We use cookies to understand how you use our site and to improve your experience. This includes personalizing content and advertising. To learn more, click here. By continuing to use our site, you accept our use of cookies. Cookie Policy.

LabMedica

Download Mobile App
Recent News Expo
Medica 2024
Clinical Chem. Molecular Diagnostics Hematology Immunology Microbiology Pathology Technology Industry Focus

Testing for DNA Shed from Colon Cancers into Bloodstream Guides Chemotherapy After Surgery

By LabMedica International staff writers
Posted on 06 Jun 2022

Currently, the use of chemotherapy in stage II colon cancer, which is defined as a colon cancer that has grown through the wall of the colon but does not extend to the lymph nodes or other organs, is controversial. There is no consensus among cancer experts on its benefit. Several prior research studies have demonstrated that circulating tumor DNA (ctDNA) - genetic material shed from tumors into the bloodstream - can be detected in blood and that the presence of ctDNA post-surgery predicts a risk of cancer recurrence. Now, a new research study has shown that ctDNA can identify colon cancer patients who can most benefit from chemotherapy following surgery and spare other patients the need for this form of treatment. This is believed to be the first clinical study showing that the measurement of circulating tumor DNA prior to therapy may benefit patients.

The multi-institutional, international study, led by researchers at the Johns Hopkins Kimmel Cancer Center (Baltimore, MD, USA) and WEHI (Melbourne, Australia), found that testing for ctDNA after surgery and directing chemotherapy to ctDNA-positive patients reduced the use of chemotherapy overall without compromising recurrence-free survival. The researchers were the first to show that colon cancer is caused by a sequence of genetic mutations and showed that DNA shed from tumors could be detected in blood, stool and other body fluids. The study was aimed at helping solve the controversy by assessing whether ctDNA could be used to provide a more precise prediction of recurrence risk after surgery. Patients who were ctDNA-negative could be spared the toxicities of chemotherapy, and those who had remaining cancer could receive chemotherapy to attack the lingering malignant cells.


Image: DNA shed from colon cancers into bloodstream can guide chemotherapy (Photo courtesy of Unsplash)
Image: DNA shed from colon cancers into bloodstream can guide chemotherapy (Photo courtesy of Unsplash)

In the study, 455 patients with stage II colon cancer were randomized after surgery 2:1 to standard treatment or ctDNA-guided management. Of these patients, 153 received standard management, which includes monitoring over time for recurrence or chemotherapy. An additional 302 patients underwent blood tests within seven weeks after surgery to search for ctDNA. If ctDNA was detected, patients received fluoropyrimidine or oxaliplatin-based chemotherapy. If ctDNA was not detected, patients did not receive chemotherapy. The ctDNA-guided approach reduced the use of chemotherapy compared with the standard management group (15.3% of patients in the ctDNA-guided group received chemotherapy versus 27.9% in the standard management group). The two- and three-year survival with no cancer recurrence was similar between the ctDNA-guided group and the standard management group.

The goal of chemotherapy in colon cancer is to eradicate micrometastases, cancer cells not yet visible on radiologic images that travel through the bloodstream and cause the cancer to come back or spread it to other parts of the body. Using ctDNA to detect these invisible cells can now identify which patients are most likely to have micrometastases and, therefore, are most likely to benefit from chemotherapy. The researchers hope these findings will stimulate the study of ctDNA in patients with other stages of colon cancer and other types of cancer.

In future studies, the researchers will explore patients with early-stage pancreatic cancer and stage III colon cancer to see if ctDNA can similarly identify patients who are most likely to benefit from more aggressive chemotherapy than is currently used. They also plan to explore whether the presence of residual ctDNA can be used to help optimize the management of individual patients following surgery or other forms of therapy. Using ctDNA to stratify treatments among patients is part of the movement toward precision medicine - individualized care that tailors therapies to the unique characteristics of a cancer. The researchers also believe the findings will provide opportunities to test promising new drugs in patients with earlier stages of cancer.

“Previous studies have theorized that ctDNA measurements might be useful in guiding patient management, and this study provides real-world clinical evidence that supports these theories,” said Bert Vogelstein, M.D., Clayton Professor of Oncology, co-director of the Ludwig Center at Johns Hopkins and a Howard Hughes Medical Institute investigator. “All drugs work better in patients with cancers that are detected relatively early, before they have given rise to large metastatic masses. However, new drugs are usually first tested in patients whose cancers are very advanced. We hope that ctDNA analysis will enable testing of new drugs in patients with early-stage cancers and micrometastases, when the new drugs are most likely to save lives.”

“Using ctDNA to guide treatment, a stage II colon cancer patient who is negative for ctDNA has a lower chance of cancer recurrence than the average stage I colon cancer patient, so we have an opportunity to change clinical practice,” added Joshua Cohen, a lead author of the study and M.D./Ph.D. candidate at the Johns Hopkins University School of Medicine.

Related Links:
Johns Hopkins Kimmel Cancer Center
WEHI 


Gold Member
Antipsychotic TDM Assays
Saladax Antipsychotic Assays
Antipsychotic TDM AssaysSaladax Antipsychotic Assays
New
Gold Member
Pneumocystis Jirovecii Detection Kit
Pneumocystis Jirovecii Real Time RT-PCR Kit
New
Food Allergens Assay Kit
Allerquant 14G A

Latest Molecular Diagnostics News

Single Metagenomic Next-Generation Sequencing Test Can Detect All Infectious Pathogens

Cutting-Edge Diagnostic Tool Rapidly Identifies Emerging SARS-CoV-2 Variants

Novel Method Analyzes Genetic Variations in Families with High Incidence of Breast Cancer