‘Smart’ Nanoparticles Deliver mRNA Directly to Tumors in New Cancer Therapy
by Javier Carbajal · WIREDComment
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Our immune systems don’t just fight bacteria and viruses invading the body. They are responsible for keeping our own tissues in check, taking out cancerous cells before they have a chance to grow. Once a tumor forms, however, it can create an environment that declaws cancer-fighting immune cells—in some cases even reprogramming them to suppress other parts of the immune system.
Overcoming the oppressive tumor environment remains a barrier for even some of the most promising treatments. “One of the biggest challenges in cancer immunotherapy is that the immune system may be capable of attacking a tumor, but the tumor environment can stop those immune cells from doing their job,” University of Adelaide professor Chunxia Zhao explained in a press release.
In a study published this week in Science Advances, Zhao’s team developed a system that can precisely deliver an mRNA therapy to transform immune cells back into allies. The researchers focused on tumor-associated macrophages, which—when rewired by signals from the cancer—hinder the arrival and activity of T cells, one of the body’s main weapons against cancer. The mRNA carries the instructions for producing CXCL9, a chemical signal for recruiting T cells.
Flipping this switch is the easy part. mRNA technologies have been rapidly advancing, especially in the realm of cancer treatments, since they were first introduced to the public as Covid vaccines. However, you don’t want an immune-activating signal going just anywhere in the body. A risk of any immunotherapy is amping up the immune system too much, which can cause dangerous and potentially deadly side effects.
To make sure the mRNA made it directly to the site of the tumor and nowhere else, the researchers developed a delivery method they dubbed “smart” nanoparticles. In any mRNA therapy, including a standard Covid shot, the mRNA is encased in some kind of nanoparticle, usually a lipid envelope. This fatty structure helps the molecules enter cells. In this case, the researchers took this basic technology and added a targeting mechanism to ensure the mRNA only got into the right cells.
The smart nanoparticles were studded with antibodies that bind to TREM2, a protein present on the surface of tumor-associated immunosuppressive macrophages. A tumor’s environment tends to be a messy place full of many different cell types, so not only does this honing mechanism help get the therapy to the right part of the body, but only into macrophages in that region that need reprogramming.
In addition to the mRNA, the smart nanoparticles also carried a drug called resiquimod, which can stimulate certain immune pathways. Initial laboratory results showed that not the previously lethargic macrophages began producing CXCL9 as well as other markers of an active immune state, such as NOS2, expression of which increased by a factor of 89.5. Signals of a more immunosuppressive state also notably decreased.
The researchers then administered the smart nanoparticles to mice with aggressive breast cancer. After three doses, tumor growth slowed. The concentration of CXCL9 was approximately four times higher than in the control group, and the researchers detected the presence of T-cell activity. The treatment also reduced the proportion of macrophages with immunosuppressive characteristics by 63 percent.
Often, cancer treatments are combined to attack the tumor from different directions. The researchers tested their new therapy in combination with two types of immunotherapy already used called immune checkpoint inhibitors. The combination did not further reduce the tumor size, but it did generate important changes in the immune system. Different types of T cells increased within the tumors and nearby lymph nodes—a finding associated with the potential for a more lasting immune response.
The researchers also did not detect any negative effects to other organs, but they urged caution that more studies are needed to evaluate the safety before human trials can begin.
“This is an important proof of concept that we can use mRNA and nanoparticle technology to reprogram the immune environment of a tumor,” said Professor Zhao. “There is still significant work to do before this approach could be considered for patients, but these results provide an encouraging foundation for developing more targeted cancer immunotherapies.”
This story originally appeared on WIRED en Español and has been translated from Spanish.