Literature DB >> 28192076

Thermo-mechanical stress analysis of cryopreservation in cryobags and the potential benefit of nanowarming.

Prem K Solanki1, John C Bischof2, Yoed Rabin3.   

Abstract

Cryopreservation by vitrification is the only promising solution for long-term organ preservation which can save tens of thousands of lives across the world every year. One of the challenges in cryopreservation of large-size tissues and organs is to prevent fracture formation due to the tendency of the material to contract with temperature. The current study focuses on a pillow-like shape of a cryobag, while exploring various strategies to reduce thermo-mechanical stress during the rewarming phase of the cryopreservation protocol, where maximum stresses are typically found. It is demonstrated in this study that while the level of stress may generally increase with the increasing amount of CPA filled in the cryobag, the ratio between width and length of the cryobag play a significant role. Counterintuitively, the overall maximum stress is not found when the bag is filled to its maximum capacity (when the filled cryobag resembles a sphere). Parametric investigation suggests that reducing the initial rewarming rate between the storage temperature and the glass transition temperature may dramatically decrease the thermo-mechanical stress. Adding a temperature hold during rewarming at the glass transition temperature may reduce the thermo-mechanical stress in some cases, but may have an adverse effect in other cases. Finally, it is demonstrated that careful incorporation of volumetric heating by means on nanoparticles in an alternating magnetic field, or nanowarming, can dramatically reduce the resulting thermo-mechanical stress. These observations display the potential benefit of a thermo-mechanical design of the cryopreservation protocols in order to prevent structural damage.
Copyright © 2017 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  Cryobag; Cryopreservation; Nanowarming; Simulations; Thermo-mechanical stress; Vitrification

Mesh:

Year:  2017        PMID: 28192076      PMCID: PMC5651684          DOI: 10.1016/j.cryobiol.2017.02.001

Source DB:  PubMed          Journal:  Cryobiology        ISSN: 0011-2240            Impact factor:   2.487


  32 in total

1.  Fractures in cryopreserved elastic arteries.

Authors:  D E Pegg; M C Wusteman; S Boylan
Journal:  Cryobiology       Date:  1997-03       Impact factor: 2.487

2.  Letter to the editor: analysis of thermo-mechanical stress in cryopreservation.

Authors:  Yeod Rabin; Paul S Steif
Journal:  Cryo Letters       Date:  2005 Nov-Dec       Impact factor: 1.066

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.  Numerical simulation of the effect of superparamagnetic nanoparticles on microwave rewarming of cryopreserved tissues.

Authors:  Tao Wang; Gang Zhao; Xin M Liang; Yunpeng Xu; Yang Li; Heyu Tang; Rui Jiang; Dayong Gao
Journal:  Cryobiology       Date:  2014-02-13       Impact factor: 2.487

5.  Rewarming mice from hypothermia by exposure to 2450-MHz microwave radiation.

Authors:  C J Gordon
Journal:  Cryobiology       Date:  1982-08       Impact factor: 2.487

6.  Microwave thawing of frozen kidneys: a theoretically based experimentally-effective design.

Authors:  E C Burdette; S Wiggins; R Brown; A M Karow
Journal:  Cryobiology       Date:  1980-08       Impact factor: 2.487

7.  Organ temperature measurement in a microwave oven by resonance frequency shift.

Authors:  D Cooper; F Ketterer; H Holst
Journal:  Cryobiology       Date:  1981-08       Impact factor: 2.487

8.  Novel approaches to cryopreservation of human pancreatic islets.

Authors:  J R Lakey; T J Anderson; R V Rajotte
Journal:  Transplantation       Date:  2001-09-27       Impact factor: 4.939

9.  Viscosity of cryoprotective agents near glass transition: a new device, technique, and data on DMSO, DP6, and VS55.

Authors:  Daniel A Noday; Paul S Steif; Yoed Rabin
Journal:  Exp Mech       Date:  2009-10       Impact factor: 2.808

10.  Polarized light scanning cryomacroscopy, part II: Thermal modeling and analysis of experimental observations.

Authors:  Justin S G Feig; Prem K Solanki; David P Eisenberg; Yoed Rabin
Journal:  Cryobiology       Date:  2016-06-21       Impact factor: 2.487

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  15 in total

1.  Magnetic Nanoparticle-Mediated Heating for Biomedical Applications.

Authors:  Elyahb Allie Kwizera; Samantha Stewart; Md Musavvir Mahmud; Xiaoming He
Journal:  J Heat Transfer       Date:  2022-01-18       Impact factor: 2.021

2.  Thermal Analyses of Nanowarming-Assisted Recovery of the Heart From Cryopreservation by Vitrification.

Authors:  Purva Joshi; Lili E Ehrlich; Zhe Gao; John C Bischof; Yoed Rabin
Journal:  J Heat Transfer       Date:  2022-01-18       Impact factor: 1.855

3.  Vitrification and Rewarming of Magnetic Nanoparticle-Loaded Rat Hearts.

Authors:  Zhe Gao; Baterdene Namsrai; Zonghu Han; Purva Joshi; Joseph Sushil Rao; Vasanth Ravikumar; Anirudh Sharma; Hattie L Ring; Djaudat Idiyatullin; Elliott C Magnuson; Paul A Iaizzo; Elena G Tolkacheva; Michael Garwood; Yoed Rabin; Michael Etheridge; Erik B Finger; John C Bischof
Journal:  Adv Mater Technol       Date:  2021-10-01

4.  Analysis of crystallization during rewarming in suboptimal vitrification conditions: a semi-empirical approach.

Authors:  Purva Joshi; Yoed Rabin
Journal:  Cryobiology       Date:  2021-09-17       Impact factor: 2.728

Review 5.  PERSPECTIVE: Temperature-dependent density and thermal expansion of cryoprotective cocktails.

Authors:  P K Solanki; Y Rabin
Journal:  Cryo Letters       Date:  2022 Jan-Feb       Impact factor: 0.892

Review 6.  Towards a method for cryopreservation of mosquito vectors of human pathogens.

Authors:  Emily N Gallichotte; Karen M Dobos; Gregory D Ebel; Mary Hagedorn; Jason L Rasgon; Jason H Richardson; Timothy T Stedman; Jennifer P Barfield
Journal:  Cryobiology       Date:  2021-02-05       Impact factor: 2.487

7.  Thermal conductivity of cryoprotective agents loaded with nanoparticles, with application to recovery of preserved tissues and organs from cryogenic storage.

Authors:  Lili E Ehrlich; Zhe Gao; John C Bischof; Yoed Rabin
Journal:  PLoS One       Date:  2020-09-17       Impact factor: 3.240

8.  Ultrarapid Inductive Rewarming of Vitrified Biomaterials with Thin Metal Forms.

Authors:  Navid Manuchehrabadi; Meng Shi; Priyatanu Roy; Zonghu Han; Jinbin Qiu; Feng Xu; Tian Jian Lu; John Bischof
Journal:  Ann Biomed Eng       Date:  2018-06-19       Impact factor: 3.934

9.  Analysis of polarized-light effects in glass-promoting solutions with applications to cryopreservation and organ banking.

Authors:  Prem K Solanki; Yoed Rabin
Journal:  PLoS One       Date:  2018-06-18       Impact factor: 3.240

Review 10.  Winter is coming: the future of cryopreservation.

Authors:  Sanja Bojic; Alex Murray; Roman Bauer; João Pedro de Magalhães; Barry L Bentley; Ralf Spindler; Piotr Pawlik; José L Cordeiro
Journal:  BMC Biol       Date:  2021-03-24       Impact factor: 7.431

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