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To determine why a BCMA-targeted therapy failed, clinicians are using plasma sequencing assays to check for mutations in the BCMA receptor. The presence of a mutation prompts a switch to a different target rather than retrying a BCMA-directed agent.

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When a patient progresses on a covalent BTK inhibitor, using venetoclax next offers a strategic advantage beyond its efficacy. It may reshape the disease's clonal architecture by suppressing BTK-resistant clones, potentially restoring or improving the benefit from a different BTK inhibitor used later in the treatment course.

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.

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.

An individual tumor can have hundreds of unique mutations, making it impossible to predict treatment response from a single genetic marker. This molecular chaos necessitates functional tests that measure a drug's actual effect on the patient's cells to determine the best therapy.

Using a BCMA bispecific antibody first can exhaust a patient's T-cells or cause tumors to lose the BCMA target, rendering a subsequent BCMA-targeted CAR-T therapy ineffective. The optimal sequence is CAR-T first, which preserves T-cell function and BCMA expression, leaving bispecifics as a viable later-line option.

Circulating tumor DNA (ctDNA) analysis allows for early detection of resistance mechanisms, such as secondary FGFR2 mutations, before tumors show growth on scans. This provides a potential window to adjust treatment strategies proactively, offering an advantage over traditional imaging-based monitoring.

A high-sensitivity NGS assay for cell-free DNA (cfDNA) can detect emerging resistance mutations in the MEN1 gene. This allows for early identification of treatment failure, potentially months before a patient shows clinical signs of relapse, opening a window for proactive therapeutic adjustments like switching inhibitors.

Performing dual analysis with both liquid and tissue biopsies at metastatic diagnosis establishes a comprehensive baseline. This strategy helps differentiate between clonal and later-acquired mutations, enabling more accurate interpretation of subsequent ctDNA monitoring for resistance.