Cryoprotectants, cryoprotective and cryopreservation compositions, their uses and cryopreservation methods
By using antifreeze agents such as dextrin, dextran and isomaltooligosaccharides, the problems of cell damage and antifreeze toxicity during cryopreservation are solved, and low toxicity and high protection effect are achieved.
Patent Information
- Application Number
- JP2021143853
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2013-08-19
- Filing Date
- 2021-09-03
- Publication Date
- 2025-05-12
- Estimated Expiration
- 2033-11-29
AI Technical Summary
In the prior art, the freezing and thawing stresses of cells during cryopreservation lead to cell damage and loss of function, and commonly used antifreeze agents such as DMSO are toxic, limiting their use concentration and treatment time.
Low molecular weight dextrin, dextran, isomaltooligosaccharides and their derivatives are used as antifreeze agents. By adjusting their molecular weight average value (Mw) between 300-9,500 Da, the toxicity of the antifreeze agent is reduced and its protective effect is improved.
It achieves effective protection of cells and tissues under low toxic conditions, reduces cell damage during freezing and thawing, and improves cell survival and functional retention.
Smart Images

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Abstract
Description
[Technical field]
[0001] The present invention relates to cryoprotectants, cryoprotectant and cryopreservation compositions, their uses and cryopreservation methods, including cryoprotectants. [Background technology]
[0002] Cryopreservation of viable biological samples, such as cells, tissues, or organs taken from a donor source, is of great importance and utility in the scientific and medical communities. Cryopreservation is generally a process of preserving samples, such as cells and tissues, by cooling below freezing, typically 77 K (=-196°C, the boiling point of liquid nitrogen). At these low temperatures, biological activity, such as biochemical reactions that cause cell death, is effectively stopped. Cryopreservation techniques are used for long-term preservation of water-bearing or hydrated materials, such as plant and animal cells and tissues. When these materials are frozen, the ice crystal formation is known to result in uneven concentrations of solutes and contaminants that are displaced by water molecules, referred to as "freeze concentration." To preserve cells or tissues, typically a cryoprotectant solution is used to prevent damage during the cooling or thawing process. For cryopreservation to be useful, the preserved sample should retain its integrity and viability at a reasonable level at the time of collection. Thus, the process of preserving the sample should preferably not severely damage or destroy, in its nature, for example, the cell or tissue structure.
[0003] In conventional cryopreservation techniques, samples are collected, placed in a preservation solution, and then frozen and preserved. When the sample is to be used, it is thawed, for example, cells collected from a human donor source are returned to normal human body temperature (i.e., about 37°C), and then placed in cell culture medium. Cryopreservation protocols impose a great deal of stress and injury on cells during cell collection, freezing, and thawing. These stresses and injuries can cause irreversible damage to cells.
[0004] Dextran has been used as a cryoprotectant for human, animal and plant cells (Odavic, R. et al., Experientia 36, 1122 (1980); Ashwood-Smith, MJ et al., Cryobiology 9, 441 (1972); and Echlin, P. et al., J. Microsc. (Oxford) 110, 239 (1977)). A mixture of 5% methyl sulfoxide and 9% dextran 70 was found to provide optimal cryoprotection for human bone marrow monopotent stem cells (Dextran, Handbook from Amersham BioSciences, 18-1166-12, Edition AA, page 35). Dextran, glycerol and dimethyl sulfoxide (DMSO), alone and in combination, have been studied for cryoprotection of human bone marrow cells (Odavic, R. et al., Experientia 36, 1122 (1980)). Significantly better protection against cryoinjury was obtained by 9% dextran 70 in combination with 3 or 5% DMSO, and 5 or 10% DMSO alone, than by 1% DMSO and 5% glycerol or 9% dextran. Dextran 40, in combination with 50% DMSO in 5% (w / v) dextran 40, is known for cryopreservation of placenta / cord blood (Proc. Nati. Acad. Sci. USA, Vol. 92, pp.10119-10122, October 1995, Medical Sciences).
[0005] Shu Guowei et al., Advanced Materials Research, Trans Tech Publications Ltd., Vol. 328 (2012), pp 454-457, describe the effect of fructooligosaccharides, isomaltooligosaccharides, inulin and xylooligosaccharides on the survival of bifidobacteria during freeze-drying. Kwan Hwa Park et al., Database CA, XP 002698458, describe cryoprotectants containing fructooligosaccharides, isomaltooligosaccharides or galactooligosaccharides for surimi. J. Korean Soc. Food Sci. Nutr., Vol. 30(3) (2001), pp 565-568, describes the effect of fructooligosaccharides, isomaltooligosaccharides and galactooligosaccharides cryoprotectants on beef protein.
[0006] Conventional cryoprotectants are glycols (alcohols containing at least two hydroxyl groups), such as ethylene glycol, propylene glycol, and glycerol. Ethylene glycol is commonly used as an antifreeze in automobiles, and propylene glycol is used to reduce ice formation in ice cream. Dimethyl sulfoxide (DMSO) is also considered a conventional cryoprotectant. Glycerol and DMSO have been used for decades by cryobiologists to reduce ice formation in sperm and embryos stored in liquid nitrogen (-196°C). Of these known cryoprotectants, DMSO is considered the most effective and is frequently employed, but is physiologically toxic and is known to cause hypertension, nausea, and vomiting when infused into recipients with cells or when handled by personnel unless precautions are taken. Cox et al. (Cell Tissue Bank (2012) 13:203-215) in a retrospective review of published literature identified hundreds of side effects (e.g., nausea, chills, cardiac arrhythmias, neurological symptoms, and respiratory arrest) associated with transplantation of stem cells cryopreserved with dimethyl sulfoxide. Furthermore, the toxicity of DMSO tends to reduce cell viability and / or function, such as genomic alterations, after the thawed cells are cultured or infused into the recipient's body. Thus, the toxicity of DMSO influences how long cells can be exposed to DMSO during handling.
[0007] Thus, there remains a need for a cryoprotectant that has both the necessary protective effect and low toxicity, either as an alternative to other cryoprotectants such as DMSO, or as a supplement to other cryoprotectants to protect samples, such as biological samples, during freezing, or to reduce the concentration required therefor, preferably to a non-toxic concentration. Summary of the Invention [Problem to be solved by the invention]
[0008] Object of the invention It is an object of an embodiment of the present invention to provide a cryoprotectant that has the necessary protective effect in terms of protecting the equivalent functionality of cryopreserved samples during cryopreservation, either as an alternative to other cryoprotectants such as DMSO, or as a supplement to other cryoprotectants to reduce the required concentration thereof, preferably to a non-toxic concentration. It is a further object of an embodiment of the present invention to provide a cryoprotectant that has low toxicity to the personnel handling the cryoprotectant and to the biological sample, thereby increasing the time that the sample can be in contact with the cryoprotectant without being damaged, reducing the need for washing the sample, and preferably allowing the sample to be returned to the site of collection or to the recipient, if necessary, without the need to separate the sample from the cryoprotectant. It is a further object of an embodiment of the present invention to provide a cryoprotectant that is effective as a cryoprotectant for samples selected from organs, cells and tissues, such as mammalian organs, mammalian cells and mammalian tissues. It is a further object of an embodiment of the present invention to provide a cryoprotectant that is effective as a cryoprotectant for samples to be transplanted, such as organs, cells or tissues. It is a further object of an embodiment of the present invention to provide a cryoprotectant that is effective as a cryoprotectant for, for example, cells, and provides acceptable viability of the cells. It is a further object of embodiments of the present invention to provide a cryoprotectant that is effective, for example, as a cryoprotectant for an organ, and results in acceptable physical functionality of said organ. It is a further object of embodiments of the present invention to provide a cryoprotectant that is effective, for example, as a cryoprotectant for tissue and results in acceptable physical functionality of said tissue. [Means for solving the problem]
[0009] Summary of the Invention a) the cryoprotectant comprises at least 1% w / w of one or more isomalto-oligosaccharides and derivatives thereof having a weight average molecular weight (Mw) of 300 to 1,650 Da, based on the total weight of dextrin, dextran, isomalto-oligosaccharides and derivatives thereof in the cryoprotectant; or b) the cryoprotectant has a weight average molecular weight (Mw) of 300 to 9,500 Da, such as 300 to 7,500 Da; or c) the cryoprotectant comprises at least 1% w / w of one or more isomalto-oligosaccharides and derivatives thereof having a weight average molecular weight (Mw) of 300 to 1,650 Da, based on the total weight of dextrin, dextran, isomalto-oligosaccharides and derivatives thereof in the cryoprotectant, based on the total weight of dextrin, dextran, isomalto-oligosaccharides and derivatives thereof in the cryoprotectant, based on the total weight of 300 to 9,500 Da. It has been found by the present invention that a cryoprotectant containing one or more cryoprotectants selected from dextrin, dextran, isomaltooligosaccharides and their derivatives, having a weight-average molecular weight (Mw) of 100 Da, is very useful as a cryoprotectant. Compared to the previously used high molecular weight dextran materials such as dextran 40 (40,000 Da) and dextran 70 (70,000 Da), the cryoprotectant containing the above-mentioned cryoprotectant has a lower viscosity due to its low molecular weight, and therefore can be pre-prepared at a high concentration, which allows the sample to be pre-added to the solution to obtain a composition containing both the cryoprotectant and the sample at a concentration suitable for cryopreservation. Furthermore, molecules with low molecular weight are generally less immunogenic than molecules with high molecular weight. Dextran 1 is known as a hapten inhibitor that reduces the risk of anaphylactic reactions when administering dextran, and is therefore used as a pre-injection before the injection of high molecular weight dextrans such as dextran 40 (40,000 Da) and dextran 70 (70,000 Da). Dextran 1 also has very low immunological potential in humans as demonstrated by studies by Richter et al. (Int. Arch. Allergy 43:252-268 (1972) and Int. Arch. Allergy 41:826-844 (1971)).Furthermore, the Examples demonstrate that cryopreservation using the cryoprotectants described herein provides better protection of post-cryopreservation functionality, as measured by test cell viability, than does use of higher molecular weight dextrans.
[0010] Therefore, in a first aspect, the present invention provides a cryoprotectant comprising one or more cryoprotectants selected from dextrin, dextran, isomaltooligosaccharides and derivatives thereof, a) the cryoprotectant comprises at least 1% w / w of one or more isomalto-oligosaccharides and derivatives thereof having a weight average molecular weight (Mw) of 300 to 1,650 Da, based on the total weight of dextrin, dextran, isomalto-oligosaccharides and derivatives thereof; or b) the cryoprotectant has a weight average molecular weight (Mw) of 300 to 9,500 Da, such as 300 to 7,500 Da; or c) the cryoprotectant comprises at least 1% w / w of one or more isomaltooligosaccharides and derivatives thereof having a weight average molecular weight (Mw) of 300 to 1,650 Da, based on the total weight of dextrin, dextran, isomaltooligosaccharides and derivatives thereof in the cryoprotectant, and the cryoprotectant has a weight average molecular weight (Mw) of 300 to 9,500 Da; Regarding antifreeze agents.
[0011] In a further aspect, the present invention relates to a cryoprotectant comprising a cryoprotectant selected from isomaltooligosaccharides and derivatives thereof having a weight average molecular weight (Mw) of 300 to 1,650 Da, such as 850 to 1,650 Da.
[0012] In a further aspect, the present invention relates to the use of a cryoprotectant as described herein for cryopreserving a sample selected from an organ, a cell and a tissue.
[0013] In a further aspect, the present invention relates to a cryopreservation composition comprising a cryoprotectant as described herein, comprising a sample to be cryopreserved selected from organs, cells and tissues.
[0014] In a further aspect, the present invention relates to a cryopreserved composition comprising a cryoprotectant as described herein, further comprising a cryopreserved sample selected from an organ, a cell, and a tissue.
[0015] In a further aspect, the present invention relates to a method for cryopreserving a sample, comprising the steps of contacting a sample to be cryopreserved, selected from organs, cells and tissues, with a cryoprotectant as described herein to obtain a cryopreservation composition, and then reducing the temperature of the cryopreservation composition to the cryopreservation temperature.
[0016] In a further aspect, the present invention relates to a method of cryopreserving a cryopreserved composition described herein by subjecting the composition to cryopreservation temperatures.
[0017] In a further aspect, the present invention relates to the use of a cryoprotectant as described herein for cryopreserving samples selected from organs, cells and tissues.
[0018] In a further aspect, the present invention relates to the use of the cryoprotectants described herein for cryopreserving samples for transplantation.
[0019] In a further aspect, the present invention relates to the use of a cryopreservation composition as described herein for cryopreserving a sample selected from an organ, a cell and a tissue by lowering the temperature of said cryopreservation composition to a cryopreservation temperature. [Brief description of the drawings]
[0020] [Figure 1] NHDF survival after thawing in 1) 10% DMSO, 2) 8% isomalto-oligosaccharide 1 (ISOM) and 2% DMSO, 3) 8% isomalto-oligosaccharide 1 (ISOM) and 4) DMEM, respectively, as described in Example 2, and viability after one passage are shown. [Diagram 2]NHDF survival after thawing in 1) 10% DMSO, 2) 8% hydrogenated isomalto-oligosaccharide 1 (H-ISOM) and 2% DMSO, 3) 8% hydrogenated isomalto-oligosaccharide 1 (H-ISOM) and 4) DMEM, respectively, as described in Example 2, and viability after one passage are shown. [Diagram 3] NHDF survival after thawing in 1) 10% DMSO, 2) 8% isomalto-oligosaccharide 1 (ISOM) and 2% DMSO, 3) 8% isomalto-oligosaccharide 1 (ISOM) and 4) DMEM, respectively, as described in Example 3, and viability after one passage are shown. [Figure 4] 3 shows the survival of NHDF after thawing in 1) 10% DMSO, 2) 8% hydrogenated isomalto-oligosaccharide 1 (H-ISOM) and 2% DMSO, 3) 8% hydrogenated isomalto-oligosaccharide 1 (H-ISOM) and 4) DMEM, respectively, as described in Example 3. [Diagram 5] NHDF survival after thawing in 1) 10% DMSO, 2) 8% isomaltooligosaccharide 1 (ISOM) and 2% DMSO, 3) 8% hydrogenated isomaltooligosaccharide 1 (H-ISOM) and 2% DMSO, 4) 8% isomaltooligosaccharide 1 (ISOM), 5) 8% hydrogenated isomaltooligosaccharide 1 (H-ISOM), and 6) DMEM, respectively, as described in Example 4, and viability after one passage are shown. [Figure 6]Growth medium + 10% DMSO, growth medium + 5% DMSO, growth medium + 10% DMSO + 2% isomaltooligosaccharide 1 (ISOM), growth medium + 10% DMSO + 4% isomaltooligosaccharide 1 (ISOM), growth medium + 10% DMSO + 8% isomaltooligosaccharide 1 (ISOM), growth medium + 5% DMSO + 2% isomaltooligosaccharide 1 (ISOM), growth medium + 5% DMSO + 4% isomaltooligosaccharide 1 (ISOM), growth medium + 5% DMSO + 8% isomaltooligosaccharide 1 (ISOM), growth medium + 2% isomaltooligosaccharide 1 (ISOM), growth medium + 4% isomaltooligosaccharide 1 (ISOM), growth medium + 8% 1 shows survival of human iPS cells in PluriPro growth medium after thawing and cryopreservation in isomaltooligosaccharide 1 (ISOM) and growth medium without cryoprotectant. [Figure 7] As described in Example 8, growth medium + 10% DMSO, growth medium + 5% DMSO, growth medium + 10% DMSO + 2% hydrogenated isomalto-oligosaccharide 1 (H-ISOM), growth medium + 10% DMSO + 4% hydrogenated isomalto-oligosaccharide 1 (H-ISOM), growth medium + 10% DMSO + 8% hydrogenated isomalto-oligosaccharide 1 (H-ISOM), growth medium + 5% DMSO + 2% hydrogenated isomalto-oligosaccharide 1 (H-ISOM), growth medium + 5% DMSO + 4% hydrogenated isomalto-oligosaccharide 1 (H-ISOM), growth medium + 5% DMSO + 8% hydrogenated isomalto-oligosaccharide 1 (H-ISOM), growth medium + 2% hydrogenated isomalto-oligosaccharide 1 (H-ISOM), growth medium + 4% hydrogenated isomalto-oligosaccharide 1 (H-ISOM), growth medium + 8% 1 shows survival of human iPS cells in hydrogenated isomalto-oligosaccharide 1 (H-ISOM) and PluriPro growth medium after thawing and cryopreservation in growth medium without cryoprotectant. [Figure 8]2) "CRYO" means 8% isomalto-oligosaccharide 1 (dextran Mw 10.000 or dextran Mw 40.000, respectively), each combined with 5% DMSO; 3) "CRYO" means 8% isomalto-oligosaccharide 1 (dextran Mw 10.000 or dextran Mw 40.000, respectively), each combined with 1% DMSO; 4) "CRYO" means 8% isomalto-oligosaccharide 1 (dextran Mw 10.000 or dextran Mw 40.000, respectively); and 5) DMEM; as described in Example 9, respectively, show survival of MSCs after thawing and after 3 days of expansion. [Figure 9] 1 shows survival of MSCs after thawing in 1) 10% DMSO, 2) 2% DMSO, 3) 8% isomalto-oligosaccharide Mw 1500 (ISOM) and 2% DMSO, 4) 8% isomalto-oligosaccharide Mw 1500 (ISOM), and 5) DMEM, respectively, as described in Example 10. [Figure 10] 1 shows the viability of CD34+ hematopoietic stem cells after cryopreservation with DMSO, isomalto-oligosaccharide 1, or hydrogenated isomalto-oligosaccharide 1, as described in Example 11. [Figure 11] 1 shows the viability of adipose-derived stromal / stem cells (ASCs) after cryopreservation with DMSO, isomalto-oligosaccharide 1, or hydrogenated isomalto-oligosaccharide 1, as described in Example 12. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0021] Detailed Disclosure of the Invention definition As used herein, cryopreservation refers to a process in which samples are preserved by cooling to subzero temperatures, such as vitrification techniques, where the cooling rate is faster than traditional cryopreservation procedures. At such low temperatures, biological activity, e.g., biochemical reactions that cause cell death, is reduced, and the chemical structure / function of, e.g., proteins / glycoproteins or lipoproteins, is preserved. If a cryoprotectant solution is not used, the preserved sample may be damaged by freezing during the cooling or thawing process.
[0022] In one preferred embodiment, cryopreservation generally refers to the process of preserving samples, such as cells and tissues, by cooling below freezing, typically to 77 K (=-196°C, the boiling point of liquid nitrogen). At these low temperatures, biological activity, such as biochemical reactions that cause cell death, is effectively stopped.
[0023] The term "frozen storage temperature" as used herein refers to a temperature between below freezing and -196°C, such as -50°C to -196°C, -80°C to -196°C, less than -55°C, less than -60°C, less than -65°C, less than -70°C, less than -75°C, less than -80°C, less than -85°C, less than -90°C, less than -95°C, less than -100°C, less than -105°C, less than -110°C, less than -115°C, less than -120°C, less than -125°C, less than -130°C, less than -135°C, less than -140°C, less than -145°C, less than -150°C, less than -155°C, less than -160°C, less than -165°C, less than -170°C, less than -175°C, less than -180°C, less than -185°C, and less than -190°C.
[0024] The term "sample" as used herein refers to any type of material to be cryopreserved, such as organs, cells or tissues. In one embodiment, the sample is selected from organs, cells, tissues and blood. In one embodiment, the sample is selected from organs, cells and tissues, such as mammalian organs, mammalian cells and mammalian tissues. In one embodiment, the term "sample" does not include the human body in various stages of its formation and development. In a further embodiment, the present invention relates to the use of the cryoprotectant described herein for cryopreserving samples for transplantation. In one embodiment, the sample is selected from mammalian organs, mammalian cells and mammalian tissues for transplantation.
[0025] As used herein, the term "cell" includes any type of cell, such as somatic cells, such as all types of cells in a tissue or organ; stem cells of all types, such as totipotent stem cells, pluripotent stem cells, multipotent stem cells and progenitor cells; oocytes; sperm; and germ cells. Cells may be in isolated or non-isolated form, such as in the form of cell-containing body fluids, tissues or organs.
[0026] As used herein, the term "cell-containing body fluid" includes any cell-containing body fluid, such as, for example, blood, amniotic fluid, semen, cerebrospinal fluid, bone marrow aspirate, and menstrual fluid, as defined below.
[0027] As used herein, the term "blood" includes fluid-containing blood such as umbilical cord blood, peripheral blood and mobilized blood.
[0028] As used herein, the term "tissue" includes any tissue type including any kind of cell type and combinations thereof, such as ovarian tissue, testicular tissue, umbilical cord tissue, placental tissue, connective tissue, cardiac tissue, tissue from muscle, cartilage and bone, endocrine tissue and neural tissue. The term "tissue" also includes adipose tissue or dental pulp tissue.
[0029] The term "organ" as used herein includes, for example, the lung, liver, kidney, heart, ovary and pancreas. The term "organ" also includes the umbilical cord.
[0030] The term "functional after cryopreservation" as used herein in relation to a sample means that a sample such as an organ, tissue or cell after cryopreservation retains "acceptable" and / or "desirable" function after cryopreservation. In one embodiment, the sample after cryopreservation retains all of its functions. In another embodiment, the sample such as a cell retains at least 50% of the desired function, such as at least 60% of the desired function, at least 70% of the desired function, at least 80% of the desired function, at least 90% of the desired function, at least 95% of the desired function, 100% of the desired function, etc. As an example for cells, the important function to be preserved is the viability of the cell. As another example for organs, the important function to be preserved is the physiological function of the organ, such as the pump function for the heart. As another example for tissues, the important function to be preserved is the ability to integrate with the surrounding tissue (such as the skin) in case of transplantation.
[0031] The viability of cells after cryopreservation can be measured by using the Nucleocounter system, in which dead cells are measured by incubating the cell sample with the DNA-binding dye propidium iodide, which results in a detectable measurement only from dead cells, as shown in the examples. Viability is expressed as the percentage of live cells in the analyzed population. The proliferation rate of cell samples after cryopreservation can be analyzed using MTT, a colorimetric assay.
[0032] As used herein, the term "banking" refers to any storage of samples for future use.
[0033] As used herein, the term "clinical banking" refers to any storage of samples associated with the clinical treatment of a mammal, such as a human.
[0034] As used herein, the term "marrow banking" refers to the storage of marrow samples, such as bone marrow aspirates and associated fluids or cells isolated from the marrow.
[0035] As used herein, the term "dental pulp tissue banking" refers to the storage of dental pulp tissue samples, such as cells isolated from dental pulp tissue.
[0036] As used herein, the term "adipose tissue banking" refers to the storage of adipose tissue samples, such as cells isolated from adipose tissue. As used herein, the term "umbilical cord banking" refers to the storage of umbilical cord blood, tissue associated with the umbilical cord, or cells isolated from umbilical cord blood or tissue.
[0037] As used herein, the term "motility peripheral blood banking" refers to the banking of peripheral blood after it has been made motility, for example with an agent that releases blood stem cells into the blood circulation.
[0038] As used herein, the term "reproductive banking" refers to the storage of any reproductively related samples, such as semen, oocytes, sperm, fertilized eggs, etc.
[0039] The atomic mass unit, Dalton (symbol: Da), is the standard unit used to indicate mass (atomic weight) on the atomic or molecular scale. It is defined as one-twelfth the mass of an unbonded neutral atom of carbon-12 in its nuclear and electronic ground state.
[0040] As used herein, the term "weight average molecular weight" (Mw) has the following formula: TIFF0007674963000001.tif2731 [where gi is the fraction of molecules with molecular weight Mi. The possible values of M create a set of numbers with distinct values labeled Mi that define p.] is defined as:
[0041] As used herein, the term "number average molecular weight" has the following formula: TIFF0007674963000002.tif2762 [where Ni is the fraction of molecules with molecular weight Mi and gi is the fraction of molecules with molecular weight Mi. The possible values of M create a set of numbers with Mi labeled as distinct values that define p] is defined as:
[0042] As used herein, the term "polydispersity (Pd)" is calculated by Mw / Mn=Pd.
[0043] The term "dextran" as used herein, represented by numbers such as "dextran 1", "dextran 40" and "dextran 70", is represented by the pharmacopoeia abbreviation Dextran X, which means that the weight-average molecular weight of dextran is approximately X kDA. Thus, Dextran 1 means dextran having a weight-average molecular weight of 850-1,150 Da. Isomalto-oligosaccharide 1 and hydrogenated isomalto-oligosaccharide 1 are named similarly. Thus, Isomalto-oligosaccharide 1 means isomalto-oligosaccharide having a weight-average molecular weight of 850-1,150 Da according to the EP and USP monographs on Dextran 1. Isomalto-oligosaccharide 1 is also referred to herein as pentaisomaltose. Hydrogenated isomalto-oligosaccharide 1 means a mixture of hydrogenated isomalto-oligosaccharides, where hydrogenated isomalto-oligosaccharides are according to the EP and USP monographs on Dextran 1. Hydrogenated isomaltooligosaccharide 1 is also referred to as pentaisomaltoside in this application.
[0044] As used herein, the term "dextran-based isomaltooligosaccharides" refers to isomaltooligosaccharides having a weight average molecular weight (Mw) of 300 to 1,650 Da, such as 850 to 1,650 Da, that are obtained from hydrolyzed dextran, such as by hydrolysis of low molecular weight dextran.
[0045] The term "cryoprotectant" as used herein refers to a substance that is used, for example in an appropriate solution, to protect a sample from freezing damage. Examples of cryoprotectants are, for example, DMSO, polyols, etc.
[0046] As used herein, the term "sterile" means free of bacteria, microorganisms and other organisms capable of growth.
[0047] As used herein, the term "substantially free of DMSO" means DMSO in an amount less than 0.01 w / w %.
[0048] As used herein, "C1- 10 "Alkyl" refers to straight or branched C1-, such as straight or branched C1-6 alkyl. 10 Alkyl. Examples are methyl, ethyl, 1-propyl, 2-propyl, isopropyl, 1-butyl, 2-methyl-1-propyl, 2-butyl, 1-pentyl, 3-pentyl, 2-methyl-2-butyl and 3-methyl-2-butyl.
[0049] As used herein, "carboxy C1- 10 "Alkyl" is -C1- 10 It means alkylCOOH. An example is carboxymethyl (CM) (-CH2COOH).
[0050] As used herein, the term "DEAE" means diethylaminoethyl.
[0051] Antifreeze The present specification relates to a cryoprotectant comprising one or more cryoprotectants selected from dextrin, dextran, isomaltooligosaccharides and derivatives thereof, a) the cryoprotectant comprises at least 1% w / w of one or more isomalto-oligosaccharides and derivatives thereof having a weight average molecular weight (Mw) of 300 to 1,650 Da, such as a weight average molecular weight (Mw) of 850 to 1,650 Da, based on the total weight of dextrin, dextran, isomalto-oligosaccharides and derivatives thereof in the cryoprotectant; or b) the cryoprotectant has a weight average molecular weight (Mw) of 300 to 9,500 Da, such as 300 to 7,500 Da; or c) the cryoprotectant comprises at least 1% w / w of one or more isomaltooligosaccharides and derivatives thereof having a weight average molecular weight (Mw) of 300-1,650 Da, such as a weight average molecular weight (Mw) of 850-1,650 Da, based on the total weight of dextrin, dextran, isomaltooligosaccharides and derivatives thereof in the cryoprotectant, the cryoprotectant having a weight average molecular weight (Mw) of 300-9,500 Da; Regarding antifreeze agents.
[0052] In one embodiment, the cryoprotectant is selected from dextran, isomaltooligosaccharides and derivatives thereof.
[0053] The molecular weight of dextrans and dextrins, and / or their derivatives, is typically determined by gel permeation chromatography (GPC), for example using a GPC column of polyether hydroxylated gel. Calibration can be performed as described in the European Pharmacopoeia for Dextrans, 7th Edition, using the iterative mathematical method described in the European Pharmacopoeia for Dextrans, 7th Edition, Vol. 2, pp. 1816-1817.
[0054] The molecular weight of isomalto-oligosaccharides and / or their derivatives, such as hydrogenated isomalto-oligosaccharides, is typically determined by gel permeation chromatography (GPC). The stationary phase in the column system may be dextran covalently bound to highly cross-linked porous agarose beads, allowing the resolution of oligosaccharides in the molecular weight range of 180-3000 Da. The measurements are performed according to the European Pharmacopoeia, 7th edition, Vol. 1, pp. 60-61.
[0055] When the cryoprotectant is electrically neutral, the weight average molecular weight (Mw) of the cryoprotectant is preferably measured by GPC. When measuring the weight average molecular weight (Mw) of a charged cryoprotectant, the weight average molecular weight (Mw) is calculated based on the molecular weight of the electrically neutral starting material and the degree of substitution of the charged cryoprotectant. Each glucose unit of the uncharged starting material can be substituted with 1 to 3 substituents. Using DEAE as an example of a substituent, a person skilled in the art can calculate the molecular weight of the final product, for example, by measuring the nitrogen content, for example, using Kjeldahl analysis. If the substituent contains an acid group, the degree of substitution can be determined by a person skilled in the art, for example, by titration, and then the final molecular weight can be calculated.
[0056] Dextrins, dextran and isomaltooligosaccharides all contain repeating D-glucose units. As further described below, dextran is a family of neutral branched polysaccharides consisting mainly of α-(1→6) linked D-glucose. Dextrin is a mixture of polymers of D-glucose units linked by α-(1→4) or α-(1→6). Isomaltooligosaccharide is a mixture of glucose oligomers (typically less than 10 D-glucose units, suitably 3-6 glucose units) with α-D-(1,6)-linkages, typically with an average weight molecular weight of 300-1,650 Da, such as 500-1,650 Da, 850-1,650 Da or 850 Da-1150 Da. In one embodiment, the weight fraction of isomaltooligosaccharides with less than 3 glucose units is less than 15% w / w. In one embodiment, the weight fraction of isomalto-oligosaccharides with more than 9 glucose units is less than 20% w / w, such as less than 15% w / w, less than 10% w / w. In a further embodiment, the weight fraction of isomalto-oligosaccharides with less than 3 glucose units is less than 15% w / w and the weight fraction of isomalto-oligosaccharides with more than 9 glucose units is less than 20% w / w, such as less than 15% w / w, less than 10% w / w. The weight fractions may be determined, for example, as described in Preparations 1 and 2 herein.
[0057] In one embodiment, the derivatives of dextrin, dextran and isomalto-oligosaccharide are selected from hydrogenated isomalto-oligosaccharide, hydrogenated dextran, hydrogenated dextrin, oxidized isomalto-oligosaccharide, oxidized dextran, oxidized dextrin, esters of dextrin, esters of dextran, esters of isomalto-oligosaccharide, ethers of dextrin, ethers of dextran, ethers of isomalto-oligosaccharide, and partially hydrogenated / oxidized dextrin, partially hydrogenated / oxidized dextran and partially hydrogenated / oxidized isomalto-oligosaccharide, and derivatives thereof. In one embodiment, the derivatives of isomalto-oligosaccharide are selected from hydrogenated isomalto-oligosaccharide, oxidized isomalto-oligosaccharide, esters of esters of isomalto-oligosaccharide, ethers of isomalto-oligosaccharide and partially hydrogenated / oxidized isomalto-oligosaccharide, and derivatives thereof.
[0058] Below is a summary of examples of different syntheses and starting materials for the above-mentioned derivatives of dextrin, dextran and isomaltooligosaccharides (Table A): Table A: TIFF0007674963000003.tif67166 *In one embodiment the synthesis may be a partial oxidation and hydrogenation to give a partially oxidized and hydrogenated derivative, for example as described in US 6,977,249.
[0059] In one embodiment, the types of dextrin ethers, dextran ethers and isomaltooligosaccharide ethers are selected from ethers having a functional group R, where R is a C1- alkyl, such as C1-6 alkyl, such as methyl (-CH3) and ethyl (-C2H5). 10 Alkyl, carboxymethyl (-CH2COOH) and other carboxy C1- 10Alkyl, 2-hydroxyethyl (-2H4OH), 2-hydroxypropyl (-CH2CHOHCH3), 2-hydroxyalkyl (-CH2CHOH(CH2)nCH3 (where n is 1-10), 3-chloro-2-hydroxypropyl (-CH2CHOHCH2Cl), 2-diethylaminoethyl (-C2H4N(C2H5)2), 3-amino-2-hydroxypropyl (-CH2CHOHCH2NH2), 3-dimethylalkylammonium-2-hydroxypropyl (-CH2CHOHCH2N+(CH3)2R (where R is C1- 10 hydroxy C1-, such as alkyl 10 Alkyl, cetyl polyethylene glycol (-CH2CH2O) 10 C 16 H 33 ) and stearyl polyethylene glycol (-CH2CH2O) 10 C 18 H 37 ) are selected.
[0060] In one embodiment, the ether of dextrin, the ether of dextran and the ether of isomalto-oligosaccharide are, respectively, DEAE-dextrin, DEAE-dextran and DEAE-isomalto-oligosaccharide. In one embodiment, the ether of isomalto-oligosaccharide is, respectively, DEAE-isomalto-oligosaccharide. In one embodiment, the ether of dextrin, the ether of dextran and the ether of isomalto-oligosaccharide are, respectively, carboxy C1- 10 Alkyl-dextrin, carboxy C1- 10 Alkyl-dextran, carboxy C1- 10 In one embodiment, the ether of the isomalto-oligosaccharide is a carboxy C1- 10 It is an alkyl-isomaltooligosaccharide.
[0061] In one embodiment, the derivatives of dextrin, dextran and isomalto-oligosaccharides are selected from hydrogenated isomalto-oligosaccharides, hydrogenated dextran and hydrogenated dextrin. In one embodiment, the derivatives of isomalto-oligosaccharides are hydrogenated isomalto-oligosaccharides.
[0062] In another embodiment, the derivatives of dextrin, dextran and isomalto-oligosaccharides are selected from oxidized isomalto-oligosaccharides, oxidized dextran and oxidized dextrin. In one embodiment, the derivatives of isomalto-oligosaccharides are oxidized isomalto-oligosaccharides. In another embodiment, the derivatives of dextrin, dextran and isomalto-oligosaccharides are selected from oxidized / hydrogenated isomalto-oligosaccharides, oxidized / hydrogenated dextran and oxidized / hydrogenated dextrin. In one embodiment, the derivatives of isomalto-oligosaccharides are oxidized / hydrogenated isomalto-oligosaccharides.
[0063] In another embodiment, the derivatives of dextrin, dextran and isomalto-oligosaccharides are DEAE-dextrin, DEAE-dextran, DEAE-isomalto-oligosaccharide, carboxy C1- 10 Alkyl-dextrin, carboxy C1- 10 Alkyl-dextran, carboxy C1- 10 In another embodiment, the derivative of isomalto-oligosaccharide is selected from alkyl-isomalto-oligosaccharide, ester of dextrin, ester of dextran and ester of isomalto-oligosaccharide. In another embodiment, the derivative of isomalto-oligosaccharide is selected from DEAE-isomalto-oligosaccharide, carboxy C1- 10 It is selected from alkyl-isomalto-oligosaccharides and esters of isomalto-oligosaccharides.
[0064] In another embodiment, the derivatives of dextrin, dextran and isomalto-oligosaccharides include DEAE-hydrogenated dextrin, DEAE-hydrogenated dextran, DEAE-hydrogenated isomalto-oligosaccharide, carboxy C1- 10 Alkyl-hydrogenated dextrin, carboxy C1- 10 Alkyl-hydrogenated dextran, carboxy C1- 10The derivative of hydrogenated dextrin, hydrogenated dextran, hydrogenated isomalto-oligosaccharide, etc., selected from alkyl-hydrogenated isomalto-oligosaccharide, ester of hydrogenated dextrin, ester of hydrogenated dextran, and ester of hydrogenated isomalto-oligosaccharide, etc. In another embodiment, the derivative of isomalto-oligosaccharide is selected from DEAE-hydrogenated isomalto-oligosaccharide, carboxy C1- 10 The derivatives of hydrogenated isomalto-oligosaccharides are selected from alkyl-hydrogenated isomalto-oligosaccharides and esters of hydrogenated isomalto-oligosaccharides. In another embodiment, the derivatives of dextrin, dextran and isomalto-oligosaccharides are selected from DEAE-oxidized dextrin, DEAE-oxidized dextran, DEAE-oxidized isomalto-oligosaccharide, carboxy C1- 10 Alkyl-oxidized dextrin, carboxy C1- 10 Alkyl-oxidized dextran, carboxy C1- 10 The derivative of isomalto-oligosaccharide is selected from oxidized dextrin, oxidized dextran and oxidized isomalto-oligosaccharide, such as alkyl-oxidized isomalto-oligosaccharide, ester of oxidized dextrin, ester of oxidized dextran and ester of oxidized isomalto-oligosaccharide. In another embodiment, the derivative of isomalto-oligosaccharide is selected from DEAE-oxidized isomalto-oligosaccharide, carboxy C1- 10 The oxidized isomalto-oligosaccharide derivative is selected from alkyl-oxidized isomalto-oligosaccharides and esters of oxidized isomalto-oligosaccharides.
[0065] In a further embodiment, the cryoprotectant is hydrogenated isomalto-oligosaccharides, oxidized isomalto-oligosaccharides, DEAE-isomalto-oligosaccharides, carboxy C1- 10 Alkyl oxidized isomalto-oligosaccharides, esters of isomalto-oligosaccharides, ethers of isomalto-oligosaccharides or carboxy C1- 10 It is an alkylisomaltooligosaccharide.
[0066] In a further embodiment, the cryoprotectant is carboxymethyl isomalto-oligosaccharide or carboxyethyl isomalto-oligosaccharide.
[0067] In one embodiment, the cryoprotectant is an isomalto-oligosaccharide, such as isomalto-oligosaccharide 1. In another embodiment, the cryoprotectant is a hydrogenated isomalto-oligosaccharide, such as hydrogenated isomalto-oligosaccharide 1.
[0068] Various degrees of substitution can be achieved by variation of derivatization. Suitably the degree of substitution is in the range of 1-3 substitutions per glucose unit. For example, in the case of DEAE-dextran, approximately one charged group per three glucose units is preferred.
[0069] In one embodiment, the cryoprotectant comprises one or more cryoprotectants which are dextrin, dextran, isomalto-oligosaccharides and derivatives thereof, wherein the cryoprotectant comprises at least 1% w / w of one or more isomalto-oligosaccharides and derivatives thereof having a weight average molecular weight (Mw) of 300-1,650 Da, such as a weight average molecular weight (Mw) of 850-1,650 Da, based on the total weight of dextrin, dextran, isomalto-oligosaccharides and derivatives thereof in the cryoprotectant.
[0070] In further embodiments, the cryoprotectant comprises one or more of dextrin, dextran, isomaltooligosaccharides and derivatives thereof cryoprotectants, wherein the cryoprotectant has a weight average molecular weight (Mw) of 300-9,500 Da, such as 300-7,500 Da, such as 500-7,500 Da. In one embodiment, the cryoprotectant has a weight average molecular weight (Mw) of at most 9000 Da, at most 8000 Da, at most 7000 Da, at most 6000 Da, at most 5000 Da, at most 4000 Da, at most 3000 Da, at most 2000 Da, at most 1900 Da, at most 1800 Da, at most 1700 or at most 1,650 Da.
[0071] In a further embodiment, the cryoprotectant comprises one or more of the cryoprotectants which are dextrin, dextran, isomalto-oligosaccharides and derivatives thereof, wherein the cryoprotectant comprises at least 1% w / w of one or more isomalto-oligosaccharides and derivatives thereof having a weight average molecular weight (Mw) of 300-1,650 Da, such as a weight average molecular weight (Mw) of 850-1,650 Da, based on the total weight of dextrin, dextran, isomalto-oligosaccharides and derivatives thereof in the cryoprotectant, wherein the cryoprotectant has a weight average molecular weight (Mw) of 300-9,500 Da, such as 300-7,500 Da, such as 500-7,500 Da.
[0072] In one embodiment, the electrically charged derivatives are characterized by the molecular weight distribution of the uncharged starting material, such as the derivatives made from dextran, dextrin and isomalto-oligosaccharides described above. Thus, in one embodiment, the dextran, dextrin and / or isomalto-oligosaccharide derivatives have a weight average molecular weight (Mw) of 300-9,500 Da, such as 300-7,500 Da, such as 500-7,500 Da. In a further embodiment, the derivatives are isomalto-oligosaccharide derivatives having a weight average molecular weight (Mw) of 850-1,650 Da.
[0073] In one embodiment, the cryoprotectant selected from dextran, dextrin and derivatives thereof has a weight average molecular weight (Mw) of 300-9,500 Da, such as 300-7,500 Da, such as 500-7,500 Da.
[0074] In one embodiment, the cryoprotectant selected from dextran, dextrin and derivatives thereof has a weight average molecular weight (Mw) of 1,650 to 7,500 Da.
[0075] In one embodiment, the cryoprotectant selected from dextran, dextrin and derivatives thereof has a weight average molecular weight (Mw) of 1,650-7,500 Da and a polydispersity of ≧1 and ≦5.
[0076] In one embodiment, the cryoprotectant selected from dextran, dextrin and derivatives thereof has a weight average molecular weight (Mw) of 1,650 to 3,500 Da.
[0077] In one embodiment, the cryoprotectant selected from dextran, dextrin and derivatives thereof has a weight average molecular weight (Mw) of 1,650-3,500 Da and a polydispersity of ≧1 and ≦5.
[0078] In one embodiment, the cryoprotectant selected from isomaltooligosaccharides and derivatives thereof has a weight average molecular weight (Mw) of 850 to 1,650 Da.
[0079] In one embodiment, the cryoprotectant selected from isomaltooligosaccharides and derivatives thereof has a polydispersity of ≧1 and ≦3.
[0080] In a further embodiment, the cryoprotectant selected from isomaltooligosaccharides and derivatives thereof has a weight average molecular weight (Mw) of 850 to 1,150 Da.
[0081] In a further embodiment, the weight fraction of isomalto-oligosaccharides less than 3 glucose units is less than 15% w / w. In one embodiment, the weight fraction of isomalto-oligosaccharides more than 9 glucose units is less than 20% w / w, such as less than 15% w / w, less than 10% w / w. In a further embodiment, the weight fraction of isomalto-oligosaccharides less than 3 glucose units is less than 15% w / w and the weight fraction of isomalto-oligosaccharides more than 9 glucose units is less than 20% w / w, such as less than 15% w / w, less than 10% w / w. The weight fractions may be determined, for example, as described in Preparations 1 and 2 herein.
[0082] In one embodiment, the cryoprotectant comprises at least 10% w / w, such as 20% w / w, of one or more isomalto-oligosaccharides and derivatives thereof having a weight average molecular weight (Mw) of 300-1,650 Da, such as a weight average molecular weight (Mw) of 850-1,650 Da, based on the total weight of dextrins, dextran, isomalto-oligosaccharides and derivatives thereof in the cryoprotectant. In a further embodiment, the cryoprotectant comprises at least 30% w / w, such as 40%, 50%, 60%, 70%, 80%, 90%, 95% or more, of one or more isomalto-oligosaccharides and derivatives thereof having a weight average molecular weight (Mw) of 300-1,650 Da, such as a weight average molecular weight (Mw) of 850-1,650 Da, based on the total weight of dextrins, dextran, isomalto-oligosaccharides and derivatives thereof in the cryoprotectant.
[0083] Dextran and its derivatives Dextran can be formed by several bacterial strains, mainly gram-positive, facultative anaerobic cocci, such as the Leuconostoc and Streptococcus strains described in "Advances in polymer science", Volume 205, Polysaccharides II, edited by D. Klemm, Springer Verlag. Dextran for pharmaceutical use is typically produced by specific bacterial strains defined in the United States and European Pharmacopoeias, such as Leuconostoc Mesenteroides NCTC 10817 or B512 F. The strains NCTC 10817 and B512F have been publicly available since 1971 from the National Collection of Type Cultures (Central Public Health Laboratory) in the UK.
[0084] Dextran is a neutral branched polysaccharide consisting mainly of α-(1→6) linked D-glucose with a backbone with various percentages of linkages and branches depending on the bacteria used for fermentation. The dextran molecule contains one free terminal aldehyde group, not shown in formula (I). The α-(1→6) linkage in dextran can vary from 50 to 97% of the total glucosidic linkages. The remaining glucosidic linkages represent α-(1→2), α-(1→3) and α-(1→4) linkages linked as branches. Formula (I) shows the portion of the α-(1→6)-linked glucose backbone of dextran with branch points at the 2-, 3- and 4-positions. When using the above mentioned strain B512F, the percentage of α-(1→6) linkages is 95% or more.
[0085] TIFF0007674963000004.tif177127 formula (I)
[0086] Very high molecular weight values are found in natural dextrans.10 7 ~4x10 8 Values in the Dalton range have been reported. Therefore, in order to make dextran usable in many applications, it is necessary to hydrolyze native dextran to lower molecular weight. Although there are several methods known and available to those skilled in the art, hydrolysis is carried out with hydrochloric acid at a temperature of approximately 95° C. and at a pH of approximately 1.5. The hydrolysis produces low molecular weight dextran and glucose. The hydrolysate is typically purified and fractionated by various methods such as precipitation with alcohol, filtration, and various other chromatographic methods such as membrane filtration.
[0087] Dextran for pharmaceutical use is typically produced by specific bacterial strains defined in the United States and European Pharmacopoeias, such as Leuconostoc Mesenteroides NCTC 10817 or B512 F. Strains NCTC 10817 and B512F have been publicly available since 1971 from the National Collection of Type Cultures (Central Public Health Laboratory) in the UK.
[0088] Among the dextrans, dextran 40 and dextran 70 are particularly used for human pharmaceutical applications. Other molecular sizes, such as dextran 500 and dextran 5, as well as molecular weights in between, are used outside the field of cryopreservation, for synthesis, as carriers for cell separation, as excipients in vaccines, or in various other applications, such as the preservation of human corneas. Furthermore, dextran 1 has a special use in humans as a pre-injection of dextran 1, which exhibits hapten inhibition and blocks human dextran antibodies, thereby preventing potential allergic reactions that are known to sometimes occur after the administration of high molecular weight dextrans in humans. Dextran 1, dextran 40 and dextran 70 are described in detail in the European Pharmacopoeia, 7th edition, volume 2, pages 1816-1819.
[0089] Dextran is also an excellent raw material used to synthesize water-soluble polymers.
[0090] The following are examples of dextran derivatives: 1) For example, hydrogenated dextran can be synthesized by reacting dextran with a reducing agent such as borohydride under alkaline conditions, such as pH 8-12, to reduce the aldehyde end groups to sorbitol.
[0091] 2) Dextran ethers, which can be synthesized by methods known to those skilled in the art. One example is prepared from 2-(diethylamino)ethyl dextran (DEAE dextran), which can be synthesized by reacting dextran with (2-chloroethyl)diethylammonium chloride in an alkaline solution (shown in Scheme 1). TIFF0007674963000005.tif91165Reaction scheme 1: DEAE dextran containing 2-(diethylamino)ethyl (A) and 2-[(2-(diethylamino)ethyl]diethylammonium]ethyl (B) groups
[0092] Another example is carboxy C1- such as carboxymethyl dextran (CMD), which can be synthesized by reaction with monochloroacetic acid (MCA) under strongly alkaline conditions, as shown in Scheme 2. 10 It is an alkyl dextran. TIFF0007674963000006.tif54164Reaction scheme 2
[0093] 3) Esters of dextran, such as dextran acetate, which can be synthesized by reaction of dextran with acetic aldehyde. TIFF0007674963000007.tif88161Reaction scheme 3
[0094] 4) Oxidized dextran can be synthesized, for example, using sodium hypochlorite in a basic aqueous solution.
[0095] 5) Partially oxidized / hydrogenated dextran. A method for producing this type of derivative is disclosed, for example, in US 6,977,249, the disclosure of which is incorporated herein by reference. An example can be produced from dextran produced by a process in which the molecular weight of the dextran is reduced by hydrolysis and its functional aldehyde end groups are converted to alcohols by hydrogenation; the hydrogenation is only partial, with at most 15% by weight remaining reducing sugars, calculated on the total amount of carbohydrates, which is then subjected to oxidation, the hydrogenation and oxidation being carried out to obtain dextran having substantially all alcohol groups and aldehyde groups converted to carboxylic acid groups, the dextran product not containing functional aldehyde groups or functional carboxylic acid groups in the intermediate glycosyl groups; where the hydrogenation is carried out with borohydride in an aqueous solution; and Here, the oxidation is carried out with sodium hypochlorite in a basic aqueous solution.
[0096] 6) Further, DEAE-substituted carboxy C1- of the above hydrogenated and / or oxidized dextrans. 10 Alkyl-substituted esters and ethers, similar to those described above, can be prepared by methods known to those skilled in the art.
[0097] Isomaltooligosaccharides and their derivatives Isomalto-oligosaccharides are glucose oligomers with an α-D-(1,6)-linked backbone. In one embodiment, the isomalto-oligosaccharides described herein are dextran-based and are made by hydrolysis of low molecular weight dextran. In a further embodiment, the isomalto-oligosaccharides described herein have a weight average molecular weight (Mw) of 300-1,650 Da, such as a weight average molecular weight (Mw) of 850-1,650 Da. In one embodiment, the isomalto-oligosaccharides described herein are hydrolyzed dextran with a weight average molecular weight (Mw) of 850-1,650 Da.
[0098] Starting from isomalto-oligosaccharides, derivatives thereof can be prepared that are characterized by the change of the reducing aldehyde end groups to glycitol / sorbitol. The conversion of isomalto-oligosaccharides to hydrogenated isomalto-oligosaccharides can be carried out by treating the isomalto-oligosaccharides with a reducing agent, such as borohydride, under alkaline conditions, as depicted in reaction scheme 4 below: TIFF0007674963000008.tif161157Reaction scheme 4
[0099] Using the above-mentioned process for producing dextran derivatives, isomalto-oligosaccharide derivatives can also be produced by reaction with (2-chloroethyl)diethylammonium chloride, and 2-(diethylaminodextran)ethyl (DEAE) isomalto-oligosaccharides can be produced. Another option is to produce isomalto-oligosaccharide derivatives by reaction with monochloroacetic acid (MCA) to synthesize carboxymethyl isomalto-oligosaccharides. It is easy for those skilled in the art to produce further hydrogenated isomalto-oligosaccharide derivatives by reaction with (2-chloroethyl)diethylammonium chloride and monochloroacetic acid, respectively, as in the above-mentioned dextran and isomalto-oligosaccharides.
[0100] Oligoisomaltose With dextran as starting material and xtran 1 (isomalto-oligosaccharide) as intermediate, it is possible to synthesize oligo-isomaltose, characterized by the complete absence of the branched side chains α-(1→2), α-(1→3) and α-(1→4) that define the dextran molecule. In this context, oligoisomaltose is considered to be a subset of isomalto-oligosaccharides. Thus, in one embodiment, oligoisomaltose has a weight-average molecular weight (Mw) of 300-1,650 Da, such as 850-1,650 Da, preferably 850-1,150 Da, and is completely devoid of the branched side chains α-(1→2), α-(1→3) and α-(1→4). It is clear that the same synthesis of derivatives described above for isomalto-oligosaccharides can be carried out with oligoisomaltose.
[0101] Dextrin and its derivatives Dextrins are a group of low molecular weight carbohydrates produced by the hydrolysis of starch. Dextrins are dextran polymers consisting of a mixture of molecules with glucose backbones of various lengths. Before using dextrins, they are typically purified and fractionated, for example by applying hydrolysis or one or more alcohol precipitation methods, and / or by various chromatographic methods, such as membrane processing, which applies one or more membranes with specific cut-off values, to obtain the desired molecular size and weight distribution.
[0102] As shown in formula (II), dextrins are mixtures of polymers of D-glucose units joined by α-(1→4) or α-(1→6) glycosidic bonds.
[0103] TIFF0007674963000009.tif10699 formula (II)
[0104] Derivatives of dextrin, like the dextrans and isomaltooligosaccharides described above, can be prepared by methods known to those skilled in the art.
[0105] Cryopreservation To avoid contamination of the samples being cryopreserved, the cryoprotectant is preferably sterile, and other optional components of the cryopreservation agent / composition are also preferably sterile.
[0106] In some applications, it is useful to supplement the cryoprotectant selected from dextrin, dextran, isomaltooligosaccharides and derivatives thereof with additional cryoprotectants to reduce the concentration of such additional cryoprotectants, preferably to non-toxic concentrations. This is particularly useful for certain cell types, such as hepatocytes or pluripotent stem cells. Thus, in a further embodiment, the cryoprotectant is selected from acetamide, agarose, alginate, 1-analine, albumin, ammonium acetate, butanediol, chondroitin sulfate, chloroform, choline, diethylene glycol, dimethylacetamide, dimethylformamide, dimethylsulfoxide (DMSO), erythritol, ethanol, ethylene glycol, formamide, glucose, glycerol, α-glycerophosphate, glycerol monoacetate, glycine, hydroxyethyl starch, inositol, lactose, magnesium chloride, magnesium sulfate. The cryoprotectant further comprises at least one additional cryoprotectant selected from ethanol, maltose, mannitol, mannose, methanol, methylacetamide, methylformamide, methylurea, phenol, pluronic polyols, polyethylene glycol, polyvinylpyrrolidone, proline, propylene glycol, pyridine N-oxide, ribose, serine, sodium bromide, sodium chloride, sodium iodide, sodium nitrate, sodium sulfate, sorbitol, sucrose, trehalose, triethylene glycol, trimethylamine acetate, urea, valine and xylose. In one embodiment, the additional cryoprotectant is DMSO. The advantage of adding DMSO in a reduced amount is that it provides additional protection for very fragile cells. In a preferred embodiment, the cryoprotectant is free or substantially free of DMSO. Thus, in a further preferred embodiment, the dextrin, dextran, isomaltooligosaccharide or derivative thereof is the only cryoprotectant in the cryoprotectant. A cryoprotectant that is free or substantially free of DMS0 does not require washing after thawing of the samples.The thawed sample may then be directly suspended in culture medium to rapidly initiate the culturing process without washing the sample, or may be used directly in the patient without a washing step that potentially results in substantial cell loss. Another advantage of using a cryoprotectant that is free or substantially free of DMS0 is that the sample can be exposed to the cryoprotectant for longer periods without damage, resulting in a more efficient work process.
[0107] In another embodiment, the cryoprotectant further comprises at least one antifreeze protein and / or antifreeze protein, such as a cryoprotectant in an amount of 0.01-1 mg / mL. An example of an antifreeze glycoprotein is type I AFP from longhorn sculpin, which is a single long amphipathic alpha helix.
[0108] The cryoprotectant or cryoprotectant composition may contain further substances to improve the viability of the sample. As examples of such substances, mention may be made of IAP (inhibitors of apoptosis); inhibitors of the rho-associated protein kinase (ROCK) signaling pathway; growth factors such as EGF, FGF, PDGF, IGF, EPO, BDNF, TGF, TNF, VEGF, etc. In a further embodiment, mention may be made of any serum components from human, bovine, equine, or canine origin. The cryoprotectant or cryoprotectant composition may contain a growth medium. In one embodiment, a growth medium may be used that contains a β-catenin / P300 antagonist and an activin / TGFβ ligand, such as ID-8, which links activin and TGFβ. This type of medium is particularly useful for the culture of pluripotent stem cells, in particular embryonic stem cells, as described, for example, in WO 2013 / 054112. Another example is the standard knockout medium, which includes KnockOut Serum Replacement, DMEM / F12 with GlutaMAX™ supplement, FGF, NEAA and BME. Another example is the mTSER™ system. Other examples of growth media that vary depending on the sample to be cryopreserved are known to those skilled in the art.
[0109] The cryoprotectants disclosed herein may be in the form of a powder, such as a freeze-dried or spray-dried powder.
[0110] In a further embodiment, the cryoprotectant is in the form of a solution. Thus, the cryoprotectant may further comprise a solvent, such as, for example, sterile water. In one embodiment, the cryoprotectant comprises 30%-70% w / w of the cryoprotectant, such as 40%-65% w / w or 50%-60% w / w of the cryoprotectant.
[0111] Samples such as cells, tissues or organs to be cryopreserved will also very typically contain at least a basic salt solution, an energy source (such as glucose) and a buffer capable of maintaining a neutral pH at low temperatures, along with a cryo-compatible pH buffer. Well-known materials include, for example, Dulbecco's Modified Eagle's Medium (DMEM). This material may also be included as part of the cryopreservation composition and / or cryopreservation agent.
[0112] One embodiment disclosed herein is a cryopreservation composition comprising a cryoprotectant as described herein, the cryopreservation composition further comprising a sample to be cryopreserved.
[0113] A further aspect disclosed herein is a cryopreserved composition comprising a cryoprotectant and a sample that has been cryopreserved or is in the process of being cryopreserved. The term "cryopreserved composition" as described herein means either a "cryopreserved composition" that is in the process of being cryopreserved or that has already been cryopreserved.
[0114] A further aspect disclosed herein is a cryopreserved composition comprising a growth medium or substrate for a sample to be cryopreserved.
[0115] In one embodiment, the sample is selected from organs, cells and tissues, such as mammals. In a further embodiment, the sample is an organ, cell, blood or tissue. Examples of such cells to be cryopreserved are primary cells, in vitro cultured cells, such as cell lines, in vitro sorted cells, such as human blood cells, and fertilized eggs from animals and humans. Further examples are sperm cells, embryonic stem cells, IPS cells, mesenchymal stem cells, hematopoietic stem cells, neural stem cells, umbilical cord blood stem cells, hepatocytes, neurons, cardiomyocytes, vascular endothelial cells, vascular smooth muscle cells and blood cells. In a further embodiment, the sample is selected from hematopoietic stem cells, such as mesenchymal stem cells, hematopoietic stem cells, embryonic stem cells, IPS cells, keratinocytes, preferably CD34 positive blood stem cells, mesenchymal stem cells, embryonic stem cells and IPS cells. In a further embodiment, the sample is selected from mesenchymal stem cells and hematopoietic stem cells. In one embodiment, the cells are from animals or humans. Examples of organs are lung, liver, kidney, heart, ovary and pancreas. Examples of tissues are bone marrow, skin, ovary, testis, blood vessels, connective tissue tissue, preferably ovary and connective tissue tissue. In a further embodiment, the blood is selected from umbilical cord blood and motile peripheral blood, preferably umbilical cord blood. In a further embodiment, the sample is a cell-containing body fluid, such as blood, menstrual fluid or amniotic fluid.
[0116] Depending on the particular sample to be cryoprotected, the cryoprotectant is typically present in the composition to be cryopreserved in an amount of 1-50% w / w, such as 2-50% w / w, 4-45% w / w or 6-20% w / w, or 6-12% w / w, or preferably 6-10% w / w, or more preferably 7-9% w / w. In one embodiment, the cryoprotectant is present in the composition to be cryopreserved in an amount of at most 60% w / w, such as at most 55% w / w, at most 50% w / w, at most 45% w / w, at most 40% w / w, at most 35% w / w. In another embodiment, the cryoprotectant is typically present in an amount of at least 2% w / w, such as at least 4% w / w, at least 6% w / w, at least 6% w / w, at least 7% w / w.
[0117] If the composition to be cryoprotected includes an additional cryoprotectant such as DMSO, the additional cryoprotectant is typically present in an amount less than 8 % w / w, such as 1-8% w / w, for example less than 4 % w / w, such as less than 5% w / w, such as less than 1-4% w / w.
[0118] In conventional cryopreservation techniques, samples are harvested, suspended in a preservation solution, and then frozen to preserve them. When samples such as cells are to be used, they are thawed, e.g., cells harvested from a human donor are brought back to normal human body temperature (i.e., approximately 37°C), and then placed in cell culture medium.
[0119] In the cryopreservation method of the present invention, the sample is protected during cryopreservation by contacting it with a cryoprotectant as described herein before lowering to the cryopreservation temperature. Contacting with a cryoprotectant means that the sample is contacted with the cryoprotectant in some way so that the cryoprotectant in the cryopreservation composition protects the sample during lowering to the cryopreservation temperature. For example, the cells can be contacted with the cryoprotectant by filling the appropriate wells of the plate to which the cells to be protected are added; or by suspending the cells in a solution of the cryoprotectant, or by adding, for example, a lyophilized form of the cryoprotectant to cells, blood or organs that are already in a solution, such as a buffer; or by resuspending the cell pellet after centrifugation in the cryoprotectant to bring the cells into solution.
[0120] In one embodiment, the present specification discloses a method for cryopreserving a sample, comprising the steps of contacting the sample to be cryopreserved with a cryoprotectant as defined herein to obtain a cryopreservation composition, and then reducing the temperature of the cryopreservation composition to a cryopreservation temperature.
[0121] In a further aspect, a method of cryopreserving a composition defined herein by lowering the temperature of said composition to the cryopreservation temperature is disclosed.
[0122] The rate of change from room temperature to 1-2° C. below the freezing point of the solution has a major effect on maximum viability if the cells are temperature shock sensitive.
[0123] Between 3.5 °C and -5 °C, samples are usually induced to freeze either by the introduction of ice crystals, by contacting the surface of the medium with a cold tip, by mechanical vibration, or by rapidly lowering the temperature until ice nucleation occurs. Freezing is an exothermic process, so heat must be driven away from the freezing solution. This can be done either by keeping the sample immersed in a liquid with a low freezing point or by providing a substantial heat sink. As ice forms in the medium outside the cells, more free water becomes bound to the ice phase. The cell membrane, being hydrophobic, acts as a barrier to the nucleation of intracellular ice, and thus the nonfreezing cells are exposed to a solution that becomes increasingly hypertonic. The extracellular salt concentration increases as a result of the sequestration of water to the ice. The nonfreezing cells shrink due to the transport of water out of the cell in response to the osmotic imbalance of the intracellular and extracellular liquid phases. The sample is then cooled at a limited rate that must be optimized for each cell type.
[0124] The optimal rate of cooling is determined by the permeability of the cell membrane to water, the surface:volume ratio of the cells, and the type and concentration of cryoprotectant additives in the cryoprotectants described herein. For mostly nucleated mammalian cells frozen in glycerol or DMSO, the optimal cooling rate is usually about 0.3-10°C / min. Continuous cooling between about 4°C and -80°C is most commonly used. Once the sample reaches approximately -80°C, the sample can be transferred directly into liquid nitrogen (-196°C) or the vapor phase of liquid nitrogen for storage. Another method for use in cryopreservation is the vitrification technique, which can obtain very fast cooling rates of 1000°C-2000°C / min. With this technique, a specialized vitrification device containing the cryopreservation composition containing the sample is placed directly into liquid nitrogen. In one embodiment, the cryopreservation temperature is achieved at a rate of 0.05-15°C / min, such as 0.1-10, 0.2-8, 0.3-6, 0.4-4, 0.5-2°C / min. In another embodiment, the cryopreservation temperature is achieved at a rate of 500-3000° C. / min, such as 800-2500, 1000-2000, 1200-1800° C. / min.
[0125] The duration of viable cell storage in liquid nitrogen varies depending primarily on the rate of free radical production caused by the cosmic radiation background.
[0126] For example, the half-life of mammalian embryos stored in liquid nitrogen is estimated to be approximately 30,000 years. It is important not to allow frozen cells to warm above their storage temperature, even for short periods of time. Intermittent warming promotes rapid migratory recrystallization that can damage cell structure and reduce overall viability.
[0127] In a further embodiment, the sample is thawed after cryopreservation. The optimal rate of thawing of the sample varies depending on the freezing conditions used and the specific sample to be preserved. In general, rapid warming is desirable for single cells frozen in suspension as well as tissues such as heart valves. Such rapid warming limits the growth of ice crystals in frozen samples and is often an absolute requirement for high viability. For many tissues, this warming can be achieved by shaking the sample in a water bath at 37-42°C. The rationale for rapid warming is that it limits the growth of ice crystals formed during cooling.
[0128] Some tissues may be sensitive to rapid warming. This is due to a transient osmotic shock, as the cells are exposed to an extracellular hypertonic solution as the ice melts and are forced to rehydrate to maintain their osmotic equilibrium. For other more sensitive samples, metabolic processes can be reactivated or brought to normal levels by serial dilution with serum or other high molecular weight polymers in the melting medium.
[0129] After the thawing procedure is complete, the cells are still exposed to a multimolar concentration of cryoprotectant that must be stepwise diluted to return the cells to isotonic medium. For mammalian cells, a stepwise dilution protocol is typically used. The dilution of the sample is usually performed at preferably 37° C. to reduce the effects of both osmotic shock and cryoprotectant toxicity. In a further embodiment, the concentration of the cryoprotectant is 4-45% w / w, such as 4-20% w / w, 5-15% w / w or 6-12% w / w, or preferably 6-10% w / w, or more preferably 7-9% w / w.
[0130] In further embodiments, the temperature of the sample in the cryopreservation composition is reduced to a cryopreservation temperature below -50°C, such as -50°C to -196°C, such as -80°C to -196°C.
[0131] In one embodiment, the cryoprotectant is used in a banking method. In one embodiment, the cryoprotectant is used in a clinical banking method. In one embodiment, the cryoprotectant is used in a motility peripheral blood banking method.
[0132] In one embodiment, the cryoprotectant is used in clinical banking procedures, such as stem cell transplantation or organ transplantation for malignant diseases. In one embodiment, the cryoprotectant is used in kinetic peripheral blood banking, marrow banking, or umbilical cord banking.
[0133] In one embodiment, the cryoprotectant is used in pulp banking or umbilical cord banking. In one embodiment, the cryoprotectant is used in adipose tissue banking or dental pulp tissue banking. In a further embodiment, the cryoprotectant is used in reproductive banking.
[0134] Further embodiments are disclosed below: 1. A cryoprotectant comprising a cryoprotectant which is one or more dextrins, dextran, isomalto-oligosaccharides and derivatives thereof, such as one or more dextran, isomalto-oligosaccharides and derivatives thereof, a) the cryoprotectant comprises at least 1% w / w of one or more isomalto-oligosaccharides and derivatives thereof, based on the total weight of dextrin, dextran, isomalto-oligosaccharides and derivatives thereof in the cryoprotectant; and / or b) the cryoprotectant has a weight average molecular weight (Mw) of 300 to 9,500 Da; Antifreeze. 2. A cryoprotectant comprising one or more cryoprotectants selected from dextrin, dextran, isomalto-oligosaccharides and derivatives thereof, such as dextran, isomalto-oligosaccharides and derivatives thereof, a) the cryoprotectant comprises at least 1% w / w of one or more isomalto-oligosaccharides and derivatives thereof having a weight average molecular weight (Mw) of 300 to 1,650 Da, based on the total weight of dextrin, dextran, isomalto-oligosaccharides and derivatives thereof in the cryoprotectant; or b) the cryoprotectant has a weight average molecular weight (Mw) of 300 to 9,500 Da; or c) the cryoprotectant comprises at least 1% w / w of one or more isomaltooligosaccharides and derivatives thereof having a weight average molecular weight (Mw) of 300 to 1,650 Da, based on the total weight of dextrin, dextran, isomaltooligosaccharides and derivatives thereof in the cryoprotectant, and the cryoprotectant has a weight average molecular weight (Mw) of 300 to 9,500 Da; Antifreeze.
[0135] 3. The cryoprotectant according to any one of embodiments 1-2, wherein the cryoprotectant has a weight average molecular weight (Mw) of 300 to 7,500 Da. 4. The cryoprotectant according to any one of embodiments 1-3, wherein the cryoprotectant is one or more selected from isomaltooligosaccharides having a weight-average molecular weight (Mw) of 300 to 1,650 Da and derivatives thereof. 5. The cryoprotectant according to any one of embodiments 1-4, wherein the cryoprotectant comprises at least 1% w / w of one or more isomalto-oligosaccharides and derivatives thereof having a weight average molecular weight (Mw) of 300 to 1,650 Da, based on the total weight of dextrin, dextran, isomalto-oligosaccharides and derivatives thereof in the cryoprotectant. 6. The cryoprotectant according to any one of embodiments 1-5, wherein the isomaltooligosaccharides and derivatives thereof have a weight average molecular weight (Mw) of 850 to 1,650 Da. 7. The cryoprotectant according to any one of embodiments 1-6 for cryopreserving a sample, wherein said sample is selected from organs, cells and tissues, such as mammalian organs, mammalian cells and mammalian tissues. 8. A cryoprotectant according to any one of embodiments 1-7 for cryopreserving a sample, wherein the sample is intended for transplantation. 9. A cryoprotectant according to any one of embodiments 1-8 for cryopreserving a sample, wherein the sample is functional after cryopreservation. 10. A cryoprotectant according to any one of embodiments 1-9, wherein the sample is an organ and the organ is determined to be functional by measuring the physiological function of the organ after cryopreservation, and / or the sample is a tissue and the tissue is determined to be functional by the ability of such tissue to integrate with surrounding tissues, and / or the sample is a cell and the cell is determined to be functional by the viability of the cell after cryopreservation.
[0136] 11. The cryoprotectant according to any one of embodiments 1-10, wherein the cryoprotectant has a weight average molecular weight (Mw) of 1,650 to 7,500 Da. 12. The cryoprotectant according to any one of embodiments 1-11, wherein the cryoprotectant has a weight average molecular weight (Mw) of 500 to 3,500 Da. 13. The cryoprotectant according to any one of embodiments 1-12, wherein the cryoprotectant has a weight average molecular weight (Mw) of 1,650 to 3,500 Da. 14. The cryoprotectant according to any one of the preceding embodiments, wherein the cryoprotectant has a polydispersity Pd, where Pd is ≧1 and ≦5. 15. The cryoprotectant according to any one of embodiments 1-14, wherein the cryoprotectant has a weight average molecular weight (Mw) of 850 to 1,650 Da. 16. The cryoprotectant according to any one of embodiments 1-15, wherein the cryoprotectant has a weight average molecular weight (Mw) of 850 to 1,150 Da. 17. The cryoprotectant according to any one of the preceding embodiments, wherein the cryoprotectant has a polydispersity Pd, where Pd is ≧1 and ≦3. 18. The cryoprotectant according to any one of embodiments 1-17, comprising at least 10% w / w of one or more isomalto-oligosaccharides and derivatives thereof, based on the total weight of dextrin, dextran, isomalto-oligosaccharides and derivatives thereof in the cryoprotectant. 19. The cryoprotectant according to any one of the preceding embodiments, wherein the weight fraction of isomaltooligosaccharides less than 3 glucose units is less than 15% w / w. 20. The cryoprotectant according to any one of the preceding embodiments, wherein the weight fraction of isomaltooligosaccharides greater than 20.9 glucose units is less than 20% w / w.
[0137] 21. The cryoprotectant according to any one of the preceding embodiments, wherein the weight fraction of isomalto-oligosaccharides with less than 3 glucose units is less than 15% w / w and the weight fraction of isomalto-oligosaccharides with more than 9 glucose units is less than 20% w / w, such as less than 15% w / w, less than 10% w / w. 22. The cryoprotectant according to any one of embodiments 1-21, comprising one or more isomalto-oligosaccharides and derivatives thereof, such as at least 30% w / w, at least 40% w / w, at least 50% w / w, at least 60% w / w, at least 70% w / w, at least 80% w / w, at least 90% w / w, at least 95% w / w or more, based on the total weight of dextrin, dextran, isomalto-oligosaccharides and derivatives thereof in the cryoprotectant. 23. The cryoprotectant according to any one of embodiments 1-22, wherein the cryoprotectant is an isomalto-oligosaccharide, such as an isomalto-oligosaccharide having a weight average molecular weight (Mw) of 850 to 1,150 Da. 24. The cryoprotectant according to any one of embodiments 1-23, wherein the isomaltooligosaccharides and derivatives thereof are dextran-based.
[0138] 25. The derivatives are hydrogenated isomalto-oligosaccharides, hydrogenated dextran, hydrogenated dextrin, oxidized isomalto-oligosaccharides, oxidized dextran, oxidized dextrin, esters of dextrin, esters of dextran, esters of isomalto-oligosaccharides, ethers of dextrin, ethers of dextran, ethers of isomalto-oligosaccharides; partially hydrogenated / oxidized dextrins, partially hydrogenated / oxidized dextran, and partially hydrogenated / oxidized isomalto-oligosaccharides and derivatives thereof selected from hydrogenated isomalto-oligosaccharides, hydrogenated dextran, hydrogenated dextrin, oxidized isomalto-oligosaccharides, oxidized dextran, oxidized dextrin, and the like; DEAE-dextrin, DEAE-dextran, DEAE-isomalto-oligosaccharide, carboxy C1- 10 Alkyl-dextrin, carboxy C1- 10 Alkyl-dextran, carboxy C1- 10 25. The cryoprotectant according to any one of the preceding embodiments, which is a derivative of dextrin, dextran and isomalto-oligosaccharide selected from alkyl-isomalto-oligosaccharides, esters of dextrin, esters of dextran and esters of isomalto-oligosaccharides and derivatives thereof. 26. The derivative is hydrogenated isomalto-oligosaccharide, oxidized isomalto-oligosaccharide, DEAE-isomalto-oligosaccharide, carboxy C1- 10 Alkyl, oxidized isomaltooligosaccharides or carboxy C1- 10 26. The cryoprotectant according to any one of embodiments 1-25, which is an alkylisomalto-oligosaccharide. 27. The cryoprotectant according to any one of embodiments 1-26, wherein the derivative is a hydrogenated isomalto-oligosaccharide, such as a hydrogenated isomalto-oligosaccharide having a weight average molecular weight (Mw) of 850 to 1,150 Da. 28. The carboxy C1- 10 28. The cryoprotectant according to any one of embodiments 25-27, wherein the alkylisomalto-oligosaccharide is a carboxymethylisomalto-oligosaccharide or a carboxyethylisomalto-oligosaccharide.
[0139] 29. Acetamide, agarose, alginate, 1-analine, albumin, ammonium acetate, butanediol, chondroitin sulfate, chloroform, choline, diethylene glycol, dimethylacetamide, dimethylformamide, dimethylsulfoxide (DMSO), erythritol, ethanol, ethylene glycol, formamide, glucose, glycerol, α-glycerophosphate, glycerol monoacetate, glycine, hydroxyethyl starch, inositol, lactose, magnesium chloride, magnesium sulfate, maltose, mannitol, mannose, methylcellulose ... 29. The cryoprotectant of any one of embodiments 1-28, further comprising at least one additional cryoprotectant selected from ethanol, methylacetamide, methylformamide, methylurea, phenol, pluronic polyols, polyethylene glycol, polyvinylpyrrolidone, proline, propylene glycol, pyridine N-oxide, ribose, serine, sodium bromide, sodium chloride, sodium iodide, sodium nitrate, sodium sulfate, sorbitol, sucrose, trehalose, triethylene glycol, trimethylamine acetate, urea, valine, and xylose. 30. The cryoprotectant according to any one of embodiments 1-29, wherein the additional cryoprotectant is DMSO. 31. The cryoprotectant according to any one of embodiments 1-30, which is substantially free of DMSO. 32. The agent according to embodiment 31 which is free of DMSO. 33. The cryoprotectant according to any one of embodiments 1-32, comprising a cryoprotectant as defined in embodiment 1 as the only cryoprotectant. 34. The cryoprotectant according to any one of the preceding embodiments, wherein the cryoprotectant is in the form of a powder. 35. The cryoprotectant according to any one of embodiments 1-34, wherein the cryoprotectant is in the form of a freeze-dried or spray-dried powder. 36. The cryoprotectant according to any one of the preceding embodiments, wherein the cryoprotectant is in the form of a solution. 37. The cryoprotectant according to any one of embodiments 1-36, wherein the cryoprotectant comprises 30% to 70% w / w of the cryoprotectant, such as 40% to 65% w / w or 50% to 60% w / w of the cryoprotectant.
[0140] 38. The cryoprotectant according to any one of embodiments 1-37, wherein the cryoprotectant comprises 30% to 70% w / w of the additional cryoprotectant, such as 40% to 65% w / w or 50% to 60% w / w of the additional cryoprotectant. 39. The cryoprotectant according to any one of the preceding embodiments, further comprising a growth medium or substrate for the sample to be cryopreserved. 40. The cryoprotectant according to any one of embodiments 1-39, further comprising an IAP (inhibitor of apoptosis); an inhibitor of the rho-associated protein kinase (ROCK) signaling pathway; and / or any protein belonging to any growth factor, such as EGF, FGF, PDGF, IGF, EPO, BDNF, TGF, TNF, VEGF, etc. 41. The cryoprotectant according to any one of the preceding embodiments, further comprising any serum component of human, bovine, equine or canine origin. 42. The cryoprotectant according to any one of the preceding embodiments, wherein the cryoprotectant is sterile. 43. A cryopreservation composition comprising a cryoprotectant as defined in any one of embodiments 1-42, and further comprising a sample to be cryopreserved. 44. The cryopreservation composition according to embodiment 43, wherein the sample is selected from organs, cells such as isolated cells, or cell-containing body fluids, such as blood, and tissues. 45. The cryopreservation composition according to embodiment 44, wherein the sample is selected from mammalian organs, mammalian cells and mammalian tissues, such as samples selected from mammalian organs, mammalian cells and mammalian tissues for transplantation.
[0141] 46. A cryopreservation composition according to any one of embodiments 43-45, wherein the sample is a cell selected from any type of tissue-derived cell in a tissue or organ, such as mesenchymal stem cells, tissue-specific progenitor cells, keratinocytes, fibroblasts, chondrocytes, bone cells or cardiomyocytes; blood-derived cells, such as hematopoietic stem cells, macrophages, platelets, red blood cells; or stem cells, such as all types of pluripotent, totipotent and unipotent cells; and somatic cells, such as germ layer cells. 47. A cryopreservation composition according to any one of embodiments 43-46, wherein the sample is a cell selected from keratinocytes, fibroblasts, mesenchymal stem cells, macrophages, and hematopoietic stem cells, such as CD34-positive blood stem cells. 48. The cryopreservation composition according to any one of embodiments 43-45, wherein the sample is a tissue selected from ovarian tissue, testicular tissue, umbilical cord tissue, placental tissue, connective tissue, cardiac tissue, tissue from muscle, bone and cartilage tissue, endocrine tissue and nervous tissue. 49. The sample is a cell-containing body fluid selected from blood, such as umbilical cord blood, peripheral blood and motile peripheral blood, amniotic fluid, semen, cerebrospinal fluid, menstrual fluid and bone marrow aspirate. 46. A cryopreservation composition according to any one of embodiments 43-45. 50. The cryopreservation composition according to any one of embodiments 43-45, wherein the sample is an organ selected from lung, heart, kidney, liver, umbilical cord and ovary. 51. A cryopreservation composition according to any one of embodiments 43-45, comprising said cryoprotectant in an amount of 1-50% w / w, such as 2-50% w / w or 4-45% w / w or 6-12% w / w, or preferably 6-10% w / w, or more preferably 7-9% w / w.
[0142] 52. A cryopreserved composition according to any one of embodiments 43-51, wherein the composition comprises DMSO in an amount less than 8% w / w, such as 1-8%. 53. A cryopreservation composition according to any one of embodiments 43-52, wherein the sample is functional after cryopreservation. 54. A cryopreserved composition according to any one of embodiments 43-53, wherein the composition comprises DMSO in an amount of less than 4% w / w, such as less than 8% w / w, such as 1-4%. 55. A method for cryopreserving a sample, comprising contacting the sample to be cryopreserved with a cryoprotectant as defined in any one of embodiments 1-42 to obtain a cryopreservation composition, and then reducing the temperature of the cryopreservation composition to a cryopreservation temperature. 56. The method according to embodiment 55, wherein the cryopreservation composition is defined in any one of embodiments 43-54.
[0143] 57. A method for cryopreserving a composition as defined in any one of embodiments 43-56, by lowering the temperature of the cryopreserved composition to a cryopreservation temperature. 58. The method of any one of embodiments 55-57, wherein the cryopreservation temperature is achieved at a rate of 0.05-15° C. / min, such as 0.1-10, 0.2-8, 0.3-6, 0.4-4, 0.5-2° C. / min. 59. The method according to any one of embodiments 55-58, wherein the concentration of the cryoprotectant is 5-15% w / w or 6-12% w / w, or preferably 6-10% w / w, or more preferably 4-20% w / w, such as 7-9% w / w. 60. The method of any one of embodiments 55-59, wherein the temperature of the sample in the cryopreservation composition is reduced to a temperature below -50°C, such as -50°C to -196°C, such as -80°C to -196°C. 61. The method of any one of embodiments 55-60, wherein the sample is thawed after cryopreservation. 62. The method of any one of embodiments 55-61, wherein the sample is functional after cryopreservation. 63. The method according to any one of embodiments 55-62, wherein the sample to be cryopreserved is selected from organs, cells and tissues. 64. The method according to any one of embodiments 55-63, in a clinical banking method. 65. The method according to any one of embodiments 55-64, in a banking method such as kinetic peripheral blood banking, pulp banking, adipose tissue banking, dental pulp tissue banking, reproductive banking or umbilical cord banking.
[0144] 66. Use of a cryoprotectant for cryopreserving a sample selected from organs, cells and tissues, comprising one or more cryoprotectants selected from dextrin, dextran, isomalto-oligosaccharides and derivatives thereof, such as selected from dextran, isomalto-oligosaccharides and derivatives thereof, wherein a) the cryoprotectant comprises at least 1% w / w of one or more isomalto-oligosaccharides and derivatives thereof having a weight average molecular weight (Mw) of 300 to 1,650 Da, based on the total weight of dextrin, dextran, isomalto-oligosaccharides and derivatives thereof in the cryoprotectant; or b) the cryoprotectant has a weight average molecular weight (Mw) of 300 to 9,500 Da; or c) the cryoprotectant comprises at least 1% w / w of one or more isomalto-oligosaccharides and derivatives thereof having a weight average molecular weight (Mw) of 300 to 1,650 Da, based on the total weight of dextrin, dextran, isomalto-oligosaccharides and derivatives thereof in the cryoprotectant. The cryoprotectant contains isomaltooligosaccharides and derivatives thereof having a weight-average molecular weight (Mw) of 300 to 9,500 Da. 67. The use of a cryoprotectant according to embodiment 66, wherein the cryoprotectant has a weight average molecular weight (Mw) of 300 to 7,500 Da.
[0145] 68. Use of a cryoprotectant selected from isomaltooligosaccharides and derivatives thereof having a weight-average molecular weight (Mw) of 300 to 1,650 Da, such as having a weight-average molecular weight (Mw) of 850 to 1,650 Da, for cryopreserving a sample selected from an organ, a cell, and a tissue. 69. Use of a cryoprotectant as defined in any one of embodiments 1-42 for cryopreserving a sample selected from organs, cells and tissues. 70. The use according to any one of embodiments 66-69, comprising contacting the sample to be cryopreserved with the cryoprotectant to obtain a cryopreservation composition, and then lowering the temperature of the cryopreservation composition to the cryopreservation temperature.
[0146] 71. Use of a cryopreservation composition according to any one of embodiments 43-54 for cryopreserving a sample by lowering the temperature of the cryopreservation composition to a cryopreservation temperature. 72. The use according to any one of embodiments 66-71, wherein the cryopreservation temperature is achieved at a rate of 0.05-15° C. / min, such as 0.1-10, 0.2-8, 0.3-6, 0.4-4, 0.5-2° C. / min. 73. The use according to any one of embodiments 66-72, wherein the concentration of the cryoprotectant is 5-15% w / w or 6-12% w / w, or preferably 6-10% w / w, or more preferably 4-20% w / w, such as 7-9% w / w. 74. The use according to any one of embodiments 66-73, wherein the temperature of the sample in the cryopreservation composition is reduced to a temperature below -50°C, such as -50°C to -196°C, such as -80°C to -196°C. 75. The use according to any one of embodiments 66-74, wherein the sample is thawed after cryopreservation. 76. The use according to any one of embodiments 66-75, wherein the sample is functional after cryopreservation. 77. The use according to any one of embodiments 66-76, wherein the sample to be cryopreserved is selected from organs, cells and tissues for transplantation. 78. The use according to any one of embodiments 66-77 in a banking method, such as a motor peripheral blood banking method, a pulp banking method, an adipose tissue banking method, a dental pulp tissue banking method, a reproductive banking method or an umbilical cord banking method. 79. The use according to any one of embodiments 66-78 in a clinical banking method.
[0147] All publications mentioned in this specification are incorporated herein by reference.Various modifications and variations of the desired compositions, methods and systems of the present invention will be apparent to those skilled in the art without departing from the scope and spirit of the present invention.Although the present invention has been described in connection with certain preferred embodiments, it should be understood that the invention as claimed should not be unduly limited to such specific embodiments.
[0148] Manufacturing Example 1 Production of isomaltooligosaccharide 1 Hydrolysis of low molecular weight dextrans 3345 kg of hydrolyzed dextran collected as permeate from the membrane with a cut-off value of <5,000 Daltons is hydrolyzed at a temperature of 95° C. and a pH of 1.5.
[0149] The hydrolysis is monitored using gel permeation chromatography (GPC) and is terminated by cooling when the molecular weight of the hydrolyzed material is estimated to reach the desired value, i.e., a weight average molecular weight of 850 to 1,150 daltons.
[0150] Hydrolysis produces low molecular weight isomalto-oligosaccharides, but glucose is also formed. After cooling and neutralization, the amount of glucose and very low molecular weight oligomers is reduced by a membrane process with a cutoff value of 340-800 daltons. After this process, the content of isomalto-oligosaccharides is measured by the optical rotation (α D 20-200) is determined to be 915 kg, and the amount of reducing sugars is determined to be 22.5% by use of Somogyi's reagent.
[0151] Table 1: Results of GPC analysis TIFF0007674963000010.tif121156 AUPW: Area under the peak (Mw) AUPN: Area under the peak (Mn)
[0152] As can be seen from Table 1 above, isomalto-oligosaccharide has a MW of 1020 Da, Mn equal to 827 Da, and polydispersity Pd=1.23. The reducing sugar content is determined to be 22.5%. This isomalto-oligosaccharide is also referred to herein as pentaisomaltose.
[0153] Manufacturing Example 2 Production of hydrogenated isomaltooligosaccharides 1 After hydrolysis and fractionation, 418 kg of isomalto-oligosaccharides remained. Reducing sugars were determined to be 30.8%. This amount was treated with 10 kg of sodium borohydride, resulting in 362 kg of hydrogenated isomalto-oligosaccharides before final ion exchange. The solution was then neutralized to pH<7.0, followed by deionization and finally spray drying. Reducing sugars in the final product were determined to be 0.09%.
[0154] Table 2: Results of GPC analysis TIFF0007674963000011.tif116162 AUPW: Area under the peak (Mw) AUPN: Area under the peak (Mn)
[0155] As can be seen from Table 2 above, the hydrogenated isomalto-oligosaccharide has a MW of 968 Da, Mn equal to 780 Da, and a polydispersity Pd=1.24. The reducing sugar content is determined to be 22.5%. This hydrogenated isomalto-oligosaccharide is also referred to herein as pentaisomaltoside. EXAMPLES
[0156] Preparation of cryopreservatives The cryopreservation agents used in the following examples are prepared by aseptically solubilizing a cryoprotectant (such as DMSO, pentaisomaltose (isomalto-oligosaccharide 1) prepared in Preparation Example 1 or pentaisomaltoside (hydrogenated isomalto-oligosaccharide 1) prepared in Preparation Example 2) in growth medium (DMEM / F12+10% FBS+penicillin / streptomycin) to the desired final concentration n (e.g., 8 grams / 100 ml of growth medium for an 8% isomalto-oligosaccharide 1 cryopreservation composition) and filter-sterilizing the individual cryopreservation compositions. EXAMPLES
[0157] Cryopreservation of normal human skin fibroblasts Under standard conditions (37°C, 5% CO2 and standard growth medium [DMEM / F12+10% FBS+penicillin / streptomycin]), NHDFs (passage 2) were cultured in conventional T-flasks. Upon reaching confluence (70-80%), the cell population was released from the flask and centrifuged (1000 rpm, 10 min). 0.5x10 6 The cells were resuspended in six different cryopreservatives (1 ml): 1) growth medium + 10% DMSO, 2) growth medium + 2% DMSO + 8% isomalto-oligosaccharides 1, 3) growth medium + 2% DMSO + 8% hydrogenated isomalto-oligosaccharides 1, 4) growth medium + 8% isomalto-oligosaccharides 1, 5) growth medium + 8% hydrogenated isomalto-oligosaccharides 1, and 6) growth medium without additives (DMEM / F12 without FBS). The cells were then frozen under standard controlled cryopreservation conditions using an isopropanol-based method, with a constant rate of 1°C / min down to the temperature of liquid N2. After one week, the cells were thawed using a standard thawing protocol (direct immersion of the vial in a 37°C water bath and dropwise addition of the cell solution into fresh 37°C growth medium). After thawing, the following analyses were performed: 1) viability, using a Nucleocounter instrument (NC200), and 2) viability at the first passage, using a Nucleocounter instrument (NC200). The results are shown in Figures 1 and 2 and summarized in Tables 3-5. When isomalto-oligosaccharide 1 is used as the sole cryopreservation agent, the viability after thawing is slightly decreased compared to standard conditions using 10% DMSO. When 2% DMSO is used together with isomalto-oligosaccharide 1, no difference in viability is observed. The viability of cells cryopreserved with isomalto-oligosaccharide alone at the first passage is similar to standard conditions using 10% DMSO. This experiment demonstrates that cryopreserving NHDF in a cryopreservation solution using isomalto-oligosaccharide 1 as the sole cryoprotectant results in cultures that can be used to the same extent as cultures from standard cryopreservation conditions. EXAMPLES
[0158] Cryopreservation of normal human keratinocytes (NHEK) NHEKs were cryopreserved using the same protocol as described in Example 2. The same experimental groups were performed. The results are shown in Figures 3 and 4 and summarized in Tables 3-5.
[0159] As also evident for NHDF, the results clearly demonstrate that NHEKs can be cryopreserved in cryopreservation solution using isomaltooligosaccharide 1 as the sole cryoprotectant. Viability at the first passage of the cultures is the same as the level of NHEKs cryopreserved under standard conditions with 10% DMSO. EXAMPLES
[0160] Cryopreservation of normal human mesenchymal stem cells (hMSCs) hMSCs were cryopreserved using the same protocol as described in Example 2, including two further experimental groups (growth medium + 8% isomaltooligosaccharide + 2% trehalose; and growth medium + 2% trehalose). Viability analysis was performed using the Nucleocounter technique described above. The results are shown in Figure 5 and summarized in Tables 3-5.
[0161] The results clearly demonstrate that hMSCs can be cryopreserved in a cryopreservation solution using isomalto-oligosaccharide 1 as the sole cryoprotectant, demonstrating the same level of post-thaw viability as the standard formulation containing 10% DMSO.
[0162] Tables 3~5 T1: Survival after thawing T2: Survival after the first passage
[0163] TIFF0007674963000012.tif39153 Table 3
[0164] TIFF0007674963000013.tif49153 Table 4
[0165] TIFF0007674963000014.tif39153 Table 5 EXAMPLES
[0166] Exposure of hMSCs to isomaltooligosaccharide 1 hMSCs were grown to confluence in conventional T-flasks. Cells were released and differentially suspended in two different formulations: 1) growth medium + 10% DMSO; and 2) 8% isomalto-oligosaccharide 1. The harvest concentration of cells in each formulation was 1x10 6 The viability was 1 ml / ml. The same basic protocol was used as described in Example 2. 1 ml from each vial was added to a cryovial and analyzed for viability using a Nucleocounter at three different time points [1) 0 min (T0), 10 min (T10) and 30 min (T30)]. The results are summarized in Table 6. TIFF0007674963000015.tif28153 Table 6
[0167] It is clearly demonstrated that exposure to standard cryopreservation conditions significantly affects the viability of hMSCs. Exposure to cryoformulation containing isomalto-oligosaccharide 1 as the only cryoprotectant significantly affects viability after 60 minutes of exposure. This demonstrates that concentrated cryopreserved cell cultures can be handled in cryopreservation compositions containing isomalto-oligosaccharide 1, allowing for more flexible working procedures. EXAMPLES
[0168] Isomalto-oligosaccharides 560 Da for cryopreservation of hMSCs Using the same basic protocol as described in the example, hMSCs were cryopreserved, and the same experimental group was carried out.The results show that it is possible to cryopreserve hMSCs in isomalto-oligosaccharide 560 Da, but hydrogenated isomalto-oligosaccharide 560 Da is not as effective as isomalto-oligosaccharide 560 Da in this experiment.The results are summarized in Table 7. TIFF0007674963000016.tif33169 Table 7 EXAMPLES
[0169] Human iPS cells in PluriPro growth medium The isomaltooligosaccharide 1 used in this experiment is produced as described in Preparation Example 1. Human induced pluripotent stem cells, iPSCs (passage 12), were cultured as single cells in conventional T-flasks under standard conditions (37°C, 5% CO2 and PluriPro growth medium, Cell Guidance System). Upon reaching confluence (70-80%), the cell population was released from the flask and centrifuged (1000 rpm, 10 min). 0.5x10 6The cells were resuspended in 12 different cryopreservation solutions (1 ml): Growth medium + 10% DMSO, Growth medium + 5% DMSO, Growth medium + 10% DMSO + 2% isomalto-oligosaccharide 1, Growth medium + 10% DMSO + 4% isomalto-oligosaccharide 1, Growth medium + 10% DMSO + 8% isomalto-oligosaccharide 1, Growth medium + 5% DMSO + 2% isomalto-oligosaccharide 1, Growth medium + 5% DMSO + 4% isomalto-oligosaccharide 1, Growth medium + 5% DMSO + 8% isomalto-oligosaccharide 1, Growth medium + 2% isomalto-oligosaccharide 1, Growth medium + 4% isomalto-oligosaccharide 1, Growth medium + 8% isomalto-oligosaccharide 1, and Growth medium without cryoprotectant. The cells were then cryopreserved under standard controlled cryopreservation conditions at a reduced temperature to that of liquid N2 (using an isopropanol-based method). After one week, the cells were thawed using a standard thawing protocol (directly immersing the vial in a 37° water bath and transferring the cell solution dropwise into fresh growth medium). An initial seeding was performed and ROCK inhibitor was added. After thawing, viability analysis was performed using the Nucleocounter technique. The results are shown in Figure 6.
[0170] The results demonstrate that human iPS cells can be cryopreserved using isomaltooligosaccharide 1 as the sole cryoprotectant, although the viability of the cryopreserved cells is significantly lower than when DMSO is added. EXAMPLES
[0171] Human iPS cells in PluriPro growth medium Hydrogenated isomaltooligosaccharides 1 used in this experiment are produced as described in Preparation Example 1. Human induced pluripotent stem cells, iPSCs (passage 12), were cultured as single cells in conventional T-flasks under standard conditions (37°C, 5% CO2 and PluriPro growth medium, Cell Guidance System). Upon reaching confluence (70-80%), the cell population was released from the flask and centrifuged (1000 rpm, 10 min). 0.5x10 6The cells were resuspended in 12 different cryopreservation solutions (1 ml): growth medium + 10% DMSO, growth medium + 5% DMSO, growth medium + 10% DMSO + 2% hydrogenated isomalto-oligosaccharides 1, growth medium + 10% DMSO + 4% hydrogenated isomalto-oligosaccharides 1, growth medium + 10% DMSO + 8% hydrogenated isomalto-oligosaccharides 1, growth medium + 5% DMSO + 2% hydrogenated isomalto-oligosaccharides 1, growth medium + 5% DMSO + 4% hydrogenated isomalto-oligosaccharides 1, growth medium + 5% DMSO + 8% hydrogenated isomalto-oligosaccharides 1, growth medium + 2% hydrogenated isomalto-oligosaccharides 1, growth medium + 4% hydrogenated isomalto-oligosaccharides 1, growth medium + 8% hydrogenated isomalto-oligosaccharides 1, and growth medium without cryoprotectant. The cells were then cryopreserved under standard controlled cryopreservation conditions at a temperature lowered to liquid N2 (using an isopropanol-based method). After one week, the cells were thawed using a standard thawing protocol (directly immersing the vial in a 37° water bath and transferring the cell solution dropwise into fresh growth medium). An initial seeding was performed and ROCK inhibitor was added. After thawing, a viability analysis was performed using the Nucleocounter technique. The results are shown in Figure 7.
[0172] The results demonstrate that human iPS cells can be cryopreserved using hydrogenated isomalto-oligosaccharide 1 as the sole cryoprotectant, although the viability of the cryopreserved cells is significantly lower than when DMSO is added. In samples cryopreserved without DMSO, a trend towards improved viability was observed as a function of the concentration of isomalto-oligosaccharide 1 used. EXAMPLES
[0173] Cryopreservation of normal human mesenchymal stem cells (hMSCs) in cryoprotectants with different molecular weights Using the same protocol as in Example 2, hMSCs were cryopreserved in the following experimental groups: growth medium + 10% DMSO, 8% isomalto-oligosaccharide 1, dextran average Mw 10.000 or dextran average Mw 40.000 + 5% DMSO, 8% isomalto-oligosaccharide 1, dextran average Mw 10.000 or dextran average Mw 40.000 + 1% DMSO, 8% isomalto-oligosaccharide 1, dextran average Mw 10.000 or dextran average Mw 40.000 and growth medium. Viability analysis was performed using the Nucleocounter technique described above. After thawing, MSCs were cultured for 3 days under standard conditions and the proliferation rate was analyzed by using the MTT assay, a colorimetric in vitro assay that measures mitochondrial activity in cell populations. The results are shown in Figure 8.
[0174] The results clearly demonstrate that hMSCs can be cryopreserved in cryopreservation solutions with isomalto-oligosaccharide 1, dextran with average Mw 10.000 or dextran with average Mw 40.000 as the sole cryoprotectant. No significant differences were observed between the Mn in direct viability analysis after thawing. However, analysis of proliferation rates after 3 days demonstrated that hMSCs cryopreserved in 8% isomalto-oligosaccharide 1 (average Mw 1000) proliferated more vigorously compared to 8% dextran with average Mw 10.000 and average Mw 40.000. EXAMPLES
[0175] Cryopreservation of normal human mesenchymal stem cells (hMSCs) in isomaltooligosaccharides with an average Mw of 1500 Mw Using the same protocol as in Example 2, hMSCs were cryopreserved in the following experimental groups: growth medium + 10% DMSO, growth medium + 2% DMSO, 8% isomalto-oligosaccharides with average Mw 1500 Mw + 2% DMSO, 8% isomalto-oligosaccharides with average Mw 1500 Mw and growth medium. Viability analysis was performed using the Nucleocounter technique described above. After thawing, MSCs were cultured for 3 days under standard conditions and the proliferation rate was analyzed by using the MTT assay, which is a colorimetric in vitro assay that measures mitochondrial activity in cell populations. The results are shown in Figure 9.
[0176] The results clearly demonstrate that hMSCs can be cryopreserved in a cryopreservation solution using isomaltooligosaccharides with an average Mw of 1500 as the sole cryoprotectant. EXAMPLES
[0177] Viability of CD34+ hematopoietic stem cells after cryopreservation with DMSO, isomalto-oligosaccharide 1, or hydrogenated isomalto-oligosaccharide 1 Motile peripheral blood cells were collected by leukapheresis transfusion and frozen in cryoprotective medium containing 10% DMSO or different concentrations of isomalto-oligosaccharide 1 (isom) or hydrogenated isomalto-oligosaccharide 1 (h-isom). Samples were frozen to -150°C using a controlled rate freezer (Kryo 560-16, Planer; starting temperature 4°C, decreasing at -1°C / min to 0°C, decreasing at -2°C / min to -45°C, and decreasing at -5°C / min to -100°C). Samples were thawed in a 37°C water bath. Flow cytometry was applied to assess the viability of CD45+, CD34+ hematopoietic stem cells. 7-aminoactinomycin D (7-AAD), a fluorescent DNA-binding compound, was used as a live / dead marker. Cells able to exclude 7AAD were assumed to be viable. The results are shown in Figure 10: Isomalto-oligosaccharide 1 (light grey bars), hydrogenated isomalto-oligosaccharide 1 (dark grey bars) and DMSO (black bars). Data from three separate experiments, each measured in duplicate, are shown. Error bars indicate standard deviation.
[0178] Both h-isom and isom support viability of CD34+ hematopoietic cells after cryopreservation to the same extent as standard 10% DMSO. A trend is demonstrated for both h-isom and isom with higher concentrations providing greater protective efficacy. The 4% concentration provides less significant protective efficacy (less than 60%) than the 6%, 8%, 10% and 12% concentrations. The 10% and 12% concentrations have similar protective efficacy as 10% DMSO. No significant differences were observed between the cryoprotective efficacy of h-isom and isom in this study. EXAMPLES
[0179] Adipose-derived stroma after cryopreservation with DMSO, isomalto-oligosaccharide 1, or hydrogenated isomalto-oligosaccharide 1 / Stem Cell (ASC) Viability ASCs were harvested from adipose tissue obtained by cosmetic liposuction of the abdomen and inner thighs using a Vibrasat device (Moeller Medical GmbH & Co. KG, Fulda, Germany). ASCs from the stromal vascular fraction were expanded ex vivo in culture medium consisting of Dulbecco's modified Eagle's medium, 1% penicillin-streptomycin, 1% GlutaMAX, and 10% pooled human platelet lysate. Cells were frozen in cryoprotective medium containing 10% DMSO or various concentrations of isomalto-oligosaccharide 1 (isom) or hydrogenated isomalto-oligosaccharide 1 (h-isom). Samples were frozen to -150°C using a controlled rate freezer (Kryo 560-16, Planer; starting temperature 4°C, decreasing at -1°C / min to 0°C, decreasing at -2°C / min to -45°C, and decreasing at -5°C / min to -100°C). Samples were thawed in a water bath at 37°C. Flow cytometry was applied for phenotypic characterization (positive for CD73, CD90, CD105 and negative for CD14, CD20, CD45 and CD34) to assess ASC viability. 7-aminoactinomycin D (7-AAD), a fluorescent DNA-binding compound, was used as a live / dead marker. Cells able to exclude 7AAD were assumed to be viable. Results are shown in Figure 11: Isomalto-oligosaccharide 1 (light grey bars), hydrogenated isomalto-oligosaccharide 1 (dark grey bars) and DMSO (black bars). Data from one experiment, measured in duplicate, are shown. Error bars indicate standard deviation. DMSO results are lower than expected.
[0180] Both h-ISOM and ISOM as cryoprotectants support ASC viability to the same extent as 10% DMSO. Higher concentrations, except for the lower concentration of 4%, result in viability above about 70%. The concentration of 12% results in significantly higher viability (80%-90%) compared to the lower concentrations. In this study, no significant differences were observed between the cryoprotective effects of h-ISOM and ISOM, except for the 4% group. EXAMPLES
[0181] After removing the mouse ovaries, transfer the ovaries to McCoy's medium supplemented with 10 mg / ml HSA, penicillin / streptomycin and maintained at 37 °C until transfer of the ovaries into the following cryopreservation solutions: 1) standard conditions (similar to cryopreservation of human ovarian tissue: PBS, 1.5 mol / L ethylene glycol, 0.1 mol / L sucrose, 10 mg / ml HSA) or 2) PBS, 10 % (w / v) isomaltooligosaccharides.
[0182] The ovaries are equilibrated on ice for 30 min, then transferred to a programmable cryofreezer (Planner Cryo 10 programmable freezer, UK) and the samples are cooled to -140°C with the following gradient: (start temperature: -1°C; -2°C / min to -9°C; hold for 5 min; seeding; -0.3°C / min to -40°C, -10°C / min to -140°C; then directly into liquid nitrogen). Thawing: 37°C bath, room temperature; 10 min in medium containing isomaltooligosaccharide 1 (20% (w / v)), then directly into fixation medium. In tissue preparations, both ovaries show viable follicles at different stages of development. EXAMPLES
[0183] Mouse ovaries are treated as described in Example 13 above, but in the following cryopreservation solutions: 1) standard conditions (similar to cryopreservation of human ovarian tissue: PBS, 1.5 mol / L ethylene glycol, 0.1 mol / L sucrose, 10 mg / ml HSA); or 2) PBS, 1.5 mol / L ethylene glycol, 10 mg / ml HSA, 10% (w / v) hydrogenated isomalto-oligosaccharides 1; or 3) PBS, 10 mg / ml HSA, 10% (w / v) hydrogenated isomalto-oligosaccharides 1. In tissue preparations, all ovaries show viable follicles at different stages of development.
Claims
1. 1. A method for cryopreserving a sample, comprising contacting the sample to be cryopreserved with a cryoprotectant comprising a cryoprotectant to obtain a cryopreservation composition, and then reducing the temperature of the cryopreservation composition to a cryopreservation temperature, the cryoprotectant is at least one of isomaltooligosaccharides having a weight-average molecular weight (Mw) of 850 to 1,150 Da and hydrogenated isomaltooligosaccharides having a weight-average molecular weight (Mw) of 850 to 1,150 Da; the sample is selected from the group consisting of mesenchymal stem cells and human blood cells; The composition comprises dimethyl sulfoxide (DMSO) in an amount of 1-2% w / w, method.
2. 1. Use of a cryoprotectant comprising a cryoprotectant for cryopreserving a sample in a cryopreservation composition comprising a cryoprotectant and dimethylsulfoxide (DMSO) in an amount of 1-2% w / w, the cryoprotectant is at least one of isomaltooligosaccharides having a weight-average molecular weight (Mw) of 850 to 1,150 Da and hydrogenated isomaltooligosaccharides having a weight-average molecular weight (Mw) of 850 to 1,150 Da; The sample is selected from the group consisting of mesenchymal stem cells and human blood cells; Use of antifreeze.
3. 1. A cryopreservation composition comprising a cryoprotectant comprising a cryoprotectant, and further comprising a sample to be cryopreserved, the cryoprotectant is at least one of isomaltooligosaccharides having a weight-average molecular weight (Mw) of 850 to 1,150 Da and hydrogenated isomaltooligosaccharides having a weight-average molecular weight (Mw) of 850 to 1,150 Da; the sample is selected from the group consisting of mesenchymal stem cells and human blood cells; The composition comprises dimethyl sulfoxide (DMSO) in an amount of 1-2% w / w, Cryopreservation composition.
4. 2. The method of claim 1, wherein the amount of DMSO is 1% w / w or 2% w / w.
5. 3. The use according to claim 2, wherein the amount of DMSO is 1% w / w or 2% w / w.
6. 4. The composition of claim 3, wherein the amount of DMSO is 1% w / w or 2% w / w.
7. 5. The method of claim 1, wherein the cryoprotectant has a polydispersity of ≧1 and ≦5.
8. The method of any one of claims 1, 4 and 7, wherein the cryoprotectant is an isomaltooligosaccharide having a weight average molecular weight (Mw) of 850 to 1,150 Da.
9. The method according to any one of claims 1, 4 and 7, wherein the cryoprotectant is a hydrogenated isomaltooligosaccharide having a weight average molecular weight (Mw) of 850 to 1,150 Da.
10. 10. The method according to any one of claims 1, 4 and 7 to 9, wherein the weight fraction of isomalto-oligosaccharides having less than 3 glucose units or hydrogenated isomalto-oligosaccharides is less than 15% w / w and / or the weight fraction of isomalto-oligosaccharides having more than 9 glucose units is less than 20% w / w.
11. The method according to any one of claims 1, 4 and 7 to 10, wherein the isomalto-oligosaccharides or hydrogenated isomalto-oligosaccharides are dextran-based.
12. 12. The method of any one of claims 1, 4 and 7 to 11, wherein the cryoprotectant comprises 30% to 70% w / w of the cryoprotectant.
13. 13. The method of any one of claims 1, 4 and 7 to 12, wherein the cryoprotectant comprises at least one additional cryoprotectant selected from agarose, alginate, albumin, chondroitin sulfate, choline, erythritol, glucose, alpha-glycerophosphate, glycine, hydroxyethyl starch, inositol, lactose, magnesium chloride, magnesium sulfate, maltose, mannitol, mannose, methylacetamide, pluronic polyols, polyethylene glycol, proline, ribose, serine, sodium bromide, sodium chloride, sodium iodide, sodium nitrate, sodium sulfate, sorbitol, sucrose, trehalose, trimethylamine acetate, urea, valine and xylose.
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