81. Abazari A, Elliott JAW, McGann LE, Thompson RB (2012) MR spectroscopy measurement of the diffusion of dimethyl sulfoxide
in articular cartilage and comparison to theoretical
predictions.
Osteoarthr
Cartil
20:1004–1010
82. Bischof JC, Mahr B, Choi JH, Behling M,
Mewes D (2007) Use of X-ray tomography
to map crystalline and amorphous phases in
frozen biomaterials. Ann Biomed Eng
35:292–304
83. Corral A, Balcerzyk M, Parrado-Gallego A ´ ,
Ferna ´ndez-Go ´ mez I, Lamprea DR, Olmo A,
Risco R (2015) Assessment of the cryoprotectant concentration inside a bulky organ for
cryopreservation using X-ray computed
tomography. Cryobiology 71:419–431
84. Sharma R, Law GK, Rekieh K, Abazari A,
Elliott JA, McGann LE, Jomha NM (2007)
A novel method to measure cryoprotectant
permeation into intact articular cartilage.
Cryobiology 54:196–203
85. Jomha NM, Law GK, Abazari A, Rekieh K,
Elliott JAW, McGann LE (2009) Permeation
of several cryoprotectant agents into porcine
articular cartilage. Cryobiology 58:110–114
86. Va ´squez-Rivera A, Sommer KK, Oldenhof H,
Higgins AZ, Brockbank KGM, Hilfiker A,
Wolkers WF (2018) Simultaneous monitoring
of different vitrification solution components
permeating into tissues. Analyst 143:420–428
87. Marzi J, Biermann AC, Brauchle EM, Brockbank KGM, Stock UA, Schenke-Layland K
(2019) Marker-independent in situ quantitative assessment of residual cryoprotectants in
cardiac tissues. Anal Chem 91:2266–2272
88. Han J, Sydykov B, Yang H, Sieme H,
Oldenhof H, Wolkers WF (2019) Spectroscopic monitoring of transport processes during loading of ovarian tissue with
cryoprotective solutions. Sci Rep 9:15577
89. Polge C, Smith AU, Parkes AS (1949) Revival
of spermatozoa after vitrification and dehydration at low temperatures. Nature 164:666
90. Sieme H, Oldenhof H, Wolkers WF (2015)
Sperm membrane behaviour during cooling
and cryopreservation. Reprod Domest Anim
50(Suppl 3):20–26
91. Rowe AW, Eyster E, Kellner A (1968) Liquid
nitrogen preservation of red blood cells for
transfusion: a low glycerol - rapid freeze procedure. Cryobiology 5:119–128
92. Tullis JL, Gibson JG, Sproul MT, Tinch RJ,
Baudanze P (1970) Advantages of the high
glycerol mechanical systems for red cell preservation: a 10-year study of stability and yield.
In: Spielmann W, Seidl S (eds) Modern
problems of plood preservation. Fischer,
Stuttgart, pp 161–167
93. Lovelock JE, Bishop MW (1959) Prevention
of freezing damage to living cells by dimethyl
sulphoxide. Nature 183:1394–1395
94. Sydykov B, Oldenhof H, de Oliveira BL,
Sieme H, Wolkers WF (2018) Membrane permeabilization of phosphatidylcholine liposomes induced by cryopreservation and
vitrification solutions. Biochim Biophys Acta
1860:467–474
95. Gordeliy VI, Kiselev MA, Lesieur P, Pole AV,
Teixeira J (1998) Lipid membrane structure
and interactions in dimethyl sulfoxide/water
mixtures. Biophys J 75:2343–2351
96. Oldenhof H, Bigalk J, Hettel C, Oliveira
Barros L, Sydykov B, Bajcsy A ´ C, Sieme H,
Wolkers WF (2017) Stallion sperm cryopreservation using various permeating agents:
interplay between concentration and cooling
rate. Biopres Biobank 15:422–431
97. Fahy GM, MacFarlane DR, Angell CA, Meryman HT (1984) Vitrification as an approach
to
cryopreservation.
Cryobiology
21:407–426
98. Benson JD, Higgins AZ, Desai K, Eroglu A
(2017) A toxicity cost function approach to
optimal CPA equilibration in tissues. Cryobiology 80:144–155
99. Elmoazzen HY, Poovadan A, Law GK, Elliott
JA, McGann LE, Jomha NM (2007)
Dimethyl sulfoxide toxicity kinetics in intact
articular cartilage. Cell Tissue Bank
431:125–133
100. Jin B, Kleinhans FW, Mazur P (2014) Survivals of mouse oocytes approach 100% after
vitrification in 3-fold diluted media and
ultra-rapid warming by an IR laser pulse.
Cryobiology 68:419–430
101. Manuchehrabadi N, Gao Z, Zhang J, Ring
HL, Shao Q, Liu F, McDermott M, Fok A,
Rabin Y, Brockbank KG, Garwood M,
Haynes CL, Bischof JC (2017) Improved tissue cryopreservation using inductive heating
of magnetic nanoparticles. Sci Transl Med 9:
eaah4586
102. Luo D, Yu C, He L, Lu C, Gao D (2006)
Development of a single mode electromagnetic resonant cavity for rewarming of cryopreserved
biomaterials.
Cryobiology
53:288–293
103. Adams GD, Cook I, Ward KR (2015) The
principles of freeze-drying. In: Wolkers WF,
Oldenhof H (eds) Methods in cryopreservation and freeze-drying, methods in molecular
biology. Springer, New York, pp 121–143
24
Willem F. Wolkers and Harrie ¨ tte Oldenhof
in articular cartilage and comparison to theoretical
predictions.
Osteoarthr
Cartil
20:1004–1010
82. Bischof JC, Mahr B, Choi JH, Behling M,
Mewes D (2007) Use of X-ray tomography
to map crystalline and amorphous phases in
frozen biomaterials. Ann Biomed Eng
35:292–304
83. Corral A, Balcerzyk M, Parrado-Gallego A ´ ,
Ferna ´ndez-Go ´ mez I, Lamprea DR, Olmo A,
Risco R (2015) Assessment of the cryoprotectant concentration inside a bulky organ for
cryopreservation using X-ray computed
tomography. Cryobiology 71:419–431
84. Sharma R, Law GK, Rekieh K, Abazari A,
Elliott JA, McGann LE, Jomha NM (2007)
A novel method to measure cryoprotectant
permeation into intact articular cartilage.
Cryobiology 54:196–203
85. Jomha NM, Law GK, Abazari A, Rekieh K,
Elliott JAW, McGann LE (2009) Permeation
of several cryoprotectant agents into porcine
articular cartilage. Cryobiology 58:110–114
86. Va ´squez-Rivera A, Sommer KK, Oldenhof H,
Higgins AZ, Brockbank KGM, Hilfiker A,
Wolkers WF (2018) Simultaneous monitoring
of different vitrification solution components
permeating into tissues. Analyst 143:420–428
87. Marzi J, Biermann AC, Brauchle EM, Brockbank KGM, Stock UA, Schenke-Layland K
(2019) Marker-independent in situ quantitative assessment of residual cryoprotectants in
cardiac tissues. Anal Chem 91:2266–2272
88. Han J, Sydykov B, Yang H, Sieme H,
Oldenhof H, Wolkers WF (2019) Spectroscopic monitoring of transport processes during loading of ovarian tissue with
cryoprotective solutions. Sci Rep 9:15577
89. Polge C, Smith AU, Parkes AS (1949) Revival
of spermatozoa after vitrification and dehydration at low temperatures. Nature 164:666
90. Sieme H, Oldenhof H, Wolkers WF (2015)
Sperm membrane behaviour during cooling
and cryopreservation. Reprod Domest Anim
50(Suppl 3):20–26
91. Rowe AW, Eyster E, Kellner A (1968) Liquid
nitrogen preservation of red blood cells for
transfusion: a low glycerol - rapid freeze procedure. Cryobiology 5:119–128
92. Tullis JL, Gibson JG, Sproul MT, Tinch RJ,
Baudanze P (1970) Advantages of the high
glycerol mechanical systems for red cell preservation: a 10-year study of stability and yield.
In: Spielmann W, Seidl S (eds) Modern
problems of plood preservation. Fischer,
Stuttgart, pp 161–167
93. Lovelock JE, Bishop MW (1959) Prevention
of freezing damage to living cells by dimethyl
sulphoxide. Nature 183:1394–1395
94. Sydykov B, Oldenhof H, de Oliveira BL,
Sieme H, Wolkers WF (2018) Membrane permeabilization of phosphatidylcholine liposomes induced by cryopreservation and
vitrification solutions. Biochim Biophys Acta
1860:467–474
95. Gordeliy VI, Kiselev MA, Lesieur P, Pole AV,
Teixeira J (1998) Lipid membrane structure
and interactions in dimethyl sulfoxide/water
mixtures. Biophys J 75:2343–2351
96. Oldenhof H, Bigalk J, Hettel C, Oliveira
Barros L, Sydykov B, Bajcsy A ´ C, Sieme H,
Wolkers WF (2017) Stallion sperm cryopreservation using various permeating agents:
interplay between concentration and cooling
rate. Biopres Biobank 15:422–431
97. Fahy GM, MacFarlane DR, Angell CA, Meryman HT (1984) Vitrification as an approach
to
cryopreservation.
Cryobiology
21:407–426
98. Benson JD, Higgins AZ, Desai K, Eroglu A
(2017) A toxicity cost function approach to
optimal CPA equilibration in tissues. Cryobiology 80:144–155
99. Elmoazzen HY, Poovadan A, Law GK, Elliott
JA, McGann LE, Jomha NM (2007)
Dimethyl sulfoxide toxicity kinetics in intact
articular cartilage. Cell Tissue Bank
431:125–133
100. Jin B, Kleinhans FW, Mazur P (2014) Survivals of mouse oocytes approach 100% after
vitrification in 3-fold diluted media and
ultra-rapid warming by an IR laser pulse.
Cryobiology 68:419–430
101. Manuchehrabadi N, Gao Z, Zhang J, Ring
HL, Shao Q, Liu F, McDermott M, Fok A,
Rabin Y, Brockbank KG, Garwood M,
Haynes CL, Bischof JC (2017) Improved tissue cryopreservation using inductive heating
of magnetic nanoparticles. Sci Transl Med 9:
eaah4586
102. Luo D, Yu C, He L, Lu C, Gao D (2006)
Development of a single mode electromagnetic resonant cavity for rewarming of cryopreserved
biomaterials.
Cryobiology
53:288–293
103. Adams GD, Cook I, Ward KR (2015) The
principles of freeze-drying. In: Wolkers WF,
Oldenhof H (eds) Methods in cryopreservation and freeze-drying, methods in molecular
biology. Springer, New York, pp 121–143
24
Willem F. Wolkers and Harrie ¨ tte Oldenhof
