切换至 "中华医学电子期刊资源库"

中华医学超声杂志(电子版) ›› 2022, Vol. 19 ›› Issue (12) : 1387 -1390. doi: 10.3877/cma.j.issn.1672-6448.2022.12.013

综述

主动脉瓣复合体3D打印技术的研究及应用进展
陶世鑫1, 陈金玲1,()   
  1. 1. 430060 武汉大学人民医院超声影像科
  • 收稿日期:2021-05-05 出版日期:2022-12-01
  • 通信作者: 陈金玲

Progress in research and application of three-dimensional printing of aortic valve complex

Shixin Tao1, Jinling Chen1()   

  • Received:2021-05-05 Published:2022-12-01
  • Corresponding author: Jinling Chen
引用本文:

陶世鑫, 陈金玲. 主动脉瓣复合体3D打印技术的研究及应用进展[J]. 中华医学超声杂志(电子版), 2022, 19(12): 1387-1390.

Shixin Tao, Jinling Chen. Progress in research and application of three-dimensional printing of aortic valve complex[J]. Chinese Journal of Medical Ultrasound (Electronic Edition), 2022, 19(12): 1387-1390.

1
Nishimura RA, Otto CM, Bonow RO, et al. 2017 AHA/ACC Focused Update of the 2014 AHA/ACC Guideline for the Management of Patients with Valvular Heart Disease: A Report of the American College of Cardiology/American Heart Association Task Force on Clinical Practice Guidelines[J]. Circulation, 2017, 135(25): e1159-e1195.
2
Piazza N, de Jaegere P, Schultz C, et al. Anatomy of the aortic valvar complex and its implications for transcatheter implantation of the aortic valve[J]. Circ Cardiovasc Interv, 2008, 1(1): 74-81.
3
Vukicevic M, Mosadegh B, Min JK, et al. Cardiac 3D printing and its future directions[J]. JACC Cardiovasc Imaging, 2017, 10(2): 171-184.
4
Paul GM, Rezaienia A, Wen P, et al. Medical applications for 3D printing: recent developments[J]. Mo Med, 2018, 115(1): 75-81.
5
Valverde I. Three-dimensional printed cardiac models: applications in the field of medical education, cardiovascular surgery, and structural heart interventions[J]. Rev Esp Cardiol (Engl Ed), 2017, 70(4): 282-291.
6
Wang DD, Gheewala N, Shah R, et al. Three-dimensional printing for planning of structural heart interventions[J]. Interv Cardiol Clin, 2018, 7(3): 415-423.
7
Byrne N, Velasco Forte M, Tandon A, et al. A systematic review of image segmentation methodology, used in the additive manufacture of patient-specific 3D printed models of the cardiovascular system[J]. JRSM Cardiovasc Dis, 2016, 5: 2048004016645467.
8
Greil GF, Wolf I, Kuettner A, et al. Stereolithographic reproduction of complex cardiac morphology based on high spatial resolution imaging[J]. Clin Res Cardiol, 2007, 96(3): 176-185.
9
Giannopoulos AA, Mitsouras D, Yoo SJ, et al. Applications of 3D printing in cardiovascular diseases[J]. Nat Rev Cardiol, 2016, 13(12): 701-718.
10
Otto CM, Kumbhani DJ, Alexander KP, et al. 2017 ACC Expert Consensus Decision Pathway for Transcatheter Aortic Valve Replacement in the Management of Adults with Aortic Stenosis: A Report of the American College of Cardiology Task Force on Clinical Expert Consensus Documents[J]. J Am Coll Cardiol, 2017, 69(10): 1313-1346.
11
陈思楷, 周青, 宋宏宁, 等. 多模态医学影像融合技术3D打印心脏模型方法学及精准度研究[J]. 中华超声影像学杂志, 2018, 27(11): 924-930.
12
Oveissi F, Naficy S, Lee A, et al. Materials and manufacturing perspectives in engineering heart valves: a review[J]. Mater Today Bio, 2020, 5: 100038.
13
Wickramasinghe S, Do T, Tran P. FDM-based 3D printing of polymer and associated composite: a review on mechanical properties, defects and treatments[J]. Polymers (Basel), 2020, 12(7): 1529.
14
Bateman MG, Durfee WK, Iles TL, et al. Cardiac patient-specific three-dimensional models as surgical planning tools[J]. Surgery, 2020, 167(2): 259-263.
15
Thourani VH, Kodali S, Makkar RR, et al. Transcatheter aortic valve replacement versus surgical valve replacement in intermediate-risk patients: a propensity score analysis[J]. Lancet, 2016, 387(10034): 2218-2225.
16
高强, 庄建, 岑坚正, 等. 3D打印技术在复杂先天性心脏病外科诊疗中的应用 [J]. 中国胸心血管外科临床杂志, 2018, 25(8): 654-658.
17
Sardari Nia P, Heuts S, Daemen J, et al. Preoperative planning with three-dimensional reconstruction of patient's anatomy, rapid prototyping and simulation for endoscopic mitral valve repair[J]. Interact Cardiovasc Thorac Surg, 2017, 24(2): 163-168.
18
Maragiannis D, Jackson MS, Igo SR, et al. Replicating patient-specific severe aortic valve stenosis with functional 3D modeling[J]. Circ Cardiovasc Imaging, 2015, 8(10): e003626.
19
Qian Z, Wang K, Liu S, et al. Quantitative prediction of paravalvular leak in transcatheter aortic valve replacement based on tissue-mimicking 3D printing[J]. JACC Cardiovasc Imaging, 2017, 10(7): 719-731.
20
Orlando G, Wood KJ, De Coppi P, et al. Regenerative medicine as applied to general surgery[J]. Ann Surg, 2012, 255(5): 867-880.
21
Hamilton N, Bullock AJ, Macneil S, et al. Tissue engineering airway mucosa: a systematic review[J]. Laryngoscope, 2014, 124(4): 961-968.
22
Cui H, Miao S, Esworthy T, et al. 3D bioprinting for cardiovascular regeneration and pharmacology[J]. Adv Drug Deliv Rev, 2018, 132: 252-269.
23
Hockaday LA, Kang KH, Colangelo NW, et al. Rapid 3D printing of anatomically accurate and mechanically heterogeneous aortic valve hydrogel scaffolds[J]. Biofabrication, 2012, 4(3): 035005.
24
Duan B, Hockaday LA, Kapetanovic E, et al. Stiffness and adhesivity control aortic valve interstitial cell behavior within hyaluronic acid based hydrogels[J]. Acta Biomater, 2013, 9(8): 7640-7650.
25
Duan B, Kapetanovic E, Hockaday LA, et al. Three-dimensional printed trileaflet valve conduits using biological hydrogels and human valve interstitial cells[J]. Acta Biomater, 2014, 10(5): 1836-1846.
26
Yamanami M, Yahata Y, Tajikawa T, et al. Preparation of in-vivo tissue-engineered valved conduit with the sinus of Valsalva (type Ⅳ biovalve)[J]. J Artif Organs, 2010, 13(2): 106-112.
27
Kluin J, Talacua H, Smits AI, et al. In situ heart valve tissue engineering using a bioresorbable elastomeric implant - from material design to 12 months follow-up in sheep[J]. Biomaterials, 2017, 125: 101-117.
28
Gallo M, D'Onofrio A, Tarantini G, et al. 3D-printing model for complex aortic transcatheter valve treatment[J]. Int J Cardiol, 2016, 210: 139-140.
29
范太兵, 宣茂正, 赵力运, 等. 3D打印技术在先天性主动脉瓣疾病诊治中的应用[J]. 心肺血管病杂志, 2021, 40(2): 170-174.
30
Jung JI, Koh YS, Chang K. 3D printing model before and after transcatheter aortic valve implantation for a better understanding of the anatomy of aortic root[J]. Korean Circ J, 2016, 46(4): 588-589.
31
Rotman OM, Kovarovic B, Sadasivan C, et al. Realistic vascular replicator for TAVR procedures[J]. Cardiovasc Eng Technol, 2018, 9(3): 339-350.
32
Tanaka Y, Saito S, Sasuga S, et al. Quantitative assessment of paravalvular leakage after transcatheter aortic valve replacement using a patient-specific pulsatile flow model[J]. Int J Cardiol, 2018, 258: 313-320.
33
Ripley B, Kelil T, Cheezum MK, et al. 3D printing based on cardiac CT assists anatomic visualization prior to transcatheter aortic valve replacement[J]. J Cardiovasc Comput Tomogr, 2016, 10(1): 28-36.
34
Zhu W, Ma X, Gou M, et al. 3D printing of functional biomaterials for tissue engineering[J]. Curr Opin Biotechnol, 2016, 40: 103-112.
35
Gardin C, Ferroni L, Latremouille C, et al. Recent applications of three dimensional printing in cardiovascular medicine[J]. Cells, 2020, 9(3): 742.
36
丁鹏, 徐臣年, 杨剑. 3D打印技术在经导管主动脉瓣置换术中的应用[J]. 中国介入心脏病学杂志, 2020, 28(5): 280-282.
No related articles found!
阅读次数
全文


摘要