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Could clearing ‘immune fog’ stop lung cancer? – Cancer Research UK

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Our immune system protects us from many different threats, like bacteria, viruses, parasites and cancer.

It even protects us from some of our own immune cells.

Most of our immune cells attack the things that could make us sick. But without proper supervision, they can go too far and harm our own healthy cells.

So, the immune system has some built-in brakes called regulatory T cells (Tregs).

After other immune cells clear out a threat, Tregs come in and calm them down, allowing the body to start its healing process.

Our body needs a delicate balance of Tregs to stay healthy. Too few, and our immune system can become overactive and attack our own cells, which is linked to autoimmune diseases.

Too many, and they might make it easier for other threats, like cancer, to sneak through our defences and take hold.

That’s the focus of a new study from University College London (UCL). The researchers have uncovered a link between a “fog” of Tregs and an early ‘pre-cancerous’ form of the most common type of lung cancer, non-small cell lung cancer (NSCLC).

Now, with a fog-clearing drug, AI analysis tools and a new type of blood test, the team are working to “intercept” lung cancer before it has the chance to start.

Spotting the precursors of cancer

We know that lung cancer doesn’t appear overnight. It comes after a small number of cells mutate, or change, to become pre-cancerous cells, or lesions.

But lesions can be hard to find, and not all of them turn into cancer. That’s why scientists need better ways to spot them and identify which ones pose the most threat.

So, instead of looking for the cells themselves, the team, led by Dr James Reading and Professor Sam Janes, looked for clues in the immune system.

“We were trying to see if the immune system could give us an early warning system to detect lung cancer before that cancer is fully fledged,” explains Reading.

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“If we could measure that very early immune response in the blood, then that would give us an idea that somebody has an early and growing pre-cancer that we could intercept.”

They went looking for this response in people enrolled in lung cancer screening programmes as well as mouse models. By analysing blood and tissue samples, they were able to look back in time and track how the immune system was behaving before cancer appeared.

In both humans and mouse models, one key player emerged: Tregs.

“We’ve known that in invasive lung cancers these cells are a massive problem, but we never anticipated that they were coming on very intensely super early on during pre-invasive progression,” says Reading.

A specific type of Tregs began to appear in the blood and tissues months or even years before lung cancer developed. This suggested that, as these cells build up over time, they suppress the immune system’s ability to find and clear pre-cancerous cells.

To test this idea, the researchers turned to mouse models.

The team gave a drug that targeted those specific Tregs to mice with pre-cancerous lung cells.

And the results were dramatic. When the drug cleared the Treg ‘fog,’ only half of the mice went on to develop lung cancer compared to those that had no treatment. And none of the mice went on to develop large tumours.

The findings suggest that, in humans too, targeting Tregs could help intercept lung cancer before it takes hold and stop some tumours from developing in the first place.

“This is the first time that we’ve been able to characterise that these cells that we know are a bad actor are really the key players in suppressing the immune system,” Reading says.

New outlook on lung cancer intervention

These findings are giving researchers a new way to think about tackling lung cancer.

“We’re hopefully moving from the current status quo of largely treating cancer when it develops towards tackling the pre-cancerous disease,” says Professor Sam Janes.

“This is called cancer interception, an exciting and emerging area of research which we hope will stop some pre-cancers from ever becoming cancers in the first place.”

The team are working towards bringing their drug to a clinical trial. They’ve designed a prototype blood test that can detect these specific Tregs, which they hope will help them find participants most likely to benefit from the drug.

The blood test has already shown that it can detect these Tregs. Now, the team are optimising it, with the help of AI tools, to make it as accurate as it can be.

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“We’re using these tools to look across every single change in every measured cell across thousands of blood samples from people that did or did not go on to get cancer,” says Reading.

He says that the tool is helping them analyse a large number blood to find other early warning signs of lung cancer that might otherwise be overlooked by the human eye.

Although this work is still in its early phases, its potential is clear.

About 50,200 people are diagnosed with lung cancer in the UK each year, and 80 to 85% of them have NSCLC. If understanding Tregs can help spot more of these cases earlier, it would make a huge difference. More than 6 in 10 people diagnosed with stage 1 lung cancer survive the disease for at least five years, compared with less than 1 in 10 diagnosed at stage four.

But clearing the fog allows us to do even more. By focusing on cancer interception, Reading, Janes and their team are working to make sure fewer people ever have to be diagnosed with lung cancer at all.

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