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PMID: 12649189 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S.

Theoretical analysis of antibody targeting of tumor spheroids: importance of dosage for penetration, and affinity for retention.

Cancer research ·Vol. 63 ·No. 6 ·2003-03-15 ·Pages 1288-96

Graff CP, Wittrup KD

Abstract

The interplay among antibody/antigen binding kinetics, antibody diffusion, and antigen metabolic turnover together determines the depth of penetration of antitumor antibodies into prevascular tumor spheroid cell clumps. A sharp boundary between an outer shell of bound high-affinity antibody and an inner antibody-free core has been previously observed and mathematically modeled and was termed the "binding site barrier." We show here that this process is well described by a simplified shrinking core model wherein binding equilibration is much more rapid than diffusion. This analysis provides the following experimentally testable predictions: (a) the binding site barrier is a moving boundary whose velocity is proportional to the time integral of antibody concentration at the spheroid surface (i.e. plasma antibody AUC); (b) the velocity of this moving boundary is independent of binding affinity, if the affinity is sufficiently high to strongly favor antibody/antigen complex formation at prevailing antibody concentrations; and (c) maximum tumor retention is achieved when the antibody/antigen dissociation rate approaches the rate of antigen metabolic turnover. The consistency of these predictions with published experimental results is demonstrated. The shrinking core model provides a simple analytic relationship predicting the effects of altered antibody pharmacokinetics, antibody molecular weight, antigen turnover rate, antigen expression level, and micrometastasis size on antibody penetration and retention. For example, a formula is provided for predicting the bolus dose necessary to accomplish tumor saturation as a function of antibody and tumor properties. Furthermore, this analysis indicates certain attributes necessary for an optimal tumor targeting agent.

MeSH Terms
Animals Antibodies/immunology,metabolism Antigen-Antibody Complex/biosynthesis Antigens, Neoplasm/biosynthesis,immunology,metabolism Humans Immunoglobulin Fragments/metabolism Kinetics Melanoma/immunology,metabolism Mice Models, Immunological Neoplasms/immunology,metabolism Spheroids, Cellular/immunology,metabolism Tissue Distribution Transplantation, Heterologous
Chemicals
Antibodies Antigen-Antibody Complex Antigens, Neoplasm Immunoglobulin Fragments
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Graff Christilyn P
Department of Chemical Engineering and Division of Biological Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.
Wittrup K Dane
Article Info
Journal
Cancer research
Abbr.
Cancer Res
ISSN
0008-5472
Published
2003-03-15
Pages
1288-96
Language
English
Region
United States
NLM ID
2984705R
Subset
IM
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