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中华医学超声杂志(电子版) ›› 2023, Vol. 20 ›› Issue (07) : 770 -773. doi: 10.3877/cma.j.issn.1672-6448.2023.07.018

综述

超声在膝关节股骨滑车软骨评估中的应用研究进展
刘晖, 刘爱峰(), 刘斌, 陈德生, 张宇   
  1. 300381 天津中医药大学第一附属医院(国家中医针灸临床医学研究中心)骨伤科
    300211 天津市天津医院运动损伤与关节镜科
  • 收稿日期:2021-11-07 出版日期:2023-07-01
  • 通信作者: 刘爱峰
  • 基金资助:
    国家自然科学基金(81873316,81673994)

Application of ultrasound in evaluation of femoral trochlear cartilage of the knee joint

Hui Liu, Aifeng Liu(), Bin Liu   

  • Received:2021-11-07 Published:2023-07-01
  • Corresponding author: Aifeng Liu
引用本文:

刘晖, 刘爱峰, 刘斌, 陈德生, 张宇. 超声在膝关节股骨滑车软骨评估中的应用研究进展[J]. 中华医学超声杂志(电子版), 2023, 20(07): 770-773.

Hui Liu, Aifeng Liu, Bin Liu. Application of ultrasound in evaluation of femoral trochlear cartilage of the knee joint[J]. Chinese Journal of Medical Ultrasound (Electronic Edition), 2023, 20(07): 770-773.

1
Redondo ML, Naveen NB, Liu JN, et al. Preservation of knee articular cartilage [J]. Sports Med Arthrosc Rev, 2018, 26(4): 23-30.
2
Jin Y, Koh RH, Kim SH, et al. Injectable anti-inflammatory hyaluronic acid hydrogel for osteoarthritic cartilage repair [J]. Mater Sci Eng C Mater Biol Appl, 2020, 115: 111096.
3
Minns RJ, Steven FS, Hardinge K. Osteoarthrotic articular cartilage lesions of the femoral head observed in the scanning electron microscope [J]. J Pathol, 1977, 122(2): 63-70.
4
Chu CR, Millis MB, Olson SA. Osteoarthritis: from palliation to prevention: AOA critical issues [J]. J Bone Joint Surg Am, 2014, 96(15): e130.
5
中国超声医学工程学会肌肉骨骼系统超声专业委员会. 肌肉骨骼超声检查及报告规范 [J/CD]. 中华医学超声杂志(电子版), 2015, 12(1): 11-17.

URL    
6
尹莉, 邱逦, 张华斌, 等. 可视化诊疗技术(超声)在肌肉骨骼及关节康复中的应用专家共识 [J/CD]. 中华医学超声杂志(电子版), 2019, 16(11): 801-805.

URL    
7
Cao J, Zheng B, Meng X, et al. A novel ultrasound scanning approach for evaluating femoral cartilage defects of the knee: comparison with routine magnetic resonance imaging [J]. J Orthop Surg Res, 2018, 13(1): 178.
8
Aisen AM, McCune WJ, MacGuire A, et al. Sonographic evaluation of the cartilage of the knee [J]. Radiology, 1984, 153(3): 781-784.
9
Saarakkala S, Waris P, Waris V, et al. Diagnostic performance of knee ultrasonography for detecting degenerative changes of articular cartilage [J]. Osteoarthritis Cartilage, 2012, 20(5): 376-381.
10
Okano T, Filippucci E, Di Carlo M, et al. Ultrasonographic evaluation of joint damage in knee osteoarthritis: feature-specific comparisons with conventional radiography [J]. Rheumatology (Oxford), 2016, 55(11): 2040-2049.
11
任杰, 郑荣琴, 黄冬梅, 等. 膝关节软骨退行性变的声像学表现 [J]. 中国超声医学杂志, 2006, 22(2): 151-153.
12
Nevalainen MT, Kauppinen K, Pylväläinen J, et al. Ultrasonography of the late-stage knee osteoarthritis prior to total knee arthroplasty: comparison of the ultrasonographic, radiographic and intra-operative findings [J]. Sci Rep, 2018, 8(1): 17742.
13
Podlipská J, Guermazi A, Lehenkari P, et al. Comparison of diagnostic performance of semi-quantitative knee ultrasound and knee radiography with MRI: oulu knee osteoarthritis study [J]. Sci Rep, 2016, 6: 22365.
14
Leicht S, Raum K. Acoustic impedance changes in cartilage and subchondral bone due to primary arthrosis [J]. Ultrasonics, 2008, 48(6-7): 613-620.
15
Wang Q, Liu Z, Wang Y, et al. Quantitative ultrasound assessment of cartilage degeneration in ovariectomized rats with low estrogen levels [J]. Ultrasound Med Biol, 2016, 42(1): 290-298.
16
Kim HK, Babyn PS, Harasiewicz KA, et al. Imaging of immature articular cartilage using ultrasound backscatter microscopy at 50 MHz [J]. J Orthop Res, 1995, 13(6): 963-970.
17
Männicke N, Schöne M, Liukkonen J, et al. Species-independent modeling of high-frequency ultrasound backscatter in hyaline cartilage [J]. Ultrasound Med Biol, 2016, 42(6): 1375-1384.
18
Kaleva E, Liukkonen J, Toyras J, et al. 2-D finite difference time domain model of ultrasound reflection from normal and osteoarthritic human articular cartilage surface [J]. IEEE Trans Ultrason Ferroelectr Freq Control, 2010, 57(4): 892-899.
19
Kiyan W, Ito A, Nakagawa Y, et al. Relationships between quantitative pulse-echo ultrasound parameters from the superficial zone of the human articular cartilage and changes in surface roughness, collagen content or collagen orientation caused by early degeneration [J]. Ultrasound Med Biol, 2017, 43(8): 1703-1715.
20
Virén T, Saarakkala S, Tiitu V, et al. Ultrasound evaluation of mechanical injury of bovine knee articular cartilage under arthroscopic control [J]. IEEE Trans Ultrason Ferroelectr Freq Control, 2011, 58(1): 148-155.
21
Huang YP, Zhong J, Chen J, et al. High-frequency ultrasound imaging of tidemark in vitro in advanced knee osteoarthritis [J]. Ultrasound Med Biol, 2018, 44(1): 94-101.
22
Niu HJ, Wang Q, Wang YX, et al. Ultrasonic reflection coefficient and surface roughness index of OA articular cartilage: relation to pathological assessment [J]. BMC Musculoskelet Disord, 2012, 13: 34.
23
Nieminen HJ, Julkunen P, Töyräs J, et al. Ultrasound speed in articular cartilage under mechanical compression [J]. Ultrasound Med Biol, 2007, 33(11): 1755-1766.
24
Ohashi S, Ohnishi I, Oka H, et al. The effect of cartilage degeneration on ultrasound speed in human articular cartilage [J]. Mod Rheumatol, 2016, 26(3): 426-434.
25
Sun A, Bai X, Ju BF. A new method for evaluating the degeneration of articular cartilage using pulse-echo ultrasound [J]. Rev Sci Instrum, 2015, 86(3): 034301.
26
Lötjönen P, Julkunen P, Töyräs J, et al. Strain-dependent modulation of ultrasound speed in articular cartilage under dynamic compression [J]. Ultrasound Med Biol, 2009, 35(7): 1177-1184.
27
Niu HJ, Li LF, Sun F, et al. Ultrasound speed and attenuation in progressive trypsin digested articular cartilage [J]. Sci China Life Sci, 2011, 54(11): 1029-1035.
28
Schmitz RJ, Wang HM, Polprasert DR, et al. Evaluation of knee cartilage thickness: a comparison between ultrasound and magnetic resonance imaging methods [J]. Knee, 2017, 24(2): 217-223.
29
Faisal A, Ng SC, Goh SL, et al. Knee cartilage segmentation and thickness computation from ultrasound images [J]. Med Biol Eng Comput, 2018, 56(4): 657-669.
30
Steppacher SD, Hanke MS, Zurmühle CA, et al. Ultrasonic cartilage thickness measurement is accurate, reproducible, and reliable-validation study using contrast-enhanced micro-CT [J]. J Orthop Surg Res, 2019, 14(1): 67.
31
Julkunen P, Harjula T, Iivarinen J, et al. Biomechanical, biochemical and structural correlations in immature and mature rabbit articular cartilage [J]. Osteoarthritis Cartilage, 2009, 17(12): 1628-1638.
32
Wang Y, Huang YP, Liu A, et al. An ultrasound biomicroscopic and water jet ultrasound indentation method for detecting the degenerative changes of articular cartilage in a rabbit model of progressive osteoarthritis [J]. Ultrasound Med Biol, 2014, 40(6): 1296-1306.
33
Cay N, Ipek A, Isik C, et al. Strain ratio measurement of femoral cartilage by real-time elastosonography: preliminary results [J]. Eur Radiol, 2015, 25(4): 987-993.
34
Yokus A, Toprak M, Arslan H, et al. Evaluation of distal femoral cartilage by B-mode ultrasonography and shear wave elastography in patients with knee osteoarthritis: a preliminary study [J]. Acta Radiol, 2021, 62(4): 510-514.
35
Chung CY, Heebner J, Baskaran H, et al. Ultrasound elastography for estimation of regional strain of multilayered hydrogels and tissue-engineered cartilage [J]. Ann Biomed Eng, 2015, 43(12): 2991-3003.
36
McCredie AJ, Stride E, Saffari N. Ultrasound elastography to determine the layered mechanical properties of articular cartilage and the importance of such structural characteristics under load [J]. Annu Int Conf IEEE Eng Med Biol Soc, 2009, 2009: 4262-4265.
37
Lötjönen P, Julkunen P, Tiitu V, et al. Ultrasound speed varies in articular cartilage under indentation loading [J]. IEEE Trans Ultrason Ferroelectr Freq Control, 2011, 58(12): 2772-2780.
38
Hosseini SM, Veldink MB, Ito K, et al. Is collagen fiber damage the cause of early softening in articular cartilage? [J]. Osteoarthritis Cartilage, 2013, 21(1): 136-143.
39
Spahn G, Klinger HM, Baums M, et al. Reliability in arthroscopic grading of cartilage lesions: results of a prospective blinded study for evaluation of inter-observer reliability [J]. Arch Orthop Trauma Surg, 2011, 131(3): 377-381.
40
Schöne M, Schulz RM, Tzschätzsch H, et al. Ultrasound palpation for fast in-situ quantification of articular cartilage stiffness, thickness and relaxation capacity [J]. Biomech Model Mechanobiol, 2017, 16(4): 1171-1185.
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