Stabilized amorphous calcium carbonate as a supplement for cell culture media.
Stabilized amorphous calcium carbonate supplementation in cell culture media addresses the limitations of serum-based media by enhancing cell growth and functionality, achieving significant improvements in myotubogenesis, embryonic development, and sperm motility.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- AMORPHICAL LTD
- Filing Date
- 2021-11-11
- Publication Date
- 2026-05-20
Smart Images

Figure 0007862829000020 
Figure 0007862829000021 
Figure 0007862829000022
Abstract
Description
[Technical Field]
[0001] The present invention provides stabilized amorphous calcium carbonate as a supplement for cell culture media. In particular, this ACC is useful for enhancing the growth of cell and tissue cultures in vitro. In a further aspect of the present invention, a cell culture media supplement comprising stabilized ACC is provided. Background of the Invention
[0002] Cell culture technology allows for the in vitro growth of animal, plant, or insect cells extracted from tissues, provided appropriate nutrients and conditions are added. Cell culture technology has numerous applications, including studying cellular processes, evaluating the effects of various chemical compounds or drugs on specific cell types, synthesizing valuable biologics on an industrial scale, and producing cells enlarged for transplantation purposes. Cell culture technology is useful in in vitro fertilization, stem cell research, and vaccine production.
[0003] One of the most important applications of cell culture technology is the mass production of biologics containing specific proteins, such as monoclonal antibodies. The number of such commercially valuable biologics has increased rapidly over the past few decades, leading to the current widespread interest in mammalian cell culture technology.
[0004] The composition of the culture medium used for cultured cells is crucial due to its impact on cell survival, proliferation, and the production of the desired bioagent. Many different cell culture media have been developed, each with varying levels of specificity for different cell cultures. Some are basal media that can be supplemented according to the requirements of different cell cultures, while others are more complex. Hundreds of individual compounds can be added to cell culture media to achieve the desired effect. However, the concept of medium supplementation is usually limited to the addition of substances that generally promote the establishment and maintenance of cell culture. Among the most commonly used supplements are minerals, vitamins, amino acids, hormones, and serum, most frequently being fetal bovine serum, horse serum, or human serum. However, the use of serum can often be undesirable, and growth media with reduced serum content or serum-free media are used.
[0005] Research and development are underway on culture media, and supplements to media that can enable the maintenance and proliferation of cell and tissue cultures, and especially provide effective large-scale production culture conditions. [Overview of the project]
[0006] It has been surprisingly discovered that cell culture media supplemented with stabilized amorphous calcium carbonate (ACC) result in enhanced growth of various cells compared to cells grown in media supplemented with other calcium sources. In particular, stabilized ACC has been shown to enhance myotubogenesis in mdx cells, a model of Duchenne muscular dystrophy. Furthermore, enhanced in vitro embryonic development was observed in media containing stabilized ACC, either in a "one-step" single culture medium or a "sequential" (clearance medium). Surprisingly, embryos grown in clearance medium supplemented with stabilized ACC showed rapid cleavage and high hatching rates. In other cases, nerve cells grown in ACC-supplemented media showed enhanced neurite regeneration, and stem cells grown in ACC-supplemented medium showed rapid proliferation and differentiation. Even more surprisingly, sperm incubated in the presence of ACC showed significantly higher motility after the swim-up method, and the concentration of spermatids incubated with ACC in the upper phase (motility sperm) was found to be up to 7 times higher than that in untreated samples. Furthermore, ACC increased the Ca in the sperm samples. 2+ It has been shown that the biphasic effect on sperm motility observed with the addition of [substance name] was not present. All these results indicate that stabilized ACC, as a supplement to cell culture media, enhances and promotes cell growth and confers superior functionality.
[0007] In one embodiment, the present invention provides a cell culture medium supplemented with amorphous calcium carbonate (ACC) stabilized with at least one stabilizer, wherein the cell culture medium is suitable for the growth of biological cultures. In some embodiments, the medium is suitable for cell culture, tissue culture, organ culture, or organ growth. In other embodiments, a cell culture medium supplemented with stabilized ACC can enhance or promote the growth of cells, tissues, and organs, for example, proliferation, maturation, reproduction, regeneration, development, preservation such as cryopreservation, and / or differentiation. In one embodiment, the cells are animal, plant, or insect cells. In one embodiment, a cell culture medium supplemented with stabilized ACC is suitable for the growth of cell culture, tissue culture, and organ culture, and can optionally enhance growth, wherein the culture is an animal, plant, or insect cell, tissue, or organ culture. In one embodiment, a cell culture medium supplemented with stabilized ACC is suitable for the growth of stem cells such as embryonic, chorionic, amniotic, hematopoietic, mesenchymal, neural, glial, nasal olfactory mucosa (NOM), adult tissue-specific, and induced pluripotent stem cells, or for the growth of embryos such as human or non-human mammalian embryos. In other embodiments, such a cell culture medium can enhance stem cell proliferation, expansion, and / or differentiation, enhance reproductive maturation, or enhance embryonic development. In some embodiments, a cell culture medium supplemented with stabilized ACC is suitable for growth and can optionally enhance the growth of yeast or bacteria. In some embodiments, the bacteria are probiotic bacteria such as Escherichia coli or bacteria of the genera Bifidobacterium and Lactobacillus. In any one of the embodiments, the cell culture medium of the present invention may be any medium suitable for cell growth, such as a natural medium containing biological fluids, or an artificial medium such as an equilibrated salt solution, a basal medium, or a complex medium. The cell culture medium of the present invention may be further supplemented as known in the prior art. According to the present invention, the cell culture medium is supplemented with ACC stabilized with at least one stabilizer. The stabilizer may be any substance known in the prior art.In certain embodiments, the stabilizer is selected from polyphosphates such as inorganic polyphosphate, phosphorylated amino acids, bisphosphonates, organic acids, and combinations thereof. In some embodiments, the stabilizer is a combination of such stabilizers, such as a combination of inorganic polyphosphate with an organic acid such as citric acid, or a combination of phosphorylated amino acids with an organic acid.
[0008] In another embodiment, the present invention provides amorphous calcium carbonate (ACC) stabilized with at least one stabilizer for use as a supplement to cell culture media. In one embodiment, the stabilized ACC is added to the medium during preparation. In another embodiment, the ACC is added to the medium before use.
[0009] In yet another embodiment, the present invention provides a cell culture medium supplement comprising amorphous calcium carbonate (ACC) stabilized with at least one stabilizer. In one embodiment, the cell culture medium supplement comprises stabilized ACC, which is added to the medium during preparation. In another embodiment, the supplement is added to the medium before use. The cell culture medium supplement may be a solid, liquid, or semi-liquid supplement. In any one of the above embodiments, the ACC is stabilized with at least one stabilizer. Such cell culture medium supplements can enhance the growth of cells, tissues, and organs, for example, by enhancing proliferation, maturation, reproduction, regeneration, development, and / or differentiation.
[0010] In a further embodiment, the present invention provides amorphous calcium carbonate (ACC) stabilized by at least one stabilizer and formulated as a supplement for cell culture media, wherein the ACC is stabilized by at least one stabilizer.
[0011] In another embodiment, the present invention provides a method for enhancing cell growth in a biological culture, comprising exposing the biological culture to ACC stabilized with at least one stabilizer. In several embodiments, the biological culture is selected from cell cultures, tissue cultures, organ cultures, and bacterial cultures. In one embodiment, the method includes enhancing cell growth, in particular enhancing myotubogenesis, enhancing embryonic development, enhancing nerve cell regeneration, and enhancing reproductive maturation and / or preservation.
[0012] In one embodiment, the present invention provides a cell culture medium supplement containing ACC, or stabilized ACC, for use as a supplement for cell culture media of the present invention, and a kit comprising instructions for the use of said ACC or said supplement in combination with cell culture media. In a particular embodiment, the present invention provides a kit comprising amorphous calcium carbonate (ACC) stabilized with at least one stabilizer, and instructions for the use of said ACC in combination with cell culture media. In one embodiment, ACC is for use as a cell culture medium supplement. In several embodiments, the kit comprises a cell culture medium supplement containing ACC stabilized with at least one stabilizer, and instructions for the use of said ACC in combination with cell culture media. The kit of the present invention may further include any known medium suitable for the growth of cells, tissues, or organs. [Brief explanation of the drawing]
[0013] [Figure 1] This figure shows the effects of different calcium sources on nerve sprouting obtained from cultured spinal cord dorsal root ganglion (SC-DRG) slices. Immunofluorescence staining (anti-neurofibrillate antibody) of nerve fibers grown from SC-DRG slices exposed to the following calcium compounds (2 mM Ca2+ concentration): (A) ACC-etidronic acid, (B) ACC-phosphoserine, (C) gastric bezoar, (D) crystalline calcium carbonate (CCC), and (E) CaCl2 solution (control). Original magnification ×100. [Figure 2]This figure shows the effects of (A) etidronic acid-stabilized ACC and (B) CaCl2 solution (control) on neuronal sprouting obtained from brain cells cultured in chitosan microcarriers (MC). Immunofluorescence staining (anti-neurofibre antibody) of nerve fibers grown from brain cells-chitosan MC aggregates after 30 days of culture in the presence of 2 mM ACC-etidronic acid or CaCl2 is shown. [Figure 3] This figure shows the effect of ACC on myotube formation in healthy skeletal muscle cultures. Original magnification × 40. Skeletal muscle cultures were exposed to the following calcium compounds (final Ca2+ concentration of 2 mM): ACC-etidronic acid, ACC-ADP, gastric bezoar, crystalline calcium carbonate (CCC), and CaCl2 solution (control). Cultures were fixed and stained with Giemsa after 4 and 7 days. Improved myotube formation in skeletal muscle cultures was observed in ACC-treated cells. [Figure 4] This figure shows the effect of ACC in culture medium on the initial formation of myotubes in mdx cell line cultures. Giemsa staining of cultures exposed to media containing CaCl2, ACC-ET, and ACC-phosphoserine (ACC-PS) is shown. Original magnification ×100. [Figure 5] This figure shows the amount of creatinine kinase (CK) measured in mdx muscle cell lines exposed to CaCl2 in two ACC preparations (ACC-ET and ACC-PS). [Figure 6] This figure shows the effect of ACC (ACC-PS, ACC-PP vs. control (CaCl2)) on myotube formation in mdx mouse primary culture (Giemsa staining, original magnification × 50). [Figure 7] This figure demonstrates the effect of ACC on myotube formation in primary cultures of mdx mice, as shown by myosin immunostaining. Control (CaCl2), ACC-PS, ACC-polyphosphate (ACC-PP). Original magnification ×100. [Figure 8] This figure shows the effect of stabilizing ACC on mouse embryo development in vitro. [Figure 9]It is a figure showing the alizarin red staining of osteoblasts after 10 days of culture as a function of various medium treatments. The medium was A-ACC, B-supplemented with 1 mM additional Ca2+ of CaCl2, and C-control without Ca2+ supplementation. [Figure 10] It is a figure showing the alkaline phosphatase staining of osteoblasts after 10 days of culture as a function of various medium treatments. The medium was A-ACC, B-supplemented with 1 mM additional Ca2+ of CaCl2, and C-control without Ca2+ supplementation. [Figure 11] It is a figure showing the alizarin red staining (A - C) and alkaline phosphatase (D - F) of mdx cell lines grown in media with different sources of the added 1 mM additional Ca2+. A and D - ACC, B and E - CaCl2, or C and F - control (without additional calcium supplementation). [Figure 12] It is a figure showing the effect of stabilized ACC on in vitro - cultured ovaries (A) where the granulosa cells surrounding the oocytes are complete, compared to a control (B) (without ACC added to the medium) where incomplete granulosa cells and oocytes are observed at the blastocyst stage. Detailed description of the present invention
[0014] It has surprisingly been discovered that the addition of ACC to cell - culture media enhances the growth of various types of cells. According to one aspect, the present invention provides a cell - culture medium supplemented with amorphous calcium carbonate (ACC), where the ACC is stabilized by at least one stabilizer. According to another aspect, the present invention provides stabilized ACC for use as a supplement to cell - culture media. In a particular aspect, the present invention provides a cell - culture supplement containing stabilized ACC.
[0015] For each aspect of the present invention, individually and collectively, the following terms are used and specific parameters are defined as described below.
[0016] The terms “cell culture medium,” “growth medium,” and “culture medium” are used interchangeably herein and mean a medium that can be used, suitable for, or maintained for the growth of biological cultures such as cells, tissues, or organs, and that provides a suitable environment for such cells, tissues, or organs. Different cell culture media may have different properties and contain different components, but almost all media are isotonic and have an osmotic pressure suitable for cell growth. For this reason, cell culture media are isotonic cell culture media. The term “isotonic” as used herein means a cell culture medium having an osmotic pressure of aqueous solution in the range of 270–300 mOsmol / kg at 37°C. For this reason, in one embodiment, water or more specifically deionized water is not considered a cell culture medium in itself. In some embodiments, tissue cultures include a phosphate source such as sodium chloride, calcium chloride, and mono- or disodium phosphate. In some embodiments, the medium is suitable for cell culture, tissue culture, organ culture, or for growing organs. Cells may be eukaryotes or prokaryotes. In particular, cell culture media refers to media suitable for cell growth, eukaryotic culture, tissue culture, or organ culture. In some embodiments, the medium may be a complete medium, a basal medium, a basal medium supplemented with cell culture medium supplements, a medium with varying amounts of serum, or a chemically defined medium.
[0017] As used herein, the term "supplemented" means a medium to which stabilized ACC has been added with at least one stabilizer; therefore, the medium contains ACC stabilized with at least one stabilizer. The term encompasses mediums prepared with ACC and mediums to which ACC is added before use.
[0018] Therefore, in one embodiment, the present invention provides a cell culture medium in which amorphous calcium carbonate (ACC) stabilized with at least one stabilizer is supplemented, and the cell culture medium is suitable for the growth of biological cultures.
[0019] The terms “culture,” “biological culture,” and “cell culture” are interchangeable and used herein to mean cell, tissue, organ culture, or organ grown in vitro under given conditions. In some embodiments, biological culture is selected from animal, plant, or insect cell cultures, animal, plant, or insect tissue cultures, animal, plant, or insect organ cultures, yeast cultures, and bacterial cultures.
[0020] As used herein, the term “cell culture” means multicellular eukaryotic cells that are artificially maintained, cultured, or grown in an in vitro environment. Cell culture may be suspension culture, where cells are cultured in liquid medium by constant agitation, or in microcarriers, or in adherent or monolayer culture.
[0021] As used herein, the term "tissue culture" refers to tissue maintained or grown in vitro.
[0022] As used herein, the term "organ culture" means a part or all of an organ cultured in vitro.
[0023] The term "stem cell" refers to a cell that has the ability to proliferate and differentiate into different cell types.
[0024] The terms “amorphous calcium carbonate” and “ACC” are interchangeable and used herein to mean the amorphous form of calcium carbonate stabilized by at least one stabilizer. ACC can be obtained from natural sources or from chemical synthesis. The terms also include naturally stabilized ACC, such as ACC obtained from gastroliths.
[0025] As used herein, the term “natural ACC” means any ACC isolated or derived from a natural source. Non-exclusive examples of natural sources of ACC include gastroliths of freshwater crustaceans.
[0026] As used herein, the term "synthetic ACC" means any ACC produced and / or derived in vitro by humans.
[0027] In several embodiments, the cell culture medium according to the present invention is suitable for the growth of biological cultures. In one embodiment, the biological culture is the culture of eukaryotic or prokaryotic cells. As used herein, the term “growth” encompasses any of the following: proliferation, maturation, reproduction, regeneration, maintenance, differentiation, development, preservation, cryopreservation, and any combination thereof, and may be used in various ways depending on the cell type. In one embodiment, the cell culture medium is suitable for proliferation or reproduction to maintain cells. In one exemplary embodiment, the cell culture medium is suitable for the proliferation or reproduction of eukaryotic cells, such as cells of unicellular or multicellular organisms. In another exemplary embodiment, the cell culture medium is suitable for the proliferation or reproduction of prokaryotic cells. In another embodiment, the cell culture is suitable for the maturation and / or development of cells, such as embryonic development or germ cell maturation. As used herein, the term “embryo” means a fertilized mammalian oocyte, i.e., a zygote, and the multicellular organism that develops from this zygote in its early stages of development. The term “germ” or “germ cell” is used interchangeably herein and means any male or female germ cell that can initiate the formation of a new diploid individual. Examples of reproductive organs are sperm and oocytes. The terms “sperm” and “spermatozoa,” as used interchangeably herein, refer to male germ cells. The term “sperm sample” refers to one or more samples containing sperm. A sperm sample may be semen or processed semen obtained from a subject, liquefied semen, precipitated and optionally resuspended semen, etc. In some embodiments, the cell culture medium is suitable for cell regeneration, such as nerve cell regeneration. The terms “neuron regeneration” and “nerve regeneration,” as used herein, may be used interchangeably and refer to the restoration of function of damaged nerves. Specifically, this includes repairing damaged sites in the peripheral or central nervous system, i.e., restoring nerve-mediated signaling by axonal and dendritic fiber regrowth. In some embodiments, nerve regeneration refers to sprouting from damaged nerve fibers. Thus, the cell culture medium according to the present invention can promote significant nerve fiber regeneration.In another embodiment, the cell culture medium is suitable for cell differentiation, for example, the differentiation of stem cells, particularly the differentiation of stem cells into osteoblasts. In some embodiments, the cell culture medium is suitable for maintaining the growth of tissue cultures and organ cultures. In some embodiments, the cell culture medium is suitable for the in vitro preservation of organs.
[0028] In several embodiments, cell culture media supplemented with stabilized ACC according to the present invention can enhance the growth of biological cultures as defined herein. As used herein, the term “enhance” means to promote, improve, increase, refine, or generally increase growth parameters. In several embodiments of the present invention, the terms “can enhance” and “enhance” are used interchangeably. Enhancement can be measured in comparison to a control sample grown under the same conditions but without the addition of ACC. Thus, in one embodiment, cell culture media supplemented with stabilized ACC according to the present invention can enhance the proliferation, maturation, reproduction, regeneration, development, cryopreservation, and / or differentiation of cells, tissues, or organs. In one embodiment, the cell culture medium can enhance the differentiation of stem cells. In another embodiment, cell culture media supplemented with stabilized ACC can enhance cell proliferation. In yet another embodiment, cell culture media supplemented with stabilized ACC can enhance cell maturation. In further embodiments, cell culture media supplemented with stabilized ACC can enhance the development of cells or tissues. In certain embodiments, cell culture media supplemented with stabilized ACC can enhance cell regeneration. Enhancements in the proliferation, maturation, reproduction, regeneration, development, and / or differentiation of cells, tissues, or organs can be measured as a percentage improvement compared to a control as defined above. Thus, in one embodiment, cell culture media supplemented with stabilized ACC can increase growth parameters by approximately 10% to 600%, 20% to 500%, 30% to 400%, 40% to 300%, 50% to 200%, 60% to 150%, or 70% to 100%. A 100% improvement means a doubling of the parameter, e.g., proliferation; a 200% improvement means a tripling of the parameter, e.g., embryonic development; and so on. In several embodiments, growth parameters can be increased by approximately 100% to 500%, 120% to 400%, or 150% to 300%.
[0029] In some embodiments, cell culture media supplemented with stabilized ACC are suitable for growth and, optionally, for enhancing the growth of eukaryotic cell cultures, such as eukaryotic cell, tissue, or organ cultures. In some embodiments, cell culture media supplemented with stabilized ACC are for eukaryotic cell growth. In some embodiments, eukaryotic cell cultures are selected from animal, plant, and insect cell cultures.
[0030] In one embodiment, the culture of eukaryotic cells, tissues, or organs is animal cells, tissues, or organs, stem cells, embryos, and organs. In several embodiments, the animal is human or a non-human mammal. Thus, in one embodiment, a cell culture medium supplemented with stabilized ACC is suitable for the growth of mammalian cells, tissues, or organs, mammalian stem cells, mammalian embryos, or mammalian organs, and optionally for enhancing their growth.
[0031] In one embodiment, the mammal is a human, and therefore, in one embodiment, the cell culture medium according to the present invention is suitable for the growth of human cells, tissues, or organs, stem cells, embryos, or organs.
[0032] In other embodiments, the mammal is a non-human mammal. In one embodiment, the non-human mammal is a domesticated animal such as a cow, pig, sheep, goat, horse, mule, donkey, buffalo, or camel. In another embodiment, the non-human mammal is a domesticated pet such as a cat or dog, a rodent such as a mouse, rat, guinea pig, or hamster, a lagomorph such as a rabbit, or a primate such as a monkey (e.g., a macaque) or an ape (e.g., a chimpanzee).
[0033] In several embodiments, the cell culture medium according to the present invention is suitable for the growth of mammalian cell cultures. In several embodiments, the mammalian cell culture, i.e., either human or non-human mammalian cell culture, is selected from cell cultures of nerve, muscle, epithelial, bone, adipose, stem cells, reproductive cells, and blood cells. In one embodiment, the cell culture is a muscle cell culture. In another embodiment, the cell culture is a nerve cell culture. In a further embodiment, the cell culture is a bone or osteocyte cell culture. In one embodiment, the cell culture is a bone marrow cell culture. In another embodiment, the cell culture is a tumor or cancer cell culture. In several embodiments, the cell culture medium supplemented with ACC according to the present invention can enhance the growth of the cell culture. In several embodiments, the cell culture is a suspension or adherent cell culture.
[0034] In some embodiments, the cell culture is a primary culture. As used herein, the term “primary culture” means cells isolated from tissue and grown under appropriate conditions.
[0035] In another embodiment, the cell culture is a cell line. The terms “secondary culture” and “cell line” are used interchangeably herein and mean a subcultured primary culture, i.e., a primary culture transferred from one culture vessel to another. In some embodiments, the cell line is a finite cell line, i.e., a cell line that has a limited lifespan and is completed by a limited number of cell generations. In another embodiment, the cell line is a continuous cell line, i.e., an immortal cell line that has acquired the ability to divide indefinitely.
[0036] In one particular embodiment, the cell line is selected from the FM3, HeLa, 293, A-549, ALC, CHO, HB54, HL60, COS-7, HEK293, VERO, BHK, CV1, MDCK, 3T3, C127, MRC-5, BAE-1, SH-SY5Y, L-929, HEP G2, NSO, U937, NAMALWA, WEHI231, YAC1, and U266B1 cell lines. In several embodiments, cell culture media supplemented with stabilized ACC can enhance the growth of the cell line.
[0037] In several embodiments, the cell culture medium of the present invention is suitable for the growth of mammalian tissue cultures. In one embodiment, the mammalian tissue culture is human tissue culture. In another embodiment, the tissue culture is non-human mammalian tissue culture. In one embodiment, the tissue culture is selected from epithelial, connective, muscle, and nerve tissue cultures. In one embodiment, the tissue culture is nerve tissue culture. In another embodiment, the tissue culture is muscle tissue culture. In yet another embodiment, the tissue culture is epithelial tissue culture, such as nasal olfactory mucosa. In yet another embodiment, the tissue culture is bone tissue culture.
[0038] In some more specific embodiments, tissue cultures are selected from kidney, liver, gland, brain, bone, eye, and muscle tissue cultures. In one embodiment, epithelial tissue cultures are selected from skin, stomach and intestinal wall, kidney, and glandular tissue cultures; muscle tissue cultures are selected from smooth, skeletal, and cardiac muscle tissue cultures; and nerve tissue cultures are selected from brain, spinal cord, and nerve tissue.
[0039] In several embodiments, cell culture media supplemented with stabilized ACC can enhance the growth of the tissue culture. In one embodiment, such media can enhance the regeneration of nerve tissue cultures. In some embodiments, the media can enhance the regeneration of nerve cultures by about 10% to about 200%, about 20% to about 150%, about 30% to about 120%, or about 40% to about 100%. In other embodiments, such media can also enhance myotubing formation and / or enhance or promote the occurrence of muscle cell contraction and reduce the time to the occurrence of spontaneous contraction activity of myotubes. In one embodiment, the media can enhance myotubing formation by about 10% to about 600%, about 20% to about 500%, about 30% to about 400%, about 40% to about 300%, about 50% to about 200%, about 60% to about 150%, or about 70% to about 100%. As used herein, the term "myotubogenesis" refers to the process by which myoblasts fuse with myotubes, which are multinucleated fibers.
[0040] In some embodiments, the cell culture medium of the present invention is suitable for the growth of stem cells. In some embodiments, the stem cells are human stem cells. In another embodiment, the stem cells are non-human mammalian stem cells. In some embodiments, the stem cells are selected from embryonic, chorionic, amniotic, hematopoietic, mesenchymal, neural, glial, adult, and induced pluripotent stem cells. In one embodiment, the stem cells are embryonic stem cells. In another embodiment, the stem cells are hematopoietic stem cells. In a further embodiment, the stem cells are mesenchymal human stem cells. In yet another embodiment, the stem cells are pluripotent stem cells. In some embodiments, the stem cells are adult stem cells, such as mesenchymal stem cells, epidermal stem cells, epithelial stem cells, hematopoietic stem cells, or neural stem cells. In one embodiment, the cell culture medium of the present invention is suitable for the proliferation, expansion, and / or differentiation of stem cells. In another embodiment, the cell culture medium of the present invention can enhance the proliferation and / or differentiation of stem cells. In one particular embodiment, the cell culture medium of the present invention can enhance the differentiation of stem cells into osteoblasts, i.e., enhance osteoblast differentiation.
[0041] In several embodiments, the cell culture medium of the present invention is suitable for embryonic growth. In one embodiment, the cell culture medium of the present invention is suitable for embryonic development. In another embodiment, the cell culture medium of the present invention can enhance embryonic development. In one embodiment, the medium can enhance embryonic development by about 10% to about 300%, about 20% to about 250%, about 30% to about 200%, about 40% to about 150%, about 60% to about 100%, or about 70% to about 90%. The terms “embryogenesis” and “embryonic development” are used interchangeably herein and mean the process by which an embryo arises and develops from the zygote stage to become an embryo, as known in the prior art, and include the stages of cleavage, densification, blastocyst formation, or reaching the stage of blastocyst hatching. The terms “cleavage,” “densification,” “blastocyst,” and “hatching” as used herein mean terms commonly used in embryology. The term “cleavage” is the division of cells in an early embryo. It produces cell clusters of similar size to the original zygote. The different cells obtained from cell division are called blastomeres. As used herein, the term "densification" refers to the stage in which the dividing cells arising from the zygote maximize their contact with each other through polarization and adhesion, forming a densification sphere that holds each other together by a tight bond. As used herein, the term "blastocyst" refers to the structure that develops after the densification stage and continues to form the embryo, as well as the outer layer of the blastocyst that surrounds the inner cell mass and a fluid-filled pore called the blastocoel. As used herein, the term "hatching" refers to the stage in which the embryo emerges through its outer shell (zona pellucida).
[0042] As used herein, the term “enhance embryonic development” means accelerating, improving, or enhancing the rate and / or efficiency of the developmental process, as well as the percentage of embryos that grow and develop well. Improvement is measured by comparing with a control sample that undergoes the same treatment but in which ACC is not added to the growth medium. In one embodiment, the embryo is a human embryo. In another embodiment, the embryo is a non-human mammalian embryo. In some embodiments, the non-human mammal is selected from cattle, pigs, sheep, goats, horses, mules, donkeys, buffalo, or camels. In some other embodiments, the non-human mammal is selected from cats, dogs, mice, rats, guinea pigs, hamsters, rabbits, monkeys, or apes.
[0043] In some embodiments, cell culture media can improve or extend the cryopreservation of embryos or germs, as described above. As used herein, the term “cryopreservation” means the storage of cells, such as embryonic germs, at ultracold temperatures, usually in liquid nitrogen (-196°C).
[0044] In several embodiments, the cell culture medium of the present invention is suitable for the growth of germ cells. In one embodiment, the cell culture medium supplemented with stabilized ACC is suitable for the maturation and / or preservation of germ cells. In one embodiment, the germ cells are oocytes. In another embodiment, the germ cells are spermatids. In any one of the above embodiments, the germ cells are germ cells of a human or non-human mammal. In several embodiments, the non-human mammal is selected from the group consisting of domestic animals, pet animals, rodents, wild animals, and primates. In one embodiment, the domestic animals are selected from cattle, pigs, sheep, goats, horses, mules, donkeys, buffalo, and camels. In some other embodiments, the pet animals are cats or dogs, the rodents are rats, mice, guinea pigs, or hamsters, the lagomorphs are rabbits, and the primates are monkeys such as macaques or apes such as chimpanzees.
[0045] In another embodiment, the germ cells are non-mammalian germ cells. In some embodiments, the non-mammals are selected from the group consisting of fish, insects, and birds.
[0046] In one embodiment, the germ cells are human spermatids or oocytes.
[0047] In several embodiments, cell culture media supplemented with stabilized ACC can enhance oocyte or sperm maturation. In one embodiment, cell culture media supplemented with stabilized ACC can improve sperm quality. The terms “enhance sperm maturation” and “improve sperm quality” are interchangeable and used herein to mean improving sperm quality, such as increasing sperm motility, increasing forward sperm motility, increasing sperm count, and any combination thereof. Thus, in one embodiment, cell culture media supplemented with stabilized ACC enables increasing sperm motility, increasing forward sperm motility, increasing sperm count, and any combination thereof. As used herein, “sperm motility” means the percentage of motile sperm out of all sperm in a given sample. As used herein, “forward motility” means the percentage of sperm moving in approximately one direction. As used herein, “enhance sperm motility” and “enhance forward sperm motility” mean increasing the percentage of motile sperm and sperm having forward motility, respectively. Thus, in one embodiment, the present invention provides a method for enhancing sperm motility. In another embodiment, the present invention provides a method for increasing sperm progressive motility. Sperm motility, progressive motility, and sperm maturity can be evaluated by methods known in the prior art. For example, motility can be evaluated by computer-assisted sperm analysis (CASA) (Amann & Waberski, 2014, Theriogenology, 81:5-17). The term “sperm sample” means one or more samples containing sperm. A sperm sample may be semen obtained from a subject or processed semen, liquefied semen, precipitated and optionally resuspended semen, etc. In some embodiments, increasing sperm count includes increasing sperm count in a motility or progressive motility treatment. In one embodiment, the motility or progressive motility treatment is a swim-up method.
[0048] In several embodiments, the cell culture medium of the present invention is suitable for the growth of organ tissues or organs. In several embodiments, the organ tissue or organ is selected from the ovary, cornea, heart, kidney, pancreas, liver, spleen, lung, testis, bladder, and blood vesicles. In one particular embodiment, the organ tissue or organ is the ovary. Thus, the cell culture medium of the present invention can enhance or maintain the preservation of organ tissues or organs.
[0049] In some embodiments, the cell culture medium of the present invention is suitable for the growth of plant cells. In some embodiments, the cell culture medium of the present invention is suitable for growing plant culture media. In another embodiment, the cell culture medium of the present invention is suitable for growing plant tissue culture. The term "plant cell culture" means plant cells derived from plant tissue or cells that are cultured in a container or recipient. The term "plant tissue culture" includes callus tissue (callus), differentiated cultured tissue, or cultured organ tissue. The term "callus" means a mass of unorganized parenchyma cells derived from plant tissue (explant).
[0050] In another embodiment, the cell culture medium of the present invention is suitable for the growth of insect cells. In one embodiment, the insect cells are insect cell cultures, such as insect cell lines. The cell types are as described above. In one particular embodiment, the cell lines are selected from Sf9, Sf21, and high-five cell lines. In another embodiment, the cell culture medium of the present invention is suitable for growing insect tissue cultures. In a further embodiment, the insect cells are insect organ cultures.
[0051] In some embodiments, the cell culture is either a suspension or an adherent cell culture.
[0052] In one embodiment, a cell culture medium supplemented with stabilized ACC can enhance the growth of plant cells or tissue cultures, or insect cells, tissues, or organ cultures.
[0053] In any one of the embodiments described above, the cell culture medium of the present invention, suitable for the growth of animal, plant, or insect cell, tissue, or organ cultures, may be a natural or artificial medium supplemented with ACC stabilized by at least one stabilizer, as defined in the present invention. In some embodiments, the medium is a natural medium supplemented with ACC stabilized by at least one stabilizer. In some embodiments, the natural medium contains a biological fluid selected from plasma, serum, lymph, human placental umbilical cord blood, and amniotic fluid. In another embodiment, the natural medium contains tissue extracts such as liver, spleen, tumor, lymphocytes, and bone marrow extracts, as well as bovine and chicken embryo extracts. In further embodiments, the natural medium contains a coagulant or blood clot. In some embodiments, the medium is an artificial medium supplemented with ACC stabilized by at least one stabilizer. In one embodiment, the artificial medium is an equilibrated salt solution. Examples of equilibrated salt solutions include PBS, DPBS, HBSS, EBSS, Tyrod T6, WM1, Pool P1, Quinn HTF, and Gardner G1. In another embodiment, the artificial medium is a basal medium. In some embodiments, the medium may be further supplemented as is well known in the prior art. In one embodiment, the medium is supplemented with serum, for example, fetal bovine serum. In further embodiments, the artificial medium is a compound medium.
[0054] As used herein, the term “basal medium” means a nutrient mixture of inorganic salts, sugars, and amino acids, and optionally also including vitamins, organic acids, and / or buffers. Basal mediums with supplements provide the nutrients necessary to support cell life, growth, and reproduction. The selection of basal medium used should be suitable for culture.
[0055] In one embodiment, the artificial medium is a serum-free medium. In a further embodiment, the artificial medium is a medium with reduced serum content. In another embodiment, the artificial medium is a protein-free medium.
[0056] Examples of cell media that can be used according to the present invention, supplemented with ACC stabilized by at least one stabilizer, include Dulbecco's Modified Eagle Medium (DMEM), Minimum Essential Medium (EMEM), RPMI1640 Medium (developed at Roswell Park Memorial Laboratory), and Eagle Basal Medium (BME). Further examples of media according to the present invention are Ham nutritional mixtures, including Ham F-10, Ham F-12, and DMEM / F-12 (DMEM and Ham F-12). Other examples are Iskov's Modified Dulbecco Medium (IMDM), opti-MEM, and Glasgow-MEM (GMEM). Examples of media suitable for insect cell growth include IPL-41 Insect Medium, Schneider-Drosophila Medium, Grace Insect Medium, Serum-Free Insect Medium, Sf-900, TC-10, Shields and Sang M3 Insect Medium, TC-100 Insect Medium, TMM-FH Insect Medium, and IPL-10. Examples of media suitable for embryo growth include single culture media such as SAGE1-Step®, or sequential media such as Quinns Advantage® sequential media (ORIGIO). Examples of media suitable for plant cell growth include Murashigesuku-G (MS), B5, N6, and niche media.
[0057] Other examples of culture media include Modified Medium, NCTC Medium, MegaCell Medium, Claycom, Crick Medium, L-15 Medium, Medium 199, MCDB Medium, Ames Medium, BGJb Medium (Fiton-Jackson Modified), Crick Medium, CMRL-1066 Medium, McCoy 5A Modified Medium, NCTC Medium, Swim S-77 Medium, Weymouth Medium, William Medium E, and in vitro fertilization media such as global®, GM501, SSM®, Split K-SICM, Embryocell K-SIBM, Quinns Advantage® Split, and Quinns These include Advantage® embryonic cells, FERTICULT® IVF medium, FERTICULT® G3 medium, IVC-TWO®, IVC-THREE®, ECM®, MultiBlast®, EmbryoAssist®, BlastAssist®, ISM1, ISM2, G-1® PLUS, G-2® PLUS, IVF®, and CCM®. Further examples of culture media include sperm separation media such as ISolate®, PureCeption®, and Multipurpose Handling Medium® (MHM®); sperm washing media such as Quinns® Sperm Washing Medium, Multipurpose Handling Medium® (MHM®), or Gentamicin-enhanced HTF medium; sperm fertilization media such as Biggers-Witten-Whittingham (BWW) medium, Ham-F10, and Modified Tyrode Medium (HSM); and maturation media that can culture immature oocytes into fully developed embryos suitable for transplantation. In other embodiments, the media are fertilization media, embryo development media, germ handling media, preimplantation genetic diagnosis (PGD) media, or embryo and / or germ maturation, handling, and / or cryopreservation media.Therefore, in one embodiment, the cell culture medium is selected from DMEM, RPMI1640, MEM, IMDM, L-15 medium (Leibovitz), MCDB medium, medium 199, opti-MEM and DMEM / F-12, Schneider-Drosophila medium, Grace insect medium, IPL-41 insect medium, Sf-900, serum-free insect medium, Shields and Sang M3 insect medium, TC-100 insect medium, TNM-FH insect medium, Ham F-12, Ham F-10, GMEM, Ames medium, Eagle basal medium (BME), Claycomb, Crick medium, Glasgow minimal essential medium (GMEM), MegaCell medium, McCoy 5A modified medium, NCTC medium, Williams medium E, Weymouth medium, TC-10, and IPL-10 medium. In another embodiment, the cell culture medium is selected from fertilization media, embryo development media, and media for embryo and / or germ maturation, handling, and / or cryopreservation, including DMEM, RPMI1640, MEM, IMDM, opti-MEM, GMEM, Ham F-12 and DMEM / F-12, Schneider's Drosophila medium, Gries insect medium, Sf-900, TC-10, IPL-10 medium, and sperm separation, washing, or maturation media such as ISolate®, PureCeption®, Multipurpose Handling Medium® (MHM®), Quinns® sperm washing medium, Multipurpose Handling Medium® (MHM®), Biggers-Witten-Whittingham (BWW) medium, Ham F-10, and modified Tyrode medium (HSM), and modified HTF medium with gentamicin.
[0058] In several embodiments, the cell culture medium supplemented with stabilized ACC of the present invention is suitable for the growth of unicellular eukaryotes. In one embodiment, the unicellular eukaryote is a yeast such as Saccharomyces, more specifically Saccharomyces cerevisiae. In one embodiment, the cell culture medium of the present invention suitable for the growth of unicellular eukaryotes such as Saccharomyces cerevisiae is selected from yeast extract peptone dextrose (YPD), yeast extract-peptone-glycerol (YPG), and yeast extract-peptone-dextrose (YPAD) medium. In one embodiment, the cell culture medium supplemented with stabilized ACC can enhance yeast growth.
[0059] In some embodiments, the cell culture medium of the present invention is suitable for the growth of prokaryotes. In certain embodiments, the cell culture medium of the present invention is suitable for the growth of microorganisms. In some embodiments, the microorganism is a microorganism of the microbiome. In some embodiments, the microorganism is a bacterium. For this reason, in certain embodiments, the cell culture medium of the present invention is suitable for the growth of bacteria. In some embodiments, the bacterium is Escherichia coli or a probiotic bacterium such as Bifidobacterium and Lactobacillus. Further examples of probiotic bacterial strains include Lactobacillus paracasei, Bifidobacterium longum, Lactobacillus johnsonii, Lactobacillus fermentum, Pediococcus acidilactici, Lactobacillus acidophilus, Lactobacillus rhamnosus GG, Lactobacillus helveticus, Bifidobacterium infantis, Bifidobacterium lactis, Lactobacillus bulgaricus, Lactobacillus silivarius, Lactobacillus plantarum, Lactobacillus reuteri, Lactobacillus casei, Bifidobacterium bifidum, Saccharomyces boudicus, Streptococcus thermophilus, Bifidobacterium breve, Bacillus coagulans, Lactobacillus brevis, and others. In some embodiments, the culture medium suitable for bacterial growth is selected from LB and M9. In one embodiment, cell culture media supplemented with stabilized ACC can enhance bacterial growth.
[0060] In several embodiments, the cell culture medium of the present invention is suitable for the growth of archaea. In one embodiment, cell culture medium supplemented with stabilized ACC can enhance the growth of archaea.
[0061] In any one aspect or embodiment of the present invention, ACC is stabilized by at least one stabilizer. The terms “stabilizer” and “stabilizer” are used interchangeably herein and mean any substance that contributes to maintaining calcium carbonate in an amorphous state during ACC production, formulation, storage, and use. In certain embodiments, the stabilizer is a single agent. In other embodiments, the use of several stabilizers is entailed. The terms “stabilized ACC” and “ACC stabilized by at least one stabilizer” may be used interchangeably in some embodiments.
[0062] The stabilizer may include, but is not limited to, a molecule having one or more functional groups, selected from hydroxyl, carboxyl, ester, amine, phosphino, phosphono, phosphate, sulfonyl, sulfate, or sulfine groups. The hydroxyl-containing compound bonded to the hydroxide may optionally also have other functional groups such as carboxyl, but will be accompanied by an unesterified hydroxyl.
[0063] In some embodiments, the stabilizer is low-toxicity or non-toxic to mammalian cells or organisms, particularly humans. In some embodiments, the stabilizer is food, dietary supplement, or pharmaceutical grade.
[0064] In certain embodiments, the ACC stabilizer is, independently in each presence, an organic acid; a phosphorylated, phosphonically oxidized, sulfonated, or sulfonated organic compound; a phosphoric acid or sulfuric acid ester of a hydroxyl carboxylic acid; an organic amine compound; an organic compound containing hydroxyl; an organic phosphite compound or its salt; a phosphorylated amino acid and its derivatives, bisphosphonates; an organic phosphoric acid compound; an organic phosphonic acid compound; an organic polyphosphate, an inorganic polyphosphate, an inorganic phosphite, an organic compound having multiple functional groups as defined above; an inorganic phosphoric acid and polyphosphate compound; an organic compound having a polyphosphate chain; an organic surfactant; a bioessential inorganic ion; a saccharide and its derivatives, a protein, a phosphorylated protein, a natural and synthetic biopolymer and its derivatives, or any combination thereof. In some embodiments, the stabilizer may also have pharmaceutical activity, such as bisphosphonates or ATP.
[0065] Therefore, in one embodiment, the stabilizer is selected from the group consisting of polyphosphates such as inorganic polyphosphate, organic acids, phosphorylated, phosphonically oxidized, sulfonated, or sulfonated organic compounds, phosphoric or sulfuric acid esters of hydroxycarboxylic acids, phosphorylated amino acids, bisphosphonates, organic polyphosphates, saccharides and their derivatives, proteins, peptides, phosphorylated proteins, phosphorylated peptides, and any combination thereof. In another embodiment, the stabilizer is selected from the group consisting of phosphoserine, adenosine triphosphate, adenosine diphosphate, phytic acid, citric acid, etidronic acid, pyrophosphate, polyphosphate, triphosphate, ethanol, hexamethane phosphate, chitin, and any combination thereof.
[0066] In some embodiments, the stabilizer is an organic acid. In certain embodiments, the organic acid is selected from ascorbic acid, citric acid, lactic acid, acetic acid, oxalic acid, malonic acid, glutaconic acid, succinic acid, maleic acid, lactic acid, glutamic acid, aconitic acid, and compounds having at least two carboxylic acids and a molecular weight not exceeding 250 g / mol, such as citric acid, tartaric acid, malic acid, etc. In one particular embodiment, the stabilizer is citric acid.
[0067] In another embodiment, the phosphate ester of the hydroxylcarboxylic acid is phosphoenolpyruvic acid. In yet another embodiment, the phosphate or sulfate ester of the hydroxylcarboxylic acid contains an amino acid. Examples of such esters are phosphoserine, phosphothreonine, sulfoserine, sulfothreonine, and phosphocreatine.
[0068] In another embodiment, the stabilizer is a saccharide. In one embodiment, the saccharide is a mono-, di-, tri-, oligo-, or polysaccharide, such as sucrose, mannose, glucose, chitosan, and chitin. In some embodiments, the stabilizer is a polyol, such as glycerol. In another embodiment, the stabilizer is an amino acid, such as serine or threonine. Each of these realizations represents a separate embodiment of the present invention.
[0069] Non-limiting examples of natural and synthetic biopolymers and derivatives include polynucleotides and glycoproteins.
[0070] Some specific non-limiting examples of ACC stabilizers approved for food use, as recognized in natural foods or in humans, include phytic acid, citric acid, sodium pyrophosphate dibasic, adenosine 5'-monophosphate (AMP) sodium salt, adenosine 5'-diphosphate (ADP) sodium salt, and adenosine 5'-triphosphate (ATP) disodium salt hydrate, phosphoserine, phosphorylated amino acids, food-grade surfactants, stearoyl lactylate sodium, and combinations thereof.
[0071] In some embodiments, the stabilizer comprises at least one component selected from phosphoric acid or sulfate esters of hydroxylcarboxylic acids such as phosphoenolpyruvic acid, phosphoserine, phosphothreonine, sulfoserine, or sulfothreonine, and saccharides selected from mono-, di-, tri-, oligo-, and polysaccharides, such as sucrose, mannose, and glucose. The hydroxyl-containing compound may further comprise at least one alkali hydroxide, such as sodium hydroxide or potassium hydroxide. Phosphorylated acids may be present in oligopeptides and polypeptides. In another embodiment of the present invention, the stabilizer is an organic acid selected from monocarboxylic acids or polycarboxylic acids, such as dicarboxylic acids or tricarboxylic acids. The feasibility of each is shown in separate embodiments of the present invention. The organic acid may be as defined above.
[0072] In some embodiments of the present invention, the ACC stabilizer is selected from phosphorylated amino acids, polyols, and combinations thereof. In some embodiments, the stable ACC comprises a phosphorylated compound as a stabilizer, where phosphorylation is carried out at the hydroxyl group of the organic compound. In some embodiments, the stable ACC is selected from the group consisting of citrate, phosphoserine, phosphothreonine, and combinations thereof. Non-limiting examples of stabilizers containing phosphates, phosphites, phosphonate groups, and their salts or esters include phytic acid, dimethyl phosphate, trimethyl phosphate, sodium pyrophosphate, tetraethyl pyrophosphate, ribro-bisphosphate, etidronic acid, and other medical bisphosphonates, 3-phosphoglycerates, glyceraldehyde 3-phosphate, 1-deoxy-D-xylrose-5-sodium phosphate, diethylenetriaminepentakis(methylphosphonic acid), nitrilotri(methylphosphonic acid), 5-phospho-D-ribose-1-bisodium phosphate, adenosine 5'-bisodium phosphate, adenosine 5'-trisodium phosphate hydrate, α-D -Includes galactosamine 1-phosphate, 2-phospho-L-ascorbic acid trisodium salt, α-D-galactosamine 1-phosphate dipotassium salt pentahydrate, α-D-galactosamine 1-phosphate, O-phosphorylethanolamine disodium salt hydrate, 2,3-diphospho-D-glycerate pentasodium salt, phospho(enol)pyruvate monosodium salt hydrate, D-glyceraldehyde 3-phosphate, sn-glycerol 3-phosphate lithium salt, D-(-)-3-phosphoglycerate disodium salt, D-glucose 6-phosphate sodium salt, phosphatidic acid, ibandronate sodium salt, phosphonoacetic acid, DL-2-amino-3-phosphonopropionic acid, or combinations thereof. Essential inorganic ions may include, among others, Na, K, Mg, Zn, Fe, P, S, N, P or S in the oxide phase, or N as ammonia or a nitro group.
[0073] The stabilizers may further include, but are not limited to, phosphonate compounds such as bisphosphonates, polyphosphates, pyrophosphates or polyphosphates or organic polyphosphates, and but are not limited to adenosine diphosphate (ADP) or adenosine triphosphate (ATP).
[0074] Optionally, ACC is stabilized by a combination of phosphoserine and citrate. In another embodiment, ACC is stabilized by triphosphate and citrate.
[0075] ACC can be stabilized by more than one type of stabilizer, for example, two types of stabilizers. Stable ACC may contain more than two types of stabilizers, where one or more stabilizers are added to ACC during its formation and precipitation, thus constituting "internal" stabilizers, and another one or more stabilizers are added to the surface of the ACC particles after their formation, thus constituting "external" stabilizers. Further examples of stable ACC and its preparation can be found in International Patent Application Nos. WO2009 / 053967, WO2014 / 024191, and WO2016 / 193982.
[0076] In some embodiments, the stabilizer is a protein. In one embodiment, the protein is a naturally occurring and purified protein. In another embodiment, the protein is a synthetically produced protein. In some embodiments, the protein is selected from GAP65, GAP22, GAP21, and GAP12 proteins. In another embodiment, the protein is selected from CqCDA1, chitinase 2, β-N-acetylglucosaminidase, GAMP-like protein, chitin-binding protein, CqCBP, CAP10, GAP18.2, GAP02526, CqHc1, CqHc2, CqHc3, CqHc4, CqHc5, CqHc6, CqHc7, cryptocyanin 1, cyclophylline, cystatin 1, cystatin 2, LPS-BP, LEA protein, and cristacyanin, and optionally the protein is derived from red crow. In certain embodiments, the protein is a phosphorylated protein.
[0077] In some embodiments, the stabilizer is selected from polyphosphates, phosphorylated amino acids, organic acids, phosphorylated, phosphonized, sulfonated, or sulfonated organic compounds, phosphoric or sulfurized esters of hydroxycarboxylic acids, bisphosphonates, saccharides, their derivatives, proteins, phosphorylated proteins, natural and synthetic biopolymers, and their derivatives, as well as any combination thereof. In other embodiments, the stabilizer is selected from phosphoserine, triphosphates, adenosine triphosphate, adenosine diphosphate, phytic acid, citric acid, etidronic acid, pyrophosphate, ethanol, hexametaphosphate, chitin, and any combination thereof.
[0078] In some embodiments, the stabilizer is selected from organic acids, phosphorylated organic acids, phosphoric or sulfuric acid esters of hydroxycarboxylic acids, phosphorylated amino acids, bisphosphonates, organic polyphosphates, saccharides, derivatives thereof, proteins, and any combination thereof.
[0079] In some embodiments, at least one stabilizer is selected from the group consisting of polyphosphate, bisphosphonate, phosphorylated amino acids, citric acid, and any combination thereof. In some embodiments, more than one stabilizer, for example, two, three, or four stabilizers are added.
[0080] In some embodiments, the stabilizer is polyphosphate or a pharmaceutically acceptable salt thereof. In some embodiments, the polyphosphate is a physiologically compatible water-soluble polyphosphate selected from the group consisting of sodium, potassium, and other essential cations of polyphosphate. In one embodiment, the polyphosphate is organic or inorganic polyphosphate. As used herein, the term “polyphosphate” means a high molecular weight ester of PO4. In some embodiments, the polyphosphate is a physiologically compatible water-soluble polyphosphate selected from the group consisting of sodium polyphosphate and potassium polyphosphate. In some embodiments, the polyphosphate is an inorganic polyphosphate or a pharmaceutically acceptable salt thereof. Non-limiting examples of such salts are Na, K, Mg, Mn, and Zn. In some embodiments, the inorganic phosphoric acid contains 2 to 10 phosphate groups, for example, 2, 3, 4, 5, 6, 7, 8, 9, or 10 phosphate groups. In some embodiments, the polyphosphate is selected from pyrophosphate, triphosphate, and hexametaphosphate. In one embodiment, the stabilizer is pyrophosphate or a pharmaceutically acceptable salt thereof, such as sodium pyrophosphate. In another embodiment, the stabilizer is triphosphate or a pharmaceutically acceptable salt thereof, such as sodium triphosphate. The terms “triphosphate” and “tripolyphosphate” are used interchangeably herein. In yet another embodiment, the stabilizer is hexametaphosphate or a pharmaceutically acceptable salt thereof, such as sodium hexametaphosphate.
[0081] In some embodiments, the stabilizer is a bisphosphonate or a pharmaceutically acceptable salt thereof. Non-limiting examples of salts include Na, K, Mg, Mn, and Zn.
[0082] As used herein, the term "bisphosphonate" means an organic compound having two phosphate (PO(OH)2) groups. The term further means a compound having a PO3-organic-PO3 skeleton. The most common are a series of bisphosphonates used as pharmaceuticals for the treatment of osteoporosis. In some embodiments, bisphosphonates are selected from the group consisting of etidronic acid, zoledronic acid, medronic acid, alendronic acid, and pharmaceutically acceptable salts thereof. In some embodiments, the stabilizer is etidronic acid or a pharmaceutically acceptable salt thereof. In another embodiment, the stabilizer is zoledronic acid or a pharmaceutically acceptable salt thereof. In a further embodiment, the stabilizer is medronic acid or a pharmaceutically acceptable salt thereof. In some embodiments, the stabilizer is alendronic acid or a pharmaceutically acceptable salt thereof.
[0083] In certain embodiments, the stabilizer is a phosphorylated amino acid. In one embodiment, the phosphorylated amino acid is phosphoserine. In another embodiment, the phosphorylated amino acid is phosphothreonine.
[0084] In some embodiments, the ACC composition includes the combination of stabilizers disclosed above.
[0085] In some embodiments, the stabilizer is a polyphosphate or bisphosphonate as defined above, and the molar ratio of the P atoms of the stabilizer to the Ca atoms of ACC (P:Ca molar ratio) is about 1:90 to 1:1. In one embodiment, the P:Ca molar ratio is about 1:40 to about 1:1. In further embodiments, the P:Ca molar ratio is about 1:35 to about 1:2. In certain embodiments, the P:Ca molar ratio is about 1:30 to about 1:3. In certain embodiments, the P:Ca molar ratio is about 1:28 to about 1:31. In other embodiments, the P:Ca molar ratio is about 1:25 to about 1:4. In further embodiments, the P:Ca molar ratio is about 1:20 to about 1:5. In another embodiment, the P:Ca molar ratio is about 1:20 to about 1:6. In certain embodiments, the P:Ca molar ratio is about 1:15 to about 1:5. In another embodiment, the P:Ca molar ratio is about 1:25 to about 1:5. In some embodiments, such polyphosphates are pyrophosphates, triphosphates, hexametaphosphates, or pharmaceutically acceptable salts thereof. In another embodiment, the bisphosphonate is alendronate, etidronic acid, zoledronic acid, or medronic acid, with the P:Ca molar ratio as defined above.
[0086] In some embodiments, the calcium content (Ca content) of stabilized ACC containing polyphosphate or bisphosphonate is about 1 wt% to about 39 wt%, about 5 wt% to about 39 wt%, about 10 wt% to about 39 wt%, about 15 wt% to about 39%, about 20 wt% to about 38 wt%, about 25 wt% to about 38 wt%, or about 30 wt% to about 38 wt%. The terms "Ca content" and "calcium content" are interchangeable and used herein to mean the calcium content in the final composition of ACC.
[0087] In certain embodiments, the P:Ca molar ratio is approximately 1:40 to approximately 1:1, and the Ca content is approximately 20 wt% to approximately 39 wt%. In some embodiments, the molar ratio is approximately 1:28 to approximately 1:3, and the Ca content is approximately 30 wt% to approximately 38 wt%. In other embodiments, the molar ratio is approximately 1:25 to approximately 1:5, and the Ca content is approximately 30 wt% to approximately 36 wt%.
[0088] In several embodiments, the stabilizer is selected from the group consisting of polyphosphate, phosphorylated amino acids, bisphosphonates, citric acid, tartaric acid, and any combination thereof. In one embodiment, the polyphosphate is selected from the group consisting of triphosphate, pyrophosphate, and hexametaphosphate, the phosphorylated amino acid is phosphoserine or phosphothreonine, and the bisphosphonate is selected from the group consisting of alendronate, etidronic acid, zoledronic acid, and medronic acid.
[0089] In some embodiments, the stabilized ACC contains less than 20 wt%, less than 15 wt%, less than 10 wt%, or less than 5 wt% of the stabilizer. In some embodiments, the stabilized ACC contains up to 5 wt% of the stabilizer.
[0090] In one embodiment, the average diameter of stabilized ACC primary particles is approximately 10 nm to 5 μm. In another embodiment, the average diameter of ACC primary particles is approximately 30 nm to 400 nm. In yet another embodiment, the average diameter of ACC primary particles is approximately 30 nm to 350 nm. In a particular embodiment, the average diameter of ACC primary particles is approximately 35 nm to 300 nm, 40 nm to 250 nm, 45 nm to 200 nm, 50 nm to 150 nm, or 60 nm to 100 nm. In yet another embodiment, the ACC primary particles are aggregated, and the average diameter of the aggregates is 0.5 μm to 300 μm. In one further embodiment, the diameter of the aggregates of ACC primary particles is approximately 1 to 100 μm, 10 to 50 μm, or 20 to 40 μm. In yet another embodiment, the average diameter of the aggregates of ACC primary particles is 1 μm to 10 μm.
[0091] In any one of the embodiments described above, the final concentration of stabilized ACC in the cell culture medium is approximately 0.1–20 mM, approximately 0.5–15 mM, approximately 1–10 mM, approximately 2–8 mM, approximately 3–6 mM, or approximately 4–5 mM. In a more specific embodiment, the stabilized ACC is present at concentrations of approximately 0.5–4 mM, approximately 1–3 mM, approximately 1.5–2.5 mM, or approximately 1, 1.5, 2, or 2.5 mM. In several embodiments, the concentrations of stabilized ACC in the cell culture medium are approximately 0.0001% w / v to approximately 1% w / v, approximately 0.0005% w / v to approximately 0.5% w / v, approximately 0.001% w / v to approximately 0.1% w / v, approximately 0.005% w / v to approximately 0.05% w / v, and approximately 0.01% w / v to approximately 0.03% w / v.
[0092] In several more specific embodiments, the present invention provides a cell culture medium supplemented with ACC stabilized by at least one stabilizer, where the stabilizer is selected from polyphosphates such as inorganic polyphosphate, phosphorylated amino acids, bisphosphonates, organic acids, and any combination thereof, and the cell culture medium is suitable for (i) muscle, nerve, or bone cell or tissue culture, (ii) human or non-human mammalian embryos, (iii) stem cells, (iv) germ cells, or (v) ovarian growth. In several embodiments, the stabilizer is phosphoserine. In another embodiment, the stabilizer is triphosphate. In yet another embodiment, the stabilizer is a combination of phosphoserine and an organic acid such as citrate. In yet another embodiment, the stabilizer is a combination of triphosphate such as sodium triphosphate and an organic acid such as citrate. In one embodiment, such a cell culture medium is suitable for muscle, nerve, or bone cell or tissue culture. In a more specific embodiment, the cell culture medium can maintain and enhance cell growth, e.g., proliferation, maturation, development, or differentiation. In one embodiment, the cells are nerve cells, more specifically damaged nerve cells. Therefore, in one embodiment, such a cell culture medium can enhance the regeneration of damaged nerves. In another embodiment, the cells are muscle cells, particularly dystrophic muscle cells such as Duchenne muscular dystrophy cells. Therefore, in one embodiment, the cell culture medium can enhance myotubogenesis and / or contraction development. In another embodiment, such a cell culture medium is suitable for the growth of human or non-human mammalian embryos. In one particular embodiment, the cell culture medium is suitable for the growth of human embryos. In a more specific embodiment, the cell culture medium can enhance the development of human embryos. In another embodiment, such a cell culture medium is suitable for the growth of human or non-human mammalian germ cells. In one particular embodiment, the cell culture medium is suitable for the maturation of human germ cells. In a more specific embodiment, the cell culture medium can enhance the maturation of human germ cells.In another embodiment, the cell culture medium enables the maturation of human sperm, for example, by increasing human sperm motility, increasing sperm forward motility, increasing sperm count, and any combination thereof. In a further embodiment, such cell culture media are suitable for the growth of stem cells, particularly human stem cells. In several embodiments, the stem cells are selected from embryonic, chorionic, amniotic, hematopoietic, mesenchymal, neural, glial, adult, and induced pluripotent stem cells. In one embodiment, such cell culture media are suitable for the proliferation and / or differentiation of stem cells. In one particular embodiment, such cell culture media can enhance the differentiation of stem cells such as MBA13 into osteoblasts. In several embodiments, the final concentration of stabilized ACC in the cell culture medium is about 0.1–8 mM, about 0.5–6 mM, about 1–5 mM, or about 2–4 mM. In one embodiment, cell culture media supplemented with stabilized ACC can increase cell growth parameters, such as proliferation, maturation, development, or differentiation, by approximately 10% to 600%, 20% to 500%, 30% to 400%, 40% to 300%, 50% to 200%, 60% to 150%, or 70% to 100%. In several embodiments, growth parameters can be increased by approximately 100% to 500%, 120% to 400%, or 150% to 300%.
[0093] In several embodiments, the present invention provides cell culture media such as split, single culture, or sequential media supplemented with ACC stabilized by at least one stabilizer, where the stabilizer is phosphoserine or sodium triphosphate, optionally used in combination with citrate, and the final concentration of stabilized ACC in the cell culture medium is approximately 0.1–8 mM, approximately 0.5–6 mM, approximately 1–5 mM, or approximately 2–4 mM, and the cell culture medium can enhance growth such as human embryonic development.
[0094] In several embodiments, the present invention provides cell culture media such as ISolate®, PureCeption®, Multipurpose Handling Medium® (MHM®), Quinns® sperm washing medium, Multipurpose Handling Medium® (MHM®), and Gentamicin-supplemented modified HTF medium, supplemented with ACC stabilized by at least one stabilizer, where the stabilizer is phosphoserine or sodium triphosphate, optionally used in combination with citrate, and the final concentration of stabilized ACC in the cell culture medium is approximately 0.1–8 mM, approximately 0.5–6 mM, approximately 1–5 mM, or approximately 2–4 mM, and the cell culture medium can enhance spermatocyte maturation, for example, enabling increased sperm motility, increased sperm forward motility, increased sperm count, and any combination thereof.
[0095] In other embodiments, the present invention provides a cell culture medium supplemented with ACC stabilized by at least one stabilizer, which is phosphoserine, etidronic acid, or sodium triphosphate, and which may be used in combination with citrate, thereby enabling the cell culture medium to enhance nerve cell regeneration.
[0096] In other embodiments, the present invention provides a cell culture medium such as DMEM / F12, or DMEM / F12 supplemented optionally with horse serum (HS), L-glutamine, gentamicin, and insulin, wherein the medium is further supplemented with ACC stabilized with phosphoserine, etidronic acid, or sodium triphosphate, optionally in combination with citrate, wherein the final concentration of stabilized ACC in the cell culture medium is about 0.1–8 mM, about 0.5–6 mM, about 1–5 mM, or about 2–4 mM, and the cell culture medium can enhance the development of myotubogenesis and / or contraction in skeletal muscle cells, such as in cases of Duchenne muscular dystrophy.
[0097] In other embodiments, the present invention provides a cell culture medium supplemented with ACC stabilized with phosphoserine, etidronic acid, or sodium triphosphate, optionally in combination with citrate, which can enhance the differentiation of stem cells, particularly the differentiation of MBA13 into osteoblasts, where the final concentration of stabilized ACC in the cell culture medium is approximately 0.1 to 8 mM, approximately 0.5 to 6 mM, approximately 1 to 5 mM, or approximately 2 to 4 mM.
[0098] In other embodiments, the present invention provides a cell culture medium such as DMEM / F12 having 10% fetal bovine serum (FBS), 2 mM glutamine, 25 μg / mL gentamicin, and 0.3–0.5% NVR-Gel, wherein the medium is further supplemented with ACC stabilized with phosphoserine, etidronic acid, or sodium triphosphate, optionally in combination with citrate, where the final concentration of stabilized ACC in the cell culture medium is about 0.1–8 mM, about 0.5–6 mM, about 1–5 mM, or about 2–4 mM, and the cell culture medium can enhance ovarian preservation.
[0099] In another embodiment, the present invention provides amorphous calcium carbonate (ACC) stabilized with at least one stabilizer for use as a supplement to cell culture media. The terms “supplement” and “cell culture media supplement” are interchangeable and used herein to mean one or more components for addition to cell culture media. In one particular embodiment, the term means stabilized ACC that is added to or intended to be added to cell culture media. In one embodiment, the stabilized ACC is added to the medium during preparation of the medium. In another embodiment, the ACC is added to the medium before use.
[0100] In one embodiment, stabilized ACC is intended for use as a supplement to cell culture media suitable for growing biological cultures.
[0101] In several embodiments, the stabilized ACC of the present invention enhances cell growth when added to cell culture media. Thus, in one embodiment, stabilized ACC for use as a supplement to cell culture media can enhance cell growth. In one embodiment, stabilized ACC used as a supplement to cell culture media enhances the proliferation, maturation, reproduction, regeneration, development, and / or differentiation of cells, tissues, and organs. In one embodiment, ACC for use as a supplement to cell culture media can enhance the differentiation of stem cells. In another embodiment, such ACC for use as a supplement to cell culture media can enhance cell proliferation. In yet another embodiment, ACC for use as a supplement to cell culture media can enhance the maturation of, for example, germs, or enhance the development of cells, for example, embryos. In certain embodiments, ACC for use as a supplement to cell culture media can enhance cell regeneration.
[0102] In one embodiment, cell culture media supplemented with stabilized ACC can enhance cell growth parameters, such as proliferation, maturation, development, or differentiation, by approximately 10% to 600%, 20% to 500%, 30% to 400%, 40% to 300%, 50% to 200%, 60% to 150%, or 70% to 100%. In several embodiments, growth parameters can be enhanced by approximately 100% to 500%, 120% to 400%, or 150% to 300%.
[0103] In some embodiments, the cell culture medium supplement may be added to any known cell culture medium. In some embodiments, the medium is as defined above. In one embodiment, the cell culture medium is selected from natural or artificial media. In one embodiment, the medium is suitable for any biological culture, e.g., cell culture, tissue culture, organ culture, single-celled eukaryotes, or the growth of microorganisms such as bacteria. In one embodiment, the cell culture medium is suitable for the growth of cultures selected from cultures of animal, plant, or insect cells, tissues, and / or organs. In another embodiment, the cell culture medium is suitable for the growth of bacteria or yeast.
[0104] In some embodiments, the animal cell culture is selected from human or non-human mammalian cell cultures, tissue cultures, organ cultures, stem cells, germs, embryos, and organs. In another embodiment, the mammal is a non-human mammal and is, for example, a domestic animal such as a cattle, pig, sheep, goat, horse, mule, donkey, buffalo, or camel; a domestic pet such as a cat or dog; a rodent such as a mouse, rat, guinea pig, or hamster; a lagomorph such as a rabbit; or a primate such as a monkey (e.g., a macaque) or an ape (e.g., a chimpanzee). In some embodiments, stabilized ACC is intended for use as a supplement to cell cultures suitable for the growth of primary or secondary cultures. In some embodiments, stabilized ACC can enhance the growth of the cell line. In some embodiments, stabilized ACC is intended for use as a supplement to cell culture media suitable for the growth of mammalian tissue cultures. In some embodiments, stabilized ACC is intended for use as a supplement to cell culture media suitable for the growth of stem cells. In another embodiment, the stem cells are human or non-human mammalian stem cells.
[0105] In several embodiments, stabilized ACC is intended for use as a supplement to cell culture media suitable for embryo growth. In one embodiment, the cell culture media of the present invention is suitable for embryo maturation and development. In another embodiment, stabilized ACC for use as a supplement to cell culture media can enhance embryo development. In one embodiment, the embryo is a human embryo. In another embodiment, the embryo is a non-human mammalian embryo.
[0106] In several embodiments, stabilized ACC is intended for use as a supplement to cell culture media suitable for the growth of reproductive organisms. In one embodiment, the cell culture media of the present invention is suitable for the maturation or preservation of reproductive organisms. In another embodiment, stabilized ACC for use as a supplement to cell culture media can enhance the maturation or preservation of reproductive organisms, such as sperm or oocytes.
[0107] In another embodiment, stabilized ACC for use as a supplement to cell culture media can enhance the cryopreservation of embryos or germs, as described above.
[0108] In several embodiments, enhancing sperm maturation can be selected from increasing sperm motility, increasing sperm forward motility, increasing sperm count, and any combination thereof. In one embodiment, the sperm are human sperm. In another embodiment, the sperm are non-human mammalian sperm. In several embodiments, stabilized ACC is intended for use as a supplement to cell culture media suitable for organ culture or organ growth. In several embodiments, the organ tissue or organ is selected from the ovary, cornea, heart, kidney, pancreas, liver, spleen, embryo, testis, bladder, and hematopoietic vesicles. In one particular embodiment, the organ tissue or organ is the ovary.
[0109] In several embodiments, stabilized ACC is intended for use as a supplement to cell culture media suitable for the growth of plant or insect cells.
[0110] In several embodiments, stabilized ACC is intended for use as a supplement to cell culture media, which are natural media selected from biological fluids, tissue extracts, and blood clots, or artificial media selected from equilibrated salt solutions, basal media, and compound media, suitable for the growth of animal, plant, or insect cells.
[0111] In some embodiments, stabilized ACC is intended for use as a supplement to cell media selected from DMEM, RPMI1640, MEM, IMDM, L-15 medium (Leibovitz), MCDB medium, Medium 199, opti-MEM and DMEM / F-12, Schneider-Drosophila medium, Grace insect medium, IPL-41 insect medium, Sf-900, serum-free insect medium, Shields and Sang M3 insect medium, TC-100 insect medium, TNM-FH insect medium, Ham F-12, Ham F-10, GMEM, Ames medium, Eagle basal medium (BME), Claycomb, Crick medium, Glasgow minimal essential medium (GMEM), MegaCell medium, McCoy 5A modified medium, NCTC medium, Williams medium E, Weymouth medium, TC-10, and IPL-10 medium. In one embodiment, stabilized ACC is intended for use as a supplement to cell media selected from single media such as Quinn's Advantage® (SAGE) Medium 1-Step®, and sequential media such as Quinn's Advantage®, Sequential Medium (ORIGIO), MEDICULT, Universal IVM, DMEM, RPMI1640, MEM, IMDM, opti-MEM, GMEM, Ham F-, DMEM / F-12, Schneider's Drosophila Medium, Grace Insect Medium, Sf-900, TC-10, IPL-10, B5, N6, and Niche Medium. In several embodiments, stabilized ACC is intended for use as a supplement to sperm or maturation media, fertilization media, embryo development media, and cell media selected from embryo and / or germ maturation, handling and / or cryopreservation media, such as sperm medium, ISolate®, PureCeption®, Multipurpose Handling Medium® (MHM®), Quinns® sperm washing medium, Multipurpose Handling Medium® (MHM®), and gentamicin-enhanced modified HTF medium.
[0112] These embodiments demonstrate that ACC, for use as a supplement to cell culture media, can enhance growth cell culture, tissue culture, or organ culture when added to the cell culture medium.
[0113] In several embodiments, stabilized ACC is intended for use as a supplement to cell culture media suitable for the growth of single-cell eukaryotes. In one embodiment, the single-cell eukaryote is a yeast such as Saccharomyces, more specifically Saccharomyces cerevisiae. In one embodiment, stabilized ACC is intended for use as a supplement to YPD, YPG, or YPAD media.
[0114] In several embodiments, stabilized ACC is intended for use as a supplement to cell culture media suitable for the growth of prokaryotes, such as bacteria. In some embodiments, the bacteria are probiotic bacteria such as Escherichia coli or Bifidobacterium and Lactobacillus. In one embodiment, stabilized ACC is intended for use as a supplement to LB and M9 media.
[0115] These embodiments demonstrate that stabilized ACC for use as a supplement to cell culture media can enhance the growth of the yeast or bacteria when added to the cell culture medium.
[0116] In several embodiments, stabilized ACC is intended for use as a supplement to cell culture media suitable for archaeal growth.
[0117] In some embodiments, the stabilizer is selected from the group consisting of triphosphate, phosphorylated amino acids such as phosphoserine, bisphosphonates, citrate, and any combination thereof, such as a combination of triphosphate and citrate or a combination of phosphoserine and citrate.
[0118] In some embodiments, stabilized ACC for use as a supplement to cell culture media remains stable in the amorphous phase in desiccant form for a period of at least 7 days, at least 1 month, at least 3 months, at least 6 months, or at least 1 year. In other embodiments, when stabilized ACC is dispersed in cell culture medium, it remains stable in the amorphous phase for at least 1 hour, at least 4, 6, 8, 12, or 24 hours, at least 7 days, or at least 1 month.
[0119] In any one of the embodiments described above, stabilized ACC for use as a supplement for cell culture media may be formulated as a solid, liquid, or semi-liquid dosage form. In some embodiments, stabilized ACC for use in the present invention is formulated as a solid dosage form, such as a powder, tablet, capsule, or granules. In one particular embodiment, stabilized ACC for use as a supplement is formulated as a powder. In some embodiments, stabilized ACC for use as a supplement is formulated as a liquid or semi-liquid dosage form. In one embodiment, the liquid dosage form is a suspension or emulsion, and the semi-liquid dosage form is a viscous suspension such as a gel or colloidal suspension. In one particular embodiment, stabilized ACC is formulated as a suspension. Thus, in one embodiment, stabilized ACC for use as a supplement to cell culture media is added to the cell culture medium as a powder or suspension during the preparation of the cell culture medium or before the use of the medium. In one more specific embodiment, stabilized ACC is added as a newly prepared suspension.
[0120] In one embodiment, the average diameter of the stabilized ACC primary particles is approximately 10 nm to 5 μm. In another embodiment, the average diameter of the ACC primary particles is approximately 30 nm to 400 nm. In yet another embodiment, the average diameter of the ACC primary particles is approximately 30 nm to 350 nm.
[0121] In certain embodiments, the average diameter of ACC primary particles is approximately 35 nm to 300 nm, 40 nm to approximately 250 nm, approximately 45 nm to approximately 200 nm, approximately 50 nm to approximately 150 nm, or approximately 60 nm to approximately 100 nm. In another embodiment, the ACC primary particles are aggregated, and the average diameter of the aggregates is 0.5 μm to 300 μm. In one further embodiment, the diameter of the aggregates of ACC primary particles is approximately 1 to approximately 100 μm, approximately 10 to approximately 50 μm, or approximately 20 to approximately 40 μm. In yet another embodiment, the average diameter of the aggregates of ACC primary particles is 1 μm to 10 μm.
[0122] In any one of the embodiments described above, stabilized ACC for use as a supplement to cell culture medium is added to the cell culture medium at a final concentration of about 0.1–20 mM, about 0.5–15 mM, about 1–10 mM, about 2–8 mM, about 3–6 mM, or about 4–5 mM. In a more specific embodiment, stabilized ACC is present at a concentration of 0.5–4 mM, about 1–3 mM, about 1.5–2.5 mM, or about 1, 1.5, 2, or 2.5 mM.
[0123] In several more specific embodiments, the present invention provides ACC stabilized by at least one stabilizer selected from polyphosphates such as organic polyphosphates, phosphorylated amino acids, bisphosphonates, organic acids, and any combination thereof, for use as a supplement to cell culture media suitable for (i) muscle, nerve, or bone cell or tissue culture, (ii) human or non-human mammalian embryos, (iii) stem cells, (iv) germ cells, or (v) ovarian growth. In several embodiments, the stabilizer is phosphoserine. In another embodiment, the stabilizer is triphosphate. In yet another embodiment, the stabilizer is a combination of phosphoserine and an organic acid such as citrate. In yet another embodiment, the stabilizer is a combination of triphosphates such as sodium triphosphate and an organic acid such as citrate. In one embodiment, such a cell culture medium is suitable for muscle, nerve, or bone cell or tissue culture. In one embodiment, the stabilized ACC supplementing the cell culture medium can enhance cell growth, e.g., proliferation, development, maturation, or differentiation. In one embodiment, the cells are nerve cells, more specifically damaged nerve cells. In one embodiment, stabilized ACC for use as a supplement to cell culture media can enhance the regeneration of damaged nerve cells. In another embodiment, the cells are muscle cells, particularly dystrophic muscle cells such as Duchenne muscular dystrophy cells. In one embodiment, stabilized ACC for use as a supplement to cell culture media can enhance the occurrence of myotubulation and / or muscle cell contraction. In one embodiment, stabilized ACC for use as a supplement to cell culture media can enhance the development of human embryos. In one embodiment, stabilized ACC for use as a supplement to cell culture media can enhance the maturation or preservation of germs, particularly sperm. In another embodiment, stabilized ACC for use as a supplement to cell culture media can enhance the cryopreservation of embryos or germs, as described above.In one embodiment, stabilized ACC for use as a supplement to cell culture media can enhance sperm motility, enhance forward sperm motility, increase sperm count, and any combination thereof. In further embodiments, stabilized ACC for use as a supplement can enhance the growth, e.g., proliferation, expansion, and / or differentiation, of stem cells, particularly human stem cells. In some embodiments, stem cells are selected from embryonic, chorionic, amniotic, hematopoietic, mesenchymal, neural, glial, adult, and induced pluripotent stem cells. In one embodiment, cell culture media supplemented with stabilized ACC can enhance cell growth parameters, e.g., proliferation, maturation, development, or differentiation, by about 10% to about 600%, about 20% to about 500%, about 30% to about 400%, about 40% to about 300%, about 50% to about 200%, about 60% to about 150%, or about 70% to about 100%. In several embodiments, the growth parameters can be increased by approximately 100% to 500%, 120% to 400%, and 150% to 300%.
[0124] In several embodiments, the present invention provides stabilized ACC for use as a supplement to split, single culture, or sequential culture media, wherein the stabilizer is phosphoserine or sodium triphosphate, optionally used in combination with citrate, and the stabilized ACC can enhance human embryo development.
[0125] In several embodiments, the present invention provides stabilized ACC for use as a supplement to cell culture media, wherein the agent is phosphoserine, etidronic acid, or sodium triphosphate, and is optionally used in combination with citrate, and the stabilized ACC can enhance nerve cell regeneration.
[0126] In several embodiments, the present invention provides stabilized ACC for use as a supplement to DMEM / F12, or to DMEM / F12 supplemented with horse serum (HS), L-glutamine, gentamicin, and insulin, where the stabilizer is selected from phosphoserine, etidronic acid, or sodium triphosphate, and optionally used in combination with citrate, and the stabilized ACC can enhance myotubulation and / or the occurrence of contraction in skeletal muscle cells, such as in Duchenne muscular dystrophy cases.
[0127] In several embodiments, the present invention provides ACC stabilized with phosphoserine, etidronic acid, or sodium triphosphate, optionally in combination with citrate, for use as a supplement to cell culture media, thereby enhancing stem cell differentiation, particularly the differentiation of MBA13 into osteoblasts.
[0128] In several embodiments, the present invention provides ACC stabilized with phosphoserine, etidronic acid, or sodium triphosphate, optionally in combination with citrate, for use as a supplement to media for sperm separation, washing, or maturation, such as ISolate®, PureCeption®, Multipurpose Handling Medium® (MHM®), Quinns® sperm washing medium, Multipurpose Handling Medium® (MHM®), and Gentamicin-enhanced HTF, thereby enhancing spermatocyte maturation, for example, increasing human sperm motility, increasing forward sperm motility, increasing sperm count, and any combination thereof.
[0129] The present invention provides ACC stabilized with phosphoserine, etidronic acid, or sodium triphosphate, optionally in combination with citrate, for use as a supplement to media such as DMEM / F12 or DMEM / F12 having 10% fetal bovine serum (FBS), 2 mM glutamine, 25 μg / mL gentamicin, and 0.3-0.5% NVR-Gel.
[0130] In some embodiments, the final concentration of stabilized ACC in the cell culture medium is approximately 0.1–8 mM, approximately 0.5–6 mM, approximately 1–5 mM, or approximately 2–4 mM.
[0131] In yet another aspect, the present invention provides a cell culture medium supplement comprising amorphous calcium carbonate (ACC) stabilized with at least one stabilizer.
[0132] In one embodiment, the cell culture medium supplement containing stabilized ACC is added to the medium during preparation. In another embodiment, the supplement is added to the medium just before use.
[0133] In some embodiments, the cell culture medium supplement is a solid supplement. In other embodiments, the supplement is a liquid or semi-liquid supplement.
[0134] In any one of the embodiments described above, ACC is stabilized by at least one stabilizer as defined above. In some embodiments, the stabilizer is selected from the group consisting of polyphosphates such as triphosphate, phosphorylated amino acids such as phosphoserine, bisphosphonates, citrate, and any combination thereof such as triphosphate and citrate or phosphoserine and citrate.
[0135] The cell culture medium supplement of the present invention, containing stabilized ACC, can be added to any of the cell culture media described above. In one embodiment, the cell culture medium supplement containing stabilized ACC can be added to a cell culture medium suitable for biological culture, such as cell culture, tissue culture, organ culture, or organ growth. The cells may be eukaryotes or prokaryotes. In particular, cell culture medium means a medium suitable for growing eukaryotic cells, tissue culture, or organs. In some embodiments, the cell culture is a suspension or adherent cell culture. In some embodiments, the medium may be a complete medium, a basal medium, a basal medium supplemented with the cell culture medium supplement, a medium with varying amounts of serum, or a chemically defined medium.
[0136] In some embodiments, a cell culture medium supplement containing stabilized ACC can enhance the growth of cells or tissues. For example, in one embodiment, a cell culture medium supplement containing stabilized ACC can enhance the proliferation, maturation, reproduction, regeneration, development, and / or differentiation of cells, tissues, or organs. In one embodiment, the supplement can enhance the differentiation of stem cells. In another embodiment, the supplement can enhance the proliferation of cell cultures. In yet another embodiment, the supplement can enhance the maturation and / or development of cells or tissues. In certain embodiments, the supplement can enhance cell regeneration. In some embodiments, the cells are eukaryotic cells. In one embodiment, the eukaryotic cells are animal, plant, or insect cells. In further embodiments, the culture of animal cells is selected from human or non-human mammalian cell cultures, tissue cultures, organ cultures, stem cells, germs, embryos, and organs. In some embodiments, the mammal is human, and the culture of human cells is selected from human cell cultures, tissue cultures, and organ cultures. In other embodiments, the mammal is a non-human mammal. In several embodiments, the cell culture, which is either human or non-human mammalian cell culture, is selected from cell cultures of nerve, muscle, epithelial, bone, adipose, stem cells, germ cells, and blood cells. In one embodiment, a cell culture medium supplemented with stabilized ACC can increase cell growth parameters, such as proliferation, maturation, development, or differentiation, by about 10% to about 600%, about 20% to about 500%, about 30% to about 400%, about 40% to about 300%, about 50% to about 200%, about 60% to about 150%, or about 70% to about 100%. In several embodiments, growth parameters can be increased by about 100% to about 500%, about 120% to about 400%, or about 150% to about 300%.
[0137] In some embodiments, a cell culture medium supplement containing stabilized ACC may be added to a cell culture medium suitable for yeast growth, the cell culture medium being selected from YPD, YPG, and YPAD.
[0138] In some embodiments, a cell culture medium supplement containing stabilized ACC may be added to a cell culture medium suitable for prokaryotic growth, the medium being selected from LB and M9.
[0139] In several embodiments, cell culture medium supplements containing stabilized ACC can enhance the growth of yeast and bacteria.
[0140] In several more specific embodiments, the present invention provides a cell culture medium supplement comprising ACC stabilized by at least one stabilizer, where the stabilizer is selected from phosphorylated amino acids, polyphosphates, bisphosphonates, organic acids, and any combination thereof. In several embodiments, the supplement is added to a cell culture medium suitable for (i) muscle, nerve, or bone cell or tissue culture, (ii) human or non-human mammalian embryos, (iii) stem cells, (iv) reproductive organs, or (v) ovarian growth. In several embodiments, the stabilizer is phosphoserine. In another embodiment, the stabilizer is triphosphate. In yet another embodiment, the stabilizer is a combination of phosphoserine and an organic acid such as citrate. In yet another embodiment, the stabilizer is a combination of triphosphate, such as sodium triphosphate, and an organic acid such as citrate. In more specific embodiments, the cell culture medium supplement can enhance cell growth, e.g., proliferation, differentiation, development, or maturation. In one embodiment, such a cell culture medium supplement can enhance the regeneration of damaged nerve cells. In another embodiment, such a cell culture medium supplement can enhance myotube formation and / or promote the development of myotube contraction. In a further embodiment, such a cell culture medium supplement can enhance embryonic development, such as human embryos. In a further embodiment, such a cell culture medium supplement can enhance the maturation or preservation of reproductive organs, particularly sperm. In one particular embodiment, such a cell culture medium supplement can enhance the cryopreservation of embryos or reproductive organs, as described above. In one embodiment, such a cell culture medium is suitable for the proliferation and differentiation of stem cells. In several embodiments, the stem cells are selected from embryonic, hematopoietic, mesenchymal, neural, glial, adult, and induced pluripotent stem cells. In another embodiment, such a cell culture medium supplement can enhance the differentiation of stem cells. In one particular embodiment, the cell culture medium supplement can enhance the differentiation of stem cells such as MBA13 into osteoblasts.In one embodiment, cell culture media supplemented with stabilized ACC can increase cell growth parameters, such as proliferation, maturation, development, or differentiation, by approximately 10% to 600%, 20% to 500%, 30% to 400%, 40% to 300%, 50% to 200%, 60% to 150%, or 70% to 100%. In several embodiments, growth parameters can be increased by approximately 100% to 500%, 120% to 400%, or 150% to 300%.
[0141] In several embodiments, the present invention provides a cell culture medium supplement comprising ACC stabilized optionally in combination with citrate by at least one stabilizer selected from phosphoserine, etidronic acid, or sodium triphosphate. In one embodiment, the supplement is added to split, single culture, or sequential medium to enhance human embryo development. In one embodiment, the supplement is added to a medium for sperm separation, washing, or maturation, such as ISolate®, PureCeption®, Multipurpose Handling Medium® (MHM®), Quinns® sperm washing medium, Multipurpose Handling Medium® (MHM®), or Gentamicin-supplemented modified HTF medium to enhance reproductive maturation or preservation, particularly of sperm. In another embodiment, such a supplement is added to a cell culture medium suitable for nerve cell growth to enhance nerve cell regeneration. In further embodiments, the supplement is added to DMEM / F12 medium, or DMEM / F12 medium optionally further supplemented with equine serum (HS), L-glutamine, gentamicin, and insulin, thereby enhancing myotubogenesis in skeletal muscle cells, such as in Duchenne muscular dystrophy cases. In yet another embodiment, the supplement is added to cell culture medium suitable for stem cell growth, thereby enhancing stem cell differentiation, particularly the differentiation of MBA13 into osteoblasts. In other embodiments, the supplement is added to DMEM / F12, or a medium such as DMEM / F12 having 10% fetal bovine serum (FBS), 2 mM glutamine, 25 μg / mL gentamicin, and 0.3–0.5% NVR-Gel, thereby enhancing ovarian preservation. In some of the above embodiments, the final concentration of stabilized ACC in the cell culture medium is about 0.1–8 mM, about 0.5–6 mM, about 1–5 mM, or about 2–4 mM.
[0142] In any one of the above embodiments, the term "includes" means "consisting of," and therefore, in such embodiments, the cell culture medium supplement consists of ACC stabilized with at least one stabilizer.
[0143] In a further embodiment, the present invention provides amorphous calcium carbonate (ACC) stabilized with at least one stabilizer and formulated as a supplement for cell culture media.
[0144] In certain embodiments, the present invention provides a method for enhancing the growth of a biological culture, the method comprising exposing the culture to ACC stabilized with at least one stabilizer. In one embodiment, the biological culture is selected from eukaryotic cells, tissues, or organs, and prokaryotic cells.
[0145] In other embodiments, the method includes enhancing the growth of biological cultures such as cells, tissues, and organs, e.g., growth, maturation, reproduction, regeneration, differentiation, and / or development.
[0146] In one embodiment, cell culture is selected from animal, plant, or insect cell cultures. In another embodiment, tissue culture is selected from animal, plant, or insect tissue cultures. In a further embodiment, organ culture is selected from animal, plant, or insect organ cultures. In some embodiments, the animal is human or a non-human mammal. In certain embodiments, the non-human mammal is selected from domestic animals such as cattle, pigs, sheep, goats, horses, mules, donkeys, buffalo, or camels; domestic pets such as cats or dogs; rodents such as mice, rats, guinea pigs, or hamsters; lagomorphs such as rabbits; and primates such as monkeys (e.g., macaques) or apes (e.g., chimpanzees).
[0147] In several embodiments, the mammalian cells, whether human or non-human mammalian cell cultures, are selected from nerve, muscle, epithelial, bone, fat, stem cells, germ cells, and blood cells. In one embodiment, the tissue culture is selected from epithelial, connective, muscle, and nerve tissue cultures. In several more specific embodiments, the tissue culture is selected from kidney, liver, gland, brain, bone, eye, and muscle tissue cultures. In several embodiments, the organ tissue or organ is selected from ovaries, cornea, heart, kidney, pancreas, liver, spleen, embryo, testes, bladder, and blood vesicles. In one particular embodiment, the organ tissue or organ is the ovary.
[0148] In one embodiment, the present invention provides a method for enhancing muscle cell growth. In another embodiment, enhancing muscle cell growth includes enhancing myotube formation. In several embodiments, the present invention also includes reducing the time to spontaneous contraction activity of the myotubes. The time to spontaneous contraction activity is defined as the time required for myoblasts to fuse and contract spontaneously. In one embodiment, the muscle cells formed from the myoblasts are selected from skeletal muscle cells or cardiomyocytes. In a more specific embodiment, the muscle cells are skeletal muscle cells. In several embodiments, the method includes enhancing myotube formation and / or contraction in skeletal muscle cells, such as in a case of Duchenne muscular dystrophy.
[0149] In other embodiments, the method includes enhancing nerve cell growth. In one embodiment, enhancing nerve cell growth includes enhancing and promoting nerve cell regeneration. Thus, in one embodiment, the method includes enhancing the regrowth of axons and dendritic nerve fibers in the peripheral and central nervous systems, and / or sprouting from damaged nerve fibers.
[0150] In some embodiments, the method includes enhancing the maturation or preservation of reproductive organisms, for example, enhancing the in vitro maturation or preservation of sperm or oocytes. In some embodiments, the reproductive organisms are selected from human or non-human mammalian reproductive organisms. In one embodiment, the reproductive organism is sperm. Thus, in one aspect, the present invention provides a method for enhancing or improving the maturation of sperm, the method comprising exposing the culture to ACC stabilized with at least one stabilizer.
[0151] One embodiment of improving sperm quality is selected from the group consisting of increasing sperm motility, increasing sperm forward motility, increasing sperm count, and any combination thereof.
[0152] In some embodiments, increasing sperm count involves increasing sperm count in a motility or progressive motility treatment. In one embodiment, the motility or progressive motility treatment is a swim-up method.
[0153] In any one of the embodiments described above, the sperm is either human or non-human mammalian sperm. In some embodiments, the non-human mammal is selected from the group consisting of domestic animals, pets, rodents, wild animals, and primates.
[0154] In one embodiment, the domesticated animal is selected from cattle, pigs, sheep, goats, horses, mules, donkeys, buffalo, and camels. In some other embodiments, the domestic pet is a cat or a dog, the rodent is a rat, mouse, guinea pig, or hamster, the lagomorph is a rabbit, and the primate is a monkey like a macaque or an ape like a chimpanzee.
[0155] In another embodiment, the sperm are non-mammalian sperm. In some embodiments, the non-mammals are selected from the group consisting of fish, insects, and birds.
[0156] In one embodiment, the sperm are human sperm. In another embodiment, the method includes enhancing embryonic development in vitro.
[0157] In some embodiments, the method involves enhancing stem cell differentiation and / or proliferation. In some embodiments, the stem cells are selected from embryonic, chorionic, amniotic, hematopoietic, mesenchymal, neural, glial, adult, and induced pluripotent stem cells. In one embodiment, the method involves enhancing stem cell differentiation, such as the differentiation of MBA13 into osteoblasts.
[0158] In one embodiment, cell culture media supplemented with stabilized ACC can increase cell growth parameters, such as proliferation, maturation, development, or differentiation, by approximately 10% to 600%, 20% to 500%, 30% to 400%, 40% to 300%, 50% to 200%, 60% to 150%, or 70% to 100%. In several embodiments, growth parameters can be increased by approximately 100% to 500%, 120% to 400%, or 150% to 300%.
[0159] In some embodiments, the cell culture is a bacterial or yeast culture, and therefore, in such embodiments, the method includes enhancing the growth of yeast or bacteria. In some embodiments, the bacteria are probiotic bacteria such as Escherichia coli or bacteria of the genera Bifidobacterium and Lactobacillus. In any one of the embodiments, exposure of cells to ACC stabilized with at least one stabilizer includes adding said ACC to a cell culture medium. The terms “expose to” and “contact with” mean, as used herein interchangeably, adding or transferring cells to a medium containing the component of interest, such as stabilized ACC, or adding a component such as ACC to a medium in which cells are grown or cultured. The cell medium may be any medium known in the prior art. In some embodiments, the medium is as defined above. In one embodiment, the cell culture medium is selected from a natural medium or an artificial medium. In some embodiments, the natural medium includes a biological fluid selected from plasma, serum, lymph, human placental umbilical cord blood, and amniotic fluid. In another embodiment, the natural medium includes tissue extracts such as liver, spleen, tumor, lymphocyte, and bone marrow extracts, as well as bovine and chicken embryo extracts. In a further embodiment, the natural medium includes a coagulant or blood clot. In some embodiments, the medium is an artificial medium supplemented with ACC stabilized with at least one stabilizer. In one embodiment, the artificial medium is an equilibrated salt solution. Examples of equilibrated salt solutions are PBS, DPBS, HBSS, EBSS, Tyrod T6, WM1, Pool P1, Quinn HTF, and Gardner G1. In another embodiment, the artificial medium is a basal medium. In some embodiments, the medium may be further supplemented as is well known in the prior art. In one embodiment, the medium is supplemented with serum, for example, fetal bovine serum. In a further embodiment, the artificial medium is a compound medium.
[0160] In one embodiment, the artificial medium is a serum-free medium. In a further embodiment, the artificial medium is a medium with reduced serum content. In another embodiment, the artificial medium is a protein-free medium.
[0161] In one embodiment, the method applies to single media such as DMEM, EMEM, RPMI1640 medium, Eagle basal medium (BME), Ham F-10, Ham-12, DMEM / F-12, IMDM, Opti-MEM, GMEM, IPL-41 insect medium, Schneider's Drosophila medium, Gries insect medium, serum-free insect medium, Sf-900, TC-10, Shiekls and Sang M3 insect medium, TC-100 insect medium, TNM-FH insect medium, IPL-10, Quinn's Advantage® (SAGE) Medium 1-Step®, and Quinn's This involves adding stabilized ACC to a cell culture medium selected from sequential media such as Advantage™ division medium, Murashigesuku-G (MS), B5, N6, Niche medium, NCTC medium, MegCell medium, Claycom, Crick medium, L-15 medium, 199 medium, MCDB medium, Ames medium, BGJb medium, Crick medium, CMRL-1066 medium, McCoy 5A modified medium, NCTC medium, Swim S-77 medium, Weymouth medium, William medium E, in vitro maturation medium, Menezo B2 and B3 medium, Behr blastocyst medium, Gardner G2 universal medium IVM (ORIGIO), and sequential medium for embryo development. In one embodiment, the method includes adding stabilized ACC to a cell culture medium selected from sperm separation media, sperm washing media, and maturation media, such as ISolate®, PureCeption®, Multipurpose Handling Medium® (MHM®), Quinns® sperm washing medium, Multipurpose Handling Medium® (MHM®), and Gentamicin-enhanced HTF medium. In one embodiment, the method includes adding stabilized ACC to a cell culture medium selected from fertilization media, embryo development media, or media for embryo and / or reproductive maturation, handling, and / or cryopreservation.
[0162] In some embodiments, cells are grown as cultures immobilized or attached to carriers such as Cytodex1 or 3, Cytopore2, polystyrene, gelatin, dextran, polyacrylamide, or other alternative carriers.
[0163] In several embodiments, the cell culture medium is suitable for the growth of unicellular eukaryotes. In one embodiment, the unicellular eukaryote is a yeast such as Saccharomyces, more specifically Saccharomyces cerevisiae. In one embodiment, the method comprises adding stabilized ACC to a cell culture medium suitable for the growth of unicellular eukaryotes such as Saccharomyces cerevisiae, the cell culture medium being selected from yeast extract peptone dextrose (YPD), yeast extract-peptone-glycerol (YPG), and yeast extract-peptone-dextrose (YPAD) medium.
[0164] In several embodiments, the cell culture medium is suitable for the growth of prokaryotes, for example, bacteria such as Escherichia coli or probiotic bacteria such as Bifidobacterium and Lactobacillus. In one embodiment, the method involves adding stabilized ACC to a medium suitable for the growth of bacteria such as LB or M9.
[0165] In any one of the embodiments described above, stabilized ACC is added to the cell culture medium according to any one of the embodiments at a final concentration of approximately 0.1 to 20 mM, 0.5 to 15 mM, 1 to 10 mM, 2 to 8 mM, 3 to 6 mM, or 4 to 5 mM. In a more specific embodiment, stabilized ACC is present at a concentration of 0.5 to 4 mM, 1 to 3 mM, 1.5 to 2.5 mM, or 1, 1.5, 2, or 2.5 mM.
[0166] In one embodiment, ACC is formulated in solid, liquid, or semi-liquid dosage forms. In one particular embodiment, stabilized ACC is added in the form of a suspension. In yet another embodiment, the suspension is a newly prepared suspension.
[0167] In any one of the embodiments described above, ACC is stabilized by at least one stabilizer as defined above. In a particular embodiment, the ACC stabilizer is, independently in each presence, an organic acid; a phosphorylated, phosphonically oxidized, sulfonated, or sulfonated organic compound; a phosphoric acid or sulfuric acid ester of a hydroxyl carboxylic acid; an organic amine compound; an organic compound containing hydroxyl; an organic phosphite compound or its salt; a phosphorylated amino acid and its derivatives, bisphosphonates; an organic phosphoric acid compound; an organic phosphonic acid compound; an organic polyphosphate, an inorganic polyphosphate, an inorganic phosphite, an organic compound having multiple functional groups as defined above; an inorganic phosphoric acid and polyphosphate compound; an organic compound having a polyphosphate chain; an organic surfactant; a bioessential inorganic ion; a saccharide and its derivatives, a protein, a phosphorylated protein, a natural and synthetic biopolymer and its derivatives, or a combination thereof. In another embodiment, the stabilizer is selected from the group consisting of phosphoserine, adenosine triphosphate, adenosine diphosphate, phytic acid, citric acid, etidronic acid, pyrophosphate, polyphosphate, triphosphate, ethanol, hexamethane phosphate, chitin, and any combination thereof. The compound is as defined above. In some embodiments, ACC is stabilized by more than one stabilizer, for example, two or three stabilizers.
[0168] In some embodiments, the stabilizer is selected from the group consisting of triphosphate, phosphorylated amino acids such as phosphoserine, bisphosphonates, citrate, and any combination thereof, such as a combination of triphosphate and citrate or a combination of phosphoserine and citrate.
[0169] In another aspect, the present invention provides a method for preparing a cell culture medium comprising amorphous calcium carbonate (ACC) stabilized with at least one stabilizer, the method comprising adding stabilized ACC to the cell culture medium.
[0170] In certain embodiments, the present invention provides a kit comprising amorphous calcium carbonate (ACC) stabilized with at least one stabilizer, and instructions for using the ACC in combination with a cell culture medium. In one embodiment, the stabilized ACC is ACC for use as a cell culture medium supplement. In one embodiment, the present invention provides a kit comprising calcium chloride, sodium carbonate, at least one stabilizer, and instructions for preparing stabilized ACC from calcium chloride, sodium carbonate, and at least one stabilizer, and instructions for using the stabilized ACC in combination with a cell culture medium. In one embodiment, calcium chloride, sodium carbonate, and / or at least one stabilizer exist as aqueous solutions.
[0171] In another embodiment, the kit includes a cell culture medium supplement comprising ACC stabilized with at least one stabilizer, and instructions for using the supplement in combination with the cell culture medium. In one embodiment, the cell culture medium supplement consists of ACC stabilized with at least one stabilizer.
[0172] In any one of the embodiments described above, the kit further comprises the cell culture medium defined above. Thus, in one embodiment, the kit comprises ACC stabilized with at least one stabilizer, cell culture medium, and instructions for use. In other embodiments, the kit comprises a cell culture medium supplement containing ACC stabilized with at least one stabilizer, medium, and instructions for use.
[0173] ACC and cell culture media stabilized with at least one stabilizer are as described above.
[0174] In some embodiments, the stabilizer is selected from the group consisting of triphosphate, phosphorylated amino acids such as phosphoserine, bisphosphonates, citrate, and any combination thereof, such as a combination of triphosphate and citrate or a combination of phosphoserine and citrate.
[0175] In some embodiments, the ACC composition includes the combination of stabilizers disclosed above.
[0176] In any one of the embodiments described above, stabilized ACC may be formulated as a solid, liquid, or semi-liquid formulation. Therefore, in one embodiment, stabilized ACC for use as a supplement to cell culture media is formulated as a solid, liquid, or semi-liquid. In some embodiments, stabilized ACC is formulated in solid dosage forms, such as powder, tablets, capsules, or granules. Therefore, in one particular embodiment, stabilized ACC for use as a supplement to cell culture is formulated as a powder. In other embodiments, stabilized ACC for use as a supplement is formulated as a liquid or semi-liquid. In one embodiment, the liquid dosage form is a suspension or emulsion, and the semi-liquid dosage form is a gel or colloid. In one specific embodiment, stabilized ACC is formulated as a suspension. Therefore, in one embodiment, stabilized ACC, formulated as a powder or suspension, is added to the cell culture medium before use. In one even more specific embodiment, stabilized ACC is added as a freshly prepared suspension.
[0177] The kit of the present invention may further include a cell culture medium. The cell culture medium is well known in the prior art, and any medium may be used. In some embodiments, the cell culture medium is suitable for growing a biological culture, which is selected from cell culture, tissue culture, organ culture, or organ. The cell culture may be a culture of eukaryotic cells or prokaryotic cells. In particular, the cell culture medium means a medium suitable for growing eukaryotic cell culture, tissue culture, or organ. In some specific embodiments, the medium may be a complete medium, a basal medium, a basal medium supplemented with cell culture medium supplements, a medium having varying amounts of serum, or a chemically defined medium.
[0178] In some embodiments, the cell culture medium is selected from DMEM, RPMI1640, MEM, IMDM, L-15 medium (Leibovitz), MCDB medium, medium 199, opti-MEM and DMEM / F-12, Schneider-Drosophila medium, Grace insect medium, IPL-41 insect medium, Sf-900, serum-free insect medium, Shields and Sang M3 insect medium, TC-100 insect medium, TNM-FH insect medium, Ham F-12, Ham F-10, GMEM, Ames medium, Eagle basal medium (BME), Claycomb, Crick medium, Glasgow minimal essential medium (GMEM), MegaCell medium, McCoy 5A modified medium, NCTC medium, Williams medium E, Weymouth medium, TC-10, and IPL-10 medium. In one particular embodiment, the cell culture medium is selected from single media such as Quinn's Advantage® (SAGE) Medium 1-Step®, sequential media such as Quinn's Advantage® Divided Medium, MEDICULT, Universal IVM, DMEM, RPMI1640, MEM, IMDM, opti-MEM, GMEM, Ham F-, DMEM / F-12, Schneider's Drosophila Medium, Grace Insect Medium, Sf-900, TC-10, IPL-10, B5, N6, or niche media. Further examples of media include media for sperm separation such as ISolate®, PureCeption®, and Multipurpose Handling Medium® (MHM®), as well as media for sperm washing such as Quinn's® Sperm Washing Medium, Multipurpose Handling Medium® (MHM®), and Gentamicin-HEPES-enhanced HTF Medium. In other embodiments, the culture medium is a medium for oocyte maturation, such as SAGE® In Vitro Maturation Medium (IVM) and BO-IVM Oocyte Maturation Medium. In further embodiments, the cell culture medium is a medium for fertilization, a medium for embryo development, a medium for germ handling, a medium for preimplantation genetic diagnosis (PGD), and a medium for embryo and / or germ maturation, handling, and / or cryopreservation.
[0179] In some embodiments, the cell culture medium is suitable for yeast growth, and the cell culture medium is selected from YPD, YPG, and YPAD.
[0180] In some embodiments, the cell culture medium is suitable for the growth of prokaryotes, and the medium is selected from LB and M9.
[0181] In one embodiment, the present invention provides a kit comprising calcium chloride, sodium carbonate, at least one stabilizer, instructions for preparing stabilized ACC, and instructions for using the stabilized ACC in combination with cell culture medium. In several embodiments, calcium chloride and sodium carbonate are present as aqueous solutions. In one embodiment, at least one stabilizer is present as one or two separate solutions. In one embodiment, instructions for preparing ACC include instructions for mixing a solution containing calcium chloride and at least one stabilizer with sodium carbonate, and for adding a solution containing at least one stabilizer.
[0182] In some embodiments of the present invention, the terms "can be enhanced" and "enhance" are used interchangeably in some embodiments.
[0183] In any one of the above embodiments, the term "includes" includes the meaning of "consist of" and can be substituted by it.
[0184] As used herein, the term "about" means, when referring to a measurable value such as a quantity or a temporary period, to include a variation of ±10%, ±5%, ±1%, or even ±0.1% from the specified value.
[0185] While the present invention is described in general terms here, similar matters will be more readily understood by referring to the examples described later, which are illustrated with figures and are not intended to limit the invention. example Example 1. Effects of ACC in SC-DRG coculture
[0186] method
[0187] Culture medium
[0188] The culture medium consisted of 90% calcium-depleted (calcium ion-free medium, specially prepared) Dulbecco's Modified Eagle Medium-Nutrient Mixture F-12 (DMEM-F12), 10% heat-inactivated fetal bovine serum (FBS), 6 g / L D-glucose, 2 mM glutamine, 25 μg / mL gentamicin, and 0.05 ng / mL insulin growth factor 1 (IGF-I) (all purchased from Biological Industries, Israel).
[0189] NVR-Gel as a substrate for nerve culture
[0190] Neural and Vascular Reconstruction Gel (NVR-Gel, proprietary to NVR Labs) is composed of two main components: high molecular weight hyaluronic acid (HA, 3 × 10⁻¹⁴). 6 It consists of Da (BTG, Israel) and laminin (Sigma). In neuronal cell cultures, 1% NVR-Gel was diluted in culture medium to a final concentration of 0.3–0.5%. The gel has a viscous liquid composition, which allowed the incorporated cells or explants to easily and properly adhere to a plastic or glass substrate, enabling nerve fiber growth in a 3D pattern of nerve fibers.
[0191] Preparation of nerve tissue cultures
[0192] All experiments were conducted and sanctioned by a local ethics committee approved by the Israeli authorities for animal experimentation. Static tissue cultures of dorsal root ganglia (DRG) and spinal cord (SC), as well as cultures of isolated brain cells, were prepared from rat fetuses (15 days gestation, Lewis inbreed, harlan, Israel). Immediately after excision, the isolated tissue was cut into small sections (400 μm thick) using a Macwain tissue chopper. Two tissue culture methods were used in these tests. In the first method, the tissue pieces were directly seeded into 12-well culture plates containing 1 mL of culture medium with 0.3-0.5% NVR-Gel. In the second method, the tissue pieces were further dissociated with trypsin-EDTA for 30 minutes and washed with culture medium. Subsequently, the dissociated cells were added to a suspension of chitosan powder or gastric bezoar powder (microcarrier, MC) and incubated in the suspension at 37°C for 4 days. The resulting suspension cells / MC aggregates were collected and seeded onto 12-well culture plates containing 1 mL of culture medium with 0.3-0.5% NVR-Gel.
[0193] Ca 2+ Supplement sources
[0194] Ca 2+ The sources (shown in the table below) were added to the gel once at the seeding stage and then to the nutrient medium at each subsequent replenishment at a final concentration of 1 or 2 mM. The calcium sources were ACC-etidronic acid (ACC-ET) (fresh suspension), ACC-phosphoserine (ACC-PS) (fresh suspension), gastrolith (dissolved in 0.1 M HCl and neutralized with 1 M NaOH), gastrolith powder, aqueous suspension of CCC-crystalline calcium carbonate (commercial nanoparticle powder), and CaCl2 solution - control.
[0195] The culture was monitored daily by phase-contrast microscopy, starting 24 hours after the culture was set to progress.
[0196] A suspension of fresh ACC preparations consisted of particles that formed a stable suspension. Gastroliths are natural ACC isolated from crabs and can only be purchased as a dry powder. In this dosage form, other characteristic components (such as calcium ions and proteins) are not available to cells. To enhance their bioavailability, the gastrolith powder was dissolved in 0.1 M HCl (mimicking the acidity present in the stomach) and then neutralized with 1 M NaOH.
[0197] Immunofluorescence staining of nerve cultures
[0198] After removing the culture medium, the dorsal root ganglion (DRG) cultures were washed with phosphate-buffered saline (PBS), fixed with 4% formaldehyde for 15 minutes, and washed again with PBS. The fixed cells were permeabilized with PBS containing 0.1% Triton X-100, and then immunoblocked at room temperature for 1 hour with PBS containing 1% bovine serum albumin (BSA) (to avoid nonspecific staining). The specimens were then incubated with anti-neuronal filament rabbit antibody (NF, Novus Biologicals, 1:500) to visualize neurite growth. The primary antibody was diluted with PBS containing 0.1% BSA and 0.05% Tween 20 (dilution buffer) and incubated with the specimens at 4°C overnight. After rinsing with PBS (wash buffer) containing 0.05% Tween 20, the DRG specimens were incubated at room temperature for 1 hour with the secondary antibody, Alexa-Flour-594-conjugated donkey anti-rabbit IgG (Jackson ImmunoResearch, USA, 1:800 in dilution buffer). Finally, the samples were rinsed again with wash buffer and mounted using mounting medium (Immco Diagnostic, USA). All images were observed using an Olympus IX70 microscope.
[0199] result
[0200] The effects of various calcium preparations were tested in SC-DRG co-cultures. Generally, the cultures contained 400-micron SC fragments along with adhered or isolated DRG fragments. All of the tested ACC preparations (ACC-ET, ACC-PS, and gastric bezoar) significantly enhanced nerve fiber regeneration compared to CCC and CaCl2. Table 1 shows the effects of various calcium preparations (2 mM Ca 2+ The image shows a portion of explants (out of 6 cases) representing nerve fibers that sprouted after 4 days of culture in the presence of ACC-ET (at a concentration of ACC) or stabilizer alone (stabilizer was added to each well at a concentration of 0.05% (from a 5% stock solution)). The strongest sprouting was observed in cultures exposed to ACC-ET (100% of explants), followed by ACC-PS and gastroliths (66.6% of explants). CCC and CaCl2 induced nerve sprouting from only 50% of explants, and the percentage was even lower (0-33%) with stabilizer alone. During culture establishment (after the first week of culture), until nerve network formation, regenerated nerve fibers became longer, thicker, and more branched when exposed primarily to various ACC preparations (Figure 1).
[0201] [Table 1] Example 2. Effects of ACC in brain culture
[0202] The effect of ACC was tested in cultures of brain cells-MC aggregates seeded on gel after 4 days in suspension (see the methods section of Example 1). The results are shown in Figure 2, demonstrating that ACC significantly enhanced nerve fiber regeneration compared to calcium chloride. This is particularly evident when comparing the number and length of nerve fibers between the two treatments. Example 3 - Effects of ACC preparations in healthy skeletal muscle cells
[0203] method
[0204] Preparation of skeletal muscle cultures
[0205] Static skeletal muscle cultures were prepared from healthy 1-day-old neonatal rats (Sprague-Lee, Harlan, Israel). Muscle tissue was excised from the hind leg and completely chopped. Digestion was carried out with trypsin-EDTA, gently crushing the tissue. After 30 minutes, the supernatant containing the excised cells was collected and fresh trypsin-EDTA was added. This procedure was repeated more than twice. All supernatant was then pooled and centrifuged, and the cell pellet was resuspended in growth medium. Cells were placed on a gelatin-coated 12-well culture medium plate, with 1 × 10⁶ cells per plate. 5 The cells were seeded in 1 mL of growth medium containing cells per well. After 2 days, the medium was changed to fusion medium and replaced twice a week. The culture was monitored daily by phase-contrast microscopy starting 24 hours after the culture was established. On designated days, the culture was fixed with methanol for 20 minutes and stained with Giemsa to evaluate the number of myotubes formed during the culture period.
[0206] Gelatin-coated culture plate
[0207] A stock solution containing 1% porcine gelatin in water was sterilized using an autoclave. After cooling, 500 μL of the solution was added to each well of a 12-well culture plate. After incubation at room temperature for 20 minutes, excess solution was removed and cells were seeded.
[0208] Growth medium
[0209] During the proliferation stage, cells use DMEM / F12 (1 mM Ca 2+ The cells were cultured in (containing) + 10% FBS, 25 μg / mL gentamicin, and 2 mM L-glutamine.
[0210] Fusion medium
[0211] In the fusion stage, the growth medium is changed to the fusion medium, which is DMEM / F12 (1 mM Ca 2+It was prepared with), 2% horse serum (HS), 2 mM L - glutamine, 25 μg / mL gentamicin, and 4 units / 100 mL insulin (all purchased from Biological - Industries, Israel).
[0212] List of calcium preparations tested
[0213] The fusion medium was increased to 1 mM Ca by various calcium preparations listed in Table 2 2+ concentration (since the medium already contained 1 mM calcium ions, the final concentration of Ca 2+ was 2 mM). Control cultures were grown without further addition of calcium or the cultures were increased with a free (soluble) stabilizer. The experiments were blinded by simply assigning an arbitrary number to each of the various calcium preparations.
[0214] The components were added by one of the methods: (i) an aqueous suspension of the dried material, (ii) an aqueous suspension of the fresh material (before drying), or (iii) dissolution in HCl (mimicking the acidity present in the stomach. After dissolution, the resulting solution was neutralized with 1 M NaOH).
Table 2
[0215] Results
[0216] Effect of dried ACC on healthy skeletal muscle
[0217] In the first step, dried ACC powder was used. The powder (shown in Table 2 according to the stabilizers used in these preparations) was suspended in water and then added to the culture medium at a concentration of 1 mM. Since the medium already contained 1 mM calcium ions, Ca 2+The final concentration was 2 mM. The results, some of which are shown in Figure 3 (left), showed that cultures exposed to ACC already exhibited early myotube formation within 4 days of culturing, with no significant difference between different ACC preparations. In control cultures exposed to added CCC or CaCl2, myotube formation was observed later. After 7 days, cultures treated with ACC showed numerous long, thick muscle fibers, while cultures treated with CCC and CaCl2 developed fewer, thinner, and shorter muscle fibers (Figure 3, right).
[0218] It should be noted that muscle contraction was observed as early as 7 days after seeding in cultures exposed to ACC preparations, while muscle contraction only appeared after 10 days in cultures exposed to added CCC or CaCl2.
[0219] Based on the in vitro results, it was concluded that all ACC preparations enhance myotubular formation and initial muscle contraction in healthy striated muscle cultures. Example 4. Duchenne muscular dystrophy - Evaluating the effect of ACC in muscle cell lines - In vitro study
[0220] method
[0221] mdx cell preparation
[0222] The effects of different calcium preparations were investigated using mdx cell lines (Duchenne muscular dystrophy model) generously provided by Professor (Emerita) David Yaffe of the Weizmann Institute of Science in Israel.
[0223] In a 12-well culture plate coated with gelatin, a cell line derived from the MDX cell line was placed, with 3 × 10 cells per well. 4 Seeds were seeded in 1 mL of growth medium containing cells / well. After 2 days (approximately 66% density), the medium was changed to fusion medium and replaced twice a week. Various calcium preparations were added separately to the fusion medium according to the treatments described in Table 3. The culture was maintained with various calcium preparations until 1 mM Ca 2+The concentration was increased. The culture medium already contained 1 mM calcium ions, so Ca 2+ The final concentration was 2 mM. [Table 3]
[0224] The effects of the tested calcium carbonate preparations on cell proliferation, myotube fusion, and muscle contraction were monitored daily by phase-contrast microscopy. On designated days, the cultures were fixed with methanol for 20 minutes and stained with Giemsa to evaluate the number of myotubes formed during the culture period.
[0225] Creatinine kinase (CK) analysis in muscle tissue culture
[0226] In muscle cell culture, CK is an indicator of myotube formation, and CK levels increase (in tissue culture plates) in a positive correlation with the development of myotube formation in muscle culture. On a predetermined day, cells are collected from the culture wells (using a rubber-polisman) and 1 mL of PBS (Ca) until analysis. 2+ The samples were maintained at -70°C (without additives). For CK measurement, cell samples were divided into smaller portions and physically dissolved using an ultrasonic device to release CK from the myotubes. CK concentration was measured using a creatinine kinase activity assay kit (CK-NAC REAGENT SET, CURTISS, CHEM-INDEX INC, Hialeah, FL, USA).
[0227] result
[0228] The results of the aforementioned experiment are shown in Figures 4 and 5. As clearly shown, the addition of ACC enhanced myotubular cell fusion and formation more than the addition of a conventional calcium source (CaCl2). This remarkable result was demonstrated by both biochemical (CK activity) and morphological (microscopic) analyses (Figures 4 and 5). Furthermore, in cultures exposed to the ACC preparation, muscle contraction was observed as early as 7 days after seeding, whereas in the control group, this only appeared after 10 days. Therefore, it can be concluded that the addition of ACC supplementation has the potential to treat DMD patients. Example 5. Effects of calcium sources in primary MDX mouse cells.
[0229] method
[0230] Extraction of primary cells
[0231] Thigh muscle was isolated from the hind leg of neonatal (1-day-old) mdx mice under sterile conditions and washed with PBS to remove excess blood cells. The muscle was cut into small fragments. For enzymatic dissociation, the muscle fragments were added to a beaker containing trypsin-EDTA solution (0.25 mM). To ensure cell separation, the mixture was placed in a stirrer and gently stirred at room temperature for 20 minutes. The mixture was collected and centrifuged at 300 × g for 5 minutes. The pellet was resuspended in PBS containing DMEM. The triplin treatment step was repeated more than three times. All supernatant was collected in a single test tube. Cell separation was measured visually (using a phase-contrast microscope). Cell density was measured using a hemocytometer.
[0232] Place cells in a 12-well plate in a 2x10⁶ arrangement. 5 The culture medium used was DMEM / F12 W / O Ca with 15% FBS, 2 mM L-glutamine, and gentamicin (25 μg / ml) added. 2+ The calcium was added separately to the culture medium according to the procedures described in Table 4. On the second day (approximately 66% concentration), the culture medium was combined into a fused medium (Ca 2+ The culture medium was changed to untreated, 10% HS, insulin (4 units / 100mL), and gentamicin (25μ / mL). The medium was changed every 3 days. [Table 4]
[0233] Cell proliferation and fusion were monitored qualitatively on a daily basis. Cultures were fixed on days 2, 3, 4, 5, and 7 and stained with Giemsa or myosin antibodies.
[0234] result
[0235] The results are shown in Figures 6 and 7. The effective efficacy of the ACC formulation was demonstrated compared to the control group, particularly by myotube formation at earlier time points, days 3 and 4. The difference in formed myotubes became indistinguishable by days 5 and 7. There was a high correlation between Giemsa staining and staining for myosin. Improvement of embryonic development in ACC supplement medium Example 6.
[0236] material and method
[0237] CBA male mice were mated with BL C57 female mice. The mice were maintained in a 12-hour light-dark cycle with unlimited water and food supply. Six to eight weeks after obtaining offspring, each female mouse was intraperitoneally injected with 5 IU of pregnant mare serum gonadotropin (PMSG).
[0238] 48 hours later, each female mouse was intraperitoneally injected with 5 IU of human chorionic gonadotropin (hCG). A male mouse with proven reproductive capabilities was placed with the superovulating female. The following morning, the female mice were examined for the presence of a vaginal plug. Females with a vaginal plug were euthanized 24 hours later (approximately 36 hours after mating), and the fallopian tubes were dissected in Quinn's Advantage cleavage medium (SAGE, Origio, Denmark). Embryos were transferred to 20 μL droplets of Quinn's Advantage cleavage medium (SAGE, Origio, Denmark) layered with mineral oil, and cultured at 37°C under 5% CO2 and atmospheric oxygen to recover 2-cell stage embryos from the fallopian tubes. The collected embryos were grown to the blastocyst / hatching stage, i.e., continued in vitro culture (IVC). To test the effects of amorphous calcium carbonate, Quinn's Advantage cleavage medium (hereinafter, "cleavage medium") was supplemented with different additives: amorphous calcium carbonate stabilized with polyphosphate (ACC-PP), crystalline calcium carbonate (CCC), polyphosphate (PP), phosphoserine (PS), or sodium carbonate (NaCO3). All supplements were added as freshly prepared suspensions, and the preparation of the ACC supplement was carried out under sterile conditions. Untreated cleavage medium (without any additives) was used as a control (indicated as ContQ). Embryos were evaluated daily by microscopic observation to detect the stages of development: 2-cell, densification, blastocyst formation, and hatching. The percentage of embryos that reached each stage was calculated (the number of 2-cell embryos was set to 100%).
[0239] result
[0240] Embryo development in cleavage medium supplemented with 1.7 mM amorphous calcium carbonate stabilized with PP (ACC-PP) was compared to that of a control (development in untreated ContQ medium). The number of embryos at each developmental stage and their proportions relative to the initial number of embryos (the latter shown in parentheses) are shown in Table 5. [Table 5] Example 7.
[0241] Embryo development in cleavage medium supplemented with either ACC-PP or calcium chloride (CaCl2) at a concentration of 1.7 mM was tested in two separate tests (A and B). In Test A, embryos were allowed to develop to the blastocyst stage, and in Test B, they were allowed to develop to the hatching stage. The number of embryos at each developmental stage and their percentages relative to the initial number of embryos (in parentheses) are shown in Table 6 (Test A) and Table 7 (Test B). [Table 6] [Table 7] Example 8.
[0242] Embryo development in cleavage medium supplemented with 1.7 mM CaCl2, 1.7 mM ACC-PP, or 0.85 mM ACC-PP (half the initial concentration of ACC-PP, identified as ACC-PP0.85). The number of embryos at each developmental stage and their percentages (in parentheses) relative to the initial number of embryos are shown in Table 8. [Table 8] Example 9.
[0243] Embryo development was tested in cleavage medium supplemented with 1.7 mM CaCl2 and 1.7 mM or 0.85 mM ACC-PP (ACC-PP0.85) and compared to development in untreated medium. The number of embryos at each developmental stage and their percentages relative to the initial number of embryos (in parentheses) are shown in Table 9. [Table 9] Example 10.
[0244] In this experiment, four 5-month-old female mice were euthanized. Embryos obtained from each mouse were collected as described in Materials and Methods, but the embryos were not pooled together. Instead, embryos from each oviduct of each mouse were grown separately in culture in either cleavage medium supplemented with 1.7 mM CaCl2 or 1.7 mM ACC-PP. This method allowed for the evaluation of differences between mice, as the embryos obtained from each female were siblings. The number of embryos at each developmental stage and their percentages relative to the initial number of embryos (in parentheses) are shown in Table 10. [Table 10] Example 11.
[0245] In this experiment, seven 6-month-old female mice were euthanized. Embryos were collected from each mouse as described in Materials and Methods, except that from mice No. 1 and 2, the embryos were not pooled together but grown separately as in Example 5. Embryos obtained from mouse No. 1 were grown in either untreated cleavage medium or medium supplemented with 2.6 mM ACC-PP (ACC-PP2.6). Embryos obtained from mouse No. 2 were grown in cleavage medium supplemented with 1.3 mM or 0.6 mM ACC-PP (represented as ACC-PP1.3 and ACC-PP0.6, respectively). Embryos obtained from mice No. 3–7 were all pooled together and grown with the addition of 1.6 mM polyphosphate (PP). Furthermore, the diameter and volume of the blastocysts were calculated. The number of embryos at each developmental stage and their percentages relative to the initial number of embryos (in parentheses) are shown in Table 11. [Table 11]
[0246] Blastocysts grown and hatched with the addition of 2.6 mM ACC-PP had a 28% larger diameter and twice the volume compared to the control. Example 12.
[0247] In this experiment, seven 6-month-old female mice were euthanized. Embryos obtained from each mouse were collected as described in Materials and Methods (Example 6). The embryos were pooled together and divided into five groups, and grown in untreated cleavage medium (ContQ), or in medium supplemented with 2.6 mM, 1.3 mM, and 0.6 mM ACC-PP (represented as ACC-PP2.6, ACC-PP1.3, and ACC-PP0.6, respectively), or 1.6 mM polyphosphate (PP). The number of embryos at each developmental stage and their percentages relative to the initial number of embryos (in parentheses) are shown in Table 12. [Table 12] Example 13.
[0248] In this experiment, six 6-month-old female mice were euthanized. Embryos obtained from each mouse were collected as described in Materials and Methods. The embryos were pooled together and divided into three groups: one group was used as a control (ContQ), and the embryos in the other two groups were grown in divide medium supplemented with 3.3 mM ACC-PP (ACC-PP3.3) or 3.3 mM commercially available nanometer crystalline calcium carbonate (CCC). All media were prepared under sterile conditions. The number of embryos at each developmental stage and their percentages relative to the initial number of embryos (in parentheses) are shown in Table 13. [Table 13] Example 14.
[0249] In this experiment, six 7-month-old female mice were euthanized. Embryos were collected from each mouse as described in Materials and Methods (Example 6). The embryos were pooled together and grown in cleavage medium supplemented with 1.7 mM CaCl2, 1.7 mM ACC-PP, 0.8 mM ACC-PP (ACC-PP0.8), or 1.7 mM phosphoserine (PS). The number of embryos at each developmental stage and their proportions to the initial number of embryos (in parentheses) are shown in Table 14. [Table 14]
[0250] In this particular experiment, the addition of calcium chloride negatively affected embryonic development, resulting in a lower rate of blastocysts and hatched blastocysts. Example 15.
[0251] In this experiment, six 6-month-old female mice were euthanized. Embryos obtained from each mouse were collected as described in Materials and Methods (Example 6), except that embryos from mice No. 1 and 2 were grown separately as a sibling experiment, rather than pooled together (see Example 10). Embryos from female No. 1 were grown in untreated cleavage medium or medium supplemented with 1.7 mM nanometer crystalline calcium carbonate (CCC). Embryos from mouse No. 2 were grown in medium supplemented with 1.7 mM ACC-PP or 1.7 mM sodium carbonate (NaCO3). Embryos from mice No. 3–6 were all pooled together and grown in untreated medium or medium supplemented with 1.7 mM NaCO3 or 1.7 mM ACC-PP. Furthermore, the diameter and volume of the blastocysts were calculated (see Table 15). [Table 15]
[0252] The addition of sodium carbonate resulted in significantly poorer embryonic development compared to the control or the addition of ACC-PP. Blastocysts hatched in cleavage medium supplemented with 2.6 mM ACC-PP were found to have a 28% larger diameter and twice the volume compared to the control. Example 16. Preparation of 10% TP-1% citrate ACC (ACC stabilized with 10% triphosphate and 1% citrate) formulated as a cell culture medium supplement.
[0253] 36 ml of 3% calcium chloride solution was mixed with 4 mL of 0.27% citric acid solution and 10 mL of 0.5406% triphosphate solution. 40 mL of 1.9485% sodium carbonate solution was added to precipitate ACC. 10 mL of a stabilizing solution containing 0.5406% triphosphate was added to the ACC suspension to obtain a stabilized ACC suspension. The resulting suspension was used as a supplement in Quinn’s™ cleavage medium or Quinn’s™ 1-Step medium. The suspension was added to a final ACC concentration of 1.7 or 3.4 mM. Alternatively, the suspension was filtered through a Buchner funnel, the solid material was washed with water, and the solid material was further dried in an oven or the like. The powder was added to the cleavage medium to a final concentration of 1.7 or 3.4 mM. Example 17.
[0254] In this experiment, four 6- to 8-month-old female mice were euthanized. Embryos obtained from each mouse were collected as described in the materials and methods. Stabilized ACC (ACC stabilized with 10% triphosphate and 1% citric acid) was prepared as described in Example 16. Embryos obtained from each female were separated, and the first part was grown in untreated SAGE1-Step™ medium and the second part was grown in SAGE1-Step™ medium supplemented with 1.7 mM ACC-PP or 3.4 mM ACC-PP. As can be seen from FIG. 8, the addition of stabilized ACC had a positive effect on embryo development, and in particular, 3.4 mM ACC resulted in a high percentage of blastocysts and hatched blastocysts. It has surprisingly been found that embryos grown in cleavage medium supplemented with stabilized ACC showed rapid cleavage and a high hatching rate. Example 18. Preparation of ACC formulated as a cell culture medium supplement
[0255] Compositions of ACC stabilized by different stabilizers (prepared with tripolyphosphate (TP), hexametaphosphate (HMP), pyrophosphate (Pyr), phosphoserine (PS), etidronic acid (ET), zoledronic acid (ZA), or medronic acid (MA)) were prepared. In a typical procedure, a calcium solution (300 mL of water, 24 g of calcium chloride, and the stabilizer) and a carbonate solution (200 mL of water and 17.3 g of sodium carbonate) were mixed together to precipitate ACC. A stabilizer solution (100 mL of water and the stabilizer, Table 16 shows the content of the stabilizer in the calcium and stabilizer solutions) was added to the ACC suspension to obtain a stabilized ACC suspension. The suspension can be used as a supplement. Then the ACC was filtered through a Buchner funnel and the solid was washed with water. The suspension was dried to obtain a powder. The powder can be added as a cell culture medium supplement or resuspended in an aqueous medium and added as a suspension.
Table 16
[0256] In other examples, the composition was prepared by adding citric acid to the calcium solution to obtain 1% citric acid in the final composition, as described above. The suspension itself was used as a culture medium supplement. Alternatively, the suspension was further washed with water and dried to obtain a powder. The powder can be added to any cell culture medium or resuspended in an aqueous medium. Example 19. Growth of MBA13 Stem Cells (Bone Marrow Stromal Cells) into Osteoblasts
[0257] Materials and Methods
[0258] Two days after thawing, MBA-13 cells (obtained from Professor Dov Zipori at the Weizmann Institute of Science) were resuspended in recombinant trypsin solution. MSC Nutristem® XF basal medium (Biological Industries, cat No. 05-200-1A) was supplemented with mesenchymal stem cell (MSC) supplementation medium (Biological Industries cat No. 05-201-06) in a ratio of 50 ml:300 μL, and 1 × 10⁶ cells were placed in a 96-well plate. 4 Seeds were seeded at a concentration of cells / well (Day 0). Rows A-H of columns 1-4 of a 96-well plate were placed in PBS (Ca 2+ Mg 2+ The plates were pre-coated with MCS adhesive solution diluted to a ratio of 1:100 (without ions). Rows A to H of rows 5 to 8 of a 96-well plate were pre-coated with 0.1% gelatin at room temperature for 30 minutes.
[0259] On the second day, when cell density exceeding 80% was achieved (approximately 48 hours), the culture medium was replaced with MSCgo rapid osteogenic medium (cat No. 05-442-1B), which contains factors that promote osteoblast differentiation. After the medium change, rows A-C were supplemented with 1 mM additional calcium (total 2.488 mM calcium) derived from amorphous calcium carbonate (ACC) stabilized with 10% triphosphate + 1% citrate, rows D-F were supplemented with 1 mM additional calcium (total 2.488 mM calcium) derived from calcium chloride, and row G of the plate was treated with MSCgo medium (total 1.488 mM calcium). Row H of the plate was treated with MSC NutriStem® XF basal medium + supplement mixture (total 1.488 mM calcium).
[0260] On the fourth day, the culture medium was replaced with a fresh ACC preparation.
[0261] In parallel, control plates were also seeded with MDX cell lines derived from damaged muscle tissue of MDX mice. Staining of these cells was used to establish the intrinsic calcium background staining of the cells and to eliminate the possibility of staining calcium deposition from ACC treatment. Before seeding, the wells were coated with gelatin, which was used as a standard substrate for MDX cell adhesion. MDX cells were seeded in 3 × 10⁶ wells on a 24-well plate. 4 The fertilizer was added at a concentration of 1 / well. The sowing date was set as "day 0".
[0262] On the second day, the culture medium in the wells was changed as follows:
[0263] Rows 1 and 2 were treated with in-house prepared spinal cord (SC) medium (containing 0.6 wt% D-glucose, 2 mM L-glutamine, 25 μg / mL gentamicin, B27, N2, 0.1 mg / mL BSA, Hepes, 10% FBS, DMEM / F12, and 50 ng / mL IGF-I) + 1 mM calcium from ACC (total calcium concentration of 2 mM). Rows 3 and 4 were treated with SC medium + 1 mM calcium from CaCl2. Rows 5 and 6 were treated with SC medium. Both cell types (MBA13 and MDX) were cultured until day 10.
[0264] Fixation of several wells for each type (20 minutes in 4% formaldehyde) was performed on days 5, 7, and 10 after medium change, i.e., on days 7, 9, and 12 of the experiment.
[0265] After fixing the cells, extracellular calcium or bone deposits were stained using two staining reagents to evaluate osteoblast function. (i) Alizarin Red (Sigma, A55333) and (ii) alkaline phosphatase (DAKO, BCIP / NBT substrate system K0598) were as follows:
[0266] Alizarin Red Staining Procedure - pH was adjusted to 4.2. Cells were washed twice with PBS, fixed with chilled ethanol for 5 minutes, and then washed again with PBS. Alizarin solution was used at a concentration of 2% for 15-20 minutes. After staining incubation, samples were washed 2-3 times with water to remove nonspecific staining.
[0267] Alkaline phosphatase staining: Cells were washed once or twice with PBS, then fixed with 4% paraformaldehyde for 20 minutes. They were then washed three times with PBS to remove any remaining PBS, and the cells were covered with three drops of BCIP / NBT kit solution. An empty well containing no cells was included as a control to improve the quality of the measurement. The alkaline phosphatase kit was incubated for 1 hour, then rinsed with distilled water.
[0268] result
[0269] The results of cells cultured for 10 days and stained with alizarin and alkaline phosphatase are shown. Observations performed 10 days prior showed little to no calcium deposition in either staining method.
[0270] Cellular conditions were observed using a light microscope (without fixation) at two time points, on days 2 and 4. In both observations, cells seeded in wells pre-coated with MSC adhesion solution were not in good condition and were rounded. In contrast, cells seeded in wells pre-coated with gelatin were in good condition. However, it was decided to continue with both types of pre-coating. The following results and staining procedures relate to cell growth in gelatin used as the adhesion substrate.
[0271] In alizarin red staining, calcium deposits are detected by an orange-red color.
[0272] Alizarin red staining demonstrated a very strong signal in osteoblasts supplemented with ACC, compared to those supplemented with CaCl₂ which showed only a weak signal (Figure 9). In addition to the signal, large calcium depositions were stained, as can be seen in the figure and were not observed in any of the control treatments.
[0273] Alizarin red staining of cells grown in MSCgo rapid medium also showed some staining of calcium depositions, but the size and amount of the depositions were significantly lower, similar to the morphology and amount observed in CaCl₂-supplemented cells. Calcium depositions were not observed in cells grown in MSC NutriStem+ supplement (MSCsup, theta not shown). MSC NutriStem+ supplement medium is usually used to induce cell proliferation rather than cell differentiation. Indeed, although the number of cells observed is high, calcium depositions are not observed.
[0274] The observations suggest that ACC treatment enhances MBA13 cell differentiation into osteoblasts and increases cellular calcium deposition, i.e., enhances these functionalities.
[0275] Another independent marker for osteoblast differentiation is alkaline phosphatase. This enzyme is maximally expressed when the cell matrix maturation period occurs. Alkaline phosphatase staining was used as a supplementary method to detect osteoblast differentiation and functionality and to verify the results obtained by alizarin staining.
[0276] Alkaline phosphatase staining was shown as black, and the results are shown in Figure 10. MBA13 cells treated with ACC showed a strong signal compared to other treatments. Indeed, alkaline phosphatase staining corroborates that osteoblast differentiation is superior in cultures treated with ACC.
[0277] Alizarin staining of MDX cells treated with ACC-supplemented medium for 10 days after seeding showed no significant difference in staining between treatments (see Figures 11A-C). These results support the conclusion that the alizarin red staining of osteoblasts is due to calcium deposition by osteoblasts and not to ACC deposition caused by the treatment itself (i.e., it is not an experimentally artificial result).
[0278] Alkaline phosphatase staining of MDX cell lines (Figure 11D-E) showed no osteogenesis. Interestingly, enhanced myotubogenesis was observed in ACC-treated cells compared to cells grown in CaCl2-supplemented medium or control, according to alkaline phosphatase staining.
[0279] conclusion
[0280] Independent staining, using alizarin red and alkaline phosphatase staining 10 days after seeding in different media, showed significantly stronger staining of osteoblast deposition grown in ACC-supplemented media compared to the control used.
[0281] When cells were grown in the presence of ACC, large calcium deposition plaques were observed, but such deposition was not observed in cells grown in CaCl2-supplemented medium. Since staining showed more plaque deposition, a strong signal may indicate high functionality. The results obtained by MDX cell staining suggest that the plaques are a direct result of osteoblast function, rather than being due to ACC addition. Example 20. ACC for improving sperm motility
[0282] material and method
[0283] ACC Supplement Preparation
[0284] 36 ml of 3% calcium chloride solution was mixed with 4 ml of 0.3% citric acid solution and 10 ml of 0.5% triphosphate solution. 40 ml of 2% sodium carbonate solution was added to precipitate ACC. 10 ml of a stabilizing solution containing 0.5% triphosphate was added to the ACC suspension to obtain a stabilized ACC suspension. The calcium element concentration of the resulting suspension was 75 mM.
[0285] Sperm collection
[0286] Sperm were collected three times from the same sheep (Experiment 1) or twice from three sheep (Experiments 2 and 3), and their concentration and motility were evaluated at room temperature. The sperm were diluted to a concentration of 50 million cells / mL in synthetic fallopian tube fluid (SOF) containing 107.70 mM NaCl, 7.16 mM KCl, 1.19 mM KH2PO4, 1.71 mM CaCl2, 0.49 mM MgCl2, 25.07 mM NaHCO3, 3.30 mM sodium lactate, and 1.50 mM glucose (10) in Milli-Q water. The molar osmotic concentration was 270 mOsmol and the pH was 7.55.
[0287] Sperm motility was then evaluated using CASA (The Riogenology, 2014, Volume 81, Issue 1, Pages 5-17), and the sperm were cooled to 4°C at a rate of 1°C / min.
[0288] Swim-up method
[0289] The swim-up method was performed at 38°C. 10 μL of protosperm was added to a 1 mL Eppendorf vial and incubated for approximately 1 hour in SOF medium inserted into a 0.25 mL straw (CBS, France). After 40–60 minutes, the sperm in the straw was added to a slide and evaluated by CASA.
[0290] result
[0291] The motility of newly collected sperm was tested with or without amorphous calcium carbonate, as described in the Materials and Methods section. The results are shown in Table 17. [Table 17]
[0292] Sperm supplemented with ACC showed significantly higher forward motility compared to untreated sperm. Example 21. Effect of ACC on sperm motility in swim-up experiments.
[0293] To evaluate the effect of ACC on sperm motility, standard swim-up experiments were performed in the presence of ACC suspensions at 17 μL / mL and 34 μL / mL (1.3 mM and 2.6 mM Ca, respectively). Viable sperm were counted after 1 hour, and the results are summarized in Table 18. [Table 18]
[0294] The addition of ACC clearly demonstrated a significant increase in the number of viable sperm in all experiments. The number of viable sperm was 2 to 7 times higher in ACC-supplemented samples compared to untreated samples. Example 22. Effect of ACC concentration on sperm motility in swim-up experiments
[0295] The effect of ACC concentration on sperm motility was tested using a swim-up experiment with three different samples for each ACC. The results are summarized in Table 19. [Table 19]
[0296] The addition of a 17 μL / mL ACC suspension to fallopian tube fluid (SOF) solution and incubation at 38°C for 1 hour increased the concentration of motile sperm by at least threefold. Interestingly, higher concentrations of ACC did not decrease the concentration of motile sperm after the swim-up method. ACC increased sperm concentration after the swim-up method and did not exhibit any biphasic effect with ionic calcium. Any ACC concentration above the minimum effective dose increased motility. Example 23. ACC preserves the ovaries in vitro.
[0297] material and method
[0298] Ovaries were collected from mice (6 weeks old) and cut into 0.4 mm × 0.4 mm sections. The ovaries were cultured in 12-well plates. The culture medium consisted of 90% calcium-depleted (calcium ion-free medium, specially prepared) Dulbecco's Modified Eagle Medium-Nutrient Mixture F-12 (DMEM-F12), 10% fetal bovine serum (FBS), 2 mM glutamine, 25 μg / mL gentamicin, and 0.3-0.5% NVR-Gel, with or without the addition of 3.4 mM stabilized ACC-PP. After 48 hours of culture, 5 IU of pregnant mare serum gonadotropin (PMSG) was added to the culture dish.
[0299] result
[0300] Figure 12 shows that secondary follicles developed two weeks after in vitro culture in the presence of stabilized ACC, with complete granulosa cells surrounding the oocyte. In contrast, secondary follicles in the control group showed incomplete granulosa cells and germ follicular oocytes. A considerably larger number of follicles were observed in the ACC group, indicating that the addition of ACC to the culture medium enabled rapid and superior follicular growth and improved ovarian preservation.
[0301] The present invention has been described herein by means of its preferred embodiments, but may be modified without departing from the spirit and nature of the invention as set forth in the appended claims.
Claims
1. A cell culture medium wherein the cell culture medium is supplemented with amorphous calcium carbonate (ACC) stabilized with at least one stabilizer, wherein the ACC enhances the growth of human or non-human mammalian cell cultures selected from nerve cell cultures, muscle cell cultures, epithelial cell cultures, osteocyte cultures, adipocyte cultures, stem cell cultures, and hematopoietic cell cultures, wherein the stabilizer is selected from the group consisting of inorganic polyphosphates containing 2 to 10 phosphate groups, phosphorylated amino acids, and combinations of inorganic polyphosphates containing 2 to 10 phosphate groups and organic acids, and the growth is selected from at least one of proliferation, maturation, reproduction, regeneration, or differentiation of the cell culture.
2. The cell culture medium according to claim 1, wherein the cells are selected from nerve cells, muscle cells, and stem cells.
3. The cell culture medium according to claim 2, wherein the cell culture is a primary cell culture or a cell line selected from finite and continuous cell lines.
4. The cell culture medium according to claim 3, wherein the cell line is selected from the FM3, HeLa, 293, A-549, ALC, CHO, HB54, HL60, COS-7, HEK293, VERO, BHK, CVl, MDCK, 3T3, C127, MRC-5, BAE-1, SH-SY5Y, L-929, HEP G2, NSO, U937, NAMALWA, WEHI 231, YAC 1, and U 266B1 cell lines.
5. The cell culture medium according to claim 1, wherein the stem cells are selected from embryonic, chorionic, amniotic, hematopoietic, mesenchymal, neural, NOM, glial, adult, and induced pluripotent stem cells.
6. The cell culture medium according to claim 1, wherein the medium is a natural medium selected from biological fluids, tissue extracts, and blood clots, or an artificial medium selected from equilibrated salt solutions, basal media, and complex media.
7. The cell culture medium according to claim 6, wherein the culture medium is a serum-free medium.
8. The cell culture medium according to claim 6 or 7, wherein the cell culture medium is selected from DMEM / F12, Divided Medium, DMEM, RPMI1640, MEM, IMDM, L-15 Medium (Leibovitz), MCDB Medium, Medium 199, Opti-MEM, Ham F-12, Ham F-10, GMEM, Ames Medium, Eagle Basal Medium (BME), Claycomb, Crick Medium, Glasgow Minimum Essential Medium (GMEM), MegaCell Medium, McCoy 5A Modified Medium, NCTC Medium, Williams Medium E, Weymouth Medium, TC-10, or IPL-10 Medium.
9. The cell culture medium according to claim 1, wherein the stabilizing agent is triphosphate.
10. The cell culture medium according to claim 1, wherein the cell culture medium enhances (i) nerve cell regeneration, (ii) muscle tissue formation, or (iii) stem cell differentiation.
11. The cell culture medium according to any one of claims 1 to 10, wherein the cell culture medium does not contain a calcification-activating cocktail (MAC).
12. Amorphous calcium carbonate (ACC) stabilized with at least one stabilizer for use as a supplement to cell culture media, wherein the stabilizer is selected from inorganic polyphosphates containing 2 to 10 phosphate groups, phosphorylated amino acids, and inorganic polyphosphates containing 2 to 10 phosphate groups in combination with organic acids, and the ACC enhances the growth of human or non-human mammalian cell cultures selected from nerve cell cultures, muscle cell cultures, epithelial cell cultures, osteocyte cultures, adipocyte cultures, stem cell cultures, and hematopoietic cell cultures, wherein the growth is selected from at least one of proliferation, maturation, reproduction, regeneration, or differentiation of the cell culture.
13. A cell culture medium supplement comprising amorphous calcium carbonate (ACC) stabilized by a stabilizer selected from inorganic polyphosphate containing 2 to 10 phosphate groups, phosphorylated amino acids, and inorganic polyphosphate containing 2 to 10 phosphate groups in combination with organic acids, wherein the ACC in the supplement enhances at least one of the proliferation, maturation, reproduction, regeneration, or differentiation of human or non-human mammalian cell cultures selected from nerve cell cultures, muscle cell cultures, epithelial cell cultures, osteocyte cultures, adipocyte cultures, stem cell cultures, and hematopoietic cell cultures.
14. (i) The supplement according to claim 13, or (ii) A stabilizer selected from calcium chloride, sodium carbonate, inorganic polyphosphate containing 2 to 10 phosphate groups, phosphorylated amino acids, and inorganic polyphosphate containing 2 to 10 phosphate groups combined with an organic acid, and instructions for preparing stabilized ACC from the calcium chloride, sodium carbonate, and the stabilizer. including and Instructions for use of the stabilized ACC or supplement combined with the cell culture medium for preparing the cell culture medium, wherein the ACC in the supplement medium obtained herein enhances the growth, maturation, reproduction, regeneration, or differentiation of human or non-human mammalian cell cultures selected from nerve cell cultures, muscle cell cultures, epithelial cell cultures, osteocyte cultures, adipocyte cultures, stem cell cultures, and hematopoietic cell cultures. A kit that includes, The kit also includes, optionally, cell culture medium.
15. A method for enhancing the growth of a human or non-human mammalian cell culture selected from nerve cell cultures, muscle cell cultures, epithelial cell cultures, osteocyte cultures, adipocyte cultures, stem cell cultures, and hematopoietic cell cultures, comprising exposing the cell culture or tissue culture to ACC stabilized with an ACC selected from an inorganic polyphosphate containing 2 to 10 phosphate groups, phosphorylated amino acids, and an inorganic polyphosphate containing 2 to 10 phosphate groups combined with an organic acid, wherein the growth of the cell culture or tissue culture is selected from at least one of maturation or development of a biological culture, and the biological culture is selected from cell cultures, tissue cultures, organ cultures, and stem cells.
16. The method according to claim 15, wherein the cell culture is selected from nerve, muscle, epithelial, bone, fat, stem cell, and blood cell cultures.
17. The method according to claim 16, comprising enhancing the formation of myotubes.
18. The method according to claim 17, further comprising shortening the time it takes for the contractile activity of the early-developed myotubes to occur.
19. The method according to claim 17 or 18, wherein the muscle cells formed from the myotubules are selected from skeletal muscle cells and cardiomyocytes.
20. The method according to claim 16, comprising promoting nerve cell regeneration.
21. The method according to claim 16, comprising promoting stem cell differentiation and / or proliferation.
22. The method according to any one of claims 16 to 21, wherein exposing the biological culture to ACC stabilized with the stabilizer includes adding the ACC to a cell culture medium.