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Unlike many targeted therapies, resistance to the antibody-drug conjugate Trastuzumab-Deruxtecan (TDXD) in HER2-mutant lung cancer is not caused by new HER2 mutations. Instead, resistance mechanisms are linked to the chemotherapy payload, such as the development of efflux pumps, which is a fundamentally different challenge for subsequent treatment strategies.

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Trastuzumab deruxtecan (TDXD) and datopotamab deruxtecan (Dato-DXd) share the same cytotoxic payload, yet Dato-DXd has a much lower rate of interstitial lung disease (ILD). This indicates the toxicity is driven by the antibody-antigen interaction, not the payload itself.

Despite both being options, experts favor the TKI zongertinib for second-line treatment of HER2-mutant NSCLC. This preference is driven by zongertinib's higher response rates (~71%) and longer progression-free survival in this setting, coupled with a better side effect profile compared to the ADC trastuzumab-deruxtecan (TDXD).

In the DESTINY LUNG-02 trial for HER2-mutant NSCLC, the lower 5.4 mg/kg dose of Trastuzumab-Deruxtecan (TDXD) yielded a 51% response rate, compared to 28% for the higher 6.4 mg/kg dose. This paradoxical outcome was driven by significantly higher toxicity, particularly interstitial lung disease (ILD), at the higher dose, which limited patients' ability to stay on treatment.

When sequencing antibody-drug conjugates, clinical experience suggests that resistance to the chemotherapy payload is a primary driver of failure. Therefore, oncologists tend to avoid using another ADC with the same payload consecutively, preferring to switch both target and payload if possible.

The primary reason Antibody-Drug Conjugates (ADCs) stop working is payload resistance, a shift from the traditional belief that failure stems from tumors losing the target antigen. This insight drives development of multi-payload ADCs to overcome this resistance mechanism.

Experts question the efficacy of sequencing ADCs like EV (Nectin-4 target) and DV (HER2 target) because they share the same MMAE chemo payload. Since resistance is often tied to the payload, not the target antibody, switching targets may not overcome resistance, though anecdotal responses have been observed.

A subtle finding in the DESTINY-Breast11 trial, where TDXD alone underperformed TDXD followed by THP, suggests that taxane-based chemotherapy might remain effective even after a patient's HER2-positive cancer becomes resistant to the antibody-drug conjugate TDXD.

When sequencing antibody-drug conjugates (ADCs) for SCLC, resistance may be driven more by the cytotoxic payload (e.g., a topoisomerase 1 inhibitor) than the antibody's target antigen. This suggests prior exposure to a similar payload class could predict non-response, even when using an ADC with a different target.

As more antibody-drug conjugates (ADCs) become available, a key concern is resistance to the cytotoxic payload. If a tumor develops resistance to a topoisomerase-1 inhibitor from one ADC, it may not respond to other ADCs using the same payload, regardless of their different antibody targets, complicating future treatment sequencing.

Contrary to concerns about cross-resistance between HER2 antibody-drug conjugates (ADCs), retrospective data shows TDM-1 remains effective after progression on TDXD. This suggests the different cytotoxic payloads are key, allowing for effective sequencing and challenging the assumption that progression on one ADC class member precludes using another.