Metastatic HER2-Positive Breast Cancer: Is There an Optimal Sequence of Therapy?

Naomi Dempsey1, Ana Sandoval1, Reshma Mahtani2

  • 1Miami Cancer Institute, 8900 Kendall Drive, Miami, FL, USA.

Abstract

Insights

Treatment for HER2-positive metastatic breast cancer (MBC) has advanced, with specific first-line, second-line, and third-line therapies now established. Ongoing research explores novel treatments and biomarkers for optimizing care in advanced HER2+ MBC.

Area of Science:

  • Oncology
  • Medical Therapeutics
  • Clinical Research

Background:

  • Approximately 20% of breast cancers overexpress human epidermal growth factor receptor 2 (HER2+), representing an aggressive subtype.
  • HER2+ diagnosis historically conferred a poor prognosis due to high risk of systemic and brain metastases.
  • Advances in HER2-targeting therapies have significantly improved outcomes, transforming the prognosis.

Purpose of the Study:

  • To provide an overview of current and future management strategies for HER2-positive advanced breast cancer.
  • To address treatment selection in specific scenarios, including triple-positive breast cancer and brain metastases.
  • To highlight promising novel treatments and ongoing trials impacting future treatment sequencing.

Main Methods:

  • Review of current standard-of-care first-line, second-line, and third-line therapies for HER2+ metastatic breast cancer (MBC).
  • Discussion of treatment options for fourth-line and beyond settings.
  • Exploration of novel therapies under investigation and their potential impact.

Main Results:

  • First-line standard: taxane + trastuzumab + pertuzumab.
  • Second-line preference: trastuzumab deruxtecan (except for CNS involvement, where tucatinib + capecitabine + trastuzumab may be considered).
  • Third-line preference: tucatinib regimen due to demonstrated survival benefits.

Conclusions:

  • The treatment landscape for HER2+ advanced breast cancer is dynamic, with therapies shifting towards earlier stages.
  • Identifying biomarkers and resistance mechanisms is crucial for optimizing therapy selection and patient outcomes.
  • Future management will be shaped by novel treatments and ongoing clinical trials, emphasizing personalized approaches.

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