Lei Tian
Lei Tian
1
Beijing Institute of Ophthalmology, Beijing Tongren Eye Center, Beijing Tongren Hospital, Capital Medical University and Beijing Ophthalmology and Visual Sciences Key Laboratory, Beijing, China
2
Beijing Advanced Innovation Center for Big Data-Based Precision Medicine, Beijing Tongren Hospital, Beihang University and Capital Medical University, Beijing, China
1,2,†,
Xiao Qin
Xiao Qin
3
Beijing Key Laboratory of Fundamental Research on Biomechanics in Clinical Application, Capital Medical University, Beijing, China
4
School of Biomedical Engineering, Capital Medical University, Beijing, China
5
Department of Otolaryngology, Peking Union Medical College Hospital, Beijing, China
3,4,5,†,
Hui Zhang
Hui Zhang
3
Beijing Key Laboratory of Fundamental Research on Biomechanics in Clinical Application, Capital Medical University, Beijing, China
4
School of Biomedical Engineering, Capital Medical University, Beijing, China
3,4,
Di Zhang
Di Zhang
3
Beijing Key Laboratory of Fundamental Research on Biomechanics in Clinical Application, Capital Medical University, Beijing, China
4
School of Biomedical Engineering, Capital Medical University, Beijing, China
3,4,
Li-Li Guo
Li-Li Guo
6
The First People’s Hospital of Xuzhou, Xuzhou, China
6,
Hai-Xia Zhang
Hai-Xia Zhang
3
Beijing Key Laboratory of Fundamental Research on Biomechanics in Clinical Application, Capital Medical University, Beijing, China
4
School of Biomedical Engineering, Capital Medical University, Beijing, China
3,4,
Ying Wu
Ying Wu
7
Department of Ophthalmology, Chinese People’s Liberation Army General Hospital, Beijing, China
7,
Ying Jie
Ying Jie
1
Beijing Institute of Ophthalmology, Beijing Tongren Eye Center, Beijing Tongren Hospital, Capital Medical University and Beijing Ophthalmology and Visual Sciences Key Laboratory, Beijing, China
1,*,
Lin Li
Lin Li
3
Beijing Key Laboratory of Fundamental Research on Biomechanics in Clinical Application, Capital Medical University, Beijing, China
4
School of Biomedical Engineering, Capital Medical University, Beijing, China
3,4,*
1
Beijing Institute of Ophthalmology, Beijing Tongren Eye Center, Beijing Tongren Hospital, Capital Medical University and Beijing Ophthalmology and Visual Sciences Key Laboratory, Beijing, China
2
Beijing Advanced Innovation Center for Big Data-Based Precision Medicine, Beijing Tongren Hospital, Beihang University and Capital Medical University, Beijing, China
3
Beijing Key Laboratory of Fundamental Research on Biomechanics in Clinical Application, Capital Medical University, Beijing, China
4
School of Biomedical Engineering, Capital Medical University, Beijing, China
5
Department of Otolaryngology, Peking Union Medical College Hospital, Beijing, China
6
The First People’s Hospital of Xuzhou, Xuzhou, China
7
Department of Ophthalmology, Chinese People’s Liberation Army General Hospital, Beijing, China
✉*Correspondence: Ying Jie, jie_yingcn@aliyun.com; Lin Li, lil@ccmu.edu.cn
This article was submitted to Biomechanics, a section of the journal Frontiers in Bioengineering and Biotechnology
†
These authors have contributed equally to this work and share first authorship
Received 2022 Aug 4; Accepted 2022 Aug 5; Collection date 2022.
Keywords: forme fruste keratoconus, clinical keratoconus, corneal visualization scheimpflug technology, corneal elastic modulus, dynamic corneal response parameters
Copyright © 2022 Tian, Qin, Zhang, Zhang, Guo, Zhang, Wu, Jie and Li.
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