Low-Intensity Pulsed Ultrasound Accelerates Traumatic Vertebral Fracture Healing by Coupling Proliferation of Type H Microvessels

被引:18
作者
Wu, Suiyi [1 ]
Xu, Ximing [2 ]
Sun, Jingchuan [2 ]
Zhang, Yao [3 ]
Shi, Jiangang [2 ]
Xu, Tianming [4 ]
机构
[1] Second Mil Med Univ, Fac Naval Med, Shanghai, Peoples R China
[2] Second Mil Med Univ, Changzheng Hosp, Dept Spine Surg, 415 Fengyang Rd, Shanghai 200003, Peoples R China
[3] Second Mil Med Univ, Cadet Brigade, Shanghai, Peoples R China
[4] 455 Hosp Chinese Peoples Liberat Army, Shanghai, Peoples R China
关键词
animal studies; bone density; low-intensity pulsed ultrasound; osteoblasts; traumatic vertebral fracture; type H microvessels; THERAPEUTIC ULTRASOUND; BONE REPAIR; CLASSIFICATION; ANGIOGENESIS; OSTEOGENESIS; CELLS; MODEL;
D O I
10.1002/jum.14525
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
Objectives-Patients with traumatic vertebral fractures often have major associated postoperative morbidities such as healing failure and kyphosis. Low-intensity pulsed ultrasound (US) has been found to promote bone fracture healing. The objectives of our study were to determine whether low-intensity pulsed US could promote traumatic vertebral fracture healing and to explore its inner mechanisms. Methods-A rat model of traumatic vertebral fracture was created and treated with low-intensity pulsed US after surgery. At 4 weeks after surgery, radiographic, micro-computed tomography, and 3-dimensional reconstruction were used to assess the radiologic healing status; a histologic analysis was performed to evaluate the pathologic process and relationship between osteogenesis and type H microvessels. Results-Well-remodeled trabecular meshworks were found in the low-intensity pulsed US treatment group compared to the control group. Micro-computed tomography and 3-dimensional reconstruction revealed more and thicker trabeculae after low-intensity pulsed US treatment. Abundant chondrocytes, a newly formed bone marrow cavity, trabeculae, and microvessels were formed at the fracture sites. More osterix-positive osteoblasts were circling the newly formed bone meshwork and were situated at the interface of chondrocytes in the low-intensity pulsed US treatment group. Type H microvessels were spreading around the newly formed trabecula, bone marrow cavity, osteoblasts, and interface of chondrocytes, with a larger mean vascular density in the low-intensity pulsed US group. Conclusions-Low-intensity pulsed US could accelerate traumatic vertebral fracture healing by temporally and spatially increasing chondrogenesis and osteoblast-induced osteogenesis coupled with angiogenesis of type H microvessels in a rat model of traumatic vertebral fracture.
引用
收藏
页码:1733 / 1742
页数:10
相关论文
共 50 条
[31]   Low-intensity pulsed ultrasound accelerates the regeneration of the sciatic nerve after neurotomy in rats [J].
Crisci, AR ;
Ferreira, AL .
ULTRASOUND IN MEDICINE AND BIOLOGY, 2002, 28 (10) :1335-1341
[32]   USING LOW-INTENSITY PULSED ULTRASOUND TO IMPROVE MUSCLE HEALING AFTER LACERATION INJURY: AN IN VITRO AND IN VIVO STUDY [J].
Chan, Yi-Sheng ;
Hsu, Kuo-Yao ;
Kuo, Chia-Hua ;
Lee, Shin-Da ;
Chen, Su-Ching ;
Chen, Wen-Jer ;
Ueng, Steve Wen-Neng .
ULTRASOUND IN MEDICINE AND BIOLOGY, 2010, 36 (05) :743-751
[33]   LOW-INTENSITY PULSED ULTRASOUND PRODUCED AN INCREASE OF OSTEOGENIC GENES EXPRESSION DURING THE PROCESS OF BONE HEALING IN RATS [J].
Favaro-Pipi, Elaine ;
Bossini, Paulo ;
de Oliveira, Poliani ;
Ribeiro, Juliana Uema ;
Tim, Carla ;
Parizotto, Nivaldo A. ;
Alves, Jose Marcos ;
Ribeiro, Daniel Araki ;
Selistre de Araujo, Heloisa Sobreiro ;
Muniz Renno, Ana Claudia .
ULTRASOUND IN MEDICINE AND BIOLOGY, 2010, 36 (12) :2057-2064
[34]   Low-Intensity Pulsed Ultrasound Accelerates Differentiation of Osteoblastic Cells on Roughened Titanium Surface [J].
Takeuchi, Kazuo ;
Yamaguchi, Daisuke ;
Ueno, Atsuko ;
Kato, Daisuke ;
Miyamae, Shin ;
Murakami, Hiroshi .
JOURNAL OF HARD TISSUE BIOLOGY, 2020, 29 (04) :247-253
[35]   Effects of low-intensity pulsed ultrasound on healing of mandibular bone defects: an experimental study in rabbits [J].
Bronoosh, P. ;
Tanideh, N. ;
Noorafshan, A. ;
Tadbir, A. Andisheh ;
Aalipanah, M. ;
Kamali, F. ;
Abbasnia, K. ;
Koohi-Hosseinabadi, O. .
INTERNATIONAL JOURNAL OF ORAL AND MAXILLOFACIAL SURGERY, 2015, 44 (02) :277-284
[36]   Low-intensity pulsed ultrasound induces proliferation of human neural stem cells [J].
Al-Maswary, Arwa A. ;
Walmsley, A. Damien ;
Cooper, Paul R. ;
Scheven, Ben A. .
CLINICAL AND TRANSLATIONAL DISCOVERY, 2024, 4 (02)
[37]   Low-intensity pulsed ultrasound regulates proliferation and differentiation of osteoblasts through osteocytes [J].
Li, Lei ;
Yang, Zheng ;
Zhang, Hai ;
Chen, Wenchuan ;
Chen, Mengshi ;
Zhu, Zhimin .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2012, 418 (02) :296-300
[38]   Effects of low-intensity pulsed ultrasound on proliferation of bone mesenchymal stem cells [J].
Yu Haisheng ;
Wang Yan ;
Hu Shuai ;
Liu Zheng ;
Chen Wenzhi .
ISBE 2011: 2011 INTERNATIONAL CONFERENCE ON BIOMEDICINE AND ENGINEERING, VOL 2, 2011, :373-378
[39]   Complex tibial fracture outcomes following treatment with low-intensity pulsed ultrasound [J].
Leung, KS ;
Lee, WS ;
Tsui, HF ;
Liu, PPL ;
Cheung, WH .
ULTRASOUND IN MEDICINE AND BIOLOGY, 2004, 30 (03) :389-395
[40]   Comparison Between Clinically Available Low-Intensity Pulsed Ultrasound (LIPUS) and a Novel Bimodal Acoustic Signal System for Accelerating Fracture Healing [J].
Machado, Priscilla ;
Li, Jingzhi ;
Blackman, Rachel ;
Liu, Ji-Bin ;
Kepler, Christopher K. ;
Fang, Taolin ;
Muratore, Robert ;
Winder, Jason H. ;
Winder, Alan A. ;
Forsberg, Flemming .
IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 2022, 69 (02) :629-636