Hepatocellular carcinoma (HCC), a prevalent and extensively diverse tumor1, has garnered considerable attention within the medical community. The presence of lineage plasticity and substantial heterogeneity in HCC suggests that tumor cells originating from various patients and even distinct lesions within the same patient may manifest dissimilar molecular and phenotypic traits, thereby presenting formidable obstacles in the advancement of innovative therapeutic approaches2,3,4,5. Consequently, there is an imperative need for enhanced comprehension of the biological attributes and mechanisms of drug resistance in HCC to inform the formulation of more efficacious treatment strategies.
In recent decades, researchers have dedicated their efforts to the development of in vitro models for the purpose of studying HCC3,4. Despite some advancements, limitations persist. These models encompass a range of techniques, such as the utilization of cell lines, primary cells, and patient-derived xenografts (PDX). Cell lines serve as in vitro models for long-term culture of tumor cells obtained from HCC patients, offering the benefits of convenience and facile expansion. Primary cell models involve direct isolation and culture of primary tumor cells from patient tumor tissues, thereby providing a representation of biological characteristics that closely resemble those of the patients themselves. PDX models entail the transplantation of patient tumor tissues into mice, with the aim of more faithfully simulating tumor growth and response. These models have been instrumental in HCC research, yet they possess certain limitations, including the heterogeneity of cell lines and the inability to fully replicate in vivo conditions. Furthermore, prolonged in vitro cultivation may result in the deterioration of the cells' original characteristics and functionalities, posing challenges in accurately representing the biological properties of HCC. Additionally, the utilization of PDX models is both time-consuming and costly3.
To address these limitations and more accurately replicate the physiological attributes of HCC, the utilization of organoid technology has been introduced as a promising research platform capable of surpassing previous constraints. Organoids, which are three-dimensional cell models cultured in vitro, have the ability to replicate the structure and functionality of actual organs. However, in the context of HCC, there exist certain challenges in establishing organoid models. These challenges include insufficiently detailed descriptions of HCC organoid construction procedures, a lack of comprehensive protocols for the entire process of HCC organoid construction, and the typically small size of cultured organoids6,7,8. In light of the typically limited dimensions of cultured organoids, we endeavored to tackle these challenges through the development of a comprehensive protocol encompassing the entirety of HCC organoid construction6. This protocol encompasses tissue dissociation, organoid plating, culture, passaging, cryopreservation, and resuscitation. By optimizing the procedural steps and refining the composition of the culture medium, we have successfully established HCC organoid models capable of sustained growth and long-term passaging6,8. In the subsequent sections, a comprehensive account of the operational intricacies and pertinent factors involved in the construction of HCC organoids will be presented.