EP2830711A1 - Methods and compositions using fgf-9 to enchance neovascularization and regeneration - Google Patents
Methods and compositions using fgf-9 to enchance neovascularization and regenerationInfo
- Publication number
- EP2830711A1 EP2830711A1 EP13770266.8A EP13770266A EP2830711A1 EP 2830711 A1 EP2830711 A1 EP 2830711A1 EP 13770266 A EP13770266 A EP 13770266A EP 2830711 A1 EP2830711 A1 EP 2830711A1
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- EP
- European Patent Office
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- subject
- cells
- stem cells
- apoptosis
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- A61K35/12—Materials from mammals; Compositions comprising non-specified tissues or cells; Compositions comprising non-embryonic stem cells; Genetically modified cells
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- A61K35/54—Ovaries; Ova; Ovules; Embryos; Foetal cells; Germ cells
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Definitions
- MI myocardial infarction
- a method of enhancing neovascularization following cardiac dysfunction in a subject in need thereof comprising (i) administering to the subject fibroblast growth factor-9 primed induced pluripotent stem cells; (ii) administering to the subject conditioned medium of fibroblast growth factor-9 primed induced pluripotent stem cells; (iii) administering to the subject fibroblast growth factor-9; and/or (iv) administering to the subject fibroblast growth factor-9 and fibroblast growth factor-8; and determining neovascularization in the heart.
- a method of attenuating vascular apoptosis and/or apoptosis- related mechanisms following cardiac dysfunction in a subject in need thereof comprising (i) administering to the subject fibroblast growth factor-9 primed induced pluripotent stem cells; (ii) administering to the subject conditioned medium of fibroblast growth factor-9 primed induced pluripotent stem cells; (iii) administering to the subject fibroblast growth factor-9; and/or (iv) administering to the subject a composition comprising fibroblast growth factor-9 and fibroblast growth factor-8; and determining apoptosis and/or apoptosis related mechanisms in the heart.
- compositions of enhancing neovascularization in a subject comprising (i) fibroblast growth factor-9 primed induced pluripotent stem cells,
- compositions of attenuating vascular apoptosis and/or apoptosis- related mechanisms in a subject comprising (i) fibroblast growth factor-9 primed induced pluripotent stem cells; (ii) conditioned medium of fibroblast growth factor-9 primed induced pluripotent stem cells; (iii) administering to the subject fibroblast growth factor-9; and/or (iv) administering to the subject a composition comprising fibroblast growth factor-9 and fibroblast growth factor-8.
- a method of generating cardiac induced pluripotent stem cells comprising (i) inserting one or more nucleic acid constructs capable of expressing stem-cell like factors into a cardiac cell type, wherein the stem-cell like factors comprise Oct3/4, KIf4, Sox2, c-Myc, and/or a combination thereof; and (ii) obtaining the cardiac induced pluripotent stem cells stably expressing the stem-cell like factors in the cardiac cell type.
- Disclosed herein is a method of inhibiting vascular apoptosis and/or apoptosis-related mechanisms comprising administering conditioned medium from induced pluripotent stem cells, wherein the conditioned medium is administered with or without fibroblast growth factor-9.
- Disclosed herein is a method of inhibiting vascular apoptosis and/or apoptosis-related mechanisms comprising administering fibroblast growth factor-9.
- Figures 1A-D shows indicia of untransfected H9c2 cells and indicia of stably transfected iPS cells.
- Figures 2A-I shows that iPS cells generated from embryoid bodies differentiate into cardiac myocytes, smooth muscles cells, and endothelial cells.
- Figure 3A shows that FGF-9-treated EBs stained positively for markers specific for ECs, VSMCs, and iPS cells;
- Figure 3B provides a quantitative analysis of ECs and VSMCs following iPS and FGF-9 treatment.
- Figure 4A shows that iPS cells transplanted following MI differentiated into ECs and VSMCs in diabetic and non-diabetic mice and demonstrated neovascularization;
- Figure 4B provides a quantitative analysis of ECs (bottom panel) and VSMCs (top panel) following treatment with iPS cells.
- Figure 5A shows c-kit positive cell activation in neovascularization in VSMCs (actin) and ECs (CD31) in diabetic and non-diabetic mice;
- Figure 5B provides a quantitative analysis of positive c-kit+VSMCs (top panel) and c-kit+ECs (bottom panel) following MI and treatment with iPS cells or FGF-9.
- Figure 6A shows caspase activity and cell death detection following treatment with glucose, conditioned medium, FGF-9, and a combination thereof.
- Figures 7A-F show the effect of iPS cells or FGF-9 following MI on artery/capillary formation.
- Figures 8A-B show the effects of treatment with iPS cells and iPS cells with FGF-9 on cell differentiation.
- Figure 9 provides a quantitative analysis of FGF-9 treatment on miR-126 expression following MI.
- Figures 10A-B show that treatment with iPS cells or FGF-9 blunted remodeling and improved cardiac function following MI.
- iPS cells induced pluripotent stem cells possess tremendous potential to treat heart disease, but their basic mechanisms of neovascularization in diabetic infarcted myocardium are largely unknown. Moreover, no attention has been paid to the dynamic and concurrent processes underlying post-MI neovascularization (angiogenesis and vasculogenesis), or the interaction of these processes with transplanted fibroblast growth factor-9 (FGF-9) primed neovascular committed iPS cells in non-diabetic and diabetic mice.
- FGF-9 transplanted fibroblast growth factor-9
- H9c2 cells originally isolated from embryonic rat heart ventricular tissue. These cells, which are referred to herein as “4F-iPS cells” or “iPS cells,” have the potential to
- cardiac myocytes differentiate into cardiac myocytes in vitro and in vivo. Following myocardial infarction, transplanted cardiac iPS cells inhibited post-MI remodeling and demonstrated cardiac regeneration.
- compositions for enhancing neovascularization comprising (i) fibroblast growth factor-9 primed induced pluripotent stem cells;
- a disclosed composition for enhancing neovascularization in a subject comprises any one of the following combinations of fibroblast growth factor-9 primed induced pluripotent stem cells (FGF-9 primed iPS cells); conditioned medium of fibroblast growth factor-9 primed induced pluripotent stem cells (CM of FGF-9 primed iPS cells); fibroblast growth factor-9 (FGF-9); and a composition comprising fibroblast growth factor-9 and fibroblast growth factor-8 (FGF-9 and FGF-8).
- FGF-9 primed iPS cells fibroblast growth factor-9 primed induced pluripotent stem cells
- CM of FGF-9 primed iPS cells conditioned medium of fibroblast growth factor-9 primed induced pluripotent stem cells
- FGF-9 fibroblast growth factor-9
- FGF-9 and FGF-8 fibroblast growth factor-8
- a disclosed composition for enhancing neovascularization comprises one or two or three or all four of the following: (A) fibroblast growth factor-9 primed induced pluripotent stem cells; (B) conditioned media of fibroblast growth factor-9 primed induced pluripotent stem cells; (C) fibroblast growth factor-9; and (D) a composition comprising fibroblast growth factor-9 and fibroblast growth factor-8.
- a disclosed composition for enhancing neovascularization enhances cell engraftment.
- a disclosed composition enhances cell proliferation.
- a disclosed composition enhances cell differentiation.
- a disclosed composition enhances cardiac myocyte differentiation in iPS cells or any other source of stem cells in regenerative medicine including, but not limited to, mesenchymal stem cells, adipocyte stems cells, and any other types of stem cells known to be effective by those of skill in the art.
- a disclosed composition enhances c-kit positive cells or any other endogenous heart stem cells.
- a disclosed composition enhances cell proliferation, cell differentiation, and/or cell engraftment.
- a disclosed composition enhances both cell engraftment and cell proliferation.
- a disclosed composition enhances both cell engraftment and cell differentiation.
- a disclosed composition enhances both cell proliferation and cell differentiation.
- a disclosed composition enhances cell engraftment, cell proliferation, and cell differentiation.
- a disclosed composition for enhancing neovascularization enhances angiogenesis and/or vasculogenesis in the subject.
- a disclosed composition enhances angiogenesis in the subject.
- a disclosed composition enhances vasculogenesis in the subject.
- a disclosed composition enhances both angiogenesis and vasculogenesis in the subject.
- a disclosed composition for enhancing neovascularization enhances cardiac function in the subject.
- enhancing cardiac function comprises increasing cardiac blood flow.
- enhancing cardiac function comprises increasing cardiac capillary density.
- enhancing cardiac function comprises both increasing cardiac blood flow and increasing cardiac capillary density.
- a disclosed composition for enhancing neovascularization attenuates vascular apoptosis and/or apoptosis-related mechanisms.
- the apoptosis and/or apoptosis-related mechanisms occurs in the induced pluripotent stem cells.
- the apoptosis and/or apoptosis-related mechanisms occurs in the cardiac tissue of the subject.
- a disclosed composition attenuates apoptosis and/or apoptosis-related mechanisms occurs in the iPS cells.
- a disclosed composition attenuates apoptosis and/or apoptosis-related mechanisms occurs in the cardiac tissue of the subject.
- a disclosed composition attenuates apoptosis and/or apoptosis-related mechanisms in both iPS cells and the cardiac tissue of the subject.
- a disclosed composition for enhancing neovascularization increases miR-126 expression, decreases SPRED1 expression, and/or decreases PIK3R2 expression.
- a disclosed composition increases miR-126 expression and decreases SPREDl expression.
- a disclosed composition increases miR-126 expression and decreases PIK3R2 expression.
- a disclosed composition decreases SPREDl expression and decreases PIK3R2 expression.
- a disclosed composition increases miR-126 expression, decreases SPREDl expression, and decreases PIK3R2 expression.
- the conditioned media of a disclosed composition for enhancing neovascularization comprises one or more anti-apoptotic and anti-fibrotic factors.
- the one or more anti-apoptotic and anti-fibrotic factors comprise fibroblast growth factor-8 (FGF-8), fibroblast growth factor-9 (FGF-9), interleukin-10 (IL-10), and tissue inhibitor of matrix metalloproteinase-1 (TIMP-1).
- the iPS cells differentiate into endothelial cells and/or vascular smooth muscle cells. In an aspect, the iPS cells differentiate into endothelial cells. In an aspect, the iPS cells differentiate into vascular smooth muscle cells. In an aspect, the iPS cells differentiate into endothelial cells and into vascular smooth muscle cells. In an aspect, the iPS cells are cardiac-committed. In an aspect, a disclosed composition enhances cardiac myocyte differentiation in iPS cells or any other source of stem cells in regenerative medicine including, but not limited to, mesenchymal stem cells, adipocyte stems cells, and any other types of stem cells known to be effective by those of skill in the art. In an aspect, a disclosed composition enhances c-kit positive cells or any other endogenous heart stem cells.
- the subject has experienced cardiac dysfunction.
- the cardiac dysfunction is a cardiac ischemia/reperfusion event.
- the ischemia/reperfusion event is myocardial infarction, myocardial ischemia, myocardial reperfusion, subendocardial ischemia, Takayasu's arteritis, atrial fibrillation, hemorrhagic stroke, an event that occurs during cardiac surgery where a heart lung machine is used such as coronary artery bypass, or an event that occurs during the preservation of an organ for transplant.
- the subject has a congenital heart defect.
- the congenital heart defect is hypoplasia or pentalogy of Cantrell.
- a disclosed composition for enhancing neovascularization in a subject is administered to the subject prior to cardiac dysfunction.
- a disclosed composition is administered to the subject during cardiac dysfunction.
- a disclosed composition is administered to the subject following cardiac dysfunction.
- a disclosed composition is administered to the subject within 10, 15, 20, 25, 30, or more minutes following cardiac dysfunction.
- a composition is administered within 1, 2, 6, 12, 18, 24, or more hour following cardiac dysfunction.
- a disclosed composition for enhancing neovascularization in a subject is administered to the subject one or more times.
- a disclosed composition is administered to the subject prior to and during cardiac dysfunction.
- a disclosed composition is administered to the subject during and following cardiac dysfunction.
- a disclosed composition is administered to the subject prior to and following cardiac dysfunction.
- a disclosed composition is administered to the subject prior to, during, and following cardiac dysfunction.
- a disclosed composition for enhancing neovascularization in a subject comprises between 5,000 and 500,000 induced pluripotent stem cells (iPS cells). In an aspect, a disclosed composition comprises approximately 100,000 iPS cells. In an aspect, a disclosed composition comprises less than 100,000 iPS cells. In an aspect, a disclosed composition comprises more than 100,000 iPS cells.
- a disclosed composition for enhancing neovascularization in a subject is administered to the subject in one intramyocardial injection. In an aspect, a disclosed composition is administered in two or more intramyocardial injections.
- a disclosed composition for enhancing neovascularization in a subject in a subject is administered into a peri-infarct zone of the injured myocardium.
- disclosed composition is administered into an infarcted zone of the injured myocardium.
- a disclosed composition is administered into both a peri-infarct zone of the injured myocardium and an infarcted zone of the injured myocardium.
- a disclosed composition for enhancing neovascularization in a subject comprises one or more immunosuppressive drugs.
- Immunosuppressive drugs are known in the art.
- the one or more immunosuppressive drugs comprise corticosteroids, calcineurin inhibitors, anti-proliferatives, and mTOR inhibitors.
- the one or more immunosuppressive drugs can be a combination of immunosuppressive drugs.
- the one or more immunosuppressive drugs is cyclosporine A.
- the induced pluripotent stem cells (iPS cells) of a disclosed composition are obtained from an autologous source.
- the iPS cells are obtained from an allogeneic source.
- the iPS cells are obtained from a syngeneic source.
- the iPS cells are obtained from a combination of sources.
- the induced pluripotent stem cells of a disclosed composition for enhancing neovascularization in a subject are obtained from fibroblast cells.
- the induced pluripotent stem cells are obtained from H9c2 cells.
- the fibroblast cells or the H9c2 cells are transfected with a vector comprising a nucleic acid molecule encoding at least one sternness factor.
- the at least one sternness factor comprises c-myc, oct 3/4, Klf4, nanog, or Sox2, or a combination thereof.
- the sternness factors are c-myc, oct 3/4, Klf4, and Sox2.
- a disclosed composition for enhancing neovascularization inhibits fibrosis and/or fibrosis-related mechanisms.
- a disclosed composition for enhancing neovascularization protects myocardium including, but not limited to human myocardium, with or without the administration of iPS cells.
- the subject is a mammal.
- the mammal is a primate.
- the mammal is a human.
- the human is a patient.
- the subject is diabetic.
- compositions for attenuating vascular apoptosis and/or apoptosis- related mechanisms in a subject comprising (i) fibroblast growth factor-9 primed induced pluripotent stem cells; (ii) conditioned medium of fibroblast growth factor-9 primed induced pluripotent stem cells; (iii) fibroblast growth factor-9; and/or (iv) a composition comprising fibroblast growth factor-9 and fibroblast growth factor-8.
- a disclosed composition for enhancing neovascularization in a subject comprises any one of the following combinations of fibroblast growth factor-9 primed induced pluripotent stem cells (FGF-9 primed iPS cells); conditioned medium of fibroblast growth factor-9 primed induced pluripotent stem cells (CM of FGF-9 primed iPS cells); fibroblast growth factor-9 (FGF-9); and a composition comprising fibroblast growth factor-9 and fibroblast growth factor-8 (FGF-9 and FGF-8).
- FGF-9 primed iPS cells fibroblast growth factor-9 primed induced pluripotent stem cells
- CM of FGF-9 primed iPS cells conditioned medium of fibroblast growth factor-9 primed induced pluripotent stem cells
- FGF-9 fibroblast growth factor-9
- FGF-9 and FGF-8 fibroblast growth factor-8
- a disclosed composition for attenuating vascular apoptosis comprises one or two or three or all four of the following: (A) fibroblast growth factor-9 primed induced pluripotent stem cells; (B) conditioned media of fibroblast growth factor-9 primed induced pluripotent stem cells; (C) fibroblast growth factor-9; and (D) a composition comprising fibroblast growth factor-9 and fibroblast growth factor-8. [0054]
- a disclosed composition for attenuating vascular apoptosis and/or apoptosis-related mechanisms enhances angiogenesis and/or vasculogenesis in the subject.
- a disclosed composition enhances angiogenesis in the subject.
- a disclosed composition enhances vasculogenesis in the subject.
- a disclosed composition enhances both angiogenesis and vasculogenesis in the subject.
- a disclosed composition for attenuating vascular apoptosis and/or apoptosis-related mechanisms further enhances cardiac function in the subject.
- enhancing cardiac function comprises increasing cardiac blood flow.
- enhancing cardiac function comprises increasing cardiac capillary density.
- enhancing cardiac function comprises both increasing cardiac blood flow and increasing cardiac capillary density.
- the apoptosis and/or apoptosis-related mechanisms occurs in the induced pluripotent stem cells. In an aspect, the apoptosis and/or apoptosis-related mechanisms occurs in the cardiac tissue of the subject. In an aspect, a disclosed composition attenuates apoptosis and/or apoptosis-related mechanisms in the iPS cells. In an aspect, a disclosed composition attenuates apoptosis and/or apoptosis-related mechanisms in the cardiac tissue of the subject. In an aspect, a disclosed composition attenuates apoptosis and/or apoptosis-related mechanisms in the iPS cells and the cardiac tissue of the subject.
- a disclosed composition for attenuating vascular apoptosis and/or apoptosis-related mechanisms increases miR-126 expression, decreases SPREDl expression, and/or a decreases PIK3R2 expression.
- a disclosed composition increases miR- 126 expression and decreases SPRED l expression.
- a disclosed composition increases miR-126 expression and decreases PIK3R2 expression.
- a disclosed composition decreases SPREDl expression and decreases PIK3R2 expression.
- a disclosed composition increases miR-126 expression, decreases SPREDl expression, and decreases PIK3R2 expression.
- the conditioned media of a disclosed composition for attenuating vascular apoptosis and/or apoptosis-related mechanisms comprises one or more anti- apoptotic and anti-fibrotic factors.
- the one or more anti-apoptotic and anti- fibrotic factors comprise fibroblast growth factor-8 (FGF-8), fibroblast growth factor-9 (FGF- 9), interleukin-10 (IL-10), and tissue inhibitor of matrix metalloproteinase- 1 (TIMP-1).
- the iPS cells differentiate into endothelial cells and/or vascular smooth muscle cells. In an aspect, the iPS cells differentiate into endothelial cells. In an aspect, the iPS cells differentiate into vascular smooth muscle cells. In an aspect, the iPS cells differentiate into endothelial cells and vascular smooth muscle cells. In an aspect, the iPS cells are cardiac-committed. In an aspect, a disclosed composition enhances cardiac myocyte differentiation in iPS cells or any other source of stem cells in regenerative medicine including, but not limited to, mesenchymal stem cells, adipocyte stems cells, and any other types of stem cells known to be effective by those of skill in the art. In an aspect, a disclosed composition enhances c-kit positive cells or any other endogenous heart stem cells.
- the subject has experienced cardiac dysfunction.
- the cardiac dysfunction is a cardiac ischemia/reperfusion event.
- the ischemia/reperfusion event is myocardial infarction, myocardial ischemia, myocardial reperfusion, subendocardial ischemia, Takayasu's arteritis, atrial fibrillation, hemorrhagic stroke, an event that occurs during cardiac surgery where a heart lung machine is used such as coronary artery bypass, or an event that occurs during the preservation of an organ for transplant.
- the subject has a congenital heart defect.
- the congenital heart defect is hypoplasia or pentalogy of Cantrell.
- a disclosed composition for attenuating vascular apoptosis and/or apoptosis-related mechanisms in a subject is administered to the subject prior to cardiac dysfunction.
- a disclosed composition is administered to the subject during cardiac dysfunction.
- a disclosed composition is administered to the subject following cardiac dysfunction.
- a disclosed composition is administered to the subject within 10, 15, 20, 25, 30, or more minutes following cardiac dysfunction.
- a composition is administered within 1, 2, 6, 12, 18, 24, or more hour following cardiac dysfunction.
- a disclosed composition for attenuating vascular apoptosis and/or apoptosis-related mechanisms in a subject is administered to the subject one or more times.
- a disclosed composition is administered to the subject prior to and during cardiac dysfunction.
- a disclosed composition is administered to the subject during and following cardiac dysfunction.
- a disclosed composition is administered to the subject prior to and following cardiac dysfunction.
- a disclosed composition is administered to the subject prior to, during, and following cardiac dysfunction.
- a disclosed composition for attenuating vascular apoptosis and/or apoptosis-related mechanisms in a subject comprises between 5,000 and 500,000 induced pluripotent stem cells (iPS cells).
- iPS cells induced pluripotent stem cells
- a composition comprises approximately 100,000 iPS cells.
- a composition comprises less than 100,000 iPS cells.
- a composition comprises more than 100,000 iPS cells.
- a disclosed composition for attenuating vascular apoptosis and/or apoptosis-related mechanisms in a subject is administered to the subject in one
- a disclosed composition is administered in two or more intramyocardial injections.
- a disclosed composition for attenuating vascular apoptosis and/or apoptosis-related mechanisms in a subject is administered into a peri-infarct zone of the injured myocardium.
- disclosed composition is administered into an infarcted zone of the injured myocardium.
- a disclosed composition is administered into both a peri-infarct zone of the injured myocardium and an infarcted zone of the injured myocardium.
- a disclosed composition for attenuating vascular apoptosis and/or apoptosis-related mechanisms in a subject comprises one or more immunosuppressive drugs.
- Immunosuppressive drugs are known in the art.
- the one or more immunosuppressive drugs are known in the art.
- immunosuppressive drugs comprise corticosteroids, calcineurin inhibitors, anti-proliferatives, and mTOR inhibitors.
- the one or more immunosuppressive drugs can be a combination of immunosuppressive drugs.
- the one or more immunosuppressive drugs is cyclosporine A.
- the induced pluripotent stem cells (iPS cells) of a disclosed composition for attenuating vascular apoptosis and/or apoptosis-related mechanisms in a subject are obtained from an autologous source.
- the iPS cells are obtained from an allogeneic source.
- the iPS cells are obtained from a syngeneic source.
- the iPS cells are obtained from a combination of sources.
- the induced pluripotent stem cells of a disclosed composition for attenuating vascular apoptosis and/or apoptosis-related mechanisms in a subject are obtained from fibroblast cells.
- the induced pluripotent stem cells are obtained from H9c2 cells.
- the fibroblast cells or the H9c2 cells are transfected with a vector comprising a nucleic acid molecule encoding at least one stemness factor.
- the at least one stemness factor comprises c-myc, oct 3/4, Klf4, nanog, or Sox2, or a combination thereof.
- the stemness factors are c-myc, oct 3/4, Klf4, and Sox2.
- a disclosed composition for attenuating vascular apoptosis and/or apoptosis-related mechanisms inhibits fibrosis and/or fibrosis-related mechanisms.
- a disclosed composition for attenuating vascular apoptosis and/or apoptosis-related mechanisms protects myocardium including, but not limited to human myocardium, with or without the administration of iPS cells.
- the subject is a mammal.
- the mammal is a primate.
- the mammal is a human.
- the human is a patient.
- the subject is diabetic.
- the invention relates to pharmaceutical compositions comprising a disclosed composition for enhancing neovascularization.
- the invention relates to pharmaceutical compositions comprising a disclosed compositions for attenuating vascular apoptosis and/or apoptosis-related mechanisms. That is, a pharmaceutical composition can be provided comprising a therapeutically effective amount of at least one disclosed compositions and a pharmaceutically acceptable carrier.
- a method of enhancing neovascularization following cardiac dysfunction in a subject comprising (i) administering to the subject fibroblast growth factor-9 primed induced pluripotent stem cells; (ii) administering to the subject conditioned medium of fibroblast growth factor-9 primed induced pluripotent stem cells; (iii) administering to the subject fibroblast growth factor-9; and/or (iv) administering to the subject a composition comprising fibroblast growth factor-9 and fibroblast growth factor-8.
- a disclosed method of enhancing neovascularization in a subject comprises administering to the subject any one of the following combinations of fibroblast growth factor-9 primed induced pluripotent stem cells (FGF-9 primed iPS cells); conditioned medium of fibroblast growth factor-9 primed induced pluripotent stem cells (CM of FGF-9 primed iPS cells); fibroblast growth factor-9 (FGF-9); and a composition comprising fibroblast growth factor-9 and fibroblast growth factor-8 (FGF-9 and FGF-8).
- FGF-9 primed iPS cells fibroblast growth factor-9 primed induced pluripotent stem cells
- CM of FGF-9 primed iPS cells conditioned medium of fibroblast growth factor-9 primed induced pluripotent stem cells
- FGF-9 fibroblast growth factor-9
- FGF-9 and FGF-8 fibroblast growth factor-8
- FGF-9 primed i.e., CM of FGF-9 (i.e., FGF-9 &
- a disclosed method comprises administering one or two or three or all four of the following: (A) fibroblast growth factor-9 primed induced pluripotent stem cells; (B) conditioned media of fibroblast growth factor-9 primed induced pluripotent stem cells; (C) fibroblast growth factor-9; and (D) a composition comprising fibroblast growth factor-9 and fibroblast growth factor-8.
- a disclosed method of enhancing neovascularization comprises enhancing cell engraftment. In an aspect, a disclosed method comprises enhancing cell proliferation. In an aspect, a disclosed method comprises enhancing cell differentiation.
- a disclosed method enhances cardiac myocyte differentiation in iPS cells or any other source of stem cells in regenerative medicine including, but not limited to, mesenchymal stem cells, adipocyte stems cells, and any other types of stem cells known to be effective by those of skill in the art.
- a disclosed composition enhances c-kit positive cells or any other endogenous heart stem cells.
- a disclosed method enhances cell proliferation, cell differentiation, and/or cell engraftment. For example, in an aspect, a disclosed method enhances both cell engraftment and cell proliferation. In an aspect, a disclosed method enhances both cell engraftment and cell differentiation. In an aspect, a disclosed method both cell proliferation and cell differentiation. In an aspect, a disclosed method enhances cell engraftment, cell proliferation, and cell differentiation.
- a disclosed method enhances cardiac myocyte differentiation in iPS cells or any other source of stem cells in regenerative medicine including, but not limited to, mesenchymal stem cells, adipocyte stems cells, and any other types of stem cells known to be effective by those of skill in the art.
- a disclosed composition enhances c-kit positive cells or any other endogenous heart stem cells.
- a disclosed method of enhancing neovascularization comprises enhancing angiogenesis and/or vasculogenesis in the subject.
- a disclosed method comprises enhancing angiogenesis in the subject.
- a disclosed method comprises enhancing vasculogenesis in the subject.
- a disclosed method comprises both enhancing angiogenesis and vasculogenesis in the subject.
- a disclosed method of enhancing neovascularization further comprises enhancing cardiac function in the subject.
- enhancing cardiac function comprises increasing cardiac blood flow.
- enhancing cardiac function comprises increasing cardiac capillary density.
- enhancing cardiac function comprises both increasing cardiac blood flow and increasing cardiac capillary density.
- a disclosed method of enhancing neovascularization comprises attenuating vascular apoptosis.
- the apoptosis occurs in the induced pluripotent stem cells (iPS cells).
- the apoptosis and/or apoptosis-related mechanisms occurs in the cardiac tissue of the subject.
- the apoptosis and/or apoptosis-related mechanisms occurs both in the iPS cells and cardiac tissue of the subject.
- a disclosed composition attenuates apoptosis and/or apoptosis-related mechanisms in the iPS cells.
- a disclosed composition attenuates apoptosis and/or apoptosis-related mechanisms in the cardiac tissue of the subject. In an aspect, a disclosed composition attenuates apoptosis and/or apoptosis-related mechanisms in the iPS cells and the cardiac tissue of the subject.
- a disclosed method of enhancing neovascularization comprises increasing miR-126 expression, decreasing SPRED1 expression, and/or decreasingPIK3R2 expression.
- a disclosed method increases miR-126 expression and decreases SPRED1 expression.
- a disclosed method increases miR-126 expression and decreases PIK3R2 expression.
- a disclosed method decreases SPREDl expression and decreases PIK3R2 expression.
- a disclosed method increases miR-126 expression, decreases SPREDl expression, and decreases PIK3R2 expression.
- neovascularization comprises one or more anti-apoptotic and anti-fibrotic factors.
- the one or more anti-apoptotic and anti-fibrotic factors comprise fibroblast growth factor-8 (FGF-8), fibroblast growth factor-9 (FGF-9), interleukin-10 (IL-10), and tissue inhibitor of matrix metalloproteinase-1 (TIMP-1).
- the iPS cells of a disclosed method of enhancing neovascularization differentiate into endothelial cells and/or vascular smooth muscle cells.
- the iPS cells differentiate into endothelial cells.
- the iPS cells differentiate into vascular smooth muscle cells.
- the iPS cells differentiate into both vascular smooth muscle cells and endothelial cells.
- the iPS cells are cardiac-committed.
- a disclosed method enhances cardiac myocyte differentiation in iPS cells or any other source of stem cells in regenerative medicine including, but not limited to, mesenchymal stem cells, adipocyte stems cells, and any other types of stem cells known to be effective by those of skill in the art.
- a disclosed composition enhances c-kit positive cells or any other endogenous heart stem cells.
- the subject has experienced cardiac dysfunction.
- the cardiac dysfunction is a cardiac ischemia/reperfusion event.
- the cardiac dysfunction is a cardiac ischemia/reperfusion event.
- ischemia/reperfusion event is myocardial infarction, myocardial ischemia, myocardial reperfusion, subendocardial ischemia, Takayasu's arteritis, atrial fibrillation, hemorrhagic stroke, an event that occurs during cardiac surgery where a heart lung machine is used such as coronary artery bypass, or an event that occurs during the preservation of an organ for transplant.
- the subject has a congenital heart defect.
- the congenital heart defect is hypoplasia or pentalogy of Cantrell.
- fibroblast growth factor-9 (FGF-9) is administered to the subject prior to the administration of the induced pluripotent stem cells (iPS cells).
- FGF-9 is administered to the subject during the administration of the iPS cells.
- FGF-9 is administered to the subject following the administration of the iPS cells.
- the administration of FGF-9 is repeated.
- FGF-9 is administered to the subject prior to and during the administration of the iPS cells.
- FGF-9 is administered to the subject prior to and following the administration of the iPS cells.
- FGF-9 is administered to the subject during and following the administration of the iPS cells.
- a disclosed composition comprising fibroblast growth factor-8 (FGF-8) and fibroblast growth factor-9 (FGF-9) is administered to the subject prior to the administration of the induced pluripotent stem cells (iPS cells).
- a disclosed composition comprising FGF-8 and FGF-9 is administered to the subject during the administration of the iPS cells.
- a disclosed composition comprising FGF-8 and FGF-9 is administered to the subject following the administration of the iPS cells.
- the administration of a disclosed composition comprising FGF-8 and FGF-9 is repeated.
- a disclosed composition comprising FGF-8 and FGF-9 is administered to the subject prior to and during the administration of the iPS cells.
- a disclosed composition comprising FGF-8 and FGF-9 is administered to the subject prior to and following the administration of the iPS cells.
- a disclosed composition comprising FGF-8 and FGF-9 is administered to the subject during and following the administration of the iPS cells.
- the conditioned media is administered to the subject prior to the administration of the induced pluripotent stem cells (iPS cells).
- the conditioned media is administered to the subject during the administration of the iPS cells.
- the conditioned media is administered to the subject following the administration of the iPS cells.
- the administration of the conditioned media is repeated.
- the conditioned media is administered to the subject prior to and during the administration of the iPS cells.
- the conditioned media is administered to the subject prior to and following the administration of the iPS cells.
- the conditioned media is administered to the subject during and following the administration of the iPS cells.
- a disclosed method of enhancing neovascularization comprises administering iPS cells to the subject prior to cardiac dysfunction.
- a disclosed method comprises administering iPS cells to the subject during cardiac dysfunction.
- a disclosed method comprises administering iPS cells to the subject following cardiac dysfunction.
- a disclosed method comprises administering iPS cells to the subject within 10, 15, 20, 25, 30, or more minutes following cardiac dysfunction.
- a disclosed method comprises administering iPS cells to the subject within 1, 2, 6, 12, 18, 24, or more hour following cardiac dysfunction.
- a disclosed method comprises administering iPS cells to the subject prior to and during cardiac dysfunction.
- a disclosed method comprises administering iPS cells to the subject during and following cardiac dysfunction.
- a disclosed method comprises administering iPS cells to the subject prior to and following cardiac dysfunction.
- a disclosed method comprises administering iPS cells to the subject prior to, during, and following cardiac dysfunction.
- a disclosed method of enhancing neovascularization in a subject comprises administering between 5,000 and 500,000 induced pluripotent stem cells (iPS cells). In an aspect, a disclosed method comprises administering approximately 100,000 iPS cells. In an aspect, a disclosed method comprises administering less than 100,000 iPS cells. In an aspect, a disclosed method comprises administering more than 100,000 iPS cells.
- iPS cells induced pluripotent stem cells
- a disclosed method of enhancing neovascularization comprises administering iPS cells to the subject in one intramyocardial injection. In an aspect, a disclosed method of enhancing neovascularization comprises administering iPS cells to the subject in two or more intramyocardial injections.
- a disclosed method of enhancing neovascularization in a subject comprises administering the iPS cells into a peri-infarct zone of the injured myocardium. In an aspect, a disclosed method of enhancing neovascularization comprises administering the iPS cells into an infarcted zone of the injured myocardium. In an aspect, a disclosed method of enhancing neovascularization in a subject comprises administering iPS cells into both a peri-infarct zone of the injured myocardium and an infarcted zone of the injured myocardium.
- a disclosed method of enhancing neovascularization in a subject comprises administering one or more immunosuppressive drugs.
- Immunosuppressive drugs are known in the art.
- the one or more immunosuppressive drugs comprise corticosteroids, calcineurin inhibitors, anti-proliferatives, and mTOR inhibitors.
- the one or more immunosuppressive drugs can be a combination of immunosuppressive drugs.
- the one or more immunosuppressive drugs is cyclosporine A.
- the one or more immunosuppressive drugs is administered to the subject prior to, during, and/or following the administration of the induced pluripotent stem cells (iPS cells). In an aspect, the one or more immunosuppressive drugs is administered to the subject prior to the administration of iPS cells. In an aspect, the one or more immunosuppressive drugs is administered to the subject during the administration of iPS cells. In an aspect, the one or more immunosuppressive drugs is administered to the subject following the administration of iPS cells. In an aspect, the administration of the one or more
- immunosuppressive drugs is repeated.
- the one or more immunosuppressive drugs is administered to the subject prior to and during the administration of the iPS cells.
- the one or more immunosuppressive drugs is administered to the subject during and following the administration of the iPS cells.
- the one or more immunosuppressive drugs is administered to the subject during and following the administration of the iPS cells.
- immunosuppressive drugs is administered to the subject prior to and following the administration of the iPS cells.
- the induced pluripotent stem cells (iPS cells) of a disclosed method are obtained from an autologous source.
- iPS cells are obtained from an allogeneic source.
- iPS cells are obtained from a syngeneic source.
- iPS cells are obtained from a combination of sources.
- the iPS cells of a disclosed method of enhancing neovascularization in a subject are obtained from fibroblast cells.
- the iPS cells are obtained from H9c2 cells.
- the fibroblast cells or the H9c2 cells are transfected with a vector comprising a nucleic acid molecule encoding at least one stemness factor.
- the at least one stemness factor comprises c-myc, oct 3/4, Klf4, nanog, or Sox2, or a combination thereof.
- the stemness factors are c-myc, oct 3/4, Klf4, and Sox2.
- a disclosed method for enhancing neovascularization inhibits fibrosis and/or fibrosis-related mechanisms.
- a disclosed method for enhancing neovascularization protects myocardium including, but not limited to human myocardium, with or without the administration of iPS cells.
- the subject is a mammal.
- the mammal is a primate.
- the mammal is a human.
- the human is a patient.
- the subject is diabetic.
- apoptosis and/or apoptosis-related mechanisms are methods of attenuating vascular apoptosis and/or apoptosis-related mechanisms.
- a method of attenuating vascular apoptosis and/or apoptosis-related mechanisms following cardiac dysfunction in a subject in need thereof comprising (i) administering to the subject fibroblast growth factor-9 primed induced pluripotent stem cells; (ii) administering to the subject conditioned medium of fibroblast growth factor-9 primed induced pluripotent stem cells; (iii) administering to the subject fibroblast growth factor-9; and/or (iv) administering to the subject a composition comprising fibroblast growth factor-9 and fibroblast growth factor-8.
- a disclosed method of attenuating vascular apoptosis and/or apoptosis-related mechanisms comprises administering to the subject any one of the following combinations of fibroblast growth factor-9 primed induced pluripotent stem cells (FGF-9 primed iPS cells); conditioned medium of fibroblast growth factor-9 primed induced pluripotent stem cells (CM of FGF-9 primed iPS cells); fibroblast growth factor-9 (FGF-9); and a composition comprising fibroblast growth factor-9 and fibroblast growth factor-8 (FGF-9 and FGF-8).
- FGF-9 primed iPS cells fibroblast growth factor-9 primed induced pluripotent stem cells
- CM of FGF-9 primed iPS cells conditioned medium of fibroblast growth factor-9 primed induced pluripotent stem cells
- FGF-9 fibroblast growth factor-9
- FGF-9 and FGF-8 fibroblast growth factor-8
- a disclosed method comprises administering one or two or three or all four of the following: (A) fibroblast growth factor-9 primed induced pluripotent stem cells; (B) conditioned media of fibroblast growth factor-9 primed induced pluripotent stem cells; (C) fibroblast growth factor-9; and (D) a composition comprising fibroblast growth factor-9 and fibroblast growth factor-8.
- a disclosed method of attenuating vascular apoptosis and/or apoptosis-related mechanisms comprises enhancing angiogenesis and/or vasculogenesis in the subject.
- a disclosed method comprises enhancing angiogenesis in the subject.
- a disclosed method comprises enhancing vasculogenesis in the subject.
- a disclosed method comprises both enhancing angiogenesis and vasculogenesis in the subject.
- a disclosed method of attenuating vascular apoptosis and/or apoptosis-related mechanisms comprises enhancing cardiac function in the subject.
- enhancing cardiac function comprises increasing cardiac blood flow.
- enhancing cardiac function comprises increasing cardiac capillary density.
- enhancing cardiac function comprises increasing cardiac blood flow and increasing cardiac capillary density.
- the apoptosis and/or apoptosis-related mechanisms occurs in the induced pluripotent stem cells (iPS cells). In an aspect, the apoptosis and/or apoptosis-related mechanisms occurs in the cardiac tissue of the subject. In an aspect, the apoptosis and/or apoptosis-related mechanisms occurs in both the iPS cells and the cardiac tissue of the subject. In an aspect, a disclosed composition attenuates apoptosis and/or apoptosis-related mechanisms in the iPS cells. In an aspect, a disclosed composition attenuates apoptosis and/or apoptosis-related mechanisms in the cardiac tissue of the subject. In an aspect, a disclosed composition attenuates apoptosis and/or apoptosis-related mechanisms in iPS cells and the cardiac tissue of the subject.
- a disclosed composition attenuates apoptosis and/or apoptosis-related mechanisms in
- a disclosed method of attenuating vascular apoptosis and/or apoptosis-related mechanisms comprises increasing miR-126 expression, decreasing
- a disclosed method increases miR-126 expression and decreases SPREDl expression.
- a disclosed method increases miR-126 expression and decreases PIK3R2 expression.
- a disclosed method decreases SPREDl expression and decreases PIK3R2 expression.
- a disclosed method increases miR-126 expression, decreases SPREDl expression, and decreases PIK3R2 expression.
- the conditioned media of a disclosed method of attenuating vascular apoptosis and/or apoptosis-related mechanisms comprises one or more anti- apoptotic and anti-fibrotic factors.
- the one or more anti-apoptotic and anti- fibrotic factors comprise fibroblast growth factor-8 (FGF-8), fibroblast growth factor-9 (FGF- 9), interleukin-10 (IL-10), and tissue inhibitor of matrix metalloproteinase- 1 (TIMP-1).
- the iPS cells of a disclosed method of attenuating vascular apoptosis and/or apoptosis-related mechanisms differentiate into endothelial cells and/or vascular smooth muscle cells.
- the iPS cells differentiate into endothelial cells.
- the iPS cells differentiate into vascular smooth muscle cells.
- the iPS cells differentiate into both vascular smooth muscle cells and endothelial cells.
- the iPS cells are cardiac-committed.
- a disclosed method enhances cardiac myocyte differentiation in iPS cells or any other source of stem cells in regenerative medicine including, but not limited to, mesenchymal stem cells, adipocyte stems cells, and any other types of stem cells known to be effective by those of skill in the art.
- a disclosed composition enhances c-kit positive cells or any other endogenous heart stem cells.
- the subject has experienced cardiac dysfunction.
- the cardiac dysfunction is a cardiac ischemia/reperfusion event.
- the cardiac dysfunction is a cardiac ischemia/reperfusion event.
- ischemia/reperfusion event is myocardial infarction, myocardial ischemia, myocardial reperfusion, subendocardial ischemia, Takayasu's arteritis, atrial fibrillation, hemorrhagic stroke, an event that occurs during cardiac surgery where a heart lung machine is used such as coronary artery bypass, or an event that occurs during the preservation of an organ for transplant.
- the subject has a congenital heart defect.
- the congenital heart defect is hypoplasia or pentalogy of Cantrell.
- fibroblast growth factor-9 (FGF-9) is administered to the subject prior to the administration of induced pluripotent stem cells (iPS cells).
- FGF-9 is administered to the subject during the administration of iPS cells.
- FGF-9 is administered to the subject following the administration of iPS cells.
- the administration of FGF-9 is repeated.
- FGF-9 is administered to the subject prior to and during the administration of iPS cells.
- FGF-9 is administered to the subject prior to and following the administration of iPS cells.
- FGF-9 is administered to the subject during and following the administration of iPS cells.
- a disclosed composition comprising fibroblast growth factor-8 (FGF-8) and fibroblast growth factor-9 (FGF-9) is administered to the subject prior to the administration of the induced pluripotent stem cells (iPS cells).
- a disclosed composition comprising FGF-8 and FGF-9 is administered to the subject during the administration of iPS cells.
- a disclosed composition comprising FGF-8 and FGF-9 is administered to the subject following the administration of iPS cells.
- the administration of a disclosed composition comprising FGF-8 and FGF-9 is repeated.
- a disclosed composition comprising FGF-8 and FGF-9 is administered to the subject prior to and during the administration of iPS cells.
- a disclosed composition comprising FGF-8 and FGF-9 is administered to the subject prior to and following the administration of iPS cells.
- a disclosed composition comprising FGF-8 and FGF-9 is administered to the subject during and following the administration of iPS cells.
- the conditioned media is administered to the subject prior to the administration of the induced pluripotent stem cells (iPS cells).
- the conditioned media is administered to the subject during the administration of iPS cells.
- the conditioned media is administered to the subject following the administration of iPS cells.
- the administration of the conditioned media is repeated.
- the conditioned media administered to the subject prior to and during the administration of iPS cells.
- the conditioned media is administered to the subject prior to and following the administration of iPS cells.
- the conditioned media is administered to the subject during and following the administration of iPS cells.
- a disclosed method of attenuating vascular apoptosis and/or apoptosis-related mechanisms comprises administering iPS cells to the subject prior to cardiac dysfunction.
- a disclosed method comprises administering iPS cells to the subject during cardiac dysfunction.
- a disclosed method comprises administering iPS cells to the subject following cardiac dysfunction.
- a disclosed method comprises administering the iPS cells to the subject within 10, 15, 20, 25, 30, or more minutes following cardiac dysfunction.
- a disclosed method comprises administering the iPS cells to the subject within 1, 2, 6, 12, 18, 24, or more hour following cardiac dysfunction.
- a disclosed method of attenuating vascular apoptosis and/or apoptosis-related mechanisms comprises administering iPS cells to the subject prior to and during cardiac dysfunction.
- a disclosed method comprises administering iPS cells to the subject during and following cardiac dysfunction.
- a disclosed method comprises administering iPS cells to the subject prior to and following cardiac dysfunction.
- a disclosed method comprises administering iPS cells to the subject prior to, during, and following cardiac dysfunction.
- a disclosed method of attenuating vascular apoptosis and/or apoptosis-related mechanisms in a subject comprises administering between 5,000 and 500,000 induced pluripotent stem cells (iPS cells). In an aspect, a disclosed method comprises administering approximately 100,000 iPS cells. In an aspect, a disclosed method comprises administering less than 100,000 iPS cells. In an aspect, a disclosed method comprises administering more than 100,000 iPS cells.
- a disclosed method of attenuating vascular apoptosis and/or apoptosis-related mechanisms comprises administering the iPS cells to the subject in one intramyocardial injection. In an aspect, a disclosed method of attenuating vascular apoptosis and/or apoptosis-related mechanisms comprises administering iPS cells to the subject in two or more intramyocardial injections.
- a disclosed method of attenuating vascular apoptosis and/or apoptosis-related mechanisms in a subject comprises administering iPS cells into a peri- infarct zone of the injured myocardium.
- disclosed method of attenuating vascular apoptosis and/or apoptosis-related mechanisms comprises administering the iPS cells into an infarcted zone of the injured myocardium.
- disclosed method comprises administering the iPS cells into both a peri-infarct zone of the injured myocardium and an infarcted zone of the injured myocardium.
- a disclosed method of attenuating vascular apoptosis and/or apoptosis-related mechanisms in a subject comprises administering one or more
- immunosuppressive drugs are known in the art.
- the one or more immunosuppressive drugs comprise corticosteroids, calcineurin inhibitors, antiproliferatives, and mTOR inhibitors.
- the one or more immunosuppressive drugs can be a combination of immunosuppressive drugs.
- the one or more immunosuppressive drugs can be a combination of immunosuppressive drugs.
- immunosuppressive drugs is cyclosporine A.
- the one or more immunosuppressive drugs is administered to the subject prior to, during, and/or following the administration of the induced pluripotent stem cells (iPS cells). In an aspect, the one or more immunosuppressive drugs is administered to the subject prior to the administration of iPS cells. In an aspect, the one or more immunosuppressive drugs is administered to the subject prior to the administration of iPS cells. In an aspect, the one or more immunosuppressive drugs is administered to the subject prior to the administration of iPS cells.
- immunosuppressive drugs is administered to the subject during the administration of iPS cells. In an aspect, the one or more immunosuppressive drugs is administered to the subject following the administration of iPS cells. In an aspect, the administration of the one or more immunosuppressive drugs is repeated. In an aspect, the one or more immunosuppressive drugs is administered to the subject prior to and during the administration of iPS cells. In an aspect, the one or more immunosuppressive drugs is administered to the subject during and following the administration of iPS cells. In an aspect, the one or more immunosuppressive drugs is administered to the subject prior to and following the administration of iPS cells.
- the induced pluripotent stem cells (iPS cells) of a disclosed method of attenuating vascular apoptosis and/or apoptosis-related mechanisms are obtained from an autologous source.
- the iPS cells are obtained from an allogeneic source.
- the iPS cells are obtained from a syngeneic source.
- the iPS cells are obtained from a combination of sources.
- the iPS cells of a disclosed method of attenuating vascular apoptosis and/or apoptosis-related mechanisms in a subject are obtained from fibroblast cells.
- the iPS cells are obtained from H9c2 cells.
- the fibroblast cells or the H9c2 cells are transfected with a vector comprising a nucleic acid molecule encoding at least one sternness factor.
- the at least one sternness factor comprises c-myc, oct 3/4, Klf4, nanog, or Sox2, or a combination thereof.
- the sternness factors are c-myc, oct 3/4, Klf4, and Sox2.
- a disclosed method for attenuating vascular apoptosis and/or apoptosis-related mechanisms inhibits fibrosis and/or fibrosis-related mechanisms.
- a disclosed method for attenuating vascular apoptosis and/or apoptosis-related mechanisms protects myocardium including, but not limited to human myocardium, with or without the administration of iPS cells.
- the subject is a mammal.
- the mammal is a primate.
- the mammal is a human.
- the human is a patient.
- the subject is diabetic.
- the method of generating cardiac induced pluripotent stem cells comprises (i) inserting one or more nucleic acid constructs capable of expressing stem-cell like factors into a cardiac cell type, and (ii) obtaining the cardiac induced pluripotent stem cells stably expressing the stem-cell like factors in the cardiac cell type.
- the stem-cell like factors comprise Oct3/4, KIf4, Sox2, nanog, and c-Myc, or a combination thereof.
- the iPS cells differentiate into cardiac myocytes.
- the iPS cells are cardiac-committed.
- a disclosed method enhances cardiac myocyte differentiation in iPS cells or any other source of stem cells in regenerative medicine including, but not limited to, mesenchymal stem cells, adipocyte stems cells, and any other types of stem cells known to be effective by those of skill in the art.
- a disclosed composition enhances c-kit positive cells or any other endogenous heart stem cells.
- the iPS cells are obtained from an autologous source. In an aspect, the iPS cells are obtained from an allogeneic source. In an aspect, the iPS cells are obtained from a syngeneic source. In yet another aspect, the iPS cells are obtained from fibroblast cells. In an aspect, the iPS cells are obtained from a combination of sources. In a further aspect, the iPS cells are obtained from H9c2 cells. In an aspect, the fibroblast cells or the H9c2 cells are transfected with a vector comprising a nucleic acid molecule encoding at least one sternness factor.
- the disclosed induced pluripotent stem cells are used in a method of enhancing revascularization in a subject.
- the disclosed induced pluripotent stem cells are used in a method of attenuating vascular apoptosis and/or apoptosis-related mechanisms in a subject.
- the subject is a mammal.
- the mammal is a primate.
- the mammal is a human.
- the human is a patient.
- the subject has diabetes.
- the subject has experienced cardiac dysfunction.
- the cardiac dysfunction is a cardiac ischemia/reperfusion event.
- the ischemia/reperfusion event is myocardial infarction, myocardial ischemia, myocardial reperfusion, subendocardial ischemia, Takayasu's arteritis, atrial fibrillation, hemorrhagic stroke, an event that occurs during cardiac surgery where a heart lung machine is used such as coronary artery bypass, or an event that occurs during the preservation of an organ for transplant.
- the subject has a congenital heart defect.
- the congenital heart defect is hypoplasia or pentalogy of Cantrell.
- the disclosed iPS cells are primed with fibroblast growth factor-9.
- the iPS cells are administered with one or more of the following: conditioned media of fibroblast growth factor-9 primed induced pluripotent stem cells, fibroblast growth factor-9, and a disclosed composition comprising fibroblast growth factor-8 and fibroblast growth factor-9.
- the disclosed induced pluripotent stem cells improve angiogenesis in a subject.
- the disclosed iPS cells enhance cardiac function in a subject.
- the disclosed iPS cells improve angiogenesis and enhance cardiac function in the subject.
- enhancing cardiac function comprises one or more of (i) improving left ventricular function, (ii) improving fractional shortening, (iii) improving ejection fraction, (iv) reducing end-diastolic volume, (v) decreasing left ventricular mass, and/or (vi) normalizing of heart geometry.
- iPS cells inhibit fibrosis and/or fibrosis-related mechanisms.
- iPS cells protect myocardium including, but not limited to human myocardium, with or without the administration of iPS cells.
- the disclosed induced pluripotent stem cells inhibit or decrease necrosis. In an aspect, the disclosed induced pluripotent stem cells inhibit or decrease apoptosis and/or apoptosis-related mechanisms.
- the method of inhibiting vascular apoptosis comprises administering to a subject conditioned medium from induced pluripotent stem cells.
- a disclosed method of inhibiting vascular apoptosis comprises administering to a subject fibroblast growth factor-9.
- the subject is a mammal.
- the mammal is a primate.
- the mammal is a human.
- the human is a patient.
- the subject is diabetic.
- the subject has experienced cardiac dysfunction.
- the cardiac dysfunction is a cardiac ischemia/reperfusion event.
- the cardiac dysfunction is a cardiac ischemia/reperfusion event.
- ischemia/reperfusion event is myocardial infarction, myocardial ischemia, myocardial reperfusion, subendocardial ischemia, Takayasu's arteritis, atrial fibrillation, hemorrhagic stroke, an event that occurs during cardiac surgery where a heart lung machine is used such as coronary artery bypass, or an event that occurs during the preservation of an organ for transplant.
- the subject has a congenital heart defect.
- the congenital heart defect is hypoplasia or pentalogy of Cantrell.
- a disclosed method of inhibiting vascular apoptosis and/or apoptosis-related mechanisms comprises enhancing angiogenesis and/or vasculogenesis in the subject.
- a disclosed method comprises enhancing angiogenesis in the subject.
- a disclosed method comprises enhancing vasculogenesis in the subject.
- a disclosed method comprises both enhancing angiogenesis and vasculogenesis in the subject.
- a disclosed method of inhibiting vascular apoptosis and/or apoptosis-related mechanisms comprises enhancing cardiac function in the subject.
- enhancing cardiac function comprises increasing cardiac blood flow.
- enhancing cardiac function comprises increasing cardiac capillary density.
- enhancing cardiac function comprises both increasing cardiac blood flow and increasing cardiac capillary density.
- a disclosed method of inhibiting vascular apoptosis and/or apoptosis-related mechanisms further comprises increasing miR-126 expression, decreasing SPRED1 expression, decreasingPIK3R2 expression, and/or a combination thereof.
- a disclosed method increases miR-126 expression and decreases SPRED1 expression.
- a disclosed method increases miR-126 expression and decreases PIK3R2 expression.
- a disclosed method decreases SPRED 1 expression and decreases PIK3R2 expression.
- a disclosed method increases miR-126 expression, decreases SPREDl expression, and decreases PIK3R2 expression.
- the conditioned media of a disclosed method of inhibiting vascular apoptosis and/or apoptosis-related mechanisms comprises one or more anti- apoptotic and anti-fibrotic factors.
- the one or more anti-apoptotic and anti- fibrotic factors comprise fibroblast growth factor-8 (FGF-8), fibroblast growth factor-9 (FGF- 9), interleukin-10 (IL-10), and tissue inhibitor of matrix metalloproteinase- 1 (TIMP-1).
- a disclosed method of inhibiting vascular apoptosis and/or apoptosis-related mechanisms further comprises administering one or more of the following: (i) fibroblast growth factor-9 primed induced pluripotent stem cells; (ii) conditioned medium of fibroblast growth factor-9 primed induced pluripotent stem cells FGF-9 primed iPS cells); (iii) fibroblast growth factor-9; and/or (iv) a composition comprising fibroblast growth factor- 9 and fibroblast growth factor-8.
- a disclosed method of inhibiting vascular apoptosis and/or apoptosis-related mechanisms comprising administering to the subject conditioned medium from induced pluripotent stem cells further comprises administering (i) fibroblast growth factor-9 primed induced pluripotent stem cells (FGF-9 primed iPS cells); (ii) fibroblast growth factor-9; and/or (iii) a composition comprising fibroblast growth factor-9 and fibroblast growth factor-8 (FGF-9 and FGF-8).
- FGF-9 primed iPS cells fibroblast growth factor-9 primed induced pluripotent stem cells
- FGF-9 fibroblast growth factor-9 primed iPS cells
- fibroblast growth factor-9 fibroblast growth factor-9
- a composition comprising fibroblast growth factor-9 and fibroblast growth factor-8 (FGF-9 and FGF-8).
- a disclosed method of inhibiting vascular apoptosis and/or apoptosis-related mechanisms comprising administering to the subject FGF-9 can further comprises administering (i) fibroblast growth factor-9 primed induced pluripotent stem cells (FGF-9 primed iPS cells); (ii) conditioned medium of fibroblast growth factor-9 primed induced pluripotent stem cells; and/or (iii) a composition comprising fibroblast growth factor-9 and fibroblast growth factor-8 (FGF-9 and FGF-8).
- a disclosed method of inhibiting vascular apoptosis and/or apoptosis-related mechanisms comprises any combination (such as one or two or three or all four) of the following components: (A) fibroblast growth factor-9 primed induced pluripotent stem cells; (B) conditioned media of fibroblast growth factor-9 primed induced pluripotent stem cells; (C) fibroblast growth factor-9; and (D) a composition comprising fibroblast growth factor-9 and fibroblast growth factor-8.
- FGF-9 primed i.e., CM of FGF-9 (i.e., FGF-9 &
- the iPS cells of a disclosed method of inhibiting vascular apoptosis and/or apoptosis-related mechanisms differentiate into endothelial cells and/or vascular smooth muscle cells.
- the iPS cells differentiate into endothelial cells.
- the iPS cells differentiate into vascular smooth muscle cells.
- the iPS cells differentiate into both endothelial cells and vascular smooth muscle cells. .
- the iPS cells are cardiac-committed.
- a disclosed method enhances cardiac myocyte differentiation in iPS cells or any other source of stem cells in regenerative medicine including, but not limited to, mesenchymal stem cells, adipocyte stems cells, and any other types of stem cells known to be effective by those of skill in the art.
- a disclosed composition enhances c-kit positive cells or any other endogenous heart stem cells.
- the induced pluripotent stem cells (iPS cells) of a disclosed method of inhibiting vascular apoptosis and/or apoptosis-related mechanisms are obtained from an autologous source.
- the iPS cells are obtained from an allogeneic source.
- the iPS cells are obtained from a syngeneic source.
- the iPS cells are obtained from a combination of sources.
- the iPS cells of a disclosed method of inhibiting vascular apoptosis and/or apoptosis-related mechanisms in a subject are obtained from fibroblast cells.
- the iPS cells are obtained from H9c2 cells.
- the fibroblast cells or the H9c2 cells are transfected with a vector comprising a nucleic acid molecule encoding at least one sternness factor.
- the at least one sternness factor comprises c-myc, oct 3/4, Klf4, nanog, or Sox2, or a combination thereof.
- the sternness factors are c-myc, oct 3/4, Klf4, and Sox2.
- the apoptosis and/or apoptosis-related mechanisms occurs in the induced pluripotent stem cells (iPS cells). In an aspect, the apoptosis and/or apoptosis-related mechanisms occurs in the cardiac tissue of the subject. In an aspect, the apoptosis and/or apoptosis-related mechanisms occurs in both the iPS cells and in the cardiac tissue of the subject. In an aspect, a disclosed method inhibits apoptosis and/or apoptosis-related mechanisms in the iPS cells. In an aspect, a disclosed method inhibits apoptosis and/or apoptosis-related mechanisms in the cardiac tissue of the subject. In an aspect, a disclosed method inhibits apoptosis and/or apoptosis-related mechanisms in both the iPS cells and the cardiac tissue of the subject.
- iPS cells induced pluripotent stem cells
- a disclosed method of inhibiting vascular apoptosis and/or apoptosis-related mechanisms comprising administering iPS cells to the subject comprises administering between 5,000 and 500,000 induced pluripotent stem cells (iPS cells). In an aspect, a disclosed method comprises administering approximately 100,000 iPS cells. In an aspect, a disclosed method comprises administering less than 100,000 iPS cells.
- a disclosed method comprises administering more than 100,000 iPS cells.
- iPS cells are administered to the subject in one intramyocardial injection.
- iPS cells are administered to the subject in two or more
- iPS cells are administered into a peri-infarct zone of the injured myocardium. In an aspect, iPS cells are administered into an infarcted zone of the injured myocardium. In an aspect, iPS cells are administered into both a peri-infarct zone of the injured myocardium and an infarcted zone of the injured myocardium.
- the administration of the conditioned media to the subject is repeated.
- the conditioned media is administered to the subject prior to and during cardiac dysfunction.
- the conditioned media is administered to the subject during and following cardiac dysfunction.
- the conditioned media is administered to the subject prior to and following cardiac dysfunction.
- the conditioned media is administered to the subject prior to, during, and following cardiac dysfunction.
- the administration of the FGF-9 to the subject is repeated.
- the FGF-9 is administered to the subject prior to and during cardiac dysfunction.
- the FGF-9 is administered to the subject during and following cardiac dysfunction.
- the FGF-9 is administered to the subject prior to and following cardiac dysfunction.
- the FGF-9 is administered to the subject prior to, during, and following cardiac dysfunction.
- a disclosed method of inhibiting vascular apoptosis and/or apoptosis-related mechanisms comprising administering FGF-9 to the subject and further comprising administering one or more other components (such as, for example, fibroblast growth factor-9 primed induced pluripotent stem cells, conditioned media of fibroblast growth factor-9 primed induced pluripotent stem cells, and/or a composition comprising fibroblast growth factor-9 and fibroblast growth factor-8), the FGF-9 is administered to the subject prior to the administration of the one or more other components.
- FGF-9 is administered to the subject during the administration of the one or more other components.
- FGF-9 is administered to the subject following the administration of the one or more other components.
- the administration of FGF-9 is repeated.
- FGF-9 is administered to the subject prior to and during the administration of the one or more other components.
- FGF-9 is administered to the subject prior to and following the administration of the one or more other components.
- FGF-9 is administered to the subject during and following the administration of the one or more other components.
- FGF-9 is administered to the subject prior to, during, and following the administration of the one or more other components.
- a disclosed method of inhibiting vascular apoptosis and/or apoptosis-related mechanisms comprising administering the conditioned media of fibroblast growth factor-9 primed induced pluripotent stem cells to the subject and further comprising administering one or more other components (such as, for example, fibroblast growth factor-9 primed induced pluripotent stem cells, fibroblast growth factor-9, and/or a composition comprising fibroblast growth factor-9 and fibroblast growth factor-8), the conditioned media is administered to the subject prior to the administration of the one or more other components (such as, for example, fibroblast growth factor-9 primed induced pluripotent stem cells, fibroblast growth factor-9, and/or a composition comprising fibroblast growth factor-9 and fibroblast growth factor-8), the conditioned media is administered to the subject prior to the administration of the one or more other components (such as, for example, fibroblast growth factor-9 primed induced pluripotent stem cells, fibroblast growth factor-9, and/or a composition comprising fibroblast
- the conditioned media is administered to the subject during the administration of the one or more other components. In an aspect, the conditioned media is administered to the subject following the administration of the one or more other
- the administration of the conditioned media 9 is repeated.
- the conditioned media is administered to the subject prior to and during the administration of the one or more other components.
- the conditioned media is administered to the subject prior to and following the administration of the one or more other components.
- the conditioned media is administered to the subject during and following the administration of the one or more other components.
- the conditioned media is administered to the subject prior to, during, and following the administration of the one or more other components.
- the FGF-9 and/or the one or more other components are administered to the subject within 10, 15, 20, 25, 30, or more minutes following cardiac dysfunction.
- the FGF-9 and/or the one or more components are administered to the within 1, 2, 6, 12, 18, 24, or more hour following cardiac dysfunction.
- the conditioned media and/or the one or more other components are administered to the subject within 10, 15, 20, 25, 30, or more minutes following cardiac dysfunction.
- the conditioned media and/or the one or more components are administered to the within 1, 2, 6, 12, 18, 24, or more hour following cardiac dysfunction.
- a disclosed method comprise administering one or more immunosuppressive drugs.
- Immunosuppressive drugs are known in the art.
- the one or more immunosuppressive drugs comprise corticosteroids, calcineurin inhibitors, antiproliferatives, and mTOR inhibitors.
- the one or more immunosuppressive drugs can be a combination of immunosuppressive drugs.
- the one or more immunosuppressive drugs can be administered to one or more immunosuppressive drugs.
- immunosuppressive drugs is cyclosporine A.
- the one or more of the immunosuppressive drugs is cyclosporine A.
- immunosuppressive drugs is administered to the subject prior to, during, and/or following the administration of the induced pluripotent stem cells (iPS cells). In an aspect, the one or more immunosuppressive drugs is administered to the subject prior to the administration of the iPS cells. In an aspect, the one or more immunosuppressive drugs is administered to the subject during the administration of the iPS cells. In an aspect, the one or more immunosuppressive drugs is administered to the subject following the administration of the iPS cells. In an aspect, the administration of the one or more immunosuppressive drugs is repeated. In an aspect, the one or more immunosuppressive drugs is administered to the subject prior to and during the administration of the iPS cells. In an aspect, the one or more immunosuppressive drugs is administered to the subject during and following the administration of the iPS cells. In an aspect, the one or more immunosuppressive drugs is administered to the subject prior to and following the administration of the iPS cells.
- the one or more immunosuppressive drugs is administered to the subject prior to and following the administration
- a disclosed method for attenuating vascular apoptosis and/or apoptosis-related mechanisms inhibits fibrosis and/or fibrosis-related mechanisms.
- a disclosed method for attenuating vascular apoptosis and/or apoptosis-related mechanisms protects myocardium including, but not limited to human myocardium, with or without the administration of iPS cells.
- compositions and methods as investigational and/or research tools in the development and standardization of in vitro and in vivo test systems for evaluation in laboratory animals such as cats, dogs, rabbits, monkeys, rats and mice, as part of the search for new therapeutic approaches for the enhancement of neovascularization as well as for the attenuation of vascular apoptosis and/or apoptosis- related mechanisms.
- these approaches apply to subjects with cardiac dysfunction.
- Ranges can be expressed herein as from “about” one particular value, and/or to "about” another particular value. When such a range is expressed, a further aspect includes from the one particular value and/or to the other particular value. Similarly, when values are expressed as approximations, by use of the antecedent "about,” it will be understood that the particular value forms a further aspect. It will be further understood that the endpoints of each of the ranges are significant both in relation to the other endpoint, and independently of the other endpoint. It is also understood that there are a number of values disclosed herein, and that each value is also herein disclosed as "about” that particular value in addition to the value itself. For example, if the value "10” is disclosed, then “about 10" is also disclosed. It is also understood that each unit between two particular units are also disclosed. For example, if 10 and 15 are disclosed, then 11, 12, 13, and 14 are also disclosed.
- amino acid abbreviations are conventional one letter codes for the amino acids and are expressed as follows: A, alanine; B, asparagine or aspartic acid; C, cysteine; D aspartic acid; E, glutamate, glutamic acid; F, phenylalanine; G, glycine; H histidine; I isoleucine; K, lysine; L, leucine; M, methionine; N, asparagine; P, proline; Q, glutamine; R, arginine; S, serine; T, threonine; V, valine; W, tryptophan; Y, tyrosine; Z, glutamine or glutamic acid.
- Peptide refers to any peptide, oligopeptide, polypeptide, gene product, expression product, or protein.
- a peptide can be an enzyme.
- a peptide is comprised of consecutive amino acids.
- the term "peptide" encompasses naturally occurring or synthetic molecules.
- the biological activity or biological action of a peptide refers to any function exhibited or performed by the peptide that is ascribed to the naturally occurring form of the peptide as measured or observed in vivo (i.e., in the natural physiological environment of the protein) or in vitro (i.e., under laboratory conditions).
- a biological activity of caspase includes caspase enzymatic activity.
- enzyme refers to any peptide that catalyzes a chemical reaction of other substances without itself being destroyed or altered upon completion of the reaction.
- a peptide having enzymatic activity catalyzes the formation of one or more products from one or more substrates.
- Such peptides can have any type of enzymatic activity including, without limitation, the enzymatic activity or enzymatic activities associated with enzymes such as those disclosed herein.
- references in the specification and concluding claims to parts by weight of a particular element or component in a composition denotes the weight relationship between the element or component and any other elements or components in the composition or article for which a part by weight is expressed.
- X and Y are present at a weight ratio of 2:5, and are present in such ratio regardless of whether additional components are contained in the compound.
- a weight percent (wt. %) of a component is based on the total weight of the formulation or composition in which the component is included.
- the terms "transformation” and “transfection” mean the introduction of a nucleic acid, e.g., an expression vector, into a recipient cell including introduction of a nucleic acid to the chromosomal DNA of said cell.
- a nucleic acid e.g., an expression vector
- the art is familiar with various compositions, methods, techniques, etc. used to effect the introduction of a nucleic acid into a recipient cell.
- the art is familiar with such compositions, methods, techniques, etc for both eukaryotic and prokaryotic cells.
- the art is familiar with such compositions, methods, techniques, etc. for the optimization of the introduction and expression of a nucleic acid into and within a recipient cell.
- the term "subject" refers to the target of administration, e.g., an animal.
- the subject of the herein disclosed methods can be a vertebrate, such as a mammal, a fish, a bird, a reptile, or an amphibian.
- the subject of the herein disclosed methods can be a human, non-human primate, horse, pig, rabbit, dog, sheep, goat, cow, cat, guinea pig or rodent.
- the term does not denote a particular age or sex. Thus, adult and newborn subjects, as well as fetuses, whether male or female, are intended to be covered.
- the subject is a mammal.
- a patient refers to a subject afflicted with a disease or disorder.
- the term "patient” includes human and veterinary subjects.
- the subject has been diagnosed with cardiac dysfunction, such as, for example, a cardiac ischemia/reperfusion event, prior to the administering step.
- treatment refers to the medical management of a subject or a patient with the intent to cure, ameliorate, stabilize, or prevent a disease, pathological condition, or disorder.
- This term includes active treatment, that is, treatment directed specifically toward the improvement of a disease, pathological condition, or disorder, and also includes causal treatment, that is, treatment directed toward removal of the cause of the associated disease, pathological condition, or disorder.
- this term includes palliative treatment, that is, treatment designed for the relief of symptoms rather than the curing of the disease, pathological condition, or disorder; preventative treatment, that is, treatment directed to minimizing or partially or completely inhibiting the development of the associated disease, pathological condition, or disorder; and supportive treatment, that is, treatment employed to supplement another specific therapy directed toward the improvement of the associated disease, pathological condition, or disorder.
- the term covers any treatment of a subject, including a mammal (e.g., a human), and includes: (i) preventing the disease from occurring in a subject that can be predisposed to the disease but has not yet been diagnosed as having it; (ii) inhibiting the disease, i.e., arresting its development; or (iii) relieving the disease, i.e., causing regression of the disease.
- the disease, pathological condition, or disorder is cardiac dysfunction, such as, for example, a cardiac ischemia/reperfusion event.
- prevent refers to precluding, averting, obviating, forestalling, stopping, or hindering something from happening, especially by advance action. It is understood that where reduce, inhibit or prevent are used herein, unless specifically indicated otherwise, the use of the other two words is also expressly disclosed.
- diagnosisd means having been subjected to a physical examination by a person of skill, for example, a physician, and found to have a condition that can be diagnosed or treated by the compounds, compositions, or methods disclosed herein.
- diagnosis with cardiac dysfunction means having been subjected to a physical examination by a person of skill, for example, a physician, and found to have a condition that can be diagnosed or treated by a compound or composition that alleviates or ameliorates cardiac dysfunction.
- diagnosis refers to having been subjected to a physical examination by a person of skill, for example, a physician, and found to have a condition characterized by cardiac dysfunction and/or cardiac impairment and/or cardiac cell death wherein improving or enhancing neovascularization would be beneficial to the subject.
- a diagnosis can be in reference to a disorder, such as myocardial infarction, and the like, as discussed herein.
- the phrase "identified to be in need of treatment for a disorder," or the like, refers to selection of a subject based upon need for treatment of the disorder.
- a subject can be identified as having a need for treatment of a disorder (e.g., a disorder related to cardiac dysfunction or myocardial infarction) based upon an earlier diagnosis by a person of skill and thereafter subjected to treatment for the disorder.
- the identification can, in one aspect, be performed by a person different from the person making the diagnosis.
- the administration can be performed by one who subsequently performed the administration.
- administering and “administration” refer to any method of providing a disclosed compositions or pharmaceutical preparation comprising a disclosed composition to a subject. Such methods are well known to those skilled in the art and include, but are not limited to, intracardiac administration, intramyocardial
- a preparation can be administered therapeutically; that is, administered to treat an existing disease or condition.
- a preparation can be administered prophylactically; that is, administered for prevention of a disease or condition.
- contacting refers to bringing a disclosed compound and a cell, target receptor, or other biological entity together in such a manner that the compound can affect the activity of the target (e.g., receptor, transcription factor, cell, etc.), either directly; i.e., by interacting with the target itself, or indirectly; i.e., by interacting with another molecule, co-factor, factor, or protein on which the activity of the target is dependent.
- the target e.g., receptor, transcription factor, cell, etc.
- determining can refer to measuring or ascertaining a quantity or an amount or a change in expression and/or activity level, e.g., of a nucleotide or transcript or polypeptide.
- determining the amount of a disclosed transcript or polypeptide in a sample as used herein can refer to the steps that the skilled person would take to measure or ascertain some quantifiable value of the transcript or polypeptide in the sample.
- the art is familiar with the ways to measure an amount of the disclosed nucleotides, transcripts, polypeptides, etc.
- the term "level" refers to the amount of a target molecule in a sample, e.g., a sample from a subject.
- the amount of the molecule can be determined by any method known in the art and will depend in part on the nature of the molecule (i.e., gene, mRNA, cDNA, protein, enzyme, etc.). The art is familiar with quantification methods for nucleotides (e.g., genes, cDNA, mRNA, etc) as well as proteins, polypeptides, enzymes, etc. It is understood that the amount or level of a molecule in a sample need not be determined in absolute terms, but can be determined in relative terms (e.g., when compare to a control or a sham or an untreated sample).
- prevent refers to precluding, averting, obviating, forestalling, stopping, or hindering something from happening, especially by advance action. It is understood that where reduce, inhibit or prevent are used herein, unless specifically indicated otherwise, the use of the other two words is also expressly disclosed.
- the phrase "identified to be in need of treatment for a disorder," or the like, refers to selection of a subject based upon need for treatment of the disorder.
- a subject can be identified as having a need for treatment of a disorder (e.g., a disorder related to cardiac dysfunction or myocardial infarction) based upon an earlier diagnosis by a person of skill and thereafter subjected to treatment for the disorder.
- the identification can, in one aspect, be performed by a person different from the person making the diagnosis.
- the administration can be performed by one who subsequently performed the administration.
- neovascularization is the formation of functional microvascular networks with red blood cell perfusion
- the terms “effective amount” and “amount effective” refer to an amount that is sufficient to achieve the desired result or to have an effect on an undesired condition.
- a “therapeutically effective amount” refers to an amount that is sufficient to achieve the desired therapeutic result or to have an effect on undesired symptoms, but is generally insufficient to cause adverse side affects.
- the specific therapeutically effective dose level for any particular patient will depend upon a variety of factors including the disorder being treated and the severity of the disorder; the specific composition employed; the age, body weight, general health, sex and diet of the patient; the time of administration; the route of administration; the rate of excretion of the specific compound employed; the duration of the treatment; drugs used in combination or coincidental with the specific compound employed and like factors well known in the medical arts. For example, it is well within the skill of the art to start doses of a compound at levels lower than those required to achieve the desired therapeutic effect and to gradually increase the dosage until the desired effect is achieved. If desired, the effective daily dose can be divided into multiple doses for purposes of administration.
- compositions can contain such amounts or submultiples thereof to make up the daily dose.
- the dosage can be adjusted by the individual physician in the event of any contraindications. Dosage can vary, and can be administered in one or more dose administrations daily, for one or several days. Guidance can be found in the literature for appropriate dosages for given classes of pharmaceutical products.
- a preparation can be administered in a "prophylactically effective amount"; that is, an amount effective for prevention of a disease or condition.
- the terms “effective amount” and “amount effective” refer to an amount that is sufficient to achieve the desired result or to have an effect on an undesired condition.
- a “therapeutically effective amount” refers to an amount that is sufficient to achieve the desired therapeutic result or to have an effect on undesired symptoms, but is generally insufficient to cause adverse side affects.
- the specific therapeutically effective dose level for any particular patient will depend upon a variety of factors including the disorder being treated and the severity of the disorder; the specific composition employed; the age, body weight, general health, sex and diet of the patient; the time of administration; the route of administration; the rate of excretion of the specific compound employed; the duration of the treatment; drugs used in combination or coincidental with the specific compound employed and like factors well known in the medical arts.
- module is meant to alter, by increase or decrease.
- modulator can mean a composition that can either increase or decrease the expression level or activity level of a gene or gene product such as a peptide. Modulation in expression or activity does not have to be complete. For example, expression or activity can be modulated by about 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, 95%, 99%, 100% or any percentage in between as compared to a control cell wherein the expression or activity of a gene or gene product has not been modulated by a composition.
- EC5 0 is intended to refer to the concentration or dose of a substance (e.g., a compound or a drug) that is required for 50% enhancement or activation of a biological process, or component of a process, including a protein, subunit, organelle, ribonucleoprotein, etc.
- EC5 0 also refers to the concentration or dose of a substance that is required for 50% enhancement or activation in vivo, as further defined elsewhere herein.
- EC5 0 can refer to the concentration or dose of compound that provokes a response halfway between the baseline and maximum response. The response can be measured in an in vitro or in vivo system as is convenient and appropriate for the biological response of interest.
- the response can be measured in vitro using cultured cardiac cells or in an ex vivo organ culture system with isolated cardiac cells, e.g., cardiomyocytes, vascular smooth muscle cells, endothelial cells, etc).
- the response can be measured in vivo using an appropriate research model such as rodent, including mice and rats.
- the mouse or rat can be an inbred strain with phenotypic characteristics of interest such as, for example, obesity or diabetes.
- the response can be measured in a transgenic or knockout mouse or rat wherein a gene or genes has been introduced or knocked-out, as appropriate, to replicate a disease process.
- IC5 0 is intended to refer to the concentration or dose of a substance (e.g., a compound or a drug) that is required for 50% inhibition or diminution of a biological process, or component of a process, including a protein, subunit, organelle, ribonucleoprotein, etc. IC5 0 also refers to the concentration or dose of a substance that is required for 50% inhibition or diminution in vivo, as further defined elsewhere herein.
- a substance e.g., a compound or a drug
- IC5 0 also refers to the half maximal (50%) inhibitory concentration (IC) or inhibitory dose of a substance.
- the response can be measured in an in vitro or in vivo system as is convenient and appropriate for the biological response of interest.
- the response can be measured in vitro using cultured cardiac cells or in an ex vivo organ culture system with isolated cardiac cells (e.g., cardiomyocytes, vascular smooth muscle cells, endothelial cells, etc).
- the response can be measured in vivo using an appropriate research model such as rodent, including mice and rats.
- the mouse or rat can be an inbred strain with phenotypic characteristics of interest such as, for example, obesity or diabetes.
- the response can be measured in a transgenic or knockout mouse or rat wherein the a gene or genes has been introduced or knocked-out, as appropriate, to replicate a disease process.
- pharmaceutically acceptable describes a material that is not biologically or otherwise undesirable, i.e., without causing an unacceptable level of undesirable biological effects or interacting in a deleterious manner.
- pharmaceutically acceptable carrier refers to sterile aqueous or nonaqueous solutions, dispersions, suspensions or emulsions, as well as sterile powders for reconstitution into sterile injectable solutions or dispersions just prior to use.
- aqueous and nonaqueous carriers, diluents, solvents or vehicles examples include water, ethanol, polyols (such as glycerol, propylene glycol, polyethylene glycol and the like), carboxymethylcellulose and suitable mixtures thereof, vegetable oils (such as olive oil) and injectable organic esters such as ethyl oleate.
- polyols such as glycerol, propylene glycol, polyethylene glycol and the like
- carboxymethylcellulose and suitable mixtures thereof such as vegetable oils (such as olive oil) and injectable organic esters such as ethyl oleate.
- Proper fluidity can be maintained, for example, by the use of coating materials such as lecithin, by the maintenance of the required particle size in the case of dispersions and by the use of surfactants.
- These compositions can also contain adjuvants such as preservatives, wetting agents, emulsifying agents and dispersing agents.
- antibacterial and antifungal agents such as paraben, chlorobutanol, phenol, sorbic acid and the like. It can also be desirable to include isotonic agents such as sugars, sodium chloride and the like.
- Prolonged absorption of the injectable pharmaceutical form can be brought about by the inclusion of agents, such as aluminum monostearate and gelatin, which delay absorption.
- injectable depot forms are made by forming microencapsule matrices of the drug in biodegradable polymers such as polylactide-polyglycolide, poly(orthoesters) and
- Depot injectable formulations are also prepared by entrapping the drug in liposomes or microemulsions which are compatible with body tissues.
- the injectable formulations can be sterilized, for example, by filtration through a bacterial-retaining filter or by incorporating sterilizing agents in the form of sterile solid compositions which can be dissolved or dispersed in sterile water or other sterile injectable media just prior to use.
- Suitable inert carriers can include sugars such as lactose.
- at least 95% by weight of the particles of the active ingredient have an effective particle size in the range of 0.01 to 10 micrometers.
- compositions of the invention Disclosed are the components to be used to prepare the compositions of the invention as well as the compositions themselves to be used within the methods disclosed herein. These and other materials are disclosed herein, and it is understood that when combinations, subsets, interactions, groups, etc. of these materials are disclosed that while specific reference of each various individual and collective combinations and permutation of these compounds can not be explicitly disclosed, each is specifically contemplated and described herein. For example, if a particular compound is disclosed and discussed and a number of modifications that can be made to a number of molecules including the compounds are discussed, specifically contemplated is each and every combination and permutation of the compound and the modifications that are possible unless specifically indicated to the contrary.
- H9c2 cells were negative for alkaline phosphatase staining ( Figure 1, panel C).
- FIG. 2 shows that iPS cells formed embryoid bodies (EBs) and differentiated into cardiac myocytes, smooth muscle cells and endothelial cells.
- EBs were differentiated for 17 days.
- a beating area was stained with anti-myosin /Alexa 488 (panel A), anti-RFP/Alexa 568 (panel B) and DAPI (panel C).
- the merged image shows co-expression of myosin and RFP.
- Smooth muscle cells were stained with anti-smooth muscle actin /Alexa 488 (panel D), anti-RFP/Alexa 568 (panel E) and DAPI (panel F).
- the merged image (panel F) shows overlap of expression of smooth muscle a-actin and RFP.
- Endothelial cells that have formed a capillary-like structure were stained with anti-von Willebrand Factor/Alexa 488 (panel G), anti-RFP/Alexa 568 (panel H) and DAPI (panel I).
- the merged image (panel I) shows co- expression of von Willebrand Factor and eGFP.
- cytokines including fibroblast growth factors (FGFs), wnt proteins, bone morphogenic proteins (BMPs), and transforming growth factor (TGF) ⁇ (Singla et al, 2005).
- FGFs fibroblast growth factors
- BMPs bone morphogenic proteins
- TGF transforming growth factor
- IL-3 promotes differentiation to macrophages, mast cells, or neutrophils (Wiles et al, 1991), IL-6 to erythroid lineages (Biesecker et al, 1993), retinoic acid to neurons (Slager et al, 1993), and TGF to cardiac myocytes (Singla et al., 2005).
- IGF-1 mouse insulin growth factor
- FGF family members play an important role in various cell signal transduction pathways associated with embryo development (Dyer et al, 2009; Yun et al, 2010). Reports on other FGF isoforms (FGF2, FGF4, and FGF-9) indicate a potential role in angiogenesis Yun et al, 2010; Frontini et al, 2011) in the heart whereas FGF-8 has been reported to be pro-cardiac myocyte growth factor in the developing heart (Dyer et al, 2009; Marques et al, 2008). Specifically, FGF-9 recently been reported to decrease mortality in mice following MI (Korf-Klingebiel et al, 2011). However, the role of FGF-9 or iPS cells in the injured diabetic adult heart has not yet been characterized. Therefore, whether iPS cells primed with FGF-9 increase neovascularization and regenerate the injured diabetic myocardium merits further investigation.
- FIG. 9 would promote EC and VSMC differentiation.
- EBs derived from iPS cells were treated with 0, 25, and 50 ng per mL of the bio-active form of recombinant mouse FGF-9 and were examined by microscopy from day 0 (DO) through day 14 (D14) after plating.
- Figure 3 A shows that FGF-9-treated EBs stained positive for CD31 specific for ECs, smooth muscle a- actin for VSMCs, anti-RFP for iPS cells, and DAPI for nuclear staining (panel A-B).
- Figure 3 shows positive staining for von Willebrand factor VIII for ECs.
- Figure 3B shows a histogram providing a quantitative analysis of ECs and VSMCs, demonstrating a significant increase in the number of positively stained cells at D14 following FGF-9 treatment.
- cytokine/growth factors were present in the iPS-CMs and could provide protection from H202-induced apoptosis was examined. 69 cytokine/growth factors were analyzed with the use of Luminex technology. (Singla et al, 2008; Singla et al, 2009). Cytoprotective proteins released into iPS-CM were present at higher levels as compared with the H9c2-CM, ES-CM, or cell culture media used as controls. Notably, FGF-9 was significantly increased in the iPS-CM as were FGF-8, IL-10, and TIMP-1.
- MI mouse iPS cell transplantation
- C57BL/6 and db/db mice by left coronary artery ligation.
- two intramyocardial injections of 10 ⁇ ⁇ of medium ⁇ 2.5 x 10 4 iPS cells were delivered into peri-infarct zone areas of the LV.
- iPS cells were injected in the LV of MI animals in both groups and compared with controls ( Figure 4).
- the fate of donor cells was determined with the use of co-immunolabeling for the donor cell marker and neovascular cell type-specific proteins.
- an anti- smooth muscle anti-actin antibody was used to identify VSMCs
- an anti-CD31 antibody was used to identify ECs.
- anti-RFP immunolabeling demonstrated areas of donor cell engraftment in the infarct and border zones.
- Co- immunolabeling with an antibody specific for VSMCs and ECs revealed small and large artery regeneration. ( Figure 4).
- panels A-D show vascular smooth muscle cells and panels E-H show endothelial cells.
- Panel A shows smooth muscle cells stained with anti-smooth muscle a- actin/Alexa568, and panel E shows endothelial cells stained with anti-CD31/Alexa568.
- Panels B and F show donor-derived cells stained with anti-RFP/Alexa 488 (in green) and panels C and G show nuclei stained with DAPI.
- the co-localization of cell type-specific markers and donor cell RFP in merged images indicated that transplanted iPS cells became vascular smooth muscle (panel D), and endothelial cells (panel H).
- the arrows in panels D and H indicate enlarged areas in right hand corner.
- MI was produced in C57BL/6 and db/db mice by left coronary artery ligation.
- neovascularization in vascular smooth muscle and panels E-H show activated c-kit +ve cells and co-staining with the mature EC marker CD31.
- Cell type-specific immunolabeling is indicated in red for smooth muscle (panel A) with anti-smooth muscle a-actin/Alexa568, and for endothelial cells with anti-CD31/Alexa568 (panel E).
- Activated c-kit positive cells were identified by anti-c-kit/Alexa 488 in green (panels B and F), and nuclei were stained with DAPI in blue (panels C and G).
- FIG. 5B shows a histogram presenting a quantitative analysis of positive c-kit+VSMCs (top panel) and c- kit+ECs (bottom panel).
- This quantitative data shows a significantly (*p ⁇ 0.05) increased number of c-kit +ve +VSMCs and c-kit +ve +ECs in the MI + iPS and MI + FGF-9 groups as compared with MI.
- a cytokine growth analysis that iPS cells secrete pro- angiogenic growth factor FGF-9 was confirmed.
- Figure 6A shows caspase activity following treatment with glucose and H2O2
- GH202 glucose and iPS cell conditioned media
- GPICM glucose and iPS cell conditioned media
- FGF-9 F9
- Figure 6B shows cell death detection following treatment with treatment with
- H2O2 H
- GH glucose and H2O2
- GH glucose and H2O2
- GH glucose and H2O2
- iPS cell conditioned media H 2 0 2 and iPS cell conditioned media and FGF-9
- FGF-9 F9
- Control is represented by C.
- black bars indicates that H9c2 cells were treated with 3 ⁇ 4(3 ⁇ 4 to induce cell death while gray bars indicated that glucose was provided to the 3 ⁇ 4(3 ⁇ 4 treated cells.
- Figure 7C shows staining for smooth muscle (anti-alpha-actin antibody) in
- Figure 7C also shows TU EL staining in panel b and DAPI staining in panel c.
- the histogram in Figure 7D shows a significant decrease in the % of apoptosis in the vessels in the both the C57BL/6J and db/db mice following MI and treatment with either iPS cells or FGF-9 (* p ⁇ 0.05 compared to the MI group).
- Figure 7E shows staining for endothelial cells (anti-CD31 antibody) in C57BL/6J mice following MI (panel a).
- Figure 7E also shows TUNEL staining in panel b and DAPI staining in panel c.
- the histogram in Figure 7F shows a significant decrease in the % of apoptosis in the capillaries in the both the C57BL/6J and db/db mice following MI and treatment with either iPS cells or FGF-9 (* p ⁇ 0.05 compared to the MI group).
- Figure 8A shows the percentage of total stem cells positively stained for vWF8 and the total number of smooth muscle cells positively stained for vWF8 in the iPS cell-treated group, the iPS cell-treated group with FGF-9 (25 nanograms), and the iPS-cell treated group with FGF-9 (50 nanograms).
- Figure 8b shows the percentage of total stem cells positively stained for CD21 and the total number of smooth muscle cells positively stained for CD21 in the iPS cell-treated group, the iPS cell-treated group with FGF-9 (25
- FIG. 10 shows that iPS cell and FGF-9 treatment blunted post- Mi remodeling and improved cardiac function two weeks following MI.
- Figure 10A shows the fractional shortening (FS) for the iPS cells or FGF-9 treatment groups were significantly different from the MI group. (*p ⁇ 0.05).
- Figure 10B shows the ES for the iPS cells or FGF-9 treatment groups were significantly different from the MI group. (*p ⁇ 0.05).
- (X9 FGF-9).
- iPS cells from various sources may vary in their epigenetic alterations (Kim et al, 2010).
- generated iPS cells by the episomal approach were less immunogenic compared with the cells generated by the retroviral approach (Zhao et al, 2011).
- iPS cells generated from H9c2 cells using plasmid transfection were used herein, but the immunogenicity of these cells is not well understood.
- the method, the number of cells, and the location of injections described herein differ from recent reports on the immunogenicity of iPS cells (Zhao et al, 2011).
- ES cells transplanted in the sheep heart were compared with and without the
- Diabetes mellitus Type II combined with MI leads to severe cardiac and vascular remodeling, which is a complex, dynamic, and time-dependent process (Glass et al, 2010; Abel 2005; Amos et al, 1997).
- EPCs endothelial progenitor cells isolated from peripheral blood as well as adult and ES cell sources (Jujo et al, 2008; Tillmanns et al, 2008; Urbanket et al, 2003).
- Angiogenesis abnormalities have been shown to be present in the infarcted non-diabetic and diabetic heart (Fatma et al, 2010; Abel 2005; Urbanek et al., 2005) How much neovascularization can be achieved in the infarcted non-diabetic and diabetic hearts following transplantation of iPS cells primed with pro-angiogeneic factor FGF-9 is unknown
- differentiated iPS, ES cells, fibroblast reprogrammed iPS cells, H9c2 cells, FGF-9 (1 ng/20 ⁇ , in two injections or 50 ng/mL, or cell culture medium (as a control) are injected The subsequent effects on neovascularization are quantified.
- mice C57BL/6 and db/db (Jackson Laboratories) mice are used and the mice are separated into groups receiving or not receiving Cyclosporin A.
- Animals are treated with cyclosporine A (250-300 mg/kg) for 5 days before cell transplantation and are treated with cyclosporine A for 28 days after cell transplantation (see, e.g., Menard et al, 2005; Giralt et al, 1997).
- Drug dose are increased or decreased based on average cyclosporine serum concentration of 300-400 ng/L (Menard et al, 2005; Giralt et al, 1997).
- mice are regularly monitored for glucose and given insulin injection (0.75 U/kg i.p. as reported (Kobayashi et al, 2008) if glucose levels exceed 350 ⁇ 25 mg/dL to eliminate the variation of observed differences due to glucose levels. Animals are killed humanely at short-term (72 hrs and 14 days) and long-term (3, 6, 12, and 16 weeks) for histological, immunohistochemistry, and physiological (blood flow) analysis.
- FGF-9 primed-iPS cells are treated as follows. FGF-9 (50 ng/mL) is added to the iPS cells in the differentiation medium (a medium that does not contain iPS cell self- renewal growth factors such as activin A, leukemia inhibitory factor and mouse embryonic fibroblast condition medium) for 48 hours. These iPS cells are considered as FGF-9 primed differentiated iPS cells. Control iPS or ES cells are cultured for 48 hrs in a differentiation medium without FGF-9. Infiltration of T-cells is determined using anti-CD3 and anti-CD4 antibodies (Zhao et al, 201 1). H&E stained sections are examined to identify the presence of any inflammatory cells. Additionally, heart sections are analyzed to determine the effect of FGF-9-iPS cells on capillary density and formation of coronary arteries. Heart function is examined via echocardiography (Singla et al, 2006; Singla et al, 2011)
- RV right ventricular
- LV free wall and interventricular septum are immunostained for RFP (Evrogen, Russia), Oct3/4, or Sox2 (Santa Cruz Biotechnology) to determine early engraftment up to 24 hrs.
- Sections are counter-stained with DAPI (Sigma) to delineate the nuclei. Fluorescence microscopy is used to acquire images. NIH image J processing and analysis software are employed for these analyses.
- BrdU 50 mg/kg body weight, i.p (Beltrami et al, 2003) is
- BrdU identifies nuclei in S phase in order to label actively dividing cells.
- Active cell growth of engrafted cells is identified using double-label immunostaining for RFP and BrdU (Dako) antibodies.
- RFP identifies donor engrafted cells whereas BrdU labels DNA synthesizing cells.
- double-label immunostaining is performed using a Ki-67 antibody (Dako) and an RFP antibody.
- Ki-67 is a nuclear antigen, which is associated with cell division and labels proliferating cells (G1-, S-, G2 -phase and mitosis), but not in quiescent or resting cells (GO-phase), and as stated above, RFP antibodies identify donor grafted cells. Slides are analyzed using fluorescence (Olympus) and confocal microscopy.
- the number of early and mature endothelial cells that form following engraftment at various time points following MI is assessed. If cells stain positive with CD14 + or CDla + antibodies and are negative for vWF antibody staining, then these cells are considered early EPCs. If cells stain positively for CD34 + or CD133 + antibodies and are negative for vWF antibody staining, then these cells are considered late EPCs Mature endothelial cells are identified with antibodies such as factor VIII antibody (Sigma), CD31/PECAM-1 (Santa Cruz), and Griffonia simplicifolia lectin (Sigma).
- VSMCs VSMCs.
- endothelial and smooth muscle specific markers e.g., FLK-1/VEGF-R2, CD34, VEcad, and endoglin.
- Sections are stained with respective FITC or rhodamine-conjugated secondary antibodies and counterstained with DAPI for nuclear visualization.
- Slides are analyzed using Olympus and confocal microscopy.
- Western blotting and RT-PCR are be used to determine the SM cell markers such as SM-MHC-1 1, calponin and SM22 alpha.
- the early and late EPC marker antibodies are commercially available (Krenning et al, 2008).
- New cell differentiation and capillary and coronary artery formation are determined using double-label immunostaining to detect donor cells (RFP antibody) and differentiated cell types using neovascular cell specific antibodies.
- Endothelial cells are identified using cell specific antibodies such as factor VIII antibody (Sigma), CD31/PECAM- 1 (Santa Cruz), and Griffonia simplicifolia lectin (sigma).
- a-smooth muscle (SM) actin Sigma
- SM22a SM22a
- calponin calponin
- MHC SM-myosin heavy chain
- Echocardiography is an accurate noninvasive tool for the determination of quantitative characterization of heart remodeling following MI (Singla et al, 2008; Singla et al, 201 1 (Am. J. Physiol. Heart Circ. Physiol). Echocardiography is performed on infarcted hearts at short term post-MI time points (72 hrs and 14 days) and at long-term post-MI time points (3, 6, 12, and 16 weeks). M-mode images in a short axis view are performed to measure LV mass, LV mass to body ratio, LV anterior and posterior wall thickness, and fractional shortening.
- Factors released from ES cells are different than those factors released from adult stem cells and inhibit H9C2 cell apoptosis (Singla et al, 2007; Singla et al, 2008).
- cardiac myocyte apoptosis was significantly inhibited and function was improved.
- Fatma et al., 2010; Singla et al, 2011 Am J Physiol Heart Circ Physiol.
- Following transplantation of ES-CM in the infarcted heart there was enhanced activation of CPCs and FLK-l +ve -PCs.
- the enhanced activation contributed to cardiac neovascular regeneration via improved cardiac function.
- following the intramyocardial injection of FGF-9 in the infarcted heart there was enhanced neovascularization mediated via c-kit positive cells.
- iPS-CM is produced from iPS-cells primed with and without FGF-9. Preparation of CM is well reported by us.
- a mouse myocardial infarction (MI) model (Fatma et al, 2010; Singla et al, 2007; Singla et al, 2008; Singla et al, 2011) is used as well as C57BL/6 and db/db mice with and without cyclosporine A to inject FGF-9- iPS-CM (15x (Fatma et al, 2010; Singla et al, 2011), FGF-9 (1 ng/20 in two injections (50 ng/mL) or cell culture medium (as a control) using two intramyocardial injections following MI.
- FGF-9- iPS-CM 15x
- FGF-9 (1 ng/20 in two injections (50 ng/mL)
- cell culture medium as a control
- additional cell specific CM such ES-CM and H9c2-CM are used for comparison purposes.
- CPCs are lineage negative and are identified with cell specific markers.
- CPCs specific antibodies such as c-kit, MDR1 and sca-1 (Molecular Probes) are used to identify CPCs.
- CPCs specific antibodies such as CD34, Cd8, and CD45 (Molecular Probes, Santa Cruz)
- FLK-1 specific antibodies such as CD34 and FLK-1 /VEGF-R2 (Santa Cruz) are used to identify FLK-1 cells. The number of CPCs and FLK-l-PCs that have started proliferation and differentiation is determined.
- Sections will then be stained with respective FITC or rhodamine conjugated secondary antibodies and counterstained with DAPI for nuclear visualization. Slides are analyzed using Olympus fluorescence and confocal microscopy. The number of CPCs in the acute and chronic cardiomyopathy is quantified. RT-PCR and western blot is performed to confirm increased levels of endothelial and vascular smooth muscle cells transcriptional factors and protein levels.
- miRNAs are small non-coding RNAs about 20-24 nucleotides in length that play a major role in the regulation of a variety of cell processes including apoptosis, hypertrophy, fibrosis, and cardiac differentiation (Care et al, 2007; Catalucci et al, 2008; Chen et al., 2006; Cimmino et al, 2005).
- the deletion of miR-126 was reported to demonstrate loss in vascular integrity and defects in ECs proliferation in the mice with and without myocardial infarction (Wang et al, 2008).
- miR-126 inhibited SPREDl and PIK3R2, which are both negative regulators of the VEGF signaling pathway (Wang et al, 2008; Heusschen et al, 2010).
- neovascularization in diabetic infarcted mouse hearts as well as determine the effect of transplanted FGF-9 primed iPS cells or FGF-9-iPS-CM.
- the presence of decreased neovascularization that leads to decreased cardiac function in the infarcted mouse heart was demonstrated.
- transplanted iPS cells enhanced neovascularization with improved cardiac function.
- the levels of miR-126 were significantly reduced following MI and this decrease was reversed with cell transplantation.
- mice are injected with a selective inhibitor of miR-126 (locked nucleic acid, LNA-antagomir-126, 80mg/kg, as this dose is used by other investigators (Hartley et al, 2010; Patrick et al, 2010).
- miR-126 locked nucleic acid, LNA-antagomir-126, 80mg/kg, as this dose is used by other investigators (Hartley et al, 2010; Patrick et al, 2010).
- LNA-antagomir-126 locked nucleic acid
- 80mg/kg 80mg/kg
- miR-126 expression of miR-126 in major heart cell types is characterized using double label immunostaining with cell specific antibodies.
- neovascular cell specific antibodies such as CD31 for endothelial cells and smooth muscle a-actin for VSM cells. Sections are counter stained with DAPI to identify cell nuclei.
- SPREAD 1 and PIK3R2 SDS-PAGE and Western blot analyses are performed to determine the protein expression of total and phosphorylated SPREDl and PIK3R2 (Abeam, USA). Densitometry is used to measure band density.
- Interleukin-6 is a component of human umbilical cord serum and stimulates hematopoiesis in embryonic stem cells in vitro. Exp. Hematol. 21, 774- 778 (1993).
- Cimmino,A. et al. miR-15 and miR-16 induce apoptosis by targeting BCL2.
- CD34+CXCR4+ cells and non-selected mononuclear cells in patients with acute STEMI and reduced left ventricular ejection fraction results of randomized, multicentre Myocardial
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| US201261618280P | 2012-03-30 | 2012-03-30 | |
| PCT/US2013/030082 WO2013148122A1 (en) | 2012-03-30 | 2013-03-09 | Methods and compositions using fgf-9 to enchance neovascularization and regeneration |
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