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Updated: Jul 6, 2025

Tracking Bispecific Antibody-Induced T Cell Trafficking Using Luciferase-Transduced Human T Cells
Published on: May 12, 2023
Mechanistic computational modeling of monospecific and bispecific antibodies targeting interleukin-6/8 receptors
Christina Mp Ray1,2,3, Huilin Yang4,5, Jamie B Spangler1,4,5,6,7,8,9
1Department of Biomedical Engineering, Johns Hopkins University School of Medicine, Baltimore, Maryland, United States of America.
Abstract:
The spread of cancer from organ to organ (metastasis) is responsible for the vast majority of cancer deaths; however, most current anti-cancer drugs are designed to arrest or reverse tumor growth without directly addressing disease spread. It was recently discovered that tumor cell-secreted interleukin-6 (IL-6) and interleukin-8 (IL-8) synergize to enhance cancer metastasis in a cell-density dependent manner, and blockade of the IL-6 and IL-8 receptors (IL-6R and IL-8R) with a novel bispecific antibody, BS1, significantly reduced metastatic burden in multiple preclinical mouse models of cancer. Bispecific antibodies (BsAbs), which combine two different antigen-binding sites into one molecule, are a promising modality for drug development due to their enhanced avidity and dual targeting effects. However, while BsAbs have tremendous therapeutic potential, elucidating the mechanisms underlying their binding and inhibition will be critical for maximizing the efficacy of new BsAb treatments. Here, we describe a quantitative, computational model of the BS1 BsAb, exhibiting how modeling multivalent binding provides key insights into antibody affinity and avidity effects and can guide therapeutic design. We present detailed simulations of the monovalent and bivalent binding interactions between different antibody constructs and the IL-6 and IL-8 receptors to establish how antibody properties and system conditions impact the formation of binary (antibody-receptor) and ternary (receptor-antibody-receptor) complexes. Model results demonstrate how the balance of these complex types drives receptor inhibition, providing important and generalizable predictions for effective therapeutic design.
Insights
A novel bispecific antibody (BsAb) targeting interleukin-6 (IL-6) and interleukin-8 (IL-8) receptors significantly reduced cancer metastasis in preclinical models. Computational modeling revealed how BsAb binding mechanisms guide effective therapeutic design for cancer spread.
Area of Science:
- Oncology
- Immunology
- Computational Biology
Background:
- Cancer metastasis, the spread of cancer cells, causes most cancer-related deaths.
- Current therapies often fail to address metastasis, focusing instead on tumor growth.
- Interleukin-6 (IL-6) and Interleukin-8 (IL-8) secreted by tumor cells synergistically promote cancer spread.
Approach:
- A novel bispecific antibody (BsAb), BS1, was developed to block both IL-6 and IL-8 receptors (IL-6R and IL-8R).
- Preclinical mouse models demonstrated that BS1 significantly reduced metastatic burden.
- A quantitative computational model was created to simulate BS1's binding interactions with IL-6R and IL-8R.
Key Points:
- The model simulates monovalent and bivalent binding of BS1 to IL-6R and IL-8R, analyzing binary and ternary complex formation.
- It elucidates how antibody properties and system conditions influence these complex formations.
- Understanding these multivalent binding dynamics is crucial for optimizing BsAb efficacy.
Conclusions:
- Computational modeling provides key insights into antibody affinity and avidity effects for BsAb therapeutic design.
- The balance of different complex types dictates receptor inhibition, offering generalizable predictions for effective cancer spread therapies.
- This approach aids in maximizing the therapeutic potential of bispecific antibodies against cancer metastasis.

