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Updated: Feb 20, 2026

In Vivo Immunofluorescence Localization for Assessment of Therapeutic and Diagnostic Antibody Biodistribution in Cancer Research
Published on: September 16, 2019
Antibody or Antibody Fragments: Implications for Molecular Imaging and Targeted Therapy of Solid Tumors
Katerina T Xenaki1, Sabrina Oliveira1,2, Paul M P van Bergen En Henegouwen1
1Division of Cell Biology, Science Faculty, Department of Biology, Utrecht University, Utrecht, Netherlands.
Abstract:
The use of antibody-based therapeutics has proven very promising for clinical applications in cancer patients, with multiple examples of antibodies and antibody-drug conjugates successfully applied for the treatment of solid tumors and lymphomas. Given reported recurrence rates, improvements are clearly still necessary. A major factor limiting the efficacy of antibody-targeted cancer therapies may be the incomplete penetration of the antibody or antibody-drug conjugate into the tumor. Incomplete tumor penetration also affects the outcome of molecular imaging, when using such targeting agents. From the injection site until they arrive inside the tumor, targeting molecules are faced with several barriers that impact intratumoral distribution. The primary means of antibody transport inside tumors is based on diffusion. The diffusive penetration inside the tumor is influenced by both antibody properties, such as size and binding affinity, as well as tumor properties, such as microenvironment, vascularization, and targeted antigen availability. Engineering smaller antibody fragments has shown to improve the rate of tumor uptake and intratumoral distribution. However, it is often accompanied by more rapid clearance from the body and in several cases also by inherent destabilization and reduction of the binding affinity of the antibody. In this perspective, we discuss different cancer targeting approaches based on antibodies or their fragments. We carefully consider how their size and binding properties influence their intratumoral uptake and distribution, and how this may affect cancer imaging and therapy of solid tumors.
Insights
Antibody therapies show promise for cancer treatment, but incomplete tumor penetration limits efficacy. Optimizing antibody size and binding properties is key to improving cancer imaging and therapy outcomes.
Area of Science:
- Oncology
- Immunotherapy
- Molecular Imaging
Background:
- Antibody-based therapeutics are effective for treating various cancers, including solid tumors and lymphomas.
- Despite successes, recurrence rates indicate a need for improved treatment strategies.
- Incomplete tumor penetration by antibodies and antibody-drug conjugates hinders therapeutic efficacy and molecular imaging.
Purpose of the Study:
- To discuss antibody-based cancer targeting approaches.
- To analyze how antibody size and binding properties affect intratumoral uptake and distribution.
- To evaluate the impact of these factors on cancer imaging and therapy for solid tumors.
Main Methods:
- Review of existing literature on antibody-based cancer therapies.
- Analysis of factors influencing antibody penetration and distribution within tumors.
- Discussion of engineering strategies for antibody fragments.
Main Results:
- Antibody transport within tumors primarily relies on diffusion, influenced by antibody and tumor characteristics.
- Smaller antibody fragments can enhance tumor uptake but may lead to faster clearance and reduced stability.
- Tumor microenvironment, vascularization, and antigen availability significantly impact antibody distribution.
Conclusions:
- Antibody size and binding affinity are critical determinants of intratumoral distribution.
- Engineering antibody fragments requires balancing improved uptake with pharmacokinetic and stability considerations.
- Optimizing antibody properties is essential for advancing antibody-targeted cancer imaging and therapy.
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