Single‐cell RNA sequencing reveals the CRTAC1+ population actively contributes to the pathogenesis of spinal ligament degeneration by SPP1+ macrophage

Author:

Tang Yulong12ORCID,Zhuo Dachun1,Yu Yuexin1,Pu Weilin23,Ma Yanyun45,Zhang Yuting2,Huang Yan2,Zhang Qing2,Tang Kunhai2,Meng Chen1,Yang Di1,Bai Lu1,He Dongyi67,Jin Li25,Zou Hejian8,Xu Huji9,Zhu Qi67,Wang Jiucun258,Chen Yuanyuan1011,Liu Jing12ORCID

Affiliation:

1. Shanghai Key Laboratory of Vascular Lesions and Remodeling, Shanghai Pudong Hospital, Fudan University Pudong Medical Center, and Human Phenome Institute, Zhangjiang Fudan International Innovation Center Fudan University Shanghai China

2. State Key Laboratory of Genetic Engineering School of Life Science, Fudan University Shanghai China

3. Greater Bay Area Institute of Precision Medicine (Guangzhou), School of Life Sciences, Fudan University Guangzhou China

4. Ministry of Education Key Laboratory of Contemporary Anthropology, Department of Anthropology and Human Genetics School of Life Sciences, Fudan University Shanghai China

5. Research Unit of Dissecting the Population Genetics and Developing New Technologies for Treatment and Prevention of Skin Phenotypes and Dermatological Diseases (2019RU058) Chinese Academy of Medical Sciences Beijing China

6. Institute of Arthritis Research, Shanghai Academy of Chinese Medical Sciences, Guanghua Integrative Medicine Hospital Shanghai China

7. Department of Rheumatology Shanghai Guanghua Hospital of Integrated Traditional Chinese and Western Medicine Shanghai China

8. Division of Rheumatology Huashan Hospital, and Institute of Rheumatology, Immunology and Allergy, Fudan University Shanghai China

9. Department of Rheumatology and Immunology Changzheng Hospital, Naval Medical University Shanghai China

10. Orthopedic Department Shanghai Sixth People's Hospital, Shanghai Jiaotong University Affiliated Shanghai China

11. Orthopaedic Department People's Hospital of Shigatse City Shigatse China

Abstract

AbstractDegenerative spinal stenosis is a chronic disease that affects the spinal ligaments and associated bones, resulting in back pain and disorders of the limbs among the elderly population. There are few preventive strategies for such ligament degeneration. We here aimed to establish a comprehensive transcriptomic atlas of ligament tissues to identify high‐priority targets for pharmaceutical treatment of ligament degeneration. Here, single‐cell RNA sequencing was performed on six degenerative ligaments and three traumatic ligaments to understand tissue heterogeneity. After stringent quality control, high‐quality data were obtained from 32,014 cells. Distinct cell clusters comprising stromal and immune cells were identified in ligament tissues. Among them, we noted that collagen degradation associated with CTHRC1+ fibroblast‐like cells and calcification linked to CRTAC1+ chondrocyte‐like cells were key features of ligament degeneration. SCENIC analysis and further experiments identified ATF3 as a key transcription factor regulating the pathogenesis of CRTAC1+ chondrocyte‐like cells. Typically, immune cells infiltrate localized organs, causing tissue damage. In our study, myeloid cells were found to be inflammatory‐activated, and SPP1+ macrophages were notably enriched in degenerative ligaments. Further exploration via CellChat analysis demonstrated a robust interaction between SPP1+ macrophages and CRTAC1+ chondrocyte‐like cells. Activated by SPP1, ATF3 propels the CRTAC1/MGP/CLU axis, fostering ligament calcification. Our unique resource provides novel insights into possible mechanisms underlying ligament degeneration, the target cell types, and molecules that are expected to mitigate degenerative spinal ligament. We also highlight the role of immune regulation in ligament degeneration and calcification, enhancing our understanding of this disease.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Shanghai Municipality

Science and Technology Commission of Shanghai Municipality

Publisher

Wiley

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