Literature DB >> 28251904

Improved tissue cryopreservation using inductive heating of magnetic nanoparticles.

Navid Manuchehrabadi1,2, Zhe Gao1,3, Jinjin Zhang4, Hattie L Ring3,4, Qi Shao1,2, Feng Liu1, Michael McDermott3, Alex Fok5, Yoed Rabin6, Kelvin G M Brockbank7,8, Michael Garwood4,9, Christy L Haynes3, John C Bischof10,2.   

Abstract

Vitrification, a kinetic process of liquid solidification into glass, poses many potential benefits for tissue cryopreservation including indefinite storage, banking, and facilitation of tissue matching for transplantation. To date, however, successful rewarming of tissues vitrified in VS55, a cryoprotectant solution, can only be achieved by convective warming of small volumes on the order of 1 ml. Successful rewarming requires both uniform and fast rates to reduce thermal mechanical stress and cracks, and to prevent rewarming phase crystallization. We present a scalable nanowarming technology for 1- to 80-ml samples using radiofrequency-excited mesoporous silica-coated iron oxide nanoparticles in VS55. Advanced imaging including sweep imaging with Fourier transform and microcomputed tomography was used to verify loading and unloading of VS55 and nanoparticles and successful vitrification of porcine arteries. Nanowarming was then used to demonstrate uniform and rapid rewarming at >130°C/min in both physical (1 to 80 ml) and biological systems including human dermal fibroblast cells, porcine arteries and porcine aortic heart valve leaflet tissues (1 to 50 ml). Nanowarming yielded viability that matched control and/or exceeded gold standard convective warming in 1- to 50-ml systems, and improved viability compared to slow-warmed (crystallized) samples. Last, biomechanical testing displayed no significant biomechanical property changes in blood vessel length or elastic modulus after nanowarming compared to untreated fresh control porcine arteries. In aggregate, these results demonstrate new physical and biological evidence that nanowarming can improve the outcome of vitrified cryogenic storage of tissues in larger sample volumes.
Copyright © 2017, American Association for the Advancement of Science.

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Year:  2017        PMID: 28251904      PMCID: PMC5470364          DOI: 10.1126/scitranslmed.aah4586

Source DB:  PubMed          Journal:  Sci Transl Med        ISSN: 1946-6234            Impact factor:   17.956


  27 in total

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Authors:  David E Bordelon; Robert C Goldstein; Valentin S Nemkov; Ananda Kumar; John K Jackowski; Theodore L DeWeese; Robert Ivkov
Journal:  IEEE Trans Magn       Date:  2012-10       Impact factor: 1.700

Review 2.  Gold nanoparticles as novel agents for cancer therapy.

Authors:  S Jain; D G Hirst; J M O'Sullivan
Journal:  Br J Radiol       Date:  2011-10-18       Impact factor: 3.039

3.  The Effect of Temperature Gradients on Stress Development During Cryopreservation via Vitrification.

Authors:  Paul S Steif; Matthew C Palastro; Yoed Rabin
Journal:  Cell Preserv Technol       Date:  2007

4.  Vitrification of Carotid Artery Segments: An Integrated Study of Thermophysical Events and Functional Recovery Toward Scale-Up for Clinical Applications.

Authors:  S Baicu; M J Taylor; Z Chen; Y Rabin
Journal:  Cell Preserv Technol       Date:  2006

5.  Quantifying intra- and extracellular aggregation of iron oxide nanoparticles and its influence on specific absorption rate.

Authors:  Seongho Jeon; Katie R Hurley; John C Bischof; Christy L Haynes; Christopher J Hogan
Journal:  Nanoscale       Date:  2016-08-22       Impact factor: 7.790

Review 6.  Freezing of living cells: mechanisms and implications.

Authors:  P Mazur
Journal:  Am J Physiol       Date:  1984-09

7.  Accounting for biological aggregation in heating and imaging of magnetic nanoparticles.

Authors:  Michael L Etheridge; Katie R Hurley; Jinjin Zhang; Seongho Jeon; Hattie L Ring; Christopher Hogan; Christy L Haynes; Michael Garwood; John C Bischof
Journal:  Technology (Singap World Sci)       Date:  2014-09

8.  Use of X-ray tomography to map crystalline and amorphous phases in frozen biomaterials.

Authors:  J C Bischof; B Mahr; J H Choi; M Behling; D Mewes
Journal:  Ann Biomed Eng       Date:  2006-11-29       Impact factor: 3.934

9.  Predictable Heating and Positive MRI Contrast from a Mesoporous Silica-Coated Iron Oxide Nanoparticle.

Authors:  Katie R Hurley; Hattie L Ring; Michael Etheridge; Jinjin Zhang; Zhe Gao; Qi Shao; Nathan D Klein; Victoria M Szlag; Connie Chung; Theresa M Reineke; Michael Garwood; John C Bischof; Christy L Haynes
Journal:  Mol Pharm       Date:  2016-04-04       Impact factor: 4.939

10.  Freeze-thaw induced biomechanical changes in arteries: role of collagen matrix and smooth muscle cells.

Authors:  Ramji T Venkatasubramanian; Wim F Wolkers; Mithun M Shenoi; Victor H Barocas; Daniel Lafontaine; Charles L Soule; Paul A Iaizzo; John C Bischof
Journal:  Ann Biomed Eng       Date:  2010-01-27       Impact factor: 3.934

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  50 in total

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Review 2.  The promise of organ and tissue preservation to transform medicine.

Authors:  Sebastian Giwa; Jedediah K Lewis; Luis Alvarez; Robert Langer; Alvin E Roth; George M Church; James F Markmann; David H Sachs; Anil Chandraker; Jason A Wertheim; Martine Rothblatt; Edward S Boyden; Elling Eidbo; W P Andrew Lee; Bohdan Pomahac; Gerald Brandacher; David M Weinstock; Gloria Elliott; David Nelson; Jason P Acker; Korkut Uygun; Boris Schmalz; Brad P Weegman; Alessandro Tocchio; Greg M Fahy; Kenneth B Storey; Boris Rubinsky; John Bischof; Janet A W Elliott; Teresa K Woodruff; G John Morris; Utkan Demirci; Kelvin G M Brockbank; Erik J Woods; Robert N Ben; John G Baust; Dayong Gao; Barry Fuller; Yoed Rabin; David C Kravitz; Michael J Taylor; Mehmet Toner
Journal:  Nat Biotechnol       Date:  2017-06-07       Impact factor: 54.908

3.  The Unusual Properties of Polytetrafluoroethylene Enable Massive-Volume Vitrification of Stem Cells with Low-Concentration Cryoprotectants.

Authors:  Yuan Cao; Gang Zhao; Fazil Panhwar; Xiaozhang Zhang; Zhongrong Chen; Lin Cheng; Chuanbao Zang; Feng Liu; Yuanjin Zhao; Xiaoming He
Journal:  Adv Mater Technol       Date:  2018-10-17

4.  Principles Underlying Cryopreservation and Freeze-Drying of Cells and Tissues.

Authors:  Willem F Wolkers; Harriëtte Oldenhof
Journal:  Methods Mol Biol       Date:  2021

5.  Buying time for transplants.

Authors: 
Journal:  Nat Biotechnol       Date:  2017-09-11       Impact factor: 54.908

6.  Core Concept: Cryopreservation aims to engineer novel ways to freeze, store, and thaw organs.

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Journal:  Proc Natl Acad Sci U S A       Date:  2017-12-12       Impact factor: 11.205

7.  Creative technology advances tissue preservation.

Authors:  Mandi J Lopez
Journal:  Ann Transl Med       Date:  2017-12

Review 8.  Systems engineering the organ preservation process for transplantation.

Authors:  Reinier J de Vries; Martin Yarmush; Korkut Uygun
Journal:  Curr Opin Biotechnol       Date:  2019-07-04       Impact factor: 9.740

9.  Imaging the distribution of iron oxide nanoparticles in hypothermic perfused tissues.

Authors:  Hattie L Ring; Zhe Gao; Anirudh Sharma; Zonghu Han; Charles Lee; Kelvin G M Brockbank; Elizabeth D Greene; Kristi L Helke; Zhen Chen; Lia H Campbell; Bradley Weegman; Monica Davis; Michael Taylor; Sebastian Giwa; Gregory M Fahy; Brian Wowk; Roberto Pagotan; John C Bischof; Michael Garwood
Journal:  Magn Reson Med       Date:  2019-12-09       Impact factor: 4.668

10.  Dual Suppression Effect of Magnetic Induction Heating and Microencapsulation on Ice Crystallization Enables Low-Cryoprotectant Vitrification of Stem Cell-Alginate Hydrogel Constructs.

Authors:  Xiaoli Liu; Gang Zhao; Zhongrong Chen; Fazil Panhwar; Xiaoming He
Journal:  ACS Appl Mater Interfaces       Date:  2018-05-07       Impact factor: 9.229

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