DUCT: Double Resin Casting followed by Micro-Computed Tomography for 3D Liver Analysis

被引:2
|
作者
Hankeova, Simona [1 ]
Salplachta, Jakub [2 ]
Van Hul, Noemi [1 ]
Kavkova, Michaela [2 ]
Iqbal, Afshan [1 ]
Zikmund, Tomas [2 ]
Kaiser, Jozef [2 ]
Andersson, Emma R. [1 ]
机构
[1] Karolinska Inst, Stockholm, Sweden
[2] Cent European Inst Technol BUT, Brno, Czech Republic
来源
基金
瑞典研究理事会;
关键词
INTRAHEPATIC BILE-DUCTS; BILIARY SYSTEM;
D O I
10.3791/62941
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The liver is the biggest internal organ in humans and mice, and high auto-fluorescence presents a significant challenge for assessing the three-dimensional (3D) architecture of the organ at the whole-organ level. Liver architecture is characterized by multiple branching lumenized structures, which can be filled with resin, including vascular and biliary trees, establishing a highly stereotyped pattern in the otherwise hepatocyte-rich parenchyma. This protocol describes the pipeline for performing double resin casting micro-computed tomography, or "DUCT". DUCT entails injecting the portal vein and common bile duct with two different radiopaque synthetic resins, followed by tissue fixation. Quality control by clearing one lobe, or the entire liver, with an optical clearing agent, allows for pre-screening of suitably injected samples. In the second part of the DUCT pipeline, a lobe or the whole liver can be used for micro-computed tomography (microCT) scanning, (semi-)automated segmentation, and 3D rendering of the portal venous and biliary networks. MicroCT results in 3D coordinate data for the two resins allowing for qualitative as well as quantitative analysis of the two systems and their spatial relationship. DUCT can be applied to postnatal and adult mouse liver and can be further extended to other tubular networks, for example, vascular networks and airways in the lungs.
引用
收藏
页数:19
相关论文
共 50 条
  • [31] A preclinical micro-computed tomography database including 3D whole body organ segmentations
    Stefanie Rosenhain
    Zuzanna A. Magnuska
    Grace G. Yamoah
    Wa’el Al Rawashdeh
    Fabian Kiessling
    Felix Gremse
    Scientific Data, 5
  • [32] THE COMPLEMENTARY USE OF 3D X-RAY MICRO-COMPUTED TOMOGRAPHY WITH TRADITIONAL METALLOGRAPHY
    Kar, Nikhil
    Bovie, Adam
    Roig, Tim
    ADVANCED MATERIALS & PROCESSES, 2022, 180 (01): : 16 - 20
  • [33] Micro-computed tomography for analysis of urinary calculi
    Williams, James C., Jr.
    McAteer, James A.
    Evan, Andrew P.
    Lingeman, James E.
    UROLOGICAL RESEARCH, 2010, 38 (06): : 477 - 484
  • [34] Micro-computed tomography for analysis of urinary calculi
    James C. Williams
    James A. McAteer
    Andrew P. Evan
    James E. Lingeman
    Urological Research, 2010, 38 : 477 - 484
  • [35] Photoacoustic tomography versus cone-beam computed tomography versus micro-computed tomography: Accuracy of 3D reconstructions of human teeth
    Schneider, Sonja Jasmin Maria
    Hoehne, Christian
    Schneider, Martin
    Schmitter, Marc
    PLOS ONE, 2022, 17 (12):
  • [36] Virtual Casting of Stab Wounds in Cartilage Using Micro-Computed Tomography
    Pounder, Derrick J.
    Sim, Louise J.
    AMERICAN JOURNAL OF FORENSIC MEDICINE AND PATHOLOGY, 2011, 32 (02): : 97 - 99
  • [37] The use of a liner under different bulk-fill resin composites: 3D GAP formation analysis by x-ray micro-computed tomography
    Oglakci, Burcu
    Kazak, Magrur
    Donmez, Nazmiye
    Dalkilic, Evrim Eliguzeloglu
    Koymen, Safiye Selin
    JOURNAL OF APPLIED ORAL SCIENCE, 2020, 28
  • [38] AUTOMATIC 3D SELECTION, SEGMENTATION, AND ANALYSIS OF HUMAN ARTICULAR CARTILAGE CHONDRONS FROM MICRO-COMPUTED TOMOGRAPHY IN VITRO
    Kestila, I.
    Thevenot, J. P.
    Finnila, M. A.
    Karhula, S. S.
    Hadjab, I.
    Kauppinen, S.
    Garon, M.
    Quenneville, E.
    Rieppo, L.
    Pritzker, K. P.
    Buschmann, M. D.
    Nieminen, H. J.
    Saarakkala, S.
    OSTEOARTHRITIS AND CARTILAGE, 2017, 25 : S321 - S321
  • [39] 3D micro-Computed Tomography imaging and reconstruction of the mouse ovary before and after gonadotropins treatment
    Fiorentino, G.
    Parrilli, A.
    Cimadomo, D.
    Vaiarelli, A.
    Rienzi, L.
    Ubaldi, F. M.
    Garagna, S.
    Zuccotti, M.
    HUMAN REPRODUCTION, 2022, 37 : I464 - I464
  • [40] 3D histopathological grading of osteochondral tissue using contrast-enhanced micro-computed tomography
    Nieminen, H. J.
    Gahunia, H. K.
    Pritzker, K. P. H.
    Ylitalo, T.
    Rieppo, L.
    Karhula, S. S.
    Lehenkari, P.
    Haeggstorm, E.
    Saarakkala, S.
    OSTEOARTHRITIS AND CARTILAGE, 2017, 25 (10) : 1680 - 1689