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Patient-Derived Organoids to Functionally Characterize Chemotherapy Resistance in Breast Cancer

Functional Characterization of Neoadjuvant Chemotherapy Resistance in Breast Cancer Using Patient-Derived Organoid Models and Development of Drug Repurposing Strategies With Next-Generation Small Molecules

Status
Not yet recruiting
Phases
Unknown
Study type
Observational
Source
ClinicalTrials.gov
Registry ID
NCT07516626
Acronym
BC-PDO
Enrollment
40
Registered
2026-04-08
Start date
2026-06-01
Completion date
2029-06-01
Last updated
2026-04-13

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Breast Cancer, Locally Advanced Breast Cancer (LABC)

Keywords

Neoadjuvant Chemotherapy, Chemotherapy Resistance, Patient-Derived Organoids, Drug Repurposing, Pathological Complete Response, Ex Vivo Drug Testing, Locally Advanced Breast Cancer

Brief summary

This prospective observational study aims to functionally characterize chemotherapy resistance in patients with locally advanced breast cancer undergoing neoadjuvant chemotherapy. Despite standard molecular classification, significant heterogeneity in treatment response exists, and the biological mechanisms underlying chemoresistance remain incompletely understood. In this study, patient-derived organoid (PDO) models will be established from tumor tissues obtained during routine clinical care. These three-dimensional models preserve the biological characteristics of individual tumors and enable ex vivo functional assessment of drug response. Chemotherapy sensitivity and resistance will be evaluated using quantitative parameters including Half-Maximal Inhibitory Concentration (IC50) values, cell viability, and apoptotic response. Functional data obtained from PDO models will be correlated with clinical and pathological treatment outcomes, particularly pathological complete response (pCR), to assess the predictive value of PDO-based assays. In addition, apoptotic biomarkers such as Caspase-3/7 will be measured in serum samples collected during routine clinical evaluation and analyzed in relation to treatment response. Furthermore, selected Food and Drug Administration (FDA) and European Medicines Agency (EMA) approved small molecules will be tested in PDO models to evaluate their potential to reverse chemotherapy resistance, supporting drug repurposing strategies. This study aims to establish a functional, patient-specific platform for assessing chemoresistance and to contribute to the development of personalized therapeutic approaches in breast cancer.

Detailed description

Breast cancer is one of the most common malignancies worldwide, and neoadjuvant chemotherapy (NACT) is a standard treatment approach in patients with locally advanced disease. Achieving pathological complete response (pCR) after NACT is strongly associated with improved long-term outcomes. However, significant inter-patient variability in treatment response is observed, even among patients with similar molecular subtypes, highlighting the need for functional approaches to better understand and predict chemotherapy resistance. Current predictive models based on molecular and genomic profiling are limited in their ability to capture the dynamic and functional behavior of tumors. Patient-derived organoid (PDO) models have emerged as a promising platform that preserves tumor architecture, heterogeneity, and biological characteristics, enabling patient-specific functional drug testing in a controlled ex vivo environment. In this prospective observational study, 40 adult female patients diagnosed with locally advanced breast cancer and scheduled to receive neoadjuvant chemotherapy will be enrolled. Tumor tissues obtained during routine diagnostic or therapeutic procedures will be used to establish PDO cultures. No additional invasive procedures will be performed for research purposes. PDO models will be subjected to standardized drug response assays to evaluate chemotherapy sensitivity and resistance. Quantitative endpoints will include dose-response curves (Half-Maximal Inhibitory Concentration (IC50) values), cell viability assays, and apoptotic activity measurements, particularly Caspase-3/7 activation. These functional parameters will be integrated to define resistance phenotypes at the individual patient level. Clinical and pathological response data, including pCR status, will be collected and correlated with PDO-derived functional results to assess the predictive performance of the PDO platform. In parallel, serum samples obtained during routine clinical care will be analyzed for apoptotic biomarkers, and their association with treatment response will be evaluated. In addition, selected Food and Drug Administration (FDA) and European Medicines Agency (EMA) approved small molecules, particularly those not currently used in breast cancer treatment, will be tested on PDO models to investigate their potential to overcome chemotherapy resistance. This approach aims to identify candidate agents for drug repurposing and to generate a functional drug sensitivity profile for each patient. The ultimate goal of this study is to develop a reproducible and clinically relevant functional assay system that integrates ex vivo drug response data with clinical outcomes. This platform may contribute to improved prediction of treatment response, identification of resistance mechanisms, and development of personalized therapeutic strategies in breast cancer.

Interventions

None listed

Sponsors

Atlas University
Lead SponsorOTHER

Study design

Observational model
COHORT
Time perspective
PROSPECTIVE

Eligibility

Sex/Gender
FEMALE
Age
18 Years to No maximum
Healthy volunteers
No

Inclusion criteria

* Female patients aged 18 years or older * Histologically confirmed locally advanced breast cancer * Planned to receive neoadjuvant chemotherapy * Availability of tumor tissue obtained during routine diagnostic or therapeutic procedures * Availability of clinical and pathological treatment data * Ability to provide written informed consent

Exclusion criteria

* Age under 18 years * Metastatic breast cancer * Prior systemic chemotherapy or targeted therapy for the current diagnosis * Presence of another active malignancy * Severe comorbid conditions that may interfere with study participation * Insufficient biological sample for organoid generation or analysis * Inability or unwillingness to provide informed consent

Design outcomes

Primary

MeasureTime frameDescription
Correlation Between PDO-Based Chemotherapy Response Metrics and Pathological Complete Response (pCR)At completion of neoadjuvant chemotherapy (approximately 6 months)Assessment of the association between functional drug response parameters obtained from patient-derived organoid (PDO) models (including Half-Maximal Inhibitory Concentration (IC50) values, cell viability, and apoptotic response) and pathological complete response (pCR) following neoadjuvant chemotherapy.

Secondary

MeasureTime frameDescription
Association Between PDO-Derived Drug Sensitivity Metrics and Clinical Chemotherapy ResistanceAt baseline (prior to initiation of neoadjuvant chemotherapy) and at completion of treatment (approximately 6 months)Evaluation of chemotherapy resistance phenotypes in patient-derived organoid (PDO) models using quantitative measures such as Half-Maximal Inhibitory Concentration (IC50), cell viability, and apoptotic response, and their relationship with clinical treatment outcomes.
Serum Apoptotic Biomarkers and Their Association With Treatment ResponseAt baseline, during neoadjuvant chemotherapy, and at completion of treatment (approximately 6 months)Analysis of serum apoptotic biomarkers, including Caspase-3/7 levels, and their correlation with pathological treatment response and chemotherapy resistance.
Evaluation of Drug Repurposing Strategies in PDO ModelsWithin 6 months after sample collectionAssessment of the effects of selected Food and Drug Administration (FDA) and European Medicines Agency (EMA) approved small molecules on chemotherapy-resistant patient-derived organoid (PDO) models to evaluate their potential to reverse resistance.
Development of Functional Predictive Models for Chemotherapy ResponseWithin 12 months after completion of data collectionIntegration of PDO-derived functional data and clinical parameters to develop predictive models for treatment response in breast cancer patients.

Countries

Turkey (Türkiye)

Contacts

CONTACTEmine Yildirim, MD
emine.yildirim@atlas.edu.tr+905056234825
PRINCIPAL_INVESTIGATOREmine Yildirim

Istanbul Atlas University Faculty of Medicine

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Apr 14, 2026