Lin Weiqiang, Li Yisu, Qiu Chuan, Zou Binghao, Gong Yun, Zhang Xiao, Tian Di, Sherman William, Sanchez Fernando, Wu Di, Su Kuan-Jui, Xiao Xinyi, Luo Zhe, Tian Qing, Chen Yiping, Shen Hui, Deng Hongwen
Tulane Center for Biomedical Informatics and Genomics, Deming Department of Medicine, School of Medicine, Tulane University, 1440 Canal Street, Downtown, New Orleans, LA 70112, USA.
Department of Cell and Molecular Biology, School of Science and Engineering, Tulane University, 6823 St. Charles Avenue, Uptown, New Orleans, LA 70118, USA.
Nucleic Acids Res. 2025 Jan 11;53(2). doi: 10.1093/nar/gkae1298.
Bone is a multifaceted tissue requiring orchestrated interplays of diverse cells within specialized microenvironments. Although significant progress has been made in understanding cellular and molecular mechanisms of component cells of bone, revealing their spatial organization and interactions in native bone tissue microenvironment is crucial for advancing precision medicine, as they govern fundamental signaling pathways and functional dependencies among various bone cells. In this study, we present the first integrative high-resolution map of human bone and bone marrow, using spatial and single-cell transcriptomics profiling from femoral tissue. This multi-modal approach discovered a novel bone formation-specialized niche enriched with osteoblastic lineage cells and fibroblasts and unveiled critical cell-cell communications and co-localization patterns between osteoblastic lineage cells and other cells. Furthermore, we discovered a novel spatial gradient of cellular composition, gene expression and signaling pathway activities radiating from the trabecular bone. This comprehensive atlas delineates the intricate bone cellular architecture and illuminates key molecular processes and dependencies among cells that coordinate bone metabolism. In sum, our study provides an essential reference for the field of bone biology and lays the foundation for advanced mechanistic studies and precision medicine approaches in bone-related disorders.
骨骼是一种多面性的组织,需要在特殊的微环境中各种细胞进行精心协调的相互作用。尽管在理解骨组成细胞的细胞和分子机制方面已经取得了重大进展,但揭示它们在天然骨组织微环境中的空间组织和相互作用对于推进精准医学至关重要,因为它们控制着各种骨细胞之间的基本信号通路和功能依赖性。在本研究中,我们利用来自股骨组织的空间和单细胞转录组学分析,展示了首张人类骨骼和骨髓的综合高分辨率图谱。这种多模态方法发现了一个富含成骨细胞谱系细胞和成纤维细胞的新型骨形成特异性生态位,并揭示了成骨细胞谱系细胞与其他细胞之间关键的细胞间通讯和共定位模式。此外,我们发现了一种从松质骨辐射出的细胞组成、基因表达和信号通路活性的新型空间梯度。这个全面的图谱描绘了复杂的骨细胞结构,并阐明了协调骨代谢的关键分子过程和细胞间的依赖性。总之,我们的研究为骨生物学领域提供了重要参考,并为骨相关疾病的高级机制研究和精准医学方法奠定了基础。