Leveraging tumor organoids to model drug response in clear cell renal cell carcinoma.

N NicolòMaria Buffi (Humanitas University, Pieve Emanuele, Italy) P Pier Paolo Avolio P Paolo Casale G Giovanni Lughezzani A Alberto Saita R Rodolfo Hurle M Marco Paciotti V Vittorio Fasulo R Roberto Contieri E Edoardo Beatrici (Humanitas University, Rozzano, Italy) K Karina Koczberska (IRCCS - Humanitas Research Hospital, Rozzano, Italy) S Salvatore Piscuoglio M Massimo Lazzeri

Abstract

579 Background: Clear cell renal cell carcinoma (ccRCC) is characterized by a highly immunosuppressive tumor microenvironment that plays a crucial role in promoting tumor progression and conferring resistance to conventional treatments, such as chemotherapy and radiotherapy. Systemic therapies, including tyrosine kinase inhibitors (TKIs) and immune checkpoint inhibitors (ICIs), have become central to the management of ccRCC. However, patient responses to these treatments vary significantly. Given the pivotal role of ICIs in ccRCC therapy, recreating the tumor-immune microenvironment in vitro is essential to address the current lack of reliable biomarkers. Patient-derived tumor organoids (PDTOs) offer a highly accurate platform for evaluating drug efficacy tailored to individual patients, significantly enhancing therapeutic decision-making. These models closely replicate the three-dimensional architecture, genetic profile, and behavior of the original tumor tissue. Moreover, PDTOs can be co-cultured with various cell types, such as cancer-associated fibroblasts (CAFs) and immune cells, to simulate the tumor-immune microenvironment. The aim of our study is to set an in vitro drug screening by providing more physiologically relevant PDTOs which could enable researchers to study how therapies, especially TKIs and ICIs, interact with both tumor and immune cells. Methods: This is a translational on-going study including patients with diagnosis ccRCC. We successfully established five patient-derived ccRCC PDTO lines from individuals who underwent partial or radical laparoscopic robotic assisted nephrectomy. All the models faithfully recapitulated the original tumors at both the histological and genetic levels, harboring somatic mutations in key genes such as VHL (50%), PBRM1 (30%), SETD2, and BAP1. The PDTOs were treated with standard-of-care compounds, including Cabozantinib, Lenvatinib, and Axitinib, and the resulting dose-response curves observed. Results: When co-cultured with autologous cancer-associated fibroblasts (CAFs) and immune cells, and treated with the same compounds, the PDTOs exhibited different response patterns compared to PDTOs alone, indicating that the tumor microenvironment significantly modulates drug response. We tested Ipilimumab, Nivolumab, and Pembrolizumab in our co-culture system, both as monotherapies and in combination. The resulting dose-response curves revealed heterogeneous levels of drug sensitivity and resistance. Conclusions: In conclusion, by faithfully replicating the tumor microenvironment and facilitating comprehensive drug screening, this approach aims to identify optimal treatment regimens and uncover mechanisms of resistance. Ultimately, it seeks to create a personalized, predictive model that can enhance clinical decision-making in the management of ccRCC.

Article Details

Volume / Issue Vol. 43, Issue 5_suppl
Published February 10, 2025
Pages 579-579
ISSN 0732-183X
Publisher Lippincott Williams & Wilkins

Journal Info

Journal of Clinical Oncology

Lippincott Williams & Wilkins

ISSN: 0732-183X Health Sciences

Authors (13)

N

NicolòMaria Buffi

Humanitas University, Pieve Emanuele, Italy

P

Pier Paolo Avolio

P

Paolo Casale

G

Giovanni Lughezzani

A

Alberto Saita

R

Rodolfo Hurle

M

Marco Paciotti

V

Vittorio Fasulo

R

Roberto Contieri

E

Edoardo Beatrici

Humanitas University, Rozzano, Italy

K

Karina Koczberska

IRCCS - Humanitas Research Hospital, Rozzano, Italy

S

Salvatore Piscuoglio

M

Massimo Lazzeri