Human breast cancer MDA-mb-231 cell proliferation inhibitor
DHMBA inhibits breast cancer cell proliferation and metastasis by blocking signaling pathways, offering a less toxic treatment option for bone metastatic breast cancer.
Patent Information
- Application Number
- JP2024033009
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-03-05
- Publication Date
- 2025-09-18
AI Technical Summary
Current treatments for bone metastatic breast cancer, such as bisphosphonates and chemotherapy, have severe side effects, and there is a need for more effective compounds with fewer adverse effects on normal tissues.
The use of 3,5-dihydroxy-4-methoxybenzyl alcohol (DHMBA) as an inhibitor to block cell signaling pathways and promote apoptotic cell death in human breast cancer MDA-MB-231 cells, thereby inhibiting proliferation and metastatic activity.
DHMBA effectively suppresses the proliferation, metastatic activity, and bone microenvironment of MDA-MB-231 cells by blocking EGF and TNF-α signaling, providing a therapeutic strategy for breast cancer with reduced side effects.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a growth inhibitor for metastatic human breast cancer cells. [Background technology]
[0002] Breast cancer is the most serious malignant tumor and the leading cause of cancer-related deaths in women. Breast cancer has a high tendency to metastasize to bone, which promotes bone turnover and leads to bone damage.
[0003] Approximately 70-80% of patients with advanced breast cancer suffer from bone metastasis. Bone metastasis arises from interactions between metastatic tumor cells and cells in the bone microenvironment. The spine is the most common site of bone metastasis in breast cancer patients. Tumor cell invasion into bone tissue causes bone loss, pain, pathological fractures, hypercalcemia, and spinal cord compression, significantly reducing patients' quality of life.
[0004] Breast cancer can be classified into four molecular subtypes based on the expression of hormone receptors (estrogen receptor, progesterone receptor, and human epidermal growth factor receptor 2). Triple-negative breast cancer (TNBC) lacks expression of all three hormone receptors and cannot be effectively targeted with hormonal therapy. Notably, TNBC is highly heterogeneous, with wide variation in molecular characteristics and response to treatment. TNBC is highly aggressive and metastatic, with a rapid risk of recurrence and a poor prognosis, including low survival rates.
[0005] Bone loss induced by bone metastasis of breast cancer cells is thought to be due to both activated osteoclastic bone resorption and suppressed osteoblastic bone formation. Bisphosphonates and anti-RANKL antibodies (denosumab) are the current standard treatments for patients with bone metastases.
[0006] Furthermore, chemotherapy drugs have been shown to be more effective against breast cancer. However, these treatments are associated with severe side effects. To date, the most recommended drug is the anthracycline doxorubicin, which is more effective against breast cancer but is associated with cardiotoxicity. Due to the limitations of chemotherapeutic drugs, more effective compounds and hormones with less or no adverse effects on normal tissues are needed as a preferred treatment option.
[0007] A novel phenolic antioxidant, 3,5-dihydroxy-4-methoxybenzyl alcohol (DHMBA), is believed to have been discovered in the Pacific oyster Crassostrea gigas. DHMBA possesses dual properties, acting as a radical scavenger and preventing oxidative stress in various cells. In particular, DHMBA is an excellent peroxyl radical scavenger, approximately 15 times and four orders of magnitude more potent than Trolox in lipid and aqueous media, respectively. This compound reacts more rapidly with HOO(-) than other known antioxidants, such as resveratrol and ascorbic acid. As an antioxidant, DHMBA may be an important dietary factor in regulating cellular function. Recently, DHMBA has been shown to inhibit the growth of metastatic prostate cancer cells by targeting various signaling pathways. The present inventors have already filed and presented a patent application for a new strategy for the treatment of prostate cancer using DHMBA. Thus, elucidating the pharmacological actions of DHMBA is considered important for the prevention and treatment of various diseases. [Prior art documents] [Patent documents]
[0008] [Patent Document 1] Patent Publication No. 2012-153852 Summary of the Invention [Problem to be solved by the invention]
[0009] In this study, we investigated whether DHMBA has an inhibitory effect on human bone metastatic breast cancer MDA-MB-231 cells in vitro, and confirmed that incubation with DHMBA affects the proliferation, metastatic activity, and bone microenvironment of MDA-MB-231 cells in vitro. Mechanistically, DHMBA suppresses several molecules involved in EGF signaling and blocks TNF-α signaling in MDA-MB-231 cells, demonstrating that this invention can provide a useful therapeutic strategy for human breast cancer. Therefore, an object of the present invention is to provide an inhibitor such as an inhibitor of MDA-MB-231 cell proliferation, which contains DHMBA as an active ingredient. [Means for solving the problem]
[0010] The present invention provides The active ingredient is 3,5-dihydroxy-4-methoxybenzyl alcohol, which has the effect of inhibiting the proliferation of human breast cancer MDA-MB-231 cells. It is characterized by the fact that or The growth inhibitory effect of the human breast cancer MDA-MB-231 cells is exerted by blocking different cell signaling pathways. It is characterized by: or The growth inhibitory effect of the human breast cancer MDA-MB-231 cells is exerted by blocking different cell signaling pathways and regulating the levels of proteins involved in different cell signaling pathways in MDA-MB-231 cells. It is characterized by: or The active ingredient is 3,5-dihydroxy-4-methoxybenzyl alcohol, which promotes apoptotic cell death in human breast cancer MDA-MB-231 cells. It is characterized by the fact that or It contains 3,5-dihydroxy-4-methoxybenzyl alcohol as an active ingredient and has the effect of suppressing the metastatic activity of human breast cancer MDA-MB-231 cells. It is characterized by the fact that or The active ingredient is 3,5-dihydroxy-4-methoxybenzyl alcohol, and it has the effect of suppressing the decrease of osteoblastic MC3T3-E1 cells co-cultured with human breast cancer cells MDA-MB-231 and the effect of suppressing the promotion of cell death of the osteoblastic MC3T3-E1 cells. It is characterized by the fact that or This product contains 3,5-dihydroxy-4-methoxybenzyl alcohol as an active ingredient and has the effect of suppressing the decrease of macrophage RAW264.7 cells co-cultured with human breast cancer cell MDA-MB-231 and the effect of suppressing the promotion of cell death of the macrophage RAW264.7 cells. It is characterized by the fact that or A compound containing 3,5-dihydroxy-4-methoxybenzyl alcohol as an active ingredient that inhibits TNF-α signaling in human breast cancer MDA-MB-231 cells and has the effect of reducing TNF-α production. It is characterized by the following. [Effects of the Invention]
[0011] According to the present invention, the inhibitory effect of DHMBA on human bone metastatic breast cancer MDA-MB-231 cells was examined in vitro, and it was confirmed that incubation with DHMBA affected the proliferation, metastatic activity, and bone microenvironment of MDA-MB-231 cells in vitro. Mechanistically, DHMBA inhibited several molecules related to EGF signaling and blocked TNF-α signaling in MDA-MB-231 cells, providing a useful therapeutic strategy for human breast cancer. In other words, the present invention has the excellent effect of providing inhibitors, such as inhibitors of MDA-MB-231 cell proliferation, containing DHMBA as an active ingredient. [Brief explanation of the drawings]
[0012] [Figure 1]The marine factor 3,5-dihydroxy-4-methoxybenzyl alcohol (DHMBA) inhibits the growth of human breast cancer MDA-MB-231 cells in vitro. (A) Effect on colony formation. MDA-MB-231 cells (1x103 cells / 2mL per well of a 6-well plate) were cultured in DMEM containing 10% FBS and 1% P / S for 9 days in the presence of a medium (final concentration of 1% ethanol) or DHMBA (1 or 10µM). Photographs of plates stained with crystal violet are shown. (B) Colony counts are shown. Data are presented as the mean ± SD of six wells using different cell preparations. (C) Effect on cell proliferation. Cells (1x105 cells / mL per well of a 24-well plate) were cultured in the presence of a medium (final concentration of 1% ethanol) or DHMBA (10µM) for 1, 2, 3, 4, and 5 days. The number of cells attached to the dish was counted. (D) Effect of increasing concentrations of DHMBA. Cells (1x105 cells / mL per well) were cultured for 3 days in DMEM containing DHMBA (0.1, 1, 10, 100, or 1000 μM). (E) Effect of epidermal growth factor (EGF). Cells (1x105 cells / mL per well) were cultured for 3 days in DMEM containing EGF (50, 100, or 200 ng / mL) without FBS in the presence of vehicle (1% ethanol) or DHMBA (10 μM), and the number of adherent cells was counted. Data are shown as mean ± SD from 8 wells of duplicate plates using different cell preparations. *: p<0.001 vs. control group (gray bar). 1-way ANOVA, Tukey-Kramer post-test. [Figure 2]Inhibitory effect of DHMBA on the proliferation of human breast cancer MDA-MB-231 cells in the presence of cell cycle inhibitors or intracellular signaling inhibitors. (A) and (B) Cells (1x105 cells / mL per well) were cultured for 3 days in the presence of vehicle (final concentration 1% ethanol) or DHMBA (10 μM) with or without cell cycle inhibitors, including roscovitine (10 or 100 nM), butyrate (10 or 100 μM), or sulforaphane (1 or 10 nM). (C) and (D) Cells (1x105 cells / mL per well) were cultured for 3 days in the presence of vehicle (1% ethanol) or DHMBA (10 μM) with or without intracellular signaling inhibitors, including wortmannin (10 or 100 nM), PD98059 (10 or 100 μM), or staurosporine (1 or 10 nM). After incubation, the number of cells attached to the dishes was counted. Data are shown as mean ± SD from 8 wells of duplicate plates using different cell preparations. *: p<0.001 vs. the control group (gray bar). One-way ANOVA with Tukey-Kramer post-test. [Figure 3] DHMBA regulates the levels of several proteins associated with the proliferation of human breast cancer MDA-MB-231 cells in vitro. Cells (1x106 cells / 10mL medium in a 100mm dish) were cultured in DMEM containing 10% FBS and 1% P / S for 3 days in the presence of vehicle (1% ethanol) or DHMBA (10µM). After incubation, cells were removed from the dish using a cell scraper in cell lysis buffer containing protease inhibitors. 40µg of supernatant protein per lane was separated by SDS-PAGE (12%), transferred to a nylon membrane, and subjected to Western blotting using antibodies against various proteins. (A) Representative data are shown. (B) Bands are indicated as fold increases relative to the control. Data are shown as means ± SD of values obtained from four dishes using different cell preparations. *: p<0.001 vs. the control group. One-way ANOVA with Tukey-Kramer post-test. [Figure 4] DHMBA promotes cell death of MDA-MB-231 human breast cancer cells in vitro. Cells (1x105 cells / mL per well in a 24-well plate) were cultured in DMEM containing 10% FBS and 1% P / S for 3 days after reaching subconfluence, and then further cultured in the presence of vehicle (1% ethanol as a final concentration) or DHMBA (0.1, 1, 10, 100, or 1000 μM) for 24 hours (A) or 48 hours (B), respectively. (C) Subconfluent cells were further cultured in the presence of vehicle (1% ethanol) or DHMBA (1 μM or 10 μM) with or without caspase-3 inhibitor (10 μM) for 48 hours. The number of cells attached to the dish was counted. Data are shown as the mean ± SD from eight wells in duplicate plates using different cell preparations. (D) To measure the levels of caspase-3 or cleaved caspase-3, cells (1x106 cells / 10ml medium in a 100mm dish) were cultured for 3 days in DMEM containing 10% FBS and 1% P / S in the presence of either vehicle (1% ethanol) or DHMBA (10µM). After incubation, cell lysates were obtained, and 40 micrograms of supernatant protein per lane was separated by SDS-PAGE (12%), transferred to a PVDF membrane, and subjected to Western blotting using antibodies against various proteins. Representative data are shown. Bands are expressed as fold increases relative to the control. Data are presented as the mean ± SD of values obtained from four dishes using different cell preparations. *: p<0.01 vs. the control group (gray bar). One-way ANOVA with Tukey-Kramer post-test. [Figure 5]DHMBA inhibits the migration of human breast cancer MDA-MB-231 cells. Cell migration was analyzed using an in vitro scratch assay. MDA-MB-231 cells (2x105 cells / mL per well in a 24-well plate) were cultured in DMEM containing 10% FBS and 1% P / S for 48 hours. Upon reaching confluence, a linear wound was made in the center of the cell monolayer. The cells were then cultured for 24 or 48 hours in the same medium supplemented with vehicle (1% ethanol) or DHMBA (0.1, 1, 10, 50, or 100 μM). After incubation, fixed cells were stained with crystal violet. To assess cell migration, the migration distance was imaged, and representative photographs are shown (Figures A and B). The migration distance was expressed as a relative value (% of the control) between the distance of the cell-free area at the start of incubation (control) and after 24 or 48 hours of incubation (Figures C and D). Data are shown as the mean ± SD of values obtained from a total of 8 wells on two plates using different cell preparations. *: p<0.001 vs. the control group (before culture; white bar). #: p<0.001 vs. the DHMBA-free group (gray bar). One-way ANOVA, Tukey-Kramer post-test. [Figure 6]DHMBA inhibits the adhesion of human breast cancer MDA-MB-231 cells in vitro. Cancer cell adhesion was assessed using Matrigel. Cancer cells (105 cells / mL per well in a 24-well plate) were suspended in DMEM containing 10% FBS and 1% P / S in the presence of vehicle (1% ethanol) or DHMBA (0.1, 1, 10, or 100 μM). After 30 minutes of incubation at 37°C, nonadherent cells were removed by washing with PBS. Adherent cells were fixed and stained with crystal violet. To assess cell adhesion, one field per well was photographed and counted using Image J2 software. The number of adherent cells was counted randomly in five fields under a light microscope (40x magnification) and averaged. Figure A: Photographs taken using a crystal stick for adherent cells. Figure B: Results are shown as the mean ± SD of values obtained from a total of six wells using two plates with different cell preparations. *: p<0.001 compared to the cell group incubated without DHMBA (white bar). 1-way ANOVA, Tukey-Kramer post-test. [Figure 7]In vitro effects of DHMBA on the proliferation and death of osteoblastic MC3T3-E1 cells cocultured with human breast cancer MDA-MB-231 cells. The crosstalk between MDA-MB-231 and MC3T3-E1 cells was investigated using a transwell chamber. (A): To examine the effect of coculture with MDA-MB-231 cells on MC3T3-E1 cell proliferation, MC3T3-E1 cells (105 cells / ml per well of a 24-well plate) were placed in the lower chamber in the presence of DHMBA (0, 1, or 10 μM). The upper chamber contained 500 μL of MDA-MB-231 cells (5 x 104 cells / mL DMEM). After 3 days of culture, the attached MC3T3-E1 cells were counted. (B): To examine the effect of conditioned medium obtained by culturing MDA-MB-231 cells, MC3T3-E1 cells were cultured for 3 days in the presence of either Bay 11-7082 (10 nM) or DHMBA (10 μM) in conditioned medium (0.25 mL or 0.5 mL per 1 mL of total medium in the well) or conditioned medium (0.5 mL per well). After incubation, the attached MC3T3-E1 cells were counted. In another experiment, to examine the effect of co-culture with MDA-MB-231 cells (C) or conditioned medium (D) on MC3T3-E1 cell death, cells (105 cells / mL per well of a 24-well plate) were cultured for 3 days after reaching subconfluence. (C): After incubation, 500 μL of MDA-MB-231 cells (5 x 104 cells / mL medium) were added to the upper compartment of the transwell chamber and cultured for an additional 2 days. After incubation, the MC3T3-E1 cells attached to the dish were counted. (D): To examine the effect of conditioned medium obtained from incubation with MDA-MB-231 cells on cell death, MC3T3-E1 cells were cultured for 3 days until they reached subconfluence. Then, the medium was replaced with conditioned medium (0.25 mL or 0.5 mL per 1 mL of total medium in the well) containing or without either Bay 11-7082 (10 nM) or DHMBA (10 μM), and the cells were cultured for an additional 2 days. After incubation, the MC3T3-E1 cells attached to the dish were counted.Results are shown as the mean ± SD of values obtained from a total of 8 wells on two plates using different cell preparations. *: p<0.001 vs. control (light gray bar). #: p<0.001 vs. the group without Bay11-7082 (black bar using 0.5 mL of conditioned medium) or the group without DHMBA (dark gray bar in Figures A or C). 1-way ANOVA, Tukey-Kramer post-test. [Figure 8]In vitro effects of DHMBA on the proliferation and death of macrophages, RAW264.7 cells, co-cultured with human breast cancer cells, MDA-MB-231. Using a transwell chamber, the effect of crosstalk between MDA-MB-231 and RAW264.7 cells was examined. (A): To examine the effect of co-culture with MDA-MB-231 cells on RAW264.7 cell proliferation, RAW264.7 cells (105 cells / ml per well of a 24-well plate) were placed in the lower chamber in the presence of DHMBA (0, 1, or 10 μM). The upper chamber contained 500 μL of MDA-MB-231 cells (5 x 104 cells / mL DMEM). After 3 days of culture, the attached RAW264.7 cells were counted. (B): To examine the effect of conditioned medium obtained by culturing MDA-MB-231 cells, RAW264.7 cells were cultured for 3 days in the presence of either Bay 11-7082 (10 nM) or DHMBA (10 μM) in conditioned medium (0.25 mL or 0.5 mL per mL total medium in the well) or conditioned medium (0.5 mL per well). After incubation, the attached RAW264.7 cells were counted. In another experiment, to examine the effect of co-culture with MDA-MB-231 cells (C) or conditioned medium (D) on RAW264.7 cell death, cells (105 cells / mL per well of a 24-well plate) were plated in the presence of DHMBA. After reaching subconfluence, the cells were cultured for 3 days. (C): After incubation, 500 μL (5 x 104 cells / mL medium) of MDA-MB-231 cells were added to the upper compartment of the transwell chamber and cultured for an additional 2 days. After incubation, the RAW264.7 cells attached to the dish were counted. (D): To examine the effect of conditioned medium obtained by culturing MDA-MB-231 cells on cell death, RAW264.7 cells were cultured for 3 days and then replaced with conditioned medium (0.25 mL or 0.5 mL per 1 mL of total medium in the well) containing or without Bay 11-7082 (10 nM) or DHMBA (10 μM) and cultured for an additional 2 days. After incubation, the RAW264.7 cells attached to the dish were counted.Results are shown as the mean ± SD of values obtained from a total of 8 wells on two plates using different cell preparations. *: p<0.001 vs. control (light gray bar). #: p<0.001 vs. the group without Bay11-7082 (black bar using 0.5 mL of conditioned medium) or the group without DHMBA (dark gray bar in Figures A or C). 1-way ANOVA, Tukey-Kramer post-test. [Figure 9] Incubation with DHMBA suppresses TNF-α production in human breast cancer MDA-MB-231 cells. MDA-MB-231 cells (1x105 / mL per well) were cultured in DMEM containing 10% FBS and 1% P / S in 24-well plates for 3 days until subconfluence was reached, with or without DHMBA (0.1, 1, 10, 100, or 250 μM). (A) After incubation, the medium was collected for TNF-α assay, and the TNF-α concentration in the medium was analyzed using a human TNF-α ELISA kit according to the manufacturer's instructions. TNF-α production was expressed as picograms (pg) secreted per mL of culture medium. Results are shown as the mean ± SD of values obtained from eight wells on two plates using different cell preparations. *: p<0.001 vs. control (white bar). One-way ANOVA with Tukey-Kramer post-test. [Figure 10]Hypothesis: DHMBA suppresses proliferation, metastatic activity, and bone microenvironment function of human breast cancer MDA-MB-231 cells. DHMBA regulates various signaling pathways, reducing levels of Ras / PI3K / Akt / MAPK and mTOR and increasing levels of Rb, p53, and p21 in breast cancer cells, thereby suppressing proliferation and metastatic activity. Additionally, DHMBA promotes cell death associated with caspase 3 activation, leading to cell growth inhibition. Furthermore, TNF-α produced by MDA-MB-231 cells suppresses osteoblasts and macrophages, which are involved in bone formation in the bone microenvironment, leading to impaired bone formation. DHMBA protects against this process. Therefore, DHMBA may have a potential inhibitory effect on human breast cancer MDA-MB-231 cells metastasizing to bone. DETAILED DESCRIPTION OF THE INVENTION
[0013] The inventors of the present invention have conducted experiments on the present invention, the details of which are described below.
[0014] (Materials and Methods) (reagent) Dulbecco's modified Eagle's medium (DMEM) was purchased from Mediatech (Herndon, VA, USA). Antibiotics (100 units / mL penicillin and 100 μg / mL streptomycin; P / S) were purchased from Gibco Life Technologies Corporation (Grand Island, NY, USA). α-Minimum Essential Medium (α-MEM) was purchased from Invitrogen Corp. (Carlsbad, CA, USA). Fetal bovine serum (FBS) was purchased from Omega Scientific Inc. Roscovitine, sulforaphane, butyrate, and tumor necrosis factor α (TNF-α) were purchased from R&D Systems (Minneapolis, MN, USA). PD98059, Staurosporin, Wortmannin, Bay 11-7089, crystal violet, human epidermal growth factor (EGF), and all other reagents were purchased from Sigma-Aldrich (St. Louis, MO, USA) unless otherwise noted.
[0015] (3,5-dihydroxy-4-methoxybenzyl alcohol) 3,5-dihydroxy-4-methoxybenzyl alcohol (DHMBA) is an amphiphilic phenolic compound originally isolated from the Pacific oyster (Crassostrea gigas) and recognized for its antioxidant properties. The chemical structure of DHMBA is shown in the specifications of the inventor's previously obtained patents.
[0016] In the present invention, 100% pure DHMBA was used, obtained from Watanabe Oyster Laboratory Co., Ltd. (Hachioji, Tokyo). The DHMBA was dissolved in 100% ethanol and stored at −20° C. until use.
[0017] (human breast cancer cells) MDA-MB-231 human breast cancer cells were obtained from the American Type Culture Collection (ATCC CRL-1435™, ATCC; Rockville, MD, USA). MDA-MB-231 cells lack receptors for estrogen, progesterone, and human epidermal growth factor receptor 2, which are found in triple-negative breast cancers. These cells express high levels of epidermal growth factor receptor (EGFR), and activation of this receptor and its downstream signaling events promotes the migration, proliferation, invasion, and progression of the malignant phenotype of these cells. MDA-MB-231 cells were obtained from the American Type Culture Collection (Rockville, MD, USA).
[0018] (osteoblastic MC3T3-E1 cells) Mouse osteoblastic MC3T3-E1 cells were obtained from the American Type Culture Collection (HTB-77™, ATCC; Rockville, MD, USA). MC3T3-E1 cells were cultured on plastic dishes in α-MEM containing 10% FBS and 1% P / S at 37°C in a CO2 incubator, as previously described.
[0019] (Macrophage RAW264.7 cells) Murine RAW264.7 cells were purchased from the American Type Culture Collection (Rockville, MD, USA). RAW264.7 cells are a monocyte / macrophage-like cell line derived from an Abelson leukemia virus-transformed cell line derived from BALB / c mice. RAW264.7 cells were cultured on plastic dishes in α-MEM containing 10% FBS and 1% P / S at 37°C in a CO2 incubator.
[0020] (Colony formation assay) MDA-MB-231 cells (1x10 3 cells / 2mL / well, 6-well plate) 3 Cells were seeded into 6-well dishes at a density of 1000 / well and cultured in DMEM containing 10% FBS and 1% P / S at 5% CO2 and 37°C for 9 days until visible clones formed on the plate. The resulting colonies were washed three times with phosphate-buffered saline (PBS) (2 mL), fixed with methanol (0.5 mL per well) at room temperature for 20 minutes, and then washed three times with PBS. The colonies were then stained with 0.1% crystal violet (1 mL) at room temperature for 30 minutes. The stained cells were washed four times with PBS (2 mL). The plates were air-dried at room temperature for 2 hours. More than 50 colonies were counted under a microscope (Nikon TMS, Tokyo, Japan).
[0021] (Cell proliferation and cell death assays) MDA-MB-231 cells (1 x 10 per well in a 24-well plate) 5 / mL) were cultured in DMEM containing 10% FBS and 1% P / S in the presence of either vehicle (1% ethanol as a final concentration) or DHMBA (0.1, 1, 10, 100, or 1000 μM) for 1, 2, 3, 4, and 5 days. In separate experiments, cells (1x10 per well of a 24-well plate) were cultured in DMEM containing 10% FBS and 1% P / S in the presence of either vehicle (1% ethanol as a final concentration) or DHMBA (0.1, 1, 10, 100, or 1000 μM). 5 In separate experiments, cells (1x10 per well in a 24-well plate) were cultured in DMEM containing EGF (50, 100, or 200 ng / mL) without FBS in the presence of vehicle (final concentration 1% ethanol) or DHMBA (10 μM) for 3 days. 5Cells (10 μM / mL) were grown to subconfluence for 3 days in DMEM containing 10% FBS and 1% P / S in the presence of a vehicle (final concentration of 1% ethanol) containing effective concentrations of roscovitine (10 or 100 nM), butyrate (10 or 100 μM), sulforaphane (1 or 10 nM), wortmannin (10 or 100 nM), PD98059 (10 or 100 μM), or staurosporin (1 or 10 nM), with or without DHMBA (10 μM). After incubation, cells were detached from each well and counted as described below.
[0022] To measure the effect of DHMBA on cell death, MDA-MB-231 cells (1 x 10 per well) were cultured in 100 wells. 5 Cells (1x10 per well) were cultured in DMEM containing 10% FBS and 1% P / S for 3 days at subconfluence in the presence of vehicle (1% ethanol as a final concentration) or DHMBA (0.1, 1, 10, 100, or 1000 μM), and then cultured for an additional 24 or 48 hours in the presence of vehicle (PBS or 1% ethanol as a final concentration) or DHMBA (0.1, 1, 10, 100, or 1000 μM). In additional experiments, cells (1x10 per well) were cultured in DMEM containing 10% FBS and 1% P / S in the presence of vehicle (1% ethanol as a final concentration) or DHMBA (0.1, 1, 10, 100, or 1000 μM). 5 / mL) were cultured in 24-well plates in DMEM (containing 10% FBS and 1% P / S) for 3 days after reaching subconfluence, and then further cultured for 48 hours in the presence of vehicle (1% ethanol as a final concentration) or DHMBA (1 μM or 10 μM) with or without caspase-3 inhibitor (10 μM).
[0023] After culturing, Ca 2+ / Mg 2+Cells were detached from each well by adding a sterile solution of 0.05% trypsin and EDTA in PBS (Thermo Fisher Scientific, Waltham, MA, USA) (0.1 mL per well) and incubating at 37°C for 2 minutes. Then, DMEM containing 10% FBS (0.9 mL per well) was added. To measure viable cell counts, 0.1 mL of medium containing suspended cells was mixed with 0.1 mL of 0.5% trypan blue staining solution. Viable cells were counted using a microscope (10x magnification, Olympus MTV-3) and a hemocytometer (Sigma-Aldrich, St. Louis, MO) using a cell counter (Rhein Seiki H-102P, Tokyo, Japan). Duplicate counts were averaged for each dish. Cell numbers were expressed as the number per well.
[0024] (Cell migration test was performed) To analyze cell migration in vitro, an in vitro scratch assay was used. MDA-MB-231 cells (2 x 10 cells per well in a 24-well plate) were cultured. 5Cells (100 cells / mL) were cultured for 48 hours in DMEM containing 10% FBS and 1% P / S. Upon confluence, a linear scratch was made in the center of the cell monolayer using a sterile 200 μL pipette tip. The wells were then washed twice with phosphate-buffered saline (PBS, 1 mL) to remove dead cells and cultured for 24 or 48 hours in the presence of vehicle (1% ethanol to a final concentration) or DHMBA (0.1, 1, 10, 50, or 100 μM). The cells were fixed in ice-cold 70% ethanol (0.5 mL / well) for 60 minutes at 4°C, stained with crystal violet (0.5 mL, 0.5% in 20% methanol) for 30 minutes, and then washed three times with PBS (1 mL). After drying overnight, migration distances were imaged. To assess cell migration, one field per well was photographed at baseline and after 24 or 48 hours of culture, and the distance between the cell-free zones was measured using ImageJ software. The migration distance was expressed as a relative value (% of control) of the distance between the cell-free zones at baseline, 24 hours, and 48 hours of culture.
[0025] (Cell adhesion test was performed) The effect of DHMBA on cancer cell adhesion was measured using Matrigel. Briefly, 24-well plates were coated with 200 μL of Matrigel matrix (diluted 1:1 with sterile PBS, Corning) and incubated at 37°C for 2 hours. After removing excess Matrigel, 1x10 cells were cultured in DMEM containing 10% FBS and 1% P / S in the presence of vehicle (1% ethanol as a final concentration) or DHMBA (0.1, 1, 10, or 100 μM). 5A suspension of cancer cells (1 mL) at a density of 1 / mL was added to the coated wells. After incubation for 30 minutes at 37°C under 5% CO2 and 95% air, non-adherent cells were removed by washing three times with 500 μL of PBS. The cells were fixed with ice-cold 95% ethanol (0.5 mL / well) for 20 minutes and stained with crystal violet stain (0.2 mL, 0.5% in 20% methanol per well) for 30 minutes at room temperature, followed by five washes with PBS (1 mL). After drying overnight, one field per well was photographed and measured using Image J software to assess cell adhesion. The number of adherent cells was determined by counting five randomly selected fields under a light microscope (40x magnification) and calculating the average.
[0026] (Conditioning medium was prepared) Conditioned medium was obtained by culturing MDA-MB-231 cells according to a previous method. Briefly, MDA-MB-231 cells (1 x 10 per well in a 24-well plate) were cultured in 1000 mL of PBS. 5 Cells (1000 cells / mL) were cultured in DMEM containing 10% FBS and 1% P / S for 3 days after confluence. The culture medium (conditioned medium) was collected and stored at -20°C until use in culture experiments.
[0027] (Crosstalk between MDA-MB-231 cells and bone microenvironment cells) The effects of DHMBA on the proliferation and death of bone microenvironment cells, including osteoblastic MC3T3-E1 cells and macrophage RAW264.7 cells, were investigated along with their crosstalk with human breast cancer MDA-MB-231 cells. Cell co-culture was performed using a filter-equipped transwell chamber (Corning, Life Sciences, Cat. no. CLS3464-48EA, USA). MC3T3-E1 or RAW264.7 cells (10 per well of a 24-well plate) were placed in the lower compartment of the chamber. 5The upper chamber contained 500 μL (5 x 10 cells / mL) of MDA-MB-231 cells and DHMBA (0, 1, or 10 μM). 4 After incubation, the filter was removed and the cells attached to the dish (well) were counted as described in the "Cell proliferation and death assay" section.
[0028] First, to examine the effect of co-culture with MDA-MB-231 cells on the proliferation of MC3T3-E1 or RAW264.7 cells, cells (10 per well of a 24-well plate) were cultured in the lower compartment of the chamber with or without DHMBA (1 or 10 μM). 5 cells / mL) were co-cultured for 3 days with MDA-MB-231 cells in the upper chamber.
[0029] To examine the effect of conditioned medium obtained from MDA-MB-231 cells on the proliferation of MC3T3-E1 or RAW264.7 cells, cells were cultured for 3 days in the presence or absence of the TNF-α signaling inhibitor Bay 11-7082 (1 or 10 nM) or DHMBA (10 μM) in the conditioned medium (0.25 or 0.5 mL / well per mL of total medium in the well). After incubation, the number of attached MC3T3-E1 or RAW264.7 cells was counted.
[0030] Next, to examine the effect of co-culture with MDA-MB-231 cells on the death of MC3T3-E1 or RAW264.7 cells, cells (10 per well of a 24-well plate) were cultured. 5 After culturing the cells in a medium containing 500 μL of MDA-MB-231 cells (5 x 10 cells / mL) for 3 days until the cells became subconfluent, the medium was replaced. 4The filters were filled with MC3T3-E1 cells or RAW264.7 cells (10 per well) and then cultured with DHMBA (0, 1, or 10 μM) for 2 days. After the culture was completed, the filters were removed and the MC3T3-E1 cells or RAW264.7 cells attached to the dishes were counted. Furthermore, to examine the effect of the conditioned medium on cell death, MC3T3-E1 cells or RAW264.7 cells (10 per well) were added. 5 After culturing for 3 days at a concentration of 0.25 or 0.5 mL per mL of culture medium, the culture medium was replaced with medium containing conditioned medium obtained from MDA-MB-231 cells (0.25 mL or 0.5 mL per mL of culture medium), with or without Bay 11-7082 (1 and 10 nM) or DHMBA (10 μM). The cells were cultured for an additional 2 days. After culturing, the cells were counted.
[0031] (Assay for TNF-α production) MDA-MB-231 cells (1 x 10 per well) 5 Cells (100 μg / mL) were cultured in DMEM containing 10% FBS and 1% P / S with or without DHMBA (0.1, 1, 10, 100, 250 μM) in 24-well plates for 3 days until subconfluence was reached. After incubation, the medium was collected and TNF-α was measured. The TNF-α concentration in the medium was quantified using a human TNF-α ELISA kit (catalog number KHC301) from ThermoFisher Scientific (Waltham, MA, USA) according to the assay manual. The amount of TNF-α produced was expressed as picograms (pg) secreted into the medium (mL).
[0032] (Western blot analysis) MDA-MB-231 cells (1x10 per 100x21 mm dish, 10 mL) 6Cells (cells / dish) were cultured in DMEM containing 10% FBS and 1% P / S in the presence of PBS or DHMBA (10 μM) at 37°C and 5% CO2 for 3 days. After incubation, cells were washed three times with ice-cold PBS and lysed in cell lysis buffer (Cell Signaling Technology, Inc.) supplemented with protease inhibitors and protein phosphatase inhibitors (Roche Diagnostics, Indianapolis, IN, USA). The collected lysates were centrifuged at 17,000 xg for 10 minutes at 4°C to obtain fractions containing the cytoplasm and endoplasmic reticulum. Protein concentrations in the supernatants were measured using Bio-Rad Protein Assay Dye (Bio-Rad Laboratories, Inc.). The cell lysates were stored at -80°C until use in Western blot assays.
[0033] Forty micrograms of supernatant protein was applied to each lane and separated by SDS-PAGE (12%). After electrophoresis, the gel was transferred to a PVDF membrane and immunoblotted using specific antibodies. Membranes were blocked with SuperBlock® T20 blocking buffer (Thermo Fisher Scientific, Inc.). The transferred membranes were obtained from Cell Signaling Technology (Danvers, MA, USA), and were stained with antibodies against Akt (Cat. no. 9272, rabbit), Ras (Cat. no. 3339, rabbit), PI3-kinase p1100α (Cat. no. 4255, rabbit), mitogen-activated protein kinase (MAPK; Cat. no. 4695, rabbit), phospho-MAPK (Cat. no. 4370, rabbit), mechanistic target of rapamycin (mTOR; Cat. no. 4517, mouse), Rb (Cat. no. 9309, mouse), p21 (Cat. no. 2947, rabbit), and β-actin (Cat. no. 3700, mouse), including p53 (sc-126, mouse). For immunoblotting using the specific antibodies listed above, membranes were incubated with each primary antibody overnight at 4°C and then analyzed by immunoblotting. Horseradish peroxidase-conjugated secondary antibodies (cat. no. 7076P2 or 7074S for mouse and rabbit antibodies, respectively; Cell Signaling Technology, Inc.; dilution 1:2,000) were incubated for 60 min at 4°C. A total of three blots from independent experiments were scanned with an Epson Perfection 1660 Photo scanner, and bands were quantified using Image J2 software (National Institutes of Health, Bethesda, MD, USA).
[0034] (statistical analysis) Statistical analysis of data was performed using GraphPad InStat version 3 for Windows XP (GraphPad Software Inc. La Jolla, CA). Data are presented as mean ± standard deviation (SD). Multiple comparison tests were performed on parametric data using one-way analysis of variance (ANOVA) with Tukey-Kramer multiple comparison post-hoc test. Significant differences were considered at a risk level of 0.05% or less.
[0035] (The experimental results of the above experiment are shown below.) 1. The marine factor 3,5-dihydroxy-4-methoxybenzyl alcohol (DHMBA) was confirmed to inhibit the proliferation of human breast cancer MDA-MB-231 cells in vitro.
[0036] First, we investigated whether DHMBA affects colony formation in vitro in human breast cancer MDA-MB-231 cells. MDA-MB-231 cells (1 x 10 per well) were cultured in vitro. 3 Cells (1x10 per well) were cultured in DMEM in the presence of a vehicle (1% ethanol as a final concentration) or DHMBA (1 or 10 μM) for 9 days. Colony formation was suppressed by culturing with DHMBA (Figure 1A and B). To further examine the effect of DHMBA on the proliferation of MDA-MB-231 cells, cells (1x10 per well) were cultured in DMEM for 9 days in the presence of a vehicle (1% ethanol as a final concentration) or DHMBA (1 or 10 μM). Colony formation was suppressed by culturing with DHMBA (Figure 1A and B). 5 Cells (1000 cells / ml) were cultured in the presence of vehicle (1% ethanol) or DHMBA (10 μM) for 1, 2, 3, 4, and 5 days. Culture in the presence of DHMBA reduced the number of cells attached to the dish (Figure 1C).
[0037] This effect was also confirmed by increasing the concentration of DHMBA (1, 10, 100, or 1000 μM). Notably, incubation with DHMBA (10 μM) blocked the stimulatory effect of epidermal growth factor (EGF; 50, 100, or 200 ng / ml) on MDA-MB-231 cell proliferation (Figure 1E). Thus, DHMBA was found to suppress the proliferation of human breast cancer MDA-MB-231 cells in vitro.
[0038] 2 The inhibitory effect of DHMBA on breast cancer cell proliferation was confirmed to be related to the blockade of multiple signaling pathways.
[0039] The inhibitory effect of DHMBA on the proliferation of MDA-MB-231 breast cancer cells was examined using inhibitors of various intracellular signaling pathways (Figure 2). When cancer cells were cultured with cell cycle inhibitors such as roscovitine (10 or 100 nM), butyrate (10 or 100 μM), or sulforaphane (1 or 10 nM) (Figure 2A), or with intracellular signaling factor inhibitors such as wortmannin (10 or 100 nM), PD98059 (10 or 100 μM), or staurosporin (1 or 10 nM) (Figure 2C), breast cancer cell proliferation was suppressed. These inhibitory effects were not further enhanced in the presence of DHMBA (10 μM) (Figures 2C and D). These results suggest that the inhibitory effect of DHMBA on breast cancer cell proliferation is exerted by blocking different signaling pathways.
[0040] 3 DHMBA was confirmed to regulate the expression levels of proteins related to breast cancer cell proliferation.
[0041] We analyzed mechanistically whether DHMBA regulates the levels of various proteins involved in signaling pathways in breast cancer MDA-MB-231 cell proliferation (Figure 3). The levels of Ras, PI3K, Akt, MAP kinase (MAPK), phosphor-MAPK, and mTOR in MDA-MB-231 cells were reduced by culturing them with DHMBA (Figures 3A and 3B). These results support the idea that the inhibitory effect of DHMBA on cell proliferation is exerted by regulating the levels of various proteins involved in different signaling pathways in MDA-MB-231 cells.
[0042] 4 DHMBA was confirmed to promote breast cancer cell death.
[0043] To elucidate the effect of DHMBA on cell death in MDA-MB-231 breast cancer cells, subconfluent cells were further cultured in the presence of DHMBA (0.1, 1, 10, 100, or 1000 μM) for 24 or 48 hours (Figure 4A and B). After incubation, the number of cells attached to the dish was counted. A decrease in cell number was induced by incubation with DHMBA (1, 10, 100, or 1000 μM), indicating that DHMBA treatment induces cell death. Mechanistically, after the cell cultures reached subconfluence, they were further cultured in the presence of DHMBA (1 or 10 μM) for 48 hours, with or without a caspase-3 inhibitor (10 μM) (Figure 4C). The promoting effect of DHMBA on cell death was suppressed by the presence of the caspase-3 inhibitor. Furthermore, the levels of caspase-3 and cleaved caspase-3 in MDA-MB-231 cells were increased by treatment with DHMBA (10 μM) (Figure 4D). These results suggest that incubation with DHMBA promotes apoptotic cell death in breast cancer MDA-MB-231 cells.
[0044] 5 DHMBA was confirmed to suppress the metastatic activity of breast cancer cells.
[0045] To analyze the effect of DHMBA on cell migration, MDA-MB-231 cells were cultured with or without DHMBA (0.1, 1, 10, 50, 100 μM) for 24 or 48 hours after cell scratching and allowed to reach subconfluence (Figure 5). Measurement of migration distance revealed that incubation with DHMBA inhibited MDA-MB-231 cell migration (Figure 5). Furthermore, incubation with DHMBA (1, 10, 100 μM) inhibited MDA-MB-231 cell adhesion in vitro (Figure 6). These results suggest that incubation with DHMBA inhibits the metastatic activity of breast cancer cells.
[0046] 6 The in vitro effects of DHMBA on the proliferation and death of osteoblastic MC3T3-E1 cells co-cultured with human breast cancer cells MDA-MB-231 were confirmed.
[0047] The effect of crosstalk between MDA-MB-231 and MC3T3-E1 cells was investigated using a transwell chamber (Figure 7). To examine the effect of co-culture with MDA-MB-231 cells on the proliferation of MC3T3-E1 cells, MC3T3-E1 cells (10 per well) were cultured in the lower chamber in the presence of DHMBA (0, 1, 10 μM). 5 The upper chamber was filled with 500 μL of MDA-MB-231 cells (5 x 10 cells / mL). 4After 3 days of culture, MC3T3-E1 cells attached to the dishes were counted (Figure 7A). The proliferation of MC3T3-E1 cells was suppressed by coculture with MDA-MB-231 cells, and this suppression was blocked by the presence of DHMBA (1 or 10 μM) (Figure 7A). To further examine the effects of the conditioned medium obtained by coculture with MDA-MB-231 cells, MC3T3-E1 cells were cultured for 3 days in the presence of Bay 11-7082 (10 nM), an inhibitor of the TNF-α signaling pathway, or DHMBA (10 μM), with the conditioned medium (0.25 mL or 0.5 mL per 1 mL of medium in the well) (Figure 7B). The proliferation of MC3T3-E1 cells attached to the dishes was suppressed by culturing them in the conditioned medium (Figure 7B). These results suggest that the suppression of MC3T3-E1 cell proliferation by co-culture with MDA-MB-231 cells is mediated by TNF-α signaling, and that this pathway is also inhibited by DHMBA.
[0048] In other experiments, to examine the effect of co-culture with MDA-MB-231 cells (Figure 7C) or conditioned medium (Figure 7D) on the killing of MC3T3-E1 cells, cells (10 per well) were cultured. 5MC3T3-E1 cells were cultured at a concentration of 0.25 or 0.5 mL per mL of culture medium in the well after reaching subconfluence for 3 days. After culture, MDA-MB-231 cells were seeded in the upper compartment of the transwell chamber and cultured for an additional 2 days. The proliferation of MC3T3-E1 cells was suppressed by coculture with MDA-MB-231 cells, and this suppression was blocked by the presence of DHMBA (1 or 10 μM) (Figure 7C). To further examine the effect of conditioned medium obtained by coculture with MDA-MB-231 cells on cell death, MC3T3-E1 cells were cultured after reaching subconfluence for 3 days, then replaced with conditioned medium (0.25 mL or 0.5 mL per mL of culture medium in the well) containing or without Bay 11-7082 (10 nM) or DHMBA (10 μM), and cultured for an additional 2 days (Figure 7D). The number of MC3T3-E1 cells adhering to the dish was reduced by culturing in conditioned medium. This reduction was blocked by the presence of Bay 11-7082 or DHMBA (Figure 7D). These results suggest that the suppression of MC3T3-E1 cells by coculture with MDA-MB-231 cells was mediated by TNF-α signaling and that this pathway was also blocked by DHMBA.
[0049] 7 The effects of DHMBA on the proliferation and death of macrophage RAW264.7 cells co-cultured with breast cancer cells were confirmed.
[0050] Macrophages play a regulatory role in the bone microenvironment. Therefore, we used a transwell chamber method to examine whether coculture with breast cancer MDA-MB-231 cells altered the proliferation and death of macrophages in RAW264.7 cells (Figure 8). To examine the effect of coculture with MDA-MB-231 cells on RAW264.7 cell proliferation, RAW264.7 cells were placed in the lower chamber in the presence of DHMBA (0, 1, or 10 μM). MDA-MB-231 cells were seeded in the upper chamber. After 3 days of culture, the number of RAW264.7 cells attached to the dish was counted (Figure 8A). The proliferation of RAW264.7 cells was suppressed by coculture with MDA-MB-231 cells. This reduction was blocked by the presence of DHMBA (1 or 10 μM). Culture of RAW264.7 cells in conditioned medium prepared from MDA-MB-231 cells suppressed their proliferation (Figure 8B). This inhibition was blocked by treatment with Bay 11-7082 (10 nM) or DHMBA (10 μM).
[0051] We further investigated the effect of coculture with MDA-MB-231 cells (Figure 8C) or conditioned medium (Figure 8D) on RAW264.7 cell death. RAW264.7 cell death was enhanced by coculture with MDA-MB-231 cells. This enhancement was blocked by the presence of DHMBA (1 or 10 μM) (Figure 8C). RAW264.7 cell death was enhanced by culturing in conditioned medium prepared from MDA-MB-231 cells (Figure 8D). This enhancement was blocked by treatment with Bay 11-7082 (10 nM) or DHMBA (10 μM) (Figure 8D). These results suggest that the suppression of RAW264.7 macrophages by coculture with MDA-MB-231 cells is mediated by TNF-α signaling, and that this pathway is also blocked by DHMBA.
[0052] 8 It was confirmed that incubation with DHMBA reduced TNF-α production in breast cancer cells.
[0053] TNF-α levels are elevated in the blood of breast cancer patients. The present inventors investigated whether incubation with DHMBA affects TNF-α production in MDA-MB-231 cells in vitro. The results showed that TNF-α production in MDA-MB-231 cells was reduced by incubation with DHMBA (1, 10, 100, 250 μM). These results suggest that incubation with DHMBA suppresses TNF-α signaling in MDA-MB-231 cells.
[0054] (Consideration) Human breast cancer is a leading cause of cancer-related death in women, resulting in bone fractures and severely painful osteolysis. Human breast cancer MDA-MB-231 cells, which cause bone metastasis, lack receptors for estrogen, progesterone, and epidermal growth factor receptor 2 and are triple-negative. The marine factor 3,5-dihydroxy-4-methoxybenzyl alcohol (DHMBA) has been shown to scavenge intracellular free radicals and prevent oxidative stress. However, its pharmacological role remains highly unknown.
[0055] In this study, we demonstrated that incubation with DHMBA inhibited colony formation and proliferation of MDA-MB-231 cells in vitro, promoting cell death and leading to the suppression of cancer cell proliferation. Furthermore, incubation with DHMBA was found to inhibit the migration and adhesion of MDA-MB-231 cells, suggesting the suppression of metastatic activity. These results demonstrate that DHMBA has an inhibitory effect on metastatic breast cancer cells in vitro.
[0056] In particular, the epidermal growth factor (EGF)-stimulatory effect on MDA-MB-231 cell proliferation was suppressed in the presence of DHMBA. Furthermore, we analyzed the underlying mechanism by which DHMBA inhibits MDA-MB-231 cell proliferation using various inhibitors of intracellular signaling pathways. The inhibitory effect of DHMBA on MDA-MB-231 cell proliferation was not enhanced in the presence of inhibitors of cell cycle and intracellular signaling pathways, suggesting that DHMBA inhibits diverse signaling processes. Furthermore, DHMBA treatment reduced the levels of PI3-kinase 100α, Akt, MAPK, phosphor-MAPK, or mTOR, which are associated with EGF-stimulated cell proliferation, and increased the levels of p53, p21, and Rb, which inhibit cell proliferation. Additionally, DHMBA suppressed the activation of caspase-3, which is associated with the induction of apoptotic cell death, resulting in a decrease in cell number. These findings suggest that DHMBA regulates the expression levels of various proteins associated with promoting cell proliferation, leading to a decrease in cell number. DHMBA is thought to regulate the gene expression of various proteins involved in cell proliferation signaling.
[0057] Interestingly, incubation with DHMBA was found to suppress the migration and adhesion of MDA-MB-231 cells, suggesting an inhibitory effect on metastatic activity. We previously showed that incubation with DHMBA inhibits the migration and invasion of human prostate cancer cells in vitro by reducing the levels of related proteins, such as NF-κB 65, caveolin-1, and integrins. DHMBA was also found to suppress the metastatic activity of human bone metastatic cancer cells, including prostate and breast cancer cells, in vitro.
[0058] Osteoblasts promote bone formation. Activated macrophages are the most likely candidates for promoting bone formation and are also involved in tissue repair processes in other tissues. Furthermore, we investigated whether coculture with MDA-MB-231 cells affects osteoblasts and macrophages involved in the bone microenvironment in vitro using a transwell chamber method with cancer cells and osteoblasts or macrophage RAW264.7 cells. We found that coculture with MDA-MB-231 cells reduced the proliferation and enhanced cell death of osteoblastic MC3T3-E1 cells or macrophage RAW264.7 cells, resulting in a decrease in the number of these cells. These findings suggest that MDA-MB-231 cells suppress osteoblasts and macrophages involved in bone formation in the bone microenvironment.
[0059] In particular, incubation with conditioned medium obtained from MDA-MB-231 cells reduced the proliferation and promoted the death of osteoblastic MC3T3-E1 cells and macrophage RAW264.7 cells. The effects of conditioned medium on the proliferation and death of MC3T3-E1 and RAW264.7 cells were suppressed in the presence of the signaling inhibitor TNF-α, suggesting that TNF-α is involved in the suppressive effect of MDA-MB-231 cells on bone microenvironment cells. TNF-α concentrations have been reported to increase in the serum of breast cancer patients depending on the stage of the disease. TNF-α was produced by MDA-MB-231 cells in vitro, and this production was reduced by incubation with DHMBA. Osteoblast function is suppressed by TNF-α signaling, resulting in impaired osteoblast formation and bone loss. Incubation with DHMBA may inhibit the effects of TNF-α on osteoblasts or macrophages. Presumably, breast cancer MDA-MB-231 cells produce TNF-α, which acts on osteoblasts and macrophages in the bone microenvironment, leading to impaired bone formation, a process that is inhibited by DHMBA.
[0060] (Conclusion) The present invention demonstrates that DHMBA inhibits the proliferation and metastatic activity of human breast cancer MDA-MB-231 cells and protects them from cancer cell-induced impairment of the proliferation of bone microenvironment cells involved in bone formation.
[0061] The mechanism of action is based on the fact that DHMBA inhibits EGF-stimulated cell proliferation by controlling various signaling pathways in human breast cancer cells, thereby suppressing cell proliferation and metastatic activity. Furthermore, breast cancer cells suppress osteoblasts and macrophages, which promote bone formation, leading to bone loss. DHMBA may protect against this process. Therefore, DHMBA is useful as a means to suppress metastatic human breast cancer cells. Furthermore, this invention provides findings that could lead to a novel therapeutic agent for breast cancer treatment.
Claims
1. The active ingredient is 3,5-dihydroxy-4-methoxybenzyl alcohol, which has the effect of inhibiting the proliferation of human breast cancer MDA-MB-231 cells. A growth inhibitor of human breast cancer MDA-MB-231 cells.
2. The growth inhibitory effect of the human breast cancer MDA-MB-231 cells is exerted by blocking different cell signaling pathways. The growth inhibitor of human breast cancer MDA-MB-231 cells according to claim 1,
3. The growth inhibitory effect of the human breast cancer MDA-MB-231 cells is exerted by blocking different cell signaling pathways and regulating the levels of proteins involved in different cell signaling pathways in MDA-MB-231 cells. The growth inhibitor of human breast cancer MDA-MB-231 cells according to claim 1,
4. The active ingredient is 3,5-dihydroxy-4-methoxybenzyl alcohol, which promotes apoptotic cell death in human breast cancer MDA-MB-231 cells. A cell death promoter for human breast cancer MDA-MB-231 cells.
5. It contains 3,5-dihydroxy-4-methoxybenzyl alcohol as an active ingredient and has the effect of suppressing the metastatic activity of human breast cancer MDA-MB-231 cells. An agent for inhibiting the metastatic activity of human breast cancer MDA-MB-231 cells.
6. The active ingredient is 3,5-dihydroxy-4-methoxybenzyl alcohol, and it has the effect of suppressing the decrease of osteoblastic MC3T3-E1 cells co-cultured with human breast cancer cells MDA-MB-231 and the effect of suppressing the promotion of cell death of the osteoblastic MC3T3-E1 cells. An inhibitor of cell reduction of osteoblast MC3T3-E1 cells co-cultured with human breast cancer cells MDA-MB-231 and an inhibitor of the promotion of cell death of said osteoblast MC3T3-E1 cells.
7. This product contains 3,5-dihydroxy-4-methoxybenzyl alcohol as an active ingredient and has the effect of suppressing the decrease of macrophage RAW264.7 cells co-cultured with human breast cancer cell MDA-MB-231 and the effect of suppressing the promotion of cell death of the macrophage RAW264.7 cells. An inhibitor of the reduction of macrophage RAW264.7 cells and an inhibitor of the promotion of cell death of said macrophage RAW264.7 cells.
8. A compound containing 3,5-dihydroxy-4-methoxybenzyl alcohol as an active ingredient that inhibits TNF-α signaling in human breast cancer MDA-MB-231 cells and has the effect of reducing TNF-α production, thereby reducing TNF-α production by inhibiting TNF-α signaling in human breast cancer MDA-MB-231 cells. A method for reducing TNF-α production in human breast cancer MDA-MB-231 cells.
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