WO2017053845A1 - Media for culturing epithelial cells - Google Patents
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- WO2017053845A1 WO2017053845A1 PCT/US2016/053510 US2016053510W WO2017053845A1 WO 2017053845 A1 WO2017053845 A1 WO 2017053845A1 US 2016053510 W US2016053510 W US 2016053510W WO 2017053845 A1 WO2017053845 A1 WO 2017053845A1
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Definitions
- the present invention relates to the field of cell culture, in particular to culture media for epithelial cell cultures, e.g., human mammary epithelial cell cultures.
- HMEC human mammary epithelial cells
- Cell culture is a method for growing or maintaining cells in vitro under controlled conditions.
- Primary cell cultures refer to dispersed cells that are cultured directly from tissues and have limited lifespan, whereas cell lines refer to immortalized cells that can be cultured indefinitely.
- Normal human epithelial cells in culture have generally shown a limited
- Typical cell culture media contain a mixture of defined nutrients dissolved in a buffered physiological saline solution. Most culture media contain salts, amino acids, sugar, vitamins and other organic nutrients. The basal media is used as a starting point for the addition of various supplements to generate a complete growth medium.
- basal cell medium for cell culture applications is primarily dependent on the chemical definition of the basal medium, the type of cell to be grown, and the culture system being employed.
- Stampfer et al "Enhanced growth medium and method for culturing human mammary epithelial cells," US 4,423,145, discloses methods for isolating and culturing human mammary epithelial cells of both normal and malignant origin.
- stampfer et al. "Increasing cell culture population doublings for long-term growth of finite life span human cell cultures," US 8,962,325 discloses a cell culture medium for culturing pre-stasis human mammary epithelial cells (HMEC), the medium being a mixture of two media, (i) and (ii), namely a medium (i) with serum, that is one of MM or MM4 medium and (ii) a different, serum-free medium, with defined ingredients for growth of human mammary epithelial cells, the mixture containing 30% to 60% of medium (i) and 40% to 70% of serum free medium (ii), the culture medium further comprising between about 0.05 nM and about 5.0 nM of an anti- stress associated compound that is oxytocin.
- HMEC pre-stasis human mammary epithelial cells
- Stampfer et al. "Continuous human cell lines and method of making same," US 4,808,532, discloses substantially genetically stable continuous human cell lines derived from normal human mammary epithelial cells (HMEC).
- HMEC normal human mammary epithelial cells
- MM medium mitotic activity in pre- stasis HMEC was visible after forty-eight hours, and there was subsequent rapid growth to near confluence within 5-8 days after seeding.
- the deposited cell lines of the present invention were derived from cells grown in the MM medium.
- Pre-stasis cell growth in MCDB 170 medium was slower, 10-14 days being required to achieve confluence (cells grown in this latter medium were not used to provide the deposited cells lines of the subject invention, although equivalent cells lines may emerge using MCDB 170).
- hydrocortisone epidermal growth factor, ethanolamine, phosphoethanolamine, and bovine pituitary extract.
- Replacement of pituitary extract with prostaglandin El and ovine prolactin yields a defined medium that supports rapid clonal growth and serial subculture for three or four passages.
- 8,936,939 discloses a medium that supports growth and/or proliferation of primary breast epithelial progenitor cells without detectable genetic alterations.
- a medium “171" is commercially available from ThermoFisher Scientific, described at https (colon slash slash) www(dot) thermofisher(dot) com/order/catalog/product/M171500.
- a medium MEBM/MEGM is available from Lonza
- the present invention comprises a method and mixture comprising individual components. Accordingly, the present invention provides a useful collection of defined stock solutions useful for making a basal medium for low stress culture of normal human epithelial cells, comprising: (a) a solution of 20 naturally occurring amino acids; (b) a solution of vitamins including folic acid; (c) a solution of trace elements including calcium chloride; (d) a solution of other organics, including adenine, choline chloride, D-glucose myo-inositol, putrescine 2HC1, sodium pyruvate, and thymidine; and (e) a solution of HEPES (4-(2- hydroxyethyl)-l-piperazineethanesulfonic acid) buffer, NaOH, D-glucose and phenol red (optional), wherein the defined stock solutions (a) through (e) are suitable for combination into the basal medium.
- the inventive components are further elaborated in Table 1.
- the present invention comprises a basal medium comprising: (a) 20 naturally occurring amino acids, including L-arginine hydrochloride in an amount between 90 and 120 mg/L; (b) vitamins including folic acid in an amount of between 1 and 1.5 mg/L; (c) trace elements including calcium chloride in an amount between 190 and 220 mg/L; (d) other organics, including adenine, choline chloride, D-glucose (1700-2500 mg/L), myo-inositol, putrescine 2HC1, sodium pyruvate, and thymidine; and (e) HEPES buffer, NaOH, D- glucose (1000-2000 mg/L) and phenol red (optional), provided that values given in mg/L are mg in distilled water and may be varied by plus or minus an insignificant amount, e.g. 5%, 10%, 15% or 20%, on a component by component basis.
- a basal medium comprising: (a) 20 naturally occurring amino acids, including L-arginine
- the present invention comprises the components as defined in Table 1, provided that phenol red is optional.
- the present invention comprises an optimized or complete media prepared from the basal medium and comprising serum and growth factor supplements.
- the present invention comprises the ingredients of Table 3 and Table 3A.
- the present invention comprises a medium as described above free of conditioned medium.
- the present invention comprises a method for preparing the present defined basal medium, comprising the step of preparing solutions of elements (a) through (e) separately and combining individually as separate stock solutions.
- the present invention comprises culturing normal human epithelial cells, comprising the step of culturing the normal human epithelial cells with a culture medium comprising a basal medium as described above, for a period of time that causes at least 10 population doublings of the normal human epithelial cells.
- aspects of the present disclosure include a combination of defined stock solutions for making a basal medium, useful for low stress culture of normal human epithelial cells, including (a) a solution of 20 naturally occurring amino acids; (b) a solution of vitamins including folic acid; (c) a solution of trace elements including calcium chloride; (d) a solution comprising adenine, choline chloride, D-glucose myo-inositol, putrescine 2HC1, sodium pyruvate, and thymidine; and (e) a solution of HEPES buffer, NaOH, and D-glucose, where the defined stock solutions (a) through (e) are suitable for combination into the basal medium.
- the solution of HEPES buffer, NaOH, and D-glucose further comprises phenol red.
- a basal medium comprising a mixture of stock solutions (a) through (e) as set forth above.
- the basal medium consists essentially of a mixture of stock solutions (a) through (e) as set forth above.
- an optimized cell culture medium including a basal medium as set forth above, and serum, a growth factor, or both. Such an optimized cell culture medium may include serum and a growth factor.
- aspects of the present disclosure include methods of making a basal medium useful, e.g., for low stress culture of epithelial cells, including combining: (a) a solution of 20 naturally occurring amino acids; (b) a solution of vitamins including folic acid; (c) a solution of trace elements including calcium chloride; (d) a solution comprising adenine, choline chloride, D- glucose myo-inositol, putrescine 2HC1, sodium pyruvate, and thymidine; and (e) a solution of HEPES buffer, NaOH, and D-glucose, in a container to produce a mixture of a basal medium useful for low stress culture of epithelial cells.
- Such methods may further include, prior to the combining, preparing solutions (a) to (e) separately.
- the solution of HEPES buffer, NaOH, and D-glucose further includes phenol red.
- the methods further include, after the combining, sterilizing the basal medium.
- the methods further include, after the combining, culturing epithelial cells in a medium comprising the basal medium.
- the epithelial cells are cultured for from 1 to 60 population doublings, such as from 1 to 10, 10 to 20, 20 to 30, 30 to 40, 40 to 50, or 50 to 60 population doublings (e.g., for from 5 to 60, 10 to 60, 15 to 60, 20 to 60, 25 to 60, 30 to 60, 35 to 60, 40 to 60, 45 to 60, 50 to 60, or 55 to 60 population doublings).
- a normal phenotype of the cells is maintained, the cultured cell are under low stress, and/or lineage heterogeneity is maintained.
- the epithelial cells are normal epithelial cells.
- the epithelial cells are human mammary epithelial cells (HMEC).
- Figure 1 shows a comparison of HMEC growth curves in pre-stasis strains established from two different breast tissue samples in three different media in parallel. Curves showing population doublings as a function of time in days for HMEC strains established from specimens 240L (panel A) and (B) 208 (panel B), who were age 19 and 45 years at the time of reduction mammoplasty, respectively. Squares are cultures grown in WIT-P, triangles denote growth in MCDB 170, and circles denote growth in M87A. In (A) MCDB 170 caused
- Panels C and D show pl6 protein expression at passage 4 in pre-stasis cultures grown in M87A, MCDB 170, or WIT-P media. Immunohistochemical staining of pl6 (brown precipitate) in strains derived from specimen 208 (panel C) and (B) 240L (panel D).
- Figure 2 shows immunofluorescence assessment of epithelial lineages in pre-stasis HMEC cultures. Cultures established from specimens (A) 240L and (B) 208 were stained to detect expression of (K)eratin 14, K19, and DAPI by immunofluorescence. Representative images are shown from passage 2, 4, and 7 HMEC grown in M87A, MCDB 170, and WIT-P media. Magnification bars represent 20 ⁇ .
- Figure 3 shows low stress M87A maintains lineage heterogeneity in pre-stasis HMEC strains.
- Panels A and B Bar graphs showing the proportions of K14+ MEP, K19+ LEP, or K14+/K19+ cells in cultures of specimen 240L (panel A), and 208 (panel B), as determined with automated marker-based watershed cell segmentation from 2 replicates and 10 images from each culture condition.
- Panels C and D Bar graphs showing the proportion of CD227+ LEP as a percentage of total cells in cultures from specimen 240L (panel C), and 208 (panel D). Data were derived from flow cytometry analysis of CD227 and CD10 expression of the pre-stasis cultures over passage, in M87A, WIT-P, and MCDB 170.
- Panels E and F Filled line plots of the
- Figure 4 provides data relating to luminal cells in M87A plus supplements (“M87A”) without fetal bovine serum.
- Panel A Curves showing population doublings as a function of time in days for 240L grown in M87A plus supplements (“M87A”) with and without 0.25% FBS from 3p. Growth rates were only assessed to lOp, thus the curves to not reflect cultures reaching stasis.
- Bar graphs showing the proportion of CD227+ LEP (panel B) and CD10+ MEP (panel C) as a percentage of total cells in cultures grown with or without FBS.
- Figure 5 is a line graph showing a comparison of HMEC growth curves in M87A plus supplements (“M87A”) (circles) versus a mixture of commercially obtained media
- any range set forth is intended to include any sub-range within the stated range, unless otherwise stated.
- a subrange is to be included within a range even though no sub-range is explicitly stated in connection with the range.
- a range of 120 to 250 includes a range of 120-121, 120-130, 200-225, 121-250 etc.
- basic medium means cell culture medium that contains no supplements such as growth factors and cytokines.
- the term "optimized culture medium” refers to a serum-free medium engineered specifically for the culture of Human Mammary Epithelial Cells (HMEC). This contains a basal medium plus supplements such as growth factors and other components. These could include components such as epidermal growth factor, hydrocortisone, isoproterenol, transferrin, and insulin, and bovine pituitary extract.
- HMEC Human Mammary Epithelial Cells
- HMEC human mammary epithelial cells, and generally refers to primary cells obtained from humans and includes mammary epithelial cells in any stage of the cell hierarchy. See Garbe et al., "Accumulation of Multipotent Progenitors with a Basal Differentiation Bias during Aging of Human Mammary Epithelia," Cancer Research
- naturally occurring amino acids refers to the 20 common amino acids (alanine, arginine, asparagine, aspartic acid, cysteine, glutamine, glutamic acid, glycine, histidine, isoleucine, leucine, lysine, methionine, phenylalanine, proline, serine, threonine, tryptophan, tyrosine, and valine).
- vitamin is used in the common sense and may include thiamine (vitamin B l) and vitamin B 12. In certain embodiments it may include folic acid.
- the cell culture media disclosed herein have been developed to support the exploration of normal human cells and tissues and the transformation of normal cells to malignant states.
- the cell culture media may support up to 60 population doublings of normal human mammary epithelial cells.
- M87A basal media (A) indicating M87A basal media
- AlbuMAX® albumin or M87A-BM, is, in one embodiment, a mixture of 63 amino acids, vitamins, and salts that constitute the basic media that may be supplemented (e.g., with growth factors) and used to culture normal human epithelial cells. These designations are used for convenience and may not be the same as other media having similar designations.
- DMEM/F12 An example composition of DMEM/F12 is given in Table 4 in the comparative example below. Details on DMEM/F12 may also be found, for example, at Lonza Products & Services at http (colon slash slash) www (dot) lonza.com/products-services/bio-research/cell- culture-products/classical-media/dmem/dmem-F12-l l-mixture.aspx.
- the MCDB 170 medium is commercially available and has been characterized in Hammond, SL, Ham, RG, and Stampfer, MR, Serum- free growth of human mammary epithelial cells: rapid clonal growth in defined medium and extended serial passage with pituitary extract, Proc Natl Acad Sci (USA) 81:5435-5439, 1984. Methods describing the use of this medium in the isolation and growth of human cell cultures are also described in Stampfer, MR, Isolation and growth of human mammary epithelial cells. Tissue Cult. Meth. 9: 107-116, 1985, hereby incorporated by reference. [0044] An important distinction between the present defined media, using commercially readily available single molecule components, and combined commercial media is that the present methods and material ensures regularity and consistency in cell culture results.
- the defined medium using single components, offers equivalent or superior growth of human mammary epithelial cells at a significantly lower cost.
- the present invention concerns the growth in culture of normal human mammary epithelial cells, e.g. non-cancerous, finite lifespan, pre-stasis cell strains, including human mammary epithelial cells (HMEC) 184D and others, obtained from reduction mammoplasty (see, Garbe JC, Bhattacharya S, Merchant B, Bassett E, Swisshelm K et al. (2009) "Molecular distinctions between stasis and telomere attrition senescence barriers shown by long-term culture of normal human mammary epithelial cells," Cancer Res 69: 7557-7568), and immortal derivatives of normal HMEC such as 184A1 and MCF10A cells and other cell lines, etc.
- HMEC human mammary epithelial cells
- the present invention further provides a basal medium comprising a defined mixture of (a) amino acids including both L-cysteine HC1 and L-cysteine HC1-H20 and Valine (44 mg/L); (b) vitamins, including folic acid (1.3 mg/L) biotin and D-calcium pantothenate ; (c) trace elements such as H 2 Se0 3 and (d) other organics such as linoleic acid.
- a basal medium comprising a defined mixture of (a) amino acids including both L-cysteine HC1 and L-cysteine HC1-H20 and Valine (44 mg/L); (b) vitamins, including folic acid (1.3 mg/L) biotin and D-calcium pantothenate ; (c) trace elements such as H 2 Se0 3 and (d) other organics such as linoleic acid.
- the present basal medium contains amino acids, vitamins, trace elements and other ingredients that may be found in media such as DMEM/F12 or MCDB-170.
- concentrations of the present basal medium (termed in the tables "M87A” basal media or "M87A-BM") differ from either existing medium in the concentrations of the 63 amino acids, vitamins, and salts that constitute known individual basal media.
- the present basal media may be further combined with media supplements such as fetal bovine serum, bovine pituitary extract, insulin, isoproterenol, hydrocortisone, apo-transferrin, oxytocin, cholera toxin, epidermal growth factor, ⁇ -estradiol, tri-iodo-thyronine, and albumin.
- media supplements such as fetal bovine serum, bovine pituitary extract, insulin, isoproterenol, hydrocortisone, apo-transferrin, oxytocin, cholera toxin, epidermal growth factor, ⁇ -estradiol, tri-iodo-thyronine, and albumin. This is termed a complete medium (See Table 3A).
- the present basal medium is made from individual compounds, e.g. separately mixing the individual glycine, L-alanine, arginine hydrochloride, L-asparagine-H20 etc. in a number of individual stock solutions and then combining the stock solutions.
- the present cell culture medium supports the growth of multiple lineages of normal human mammary epithelial cells (HMEC), such as luminal epithelial and myoepithelial cells, over a number of population doublings.
- HMEC normal human mammary epithelial cells
- the basal medium has a composition as shown in the following table:
- Zinc sulfate (ZnS0 4 -7H 2 0) 0.2879
- the final concentrations of the stock solutions may be precisely as provided in Table 1, or may vary so long as the basal medium has one or more of the desirable properties described elsewhere herein, e.g., useful for low-stress culture of epithelial cells (e.g., 2-3 fold more growth of pre-stasis HMEC as compared to MCDB 170 or WIT-P).
- the final concentrations of the components in the stock solutions presented in Table 1 may independently vary (i.e., be greater than or less than) by 20% or less, 15% or less, 10% or less, 9% or less, 8% or less, 7% or less, 6% or less, 5% or less, 4% or less, 3% or less, 2% or less, or 1% or less, as compared to the final concentrations of such components as set forth in Table 1.
- the present medium is prepared by adding stock solutions to water, and adding other components directly to the medium instead of from a stock solution.
- stock solutions are listed in the following table as A, B, C, D, E, F, G, H, I, J, Kl, K2, L, and M, with fold concentration of the stock indicated in parentheses.
- Stock A in Table 2 above may be prepared by dissolving phenol red powder in water (e.g., distilled de-ionized water) to a concentration of 0.621 grams per liter.
- water e.g., distilled de-ionized water
- 0.155 grams of phenol red may be dissolved in 200 mL of water, followed by bringing the resulting solution to a total volume of 250 mL with additional water.
- Stock B may be prepared by dissolving sodium hydroxide pellets in water (e.g., distilled de-ionized water) at a concentration of 80.04 grams per liter. For example, to make 250 mL of Stock B, 20.01 grams of sodium hydroxide pellets may be dissolved in 200 mL of water, followed by bringing the resulting solution to a total volume of 250 mL with additional water.
- water e.g., distilled de-ionized water
- the basal medium may include a mixture of each of the stock solutions provided in Table 2, or may include a mixture of less than all of such stock solutions so long as the basal medium has one or more of the desirable properties described elsewhere herein, e.g., useful for low-stress culture of epithelial cells (e.g., 2-3 fold more growth of pre-stasis HMEC as compared to MCDB 170 or WIT-P).
- the basal medium includes a mixture of 5 or more, 6 or more, 7 or more, 8 or more, 9 or more, 10 or more, 11 or more, 12 or more, 13 or more, or all 14 of the stock solutions provided in Table 2.
- Such a basal medium may include 1 or more, 2 or more, 3 or more, 4 or more, 5 or more, 6 or more, 7 or more, 8 or more, 9 or more, 10 or more, 11 or more, 12, or all 13 of the components provided in Table 3 directly added to the basal medium.
- a basal medium including combining 5 or more, 6 or more, 7 or more, 8 or more, 9 or more, 10 or more, 11 or more, 12 or more, 13 or more, or all 14 of the stock solutions provided in Table 2, in a container to produce a mixture of a basal medium useful, e.g., for low stress culture of epithelial cells.
- the method may further include adding additional components directly to the resulting mixture.
- the method may further include adding 1 or more, 2 or more, 3 or more, 4 or more, 5 or more, 6 or more, 7 or more, 8 or more, 9 or more, 10 or more, 11 or more, 12, or all 13 of the components provided in Table 3 directly to the resulting mixture.
- the final concentrations of the stock solutions may be precisely as provided in Table 2, or may vary so long as the basal medium has one or more of the desirable properties described elsewhere herein, e.g., useful for low-stress culture of epithelial cells (e.g., 2-3 fold more growth of pre-stasis HMEC as compared to MCDB 170 or WIT-P).
- the final concentrations of the components in the stock solutions presented in Table 2 may independently vary (i.e., be greater than or less than) by 20% or less, 15% or less, 10% or less, 9% or less, 8% or less, 7% or less, 6% or less, 5% or less, 4% or less, 3% or less, 2% or less, or 1% or less, as compared to the final concentrations set forth in Table 2 of such components.
- Stock A may be stored indefinitely in room temperature (RT).
- Stock B may be stored indefinitely in RT in a tightly closed plastic bottle.
- Stock C is dissolved in water with vigorous mechanical stirring plus mild heating as needed. It should not be boiled. It can be stored indefinitely in -20°C or if sterilized, it can be stored at 4°C for up to 2 months. Gentle heating and stirring may be required to redissolve some of its components before use.
- Bio tin and folinic acid are normally added to Stock D from more concentrated stock solutions. Concentration of pantothenic acid are expressed in terms of molar concentration of the Vitamin B5. A formula weight based on one molecule of pantothenic acid plus one half atom of calcium has been used as the molecular weight. Stock D is stored in the dark at -20C until used.
- Stock G may be prepared fresh for each media prep because of the lability of the cysteine in solution and the narrow optimal range. It can be stored at -20°C in the dark until use, but caution should be taken to ensure that there is no precipitate.
- Lipoic acid is added from a more concentrated stock solution prepared by dissolving the solid in a few drop of Stock B followed by dilution with water. Putrescine is also added from a concentrated stock solution, myo-inositol and thymidine are dissolved in the final solution after it has been adjusted to volume by the addition of water. The solution is left alkaline and is stored in the dark at -20C until use.
- Stock J is stored at room temperature sterilized until use and added only just before the medium is to be used.
- the CaC12 will precipitate if frozen. When added to the medium it is added slowly dropwise to a vigorously stirred solution.
- Stock Kl is stored at RT sterilized until use and is added only on a final completion of the medium.
- the medium should not be refrozen after its addition.
- Solution K2 For stock K2, one drop of concentrated HCl is added per liter. Solution K2 is stored sterile at room temperature. It must be discarded if it contains a precipitate or becomes orange colored. A yellow coloration to the filter used to sterilize the medium may indicate that the solution needs to be remade.
- Stock L is normally prepared from a series of more concentrated solutions, each containing one of the components at 1.0 X 10 " M.
- the Stock of the stannous chloride is prepared at 1.0 X 10 4 in .02N HCl to minimize precipitation on standing.
- Stock L is stored at RT sterilized at an acidic pH(l drop of concentrated HCl added per liter).
- supplements may include glutamine, fetal bovine serum, bovine pituitary extract, insulin, isoproterenol, phenol red, hydrocortisone, apo-transferrin, oxytocin, cholera toxin, epidermal growth factor, ⁇ -estradiol, tri-iodo-thyronine, and AlbuMAx® albumin I.
- M87A+CT+X Media for growth of pre- stasis HMEC. It contains basal medium plus albumin, cholera toxin, oxytocin and growth factor supplements. More details on the origin of and HMEC growth in this medium can be found in Garbe et al., Cancer Res 2009, and on our web site, hmec.lbl.gov. The medium contains a low level (0.25%) of serum. [0073] To make 1000 ml of M87A+CT+X medium, one adds the following supplements to one 1L of complete M87A media.
- Bovine pituitary extract 2.5 ml n/a
- Phenol red (only if using phenol red free basal media) 0.4 ml 0.5%
- Epidermal growth factor 0.05 ml 100 ⁇ g/ml
- Albumax I can be added as a powder followed by filtration of the final medium or can be added as 10 ml of a 10% stock solution.
- the fetal calf serum can be ordered from Thermofisher-Gibco; cat# 26140.
- the BPE can be ordered from Hammond Cell Tech cat#1078-NZ. Other sources are Lonza and BDBiosciences.
- the preferred insulin is Sigma cat#15500 or BOC Sciences cat# 11070-73-8. Isoproterenol can be obtained from Sigma, cat#15627. Caution should be taken with the dust.
- antibiotics may be used in the present media. This includes puromycin, hygromycin. G418, and blasticidin-S.
- EXAMPLE 3 Commonly Used Growth Media Causes Loss of Heterogeneity and Rapid Senescence in Primary Human Mammary Epithelial Cell Cultures
- HMEC human mammary epithelial cell
- the breast consists of a complex admixture of many distinct cell types, e.g., epithelial, adipose, mesenchymal, endothelial.
- the epithelial cells are responsible for the differentiated mammary function of lactation, and are also the origin of the vast majority of human breast cancers.
- the mammary epithelium consists of at least two, broadly classified, lineages that arise from common progenitors: the luminal epithelial (LEP) and myoepithelial cell (MEP) lineages.
- HMEC have been employed in a variety of studies examining the normal processes governing growth, differentiation, self-organization, aging, and senescence, and how these normal processes are altered during immortal and malignant transformation. The effects of growth in the presence of extracellular matrix material, other cell types, and 3D culture can be compared with growth on plastic. Cultured HMEC, starting with normal cells, provide an experimentally tractable system to examine factors that may propel or prevent human aging and carcinogenesis. The growth media and methodology used to establish and maintain primary HMEC strains are crucial factors that directly impact the interpretation of cell biology experiments.
- MCDB 170-type media developed by Ham and Stampfer in the 1980s, which has been available commercially for more than three decades (e.g. MEGM).
- MEGM cell culture media commonly used to support HMEC growth in vitro
- Pre-stasis HMEC strains established in MCDB 170-type media undergo a selection process usually within 2-4 passages, whereby a majority of primary HMEC in MCDB 170-type media arrest in stasis due to stress, but some clones overcome stasis by epigenetic modification of pl6.
- post-selection post-stasis HMEC are sold commercially as "primary normal finite HMEC", however, based on protein and gene expression post- selection post-stasis HMEC do not express pl6, are uniformly basal, and likely bear the closest relationship to metaplastic mammary tumors rather than normal epithelia.
- WIT media was developed with the intent of enabling culture of normal and isogenic transformed HMEC, and the media was reported to better support the maintenance of LEP cells when combined with a proprietary tissue culture plastic (TCP), compared to MCDB 170-type on standard TCP.
- M85 and M87A media were created as lower-stress alternatives to MCDB 170-type media, and support growth of HMEC as pre-stasis finite cells for up to 60 population doublings (PD), and maintain LEP for as many as 8 passages (roughly 30 PD).
- PD population doublings
- LEP for as many as 8 passages
- Pre-stasis HMEC cultures starting from epithelial organoids have been examined, and inter-individual variation in the growth potential and heterogeneity was observed, with respect to epithelial lineages.
- the present study examined the phenotypes of pre-stasis HMEC cultures started from two different individuals, in three different culture media: MCDB 170, WIT-P (on PrimariaTM tissue culture plastic (TCP)), or M87A.
- the phenotypes e.g. lineage marker expression, morphology, and growth
- M87A promoted 2-3 fold more growth of pre-stasis HMEC as compared to
- MCDB 170 or WIT-P which both caused the rapid onset of senescence.
- Growth rate, flow cytometry and immunofluorescence analyses of mammary epithelial lineage markers revealed pronounced differences in the abilities of the three different media to maintain HMEC lineages in a pre-stasis state. The ability to maintain lineage diversity is crucial for studying normal mammary epithelia as well as the process of malignant transformation.
- HMEC Human mammary epithelial cells
- specimens 240 (Batch L) and 208 were obtained from reduction mammoplasty tissue of women aged 19 and 45 years, respectively. Both HMEC cultures were initiated in primary culture from organoids and grown up to senescence in serum-free containing WIT-P medium (Cellaria Biosciences), MCDB 170 Medium (MEGM, Lonza, Walkersville, MD), or serum containing media M87A.
- WIT-P medium Cellaria Biosciences
- MCDB 170 Medium MEGM, Lonza, Walkersville, MD
- serum containing media M87A serum containing media
- M87A is composed of 1: 1 of DMEM/F12 and M171 (Thermofisher) supplemented with 0.5 ng/niL cholera toxin, 0.1 nM of oxytocin supplemented with 0.1% AlbuMAX I (Thermofisher) (Garbe et al., 2009).
- HMEC strain was grown onto glass coverslips and fixed at their respective passages in 50% methanol and 50% acetone at -20°C for 15 minutes. Following fixation, stored fixed HMEC were blocked in IX PBS, 5% normal goat serum, and 0.1% Triton X-100
- Subconfluent cells were trypsinized, harvested and fixed in 2% paraformaldehyde. Cells were blocked in FACS buffer and stained with CD227-FITC (BD, clone HMPV, 1:50) and CD10-PE (BioLegend, clone HIlOa, 1: 100) were added to cells in buffer for 25 mins protected from light and on ice, washed in PBS, and analyzed using FACS Calibur (Becton Dickinson). Flow Jo X was used to for computer analysis.
- CD227-FITC BD, clone HMPV, 1:50
- CD10-PE BioLegend, clone HIlOa, 1: 100
- organoids from two women were used to generate pre-stasis strains in three different culture media: M87A, MCDB 170, and WIT-P. Growth curves were generated starting with p2 cells from both individuals. Specimens 240L ( Figure 1, panel A) and 208 ( Figure 1, panel B) were from discarded reduction mammoplasty tissue from women aged 19 and 45 years, respectively. Cells in M87A or MCDB 170 media were grown on standard tissue culture plastic (TSP) dishes, whereas cells in WIT-P were grown on PrimariaTM dishes.
- TSP tissue culture plastic
- HMEC in WIT-P appeared large and vacuolated as early as p3, and the entire cultures stopped growth by p7-p8.
- a majority of 240L HMEC in MCDB 170 entered senescence as early as p3, but clones of post- stasis cells exhibited some additional growth after -60 days, which ceased growth by 7p. Clonal outgrowth of post-stasis cells is a common consequence of growing pre-stasis HMEC in high stress conditions.
- Specimen 208 in MCDB 170 ceased all growth by p9, but the emergence of post-stasis cells was not observed even after waiting an additional 60 days.
- 240L stopped growth at pl6 and 208 stopped at pi 1.
- K14 and CDIO are conventionally used as biomarkers of myoepithelial cells
- K19 and CD227 are biomarkers of luminal cells.
- Immunofluorescence images showed that both luminal and myoepithelial cells were present at p2 in all conditions, but that luminal cells rapidly disappeared in MCDB 170 and WIT-P. Marker-based watershed segmentation was used to quantify the fluorescence images.
- Cultures of both 240L and 208 in M87A contained cells from both lineages for more than 7 passages, with the luminal cells decreasing proportionately with successive passages.
- HMEC grown in WIT-P had a large proportion of luminal cells at p2, some large and flat K19-expressing cells remained at p4, and none remained by p7.
- Cultures maintained in MCDB 170 had lost nearly all luminal cells by p2 ( Figure 3, panels A and B).
- Flow cytometry analyses of CD227 and CDIO revealed the same pattern: CD227+ luminal cell were maintained at a higher proportion and for more passages in M87A compared to MCDB 170 or WIT-P ( Figure 3, panels C and D).
- Shannon Diversity Indexes were calculated as a function of passage. Comparison of the area under the curves demonstrates that M87A media maintained heterogeneity longer compared to WIT-P and MCDB 170 ( Figure 3, panels E and F).
- WIT-P and MCDB 170 are defined media, with exception of the bovine pituitary extract component in MCDB 170, which is thought to offer some advantages over serum containing media because the composition is less variable between batches.
- M87A normally has 0.25% fetal bovine serum (FBS).
- FBS fetal bovine serum
- M87A outperformed both of the defined media in total PD and maintained lineage diversity for as many as 30 PD. In addition, M87A performed well without serum, exhibiting reduced diversity, but maintaining population doublings and growth rate comparable to the fully supplemented M87A.
- MCDB 170 media is the prototype defined media, upon which MEGM and other commonly used HMEC growth media are based.
- rapid clonal growth was followed for only 10 days and, at that time, it was considered the superior media compared to predecessors such as MM.
- a lag in growth at passages 2-4 was reported that was thought to be a form of selection, because the vast majority of cells underwent senescence and only clones of finite lifespan cells emerged.
- HMEC post-selection post-stasis HMEC
- the WIT-P media is also defined, and was intended to enable better growth of the luminal epithelial lineage. Representation of K19+/K14- and CD227+/CD10- luminal epithelial cells in WIT-P and at p2 that was comparable to M87A was observed, but the luminal were lost as early as p3 in WIT-P. In the present study, growth of both specimens was better in WIT-P than in MCDB 170, and the appearance of post-stasis cells in WIT-P was not observed.
- the hormone oxytocin is one of the key media additives, because in addition to its well-known roles in maternal, emotional, and sexual behaviors, it also protects cells from death due to metabolic stress.
- myoepithelial cells express the oxytocin receptor, and it is possible that the oxytocin component indirectly supports luminal cells by acting directly upon the cultured myoepithelial cells.
- ER+ luminal cells tend to be more observable in 3-D cultures of pre-stasis HMEC in M87A, whereas ER stains only weakly in pre- stasis cells on TCP.
- ER+ luminal cells could be isolated from cells that migrated from attached organoids in FAD media, so dissociation is not a requirement, but seemingly the media is a requirement.
- Cell culture models lack a microenvironmental context, but the methods and type of media used also can significantly alter the cell intrinsic biology in a detrimental manner.
- DMEM/F12 As a comparative example, a 1: 1 mixture of commercially available DMEM/F12 and MEBM or M171 (or other MCDB 170-type media) was prepared. Details on MEBM and M171 may be found as referenced above. 93] A composition of DMEM/F12 is provided in the following table:
- a composition of MCDB 170 is provided in the following table:
- M87A basal medium was prepared as described above in Example 2. Basal medium was also prepared by a 1: 1 mixture of commercially available media, as described in Example 4 (M171 or MEGM mixed with DMEM/F12 at a 1: 1 ratio). The two prepared media were compared as to their ability to support growth of normal human mammary epithelial cells. The M87A basal medium plus supplements supported identical or better growth - as determined by rate and morphological features - compared to the media generated from commercially available media.
- FIG. 5 Representative growth data for HMEC are shown in Figure 5.
- the data were obtained with an HMEC strain established from specimen 259P, who was age 49 at the time of surgery. 150 ⁇ organoids from the specimen were cultured side-by-side in the two types of prepared media. Growth curves are shown as, and slopes were calculated as, population doublings per day. The graph shows that the slopes of the growth curves are very similar in the M87A basal medium plus supplements (circles) versus the mixture of commercially obtained media (squares) over 3-4 passages beginning at passage 2. The slope of the growth curve was 0.9670 + 0.006351 for the M87A basal medium plus supplements, and was 1.044 + 0.1025 for the mixture of commercial media.
- a combination of defined stock solutions for making a basal medium, useful for low stress culture of normal human epithelial cells comprising:
- a basal medium comprising:
- HEPES buffer NaOH, D- glucose (1000-2000 mg/L) and phenol red (optional), provided that values given in mg/L are mg in distilled water and may be varied by plus or minus an insignificant amount, e.g. 5%, 10%, 15% or 20%, on a component or component basis (e.g., a component by component basis).
- An optimized medium containing the basal medium of clause 2 and further comprising serum and a growth factor.
- a method of preparing the basal medium of clause 1, comprising the step of preparing solutions of elements (a) through (e) separately and combining individually as separate stock solutions.
- a method for culturing normal human epithelial cells comprising the step of culturing the normal human epithelial cells with a culture medium comprising a basal medium as defined in one of clauses 2-6, for a period of time over which at least 10 doubling of the normal human epithelial cells occurs during the culturing.
- a combination of defined stock solutions for making a basal medium, useful for low stress culture of normal human epithelial cells comprising:
- a basal medium comprising a mixture of stock solutions (a) through (e) as set forth in clause 1 or clause 2.
- a basal medium consisting essentially of a mixture of stock solutions (a) through (e) as set forth in clause 1 or clause 2.
- An optimized cell culture medium comprising:
- a method of making a basal medium useful for low stress culture of epithelial cells comprising combining:
- a basal medium comprising:
- trace elements including calcium chloride in an amount between 190 and 220 mg/L;
- other organics including adenine, choline chloride, D-glucose (1700-2500 mg/L), myo-inositol, putrescine 2HC1. sodium pyruvate, and thymidine; and
- HEPES buffer, NaOH, and D-glucose 1000-2000 mg/L
- values given in mg/L are mg in distilled water and may be varied by plus or minus an insignificant amount, e.g. 5%, 10%, 15% or 20%, on a component by component basis.
- a method for culturing epithelial cells comprising the step of culturing the normal human epithelial cells with a culture medium comprising a medium as defined in any one of clauses 3 to 6 or 14 to 17, for a period of time over which at least 10 population doublings of the epithelial cells occurs during the culturing.
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Abstract
A method of growing primary human epithelial cells, in particular human epithelial cells using a basal formula containing individual (a) amino acids, (b) vitamins, (c) trace elements, and (d) other organics such as linoleic acid. The basal medium may be a mixture of amino acids, vitamins, and salts that constitute the basic media that is used to culture epithelial cells over a number of population doublings, e.g., over at least one week, while maintaining a normal phenotype and exerting low stress on the cultured cells, and maintaining lineage heterogeneity.
Description
MEDIA FOR CULTURING EPITHELIAL CELLS
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of United States Provisional Patent Application Serial No. 62/232,294, filed September 24, 2015, the disclosure of which is herein incorporated by reference in its entirety.
STATEMENT OF GOVERNMENTAL SUPPORT
[0002] This invention was made with Government support under contract AG040081 awarded by the National Institutes of Health, and under Contract Number DE-AC02-05CH11231 between the U.S. Department of Energy and The Regents of the University of California for the management and operation of the Lawrence Berkeley National Laboratory. The Government has certain rights in the invention.
BACKGROUND OF THE INVENTION
FIELD OF THE INVENTION
[0003] The present invention relates to the field of cell culture, in particular to culture media for epithelial cell cultures, e.g., human mammary epithelial cell cultures.
RELATED ART
[0004] Presented below is background information on certain aspects of the present invention as they may relate to technical features referred to in the detailed description, but not necessarily described in detail. That is, individual compositions or methods used in the present invention may be described in greater detail in the publications and patents discussed below, which may provide further guidance to those skilled in the art for making or using certain aspects of the present invention as claimed. The discussion below should not be construed as an admission as to the relevance or the prior art effect of the patents or publications described.
[0005] Access to and ability to culture normal human mammary epithelial cells (HMEC) is essential for experiments that seek to understand the many differences between normal and abnormal mammary epithelia. The methods used to establish HMEC in culture impact the
definition of normal. Thus, a comparison of HMEC strains established in parallel using different culture media can facilitate an understanding of the normal state and the changes that lead to an abnormal state.
[0006] Cell culture is a method for growing or maintaining cells in vitro under controlled conditions. Primary cell cultures refer to dispersed cells that are cultured directly from tissues and have limited lifespan, whereas cell lines refer to immortalized cells that can be cultured indefinitely. Normal human epithelial cells in culture have generally shown a limited
proliferative potential of -10-40 population doublings before encountering a stress-associated senescence barrier (stasis) associated with elevated levels of cyclin-dependent kinase inhibitors pl6 and/or p21.
[0007] Chemically defined basal liquid cell culture media are used to provide nutrients for cell growth in research, diagnostic and manufacturing applications. Typical cell culture media contain a mixture of defined nutrients dissolved in a buffered physiological saline solution. Most culture media contain salts, amino acids, sugar, vitamins and other organic nutrients. The basal media is used as a starting point for the addition of various supplements to generate a complete growth medium.
[0008] The selection of a basal cell medium for cell culture applications is primarily dependent on the chemical definition of the basal medium, the type of cell to be grown, and the culture system being employed.
SPECIFIC PATENTS AND PUBLICATIONS
[0009] Stampfer et al, "Enhanced growth medium and method for culturing human mammary epithelial cells," US 4,423,145, discloses methods for isolating and culturing human mammary epithelial cells of both normal and malignant origin.
[0010] Stampfer et al., "Increasing cell culture population doublings for long-term growth of finite life span human cell cultures," US 8,962,325 discloses a cell culture medium for culturing pre-stasis human mammary epithelial cells (HMEC), the medium being a mixture of two media, (i) and (ii), namely a medium (i) with serum, that is one of MM or MM4 medium and (ii) a different, serum-free medium, with defined ingredients for growth of human mammary epithelial cells, the mixture containing 30% to 60% of medium (i) and 40% to 70% of serum free medium
(ii), the culture medium further comprising between about 0.05 nM and about 5.0 nM of an anti- stress associated compound that is oxytocin.
[0011] Stampfer et al., "Continuous human cell lines and method of making same," US 4,808,532, discloses substantially genetically stable continuous human cell lines derived from normal human mammary epithelial cells (HMEC). In MM medium, mitotic activity in pre- stasis HMEC was visible after forty-eight hours, and there was subsequent rapid growth to near confluence within 5-8 days after seeding. The deposited cell lines of the present invention were derived from cells grown in the MM medium. Pre-stasis cell growth in MCDB 170 medium was slower, 10-14 days being required to achieve confluence (cells grown in this latter medium were not used to provide the deposited cells lines of the subject invention, although equivalent cells lines may emerge using MCDB 170).
[0012] Hammond et al., Proc. Natl. Acad. Sci. USA Vol. 81, pp. 5435-5439, September 1984, "Serum- free growth of human mammary epithelial cells: Rapid clonal growth in defined medium and extended serial passage with pituitary extract," discloses an optimized basal nutrient medium, MCDB 170. As disclosed there, MCDB 170 is supplemented with insulin,
hydrocortisone, epidermal growth factor, ethanolamine, phosphoethanolamine, and bovine pituitary extract. Replacement of pituitary extract with prostaglandin El and ovine prolactin yields a defined medium that supports rapid clonal growth and serial subculture for three or four passages.
[0013] Ince et al., "Hormone responsive tissue culture system and uses thereof," US
8,936,939 discloses a medium that supports growth and/or proliferation of primary breast epithelial progenitor cells without detectable genetic alterations.
[0014] A medium "171" is commercially available from ThermoFisher Scientific, described at https (colon slash slash) www(dot) thermofisher(dot) com/order/catalog/product/M171500.
[0015] A medium MEBM/MEGM is available from Lonza
http (colon-slash-slash) www(dot) lonza.com/products-services/bio-research/primary- cells/human-cells-and-media/mammary-epithelial-cells-and-media/megm-mammary-epithelial- cell-growth-medium.aspx
BRIEF SUMMARY OF THE INVENTION
[0016] The following brief summary is not intended to include all features and aspects of the present invention, nor does it imply that the invention must include all features and aspects discussed in this summary.
[0017] In certain aspects, the present invention comprises a method and mixture comprising individual components. Accordingly, the present invention provides a useful collection of defined stock solutions useful for making a basal medium for low stress culture of normal human epithelial cells, comprising: (a) a solution of 20 naturally occurring amino acids; (b) a solution of vitamins including folic acid; (c) a solution of trace elements including calcium chloride; (d) a solution of other organics, including adenine, choline chloride, D-glucose myo-inositol, putrescine 2HC1, sodium pyruvate, and thymidine; and (e) a solution of HEPES (4-(2- hydroxyethyl)-l-piperazineethanesulfonic acid) buffer, NaOH, D-glucose and phenol red (optional), wherein the defined stock solutions (a) through (e) are suitable for combination into the basal medium. The inventive components are further elaborated in Table 1.
[0018] In certain aspects, the present invention comprises a basal medium comprising: (a) 20 naturally occurring amino acids, including L-arginine hydrochloride in an amount between 90 and 120 mg/L; (b) vitamins including folic acid in an amount of between 1 and 1.5 mg/L; (c) trace elements including calcium chloride in an amount between 190 and 220 mg/L; (d) other organics, including adenine, choline chloride, D-glucose (1700-2500 mg/L), myo-inositol, putrescine 2HC1, sodium pyruvate, and thymidine; and (e) HEPES buffer, NaOH, D- glucose (1000-2000 mg/L) and phenol red (optional), provided that values given in mg/L are mg in distilled water and may be varied by plus or minus an insignificant amount, e.g. 5%, 10%, 15% or 20%, on a component by component basis.
[0019] In certain aspects, the present invention comprises the components as defined in Table 1, provided that phenol red is optional.
[0020] In certain aspects, the present invention comprises an optimized or complete media prepared from the basal medium and comprising serum and growth factor supplements. In certain aspects, the present invention comprises the ingredients of Table 3 and Table 3A.
[0021] In certain aspects, the present invention comprises a medium as described above free of conditioned medium.
[0022] In certain aspects, the present invention comprises a method for preparing the present defined basal medium, comprising the step of preparing solutions of elements (a) through (e) separately and combining individually as separate stock solutions.
[0023] In certain aspects, the present invention comprises culturing normal human epithelial cells, comprising the step of culturing the normal human epithelial cells with a culture medium comprising a basal medium as described above, for a period of time that causes at least 10 population doublings of the normal human epithelial cells.
[0024] Aspects of the present disclosure include a combination of defined stock solutions for making a basal medium, useful for low stress culture of normal human epithelial cells, including (a) a solution of 20 naturally occurring amino acids; (b) a solution of vitamins including folic acid; (c) a solution of trace elements including calcium chloride; (d) a solution comprising adenine, choline chloride, D-glucose myo-inositol, putrescine 2HC1, sodium pyruvate, and thymidine; and (e) a solution of HEPES buffer, NaOH, and D-glucose, where the defined stock solutions (a) through (e) are suitable for combination into the basal medium. In certain aspects, the solution of HEPES buffer, NaOH, and D-glucose further comprises phenol red. Also provided is a basal medium comprising a mixture of stock solutions (a) through (e) as set forth above. In certain aspects, the basal medium consists essentially of a mixture of stock solutions (a) through (e) as set forth above. Also provided is an optimized cell culture medium including a basal medium as set forth above, and serum, a growth factor, or both. Such an optimized cell culture medium may include serum and a growth factor.
[0025] Aspects of the present disclosure include methods of making a basal medium useful, e.g., for low stress culture of epithelial cells, including combining: (a) a solution of 20 naturally occurring amino acids; (b) a solution of vitamins including folic acid; (c) a solution of trace elements including calcium chloride; (d) a solution comprising adenine, choline chloride, D- glucose myo-inositol, putrescine 2HC1, sodium pyruvate, and thymidine; and (e) a solution of HEPES buffer, NaOH, and D-glucose, in a container to produce a mixture of a basal medium useful for low stress culture of epithelial cells. Such methods may further include, prior to the combining, preparing solutions (a) to (e) separately. In certain aspects, the solution of HEPES
buffer, NaOH, and D-glucose further includes phenol red. According to certain embodiments, the methods further include, after the combining, sterilizing the basal medium. In certain aspects, the methods further include, after the combining, culturing epithelial cells in a medium comprising the basal medium. According to certain embodiments, the epithelial cells are cultured for from 1 to 60 population doublings, such as from 1 to 10, 10 to 20, 20 to 30, 30 to 40, 40 to 50, or 50 to 60 population doublings (e.g., for from 5 to 60, 10 to 60, 15 to 60, 20 to 60, 25 to 60, 30 to 60, 35 to 60, 40 to 60, 45 to 60, 50 to 60, or 55 to 60 population doublings). In certain aspects, during the culturing, a normal phenotype of the cells is maintained, the cultured cell are under low stress, and/or lineage heterogeneity is maintained. According to certain embodiments, the epithelial cells are normal epithelial cells. In certain aspects, the epithelial cells are human mammary epithelial cells (HMEC).
BRIEF DESCRIPTION OF THE DRAWINGS
[0026] Figure 1 shows a comparison of HMEC growth curves in pre-stasis strains established from two different breast tissue samples in three different media in parallel. Curves showing population doublings as a function of time in days for HMEC strains established from specimens 240L (panel A) and (B) 208 (panel B), who were age 19 and 45 years at the time of reduction mammoplasty, respectively. Squares are cultures grown in WIT-P, triangles denote growth in MCDB 170, and circles denote growth in M87A. In (A) MCDB 170 caused
characteristically rapid induction of stasis by 5th passage, follow by emergence of a clonal post- selection post-stasis finite culture denoted by the dashed line. Asterisks denote when cultures were senescent. Panels C and D show pl6 protein expression at passage 4 in pre-stasis cultures grown in M87A, MCDB 170, or WIT-P media. Immunohistochemical staining of pl6 (brown precipitate) in strains derived from specimen 208 (panel C) and (B) 240L (panel D).
[0027] Figure 2 shows immunofluorescence assessment of epithelial lineages in pre-stasis HMEC cultures. Cultures established from specimens (A) 240L and (B) 208 were stained to detect expression of (K)eratin 14, K19, and DAPI by immunofluorescence. Representative images are shown from passage 2, 4, and 7 HMEC grown in M87A, MCDB 170, and WIT-P media. Magnification bars represent 20 μιη.
[0028] Figure 3 shows low stress M87A maintains lineage heterogeneity in pre-stasis HMEC strains. Panels A and B: Bar graphs showing the proportions of K14+ MEP, K19+ LEP,
or K14+/K19+ cells in cultures of specimen 240L (panel A), and 208 (panel B), as determined with automated marker-based watershed cell segmentation from 2 replicates and 10 images from each culture condition. Panels C and D: Bar graphs showing the proportion of CD227+ LEP as a percentage of total cells in cultures from specimen 240L (panel C), and 208 (panel D). Data were derived from flow cytometry analysis of CD227 and CD10 expression of the pre-stasis cultures over passage, in M87A, WIT-P, and MCDB 170. Panels E and F: Filled line plots of the
Shannon Diversity Index as a function of passage for specimens 240L (panel E) and 208 (panel F) cultured in M87A, WIT-P, and MCDB 170. Values closest to 1.0 denote the most diversity.
[0029] Figure 4 provides data relating to luminal cells in M87A plus supplements ("M87A") without fetal bovine serum. Panel A: Curves showing population doublings as a function of time in days for 240L grown in M87A plus supplements ("M87A") with and without 0.25% FBS from 3p. Growth rates were only assessed to lOp, thus the curves to not reflect cultures reaching stasis. Bar graphs showing the proportion of CD227+ LEP (panel B) and CD10+ MEP (panel C) as a percentage of total cells in cultures grown with or without FBS.
[0030] Figure 5 is a line graph showing a comparison of HMEC growth curves in M87A plus supplements ("M87A") (circles) versus a mixture of commercially obtained media
(squares), using an HMEC strain established from specimen 259P.
DETAILED DESCRIPTION
DEFINITIONS
[0031] Unless defined otherwise, all technical and scientific terms used herein have the same meaning as commonly understood by those of ordinary skill in the art to which this invention belongs. Although any methods and materials similar or equivalent to those described herein can be used in the practice or testing of the present invention, the preferred methods and materials are described. Generally, nomenclatures utilized in connection with, and techniques of, cell and molecular biology and chemistry are those well-known and commonly used in the art. Certain experimental techniques, not specifically defined, are generally performed according to conventional methods well known in the art and as described in various general and more specific references that are cited and discussed throughout the present specification. For purposes of clarity, the following terms are defined below.
[0032] Ranges: For conciseness, any range set forth is intended to include any sub-range within the stated range, unless otherwise stated. A subrange is to be included within a range even though no sub-range is explicitly stated in connection with the range. As a non-limiting example, a range of 120 to 250 includes a range of 120-121, 120-130, 200-225, 121-250 etc.
[0033] The term "about" has its ordinary meaning of approximately and may be determined in context by experimental variability. In case of doubt, "about" means plus or minus 5% of a stated numerical value.
[0034] The term "basal medium" means cell culture medium that contains no supplements such as growth factors and cytokines.
[0035] The term "optimized culture medium" refers to a serum-free medium engineered specifically for the culture of Human Mammary Epithelial Cells (HMEC). This contains a basal medium plus supplements such as growth factors and other components. These could include components such as epidermal growth factor, hydrocortisone, isoproterenol, transferrin, and insulin, and bovine pituitary extract. A further explanation of an optimized culture medium is found in Jerums and Yang, "Optimization of Cell Culture Media," Bioprocess International Supplement, June 2005, pp. 38-44.
[0036] The term "HMEC" refers to human mammary epithelial cells, and generally refers to primary cells obtained from humans and includes mammary epithelial cells in any stage of the cell hierarchy. See Garbe et al., "Accumulation of Multipotent Progenitors with a Basal Differentiation Bias during Aging of Human Mammary Epithelia," Cancer Research
72(14):3687-3701 (2012).
[0037] The term "naturally occurring amino acids" refers to the 20 common amino acids (alanine, arginine, asparagine, aspartic acid, cysteine, glutamine, glutamic acid, glycine, histidine, isoleucine, leucine, lysine, methionine, phenylalanine, proline, serine, threonine, tryptophan, tyrosine, and valine).
[0038] The term "vitamin" is used in the common sense and may include thiamine (vitamin B l) and vitamin B 12. In certain embodiments it may include folic acid.
OVERVIEW
[0039] Provided here are low cost basic growth media capable of long-term culturing of human epithelial cells. The cell culture media disclosed herein have been developed to support
the exploration of normal human cells and tissues and the transformation of normal cells to malignant states. The cell culture media may support up to 60 population doublings of normal human mammary epithelial cells.
[0040] One formulation, referred to herein as M87A basal media ("A" indicating
AlbuMAX® albumin) or M87A-BM, is, in one embodiment, a mixture of 63 amino acids, vitamins, and salts that constitute the basic media that may be supplemented (e.g., with growth factors) and used to culture normal human epithelial cells. These designations are used for convenience and may not be the same as other media having similar designations.
[0041] It is possible, but not desirable, to prepare a somewhat similar basal M87A-BM by using simply a 1: 1 mixture of commercially available media such as DMEM/F12 and MEBM or M171 (or other MCDB 170-type media). However, the compositions of many commercial media are proprietary in some cases. For details on MEBM, see, for example, Lonza Products & Services at http (colon slash slash) www (dot) lonza.com/products-services/bio- research/primary-cells/human-cells-and-media/mammary-epithelial-cells-and-media/megm- mammary-epithelial-cell-growth-medium.aspx. For details on M 171, see, for example, https (colon slash slash) www (dot) thermofisher.com/order/catalog/product/M171500.
[0042] An example composition of DMEM/F12 is given in Table 4 in the comparative example below. Details on DMEM/F12 may also be found, for example, at Lonza Products & Services at http (colon slash slash) www (dot) lonza.com/products-services/bio-research/cell- culture-products/classical-media/dmem/dmem-F12-l l-mixture.aspx.
[0043] The MCDB 170 medium is commercially available and has been characterized in Hammond, SL, Ham, RG, and Stampfer, MR, Serum- free growth of human mammary epithelial cells: rapid clonal growth in defined medium and extended serial passage with pituitary extract, Proc Natl Acad Sci (USA) 81:5435-5439, 1984. Methods describing the use of this medium in the isolation and growth of human cell cultures are also described in Stampfer, MR, Isolation and growth of human mammary epithelial cells. Tissue Cult. Meth. 9: 107-116, 1985, hereby incorporated by reference.
[0044] An important distinction between the present defined media, using commercially readily available single molecule components, and combined commercial media is that the present methods and material ensures regularity and consistency in cell culture results.
[0045] In addition, the defined medium, using single components, offers equivalent or superior growth of human mammary epithelial cells at a significantly lower cost.
[0046] The present invention concerns the growth in culture of normal human mammary epithelial cells, e.g. non-cancerous, finite lifespan, pre-stasis cell strains, including human mammary epithelial cells (HMEC) 184D and others, obtained from reduction mammoplasty (see, Garbe JC, Bhattacharya S, Merchant B, Bassett E, Swisshelm K et al. (2009) "Molecular distinctions between stasis and telomere attrition senescence barriers shown by long-term culture of normal human mammary epithelial cells," Cancer Res 69: 7557-7568), and immortal derivatives of normal HMEC such as 184A1 and MCF10A cells and other cell lines, etc.
[0047] The present invention further provides a basal medium comprising a defined mixture of (a) amino acids including both L-cysteine HC1 and L-cysteine HC1-H20 and Valine (44 mg/L); (b) vitamins, including folic acid (1.3 mg/L) biotin and D-calcium pantothenate ; (c) trace elements such as H2Se03 and (d) other organics such as linoleic acid.
[0048] The present basal medium contains amino acids, vitamins, trace elements and other ingredients that may be found in media such as DMEM/F12 or MCDB-170. However, the concentrations of the present basal medium (termed in the tables "M87A" basal media or "M87A-BM") differ from either existing medium in the concentrations of the 63 amino acids, vitamins, and salts that constitute known individual basal media. The present basal media may be further combined with media supplements such as fetal bovine serum, bovine pituitary extract, insulin, isoproterenol, hydrocortisone, apo-transferrin, oxytocin, cholera toxin, epidermal growth factor, β-estradiol, tri-iodo-thyronine, and albumin. This is termed a complete medium (See Table 3A).
[0049] In certain aspects, the present basal medium is made from individual compounds, e.g. separately mixing the individual glycine, L-alanine, arginine hydrochloride, L-asparagine-H20 etc. in a number of individual stock solutions and then combining the stock solutions. Individual stock solutions of (a) phenol red, (b) NaOH, (c) amino acids- 1, (d) vitamins, (e) L-glutamine, (f) sodium pyruvate (g) L-cysteine, (h) amino acids-2, (i) adenine, myo-inositol, lipoic acid,
thymidine, and putrescine; (j) CaCl2 2H20; (kl) MgS04 7H20; (k2) FeS04 7H20; (1) CuS04 5H20, H2Se03, MnS04 5H20, NaSi03 9 H20, (NH4)Mo7024- 4H20, NH4V03, NiCl2 6H20, SnCl2 2H20, and ZnS047H20 (m) riboflavin; and (n) individually adding remaining ingredients.
[0050] The present cell culture medium supports the growth of multiple lineages of normal human mammary epithelial cells (HMEC), such as luminal epithelial and myoepithelial cells, over a number of population doublings. This has been demonstrated by a calculation of Shannon diversity indices that compared cultures of normal pre-stasis HMEC grown in M87A versus two commercial defined media MCDB 170 and WIT-P that showed greater cellular heterogeneity was maintained over multiple passages in M87A.
EXAMPLES
EXAMPLE 1 - Composition of Basal Medium from Individual Components
[0051] In one embodiment of the present invention, the basal medium has a composition as shown in the following table:
Table 1
L- Valine 44.005
Bio tin 0.0054145
Choline chloride 11.47
D-Calcium pantothenate 1.23915
Folic Acid 1.328008
Niacinamide 4.0625
Pyridoxine hydrochloride 1.03084
Riboflavin 0.16595
Thiamine hydrochloride 1.25365
Vitamin B 12 0.40775
Lipoic Acid 0.0535315 myo-Inositol 15.31
Calcium Chloride (CaCl2) (anhyd.) 205.3
Cupric sulfate (CuS04-5H20) 0.00077485
Ferric Nitrate (Fe(N03)3"9H20) 0.025
Ferrous sulfate (FeS04-7H20) 0.9035
Magnesium Chloride (anhydrous) 14.32
Magnesium Sulfate (MgS04) (anhyd.) 222.72
Potassium Chloride (KC1) 249.1
Sodium Bicarbonate (NaHC03) 600
Sodium Chloride (NaCl) 7004.75
Sodium Phosphate dibasic (Na2HP04)
anhydrous 35.51
Sodium Phosphate monobasic
(NaH2P04-H20) 31.25
Zinc sulfate (ZnS04-7H20) 0.2879
H2Se03 0.0019345
MnS04 5H20 0.00006025
Na2Si03 9H20 0.07105
(NH4)6Mo7024 4H20 0.000618
NH4V03 0.0002925
NiCl26H20 5.945E-07
SnCl2 2H20 0.000000564
KH2P04 34.025
D- Glucose (Dextrose) 2296.15
Hypoxanthine Na 1.26255
Linoleic Acid 0.021
Putrescine 2HC1 0.04058055
Sodium Pyruvate 82.5
Thymidine 0.21883
HEPES 5361.75
[0052] As will be appreciated by one of skill in the art, the final concentrations of the stock solutions may be precisely as provided in Table 1, or may vary so long as the basal medium has one or more of the desirable properties described elsewhere herein, e.g., useful for low-stress culture of epithelial cells (e.g., 2-3 fold more growth of pre-stasis HMEC as compared to MCDB 170 or WIT-P). For example, the final concentrations of the components in the stock solutions presented in Table 1 may independently vary (i.e., be greater than or less than) by 20% or less, 15% or less, 10% or less, 9% or less, 8% or less, 7% or less, 6% or less, 5% or less, 4% or less, 3% or less, 2% or less, or 1% or less, as compared to the final concentrations of such components as set forth in Table 1.
EXAMPLE 2 - Preparation of Basal Medium
[0053] In one embodiment, the present medium is prepared by adding stock solutions to water, and adding other components directly to the medium instead of from a stock solution. The stock solutions are listed in the following table as A, B, C, D, E, F, G, H, I, J, Kl, K2, L, and M, with fold concentration of the stock indicated in parentheses.
Table 2
SnCl2 2H20 225.63 .0000564mg
ZnS047H20 287.54 0.029
M (100X) Riboflavin 376.4 0.0166
[0054] For illustration purposes, Stock A in Table 2 above may be prepared by dissolving phenol red powder in water (e.g., distilled de-ionized water) to a concentration of 0.621 grams per liter. For example, to make 250 mL of Stock A, 0.155 grams of phenol red may be dissolved in 200 mL of water, followed by bringing the resulting solution to a total volume of 250 mL with additional water.
[0055] Also for illustration purposes, Stock B may be prepared by dissolving sodium hydroxide pellets in water (e.g., distilled de-ionized water) at a concentration of 80.04 grams per liter. For example, to make 250 mL of Stock B, 20.01 grams of sodium hydroxide pellets may be dissolved in 200 mL of water, followed by bringing the resulting solution to a total volume of 250 mL with additional water.
[0056] The basal medium may include a mixture of each of the stock solutions provided in Table 2, or may include a mixture of less than all of such stock solutions so long as the basal medium has one or more of the desirable properties described elsewhere herein, e.g., useful for low-stress culture of epithelial cells (e.g., 2-3 fold more growth of pre-stasis HMEC as compared to MCDB 170 or WIT-P). According to certain embodiments, the basal medium includes a mixture of 5 or more, 6 or more, 7 or more, 8 or more, 9 or more, 10 or more, 11 or more, 12 or more, 13 or more, or all 14 of the stock solutions provided in Table 2. Such a basal medium may include 1 or more, 2 or more, 3 or more, 4 or more, 5 or more, 6 or more, 7 or more, 8 or more, 9 or more, 10 or more, 11 or more, 12, or all 13 of the components provided in Table 3 directly added to the basal medium.
[0057] In related aspects, also provided by the present disclosure are methods of making a basal medium, the method including combining 5 or more, 6 or more, 7 or more, 8 or more, 9 or more, 10 or more, 11 or more, 12 or more, 13 or more, or all 14 of the stock solutions provided in Table 2, in a container to produce a mixture of a basal medium useful, e.g., for low stress culture of epithelial cells. The method may further include adding additional components directly to the resulting mixture. For example, the method may further include adding 1 or more,
2 or more, 3 or more, 4 or more, 5 or more, 6 or more, 7 or more, 8 or more, 9 or more, 10 or more, 11 or more, 12, or all 13 of the components provided in Table 3 directly to the resulting mixture.
[0058] As will be appreciated by one of skill in the art, the final concentrations of the stock solutions may be precisely as provided in Table 2, or may vary so long as the basal medium has one or more of the desirable properties described elsewhere herein, e.g., useful for low-stress culture of epithelial cells (e.g., 2-3 fold more growth of pre-stasis HMEC as compared to MCDB 170 or WIT-P). For example, the final concentrations of the components in the stock solutions presented in Table 2 may independently vary (i.e., be greater than or less than) by 20% or less, 15% or less, 10% or less, 9% or less, 8% or less, 7% or less, 6% or less, 5% or less, 4% or less, 3% or less, 2% or less, or 1% or less, as compared to the final concentrations set forth in Table 2 of such components.
[0059] Stock A may be stored indefinitely in room temperature (RT). Stock B may be stored indefinitely in RT in a tightly closed plastic bottle. Stock C is dissolved in water with vigorous mechanical stirring plus mild heating as needed. It should not be boiled. It can be stored indefinitely in -20°C or if sterilized, it can be stored at 4°C for up to 2 months. Gentle heating and stirring may be required to redissolve some of its components before use.
[0060] Bio tin and folinic acid are normally added to Stock D from more concentrated stock solutions. Concentration of pantothenic acid are expressed in terms of molar concentration of the Vitamin B5. A formula weight based on one molecule of pantothenic acid plus one half atom of calcium has been used as the molecular weight. Stock D is stored in the dark at -20C until used.
[0061] Stock G may be prepared fresh for each media prep because of the lability of the cysteine in solution and the narrow optimal range. It can be stored at -20°C in the dark until use, but caution should be taken to ensure that there is no precipitate.
[0062] For stock H, aspartic and glutamic acid are added to slightly less than the final volume of water. One mL per liter of Stock A (phenol red) is added, and stock B (4N NaOH) is added with stirring just rapidly enough to keep the solution neutral (orange). When no solids remain and a stable orange color is achieved, alanine and glycine are dissolved and water is added to the final volume. If sterilized, Stock H can be stored in the dark at 4C until use or it can be stored at -20C indefinitely.
[0063] For stock I, adenine is dissolved in one half the final volume with the addition of .3mL of stock B per 500mL plus gentle warming. Lipoic acid is added from a more concentrated stock solution prepared by dissolving the solid in a few drop of Stock B followed by dilution with water. Putrescine is also added from a concentrated stock solution, myo-inositol and thymidine are dissolved in the final solution after it has been adjusted to volume by the addition of water. The solution is left alkaline and is stored in the dark at -20C until use.
[0064] Stock J is stored at room temperature sterilized until use and added only just before the medium is to be used. The CaC12 will precipitate if frozen. When added to the medium it is added slowly dropwise to a vigorously stirred solution.
[0065] Stock Kl is stored at RT sterilized until use and is added only on a final completion of the medium. The medium should not be refrozen after its addition.
[0066] For stock K2, one drop of concentrated HCl is added per liter. Solution K2 is stored sterile at room temperature. It must be discarded if it contains a precipitate or becomes orange colored. A yellow coloration to the filter used to sterilize the medium may indicate that the solution needs to be remade.
[0067] Because of the small amounts involved, Stock L is normally prepared from a series of more concentrated solutions, each containing one of the components at 1.0 X 10" M. The Stock of the stannous chloride is prepared at 1.0 X 104 in .02N HCl to minimize precipitation on standing. Stock L is stored at RT sterilized at an acidic pH(l drop of concentrated HCl added per liter).
[0068] Stock M is stored in the dark at -20C until use. Small aliquots are made so that the solution is not thawed more than 5X.
[0069] Exemplary components added directly to the medium to make the complete media are given in the following table:
Table 3
[0070] The above examples may be varied. For example, different stock solutions may be made with the total components subdivided into different subsets.
[0071] In conventional use, it is understood that one may add supplements to this media that are additionally required for long-term culture of their particular epithelial cell type of interest. The supplements may include glutamine, fetal bovine serum, bovine pituitary extract, insulin, isoproterenol, phenol red, hydrocortisone, apo-transferrin, oxytocin, cholera toxin, epidermal growth factor, β-estradiol, tri-iodo-thyronine, and AlbuMAx® albumin I.
[0072] As a further example, a complete medium with cholera toxin is listed below in Table 3A. This media may be termed M87A+CT+X Media for growth of pre- stasis HMEC. It contains basal medium plus albumin, cholera toxin, oxytocin and growth factor supplements. More details on the origin of and HMEC growth in this medium can be found in Garbe et al., Cancer Res 2009, and on our web site, hmec.lbl.gov. The medium contains a low level (0.25%) of serum.
[0073] To make 1000 ml of M87A+CT+X medium, one adds the following supplements to one 1L of complete M87A media.
Table 3A
Factor Amount Stock
Glutamine 10.0 ml 200 mM
Fetal bovine serum 2.5 ml n/a
Bovine pituitary extract 2.5 ml n/a
Insulin 2.5 ml 3 mg/ml
Isoproterenol 1.0 ml 5 X 10_i M
Phenol red (only if using phenol red free basal media) 0.4 ml 0.5%
Hydrocortisone 0.3 ml 1 mg/ml
Apo-transferrin 0.25 ml 10 mg/ml
Oxytocin 0.1 ml 1 μΜ
Cholera toxin 0.05 ml 10 μg/ml
Epidermal growth factor 0.05 ml 100 μg/ml
β-estradiol 0.025 ml 2 X 10"' M
Tri-iodo-thyronine 0.025 ml 2 X 10"4 M
Albumax I 1.0 gm n/a
[0074] This is sterile filtered using a 0.2μ filter unit with a PES (polyethersulfone). Albumax I can be added as a powder followed by filtration of the final medium or can be added as 10 ml of a 10% stock solution. The fetal calf serum can be ordered from Thermofisher-Gibco; cat# 26140. The BPE can be ordered from Hammond Cell Tech cat#1078-NZ. Other sources are Lonza and BDBiosciences. The preferred insulin is Sigma cat#15500 or BOC Sciences cat# 11070-73-8. Isoproterenol can be obtained from Sigma, cat#15627. Caution should be taken with the dust.
[0075] While the specific formulations given above are provided as examples for the culture of certain human mammary epithelial cells, it is understood that the formulations may be modified or adapted by one of ordinary skill in the art for application to a variety of different epithelial cell types and experimental protocols.
[0076] Also, if desired antibiotics may be used in the present media. This includes puromycin, hygromycin. G418, and blasticidin-S.
EXAMPLE 3 - Commonly Used Growth Media Causes Loss of Heterogeneity and Rapid Senescence in Primary Human Mammary Epithelial Cell Cultures
Experimental examination of normal human mammary epithelial cell (HMEC) behavior, and how normal cells acquire abnormal properties, can be facilitated by in vitro culture systems that more accurately model in vivo biology. The breast consists of a complex admixture of many distinct cell types, e.g., epithelial, adipose, mesenchymal, endothelial. The epithelial cells are responsible for the differentiated mammary function of lactation, and are also the origin of the vast majority of human breast cancers. The mammary epithelium consists of at least two, broadly classified, lineages that arise from common progenitors: the luminal epithelial (LEP) and myoepithelial cell (MEP) lineages. Cultured HMEC have been employed in a variety of studies examining the normal processes governing growth, differentiation, self-organization, aging, and senescence, and how these normal processes are altered during immortal and malignant transformation. The effects of growth in the presence of extracellular matrix material, other cell types, and 3D culture can be compared with growth on plastic. Cultured HMEC, starting with normal cells, provide an experimentally tractable system to examine factors that may propel or prevent human aging and carcinogenesis. The growth media and methodology used to establish and maintain primary HMEC strains are crucial factors that directly impact the interpretation of cell biology experiments.
A cell culture media commonly used to support HMEC growth in vitro is the defined, MCDB 170-type media developed by Ham and Stampfer in the 1980s, which has been available commercially for more than three decades (e.g. MEGM). Pre-stasis HMEC strains established in MCDB 170-type media undergo a selection process usually within 2-4 passages, whereby a majority of primary HMEC in MCDB 170-type media arrest in stasis due to stress, but some clones overcome stasis by epigenetic modification of pl6. These post-selection post-stasis
HMEC are sold commercially as "primary normal finite HMEC", however, based on protein and gene expression post- selection post-stasis HMEC do not express pl6, are uniformly basal, and likely bear the closest relationship to metaplastic mammary tumors rather than normal epithelia. Defined WIT media was developed with the intent of enabling culture of normal and isogenic transformed HMEC, and the media was reported to better support the maintenance of LEP cells when combined with a proprietary tissue culture plastic (TCP), compared to MCDB 170-type on standard TCP. Indeed, in the decades that MCDB 170-type media has been in wide use, maintenance of cells with LEP phenotypes in culture beyond a couple of passages has been a persistent challenge, and WIT media partly addressed this issue. M85 and M87A media were created as lower-stress alternatives to MCDB 170-type media, and support growth of HMEC as pre-stasis finite cells for up to 60 population doublings (PD), and maintain LEP for as many as 8 passages (roughly 30 PD). Starting from freshly isolated human mammary epithelial organoids most media are capable of supporting growth of multiple lineages for at least the first or second passage, however a rigorous comparison of media performance beyond the earliest stages is lacking.
[0077] Pre-stasis HMEC cultures starting from epithelial organoids have been examined, and inter-individual variation in the growth potential and heterogeneity was observed, with respect to epithelial lineages. In order to determine the impact of culture media on variation, the present study examined the phenotypes of pre-stasis HMEC cultures started from two different individuals, in three different culture media: MCDB 170, WIT-P (on Primaria™ tissue culture plastic (TCP)), or M87A. The phenotypes (e.g. lineage marker expression, morphology, and growth) of cell strains were examined from passage 2 (p2) until they entered stress-induced senescence. M87A promoted 2-3 fold more growth of pre-stasis HMEC as compared to
MCDB 170 or WIT-P, which both caused the rapid onset of senescence. Growth rate, flow cytometry and immunofluorescence analyses of mammary epithelial lineage markers revealed pronounced differences in the abilities of the three different media to maintain HMEC lineages in a pre-stasis state. The ability to maintain lineage diversity is crucial for studying normal mammary epithelia as well as the process of malignant transformation.
Materials and Methods
Cell Culture
[0078] Human mammary epithelial cells (HMEC) from specimens 240 (Batch L) and 208 were obtained from reduction mammoplasty tissue of women aged 19 and 45 years, respectively. Both HMEC cultures were initiated in primary culture from organoids and grown up to senescence in serum-free containing WIT-P medium (Cellaria Biosciences), MCDB 170 Medium (MEGM, Lonza, Walkersville, MD), or serum containing media M87A. M87A is composed of 1: 1 of DMEM/F12 and M171 (Thermofisher) supplemented with 0.5 ng/niL cholera toxin, 0.1 nM of oxytocin supplemented with 0.1% AlbuMAX I (Thermofisher) (Garbe et al., 2009).
[0079] Total population doublings (PD) were calculated beginning at passage 2 using the formula PD = log2(Nfinai/Ninitiai). N is the number of cells counted during the initial seeding of each 10 cm tissue culture dish and the number of cells counted during sub-confluent levels. Each viable cell count was done in triplicates using a hemocytometer.
Immunofluorescence
[0080] Each HMEC strain was grown onto glass coverslips and fixed at their respective passages in 50% methanol and 50% acetone at -20°C for 15 minutes. Following fixation, stored fixed HMEC were blocked in IX PBS, 5% normal goat serum, and 0.1% Triton X-100
(Thermofisher) overnight. Each HMEC strain were stained with polyclonal rabbit Keratin 14 (1: 1000, Covance PRB-155P), and Keratin 19 (1: 100, Thermofisher) in blocking buffer and incubated in 4°C overnight. Following 3 washes in IX PBS, each fixed HMEC were incubated with fluorescent secondary antibodies for 2 hours at room temperature with 1:200 Alexa Fluor 488 Rat anti-Mouse IgG2 and 1:200 Alexa Fluor 568 and DAPI. Cells were imaged using Zeiss LSM710 confocal microscope. Marker-based watershed segmentation was performed as previously described (MatLab, Mathworks Inc).
Immunohistochemistry
[0081] Cells were washed twice with PBS and fixed for 30 min with 4% paraformaldehyde. Cells were permeabilized with 0.1% Triton X-100 for 5 min, blocked for 30 min in PBS containing 5% normal goat serum, and incubated with pl6 antibody (Santa Cruz Biotech, SC-
56330, clone JC8) for 60 min. Antibody binding was visualized using peroxidase mouse ABC kit and DAB substrate kit (Vector Labs, Burlingame, CA).
Flow Cytometry
[0082] Subconfluent cells were trypsinized, harvested and fixed in 2% paraformaldehyde. Cells were blocked in FACS buffer and stained with CD227-FITC (BD, clone HMPV, 1:50) and CD10-PE (BioLegend, clone HIlOa, 1: 100) were added to cells in buffer for 25 mins protected from light and on ice, washed in PBS, and analyzed using FACS Calibur (Becton Dickinson). Flow Jo X was used to for computer analysis.
Results
Growth Rates and Senescence
[0083] To determine the impact of cell culture media on growth characteristics of pre-stasis HMEC, organoids from two women were used to generate pre-stasis strains in three different culture media: M87A, MCDB 170, and WIT-P. Growth curves were generated starting with p2 cells from both individuals. Specimens 240L (Figure 1, panel A) and 208 (Figure 1, panel B) were from discarded reduction mammoplasty tissue from women aged 19 and 45 years, respectively. Cells in M87A or MCDB 170 media were grown on standard tissue culture plastic (TSP) dishes, whereas cells in WIT-P were grown on Primaria™ dishes. HMEC in WIT-P appeared large and vacuolated as early as p3, and the entire cultures stopped growth by p7-p8. A majority of 240L HMEC in MCDB 170 entered senescence as early as p3, but clones of post- stasis cells exhibited some additional growth after -60 days, which ceased growth by 7p. Clonal outgrowth of post-stasis cells is a common consequence of growing pre-stasis HMEC in high stress conditions. Specimen 208 in MCDB 170 ceased all growth by p9, but the emergence of post-stasis cells was not observed even after waiting an additional 60 days. In M87A media, 240L stopped growth at pl6 and 208 stopped at pi 1. Morphological differences between cells grown in the different media were visible as early as p3, such as large and vacuolated cells consistent with senescence phenotypes in MCDB 170 and WIT-P compared to M87A, which become pronounced by p4. Expression of pl6mK4 protein was detected in most cells by p4 in WIT-P and MCDB 170 media, whereas little pl6 was detected in p4 M87A cultures (Figure 1, panels C and D). M87A supported superior growth of pre-stasis HMEC compared to WIT-P and MCBD170 media, which both cause rapid induction of stress associated stasis.
Maintenance of Epithelial Lineage Diversity
[0084] Maintaining the different epithelial lineages observed in vivo also in culture is essential to understanding how the epithelium functions normally, and which cell types are actually impacted by pathological changes. Cultures were examined by immunofluorescence for keratin (K)14 and K19 expression (Figure 2, panels A and B), and by FACS for CD227
(Sialomucinl) and CDIO (CALLA) to assess lineage heterogeneity as a function of passage. K14 and CDIO are conventionally used as biomarkers of myoepithelial cells, and K19 and CD227 are biomarkers of luminal cells. Immunofluorescence images showed that both luminal and myoepithelial cells were present at p2 in all conditions, but that luminal cells rapidly disappeared in MCDB 170 and WIT-P. Marker-based watershed segmentation was used to quantify the fluorescence images. Cultures of both 240L and 208 in M87A contained cells from both lineages for more than 7 passages, with the luminal cells decreasing proportionately with successive passages. HMEC grown in WIT-P had a large proportion of luminal cells at p2, some large and flat K19-expressing cells remained at p4, and none remained by p7. Cultures maintained in MCDB 170 had lost nearly all luminal cells by p2 (Figure 3, panels A and B). Flow cytometry analyses of CD227 and CDIO revealed the same pattern: CD227+ luminal cell were maintained at a higher proportion and for more passages in M87A compared to MCDB 170 or WIT-P (Figure 3, panels C and D). To quantify the heterogeneity of the cultures with respect to lineage, Shannon Diversity Indexes were calculated as a function of passage. Comparison of the area under the curves demonstrates that M87A media maintained heterogeneity longer compared to WIT-P and MCDB 170 (Figure 3, panels E and F).
Defined Versus Serum-Containing M87A Formulation
[0085] One perceived advantage of WIT-P and MCDB 170 is that they are defined media, with exception of the bovine pituitary extract component in MCDB 170, which is thought to offer some advantages over serum containing media because the composition is less variable between batches. M87A normally has 0.25% fetal bovine serum (FBS). Growth curves performed from p3 with 240L showed no difference in growth rates between serum-containing or serum-free M87A (Figure 4, panel A). However, flow cytometry analysis of CD227 and CDIO expression revealed that in serum- free M87A there was nearly 30% fewer CD227+/CD10- luminal cells at p4, and over 50% fewer CD227-/CD10+ MEP present at p4, compared to serum-containing
M87A (Figure 4, panels B and C). These results suggest that FBS is not an essential media component, but it may be a component that fosters differentiation into more mature luminal and myoepithelial cell types.
Discussion
[0086] In order to use cell culture as a system to enable study of human tissues, the culture systems must be able to support the multiple types of cells present in the native tissue. In the present study, these are human mammary epithelia. When using a single culture media, inter- individual variation is readily apparent in pre-stasis HMEC cell cultures. Within the breast cancer and mammary biology literature there is some disagreement between labs that use different cell culture methods. Described here is the impact of three different cell culture media on variation within pre-stasis HMEC cultures that were derived from reduction mammoplasty tissues of two different individuals. MCDB 170-type and WIT-P, the most commonly used and commercially available media, caused rapid stress-induced stasis and loss of lineage diversity, and in one case caused emergence of post-selection post-stasis cells. M87A outperformed both of the defined media in total PD and maintained lineage diversity for as many as 30 PD. In addition, M87A performed well without serum, exhibiting reduced diversity, but maintaining population doublings and growth rate comparable to the fully supplemented M87A.
[0087] MCDB 170 media is the prototype defined media, upon which MEGM and other commonly used HMEC growth media are based. In the original publication of MCDB 170, rapid clonal growth was followed for only 10 days and, at that time, it was considered the superior media compared to predecessors such as MM. In that first description of MCDB 170 media, a lag in growth at passages 2-4 was reported that was thought to be a form of selection, because the vast majority of cells underwent senescence and only clones of finite lifespan cells emerged. Sixteen years later it was discovered that the cells emerging from the 20- to 40-day-long lag phase had silenced pl6, and were termed post-selection post-stasis HMEC (or vHMEC). There is not a known counterpart to these post-selection post-stasis cells in vivo, but there is some resemblance to rare metaplastic breast tumors. Interestingly, these cells have been commercially available as "normal primary HMEC" for more than two decades. Upon further reflection, defined media like MCDB 170, which was optimized for clonal growth, not mass culture, may
inflict significant stress on the cells that causes a majority to rapidly enter stasis, but also enables clones to undergo selection and grow out.
[0088] The WIT-P media is also defined, and was intended to enable better growth of the luminal epithelial lineage. Representation of K19+/K14- and CD227+/CD10- luminal epithelial cells in WIT-P and at p2 that was comparable to M87A was observed, but the luminal were lost as early as p3 in WIT-P. In the present study, growth of both specimens was better in WIT-P than in MCDB 170, and the appearance of post-stasis cells in WIT-P was not observed.
However, in the original description of WIT media, the reported growth curve shows a 20-40 day-long lag in growth, which would be consistent with cultures going through selection. The early loss of the luminal cells, and the early appearance of large vacuolated cells, was likely due to stress. The composition of WIT-P is proprietary, thus the factors likely to cause the stress are unknown.
[0089] In the case of all three media that were compared in the present study, non- dissociated epithelial organoids were used to initiate the pre-stasis cultures. After the organoids attached to TCP, subsequent sub-cultures were comprised of partially trypsinized cells that had migrated out of the epithelial structures. Dissociation of organoids prior to plating causes a rapid change in microenvironment and a mechanically and chemically stressful environment. The organoid attachment method enables the establishment of ensemble cultures consisting of luminal, myoepithelial, and progenitor cells, which we speculate is important for the stochastic creation of an ecology that supports multiple epithelial cell types. M87A was developed with the goal of reducing stress in HMEC mass cultures. In this regard, the hormone oxytocin is one of the key media additives, because in addition to its well-known roles in maternal, emotional, and sexual behaviors, it also protects cells from death due to metabolic stress. In the mammary gland, myoepithelial cells express the oxytocin receptor, and it is possible that the oxytocin component indirectly supports luminal cells by acting directly upon the cultured myoepithelial cells.
[0090] Defined media are created for the purpose of eliminating variability and unknown components that are introduced by animal sera. Both WIT-P and MCDB 170 are serum free, whereas M87A normally has 0.25% fetal calf serum (FCS). Withdrawal of the FCS component from M87A did not alter the growth rate of HMEC from 3p to lOp, but there was a noticeable
drop in differentiated luminal and myoepithelial cells. The activity of FCS in HMEC cultures is not well defined, however, it may impact differentiation more than growth. Gudjonsson et al. used this to advantage in order to increase the likelihood of transducing mammary progenitor cells with a type-C retrovirus, which can only transduce proliferating cell types. Addition of FCS into H14 media hastened differentiation of mammary epithelial cells into more terminal states, thus leaving progenitor cells as the only ones still dividing. The outcome was the D492 cell line, which is heterogeneous with respect to lineage, and contains multi-potent progenitors. The recent report of conditions for isolating and maintaining estrogen receptor (ER)-expressing pre-stasis luminal cells in HMEC cultures also used serum to advantage. That method relied upon establishing HMEC cultures from dissociated epithelial organoids in FAD media, which contains 5% FCS, and to two different TGF-beta inhibitors. ER+ luminal cells tend to be more observable in 3-D cultures of pre-stasis HMEC in M87A, whereas ER stains only weakly in pre- stasis cells on TCP. ER+ luminal cells could be isolated from cells that migrated from attached organoids in FAD media, so dissociation is not a requirement, but seemingly the media is a requirement.
[0091] Cell culture models lack a microenvironmental context, but the methods and type of media used also can significantly alter the cell intrinsic biology in a detrimental manner.
Combining media that can maintain in vitro the multiple types of cells that comprise a tissue in vivo is a good starting place. Then combining optimal media and culture methodologies with new technologies such as microphysiological systems are likely to give rise to new and accurate human tissue model systems.
EXAMPLE 4: Comparative Example - Basal Medium Derived from Mixture of Media
[0092] As a comparative example, a 1: 1 mixture of commercially available DMEM/F12 and MEBM or M171 (or other MCDB 170-type media) was prepared. Details on MEBM and M171 may be found as referenced above.
93] A composition of DMEM/F12 is provided in the following table:
Table 4.
Table 5
ZnS047H20 5.00E-07 0.1438
Other Organic
Adenine 1.00E-06 0.1351
Choline Chloride 1.00E-04 13.96
D-Glucose 8.00E-03 1441.3 myo-Inositol 1.00E-04 18.02
Putrescine 2HC1 1.00E-09 0.0001611
Sodium Pyruvate 1.00E-03 110
Thymidine 3.00E-07 0.07266
Bulk inorganic ions
CaCl2 2H20 2.00E-03 294
KC1 2.50E-03 186.4
MgS04 7H20 1.50E-03 396.6
NaCl 1.20E-01 7014
KH2P04 5.00E-04 68.05
Miscellaneous
HEPES (free acid) 3.00E-02 7149
NaOH 1.60E-02 640.2
Phenol Red 3.30E-06 1.242
[0095] In Table 5 above, it is noted that the pH of the medium is 7.6 at 22 C and the osmolality is 300 milliosmoles. The molarity listed for "D-Pantothenate 1/2 Ca" is for pantothenate ion, and the molarity of molybdenum is 7.0E-09 M. Further, the NaOH is used to adjust pH, so the exact amount will vary. The final pH at 37C and 5% C02 is 7.3-7.4.
EXAMPLE 5: Comparison of M87A basal medium with basal medium derived from mixture of media
[0096] M87A basal medium was prepared as described above in Example 2. Basal medium was also prepared by a 1: 1 mixture of commercially available media, as described in Example 4 (M171 or MEGM mixed with DMEM/F12 at a 1: 1 ratio). The two prepared media were compared as to their ability to support growth of normal human mammary epithelial cells. The M87A basal medium plus supplements supported identical or better growth - as determined by rate and morphological features - compared to the media generated from commercially available media.
[0097] Representative growth data for HMEC are shown in Figure 5. The data were obtained with an HMEC strain established from specimen 259P, who was age 49 at the time of
surgery. 150 μηι organoids from the specimen were cultured side-by-side in the two types of prepared media. Growth curves are shown as, and slopes were calculated as, population doublings per day. The graph shows that the slopes of the growth curves are very similar in the M87A basal medium plus supplements (circles) versus the mixture of commercially obtained media (squares) over 3-4 passages beginning at passage 2. The slope of the growth curve was 0.9670 + 0.006351 for the M87A basal medium plus supplements, and was 1.044 + 0.1025 for the mixture of commercial media.
[0098] Notwithstanding the appended clauses, the disclosure set forth herein is also defined by the following clauses:
1. A combination of defined stock solutions for making a basal medium, useful for low stress culture of normal human epithelial cells, comprising:
(a) a solution of 20 naturally occurring amino acids;
(b) a solution of vitamins including folic acid;
(c) a solution of trace elements including calcium chloride;
(d) a solution comprising adenine, choline chloride, D-glucose myo-inositol, putrescine 2HC1, sodium pyruvate, and thymidine; and
(e) a solution of HEPES buffer, NaOH, D-glucose and phenol red (optional), wherein the defined stock solutions (a) through (e) are suitable for combination into the basal medium.
2. A basal medium consisting essentially of stock solutions (a) though (e) in clause 1.
3. A basal medium comprising:
(a) 20 naturally occurring amino acids, including L-arginine hydrochloride in an amount between 90 and 120 mg/L;
(b) vitamins including folic acid in an amount of between 1 and 1.5 mg/L;
(c) trace elements including calcium chloride in an amount between 190 and 220 mg/L;
(d) other organics, including adenine, choline chloride, D-glucose (1700-2500 mg/L), myo-inositol, putrescine 2HC1. sodium pyruvate, and thymidine; and
(e) HEPES buffer, NaOH, D- glucose (1000-2000 mg/L) and phenol red (optional), provided that values given in mg/L are mg in distilled water and may be varied by plus or minus an insignificant amount, e.g. 5%, 10%, 15% or 20%, on a component or component basis (e.g., a component by component basis).
4. The basal medium of clause 3 containing the components as defined in Table 1, with the proviso that phenol red is an optional ingredient.
5. An optimized medium containing the basal medium of clause 2 and further comprising serum and a growth factor.
6. The medium of one of clauses 2-5 free of conditioned medium.
7. A method of preparing the basal medium of clause 1, comprising the step of preparing solutions of elements (a) through (e) separately and combining individually as separate stock solutions.
8. A method for culturing normal human epithelial cells, comprising the step of culturing the normal human epithelial cells with a culture medium comprising a basal medium as defined in one of clauses 2-6, for a period of time over which at least 10 doubling of the normal human epithelial cells occurs during the culturing.
9. The method of clause 8 wherein the cells are mammary cells.
[0099] Notwithstanding the appended clauses and the clauses above, the disclosure set forth herein is also defined by the following clauses:
1. A combination of defined stock solutions for making a basal medium, useful for low stress culture of normal human epithelial cells, comprising:
(a) a solution of 20 naturally occurring amino acids;
(b) a solution of vitamins including folic acid;
(c) a solution of trace elements including calcium chloride;
(d) a solution comprising adenine, choline chloride, D-glucose myo-inositol, putrescine 2HC1, sodium pyruvate, and thymidine; and
(e) a solution of HEPES buffer, NaOH, and D-glucose, wherein the defined stock solutions (a) through (e) are suitable for combination into the basal medium.
2. The combination of defined stock solutions of clause 1, wherein the solution of HEPES buffer, NaOH, and D-glucose further comprises phenol red.
3. A basal medium comprising a mixture of stock solutions (a) through (e) as set forth in clause 1 or clause 2.
4. A basal medium consisting essentially of a mixture of stock solutions (a) through (e) as set forth in clause 1 or clause 2.
5. An optimized cell culture medium, comprising:
the basal medium of clause 3 or clause 4; and
serum, a growth factor, or both.
6. The optimized medium of clause 5, comprising serum and a growth factor.
7. A method of making a basal medium useful for low stress culture of epithelial cells, comprising combining:
(a) a solution of 20 naturally occurring amino acids;
(b) a solution of vitamins including folic acid;
(c) a solution of trace elements including calcium chloride;
(d) a solution comprising adenine, choline chloride, D-glucose myo-inositol, putrescine 2HC1, sodium pyruvate, and thymidine; and
(e) a solution of HEPES buffer, NaOH, and D-glucose, in a container to produce a mixture of a basal medium useful for low stress culture of epithelial cells.
8. The method according to clause 7, further comprising, prior to the combining, preparing solutions (a) to (e) separately.
9. The method according to clause 7 or clause 8, wherein the solution of HEPES buffer, NaOH, and D-glucose further comprises phenol red.
10. The method according to any one of clauses 7 to 9, further comprising, after the combining, sterilizing the basal medium.
11. The method according to any one of clauses 7 to 10, further comprising, after the combining, culturing epithelial cells in a medium comprising the basal medium.
12. The method according to any one of clauses 7 to 11, wherein the epithelial cells are normal epithelial cells.
13. The method according to any one of clauses 7 to 12, wherein the epithelial cells are human mammary epithelial cells (HMEC).
14. A basal medium comprising:
(a) 20 naturally occurring amino acids, including L-arginine hydrochloride in an amount between 90 and 120 mg/L;
(b) vitamins including folic acid in an amount of between 1 and 1.5 mg/L;
(c) trace elements including calcium chloride in an amount between 190 and 220 mg/L;
(d) other organics, including adenine, choline chloride, D-glucose (1700-2500 mg/L), myo-inositol, putrescine 2HC1. sodium pyruvate, and thymidine; and
(e) HEPES buffer, NaOH, and D-glucose (1000-2000 mg/L), provided that values given in mg/L are mg in distilled water and may be varied by plus or minus an insignificant amount, e.g. 5%, 10%, 15% or 20%, on a component by component basis.
15. The basal medium of Clause 14, wherein the solution of HEPES buffer, NaOH, and D- glucose (1000-2000 mg/L) further comprises phenol red.
16. The basal medium of clause 14 comprising the components as defined in Table 1, with the proviso that phenol red is an optional ingredient.
17. A medium of any one of clauses 3 to 6 or 14 to 16, wherein the medium is free of conditioned medium.
18. A method for culturing epithelial cells, comprising the step of culturing the normal human epithelial cells with a culture medium comprising a medium as defined in any one of clauses 3 to 6 or 14 to 17, for a period of time over which at least 10 population doublings of the epithelial cells occurs during the culturing.
19. The method according to clause 18, wherein the epithelial cells are normal epithelial cells.
20. The method according to clause 18 or clause 19, wherein the epithelial cells are human mammary epithelial cells (HMEC).
CONCLUSION
[0100] The above specific description is meant to exemplify and illustrate the invention and should not be seen as limiting the scope of the invention, which is defined by the literal and equivalent scope of the appended claims. Any patents or publications mentioned in this
specification are intended to convey details of methods and materials useful in carrying out certain aspects of the invention which may not be explicitly set out but which would be understood by workers in the field. Such patents or publications are hereby incorporated by reference to the same extent as if each was specifically and individually incorporated by reference and contained herein, as needed for the purpose of describing and enabling the method or material referred to.
Claims
1. A combination of defined stock solutions for making a basal medium, useful for low stress culture of normal human epithelial cells, comprising:
(a) a solution of 20 naturally occurring amino acids;
(b) a solution of vitamins including folic acid;
(c) a solution of trace elements including calcium chloride;
(d) a solution comprising adenine, choline chloride, D-glucose myo-inositol, putrescine 2HC1, sodium pyruvate, and thymidine; and
(e) a solution of HEPES buffer, NaOH, and D-glucose, wherein the defined stock solutions (a) through (e) are suitable for combination into the basal medium.
2. The combination of defined stock solutions of claim 1, wherein the solution of HEPES buffer, NaOH, and D-glucose further comprises phenol red.
3. A basal medium comprising a mixture of stock solutions (a) through (e) as set forth in claim 1 or claim 2.
4. A basal medium consisting essentially of a mixture of stock solutions (a) through (e) as set forth in claim 1 or claim 2.
5. An optimized cell culture medium, comprising:
the basal medium of claim 3 or claim 4; and
serum, a growth factor, or both.
6. The optimized medium of claim 5, comprising serum and a growth factor.
7. A method of making a basal medium useful for low stress culture of epithelial cells, comprising combining:
(a) a solution of 20 naturally occurring amino acids;
(b) a solution of vitamins including folic acid;
(c) a solution of trace elements including calcium chloride;
(d) a solution comprising adenine, choline chloride, D-glucose myo-inositol, putrescine 2HC1, sodium pyruvate, and thymidine; and
(e) a solution of HEPES buffer, NaOH, and D-glucose, in a container to produce a mixture of a basal medium useful for low stress culture of epithelial cells.
8. The method according to claim 7, further comprising, prior to the combining, preparing solutions (a) to (e) separately.
9. The method according to claim 7 or claim 8, wherein the solution of HEPES buffer, NaOH, and D-glucose further comprises phenol red.
10. The method according to any one of claims 7 to 9, further comprising, after the combining, sterilizing the basal medium.
11. The method according to any one of claims 7 to 10, further comprising, after the combining, culturing epithelial cells in a medium comprising the basal medium.
12. The method according to any one of claims 7 to 11, wherein the epithelial cells are normal epithelial cells.
13. The method according to any one of claims 7 to 12, wherein the epithelial cells are human mammary epithelial cells (HMEC).
14. A basal medium comprising:
(a) 20 naturally occurring amino acids, including L-arginine hydrochloride in an amount between 90 and 120 mg/L;
(b) vitamins including folic acid in an amount of between 1 and 1.5 mg/L;
(c) trace elements including calcium chloride in an amount between 190 and 220 mg/L;
(d) other organics, including adenine, choline chloride, D-glucose (1700-2500 mg/L), myo-inositol, putrescine 2HC1. sodium pyruvate, and thymidine; and
(e) HEPES buffer, NaOH, and D-glucose (1000-2000 mg/L), provided that values given in mg/L are mg in distilled water and may be varied by plus or minus an insignificant amount, e.g. 5%, 10%, 15% or 20%, on a component by component basis.
15. The basal medium of Claim 14, wherein the solution of HEPES buffer, NaOH, and D- glucose (1000-2000 mg/L) further comprises phenol red.
16. The basal medium of claim 14 comprising the components as defined in Table 1, with the proviso that phenol red is an optional ingredient.
17. A medium of any one of claims 3 to 6 or 14 to 16, wherein the medium is free of conditioned medium.
18. A method for culturing epithelial cells, comprising the step of culturing the normal human epithelial cells with a culture medium comprising a medium as defined in any one of claims 3 to 6 or 14 to 17, for a period of time over which at least 10 population doublings of the epithelial cells occurs during the culturing.
19. The method according to claim 18, wherein the epithelial cells are normal epithelial cells.
20. The method according to claim 18 or claim 19, wherein the epithelial cells are human mammary epithelial cells (HMEC).
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| US20130055417A1 (en) * | 2004-05-07 | 2013-02-28 | The Brigham And Women's Hospital | Hormone responsive tissue culture system and uses thereof |
| US20150247121A1 (en) * | 2006-03-31 | 2015-09-03 | The Regents Of The University Of California | Increasing cell culture population doublings for long-term growth of finite life span human cell cultures |
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| US4423145A (en) | 1981-05-07 | 1983-12-27 | Stampfer Martha R | Enhanced growth medium and method for culturing human mammary epithelial cells |
| US4808532A (en) | 1985-07-01 | 1989-02-28 | The United States Of America As Represented By The United States Department Of Energy | Continuous human cell lines and method of making same |
| US6692961B1 (en) * | 1996-10-11 | 2004-02-17 | Invitrogen Corporation | Defined systems for epithelial cell culture and use thereof |
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| US20130055417A1 (en) * | 2004-05-07 | 2013-02-28 | The Brigham And Women's Hospital | Hormone responsive tissue culture system and uses thereof |
| US20150247121A1 (en) * | 2006-03-31 | 2015-09-03 | The Regents Of The University Of California | Increasing cell culture population doublings for long-term growth of finite life span human cell cultures |
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| CN113999808A (en) * | 2021-10-29 | 2022-02-01 | 扬州大学 | Method for regulating and controlling immunity in cow mammary gland epithelial cells by using escherichia coli |
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