Literature DB >> 25539889

Dynamic Assessment of the Endothelialization of Tissue-Engineered Blood Vessels Using an Optical Coherence Tomography Catheter-Based Fluorescence Imaging System.

Abhijit Achyut Gurjarpadhye1, Matthew R DeWitt1, Yong Xu2, Ge Wang3, Marissa Nichole Rylander4, Christopher G Rylander4.   

Abstract

BACKGROUND: Lumen endothelialization of bioengineered vascular scaffolds is essential to maintain small-diameter graft patency and prevent thrombosis postimplantation. Unfortunately, nondestructive imaging methods to visualize this dynamic process are lacking, thus slowing development and clinical translation of these potential tissue-engineering approaches. To meet this need, a fluorescence imaging system utilizing a commercial optical coherence tomography (OCT) catheter was designed to visualize graft endothelialization.
METHODS: C7 DragonFly™ intravascular OCT catheter was used as a channel for delivery and collection of excitation and emission spectra. Poly-dl-lactide (PDLLA) electrospun scaffolds were seeded with endothelial cells (ECs). Seeded cells were exposed to Calcein AM before imaging, causing the living cells to emit green fluorescence in response to blue laser. By positioning the catheter tip precisely over a specimen using high-fidelity electromechanical components, small regions of the specimen were excited selectively. The resulting fluorescence intensities were mapped on a two-dimensional digital grid to generate spatial distribution of fluorophores at single-cell-level resolution. Fluorescence imaging of endothelialization on glass and PDLLA scaffolds was performed using the OCT catheter-based imaging system as well as with a commercial fluorescence microscope. Cell coverage area was calculated for both image sets for quantitative comparison of imaging techniques. Tubular PDLLA scaffolds were maintained in a bioreactor on seeding with ECs, and endothelialization was monitored over 5 days using the OCT catheter-based imaging system.
RESULTS: No significant difference was observed in images obtained using our imaging system to those acquired with the fluorescence microscope. Cell area coverage calculated using the images yielded similar values. Nondestructive imaging of endothelialization on tubular scaffolds showed cell proliferation with cell coverage area increasing from 15 ± 4% to 89 ± 6% over 5 days.
CONCLUSION: In this study, we showed the capability of an OCT catheter-based imaging system to obtain single-cell resolution and to quantify endothelialization in tubular electrospun scaffolds. We also compared the resulting images with traditional microscopy, showing high fidelity in image capability. This imaging system, used in conjunction with OCT, could potentially be a powerful tool for in vitro optimization of scaffold cellularization, ensuring long-term graft patency postimplantation.

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Mesh:

Year:  2015        PMID: 25539889      PMCID: PMC4499783          DOI: 10.1089/ten.TEC.2014.0345

Source DB:  PubMed          Journal:  Tissue Eng Part C Methods        ISSN: 1937-3384            Impact factor:   3.056


  29 in total

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Authors:  E R Edelman
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Review 3.  Vascular tissue engineering: the next generation.

Authors:  Muriel A Cleary; Erik Geiger; Conor Grady; Cameron Best; Yuji Naito; Christopher Breuer
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Review 4.  Fiber-optic fluorescence imaging.

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5.  Blood vessels engineered from human cells.

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6.  Assessment of blood vessel mimics with optical coherence tomography.

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Review 7.  Optical coherence tomography– 15 years in cardiology.

Authors:  Taishi Yonetsu; Brett E Bouma; Koji Kato; James G Fujimoto; Ik-Kyung Jang
Journal:  Circ J       Date:  2013-07-12       Impact factor: 2.993

8.  Elastographic mapping in optical coherence tomography using an unconventional approach based on correlation stability.

Authors:  Vladimir Y Zaitsev; Lev A Matveev; Alexandr L Matveyev; Grigory V Gelikonov; Valentin M Gelikonov
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9.  Preliminary experience with optical coherence tomography imaging to evaluate carotid artery stents: safety, feasibility and techniques.

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10.  Human tissue-engineered blood vessels for adult arterial revascularization.

Authors:  Nicolas L'Heureux; Nathalie Dusserre; Gerhardt Konig; Braden Victor; Paul Keire; Thomas N Wight; Nicolas A F Chronos; Andrew E Kyles; Clare R Gregory; Grant Hoyt; Robert C Robbins; Todd N McAllister
Journal:  Nat Med       Date:  2006-02-19       Impact factor: 53.440

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1.  Assessment of the healing process after percutaneous implantation of a cardiovascular device: a systematic review.

Authors:  Elodie Perdreau; Zakaria Jalal; Richard D Walton; Jérôme Naulin; Julie Magat; Bruno Quesson; Hubert Cochet; Olivier Bernus; Jean-Benoît Thambo
Journal:  Int J Cardiovasc Imaging       Date:  2019-11-19       Impact factor: 2.357

2.  Bioreactor design and validation for manufacturing strategies in tissue engineering.

Authors:  Diana Lim; Eric S Renteria; Drake S Sime; Young Min Ju; Ji Hyun Kim; Tracy Criswell; Thomas D Shupe; Anthony Atala; Frank C Marini; Metin N Gurcan; Shay Soker; Joshua Hunsberger; James J Yoo
Journal:  Biodes Manuf       Date:  2021-07-19

3.  Nondestructive Assessment of Engineered Cartilage Composition by Near Infrared Spectroscopy.

Authors:  Cushla M McGoverin; Arash Hanifi; Uday P Palukuru; Farzad Yousefi; Padraig B M Glenn; Michael Shockley; Richard G Spencer; Nancy Pleshko
Journal:  Ann Biomed Eng       Date:  2016-01-27       Impact factor: 3.934

Review 4.  Structural and Functional Characterization of Human Stem-Cell-Derived Retinal Organoids by Live Imaging.

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