Engineering Creates Molecules That Target Cancer-Causing Proteins
Led by researchers at NYU Langone Health and its Perlmutter Cancer Center, a new study describes the development of a biologic, a drug derived from natural biological systems, that targets a mutant cancer protein called HER2 (human epidermal growth factor receptor 2) without attacking its nearly identical normal counterpart on healthy cells. While still in the early stages, this technique could lead to new therapies to treat cancer patients with HER2 mutations with minimal side effects, the researchers say.
"We set out to make an antibody that can recognize a single change in the 600 amino acid building blocks that make up the exposed part of the HER2 protein, which conventional wisdom says is very difficult, said lead study author
The new findings revolve around HER2, a protein that occurs on the surfaces of many cell types and that turns on signaling pathways that control cell growth. It can cause cancer when a single amino acid swap locks the protein into "always-active" mode, which in turn causes cells to divide and multiply uncontrollably.
Cancer can also result when cells accidentally make extra copies of the DNA instructions that code for the normal version of HER2 and express higher levels of the protein on their surfaces. There are a few FDA-approved therapies, including trastuzumab and pertuzumab, that can treat this kind of cancer, but these therapies all work at the level of HER2 on the cell surface, where only low levels of the mutated version of HER2 occur. "That means we cannot mark cancer cells just by looking at HER2 levels," said
Publishing in the journal Nature Chemical Biology online
In a process that mimics natural antibody development, the researchers subjected antibodies to multiple rounds of mutation and selection, looking for variants that recognized mutant HER2 but not the normal version. By taking atomic images with a cryo-electron microscope, the team saw how their new antibodies interacted with HER2 spatially (kept two HER2 molecules from interacting to signal), which let the team continually refine their antibody designs.
But selectively recognizing mutant HER2 was only part of developing an effective cancer treatment, since antibodies need to work with the immune system to kill cancer cells. A particular challenge is the case in which cancer cells have only small numbers of mutant HER2 on their surfaces to which an antibody can attach.
To address this challenge, the researchers converted their antibody into a bispecific T cell engager, a molecule in which the antibody targeting the mutant protein is fused to another antibody that binds to and activates immune cells called T cells. One end of the antibody sticks to the mutant HER2 on a cancer cell, while the other triggers T cells to kill the cancer cell. Further testing showed this method killed mutant HER2 cancer cells in dishes but spared normal ones.
When the researchers tested their T-cell engagers in mice with mutant HER2 tumors, the treatment significantly reduced tumor growth. It did so without causing weight loss or visible sickness in the mice, which suggested the treatment had few side effects in the animals. However,
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STUDY DOI
10.1038/s41589-024-01751-w
STUDY LINK WILL BECOME ACTIVE AFTER EMBARGO LIFTS
https://www.nature.com/articles/s41589-024-01751-w
View original content to download multimedia:https://www.prnewswire.com/news-releases/engineering-creates-molecules-that-target-cancer-causing-proteins-302281412.html
SOURCE NYU Langone Health System
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