Cancer

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Oncolytic Virus Therapy

Using a virus to trigger an immune response against cancer is a real medical treatment called oncolytic virus therapy.

This treatment works through a dual mechanism. First, genetically modified viruses selectively infect and multiply inside cancer cells, causing them to burst (lyse). Second, this explosion releases hidden cancer proteins (antigens) into the body, which effectively unmasks the tumor and trains the immune system to recognize, track down, and destroy the remaining cancer cells.

As the cancer cell dies, it releases parts of itself, small cell fragments known as tumor antigens that are recognized by a group of immune cells called antigen presenting cells (APCs). APCs oversee the clearing out of dying, or defective cells and when they see tumor antigens, they sound the alarm to other immune cells. APCs secrete signaling molecules called cytokines to recruit more immune cells, activating an army of different cancer fighting cells known as lymphocytes. This activation of immune cells helps the immune system recognize and attack cancer cells anywhere in the body (metastatic lesions), including organs that are difficult to reach like the brain, the spleen, or the bone.

Why It Only Targets Cancer Cells

Healthy cells have strong antiviral defense mechanisms, such as producing interferon, which quickly stops a virus from replicating. Cancer cells often lose these antiviral pathways due to genetic mutations. This allows the engineered virus to freely hijack, replicate inside, and destroy the tumor cells while leaving healthy cells unharmed.

What are the benefits of using OVs in cancer therapy?

Unlike treatments like radiation and chemotherapy, OVs can be engineered to be highly specific for cancer cells while leaving healthy cells unharmed. OVs are naturally attracted to cancer cells because as cells become cancerous, they lose some of the antiviral defenses they had as healthy cells. This allows the virus to replicate (make copies of itself), killing the cancer cell in the process, and then spreading to nearby cancer cells. As the virus spreads, the cancer cells become more visible to the immune system, activating a targeted immune response against the cancer.

How close are we to treating cancer with OVs?

In 2015, the FDA approved the first oncolytic virus, T-VEC, for the treatment of late-stage inoperable skin melanomas. T-VEC is an OV derived from the Herpes Simplex Virus 1 that causes the common cold sore. Engineered to be safer, T-VEC replicates only in cancer cells and carries a gene that boosts the local immune response. T-VEC is being evaluated in combination with immune checkpoint inhibitors, a type of immunotherapy designed to activate the immune system by taking the brakes off from lymphocytes that became fatigued or unable to attack the tumor.

There are more than 320 clinical trials at various stages of development to evaluate a wide range of viruses to treat liver, pancreatic, and other hard to treat cancers.

Researchers are now arming these viruses by inserting special genetic payloads. When the virus infects a tumor, it forces the tumor cells to produce immune-boosting proteins (like cytokines or GM-CSF). This blocks the tumor's ability to hide and maximizes the patient's immune system defense.

OVs can also prevent delivery of nutrients and oxygen to the tumor, which speeds up immune responses and tumor death.

Challenges with OVs

A major challenge for oncolytic virotherapy is preventing the patients immune system from eliminating the virus before it can reach the tumor. Injecting the OV directly into the tumor can help to prevent this, but it can more difficult if the tumor is located in organs that are hard to reach. Another approach could be to use the patients own immune cells as a Trojan horse to deliver the OV to the tumor and avoid detection by the immune system.

The future for OVs is promising and research in this field is encouraging. Recent clinical data suggests that OVs can be used on their own as an immunotherapy, in combination with current treatments, or even to enhance the effectiveness of other immunotherapies. There are more than 320 clinical trials evaluating OVs to treat different cancers. It is only a matter of time before they become part of personalized cancer treatments, offering customized medicine that focus on harnessing and improving the patient’s own immune responses. While viruses have a bad reputation for causing death and disease, OVs are incredible tools to help in the fight against cancer.