• Profile
Close

It's not all in their DNA: Cancer cells with the same genome can behave differently

MedicalXpress Breaking News-and-Events Dec 11, 2021

Scientists have tracked and analyzed cancer cell behavior with a novel cellular "barcoding technology."

For the first time, research has shown cancer cells with the same genetic blueprint won't necessarily behave in the same way, with serious implications for how we target them.

A Peter Mac-led study involving a UNSW scientist demonstrating these non-genetic changes in acute myeloid leukemia cells was published today in Nature.

Joint first author Dr. Katie Fennell says: "We developed a novel cellular barcoding technology that can track individual cancer cells over time and identify patterns that lead to different cell behavior—even when the underlying genome is the same."

This barcoding technology (dubbed SPLINTR, which stands for Single-cell Profiling and LINeage TRacing) helps the researchers to identify the unique genes expressed in each leukemia cell, and monitor how this influences the cancer's behavior over time. They can then observe which acute myeloid leukemia cells are most likely to form cancerous tumors.

UNSW scientist and co-author Dr. Emily Wong, who is based at the Victor Chang Cardiac Research Institute, says the fact that regulatory changes are key contributors to disease in the absence of genetic mutations is only starting to be widely recognized.

"The Dawson Lab has developed an exciting method to track the regulatory genome of individual cancer cells over time. We are pleased to be able to contribute our computational analyses to this major advance."

While this study is in acute myeloid leukemia, the technology can be applied to many different cancers, presenting an opportunity to understand why some tumor cells survive drug treatment or relapse in specific organs.

Drug resistance and tumor recurrence are major barriers to the successful treatment of cancer, and often arise from rare populations of tumor cells, which can be difficult to monitor in the clinic.

"Our study highlights the power of using SPLINTR to not only identify these rare tumor subpopulations, but also to find novel therapeutic targets and/or biomarkers to monitor them clinically," says joint first author Dr. Dane Vassiliadis.

"This work challenges the dogma that precision medicine is just about finding new genetic mutations," says senior author on the paper Professor Mark Dawson.

While all precision medicine aims to tailor treatment to the unique features present in a patient's cancer, thus far these approaches have exclusively focused on the unique DNA mutations present.

However, recent studies show that up to 40% of tumors that relapse after initially responding to treatment show no evidence of new gene mutations in the cancer cells to account for this therapy resistance.

This study highlights the importance of broadening the ambition of precision medicine beyond just surveying a patient's DNA mutations.

"This is only one side of the coin. We urgently need to understand and develop treatments to also counter the non-genetic factors that influence cancer cell behavior," says Dr. Vassiliadis.

Go to Original
Only Doctors with an M3 India account can read this article. Sign up for free or login with your existing account.
4 reasons why Doctors love M3 India
  • Exclusive Write-ups & Webinars by KOLs

  • Nonloggedininfinity icon
    Daily Quiz by specialty
  • Nonloggedinlock icon
    Paid Market Research Surveys
  • Case discussions, News & Journals' summaries
Sign-up / Log In
x
M3 app logo
Choose easy access to M3 India from your mobile!


M3 instruc arrow
Add M3 India to your Home screen
Tap  Chrome menu  and select "Add to Home screen" to pin the M3 India App to your Home screen
Okay