http://en.wikipedia.org/wiki/Cancer_immunology
Your body is constantly surveilling for cancer cells and eliminating them; in doing so, it selects for cells that can evade the immune system. By the time you have large tumors, the cells are already quite good and evading the immune system, at which point your adaptive immunity system can't help you. These scientists are trying to do first-order engineering on the immune cells to make them more effective.
We've seen this before in science, with antibiotics. A few major, early wins followed by the long silence of failure, due to second-order adaptation by cells.
I would hardly call antibiotics a "long silence of failure" - they are still pretty goddamn effective, even if they aren't quite as effective as they once were.
I'm not denying we got some easy wins with penicillin back in the day, or that people can't be treated with antibiotics.
But I've been in the medical industry long enough to maintain a very high level of skepticism when it comes to cancer treatment.
While anti-retroviral therapy for HIV/AID does not cure the disease, it has transformed a diagnosis that would otherwise have been a death sentence into a manageable illness.
If a "first order" treatment for cancer only extends lives by a few years or even decades, how is that not progress?
But the key difference is that cancer does not pass from person to person, unlike bacteria. All cancer cells die before or with the patient, they don't stick around to "remember" how to defeat the hack.
If we do get some major, early wins, they are likely to be very reproducible, indefinitely.
When you treat a person with a cancer drug, the cancer tumor population evolves (selection and natural variation), when you treat a population with an antibiotic, the bacterial population evolves. That was the point of my analogy.
With infectious disease, if there are ten possible mutations to make the pathogen resistant to treatment, each with a 1% chance of happening within the course of the disease in one patient, then pretty soon all mutations would be present in most of the whole pathogen population on Earth, because of natural selection.
With non-infectious diseases such as cancer, in the same scenario, there would be about a 10% chance of the cancer cells developing one or more of the mutations in each patient, period. A tragedy for those 10% of patients, but a cure for the other 90%.
Please read the entire book "Molecular Biology of Cancer". I'm just explaining small parts of it.
[0] http://en.wikipedia.org/wiki/Devil_facial_tumour_disease
And we know that you can intentionally force the formation of tumors / cancer through introduction. We do this in mice as a regular course of study now.
I suspect that over the coming decades, we're going to find cancer is a far more communicable disease than previously thought.
That seems like a giant conflation to me.
[Edit: should be noted however that the vaccine is for the virus, not from the cancer that can arise from its infection.]
My question would be, why wouldn't cancer continue to evolve with our immune systems? We're not abolishing the process that leads to cancer, or making cancer impossible. This therapy kills it after it comes into existence. What would prevent a modified immune system from being passed on, and what would prevent an evolution on the kind of cancer that said immune system is susceptible to? That is, why wouldn't the next generation of cancer become that much more challenging to fight, requiring constantly evolving the therapy?
Not asking to be pro or con, but genuinely curious about this.
The fact that modifying your immune system doesn't automatically modify the part of your DNA that encodes how to create an immune system. Children don't inherit your experiences, they just inherit your DNA. (For the same reason, cutting your leg off doesn't cause your offspring to have a missing leg.)
1) Acquired antibodies are passed from mother to child.
2) Epigenetics
1) Ignores obvious intention of the author
2) "several"
Saying cancer is just a failure mode of biology isn't given cancer enough credit. It's more like cancer is a side effect of complex organisms, which is nearly impossible to eliminate, without also eliminating a number of highly advantageous features of cells.