Literature DB >> 29441601

Refrigeration, cryopreservation and pathogen inactivation: an updated perspective on platelet storage conditions.

L Waters1,2, M Cameron1,2, M P Padula2, D C Marks1, L Johnson1.   

Abstract

Conventional storage of platelet concentrates limits their shelf life to between 5 and 7 days due to the risk of bacterial proliferation and the development of the platelet storage lesion. Cold storage and cryopreservation of platelets may facilitate extension of the shelf life to weeks and years, and may also provide the benefit of being more haemostatically effective than conventionally stored platelets. Further, treatment of platelet concentrates with pathogen inactivation systems reduces bacterial contamination and provides a safeguard against the risk of emerging and re-emerging pathogens. While each of these alternative storage techniques is gaining traction individually, little work has been done to examine the effect of combining treatments in an effort to further improve product safety and minimize wastage. This review aims to discuss the benefits of alternative storage techniques and how they may be combined to alleviate the problems associated with conventional platelet storage.
© 2018 International Society of Blood Transfusion.

Keywords:  cold; cryopreservation; pathogen inactivation; platelet; storage

Mesh:

Substances:

Year:  2018        PMID: 29441601     DOI: 10.1111/vox.12640

Source DB:  PubMed          Journal:  Vox Sang        ISSN: 0042-9007            Impact factor:   2.144


  7 in total

1.  The effect of four different freezing conditions and time in frozen storage on the concentration of commonly measured growth factors and enzymes in equine platelet-rich plasma over six months.

Authors:  Andrew K McClain; Taralyn M McCarrel
Journal:  BMC Vet Res       Date:  2019-08-14       Impact factor: 2.741

2.  Platelet storage induces accelerated desialylation of platelets and increases hepatic thrombopoietin production.

Authors:  Jooyoung Cho; Hyunkyung Kim; Jaewoo Song; June-Won Cheong; Jeong Won Shin; Woo Ick Yang; Hyun Ok Kim
Journal:  J Transl Med       Date:  2018-07-18       Impact factor: 5.531

3.  Proceedings of the Food and Drug Administration public workshop on pathogen reduction technologies for blood safety 2018 (Commentary, p. 3026).

Authors:  Chintamani Atreya; Simone Glynn; Michael Busch; Steve Kleinman; Edward Snyder; Sara Rutter; James AuBuchon; Willy Flegel; David Reeve; Dana Devine; Claudia Cohn; Brian Custer; Raymond Goodrich; Richard J Benjamin; Anna Razatos; Jose Cancelas; Stephen Wagner; Michelle Maclean; Monique Gelderman; Andrew Cap; Paul Ness
Journal:  Transfusion       Date:  2019-05-29       Impact factor: 3.157

4.  Non-ionizing 405 nm Light as a Potential Bactericidal Technology for Platelet Safety: Evaluation of in vitro Bacterial Inactivation and in vivo Platelet Recovery in Severe Combined Immunodeficient Mice.

Authors:  Michelle Maclean; Monique P Gelderman; Sandhya Kulkarni; Rachael M Tomb; Caitlin F Stewart; John G Anderson; Scott J MacGregor; Chintamani D Atreya
Journal:  Front Med (Lausanne)       Date:  2020-01-15

5.  Impact of cold storage on platelets treated with Intercept pathogen inactivation.

Authors:  Katrijn R Six; Rosalie Devloo; Veerle Compernolle; Hendrik B Feys
Journal:  Transfusion       Date:  2019-06-12       Impact factor: 3.337

6.  Protein Concentrations in Stored Pooled Platelet Concentrates Treated with Pathogen Inactivation by Amotosalen Plus Ultraviolet a Illumination.

Authors:  Niels Arni Arnason; Freyr Johannsson; Ragna Landrö; Björn Hardarsson; Sveinn Gudmundsson; Aina-Mari Lian; Janne Reseland; Ottar Rolfsson; Olafur E Sigurjonsson
Journal:  Pathogens       Date:  2022-03-14

Review 7.  Impact of different pathogen reduction technologies on the biochemistry, function, and clinical effectiveness of platelet concentrates: An updated view during a pandemic.

Authors:  Gines Escolar; Maribel Diaz-Ricart; Jeffrey McCullough
Journal:  Transfusion       Date:  2021-12-06       Impact factor: 3.337

  7 in total

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