In situ volumetric imaging and analysis of FRESH 3D bioprinted constructs using optical coherence tomography

被引:20
|
作者
Tashman, Joshua W. [1 ]
Shiwarski, Daniel J. [1 ]
Coffin, Brian [3 ]
Ruesch, Alexander [1 ]
Lanni, Frederick [2 ]
Kainerstorfer, Jana M. [1 ]
Feinberg, Adam W. [1 ,3 ]
机构
[1] Carnegie Mellon Univ, Dept Biomed Engn, Pittsburgh, PA 15213 USA
[2] Carnegie Mellon Univ, Dept Biol Sci, Pittsburgh, PA 15213 USA
[3] Carnegie Mellon Univ, Dept Mat Sci & Engn, Pittsburgh, PA 15213 USA
基金
美国国家卫生研究院;
关键词
FRESH; 3D bioprinting; collagen; optical coherence tomography; embedded printing; HYDROGEL SCAFFOLDS; COLLAGEN;
D O I
10.1088/1758-5090/ac975e
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
As 3D bioprinting has grown as a fabrication technology, so too has the need for improved analytical methods to characterize engineered constructs. This is especially challenging for engineered tissues composed of hydrogels and cells, as these materials readily deform when trying to assess print fidelity and other properties non-destructively. Establishing that the 3D architecture of the bioprinted construct matches its intended anatomic design is critical given the importance of structure-function relationships in most tissue types. Here we report development of a multimaterial bioprinting platform with integrated optical coherence tomography for in situ volumetric imaging, error detection, and 3D reconstruction. We also report improvements to the freeform reversible embedding of suspended hydrogels bioprinting process through new collagen bioink compositions, gelatin microparticle support bath optical clearing, and optimized machine pathing. This enables quantitative 3D volumetric imaging with micron resolution over centimeter length scales, the ability to detect a range of print defect types within a 3D volume, and real-time imaging of the printing process at each print layer. These advances provide a comprehensive methodology for print quality assessment, paving the way toward the production and process control required for achieving regulatory approval and ultimately clinical translation of engineered tissues.
引用
收藏
页数:21
相关论文
共 50 条
  • [41] 3D volumetric tomography of clouds using machine learning for climate analysis
    Ronen, Roi
    Koren, Ilan
    Levis, Aviad
    Eytan, Eshkol
    Holodovsky, Vadim
    Schechner, Yoav Y.
    SCIENTIFIC REPORTS, 2025, 15 (01):
  • [42] Novel Protein-Rich Bioactive Bioink Stimulates Cellular Proliferation and Response in 3D Bioprinted Volumetric Constructs
    Liu, Suihong
    Kilian, David
    Bernhardt, Anne
    Wirsig, Katharina
    von Witzleben, Max
    Duin, Sarah
    Lode, Anja
    Hu, Qingxi
    Gelinsky, Michael
    ADVANCED HEALTHCARE MATERIALS, 2025,
  • [43] Cellular Particle Dynamics Simulation Of Bioprinted 3d Tissue Constructs
    Barz, Bogdan
    Das, Jhuma
    Flenner, Elijah
    Marga, Francoise
    Norote, Cyrille
    Forgacs, Gabor
    Kosztin, Ioan
    BIOPHYSICAL JOURNAL, 2009, 96 (03) : 306A - 306A
  • [44] COMPUTATIONAL SIMULATION OF INTERSTITIAL FLOW IN BIOPRINTED 3D TISSUE CONSTRUCTS
    Rezende, Rodrigo A.
    Nogueira, Julia A.
    Lara, Viviane F.
    Kemmoku, Daniel
    Pereira, Frederico D. A. S.
    Mironov, Vladimir
    Da Silva, Jorge V. L.
    Brakke, Ken
    PROCEEDINGS OF THE 1ST INTERNATIONAL CONFERENCE ON PROGRESS IN ADDITIVE MANUFACTURING, 2014, : 7 - +
  • [45] 3D imaging of human skin - Optical in vivo tomography and topology by short coherence interferometry
    Bail, M
    Eigensee, A
    Hausler, G
    Herrmann, JM
    Lindner, MW
    COHERENCE DOMAIN OPTICAL METHODS IN BIOMEDICAL SCIENCE AND CLINICAL APPLICATIONS, PROCEEDINGS OF, 1997, 2981 : 64 - 75
  • [46] Computational 3D microscopy with optical coherence refraction tomography
    Zhou, Kevin C.
    McNabb, Ryan P.
    Qian, Ruobing
    Degan, Simone
    Dhalla, Al-Hafeez
    Farsiu, Sina
    Izatt, Joseph A.
    OPTICA, 2022, 9 (06): : 593 - 601
  • [47] Fresh 3d Bioprinted Patient-specific Extracellular Matrix Hydrogel Patches For Volumetric Muscle Loss
    Behre, A.
    Tashman, J.
    Dikyol, C.
    Shiwarski, D. J.
    Johnson, S.
    Crum, R. J.
    Hussey, G.
    Badylak, S. F.
    Feinberg, A. W.
    TISSUE ENGINEERING PART A, 2022, 28 : 320 - 321
  • [48] Imaging of pigment epithelial disease using threedimensional (3D) Ultrahigh resolution (UHR) optical coherence tomography (OCT)
    Sacu, S
    Leitgeb, R
    Michels, S
    Hermann, B
    Ahlers, C
    Povazay, B
    Sattmann, H
    Drexler, W
    Schmidt-Erfurth, U
    INVESTIGATIVE OPHTHALMOLOGY & VISUAL SCIENCE, 2005, 46
  • [49] Intraoperative handheld probe for 3D imaging of pediatric benign vocal fold lesions using optical coherence tomography
    Benboujja, Fouzi
    Garcia, Jordan
    Beaudette, Kathy
    Strupler, Mathias
    Hartnick, Christopher J.
    Boudoux, Caroline
    PHOTONIC THERAPEUTICS AND DIAGNOSTICS XII, 2016, 9689
  • [50] 3D imaging of cone photoreceptors over extended time periods using optical coherence tomography with adaptive optics
    Kocaoglu, Omer P.
    Lee, Sangyeol
    Jonnal, Ravi S.
    Wang, Qiang
    Herde, Ashley E.
    Besecker, Jason
    Gao, Weihua
    Miller, Donald T.
    OPHTHALMIC TECHNOLOGIES XXI, 2011, 7885