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Role of Interstitial Fluid Turnover on Target Suppression by Therapeutic Biologics Using a Minimal Physiologically
Xiaobing Li1, William J Jusko1, Yanguang Cao2
1Department of Pharmacy, Shengjing Hospital of China Medical University, Shenyang, China (X.L.); Division of Pharmacotherapy and Experimental Therapeutics, UNC Eshelman School of Pharmacy, University of North Carolina at Chapel Hill, Chapel Hill, North Carolina (X.L., Y.C.); and Department of Pharmaceutical Sciences, School of Pharmacy and Pharmaceutical, Sciences, State University of New York at Buffalo, Buffalo, New York (W.J.J.).
Abstract:
For therapeutic biologics against soluble ligands, the magnitude and duration of target suppression affect their therapeutic efficacy. Many factors have been evaluated in relation to target suppression but the interstitial fluid turnover rate in target tissues has not been considered. Inspired by the fact that etanercept exerts limited efficacy in Crohn's disease despite its high efficacy in rheumatoid arthritis, we developed a minimal physiologically based pharmacokinetic model to investigate the role of the tissue fluid turnover rate on soluble target suppression and assessed the interrelationships between binding constants and tissue fluid turnover. Interstitial fluid turnover rates in target tissues were found to strongly influence target binding kinetics. For tissues with low fluid turnover, stable binders (low koff) exhibit greater target suppression, but efficacy is often restricted by accumulation of the drug-target complex. For tissues with high fluid turnover, fast binders (high kon) are generally favored, but a plateau effect is present for antibodies with low dissociation rates (koff). Etanercept is often regarded as a fast tumor necrosis factor-α (TNF-α) binder (high kon) despite comparable binding affinity (KD, koff/kon) with adalimumab and infliximab. Crohn's disease largely involves the colon, a tissue with relatively slower fluid turnover than arthritis-associated joint synovium; this may explain why etanercept exerts poor TNF-α suppressive effect in Crohn's disease. This study highlights the importance of tissue interstitial fluid turnover in evaluation of therapeutic antibodies bound to soluble antigens.
Insights
Interstitial fluid turnover significantly impacts therapeutic antibody efficacy by influencing target suppression. Understanding tissue fluid dynamics is crucial for optimizing biologic drug development and predicting treatment outcomes.
Area of Science:
- Pharmacokinetics and Pharmacodynamics
- Biologics and Therapeutic Antibodies
- Tissue Microenvironment
Background:
- Therapeutic biologics targeting soluble ligands rely on effective target suppression.
- Factors influencing target suppression are well-studied, but tissue interstitial fluid turnover has been overlooked.
- Etanercept's variable efficacy in rheumatoid arthritis versus Crohn's disease suggests unconsidered variables.
Purpose of the Study:
- To investigate the role of interstitial fluid turnover rate in target suppression by therapeutic antibodies.
- To assess the interrelationships between binding kinetics and tissue fluid turnover.
- To explain etanercept's differential efficacy in various diseases.
Main Methods:
- Development of a minimal physiologically based pharmacokinetic model.
- Simulation of therapeutic antibody-target interactions under varying tissue fluid turnover rates.
- Analysis of binding constants (k_on, k_off, K_D) and their influence on target suppression.
Main Results:
- Interstitial fluid turnover rates strongly influence target binding kinetics and overall suppression.
- In low turnover tissues, stable binders (low k_off) show greater suppression, limited by complex accumulation.
- In high turnover tissues, fast binders (high k_on) are favored, with a plateau effect for low k_off antibodies.
Conclusions:
- Tissue interstitial fluid turnover is a critical factor in evaluating therapeutic antibodies against soluble antigens.
- The slower fluid turnover in the colon may explain etanercept's reduced efficacy in Crohn's disease.
- Pharmacokinetic models should incorporate tissue fluid dynamics for improved drug development.
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