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Cancers evolve under therapeutic pressure, often developing new resistance mutations. Re-testing the tumor via tissue or liquid biopsy upon progression is essential, as it can identify acquired mutations that make the cancer susceptible to a different, next-generation targeted therapy, extending patient survival.
Experts are enthusiastic about a future paradigm where treatment is adjusted based on detecting emerging resistance mutations (like ESR1) via liquid biopsy before clinical progression occurs. This proactive approach aims to target small resistance clones early, potentially improving long-term outcomes.
ESR1 mutations are rarely found in primary tumors but develop in metastatic settings under pressure from aromatase inhibitors, conferring resistance. This evolution necessitates serial, plasma-based genotyping upon each disease progression to identify these actionable mutations as they emerge.
To preserve treatment options, oncologists employ a tactical approach to re-testing. They avoid re-biopsying a tumor with a known positive biomarker to prevent a negative result from jeopardizing drug coverage. Conversely, they are more likely to re-biopsy a previously negative tumor at recurrence, hoping to find a new, actionable mutation.
A tumor's genetic profile can evolve under treatment pressure. Retesting tissue or blood upon disease progression may reveal new, actionable mutations (e.g., in BRCA genes) that were absent at diagnosis, thereby opening up new targeted therapy options.
ESR1 mutations in breast cancer are acquired alterations, meaning they can be missed by a single test. The speaker advocates for serial testing, especially after disease progression, using blood-based ctDNA analysis. This dynamic monitoring approach is essential for identifying patients who become eligible for targeted therapies over time.
Dr. Bardia emphasizes that ESR1 is an 'acquired alteration,' meaning the mutation can develop during treatment. This necessitates a shift from one-time diagnostic testing to a dynamic, serial testing model. Repeat testing is critical to identify these actionable mutations as they arise, allowing patients to access newly approved targeted therapies.
Retesting for biomarkers with liquid biopsy in the third-line setting is crucial. It can uncover new, actionable mutations that have emerged during treatment or confirm the absence of resistance mutations, potentially allowing patients to benefit from re-challenging with a previously used targeted therapy.
In managing progressive NSCLC, re-biopsy of the tumor is ideal but often fails to yield enough tissue. A presented case study shows liquid biopsy (ctDNA) as a critical alternative, successfully identifying resistance mechanisms to inform subsequent treatment choices when tissue is unavailable.
The standard of care for GIST is evolving to mandate molecular testing at two key points: initial diagnosis and at the time of progression on first-line therapy. Using ctDNA at progression is now deemed critical to identify acquired resistance mechanisms, which directly informs the selection of subsequent, more effective therapies and avoids ineffective treatments.
While loss of HER2 is common at progression, the conversion of a HER2-negative tumor to HER2-positive is an extremely rare but documented event. This possibility justifies re-biopsying progressive disease and repeating the entire biomarker panel, as finding this conversion—even in 1 of 100 patients—can unlock new, life-prolonging targeted therapies.