Pham Huyen T M, Kim Hyo-Sop, Nguyen Duc Long, Joo Hyun Woo, Kim Min Kyu, Sung Young Kwan, Vu Minh Hung, Hahm Heung Sik, Kim Woo Jung, Kim Jae-Ho, Park Hyun-Ji
Department of Molecular Science and Technology, Ajou University, Suwon 16499, South Korea.
Department of Immunology, School of Medicine, Kyungpook National University, Daegu 41944, South Korea.
Biomater Res. 2024 Dec 27;28:0125. doi: 10.34133/bmr.0125. eCollection 2024.
Hair follicle cells reside within a complex extracellular matrix (ECM) environment in vivo, where physical and chemical cues regulate their behavior. The ECM is crucial for hair follicle development and regeneration, particularly through epithelial-mesenchymal interactions. Current in vitro models often fail to replicate this complexity, leading to inconsistencies in evaluating hair loss treatments. Advanced 3-dimensional (3D) culture systems that better mimic in vivo ECM dynamics are needed for more effective therapeutic assessments. Here, we introduce a 3D co-culture system designed to replicate in vivo ECM dynamics. The system incorporates primary dermal papilla cells from human patients, co-cultured with neonatal keratinocytes. This platform facilitates uniform spheroid formation through cell sliding and aggregation, enabling the evaluation of approximately 60 spheroids per well. The model is optimized for high-throughput screening, allowing precise assessments of hair-loss-inducing compounds under consistent conditions. We successfully generated dermal papilla cell and keratinocyte spheroids that closely resemble the native ECM structure, providing an optimal microenvironment for studying hair follicle biology. The 3D co-culture model supported efficient spheroid formation with consistent cellular organization and polarization, along with enhanced ECM-related gene expression crucial for hair follicle regeneration. Uniform spheroid formation and reproducibility were demonstrated across experiments. Overall, the novel 3D co-culture system provides a robust platform for replicating in vivo-like ECM conditions, enabling effective assessment of potential hair loss treatments through epithelial-mesenchymal interactions. Its high-throughput capacity, combined with reproducibility and ease of use, makes it a valuable tool for screening therapeutic candidates and advancing hair loss treatment development.
毛囊细胞在体内存在于复杂的细胞外基质(ECM)环境中,其中物理和化学信号调节它们的行为。ECM对毛囊的发育和再生至关重要,特别是通过上皮-间充质相互作用。目前的体外模型往往无法复制这种复杂性,导致在评估脱发治疗方法时出现不一致的情况。需要先进的三维(3D)培养系统来更好地模拟体内ECM动态,以便进行更有效的治疗评估。在这里,我们介绍一种旨在复制体内ECM动态的3D共培养系统。该系统纳入了来自人类患者的原代表皮乳头细胞,并与新生儿角质形成细胞共培养。这个平台通过细胞滑动和聚集促进均匀球体的形成,每个孔能够评估大约60个球体。该模型针对高通量筛选进行了优化,能够在一致的条件下精确评估导致脱发的化合物。我们成功生成了与天然ECM结构非常相似的真皮乳头细胞和角质形成细胞球体,为研究毛囊生物学提供了一个最佳的微环境。3D共培养模型支持高效的球体形成,具有一致的细胞组织和极化,同时增强了对毛囊再生至关重要的与ECM相关的基因表达。在各个实验中都证明了均匀球体形成和可重复性。总体而言,这种新型的3D共培养系统为复制类似体内的ECM条件提供了一个强大的平台,通过上皮-间充质相互作用能够有效地评估潜在的脱发治疗方法。它的高通量能力,结合可重复性和易用性,使其成为筛选治疗候选物和推进脱发治疗开发的有价值工具。