“The dual function of MiTEs enables them to attack the tumor from multiple immune angles at once,” explains von Locquenghien. “These molecules are designed to turn both the tumor’s allies and its suppressive environment into its Achilles’ heel.”
Zwicky highlights the promise of this approach for improving cancer treatment, especially since it acts through immune pathways common to many cancers rather than through tumor-specific antigens. “Because MiTEs act through immune mechanisms present in many patients and cancer types, they have the potential to be broadly applicable,” she says.
This innovative development was made possible through advanced technologies and methods, including the use of big data and of spatial transcriptomics, a technique that reveals where genes are active in a tissue. “We mapped the spatial immune architecture in human tumors at single-cell resolution level and found that the TREM2-carrying macrophages were often positioned in direct proximity to immune killer cells that appeared exhausted,” Xie says. “That spatial insight led us to design biological molecules that could block immune-suppressing macrophages while simultaneously delivering a localized activation signal to the killer cells, energizing them to attack the tumor while minimizing collateral damage.”
This approach exemplifies a growing trend in cancer immunology: designing therapies that reshape the tumor microenvironment rather than focusing solely on killing cancer cells. “The future of immunotherapy lies in combining safety with precision – reprogramming the immune ecosystem from the inside rather than targeting cancer cells directly,” says Amit