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Hypoxia is a pivotal factor in enhancing the vascularization potential of both two-dimensional (2D) cultured cells and three-dimensional (3D) cellular spheroids. Nevertheless, spheroids that closely mimic the in vivo microenvironment often experience excessive hypoxia, leading to the necrotic core and the release of toxic byproducts, ultimately impeding the regenerative process. To balance cell vitality and pro-angiogenic properties of cellular spheroids, this study investigates size-dependent hypoxia in stem cell spheroids utilizing an oxygen transfer finite element model. Subsequently, we develop 3D cultured stem cells from human exfoliated deciduous teeth (SHED) spheroids with regulated size-dependent hypoxia. Comprehensive assessments indicate that SHED spheroids, inoculated at a density of 50,000 cells, display moderate physiological hypoxia, which optimizes their pro-angiogenic potential, fusion capacity, and reattachment ability. Compared with SHED sheets, SHED spheroids enhance vascularized pulp regeneration more effectively with a tightly connected odontoblastic-like layer. Moreover, high-throughput transcriptome sequencing and RT-qPCR analysis further confirm the spheroids' ability to promote angiogenesis and odontogenic differentiation. This study not only introduces a practical and effective approach for regulating size-dependent hypoxia in cellular spheroids, and simultaneously enhancing cell vitality and angiogenic potential, but also paves the way for the clinical application of SHED spheroids in regenerative dental pulp therapies. STATEMENT OF SIGNIFICANCE: The core of three-dimensionally cultured cellular spheroids often experiences hypoxia, and maintaining a balance between the activity and functionality of long-term cultured spheroids in the inevitably hypoxic microenvironment remains a significant challenge. This study introduces a method to optimize the hypoxic conditions of SHED spheroids by employing a reaction-diffusion model, which modulates internal hypoxia to balance cellular viability and angiogenic potential. Compared to two-dimensional cell sheets, the optimized SHED spheroids with high cell vitality, angiogenesis potential, tissue integration and reattatchment ability show superior efficacy in promoting the formation of vascularized pulp-like tissue. This work offers valuable insights into the role of hypoxia in stem cell spheroids functionality and provides a foundation for further research into the optimization of stem cell-based therapies for multiple clinical applications.
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http://dx.doi.org/10.1016/j.actbio.2025.04.019 | DOI Listing |
J Microbiol Biotechnol
September 2025
Environmental Diseases Research Center, Korea Research Institute of Bioscience and Biotechnology, Daejeon 34141, Republic of Korea.
Enterohemorrhagic (EHEC), a pathotype within the Shiga toxin-producing (STEC) group, is a major etiological agent of severe gastrointestinal illness and life-threatening sequelae, including hemolytic uremic syndrome. Although insights into EHEC pathogenesis have been gained through traditional 2D cell culture systems and animal models, these platforms are limited in their ability to recapitulate human-specific physiological responses and tissue-level interactions. Recent progress in three-dimensional (3D) cell culture systems, such as spheroids, organoids, and organ-on-a-chip (OoC) technologies, has enabled more physiologically relevant models for investigating host-pathogen dynamics.
View Article and Find Full Text PDFAdv Healthc Mater
September 2025
Department of Pharmacological Sciences, Stony Brook University, Stony Brook, NY, 11794, USA.
Compared to sun-exposed melanomas, acral melanomas are genetically diverse and occur in areas with low sun exposure and high mechanical loads. During metastatic growth, melanomas invade from the epidermis to the dermis layers through dense tumor stroma and are exposed to fibrillar collagen architectures and mechanical stresses. However, the role of these signals during acral melanoma pathogenesis is not well understood.
View Article and Find Full Text PDFEnviron Int
September 2025
Division of Gastrointestinal and Liver Diseases, Department of Medicine, Keck School of Medicine, University of Southern California, Los Angeles, CA, United States. Electronic address:
Background: Although per- and polyfluoroalkyl substances (PFAS) have been linked to chronic liver diseases, the specific cellular and molecular mechanisms by which different PFAS contribute to human liver dysfunction remain unclear. This study aims to elucidate those mechanisms.
Methods: We exposed a multi-donor human liver spheroid model composed of multiple cell types to 20 µM of PFHxS, PFOA, PFOS, or PFNA for seven days, followed by single-cell RNA sequencing and lipid staining.
Int J Mol Med
November 2025
College of Medical Technology, Chengdu University of Traditional Chinese Medicine, Chengdu, Sichuan 611137, P.R. China.
Traditional cancer research generally utilizes commercial immortalized cancer cell lines cultivated in two‑dimensional (2D) culture systems. However, as cell‑cell/cell‑matrix interactions and the microenvironment cannot be explored , 2D cell culture models inadequately replicate the phenotype and physiology of original tissues. Therefore, three‑dimensional (3D) cell culture technologies, such as organoids, which present potential for mimicking the features of primary solid tumors , may be useful in cancer research.
View Article and Find Full Text PDFPLoS One
September 2025
Department of Brain and Behavioral Sciences, University of Pavia, Pavia, Italy.
Recent advances in three-dimensional (3D) biological brain models in vitro and ex vivo are creating new opportunities to understand the complexity of neural networks but pose the technological challenge of obtaining high-throughput recordings of electrical activity from multiple sites in 3D at high spatiotemporal resolution. This cannot be achieved using planar multi-electrode arrays (MEAs), which contact just one side of the neural structure. Moreover, the specimen adhesion to planar MEAs limits fluid perfusion along with tissue viability and drug application.
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