The Impact of Varying Cooling and Thawing Rates on the Quality of Cryopreserved Human Peripheral Blood T Cells

被引:80
作者
Baboo, Jasmin [1 ]
Kilbride, Peter [2 ]
Delahaye, Mike [1 ]
Milne, Stuart [2 ]
Fonseca, Fernanda [3 ]
Blanco, Magdalena [1 ]
Meneghel, Julie [2 ]
Nancekievill, Alex [2 ]
Gaddum, Nick [1 ]
Morris, G. John [2 ]
机构
[1] Guys Hosp, Cell & Gene Therapy Catapult, 12th Floor Tower Wing, London SE1 9RT, England
[2] Gen Elect Healthcare, Asymptote, Sovereign House, Cambridge CB24 9BZ, England
[3] Univ Paris Saclay, INRA, AgroParisTech, UMR GMPA, F-78850 Thiverval Grignon, France
关键词
WARMING RATE; VIABILITY; SURVIVAL; FROZEN; CANCER; PBMC; POPULATIONS; RECOVERY; MOTILITY;
D O I
10.1038/s41598-019-39957-x
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
For the clinical delivery of immunotherapies it is anticipated that cells will be cryopreserved and shipped to the patient where they will be thawed and administered. An established view in cellular cryopreservation is that following freezing, cells must be warmed rapidly (<= 5 minutes) in order to maintain high viability. In this study we examine the interaction between the rate of cooling and rate of warming on the viability, and function of T cells formulated in a conventional DMSO based cryoprotectant and processed in conventional cryovials. The data obtained show that provided the cooling rate is -1 degrees C min(-1) or slower, there is effectively no impact of warming rate on viable cell number within the range of warming rates examined (1.6 degrees C min(-1) to 113 degrees C min(-1)). It is only following a rapid rate of cooling (-10 degrees C min(-1)) that a reduction in viable cell number is observed following slow rates of warming (1.6 degrees C min(-1) and 6.2 degrees C min(-1)), but not rapid rates of warming (113 degrees C min(-1) and 45 degrees C min(-1)). Cryomicroscopy studies revealed that this loss of viability is correlated with changes in the ice crystal structure during warming. At high cooling rates (-10 degrees C min(-1)) the ice structure appeared highly amorphous, and when subsequently thawed at slow rates (6.2 degrees C min(-1) and below) ice recrystallization was observed during thaw suggesting mechanical disruption of the frozen cells. This data provides a fascinating insight into the crystal structure dependent behaviour during phase change of frozen cell therapies and its effect on live cell suspensions. Furthermore, it provides an operating envelope for the cryopreservation of T cells as an emerging industry defines formulation volumes and cryocontainers for immunotherapy products.
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页数:13
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