Investigator

María Hincapié-Otero

Doctoral researcher · University of Helsinki, Research Program in Systems Oncology

MHMaría Hincapié-Ot…
Papers(1)
<i>Ex Vivo</i> …
Collaborators(10)
Matilda SalkoRiitta Koivisto-Koran…Sampsa HautaniemiSanna PikkusaariTuula Anneli SaloUlla‐Maija HaltiaZiqi KangAditi SirsikarAnastasia LundgrenAngéla Szabó
Institutions(3)
University Of HelsinkiHelsinki University H…University of Helsinki

Papers

Ex Vivo Immuno-Oncology Platform Reveals Spatial T-cell Infiltration Patterns Linked to ATR Inhibition Responses in High-Grade Serous Ovarian Cancer

Abstract Identifying new therapeutic approaches in high-grade serous ovarian cancer (HGSC) requires the development of more accurate preclinical models that replicate the patient-specific tumor and its microenvironment. To address this, we established immunocompetent patient-derived cultures (iPDC) for HGSC, cultured on a physiologically relevant human omentum gel matrix. We developed a high-throughput platform that combines drug testing, histologic analysis, genomic profiling, single-cell studies, and spatial biomarker discovery. Our results from 47 tumors showed that iPDCs recapitulated the tumor genomic and histologic characteristics while also retaining the intratumoral immune cells. The iPDC treatment responses correlated significantly with the patients’ clinical treatment responses. Using iPDCs and single-cell RNA sequencing, we identified potentially effective therapeutic options for patients with recurrent HGSC linked to distinct tumor cell states and mechanisms of resistance. High-throughput drug response profiling with single-cell imaging identified ataxia telangiectasia and Rad3-related inhibitor (ATRi) combined with an immunotherapy targeting autotaxin as a promising new combination treatment for HGSC. Using hyperplexed imaging and spatial analysis, we discovered that ATRi responses were associated with significant increases in both intra- and peritumoral T-cell infiltration, particularly in PD-1+ CD8+ T cells. Additionally, the ATRi-induced reactivation of CD8+ T cells was linked to spatial interactions with replication stress–positive tumor cells. Thus, our iPDC platform presents a representative high-throughput ex vivo model to advance precision oncology in HGSC, uncovering the ATRi-immunotherapy combination as a potentially effective therapeutic option for clinical translation.

6Works
1Papers
27Collaborators

Positions

2024–

Doctoral researcher

University of Helsinki · Research Program in Systems Oncology

2023–

Research Assistant

University of Helsinki · Research Program in Systems Oncology

Education

2023

PhD in Clinical Research

University of Helsinki · Research Program in Systems Oncology

2022

MSc in Bioscience

King Abdullah University of Science and Technology · Biological and Environmental Science and Engineering Division

2020

BSc in Chemistry

Universidad del Valle · Faculty of Exact and Natural Sciences

Country

CO