中文English
ISSN 1001-5256 (Print)
ISSN 2097-3497 (Online)
CN 22-1108/R

留言板

尊敬的读者、作者、审稿人, 关于本刊的投稿、审稿、编辑和出版的任何问题, 您可以本页添加留言。我们将尽快给您答复。谢谢您的支持!

姓名
邮箱
手机号码
标题
留言内容
验证码

超声在肝细胞癌消融疗效评估中的应用与进展

李清心 李杰 张德智

引用本文:
Citation:

超声在肝细胞癌消融疗效评估中的应用与进展

DOI: 10.12449/JCH260706
利益冲突声明:本文不存在任何利益冲突。
作者贡献声明:李清心负责撰写文章初稿;李杰负责整理参考文献,协助完善文章内容;张德智负责指导文章思路架构并审定终稿。
详细信息
    通信作者:

    张德智, dezhi@jlu.edu.cn (ORCID: 0000-0002-4331-008X)

Application and progress of ultrasound in treatment response assessment after ablation for hepatocellular carcinoma

More Information
    Corresponding author: Zhang Dezhi, dezhi@jlu.edu.cn (ORCID: 0000-0002-4331-008X)
  • 摘要: 肝细胞癌(HCC)局部消融治疗后的准确疗效评价对于识别残余活性肿瘤、判断消融边界及指导后续随访与监测具有重要意义。增强计算机体层成像和磁共振成像是目前主要评价手段,但在实时动态观察、术中应用及重复性方面存在一定局限性。超声,尤其是超声造影(CEUS)凭借实时显示微循环灌注、无电离辐射和可重复等优势,可贯穿HCC消融治疗全过程,在残余肿瘤识别、即时疗效判断及随访管理中发挥重要作用。本文围绕HCC热消融疗效评价的病理学基础、主要评价终点、超声技术及CEUS肝脏影像报告与数据系统治疗反应评估算法的应用进展进行综述,并探讨多模态融合、定量分析及标准化评价的发展方向,为进一步优化HCC消融疗效评估体系提供参考。

     

  • 注: LI-RADS,肝脏影像报告与数据系统;CEUS,超声造影;LR-TR,肝脏影像报告与数据系统治疗反应评估。

    图  1  2024年版LI-RADS CEUS非放射治疗反应评估流程图

    Figure  1.  Flowchart of CEUS LI-RADS TRA (non-radiation treatment response assessment), 2024 edition

  • [1] European Association for the Study of the Liver. EASL clinical practice guidelines on the management of hepatocellular carcinoma[J]. J Hepatol, 2025, 82( 2): 315- 374. DOI: 10.1016/j.jhep.2024.08.028.
    [2] Ceppa E P, Collings A T, Abdalla M, et al. SAGES/AHPBA guidelines for the use of microwave and radiofrequency liver ablation for the surgical treatment of hepatocellular carcinoma or colorectal liver metastases less than 5 cm[J]. Surg Endosc, 2023, 37( 12): 8991- 9000. DOI: 10.1007/s00464-023-10468-1.
    [3] Crocetti L, Scalise P, Bozzi E, et al. Thermal ablation of hepatocellular carcinoma[J]. J Med Imaging Radiat Oncol, 2023, 67( 8): 817- 831. DOI: 10.1111/1754-9485.13613.
    [4] Omata M, Cheng A L, Kokudo N, et al. Asia-Pacific clinical practice guidelines on the management of hepatocellular carcinoma: A 2017 update[J]. Hepatol Int, 2017, 11( 4): 317- 370. DOI: 10.1007/s12072-017-9799-9.
    [5] Gupta P, Maralakunte M, Kumar-M P, et al. Overall survival and local recurrence following RFA, MWA, and cryoablation of very early and early HCC: A systematic review and Bayesian network meta-analysis[J]. Eur Radiol, 2021, 31( 7): 5400- 5408. DOI: 10.1007/s00330-020-07610-1.
    [6] Voizard N, Cerny M, Assad A, et al. Assessment of hepatocellular carcinoma treatment response with LI-RADS: A pictorial review[J]. Insights Imaging, 2019, 10( 1): 121. DOI: 10.1186/s13244-019-0801-z.
    [7] Lyshchik A, Fetzer D T, Kono Y, et al. Liver imaging reporting and data system contrast-enhanced US nonradiation treatment response assessment version 2024[J]. Radiology, 2024, 311( 2): e232369. DOI: 10.1148/radiol.232369.
    [8] Granata V, Petrillo M, Fusco R, et al. Surveillance of HCC patients after liver RFA: Role of MRI with hepatospecific contrast versus three-phase CT scan-experience of high volume oncologic institute[J]. Gastroenterol Res Pract, 2013, 2013: 469097. DOI: 10.1155/2013/469097.
    [9] Aslam A, Chernyak V, Tang A, et al. CT/MRI LI-RADS 2024 update: Treatment response assessment[J]. Radiology, 2024, 313( 2): e232408. DOI: 10.1148/radiol.232408.
    [10] Meloni M F, Francica G, Chiang J, et al. Use of contrast-enhanced ultrasound in ablation therapy of HCC: Planning, guiding, and assessing treatment response[J]. J Ultrasound Med, 2021, 40( 5): 879- 894. DOI: 10.1002/jum.15471.
    [11] Kelekis A, Filippiadis D. Computed tomography and ultrasounds for the follow-up of hepatocellular carcinoma ablation: What you need to know[J]. Diagnostics, 2016, 6( 1): 9. DOI: 10.3390/diagnostics6010009.
    [12] Chen M H, Yang W, Yan K, et al. Large liver tumors: Protocol for radiofrequency ablation and its clinical application in 110 patients: Mathematic model, overlapping mode, and electrode placement process[J]. Radiology, 2004, 232( 1): 260- 271. DOI: 10.1148/radiol.2321030821.
    [13] Lu Y B, Huang Y N, Weng Y C, et al. Contrast-enhanced ultrasonography guidance avoids US-CT/MR fusion error for percutaneous radiofrequency ablation of hepatocellular carcinoma[J]. BMC Med Imaging, 2024, 24( 1): 323. DOI: 10.1186/s12880-024-01508-w.
    [14] Schellhaas B, Hammon M, Strobel D, et al. Interobserver and intermodality agreement of standardized algorithms for non-invasive diagnosis of hepatocellular carcinoma in high-risk patients: CEUS-LI-RADS versus MRI-LI-RADS[J]. Eur Radiol, 2018, 28( 10): 4254- 4264. DOI: 10.1007/s00330-018-5379-1.
    [15] Fetzer D T, Kono Y, Piscaglia F, et al. Contrast-enhanced ultrasound LI-RADS nonradiation treatment response assessment: Applications, challenges, and future directions[J]. Abdom Radiol(NY), 2026. DOI: 10.1007/s00261-026-05469-2.
    [16] Goldberg S N, Gazelle G S, Mueller P R. Thermal ablation therapy for focal malignancy: A unified approach to underlying principles, techniques, and diagnostic imaging guidance[J]. AJR Am J Roentgenol, 2000, 174( 2): 323- 331. DOI: 10.2214/ajr.174.2.1740323.
    [17] Abu Zahra S, Nadeem A, Kundu A, et al. Recent advances in ablative therapies for hepatocellular carcinoma[J]. Cancers, 2025, 17( 19): 3251. DOI: 10.3390/cancers17193251.
    [18] Yamashiki N, Kato T, Bejarano P A, et al. Histopathological changes after microwave coagulation therapy for patients with hepatocellular carcinoma: Review of 15 explanted livers[J]. Am J Gastroenterol, 2003, 98( 9): 2052- 2059. DOI: 10.1111/j.1572-0241.2003.07642.x.
    [19] Gravante G, Ong S L, Metcalfe M S, et al. The effects of radiofrequency ablation on the hepatic parenchyma: Histological bases for tumor recurrences[J]. Surg Oncol, 2011, 20( 4): 237- 245. DOI: 10.1016/j.suronc.2010.01.005.
    [20] Lee J M, Kim Y K, Lee Y H, et al. Percutaneous radiofrequency thermal ablation with hypertonic saline injection: in vivo study in a rabbit liver model[J]. Korean J Radiol, 2003, 4( 1): 27- 34. DOI: 10.3348/kjr.2003.4.1.27.
    [21] Solbiati L, Ierace T, Goldberg S N, et al. Percutaneous US-guided radio-frequency tissue ablation of liver metastases: Treatment and follow-up in 16 patients[J]. Radiology, 1997, 202( 1): 195- 203. DOI: 10.1148/radiology.202.1.8988211.
    [22] Habibollahi P, Sheth R A, Cressman E N K. Histological correlation for radiofrequency and microwave ablation in the local control of hepatocellular carcinoma(HCC) before liver transplantation: A comprehensive review[J]. Cancers, 2020, 13( 1): 104. DOI: 10.3390/cancers13010104.
    [23] Ahmed M, Solbiati L, Brace CL, et al. Image-guided tumor ablation: standardization of terminology and reporting criteria--a 10-year update[J]. Radiology, 2014, 273( 1): 241- 260. DOI: 10.1148/radiol.14132958.
    [24] Lencioni R, Llovet J M. Modified RECIST(mRECIST) assessment for hepatocellular carcinoma[J]. Semin Liver Dis, 2010, 30( 1): 52- 60. DOI: 10.1055/s-0030-1247132.
    [25] Yu H L, Bai Y P, Xie X Y, et al. RECIST 1.1 versus mRECIST for assessment of tumour response to molecular targeted therapies and disease outcomes in patients with hepatocellular carcinoma: A systematic review and meta-analysis[J]. BMJ Open, 2022, 12( 6): e052294. DOI: 10.1136/bmjopen-2021-052294.
    [26] Llovet J M, Lencioni R. mRECIST for HCC: Performance and novel refinements[J]. J Hepatol, 2020, 72( 2): 288- 306. DOI: 10.1016/j.jhep.2019.09.026.
    [27] Crocetti L, de Baere T, Lencioni R. Quality improvement guidelines for radiofrequency ablation of liver tumours[J]. Cardiovasc Intervent Radiol, 2010, 33( 1): 11- 17. DOI: 10.1007/s00270-009-9736-y.
    [28] Serra C, Cucchetti A, Felicani C, et al. Assessment of radiofrequency ablation efficacy for hepatocellular carcinoma by histology and pretransplant radiology[J]. Liver Transpl, 2019, 25( 1): 88- 97. DOI: 10.1002/lt.25381.
    [29] Chaudhry M, McGinty K A, Mervak B, et al. The LI-RADS version 2018 MRI treatment response algorithm: Evaluation of ablated hepatocellular carcinoma[J]. Radiology, 2020, 294( 2): 320- 326. DOI: 10.1148/radiol.2019191581.
    [30] Bansal S, Gui J, Merrill C, et al. Contrast-enhanced US in local ablative therapy and secondary surveillance for hepatocellular carcinoma[J]. Radiographics, 2019, 39( 5): 1302- 1322. DOI: 10.1148/rg.2019180205.
    [31] Shi W X, He Y, Ding W B, et al. Contrast-enhanced ultrasonography used for post-treatment responses evaluation of radiofrequency ablations for hepatocellular carcinoma: A meta-analysis[J]. Br J Radiol, 2016, 89( 1064): 20150973. DOI: 10.1259/bjr.20150973.
    [32] Kim S K, Lim H K, Kim Y H, et al. Hepatocellular carcinoma treated with radio-frequency ablation: Spectrum of imaging findings[J]. Radiographics, 2003, 23( 1): 107- 121. DOI: 10.1148/rg.231025055.
    [33] de Muzio F, Cutolo C, Dell’Aversana F, et al. Complications after thermal ablation of hepatocellular carcinoma and liver metastases: Imaging findings[J]. Diagnostics(Basel), 2022, 12( 5): 1151. DOI: 10.3390/diagnostics12051151.
    [34] Kang H J, Lee J M, Jeon S K, et al. Microvascular flow imaging of residual or recurrent hepatocellular carcinoma after transarterial chemoembolization: Comparison with color/power Doppler imaging[J]. Korean J Radiol, 2019, 20( 7): 1114- 1123. DOI: 10.3348/kjr.2018.0932.
    [35] Dietrich C F, Nolsøe C P, Barr R G, et al. Guidelines and good clinical practice recommendations for contrast-enhanced ultrasound(CEUS) in the liver-update 2020 WFUMB in cooperation with EFSUMB, AFSUMB, AIUM, and FLAUS[J]. Ultrasound Med Biol, 2020, 46( 10): 2579- 2604. DOI: 10.1016/j.ultrasmedbio.2020.04.030.
    [36] Jang J Y, Kim M Y, Jeong S W, et al. Current consensus and guidelines of contrast enhanced ultrasound for the characterization of focal liver lesions[J]. Clin Mol Hepatol, 2013, 19( 1): 1- 16. DOI: 10.3350/cmh.2013.19.1.1.
    [37] Inzerillo A, Meloni M F, Taibbi A, et al. Loco-regional treatment of hepatocellular carcinoma: Role of contrast-enhanced ultrasonography[J]. World J Hepatol, 2022, 14( 5): 911- 922. DOI: 10.4254/wjh.v14.i5.911.
    [38] Mauri G, Porazzi E, Cova L, et al. Intraprocedural contrast-enhanced ultrasound(CEUS) in liver percutaneous radiofrequency ablation: Clinical impact and health technology assessment[J]. Insights Imaging, 2014, 5( 2): 209- 216. DOI: 10.1007/s13244-014-0315-7.
    [39] Eisenbrey J R, Gabriel H, Savsani E, et al. Contrast-enhanced ultrasound(CEUS) in HCC diagnosis and assessment of tumor response to locoregional therapies[J]. Abdom Radiol, 2021, 46( 8): 3579- 3595. DOI: 10.1007/s00261-021-03059-y.
    [40] Dong Y, Wang W P, Mao F, et al. Application of imaging fusion combining contrast-enhanced ultrasound and magnetic resonance imaging in detection of hepatic cellular carcinomas undetectable by conventional ultrasound[J]. J Gastroenterol Hepatol, 2016, 31( 4): 822- 828. DOI: 10.1111/jgh.13202.
    [41] Mauri G, Cova L, De Beni S, et al. Real-time US-CT/MRI image fusion for guidance of thermal ablation of liver tumors undetectable with US: Results in 295 cases[J]. Cardiovasc Intervent Radiol, 2015, 38( 1): 143- 151. DOI: 10.1007/s00270-014-0897-y.
    [42] Long H Y, Zhou X Y, Zhang X E, et al. 3D fusion is superior to 2D point-to-point contrast-enhanced US to evaluate the ablative margin after RFA for hepatocellular carcinoma[J]. Eur Radiol, 2024, 34( 2): 1247- 1257. DOI: 10.1007/s00330-023-10023-5.
    [43] Li K, Su Z Z, Xu E J, et al. Evaluation of the ablation margin of hepatocellular carcinoma using CEUS-CT/MR image fusion in a phantom model and in patients[J]. BMC Cancer, 2017, 17( 1): 61. DOI: 10.1186/s12885-017-3061-7.
    [44] Xu H X, Lu M D, Xie X H, et al. Treatment response evaluation with three-dimensional contrast-enhanced ultrasound for liver cancer after local therapies[J]. Eur J Radiol, 2010, 76( 1): 81- 88. DOI: 10.1016/j.ejrad.2009.05.006.
    [45] Bartolotta T V, Taibbi A, Matranga D, et al. 3D versus 2D contrast-enhanced sonography in the evaluation of therapeutic response of hepatocellular carcinoma after locoregional therapies: Preliminary findings[J]. La Radiologia Med, 2015, 120( 8): 695- 704. DOI: 10.1007/s11547-015-0514-4.
    [46] Cerrito L, Ainora M E, Cuccia G, et al. Dynamic contrast-enhanced ultrasound in the prediction of advanced hepatocellular carcinoma response to systemic and locoregional therapies[J]. Cancers, 2024, 16( 3): 551. DOI: 10.3390/cancers16030551.
    [47] Gu D Y, Zhang Y, Hu J X, et al. The value of contrast-enhanced ultrasound quantitative parameters in the prognosis prediction of hepatocellular carcinoma after thermal ablation: A retrospective cohort study[J]. J Gastrointest Oncol, 2022, 13( 5): 2522- 2531. DOI: 10.21037/jgo-22-919.
    [48] Tao J, Feng G Y, Tang G, et al. Efficacy and safety of fusion imaging in radiofrequency ablation of hepatocellular carcinoma compared to ultrasound: A meta-analysis[J]. Front Surg, 2021, 8: 728098. DOI: 10.3389/fsurg.2021.728098.
    [49] Calandri M, Mauri G, Yevich S, et al. Fusion imaging and virtual navigation to guide percutaneous thermal ablation of hepatocellular carcinoma: A review of the literature[J]. Cardiovasc Intervent Radiol, 2019, 42( 5): 639- 647. DOI: 10.1007/s00270-019-02167-z.
    [50] Kim T K, Noh S Y, Wilson S R, et al. Contrast-enhanced ultrasound(CEUS) liver imaging reporting and data system(LI-RADS) 2017—a review of important differences compared to the CT/MRI system[J]. Clin Mol Hepatol, 2017, 23( 4): 280- 289. DOI: 10.3350/cmh.2017.0037.
    [51] Yao J Q, Guo H L, Zhang X E, et al. Local tumor progression after hepatocellular carcinoma ablation: CEUS LI-RADS nonradiation TRA version 2024 versus a modified algorithm[J]. Ultrasound Med Biol, 2026, 52( 6): 1116- 1124. DOI: 10.1016/j.ultrasmedbio.2026.02.012.
    [52] Cao J Y, Dong Y, Xu X L, et al. LI-RADS CEUS nonradiation TRA version 2024: Application on HCC patients treated with ablation treatment[J]. Ultrasound Med Biol, 2025, 51( 8): 1308- 1315. DOI: 10.1016/j.ultrasmedbio.2025.04.018.
    [53] Kuon Yeng Escalante C M, Siu Xiao T, Kono Y, et al. Inter-reader agreement for contrast-enhanced ultrasound liver imaging reporting and data system major features and final categorization: A subanalysis from a prospective multicenter study[J]. J Ultrasound Med, 2025, 44( 2): 349- 357. DOI: 10.1002/jum.16608.
    [54] Shenoy-Bhangle A S, Malik M S, Ali A, et al. Accuracy of cross-sectional imaging in predicting tumor viability using the LI-RADS treatment response algorithm after image-guided percutaneous ablation with radiologic-pathologic explant correlation[J]. Cancer Imaging, 2025, 25( 1): 65. DOI: 10.1186/s40644-025-00884-y.
    [55] Ruan S M, Cheng M Q, Huang H, et al. Application of the CT/MRI LI-RADS treatment response algorithm to contrast-enhanced ultrasound: A feasibility study[J]. J Hepatocell Carcinoma, 2022, 9: 437- 451. DOI: 10.2147/JHC.S353914.
  • 加载中
图(1)
计量
  • 文章访问数:  4
  • HTML全文浏览量:  0
  • PDF下载量:  1
  • 被引次数: 0
出版历程
  • 收稿日期:  2026-07-15
  • 录用日期:  2026-07-31
  • 出版日期:  2026-07-25
  • 分享
  • 用微信扫码二维码

    分享至好友和朋友圈

目录

    /

    返回文章
    返回