parameter models are specifically designed to account for variations and differences in some drug classes. This model is particularly useful for assessing regional concentrations of anticancer or...
69
Two-Compartment Open Model: IV Bolus Administration01:18

Two-Compartment Open Model: IV Bolus Administration

The two-compartment model for intravenous (IV) bolus administration illustrates drug distribution in the body, subdividing it into central and peripheral compartments. This model operates on the concept of two-compartment kinetics. The drug's plasma concentration shows a bi-exponential decline following IV bolus administration, signaling the presence of two disposition processes: distribution and elimination.
The disparity between drug input and the sum of drug transfer rates between...
505