In Vivo Tracking of Tissue Engineered Constructs

被引:27
|
作者
Gil, Carmen J. [1 ,2 ]
Tomov, Martin L. [1 ,2 ]
Theus, Andrea S. [1 ,2 ]
Cetnar, Alexander [1 ,2 ]
Mahmoudi, Morteza [3 ,4 ]
Serpooshan, Vahid [1 ,2 ,5 ,6 ]
机构
[1] Emory Univ, Sch Med, Wallace H Coulter Dept Biomed Engn, Atlanta, GA 30322 USA
[2] Georgia Inst Technol, Atlanta, GA 30322 USA
[3] Michigan State Univ, Precis Hlth Program, E Lansing, MI 48824 USA
[4] Michigan State Univ, Dept Radiol, E Lansing, MI 48824 USA
[5] Emory Univ, Sch Med, Dept Pediat, Atlanta, GA 30309 USA
[6] Childrens Healthcare Atlanta, Atlanta, GA 30322 USA
基金
美国国家科学基金会;
关键词
in vivo imaging; tissue engineering; 3D bioprinting; additive manufacturing; scaffold tracking; magnetic resonant imaging (MRI); computed tomography (CT); ultrasound; fluorescence spectroscopy; bioluminescence; optical coherence tomography; photoacoustic imaging; magnetic-particle imaging; multimodal imaging; X-RAY ANGIOGRAPHY; MAGNETIC-RESONANCE ANGIOGRAPHY; GOLD NANOPARTICLES; IMAGING TECHNOLOGIES; STEM-CELLS; QUANTITATIVE ASSESSMENT; MECHANICAL-PROPERTIES; HYDROGEL DEGRADATION; COMPUTED-TOMOGRAPHY; CONTRAST AGENTS;
D O I
10.3390/mi10070474
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
To date, the fields of biomaterials science and tissue engineering have shown great promise in creating bioartificial tissues and organs for use in a variety of regenerative medicine applications. With the emergence of new technologies such as additive biomanufacturing and 3D bioprinting, increasingly complex tissue constructs are being fabricated to fulfill the desired patient-specific requirements. Fundamental to the further advancement of this field is the design and development of imaging modalities that can enable visualization of the bioengineered constructs following implantation, at adequate spatial and temporal resolution and high penetration depths. These in vivo tracking techniques should introduce minimum toxicity, disruption, and destruction to treated tissues, while generating clinically relevant signal-to-noise ratios. This article reviews the imaging techniques that are currently being adopted in both research and clinical studies to track tissue engineering scaffolds in vivo, with special attention to 3D bioprinted tissue constructs.
引用
收藏
页数:23
相关论文
共 50 条
  • [21] Tissue Engineered Constructs: Perspectives on Clinical Translation
    Lu, Lichun
    Arbit, Harvey M.
    Herrick, James L.
    Segovis, Suzanne Glass
    Maran, Avudaiappan
    Yaszemski, Michael J.
    ANNALS OF BIOMEDICAL ENGINEERING, 2015, 43 (03) : 796 - 804
  • [22] Bioprinting Vascular Networks for Engineered Tissue Constructs
    Moya, M. L.
    Cardona, M.
    Wheeler, E.
    TISSUE ENGINEERING PART A, 2015, 21 : S42 - S42
  • [23] Tissue Engineered Constructs: Perspectives on Clinical Translation
    Lichun Lu
    Harvey M. Arbit
    James L. Herrick
    Suzanne Glass Segovis
    Avudaiappan Maran
    Michael J. Yaszemski
    Annals of Biomedical Engineering, 2015, 43 : 796 - 804
  • [24] Tissue engineered constructs for peripheral nerve surgery
    P. J. Johnson
    M. D. Wood
    A. M . Moore
    S. E. Mackinnon
    European Surgery, 2013, 45 : 122 - 135
  • [25] Tissue engineered constructs for peripheral nerve surgery
    Johnson, P. J.
    Wood, M. D.
    Moore, A. M.
    Mackinnon, S. E.
    EUROPEAN SURGERY-ACTA CHIRURGICA AUSTRIACA, 2013, 45 (03): : 122 - 135
  • [26] Biomechanical issues of tissue-engineered constructs for articular cartilage regeneration: in vitro and in vivo approaches
    Cipollaro, Lucio
    Ciardulli, Maria Camilla
    Della Porta, Giovanna
    Peretti, Giuseppe M.
    Maffulli, Nicola
    BRITISH MEDICAL BULLETIN, 2019, 132 (01) : 53 - 80
  • [27] In Vivo Implantation of Tissue-Engineered Human Nasal Septal Neocartilage Constructs: A Pilot Study
    Chang, Angela A.
    Reuther, Marsha S.
    Briggs, Kristen K.
    Schumacher, Barbara L.
    Williams, Gregory M.
    Corr, Maripat
    Sah, Robert L.
    Watson, Deborah
    OTOLARYNGOLOGY-HEAD AND NECK SURGERY, 2012, 146 (01) : 46 - 52
  • [28] THE DEVELOPMENT OF THE COLLAGEN FIBRE NETWORK IN TISSUE-ENGINEERED CARTILAGE CONSTRUCTS IN VIVO. ENGINEERED CARTILAGE REORGANISES FIBRE NETWORK
    Paetzold, H.
    Goepfert, C.
    Huber, G.
    Hoenig, E.
    Poertner, R.
    Schilling, A. F.
    Meenen, N. M.
    Morlock, M. M.
    EUROPEAN CELLS & MATERIALS, 2012, 23 : 209 - 221
  • [29] Preconditioning of skeletal myoblast-based engineered tissue constructs enables functional coupling to myocardium in vivo
    Treskes, Philipp
    Neef, Klaus
    Srinivasan, Sureshkumar Perumal
    Halbach, Marcel
    Stamm, Christof
    Cowan, Douglas
    Scherner, Maximilian
    Madershahian, Navid
    Wittwer, Thorsten
    Hescheler, Juergen
    Wahlers, Thorsten
    Choi, Yeong-Hoon
    JOURNAL OF THORACIC AND CARDIOVASCULAR SURGERY, 2015, 149 (01): : 348 - 356
  • [30] Force characteristics of in vivo tissue-engineered myocardial constructs using varying cell seeding densities
    Birla, Ravi
    Dhawan, Vikas
    Huang, Yen-Chih
    Lytle, Ian
    Tiranathanagul, Khajohn
    Brown, David
    ARTIFICIAL ORGANS, 2008, 32 (09) : 684 - 691