BAG3 METHODS AND USES FOR THE TREATMENT OF INFLAMMATION
Patent Information
- Application Number
- JP2024523137
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2022-07-18
- Filing Date
- 2022-10-21
- Publication Date
- 2025-09-10
AI Technical Summary
The role of BAG3 protein in cardiac biology and its impact on inflammation and apoptosis pathways is not well understood, particularly in conditions of haploinsufficiency, which can lead to cardiac dysfunction and inflammation in diseases like dilated cardiomyopathy and cancer.
Utilizing BAG3 modulation through expression vectors, such as AAV vectors, to regulate BAG3 protein levels and activity, thereby reducing caspase activation and inflammation by interacting with proteins like CIAP1/2 and SMAC, and modulating TNF signaling and PARP1 levels.
Reduces inflammation and apoptosis by stabilizing CIAP1, inhibiting caspase-3 activation, and modulating TNF signaling and PARP1 levels, providing therapeutic benefits in conditions like dilated cardiomyopathy and chronic inflammatory diseases.
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Abstract
Description
Detailed Description of the Invention
[0001] [Introduction] BAG3 is a ubiquitously expressed, but multifunctional, protein most prominent in the heart, skeletal muscle, central nervous system, and in many cancers (1, 2). Multiple genome-wide association studies and whole-exome or whole-genome sequencing of DNA from patients with both hereditary and idiopathic dilated cardiomyopathy (DCM) have shown that loss of a single allele of BAG3 is a significant cause of disease (3-6). This is supported in animal models, as homozygous deletion of BAG3 is lethal early after birth (7), while loss of function of a single allele leads to the development of myocyte dysfunction in zebrafish (3), in mesenchymal stem cell-derived cardiomyocytes carrying human mutations (8), in mouse models with both point mutations and haploinsufficiency (9, 10), and in humans with haploinsufficiency (11, 12). Studies have also shown that genotypically normal patients with heart failure and reduced ejection fraction (HFrEF) have reduced BAG3 in ventricular myocardium at the time of heart transplantation comparable to that seen in patients with BAG3 truncation (11, 12). In contrast to the heart, overexpression of BAG3 in cancer cells results in chemotherapy resistance and increased propensity for metastasis and local invasion (13, 14). Despite the clear importance of BAG3 in heart disease and cancer, two major diseases in developed countries, the full extent of BAG3's role in health and disease is not fully defined.
[0002] The structure of BAG3 contains numerous protein-protein binding domains that enable it to affect a wide variety of molecular and cellular activities. In the heart, BAG3 enhances autophagy by acting as a chaperone for heat shock protein 70 (hsp / hsc70) (15). BAG3 inhibits apoptosis by interacting with the antiapoptotic protein Bcl-2 (16) and binds to beta-adrenergic receptors (b-AR) and L-type Ca2+ receptors (17). 2+BAG3 enhances excitation-contraction coupling by linking the sarcomeric channel (17) and maintains sarcomere integrity (18). The diverse functions of BAG3 are facilitated by the presence of multiple binding sites and a diverse set of binding partners. For example, the PXXP domain serves as a molecular anchor for the proximal end of the motor-dynein transport system, while two isoleucine-proline-valine (IPV) motifs bind the small heat shock proteins HspB6 and HspB8 and support macroautophagy (1).
[0003] Recent investigations in animal models have begun to link specific heterozygous genetic variants in BAG3 to unique cellular or molecular phenotypes. For example, the E455K loss-of-function mutation disrupts the interaction between BAG3 and Hsp-70, resulting in heat shock protein instability and loss of proteostasis (9). The rare P209L variant is a dominant gain of function mutation that causes aggregation of the variant itself with Hsp70 clients, which results in stalling of the Hsp70 autophagy network, leading to restrictive cardiomyopathy (19). In contrast, the P209S variant in BAG3 has been reported in association with late-onset axonal Charcot-Marie-Tooth neuropathy in two patients (20). However, lack of clarity has limited the role of BAG3 on cardiac phenotypes in mice. P209L Discrepancies in the results of the effects of mutations remain ( 21 )( 22 ). Summary of the Invention
[0004] As disclosed herein, to gain a better understanding of the cardiac biology of BAG3 haploinsufficiency, high pressure liquid chromatography coupled with tandem mass spectrometry (LC-MS / MS) was used to identify differentially expressed proteins in young 8-10 week old mice with heterozygous BAG3 ablation, a time point at which left ventricular (LV) function and heart size are still normal. Mice with heterozygous knockout of BAG3 are phenotypically normal by echocardiography at 8-10 weeks of age, but demonstrate markedly altered LV function by 18 weeks of age.
[0005] Proteomic analysis revealed two areas of cardiac biology: mitochondrial function and programmed cell death or apoptosis. + / - Assessment of the mouse proteome revealed abnormalities in proteins associated with metabolism and programmed cell death or apoptosis, despite a normal phenotype.
[0006] As disclosed herein, inter alia, it has now been discovered that BCL2-associated athanogene 3 (BAG3) is a critical component of both the intrinsic and extrinsic pathways of apoptosis in the heart, as well as in other tissues and cell types. In particular, BAG3 regulates cell apoptosis through both canonical and non-canonical pathways.
[0007] As also disclosed herein, it has now been discovered that, among other things, BAG3 modulates a late step in apoptosis, namely the activation of caspase 3. BAG3 directly interacts with inhibitor of apoptosis protein 1 / 2 (cIAP1 / 2 or cIAP). Under normal conditions, BAG3 protein is present at normal levels and binds to cellular inhibitor of apoptosis 1 (CIAP-1), facilitating the ability of CIAP1 to bind to and inhibit the activity of caspase 3. However, under conditions of BAG3 haploinsufficiency, there is a significant abnormality in mitochondrial function, including a decrease in membrane potential that leads to a second mitochondrially derived activator of caspases, SMAC (also called direct IAP binding protein (DIABLO)), leaking out of the mitochondria. SMAC then translocates to the cytoplasm and binds to CIAP-1, thereby releasing it from caspase 3, allowing caspase 3 to be activated. Activated caspase 3 can then lyse key components of the cell. Thus, BAG3 may be used or formulated to reduce, inhibit or decrease the activation of caspase-3, thereby reducing inflammation or an inflammatory response.
[0008] As further disclosed herein, it has now been discovered that reducing the levels of BAG3 causes a shift in the balance between the intrinsic and extrinsic pathways of caspase activation to signaling that favors activation of caspase-8 (cleaved caspase 8). Thus, BAG3 can be used or formulated to reduce, inhibit, or decrease activation of caspase-8.
[0009] As additionally disclosed herein, BAG3 interacts with, among other things, the mitochondrial import receptor subunit TOM22 and Ca 2+ It is found herein that the uniporter directly interacts with mitochondrial metabolism and the generation of mitochondrial membrane potential, respectively.
[0010] As additionally disclosed herein, it has now been discovered that, inter alia, a decrease in BAG3 leads to an increase in poly(ADP-ribose) polymerase 1 (PARP1). Such an increase in PARP1 can lead to an increase in alpha-synuclein and an exacerbation of Parkinson's symptoms. Thus, BAG3 can be used or formulated to lower, inhibit, or decrease PARP1.
[0011] According to the present invention, BAG3 may be used or formulated to modulate TNF signaling. In certain embodiments, BAG3 may be used or formulated to reduce, inhibit, or decrease TNF signaling.
[0012] According to the present invention, BAG3 may be used or formulated to modulate inflammation. In certain embodiments, BAG3 may be used or formulated to reduce, inhibit, decrease, or treat inflammation.
[0013] According to the present invention, BAG3 may be used or formulated to modulate an inflammatory response. In certain embodiments, BAG3 may be used or formulated to reduce, inhibit, decrease, or treat an inflammatory response.
[0014] Inflammation or inflammatory responses can be systemic, regional, or local, such as in an organ or tissue. Non-limiting examples of inflammation or inflammatory responses that BAG3 may be used or formulated to reduce, inhibit, decrease, or treat in certain embodiments occur in the pulmonary system, lungs, cardiovascular system, central nervous system, bone, skeletal joints, skeletal muscle, gastrointestinal system, stomach, small intestine, large intestine, liver, kidney, and pancreas.
[0015] In certain embodiments, non-limiting examples of inflammation or inflammatory responses that BAG3 may be used or formulated to reduce, inhibit, decrease, or treat include chronic inflammatory diseases, chronic inflammatory demyelinating polyneuropathy, primary immune thrombocytopenia, geriatric eating disorders, intestinal inflammation, inflammatory bowel disease, ulcerative colitis, Crohn's disease, lupus, rheumatoid arthritis, chronic myocarditis, chronic myocarditis after Covid19 infection, psoriasis, psoriatic arthritis, and ankylosing spondylitis.
[0016] According to the present invention, BAG3 may be used or formulated to modulate PARP1 levels, expression, or activity. In certain embodiments, BAG3 may be used or formulated to lower, inhibit, or decrease PARP1 levels, expression, or activity. In certain embodiments, BAG3 may be used or formulated to lower, inhibit, reduce, or stabilize the amount of alpha-synuclein. In certain embodiments, BAG3 may be used or formulated to lower, inhibit, reduce, or decrease the worsening or severity of one or more symptoms of Parkinson's disease.
[0017] In certain embodiments, the BAG3-encoding nucleic acid comprises an expression vector that expresses a BAG3 protein or an active BAG3 peptide thereof.
[0018] In certain embodiments, the expression vector comprises a promoter, wherein the promoter comprises an inducible promoter, a constitutive promoter, a bicistronic promoter, a tissue-specific promoter, or a cardiac-specific promoter.
[0019] In certain embodiments, the expression vector comprises a viral vector, a cardiotropic vector, a plasmid, or a yeast vector.
[0020] In certain embodiments, the virus or cardiotropic vector comprises an adenovirus vector, an adeno-associated virus vector (AAV), a coxsackievirus vector, a cytomegalovirus vector, an Epstein-Barr virus vector, a parvovirus vector, or a hepatitis virus vector.
[0021] In certain embodiments, the AAV vector comprises a capsid protein having 90% or greater sequence identity to any of AAV1, AAV2, AAV3, AAV4, AAV5, AAV6, AAV7, AAV8, AAV9, AAV10, AAV11, or AAV12.
[0022] In certain embodiments, the expression vector is a pseudotyped viral vector.
[0023] In certain embodiments, the inflammation or inflammatory response is induced or increased by cytokines.
[0024] In certain embodiments, the cytokine comprises tumor necrosis factor (TNF).
[0025] In certain embodiments, the patient expresses lower than normal levels of BAG3 in a tissue or organ, or does not detectably express or produce functional BAG3.
[0026] In certain embodiments, the inflammation or inflammatory response occurs in the pulmonary system, lungs, cardiovascular system, central nervous system, bone, skeletal joints, skeletal muscle, gastrointestinal system, stomach, small intestine, large intestine, liver, kidney, or pancreas.
[0027] In certain embodiments, the expression vector further comprises a promoter, optionally comprising an inducible promoter, a constitutive promoter, a bicistronic promoter, or a tissue-specific promoter.
[0028] In certain embodiments, the promoter confers expression in the pulmonary system, lung, cardiovascular system, central nervous system, bone, skeletal joints, skeletal muscle, gastrointestinal system, stomach, small intestine, large intestine, liver, kidney, or pancreas.
[0029] In certain embodiments, the expression vector further comprises AAV inverted terminal repeats (ITRs).
[0030] In certain embodiments, the expression vector further comprises a polyadenylation sequence and / or a stop codon.
[0031] In certain embodiments, the patient or subject is a human.
[0032] In certain embodiments, the patient, subject, or human has a mutation in their endogenous BAG3 polynucleotide or polypeptide.
[0033] In certain embodiments, the patient, subject, or human has reduced expression or activity of an endogenous BAG3 polynucleotide or polypeptide.
[0034] In certain embodiments, the viral vector is about 0.1×10 12 Vector genomes (vg) / patient weight in kilograms (vg / kg) ~ approx. 1.0 × 10 14 The compound is administered or formulated in a dose of 1000 mg / kg.
[0035] In certain embodiments, the viral vector is about 1.0×10 12 vg / kg ~ approx. 0.5×10 14 The compound is administered or formulated in a dose of 1000 mg / kg.
[0036] In certain embodiments, the viral vector is about 3.0×10 12 vg / kg ~ approx. 1.0×10 13 The compound is administered or formulated in a dose of 1000 mg / kg.
[0037] In certain embodiments, the viral vector is about 3.0×10 12vg / kg ~ approx. 9.0×10 12 The compound is administered or formulated in a dose of 1000 mg / kg.
[0038] In certain embodiments, the viral vector is about 3.0×10 12 vg / kg ~ approx. 8.0×10 12 The compound is administered or formulated in a dose of 1000 mg / kg.
[0039] In certain embodiments, the viral vector is about 3.0×10 12 vg / kg ~ approx. 5.0×10 12 The compound is administered or formulated in a dose of 1000 mg / kg. [Brief description of the drawings]
[0040] [Figure 1A] Data showing that young mice with a deletion of one allele of Bag3 display a unique proteome with accentuated apoptotic pathways and altered cellular metabolism despite the presence of normal LV function and size. A) Scatter plot with bar graphs showing the results of transthoracic echocardiography of 8-10 week old BAG3+ / - and BAG3wt mice, including measurements of left ventricular (LV) ejection fraction (EF%), LV internal diameter at diastolic (LVIDd) and LV internal diameter at systolic (LVIDs), both in millimeters (mm). [Figure 1B] Data showing that young mice with a single allele deletion of Bag3 display a unique proteome with accentuated apoptotic pathways and altered cellular metabolism despite the presence of normal LV function and size. B) BAG3 levels were reduced by approximately 50% in all BAG3+ / - groups. [Figure 2A]Data showing that cardiomyocyte-specific Bag3 knockout (KO) disrupts the expression of mitochondrial proteins involved in cellular metabolism and apoptosis. (A) Volcano plot analysis of all proteins from wild-type and BAG3-KO mouse left ventricles identified by bottom-up mass spectrometry; significance cutoff was set at p=0.05; green indicates decreased expression compared to wild-type, red indicates increased expression; n=3 WT, 3 KO. [Figure 2B] Data showing that cardiomyocyte-specific Bag3 knockout (KO) disrupts the expression of mitochondrial proteins involved in cellular metabolism and apoptosis. B) Graphical summary of proteins with altered expression in BAG3 KO mice, grouped by the protein's primary cellular compartment. [Figure 2C] Data showing that cardiomyocyte-specific Bag3 knockout (KO) disrupts the expression of mitochondrial proteins involved in cell metabolism and apoptosis. C) Graphical overview of proteins with altered expression in BAG3 KO mice, grouped by the protein's biological function(s); biological function and cellular component information was obtained using the DAVID bioinformatics program (version 6.8). [Figure 3A] Figure 1. Higher TUNEL positive cells but lower mitochondrial membrane potential in Bag3+ / - mice subjected to hypoxia / reoxygenation. A) and B) TUNEL staining. Adult mouse cardiomyocytes isolated from WT and BAG3+ / - mice were subjected to hypoxia / reoxygenation (H / R) and normoxia (Norm) control conditions. Cells were stained with Nonyl Acridine Orange (NAO), TMR Red, and DAPI prior to imaging with a Zeiss LSM 900 confocal microscope. Statistical significance was determined using one-way ANOVA with Bonferroni correction for multiple part comparisons. **** indicates <0.0001 and "ns" indicates not significant. n=10 images per group. Scale bar=50 μm. [Figure 3B] Figure 1. Higher TUNEL positive cells but lower mitochondrial membrane potential in Bag3+ / - mice subjected to hypoxia / reoxygenation. A) and B) TUNEL staining. Adult mouse cardiomyocytes isolated from WT and BAG3+ / - mice were subjected to hypoxia / reoxygenation (H / R) and normoxia (Norm) control conditions. Cells were stained with Nonyl Acridine Orange (NAO), TMR Red, and DAPI prior to imaging with a Zeiss LSM 900 confocal microscope. Statistical significance was determined using one-way ANOVA with Bonferroni correction for multiple part comparisons. **** indicates <0.0001 and "ns" indicates not significant. n=10 images per group. Scale bar=50 μm. [Figure 3C] Figure 2. TUNEL-positive cells were higher but mitochondrial membrane potential was lower in Bag3+ / - mice subjected to hypoxia / reoxygenation. C) Bcl-2 levels were not different in BAG3+ / - LV myocardium when compared to WT controls. [Figure 3D] Figure 2. Higher TUNEL positive cells but lower mitochondrial membrane potential in Bag3+ / - mice subjected to hypoxia / reoxygenation. D) MitoSOX staining. Adult mouse cardiomyocytes isolated from WT and Bag3- / - mice were stained with MitoSOX and imaged with a Zeiss LSM 900 confocal microscope. MitoSOX fluorescence was quantified using Fiji Image J and data are plotted in GraphPad Prism 7 software. Statistical significance was determined using t-test. "ns" indicates not significant. n=75-182 cells per group. Scale bar=20 μm. [Figure 3E]Figure 1. Higher TUNEL positive cells but lower mitochondrial membrane potential in Bag3+ / - mice subjected to hypoxia / reoxygenation. E) TMRM staining. Adult mouse cardiomyocytes isolated from WT and Bag3- / - mice were stained with TMRM and imaged on a Zeiss LSM 900 confocal microscope. TMRM fluorescence was quantified using Fiji Image J and data are plotted in GraphPad Prism 7 software. Mitochondrial content was quantified as individual mitochondrial area using Mito-Morphology mjciacro in Image J. Statistical significance was determined using t-test. ** indicates <0.001 and "ns" indicates not significant. n=136-162 cells per group. Scale bar=20 μm. [Figure 4A] Western blot analysis of proteins involved in mitochondria-dependent or mitochondria-independent apoptotic signaling in both young and aged Bag3+ / - and Bag3WT mice. Data shown in individual bar graphs are derived from the accompanying western blots. "n" was equal to 5 in each study group, except for samples acquired from aged (18 weeks) mice in FIG. 3B, where the sample size was 3 per study group. Each study was repeated at least once using tissues acquired from the same mouse or mice of the same age. A) Total caspase 3 levels are significantly (p<0.01) higher in BAG3+ / - mice than in BAG3WT mice. [Figure 4B]Western blot analysis of proteins involved in mitochondrial-dependent or mitochondrial-independent apoptotic signaling in both young and aged Bag3+ / - and Bag3WT mice. Data shown in individual bar graphs are derived from the accompanying Western blots. "n" was equal to 5 in each study group, except for samples acquired from aged (18 weeks) mice in FIG. 3B, where the sample size was 3 per study group. Each study was repeated at least once using tissues acquired from the same mouse or mice of the same age. B) The ratio of cleaved caspase 3 to procaspase 3 in tissues from BAG3WT mice was higher in BAG3WT mice than in BAG3+ / - mice, and the same was true in aged 18-week-old mice, despite the fact that in aged mice LV EF was significantly reduced and LV dilation was evident (see FIG. 1A). [Figure 4C] Western blot analysis of proteins involved in mitochondrial-dependent or mitochondrial-independent apoptotic signaling in both young and aged Bag3+ / - and Bag3WT mice. Data shown in individual bar graphs are derived from the accompanying Western blots. "n" was equal to 5 in each study group, except for samples acquired from aged (18 weeks) mice in FIG. 3B, where the sample size was 3 per study group. Each study was repeated at least once using tissues acquired from the same mice or mice of the same age. C) Levels of TNFa are significantly elevated in BAG3+ / - mice, whereas levels of IL-6 are not altered, suggesting that the cytokine effect is highly specific. [Figure 4D]Western blot analysis of proteins involved in mitochondria-dependent or mitochondria-independent apoptotic signaling in both young and aged Bag3+ / - and Bag3WT mice. Data shown in individual bar graphs are derived from the accompanying western blots. "n" was equal to 5 in each study group, except for samples acquired from aged (18 weeks) mice in FIG. 3B, where the sample size was 3 per study group. Each study was repeated at least once using tissue acquired from the same mouse or mice of the same age. D) In contrast to caspase 3, there was a significant (p<0.01) increase in the levels of cleaved caspase 8 divided by total caspase 8, suggesting that caspase 8 is physiologically increased in mice without overt heart failure. [Figure 4E] Western blot analysis of proteins involved in mitochondria-dependent or mitochondria-independent apoptotic signaling in both young and aged Bag3+ / - and Bag3WT mice. Data shown in individual bar graphs are derived from the accompanying western blots. "n" was equal to 5 in each study group, except for samples acquired from aged (18 weeks) mice in FIG. 3B, where the sample size was 3 per study group. Each study was repeated at least once using tissue acquired from the same mouse or mice of the same age. E) A significant decrease (p<0.01) in the levels of TOM22, a member of the TOM (translocase of outer membrane) family of proteins that retain amino acid and small peptide sequences and membrane fragments across the mitochondrial membrane for subsequent incorporation into larger proteins produced in the mitochondrial matrix, was observed. [Figure 4F]Western blot analysis of proteins involved in mitochondrial-dependent or mitochondrial-independent apoptotic signaling in both young and aged Bag3+ / - and Bag3WT mice. Data shown in individual bar graphs are derived from the accompanying Western blots. "n" was equal to 5 in each study group, except for samples acquired from aged (18 weeks) mice in FIG. 3B, where the sample size was 3 per study group. Each study was repeated at least once using tissues acquired from the same mouse or mice of the same age. F) Immunoprecipitation studies were performed to identify BAG3 partners to better understand the biology of BAG3 haploinsufficiency. BAG3 bound to TOM22 and cIAP, but not to the homologous XIAP or SMAC. [Figure 4G] Western blot analysis of proteins involved in mitochondria-dependent or mitochondria-independent apoptotic signaling in both young and aged Bag3+ / - and Bag3WT mice. Data shown in individual bar graphs are derived from the accompanying western blots. "n" was equal to 5 in each study group, except for samples acquired from aged (18 weeks) mice in FIG. 3B, where the sample size was 3 per study group. Each study was repeated at least once using tissues acquired from the same mice or mice of the same age. [Figure 4H] Western blot analysis of proteins involved in mitochondria-dependent or mitochondria-independent apoptotic signaling in both young and aged Bag3+ / - and Bag3WT mice. Data shown in individual bar graphs are derived from the accompanying western blots. "n" was equal to 5 in each study group, except for samples acquired from aged (18 weeks) mice in FIG. 3B, where the sample size was 3 per study group. Each study was repeated at least once using tissues acquired from the same mice or mice of the same age. [Figure 5A]In mice with BAG3 haploinsufficiency, neither SMAC nor cIAP were differentially expressed; however, data showed that SMAC requires Bag3 to translocate from the OMM (outer mitochondrial membrane) to the cytoplasm. A) Neonatal mouse ventricular myocytes (NMVMs) were isolated and cultured under normoxia conditions, normoxia conditions with 1 hour hypoxia and 2 hours normoxia, normoxia but in the presence of siRNA against BAG3, and normoxia experimental conditions in which hypoxia was followed by reoxygenation. TOM22 (mitochondrial), MCU (mitochondrial), and GAPDH (cytoplasm) were used as controls to demonstrate that isolation of mitochondria (Mito) was achieved. BAG3 was expressed to a greater extent in the cytoplasm (Cyto) of H / R stressed myocytes, but was absent or nearly absent in cells in which one allele of BAG3 was deleted. A) SMAC was present in both the cytoplasm and mitochondria; however, when BAG3 was ablated using siRNA, SMAC was not evident in the cytoplasm and TOM22 was found exclusively in mitochondria. [Figure 5B] In mice with BAG3 haploinsufficiency, neither SMAC nor cIAP were differentially expressed; however, data showed that SMAC is required for Bag3 to translocate from the OMM (outer mitochondrial membrane) to the cytoplasm. B) and C) Neither the levels of endonuclease G nor cIAP1 were altered by any of the consequences of BAG3 biology and BAG3 interaction with cells. SMAC was not found in the cytoplasm of cells during periods of stress. [Figure 5C] In mice with BAG3 haploinsufficiency, neither SMAC nor cIAP were differentially expressed; however, data showed that SMAC is required for Bag3 to translocate from the OMM (outer mitochondrial membrane) to the cytoplasm. B) and C) Neither the levels of endonuclease G nor cIAP1 were altered by any of the consequences of BAG3 biology and BAG3 interaction with cells. SMAC was not found in the cytoplasm of cells during periods of stress. [Figure 5D]In mice with BAG3 haploinsufficiency, neither SMAC nor cIAP were differentially expressed; however, data showed that SMAC is required for Bag3 translocation from the OMM (outer mitochondrial membrane) to the cytoplasm. [Figure 6A] Data showing that levels of proteins known to have altered expression in both animal models of heart failure and in failing human hearts were not alternatively regulated early in the Bag3 deletion model of heart failure. A)-C) Western blots for analysis of total and phosphorylated forms of JNK, JUN, and ERK1 / 2. Each blot represents data for a single study with n=5. Data are then presented in box plots and p-values are included where appropriate. Data are presented as phosphorylated form of protein divided by total for each protein. As can be seen in the box plots accompanying each western, there were no statistically significant differences in the levels of these proteins in tissues obtained from mice with BAG3 haploinsufficiency when compared to wild type mice. [Figure 6B] Data showing that levels of proteins known to have altered expression in both animal models of heart failure and in failing human hearts were not alternatively regulated early in the Bag3 deletion model of heart failure. A)-C) Western blots for analysis of total and phosphorylated forms of JNK, JUN, and ERK1 / 2. Each blot represents data for a single study with n=5. Data are then presented in box plots and p-values are included where appropriate. Data are presented as phosphorylated form of protein divided by total for each protein. As can be seen in the box plots accompanying each western, there were no statistically significant differences in the levels of these proteins in tissues obtained from mice with BAG3 haploinsufficiency when compared to wild type mice. [Figure 6C]Data showing that levels of proteins known to have altered expression in both animal models of heart failure and in failing human hearts were not alternatively regulated early in the Bag3 deletion model of heart failure. A)-C) Western blots for analysis of total and phosphorylated forms of JNK, JUN, and ERK1 / 2. Each blot represents data for a single study with n=5. Data are then presented in box plots and p-values are included where appropriate. Data are presented as phosphorylated form of protein divided by total for each protein. As can be seen in the box plots accompanying each western, there were no statistically significant differences in the levels of these proteins in tissues obtained from mice with BAG3 haploinsufficiency when compared to wild type mice. [Figure 6D] Data showing that levels of proteins known to have altered expression in both animal models of heart failure and in the failing human heart were not alternatively regulated early in the Bag3 deletion model of heart failure. D) and E) In contrast, Western blot analysis revealed significantly higher levels of HuR and C PARP1 / GAPDH. [Figure 6E] Data showing that levels of proteins known to have altered expression in both animal models of heart failure and in the failing human heart were not alternatively regulated early in the Bag3 deletion model of heart failure. D) and E) In contrast, Western blot analysis revealed significantly higher levels of HuR and C PARP1 / GAPDH. [Figure 7A]Effect of Bag3 haploinsufficiency on mitochondrial membrane potential and Ca2+ uptake in isolated myocytes and in mitoplasts from Bag3+ / - and Bag3+ / + mice. LV myocytes were isolated from BAG3+ / - and WT mice and exposed to 1 h of hypoxia followed by 2 h of reoxygenation as described in the methods. Cells were permeabilized with digitonin and supplemented with succinate. A) The ratiometric indicator JC-1 was added as indicated by the downward arrow to monitor membrane potential (ΔΨm). The mitochondrial uncoupler CCCP (2 mM) was added at the time of the second arrow. [Figure 7B] Effect of Bag3 haploinsufficiency on mitochondrial membrane potential and Ca2+ uptake in isolated myocytes and in mitoplasts from Bag3+ / - and Bag3+ / + mice. LV myocytes were isolated from BAG3+ / - and WT mice and exposed to 1 h of hypoxia followed by 2 h of reoxygenation as described in Methods. Cells were permeabilized with digitonin and supplemented with succinate. B) Overview of ΔΨm after addition of Ca2+ but before addition of CCCP (n=4 in each group). [Figure 7C] Effect of Bag3 haploinsufficiency on mitochondrial membrane potential and Ca2+ uptake in isolated myocytes and in mitoplasts from Bag3+ / - and Bag3+ / + mice. LV myocytes were isolated from BAG3+ / - and WT mice and exposed to 1 h of hypoxia followed by 2 h of reoxygenation as described in the methods. Cells were permeabilized with digitonin and supplemented with succinate. C) Extramitochondrial Ca2+ was measured in separate groups of myocytes after addition of the ratiometric dye Fura FF at 0 s and subsequent addition of a Ca2+ pulse (10 mM) indicated by (arrow). Cytoplasmic Ca2+ clearance rate was then measured as fluorescence arbitrary units after the first Ca2+ pulse. [Figure 7D]Effect of Bag3 haploinsufficiency on mitochondrial membrane potential and Ca2+ uptake in isolated myocytes and in mitoplasts from Bag3+ / - and Bag3+ / + mice. LV myocytes were isolated from BAG3+ / - and WT mice and exposed to 1 h of hypoxia followed by 2 h of reoxygenation as described in Methods. Cells were permeabilized with digitonin and supplemented with succinate. D) Summary of cytoplasmic Ca2+ clearance rates. n=4 for each measurement. *p<0.05, **p<0.01, ***p<0.001. ΔΨm is generated by Ca2+ flux through the Ca2+ uniporter, which is composed of five proteins: MICU1, MICU2, MCUb, MCU, and EMRE. [Figure 7E] Effect of Bag3 haploinsufficiency on mitochondrial membrane potential and Ca2+ uptake in isolated myocytes and in mitoplasts from Bag3+ / - and Bag3+ / + mice. LV myocytes were isolated from BAG3+ / - and WT mice and exposed to 1 h of hypoxia followed by 2 h of reoxygenation as described in methods. Cells were permeabilized with digitonin and supplemented with succinate. E) and F) BAG3 haploinsufficiency resulted in a significant (p<0.05) decrease in the relative levels of MICU1 and a trend towards a decrease in MICU2, leading to an increased (detrimental) membrane functional potential. [Figure 7F] Effect of Bag3 haploinsufficiency on mitochondrial membrane potential and Ca2+ uptake in isolated myocytes and in mitoplasts from Bag3+ / - and Bag3+ / + mice. LV myocytes were isolated from BAG3+ / - and WT mice and exposed to 1 h of hypoxia followed by 2 h of reoxygenation as described in methods. Cells were permeabilized with digitonin and supplemented with succinate. E) and F) BAG3 haploinsufficiency resulted in a significant (p<0.05) decrease in the relative levels of MICU1 and a trend towards a decrease in MICU2, leading to an increased (detrimental) membrane functional potential. [Figure 7G]FIG. 1 shows the effect of Bag3 haploinsufficiency on mitochondrial membrane potential and Ca2+ uptake in isolated myocytes and in mitoplasts from Bag3+ / - and Bag3+ / + mice. LV myocytes were isolated from BAG3+ / - and WT mice and exposed to 1 h of hypoxia followed by 2 h of reoxygenation as described in Methods. Cells were permeabilized with digitonin and supplemented with succinate. In G) and H), currents (IMCUs) from cardiac mitoplasts were recorded before and after application of 5 mM Ca2+ to the bath. G) Currents were measured during a voltage ramp as indicated. Traces are representative single IMCU recordings from WT-GFP, BAG3+ / --GFP, and BAG3+ / --BAG3 mitoplasts. [Figure 7H] Effect of Bag3 haploinsufficiency on mitochondrial membrane potential and Ca2+ uptake in isolated myocytes and in mitoplasts from Bag3+ / - and Bag3+ / + mice. LV myocytes were isolated from BAG3+ / - and WT mice and exposed to 1 h of hypoxia followed by 2 h of reoxygenation as described in Methods. Cells were permeabilized with digitonin and supplemented with succinate. In G) and H), currents (IMCU) from cardiac mitoplasts were recorded before and after application of 5 mM Ca2+ to the bath. H) Mean ± SEM of IMCU (pA / pF) from WT-GFP (n=5), BAG3+ / --GFP (n=4), and BAG3+ / --BAG3 (n=5) mitoplasts. *p<0.05. [Figure 8A] FIG. 1 shows the human Bag3 proteome: Bag3 and Bag3-related protein levels in failing and non-failing human hearts. Tissue was obtained from the left ventricular free wall of human hearts with non-ischemic dilated cardiomyopathy (IDC) at the time of heart transplantation and compared with tissue obtained from non-failing control hearts (NF) from graft donors whose hearts could not be used for transplantation. A-F represent western blots for each of the indicated proteins with data summarized in a cumulative figure to the right of each blot. Each study was repeated at least once with comparable results. *p<0.05; **p<0.01. [Figure 8B] FIG. 1 shows the human Bag3 proteome: Bag3 and Bag3-related protein levels in failing and non-failing human hearts. Tissue was obtained from the left ventricular free wall of human hearts with non-ischemic dilated cardiomyopathy (IDC) at the time of heart transplantation and compared with tissue obtained from non-failing control hearts (NF) from graft donors whose hearts could not be used for transplantation. A-F represent western blots for each of the indicated proteins with data summarized in a cumulative figure to the right of each blot. Each study was repeated at least once with comparable results. *p<0.05; **p<0.01. [Figure 8C] FIG. 1 shows the human Bag3 proteome: Bag3 and Bag3-related protein levels in failing and non-failing human hearts. Tissue was obtained from the left ventricular free wall of human hearts with non-ischemic dilated cardiomyopathy (IDC) at the time of heart transplantation and compared with tissue obtained from non-failing control hearts (NF) from graft donors whose hearts could not be used for transplantation. A-F represent western blots for each of the indicated proteins with data summarized in a cumulative figure to the right of each blot. Each study was repeated at least once with comparable results. *p<0.05; **p<0.01. [Figure 8D] FIG. 1 shows the human Bag3 proteome: Bag3 and Bag3-related protein levels in failing and non-failing human hearts. Tissue was obtained from the left ventricular free wall of human hearts with non-ischemic dilated cardiomyopathy (IDC) at the time of heart transplantation and compared with tissue obtained from non-failing control hearts (NF) from graft donors whose hearts could not be used for transplantation. A-F represent western blots for each of the indicated proteins with data summarized in a cumulative figure to the right of each blot. Each study was repeated at least once with comparable results. *p<0.05; **p<0.01. [Figure 8E]FIG. 1 shows the human Bag3 proteome: Bag3 and Bag3-related protein levels in failing and non-failing human hearts. Tissue was obtained from the left ventricular free wall of human hearts with non-ischemic dilated cardiomyopathy (IDC) at the time of heart transplantation and compared with tissue obtained from non-failing control hearts (NF) from graft donors whose hearts could not be used for transplantation. A-F represent western blots for each of the indicated proteins with data summarized in a cumulative figure to the right of each blot. Each study was repeated at least once with comparable results. *p<0.05; **p<0.01. [Figure 8F] FIG. 1 shows the human Bag3 proteome: Bag3 and Bag3-related protein levels in failing and non-failing human hearts. Tissue was obtained from the left ventricular free wall of human hearts with non-ischemic dilated cardiomyopathy (IDC) at the time of heart transplantation and compared with tissue obtained from non-failing control hearts (NF) from graft donors whose hearts could not be used for transplantation. A-F represent western blots for each of the indicated proteins with data summarized in a cumulative figure to the right of each blot. Each study was repeated at least once with comparable results. *p<0.05; **p<0.01. [Figure 8G] FIG. 1 shows the human Bag3 proteome: Bag3 and Bag3-related protein levels in failing and non-failing human hearts. Tissue was obtained from the left ventricular free wall of human hearts with non-ischemic dilated cardiomyopathy (IDC) at the time of heart transplantation and compared with tissue obtained from non-failing control hearts (NF) from graft donors whose hearts could not be used for transplantation. A-F represent western blots for each of the indicated proteins with data summarized in a cumulative figure to the right of each blot. Each study was repeated at least once with comparable results. *p<0.05; **p<0.01. [Figure 8H]FIG. 1 shows the human Bag3 proteome: Bag3 and Bag3-related protein levels in failing and non-failing human hearts. Tissue was obtained from the left ventricular free wall of human hearts with non-ischemic dilated cardiomyopathy (IDC) at the time of heart transplantation and compared with tissue obtained from non-failing control hearts (NF) from graft donors whose hearts could not be used for transplantation. A-F represent western blots for each of the indicated proteins with data summarized in a cumulative figure to the right of each blot. Each study was repeated at least once with comparable results. *p<0.05; **p<0.01. [Figure 9]1 is a diagram of mitochondrial and extramitochondrial pathways involved in maintaining mitochondrial homeostasis by regulating the activity of the extrinsic and intrinsic pathways of apoptosis, mitochondrial function, and the role of BAG3 in those pathways. Individual proteins include Bcl2, Bid, tBid, BAX, BAK - members of the Bcl-2 family of proteins that function in both inhibiting and stimulating apoptosis; cIAP-1 - cellular inhibitor of apoptosis-1 (cIAP-2 is formed by the same gene); members of OMM - outer mitochondrial membrane; IMM - inner mitochondrial membrane; MCU - mitochondrial uniporter; SMAC - second mitochondrial-derived activator of caspases, expressed by the DIABLO gene and promoting apoptosis by activating caspases by blocking the inhibition of caspase activation by cIAPs; TNFR1 - tumor necrosis factor-alpha receptor; VDAC - voltage-dependent anion channel, a gatekeeper for the passage of metabolites, nucleotides, and ions that plays a role in regulating apoptosis by interacting with members of the Bcl-2 family of proteins and hexokinase. Without wishing to be bound by any theory, it is hypothesized that when a cIAP attaches to a caspase as well as BAG3, BAG3 stabilizes the cIAP-caspase dimer, which in turn prevents SMAC from activating (cleaving) the caspase. It is hypothesized that when BAG3 binds to a cIAP that is coupled to a TNFR receptor, BAG3 stabilizes the receptor complex and does not allow TNFalpha to bind to the receptor, or that BAG3 downregulates the receptor in such a way that there is no normal activation of the receptor, with subsequent activation of caspase 8. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0041] The following description of certain embodiments is merely exemplary in nature and is in no way intended to limit the invention, its application, or uses. The embodiments of the invention may be practiced without the theoretical aspects presented. Moreover, any theoretical aspects are presented with the understanding that the applicant does not seek to be bound by the presented theory.
[0042] In certain embodiments, a method or formulation for treating a patient suffering from or at risk of developing inflammation comprises administering to the patient a therapeutically effective amount of an agent that modulates the expression or amount of a BCL2-associated athanogene 3 (BAG3)-encoding nucleic acid, BAG3 protein, or BAG3 peptide, thereby treating the inflammation.
[0043] Inflammation includes, but is not limited to, abnormal or unwanted inflammatory responses, autoimmune responses, disorders, and diseases. Such responses, disorders, and diseases may be antibody or cell mediated, or a combination of antibody and cell mediated. Such responses include T cell or B cell responses.
[0044] An inflammatory response refers to any immune response, activity, or function that is greater than desired or greater than a physiologically normal response, activity, or function, including acute or chronic responses, activities, or functions. Such inflammatory responses are generally characterized as undesirable or abnormally increased or inappropriate responses, activities, or functions of the immune system. However, an undesirable inflammatory response, function, or activity may be a normal response, function, or activity. Thus, normal inflammation or inflammatory responses are included within the meaning of these terms, even if they are not considered abnormal, inasmuch as normal inflammation or inflammatory responses are considered undesirable. An abnormal (abnormal) inflammatory response, function, or activity deviates from normal.
[0045] Inflammation and inflammatory responses are characterized by many different adverse physiological symptoms or complications that may be humoral, cell-mediated, or a combination thereof. Inflammation, inflammatory responses, disorders, and diseases that may be treated according to embodiments herein include, but are not limited to, those that directly or indirectly lead to or cause cell or tissue / organ damage in a patient. At the systemic, regional, or local level, inflammation or inflammatory responses may be characterized by swelling, pain, headache, fever, vomiting, skeletal joint stiffness, fluid accumulation, lack of mobility, rash, redness, or other discoloration. At the cellular level, inflammation may be characterized by one or more of T cell activation and / or differentiation, cellular infiltration of the region, production of antibodies, cytokines, lymphokines, chemokines, interferons and interleukins, production of cell growth and maturation factors (e.g., proliferation and differentiation factors), cell accumulation or migration, and cell, tissue, or organ damage. Thus, the methods, uses and formulations include the treatment and amelioration of inflammation or any such physiological symptoms or cellular or biological responses characteristic of an inflammatory response.
[0046] In certain embodiments, the methods, uses, or formulations according to the embodiments herein reduce, reduce, inhibit, suppress, limit, or control inflammation or an inflammatory response in a patient. In additional certain embodiments, the methods, uses, or formulations reduce, reduce, inhibit, suppress, limit, or control adverse symptoms of inflammation or an inflammatory response.
[0047] Bcl-2 associated athanogene-3 (BAG3), also known as BCL2 associated athanogene 3; MFM6; Bcl-2 binding protein Bis; CAIR-1; docking protein CAIR-1; BAG family molecular chaperone regulatory factor 3; BAG-3; BCL2-associated athanogene 3; or BIS, is a cytoprotective polypeptide that competes with Hip-1 for binding to HSP70. The NCBI reference amino acid sequence for BAG3 can be found in Genbank under accession number NP_004272.2; public GI:14043024. The amino acid sequence of Genbank accession number NP_004272.2; public GI:14043024 is referred to herein as SEQ ID NO:1. The NCBI reference nucleic acid sequence for BAG3 can be found in Genbank under accession number NM_004281.3 GI:62530382. The nucleic acid sequence of Genbank Accession No. NM_004281.3 GI:62530382 is referred to as SEQ ID NO:2. Other BAG3 amino acid sequences include, for example, but are not limited to, 095817.3 GI:12643665 (SEQ ID NO:3); EAW49383.1 GI:119569768 (SEQ ID NO:4); EAW49382.1 GI:119569767 (SEQ ID NO:5); and CAE55998.1 GI:38502170 (SEQ ID NO:6). The BAG3 polypeptides of the invention may be variants of the polypeptides described herein, provided that the variants retain functionality.
[0048] As used herein, the term "agent" is intended to encompass any molecule, chemical entity, composition, drug, therapeutic agent, or biological agent that can prevent, ameliorate, or treat a disease or other medical condition. The term includes small molecule compounds, antisense reagents, siRNA reagents, antibodies, enzymes, peptides, organic or inorganic molecules, natural or synthetic compounds, and the like. Agents can be assayed according to the methods of the present invention during clinical trials, pre-trial testing, or at any stage after FDA approval.
[0049] The terms "polypeptide", "protein", and "peptide" are used interchangeably herein. A "polypeptide", "protein", and "peptide" encoded by a "polynucleotide sequence" includes not only a full-length native sequence, such as a naturally occurring protein, but also a functional subsequence, modified form, or sequence variant, so long as the subsequence, modified form, or variant retains some functionality of the native full-length protein. Such polypeptides, proteins, and peptides encoded by polynucleotide sequences can be, but are not required to be, identical to the endogenous protein in the patient being treated.
[0050] The terms "nucleic acid" and "polynucleotide" are used interchangeably herein to refer to all forms of nucleic acid, oligonucleotides, including deoxyribonucleic acid (DNA) and ribonucleic acid (RNA). Nucleic acids include genomic DNA, cDNA, and antisense DNA, as well as spliced or unspliced mRNA, rRNA, tRNA, and inhibitory DNA or RNA (RNAi, e.g., small or short hairpin (sh)RNA, microRNA (miRNA), small or short interfering (si)RNA, trans-splicing RNA, or antisense RNA).
[0051] Nucleic acids include naturally occurring, synthetic, and intentionally modified or altered polynucleotides. Nucleic acids can be single, double, or triplex, linear or circular, and of any length. When discussing nucleic acids, the sequence or structure of a particular polynucleotide can be described herein according to the convention of providing the sequence in the 5' to 3' direction.
[0052] A "heterologous" polynucleotide or nucleic acid sequence refers to a polynucleotide inserted into a plasmid or vector for the purpose of vector-mediated transfer / delivery of the polynucleotide to a cell. A heterologous nucleic acid sequence is distinct from, i.e., non-native to, the viral nucleic acid. Once transferred / delivered to a cell, a heterologous nucleic acid sequence contained in a vector may be expressed (e.g., transcribed and, where appropriate, translated). Alternatively, a heterologous polynucleotide transferred / delivered in a cell, contained in a vector, need not be expressed. Although the term "heterologous" is not always used herein with respect to nucleic acid sequences and polynucleotides, reference to a nucleic acid sequence or polynucleotide in the absence of the "heterologous" modifier is intended to include heterologous nucleic acid sequences and polynucleotides, despite the omission.
[0053] The term "expression vector" as used herein refers to a vector that contains a nucleic acid sequence (e.g., BAG3) that codes for at least a portion of a gene product that can be transcribed. In some cases, the RNA molecule is then translated into a protein, polypeptide, or peptide. In other cases, these sequences are not translated, for example, in the production of antisense molecules, siRNA, ribozymes, etc. Expression vectors can contain a variety of control sequences, which refer to nucleic acid sequences necessary for the transcription and possibly translation of an operably linked coding sequence in a particular host organism. In addition to control sequences that govern transcription and translation, vectors and expression vectors can also contain nucleic acid sequences that perform other functions.
[0054] As used herein, a "promoter" may refer to a DNA sequence that is typically located adjacent to a nucleic acid sequence (e.g., BAG3). A promoter typically increases the amount of a nucleic acid sequence (e.g., BAG3) that is expressed compared to the amount that is expressed in the absence of the promoter.
[0055] As used herein, "enhancer" may refer to a sequence located adjacent to a nucleic acid sequence (e.g., BAG3). Enhancer elements are typically located upstream of a promoter element, but may function and be located downstream or within a nucleic acid sequence (e.g., BAG3). Thus, enhancer elements may be located 100, 200, or 300 or more base pairs upstream or downstream of a nucleic acid sequence (e.g., BAG3). Enhancer elements typically increase expression of a nucleic acid sequence (e.g., BAG3) over and above the increase in expression provided by a promoter element.
[0056] Examples of expression regulatory or expression control elements that can be used in the methods according to the invention include, for example and without limitation, the cytomegalovirus (CMV) immediate early promoter / enhancer, the Rous sarcoma virus (RSV) promoter / enhancer, the SV40 promoter, the dihydrofolate reductase (DHFR) promoter, the chicken beta-actin (CBA) promoter, the phosphoglycerol kinase (PGK) promoter, and the elongation factor-1 alpha (EF1-alpha) promoter.
[0057] In certain embodiments, viral vectors that can be used in the methods and formulations of the invention include, for example, but are not limited to, AAV particles. In certain embodiments, viral vectors that can be used in the invention include, for example, but are not limited to, retrovirus, adenovirus, helper-dependent adenovirus, hybrid adenovirus, herpes simplex virus, lentivirus, poxvirus, Epstein-Barr virus, vaccinia virus, and human cytomegalovirus vectors, including recombinant forms thereof.
[0058] The term "recombinant" as a modifier of viral vectors, such as recombinant AAV (rAAV) vectors, and sequences, such as recombinant polynucleotides and polypeptides, means that the compositions have been manipulated (i.e., engineered) in a manner not typically found in nature. Thus, a "recombinant viral vector" refers to a viral vector that includes one or more heterologous gene products or sequences.
[0059] Since many viral vectors exhibit size limitations associated with packaging, heterologous gene products or sequences are typically introduced by replacing one or more portions of the viral genome. Such viruses can be replication-deficient, requiring the missing function(s) to be provided in trans (i.e., "helper" functions) during viral replication and encapsidation (e.g., by using helper viruses or packaging cell lines carrying gene products necessary for replication and / or encapsidation, such as AAV rep, AAV cap, human adenovirus E4, and adenovirus VA RNA). Modified viral vectors in which the polynucleotide of interest to be delivered is carried on the outside of the viral particle have also been described (see, e.g., Curiel, DT et al., PNAS 88:8850-8854, 1991).
[0060] A particular example of a recombinant AAV vector would be one in which a nucleic acid (heterologous polynucleotide) not normally present in the wild-type AAV genome has been inserted into the viral genome. An example would be one in which a nucleic acid (e.g., gene) or polynucleotide sequence encoding a therapeutic protein has been cloned into the vector with or without the 5', 3', and / or intronic regions with which the gene is normally associated in the AAV genome. Although the term "recombinant" is not always used herein with respect to sequences such as AAV vectors and polynucleotides, recombinant forms including AAV vectors, polynucleotides, etc. are expressly included, regardless of such omission.
[0061] A "rAAV vector" is derived from the wild-type genome of AAV, for example, by using molecular methods to remove all or part of the wild-type AAV genome and replace it with a non-native (heterologous) nucleic acid, such as a nucleic acid or polynucleotide sequence encoding a therapeutic protein. Typically, in a rAAV vector, one or both inverted terminal repeat (ITR) sequences of the AAV genome are retained. rAAV is distinguished from the AAV genome because all or part of the AAV genome is replaced with a non-native sequence to the AAV genome nucleic acid, such as a heterologous nucleic acid or polynucleotide sequence encoding a therapeutic protein. Thus, the incorporation of the non-native (heterologous) sequence defines AAV as a "recombinant" AAV vector, which may be referred to as a "rAAV vector."
[0062] Recombinant AAV vector sequences (or genomes) can be packaged for subsequent infection (transduction) of cells ex vivo, in vitro, or in vivo, and are referred to herein as "particles." When recombinant vector sequences are encapsidated or packaged within an AAV particle, the particle can also be referred to as a "rAAV," "rAAV particle," and / or "rAAV virion." Such rAAV, rAAV particles, and rAAV virions include proteins that encapsidate or package the vector genome. A particular example includes capsid proteins, in the case of AAV.
[0063] "Vector genome", sometimes abbreviated as "vg", refers to the portion of the recombinant plasmid sequence that is ultimately packaged or encapsidated to form the rAAV particle. When a recombinant plasmid is used to construct or produce a recombinant AAV vector, the AAV vector genome does not include the portion of the "plasmid" that does not correspond to the vector genome sequence of the recombinant plasmid. This non-vector genome portion of the recombinant plasmid is referred to as the "plasmid backbone", which is important for plasmid cloning and amplification, processes that are necessary for propagation and recombinant AAV vector production, but is not itself packaged or encapsidated within the rAAV particle. Thus, "vector genome" refers to the nucleic acid that is packaged or encapsidated by the rAAV.
[0064] As used herein, the term "serotype" in reference to an AAV vector refers to a capsid that is serologically distinguishable from other AAV serotypes. Serological uniqueness is determined based on the lack of cross-reactivity between antibodies against one AAV compared to another AAV. Differences in cross-reactivity are usually due to differences in capsid protein sequences / antigenic determinants (e.g., due to VP1, VP2, and / or VP3 sequence differences of AAV serotypes). Antibodies against one AAV may cross-react with one or more other AAV serotypes due to homology of capsid protein sequences.
[0065] Under traditional definition, serotype means that the virus of interest has been tested for neutralizing activity against all existing and characterized serotype-specific sera, and no antibodies have been found that neutralize the virus of interest. As more naturally occurring virus isolates are discovered and / or capsid mutants are created, there may or may not be serological differences from any of the existing serotypes. Thus, if a new virus (e.g., AAV) does not have serological differences, this new virus (e.g., AAV) will be a subgroup or variant of the corresponding serotype. In many cases, serological testing for neutralizing activity has not yet been performed on mutant viruses with capsid sequence modifications to determine whether the mutant virus is of another serotype according to the traditional definition of serotype. Therefore, for convenience and to avoid repetition, the term "serotype" refers broadly to both serologically distinguishable viruses (e.g., AAV), as well as serologically indistinguishable viruses (e.g., AAV) that may be within a subgroup or variant of a given serotype.
[0066] rAAV vectors include any virus lineage or serotype. For example, but not limited to, rAAV vector genome or particle (capsid such as VP1, VP2, and / or VP3) can be based on any AAV serotype, such as AAV-1, -2, -3, -4, -5, -6, -7, -8, -9, -10, -11, -12, AAV3B, or AAV-2i8. Such vectors can be based on the same lineage or serotype (or subgroup or variant), or can be different from each other. For example, but not limited to, rAAV plasmid or vector genome or particle (capsid) based on one serotype genome can be identical to one or more of the capsid proteins that package the vector. In addition, a rAAV plasmid or vector genome can be based on a distinct AAV serotype genome with one or more of the capsid proteins packaging the vector genome, where at least one of the three capsid proteins can be a different AAV serotype, e.g., AAV1, AAV2, AAV3, AAV3B, AAV-2i8 (AAV2 / AAV8 chimera), AAV4, AAV5, AAV6, AAV7, AAV8, AAV9, AAV10, AAV11, AAV12, or variants thereof. More specifically, a rAAV2 vector genome can include AAV2 ITRs, but a capsid from a different serotype, e.g., AAV1, AAV3, AAV3B, AAV4, AAV5, AAV6, AAV7, AAV8, AAV9, AAV10, AAV11, AAV12, AAV-2i8, or variants thereof. Thus, rAAV vectors contain gene / protein sequences identical to those characteristic of specific serotypes, as well as "mixed" serotypes, which may also be referred to as "pseudotypes."
[0067] In certain embodiments, the rAAV vector comprises or consists of a capsid sequence that is at least 70% or more (e.g., 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, 99.5%, etc.) identical to one or more AAV1, AAV2, AAV3, AAV3B, AAV-2i8, AAV4, AAV5, AAV6, AAV7, AAV8, AAV9, AAV10, AAV11, or AAV12 capsid proteins (VP1, VP2, and / or VP3 sequences). In certain embodiments, the rAAV vector comprises or consists of a sequence that is at least 70% or more (e.g., 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, 99.5%, etc.) identical to one or more AAV1, AAV2, AAV3, AAV3B, AAV4, AAV5, AAV6, AAV7, AAV8, AAV9, AAV10, AAV11, or AAV12 ITR(s).
[0068] In certain embodiments, the rAAV vector comprises, for example, an AAV1, AAV2, AAV3, AAV3B, AAV-2i8, AAV4, AAV5, AAV6, AAV7, AAV8, AAV9, AAV10, AAV11, or AAV12 variant (e.g., amino acid insertions, additions, substitutions, and deletions, etc., ITR and capsid variants) thereof as set forth in WO 2013 / 158879 (International Application PCT / US2013 / 037170), WO 2015 / 013313 (International Application PCT / US2014 / 047670), and U.S. Patent Application Publication No. 2013 / 0059732 (U.S. Application Serial No. 13 / 594,773).
[0069] rAAV, such as AAV1, AAV2, AAV3, AAV3B, AAV-2i8, AAV4, AAV5, AAV6, AAV7, AAV8, AAV9, AAV10, AAV11, AAV12, and variant, hybrid, and chimeric sequences, can be constructed using recombinant techniques known to those skilled in the art to contain one or more heterologous polynucleotide sequences (transgenes) flanked by one or more functional AAV ITR sequences. Such AAV vectors typically retain at least one functional flanking ITR sequence(s) required for recombinant vector rescue, replication, and packaging into rAAV vector particles. Thus, the rAAV vector genome will contain sequences required in cis for replication and packaging (e.g., functional ITR sequences).
[0070] In certain embodiments, the lentivirus used in the present invention may be human immunodeficiency-1 (HIV-1), human immunodeficiency-2 (HIV-2), simian immunodeficiency virus (SIV), feline immunodeficiency virus (FIV), bovine immunodeficiency virus (BIV), Jembrana disease virus (JDV), equine infectious anemia virus (EIAV), or caprine arthritis encephalitis virus (CAEV). Lentiviral vectors can provide efficient delivery, integration, and long-term expression of heterologous polynucleotide sequences into non-dividing cells both in vitro and in vivo. A variety of lentiviral vectors are known in the art, see Naldini et al. (Proc. Natl. Acad. Sci. USA, 93:11382-11388 (1996); Science, 272:263-267 (1996)), Zufferey et al. (Nat. Biotechnol., 15:871-875, 1997), Dull et al. (J Virol. 1998 Nov;72(11):8463-71, 1998), U.S. Pat. Nos. 6,013,516 and 5,994,136, any of which may be suitable viral vectors for use in the present invention.
[0071] The recombinant viral vector dose can be formulated, administered, or delivered in any suitable dose. Generally, the dose is at least 1×10 per kilogram of patient weight to achieve efficacy. 8 Or more, for example, 1×10 9 , 1×10 10 , 1×10 11 , 1×10 12 , 1×10 13 , or 1 × 10 14 or more vector genomes (vg / kg). 10 ~1×10 11 vg / kg, and 1 × 10 in dogs 12 ~1×10 13 AAV doses in the range of 1×10 vg / kg were effective. More particularly, doses of about 1×10 11 vg / kg ~ approx. 5×10 14 vg / kg or approximately 5×10 11 vg / kg ~ approx. 1×10 14 vg / kg or approximately 5×10 11 vg / kg ~ approx. 5×10 13 vg / kg or approximately 5×10 11 vg / kg ~ approx. 1×10 13 vg / kg or approximately 5×10 11 vg / kg ~ approx. 5×10 12 vg / kg or approximately 5×10 11 vg / kg ~ approx. 1×10 12 The dose is approximately 2×10 11 ~about 2×10 14 vg / kg, particularly about 2×10 12 vg / kg, approximately 6×10 12 vg / kg, or approximately 2 × 10 13 vg / kg, for example, about 5 × 10 14 vg / kg or approximately 5 × 10 14 It may be less than vg / kg.
[0072] An "effective amount", "sufficient amount", or "therapeutically effective amount" refers to an amount that, in single or multiple doses, alone or in combination with one or more other compositions, treatments, protocols, or therapeutic regimen agents, provides a detectable response of any duration of time (long or short term), any measurable or detectable degree, or any duration of time (e.g., minutes, hours, days, months, years, or cured) expected or desired outcome in a patient or benefit to the patient. Although reducing, lowering, inhibiting, suppressing, limiting, or controlling the progression or worsening of a disease is a satisfactory outcome, an "effective amount" or "sufficient amount" dose for treatment (e.g., improving or providing a therapeutic benefit or improvement) is typically effective to provide a measurable degree of response to one, more, or all adverse symptoms, causal effects, or complications of a disease, such as one or more adverse symptoms, disorders, diseases, pathologies, or complications caused by or associated with a disease.
[0073] An effective or sufficient amount may, but need not, be provided in a single formulation or administration, may require multiple administrations, and may, but need not, be administered alone or in combination with another composition (e.g., agent), treatment, protocol, or treatment regimen. For example, the amount may be proportionally increased as indicated by the patient's needs, the type, condition, and severity of the disease being treated, or the side effects of the treatment (if any). In addition, an effective or sufficient amount need not be effective or sufficient when given in a single or multiple doses without a second composition (e.g., another drug or agent), treatment, protocol, or treatment regimen, since additional doses, amounts, or durations far beyond such doses, or additional compositions (e.g., drugs or agents), treatments, protocols, or treatment regimens may be included as deemed effective or sufficient in a given patient. An amount deemed effective also includes an amount that results in a reduced use of another treatment, treatment regimen, or protocol.
[0074] An effective or sufficient amount need not be effective in each and every patient treated, nor in the majority of treated patients in a given group or population. An effective or sufficient amount refers to effectiveness or sufficiency in a particular patient, not a group or general population. As is typical of such methods, some patients will exhibit greater response, or little or no response, to a given treatment or use.
[0075] Therefore, the methods, uses, and formulations of the present invention include providing a patient with a detectable or measurable beneficial effect, or any objective or subjective transient or temporary or long-term improvement (e.g., healing) in inflammation or inflammatory response. Thus, a satisfactory clinical endpoint is achieved if there is a gradual improvement in the patient's condition, a partial reduction in the severity, frequency, duration, or progression of one or more associated adverse symptoms or complications of inflammation or inflammatory response, or the inhibition, reduction, elimination, prevention, or reversal of one or more physiological, biochemical, or cellular signs or characteristics of inflammation or inflammatory response. Thus, a therapeutic benefit or improvement (with "improve" used interchangeably) does not necessarily have to be a complete elimination of any or all adverse symptoms or complications associated with inflammation or inflammatory response, but any measurable or detectable, objectively or subjectively meaningful improvement of inflammation or inflammatory response. For example, inhibiting the worsening or progression of inflammation or an inflammatory response or associated symptoms (e.g., slowing the progression or stabilizing one or more symptoms, complications, or physiological or psychological effects or responses), even if only for a few days, weeks, or months, is considered to be a beneficial effect, even if complete elimination of the inflammation or inflammatory response or associated adverse symptoms is not achieved.
[0076] "Treatment" is an intervention performed with the intent to prevent the onset, alter the pathology or symptoms of a disorder, or slow the progression or worsening of a disorder. Thus, "treatment" refers to both therapeutic treatment and preventative or preventative measures. "Treatment" may also be designated as palliative care.
[0077] "Prevention" and grammatical variations thereof refer to a method according to the present invention in which contacting, administration, or in vivo delivery to a subject precedes the onset or occurrence of a condition, disorder, or disease (or associated symptoms, or physiological or psychological response), whereby the method may eliminate, prevent, inhibit, reduce, or decrease the likelihood, susceptibility, occurrence, or frequency of having the condition, disorder, or disease, or associated symptoms. Target patients for prevention may be those at increased risk (likelihood or susceptibility) of contracting inflammation or an inflammatory response or associated symptoms, or of the recurrence of a previously diagnosed inflammation or an inflammatory response or associated symptoms, as specified herein.
[0078] Those in need of treatment include those who already have the disorder, as well as those in whom the disorder is to be prevented. Thus, "treating" or "treatment" of a disorder or condition includes (1) preventing or delaying the appearance of clinical symptoms of a condition, disorder, or condition occurring in a human or other mammal that may be afflicted with or prone to the disorder or condition, but has not yet experienced or exhibited clinical or subclinical symptoms of the disorder or condition; (2) inhibiting the disorder or condition, i.e., halting, reducing, or delaying the onset of the disorder or condition, or its recurrence (in the case of maintenance treatment), or at least one clinical or subclinical symptom thereof; or (3) relieving the disease, i.e., causing regression of the disorder or condition, or at least one clinical or subclinical symptom thereof. The benefit to the patient to be treated is statistically significant or at least perceptible to the patient or to the physician.
[0079] The term "ameliorate" refers to a detectable or measurable improvement in a patient's disease or symptoms thereof, or an underlying cellular response. Detectable or measurable improvement includes a subjective or objective decrease, reduction, inhibition, suppression, limitation, or control of the incidence, frequency, severity, progression, or duration of a disease or a complication caused by or associated with a disease, or an improvement in the symptoms, or the underlying cause or causation of a disease, or a reversal of a disease.
[0080] The formulations may be administered once or more times per day; once every other day; once or more times per week; once or more times per month; once or more times per year; or once or twice over the patient's lifetime. Those skilled in the art will appreciate that certain factors, including but not limited to the severity of the disease or disorder, the desired outcome, previous treatments, the patient's general health and / or age, and other diseases present, may affect the dosage and timing required to treat a patient. Furthermore, treatment of a patient with a therapeutically effective amount according to the present invention may include a single treatment or multiple treatments, such as a series of treatments.
[0081] The formulations, compositions, and pharmaceutical compositions of the present invention include compositions in which the active agent is contained in an effective amount to achieve the intended therapeutic goal. Determining an effective dose is well within the capabilities of a skilled physician using techniques and guidance known in the art, as well as the teachings provided herein.
[0082] The formulation, such as a pharmaceutical composition, can be delivered to a patient to allow for transcription of the nucleic acid and translation of the encoded protein. In certain embodiments, the formulation, such as a pharmaceutical composition, includes sufficient genetic material to allow for the production of a therapeutically effective amount of BAG3 in the patient, e.g., to modulate TNF signaling.
[0083] The term "modulate" means that any of the referenced activities of the compounds embodied herein are, for example, increased, enhanced, increased, agonized (acting as an agonist), promoted, decreased, reduced, inhibited, suppressed, blocked, or antagonized (acting as an antagonist). Modulating may decrease or reduce the activity below baseline levels, for example, 1-5 fold, 1-10 fold, 5-10 fold, 10-20 fold, 20-30 fold, 40-50 fold, etc., or at least a 1-fold, 2-fold, 3-fold, 5-fold, 10-fold, 20-fold, 50-fold, 100-fold, etc., decrease or reduction. Modulating can also increase or enhance activity above the baseline value, for example, 1-5 fold, 1-10 fold, 5-10 fold, 10-20 fold, 20-30 fold, 40-50 fold, etc., or at least a 1-fold, 2-fold, 3-fold, 5-fold, 10-fold, 20-fold, 50-fold, 100-fold, etc. increase or enhancement.
[0084] The formulations, compositions, methods, and uses of the present invention can be used in primate (e.g., human) and veterinary applications. Thus, suitable patients include mammals, such as humans, as well as non-human mammals. The terms "patient" and "subject" refer to animals, typically mammals, such as humans, non-human primates (apes, gibbons, gorillas, chimpanzees, orangutans, macaques), domestic animals (dogs and cats), livestock (poultry such as chickens and ducks, horses, cows, goats, sheep, pigs), and laboratory animals (mice, rats, rabbits, guinea pigs). Human patients include fetal, neonatal, infant, juvenile, and adult subjects. Patients also include animal disease models, such as mouse and other animal models of BAG3 deficiency.
[0085] The compositions and formulations may be sterile, and the methods and uses may be carried out using sterile compositions and formulations. The compositions may be formulated with or administered in any biocompatible pharmaceutical carrier, including, but not limited to, saline, buffered saline, dextrose, and water. The compositions may be formulated or administered to a patient alone or in combination with other agents that affect dosage, frequency of administration, and / or efficacy of treatment.
[0086] The formulations, methods, and uses of the present invention include delivery and administration systemically, regionally, or locally (e.g., to a specific area, tissue, organ, or cell), or by any route, such as by injection or infusion. In vivo administration or delivery of compositions, formulations, and pharmaceutical compositions can generally be accomplished via injection using a conventional syringe, although other delivery methods, such as convection-enhanced delivery, are envisioned (see, e.g., U.S. Pat. No. 5,720,720). For example, the formulations and compositions may be delivered subcutaneously, epidermally, intradermally, intrathecally, intraorbitally, intramucosally, intraperitoneally, intravenously, intrapleurally, intraarterially, orally, intrahepatically, or intramuscularly. A clinician skilled in treating a patient can determine the optimal route for administration based on several criteria, including, but not limited to, the patient's medical condition and the goal of treatment (e.g., modulating TNF signaling, reducing TNF signaling, treating inflammation, reducing inflammatory responses, etc.).
[0087] Also in accordance with the present invention, nucleic acids, expression vectors, including viral vectors, and viral particles may be encapsulated or complexed with liposomes, nanoparticles, lipid nanoparticles, polymers, microparticles, microcapsules, micelles, or extracellular vesicles.
[0088] "Lipid nanoparticles" or "LNPs" refer to lipid-based vesicles useful for administration or delivery of nucleic acids, expression vectors, including viral vectors, having nanoscale dimensions, i.e., about 10 nm to about 1000 nm, or about 50 to about 500 nm, or about 75 to about 127 nm. Without being bound by theory, LNPs are believed to provide partial or complete shielding to the nucleic acid, expression vector, or recombinant viral vector from the immune system. The shielding allows delivery of the nucleic acid, expression vector, or viral vector to tissues or cells while avoiding inducing a substantial immune response against the nucleic acid, expression vector, or viral vector in vivo. The shielding can also allow repeated administration without inducing a substantial immune response. The shielding can also improve or increase the efficiency of delivery, duration of therapeutic effect, and / or therapeutic efficacy in vivo.
[0089] The AAV surface carries a slight negative charge. Therefore, AAVs may benefit from LNPs including cationic lipids, such as amino lipids. Exemplary amino lipids are described in U.S. Patent Nos. 9,352,042, 9,220,683, 9,186,325, 9,139,554, 9,126,966, 9,018,187, 8,999,351, 8,722,082, 8,642,076, 8,569,256, 8,466,122, and 7,745,651. No. 1, and U.S. Patent Application Publication Nos. 2016 / 0213785, 2016 / 0199485, 2015 / 0265708, 2014 / 0288146, 2013 / 0123338, 2013 / 0116307, 2013 / 0064894, 2012 / 0172411, and 2010 / 0117125.
[0090] The terms "cationic lipid" and "amino lipid" are used interchangeably herein to include such lipids and their salts having one, two, three or more fatty acid or fatty alkyl chains and a pH-titratable amino group (e.g., alkylamino or dialkylamino group). Cationic lipids are typically protonated (i.e., positively charged) at a pH below the pKa of the cationic lipid and are substantially neutral at a pH above the pKa. The cationic lipid may also be a titratable cationic lipid. In certain embodiments, the cationic lipid comprises a protonatable tertiary amine (e.g., pH-titratable) group; a C18 alkyl chain, each alkyl chain having independently 0-3 (e.g., 0, 1, 2, or 3) double bonds; and an ether, ester, or ketal linkage between the head group and the alkyl chain.
[0091] In certain embodiments, the cationic lipid may be present in an amount from about 10% by weight of the LNP to about 85% by weight of the lipid nanoparticle, or from about 50% by weight of the LNP to about 75% by weight of the LNP.
[0092] LNPs may include neutral lipids. Neutral lipids may include any lipid species that exists in either uncharged or neutral zwitterionic form at physiological pH. Such lipids include, but are not limited to, diacylphosphatidylcholine, diacylphosphatidylethanolamine, ceramide, sphingomyelin, dihydrosphingomyelin, cephalin, and cerebrosides. The selection of neutral lipids is generally guided by considerations of particle size and required stability, among others. In certain embodiments, the neutral lipid component may be a lipid with two acyl groups (e.g., diacylphosphatidylcholine and diacylphosphatidylethanolamine).
[0093] In certain embodiments, the neutral lipid may be present in an amount between about 0.1% by weight of the lipid nanoparticle and about 75% by weight of the LNP, or between about 5% by weight of the LNP and about 15% by weight of the LNP.
[0094] Biological samples are typically obtained from or produced by biological organisms. Examples of biological samples from patients that can be analyzed include, for example, but are not limited to, whole blood, serum, plasma, and the like, and combinations thereof. Other biological samples from patients include, for example, but are not limited to, cerebrospinal fluid or simple spinal fluid. Biological samples may be devoid of cells or may contain cells (e.g., red blood cells, platelets, and / or lymphocytes).
[0095] The present invention provides compositions such as kits that include packaging materials and one or more components therein. The kits typically include a label or package insert that includes a description of the components or instructions for in vitro, in vivo, or ex vivo use of the components in the kit. The kits can contain a collection of such components, such as nucleic acids, recombinant vectors, viral (e.g., AAV, lentiviral) vectors, or viral particles.
[0096] A kit refers to a physical structure that houses one or more components of the kit. The packaging materials can maintain the components sterile and can be made from materials commonly used for such purposes (e.g., paper, corrugated fiber, glass, plastic, aluminum foil, ampoules, vials, tubes, etc.).
[0097] The label or insert may include identifying information about one or more components in the kit, the dose, the mechanism of action, the clinical pharmacology of the active ingredient(s), including pharmacokinetics, and pharmacodynamics. The label or insert may include information identifying the manufacturer, lot number, manufacturing location and date, expiration date. The label or insert may include information identifying the manufacturer information, lot number, manufacturer location and date. The label or insert may include information regarding the disease for which the kit components can be used. The label or insert may include instructions for the clinician or patient to use one or more of the kit components in a method, use, or treatment protocol or treatment regime. The instructions may include dosage, frequency or duration, and instructions for practicing any of the methods, uses, treatment protocols, or prophylactic or treatment regimes described herein.
[0098] The label or insert may include information regarding any benefit the component may provide, such as a prophylactic or therapeutic benefit. The label or insert may include information regarding potential adverse side effects, complications, or reactions, such as warnings to the patient or clinician regarding situations in which it would be inappropriate to use a particular composition. Adverse side effects or complications may also occur if the patient has, will be taking, or is currently taking one or more other medications that may be incompatible with the composition, or if the patient has, will be undergoing, or is currently undergoing another treatment protocol or regimen that may be incompatible with the composition, and thus the instructions may include information regarding such incompatibilities.
[0099] Labels or inserts include "printed matter," e.g., paper or cardboard, separate from or affixed to a component, kit, or packaging material (e.g., a box), or attached to an ampoule, tube, or vial containing a kit component.
[0100] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs. Although methods and materials similar or equivalent to those described herein can be used in the practice or testing of the present invention, suitable methods and materials are described herein.
[0101] All patents, patent applications, publications, and other references cited herein, GenBank citations, and ATCC citations are incorporated by reference in their entireties. In the case of conflict, the present specification, including any provisions, will control.
[0102] All of the features disclosed herein may be combined in any combination. Each feature disclosed herein may be replaced by an alternative feature serving the same, equivalent, or similar purpose. Thus, unless expressly stated otherwise, a disclosed feature is an example of a genus of equivalent or similar features.
[0103] As used herein, the singular forms "a," "an," and "the" include plural referents unless the context clearly dictates otherwise. Thus, for example, reference to "a nucleic acid" includes a plurality of such nucleic acids, reference to "a vector" includes a plurality of such vectors, and reference to "a virus" or "particle" includes a plurality of such viruses / particles.
[0104] As used herein, the terms "comprising," "comprise," or "comprised," and variations thereof in connection with defined or described elements of an item, composition, formulation, method, process, system, etc., are intended to be inclusive or open-ended, allowing for additional elements, thereby indicating that the defined or described item, composition, formulation, method, process, system, etc. includes such specified elements, or equivalents thereof, as appropriate, and that other elements may be included and still fall within the scope / definition of the defined item, composition, formulation, method, process, system, etc.
[0105] The term "about" or "approximately" means within an acceptable margin of error for a particular value as determined by one of ordinary skill in the art, which will depend in part on how the value is measured or determined, i.e., the limitations of the measurement system. For example, "about" can mean within 1 or more than 1 standard deviation, according to practice in the art. Alternatively, "about" can mean within a range of up to 20%, or up to 10%, or up to 5% within a given value. Alternatively, particularly with respect to biological systems or processes, the term can mean within an order of magnitude of a given value, for example, within 5-fold, 4-fold, 3-fold, or 2-fold. When specific values are described in this application and claims, unless otherwise stated, the term "about" should be assumed to mean within an acceptable margin of error for the particular value.
[0106] All numerical values or ranges include whole numbers within such ranges and fractions of values or integers within the range, unless the context clearly dictates otherwise. Thus, by way of example, reference to a reduction of 95% or more includes 95%, 96%, 97%, 98%, 99%, 100%, etc., as well as 95.1%, 95.2%, 95.3%, 95.4%, 95.5%, etc., 96.1%, 96.2%, 96.3%, 96.4%, 96.5%, etc. Thus, and by way of example, reference to a range such as "1-4" includes 2, 3, as well as 1.1, 1.2, 1.3, 1.4, etc. For example, "1 to 4 weeks" includes 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, or 28 days.
[0107] Additionally, references to numerical ranges such as "0.01 to 10" include 0.011, 0.012, 0.013, etc., as well as 9.5, 9.6, 9.7, 9.8, 9.9, etc. For example, a dosage of about "0.01 mg / kg to about 10 mg / kg" of patient weight includes 0.011 mg / kg, 0.012 mg / kg, 0.013 mg / kg, 0.014 mg / kg, 0.015 mg / kg, etc., as well as 9.5 mg / kg, 9.6 mg / kg, 9.7 mg / kg, 9.8 mg / kg, 9.9 mg / kg, etc.
[0108] References to integers with more than (greater than) or less than include any number greater or less than the referenced number, respectively. Thus, for example, reference to more than 2 includes 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, etc. For example, administration of a recombinant viral vector, protease, and / or glycosidase "two or more times" includes 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, or more times.
[0109] Additionally, references to numerical ranges such as "1-90" include 1.1, 1.2, 1.3, 1.4, 1.5, etc., as well as 81, 82, 83, 84, 85, etc. For example, "about 1 minute to about 90 days" includes 1.1 minutes, 1.2 minutes, 1.3 minutes, 1.4 minutes, 1.5 minutes, etc., as well as 1 day, 2 days, 3 days, 4 days, 5 days, ... 81 days, 82 days, 83 days, 84 days, 85 days, etc.
[0110] "Optional" or "optionally" means that the subsequently described circumstance may or may not occur, such that the description includes cases where the circumstance occurs and cases where the circumstance does not occur.
[0111] The present invention is generally disclosed herein using positive language to describe numerous embodiments of the invention. The present invention also specifically includes embodiments in which certain subject matter is completely or partially excluded, such as compositions or formulations, uses, method steps and conditions, protocols, or procedures. For example, in certain embodiments of the present invention, compositions and / or method steps are excluded. Thus, even if the present invention is not generally expressed herein in terms of what the present invention does not include, aspects of the present invention that are not explicitly excluded are nevertheless disclosed herein.
[0112] Several embodiments of the present invention have been described. Nevertheless, those skilled in the art may make various changes and modifications to the present invention to adapt the present invention to various usages and conditions without departing from the spirit and scope of the present invention. Therefore, the following examples are intended to illustrate, but not to limit in any way, the scope of the claimed invention. EXAMPLES
[0113] Example 1: Materials and Methods Animals, animal models, surgical procedures, and human tissues Mice carrying floxed BAG3 (BAG3) were transfected with 10-fold more pluripotent stem (SST)-derived siRNA (SST-D2) than with 10-fold more pluripotent stem ...). フロックス / フロックスBy crossing the BAG3 mutant with Cre mice carrying α-myosin heavy chain (α-MHC) (all on a C57Bl / 6 background), we generated mice lacking a single or two alleles of BAG3. フロックス / フロックス Mice (BAG3 (HEPD0556_7_B06)) were obtained from MRC Harwell (a member of the International Mouse Phenotyping Consortium), which generates and distributes transgenic mice with transfer from the European Mouse Mutant Archive (www.infrafrontier.eu). Bag3 + / - and Bag 3 - / - The phenotype of mice has been described previously (10), and samples of failing and non-failing human hearts were obtained from the cardiac tissue repositories at the University of Pittsburgh and the University of Colorado Health Sciences Campus as previously described (23, 24).
[0114] Mass spectrometry-Bag3 + / + (WT) and Bag3 + / - mouse Left ventricular tissues from three wild-type and three Bag3-KO mice were homogenized in lysis buffer containing 9M urea and then briefly sonicated. The solution was then centrifuged at 10,000 RCF for 10 minutes, and the supernatant containing the solubilized proteins was collected. Protein concentration was determined by BCA assay (Pierce). Approximately 300 μg of protein from each sample was used for proteomics.
[0115] Mass spectrometry raw data were imported into Peaks Bioinformatics software and searched against a Mus musculus database using carbamidomethylated cysteine as the fixed modification and phosphorylation as the variable modification. Data were analyzed using the built-in label-free quantification (LFQ) option normalized to the total ion current (TIC) of each sample. Proteins of interest identified by this method were further investigated by pathway analysis using the DAVID bioinformatics program (version 6.8), which allows for protein function and cellular compartment characterization.
[0116] TUNEL staining for cell death Isolated adult mouse cardiomyocytes were cultured on laminin-coated, 10 mm 2 35mm diameter glass coverslip with insert 2 The cells were seeded in dishes (MatTek Corporation, Catalog No. P35G-1.5-10-C). The cells were subjected to hypoxia (1 h) and reoxygenation (2 h) before staining with 100 nM nonyl acridine orange (Molecular Probes, Catalog No. A1372) in Tyrode's buffer. The cells were then imaged by confocal or fluorescence microscopy as previously described.
[0117] TMRM staining for mitochondrial membrane potential and mitochondrial content Isolated adult mouse cardiomyocytes were seeded as described in the TUNEL staining section. Cells were stained with 100 nM tetramethylrhodamine, methyl ester, perchlorate (TMRM) (Thermo Fisher Scientific, Cat. No. T668) in Tyrode's buffer. Imaging was performed by confocal microscopy as previously described.
[0118] MitoSox staining for mitochondrial ROS content Isolated adult mouse cardiomyocytes were seeded as described in the TUNEL staining section. Cells were stained with 5 μM Mitosox™ Red Mitochondrial Superoxide Indicator (Thermo Fisher Scientific, Catalog No. M36008) and confocal images were quantified in Fiji Image J.
[0119] Preparation of primary neonatal mouse ventricular cardiomyocytes (NMVCs) Neonatal mouse ventricular cardiomyocytes were isolated from 1- to 3-day-old FVB mice using the Pierce Primary Cardiomyocyte Isolation Kit (catalog no. 88281, Thermo Scientific, Rockford IL) according to the manufacturer's instructions, as previously described ( 27 ).
[0120] Isolation and culture of adult muscle cells Adult cardiac myocytes were transfected with Bag3 + / + (WT), Bag3 - / - , and Bag3 + / - Cells were isolated from mouse septa and LV free walls, seeded onto laminin-coated glass coverslips, and then handled as originally described by Zhou et al. (28) with modifications published later by members of this research team. (29), (30) A detailed description of the experimental techniques has been described previously.
[0121] Bag 3 Knockdown NMVCs at 60–70% confluence were transfected with Bag3-specific siRNA combined with lipofectamine RNAimax (ThermoFisher) using the Lipofectamine 3000 system (Thermo Scientific, Waltham, MA) according to the manufacturer's instructions as previously described.
[0122] Hypoxia / Reoxygenation (H / R) NMVCs were subjected to H / R as previously described (31). Briefly, NMVCs were exposed to humidified 5% CO2:95% N2 at 37°C for 16 h and incubated in glucose-free medium. Cells were then reoxygenated with 5% CO2:95% humidified air in glucose-containing medium for 4 h.
[0123] Cell harvest and protein extraction Cultured cells were washed in 1x PBS, lysed in lysis buffer supplemented with mammalian protease inhibitor cocktail, and then scraped off the dishes. Cells were vortexed and then centrifuged at 13,000xg for 5 min in the cold. The supernatant was collected and used for protein analysis (27).
[0124] Protein isolation Hearts were removed and the left ventricle was isolated, snap frozen in liquid nitrogen, and stored at −80° C. until use. Membrane proteins were prepared using a Bullet Blender (Next Advance, Averill Park, NY) as previously described ( 32 ).
[0125] Cytoplasmic and mitochondrial fractions Mitochondria and cytoplasmic proteins were isolated using the Mitochondria Isolation Kit for Cultured Cells (Thermofisher, #89874) according to the manufacturer's instructions. Isolated proteins were quantified using the Bradford assay (Bio-Rad, USA). Proteins were then separated by Western blot analysis.
[0126] Immunoprecipitation NVCM or AC16 cardiomyocytes were seeded in 10 cm dishes and treated as described above. Cells were quickly washed with cold PBS, placed in IP lysis buffer (Thermofisher) supplemented with phosphate inhibitors and Halt proteinase inhibitors, and homogenized with beads in a bullet blender. Protein lysates were then incubated with Magna magnetic beads (A / G) (Millipore, Sigma) for 1 hour, and the amount of lysate was quantified as previously described.
[0127] Western blot analysis Protein lysates (90 μl) were mixed with reducing agent (ThermoFisher), proteins were separated using NuPAGE gels (ThermoFisher), and transferred to nitrocellulose membranes (LiCor, Lincoln, NE) by using a wet transfer system as described previously (17). Membranes were quickly washed, blocked with Licor Odyssey blocking buffer (LiCor), incubated with secondary antibodies, and the resulting images were captured using a Licor imaging system.
[0128] Immunofluorescence staining Neonatal or adult cardiomyocytes were fixed with 4% paraformaldehyde in PBS for 15 min, washed; permeabilized with 0.5% Triton X-100 in PBS for 10 min, washed; and blocked with Licor Blocking Buffer S containing 5% bovine serum albumin (BSA) and 0.1% Triton X-100 for 1 h; all at room temperature. Cells were incubated overnight at 4° C. with rabbit anti-protein of interest antibody diluted in blocking solution. Cells were then washed with PBS and incubated with appropriate secondary antibody and DAPI (4′,6-diamidino-2-phenylindole) diluted in blocking solution for 45 min at room temperature.
[0129] Confocal microscopy Confocal microscopy was used to detect in adult cardiomyocytes as previously described (17). Briefly, NMVCs were isolated and seeded onto laminin-coated 4-well chamber slides (Lab-Tek., Rochester, NY). Bag3 was identified using a primary rabbit antibody (1:200; Proteintech Group Inc, Chicago IL) (28, 29). Total laser intensity and photomultiplier tube gain were set constant for all groups, and settings and data were verified by two independent observers blinded to the experimental groups. A minimum of three coverslips were used for each experimental group, and at least three cell images were acquired from each coverslip.
[0130] Mitochondrial membrane potential (ΔΨ m ) and mitochondrial Ca 2+ Measurement of uptake Measurements were performed as previously described (35). + / - LV myocytes isolated from the heart were exposed to either 21% O2-5% CO2 (normoxia) or 1% O2-5% CO2 (hypoxia) for 30 min, followed by 30 min of reoxygenation (33). Permeabilized myocytes were supplemented with succinate. Fura-FF (0.5 μM) was added at 0 s and JC-1 (800 nM; Molecular Probes) was added at 20 s to regulate extramitochondrial Ca, respectively. 2+ and ΔΨ m The fluorescence signal was monitored using a multi-wavelength excitation and dual-wavelength emission spectrofluorometer (Delta RAM, Photon Technology International). The ratiometric dye Fura-FF was calibrated as previously described (30). At the indicated time points, 10 μM Ca 2+ Apply a pulse and ΔΨ m and extramitochondrial Ca 2+ was monitored simultaneously. m was calculated as the ratio of fluorescence of the oligomeric to monomeric forms of JC-1. 2+ The clearance rate is calculated by2+ I took it to represent uptake.
[0131] Echocardiography Global LV function was assessed in all mice after light sedation (2% isoflurane) using a VisualSonics Vevo 770 imaging system and 707 scan head (Miami, FL) as previously described (11). Left ventricular ejection fraction (LVEF) was calculated using the formula EF% = [(LVEDV-LVESV) / LVEDV] × 100, where LVEDV and LVESV are the left ventricular end-diastolic and end-systolic volumes, respectively.
[0132] Mitochondrial Ca 2+ Uniporter (MCU) current (I MCU ) Measurement Muscle cells were cultured at 8- to 12-week-old WT or BAG3 + / - Myocytes were isolated from the LV and septum of mice (29). Myocytes were then transfected with Adv-GFP or Adv-BAG3 (7 × 10 6 pfu / ml) and cultured for 24 h before use for mitoplast isolation (34). Mitoplast patch clamp recordings were performed at 30°C as previously described in detail (35-37). MCU was recorded using a computer-controlled Axon200B patch clamp amplifier with a Digidata 1320A acquisition board (pClamp 10.0 software; Axon Instruments). Mitoplasts were immersed in physiological solution and after formation of a GΩ seal, mitoplasts were ruptured and capacitance was measured. After capacitance compensation, mitoplasts were held at 0 mV and I was measured both before and after the addition of 5 mM Ca. MCU was evoked using a voltage ramp (-160 mV to +80 mV, 120 mV / s).
[0133] statistical analysis Data are presented as mean ± SEM for continuous variables. ANOVA with Bonferroni multiple comparison adjustment was used to assess differences across study groups. For Western blot analysis, a p-value of p<0.05 was considered significant. Controls for each experiment (e.g., Ad-GFP or normoxia) were set to 1.0. All blots used to assess protein levels, including loading standards, are shown for each experiment, and each experiment was replicated at least once with comparable results. All blots were normalized by appropriate standards from the same gel as the blot. Individual elements of each figure represent individual biological measurements in one sample. Unless noted, technical replicates are not found in the results section of this study. The original blots for each figure are available from the verifiable scientist upon request. In the case of measurements of levels of multiple components of the uniporter, each experiment was replicated five times due to the low protein yield in each experiment.
[0134] Example 2: Results Deletion of one allele of BAG3 in mice leads to age-associated LV dysfunction Mice with a single allele knockout of Bag3 provide an ideal model for investigating the biology of Bag3 because they mirror the molecular biology of the deletion or truncation (8-10, 27, 38). As seen in Figure 1A, 8- to 10-week-old mice in which one allele of BAG3 has been deleted (Bag3 + / - ) have a normal LV phenotype by echocardiography. However, by 18 weeks of age, Bag3 + / - Mice have a significant reduction in LV function as well as LV enlargement. As expected, Bag3 levels were significantly higher than those of all Bag3 + / - The juvenile Bag3 mice were consistently reduced by approximately 50% in the juvenile group (Fig. 1B). + / - Mice provided an ideal model to investigate the effects of Bag3 deficiency on cardiac cellular and molecular biology.
[0135] Cardiomyocyte-restricted Bag3 KO in mice is associated with altered mitochondrial protein expression A roughly 50% reduction in Bag3 expression in the heart is associated with heart failure in humans (11, 12), and cardiomyocyte-restricted Bag3 haploinsufficiency in mice causes progressive left ventricular dysfunction consistent with the human phenotype (10). To characterize the effects of reduced Bag3 in the heart and gain insight into the specific pathways that are dysregulated, we used unbiased mass spectrometry to analyze the proteomes of young mice with a cardiomyocyte-specific Bag3 knockout compared to age-matched wild-type controls (9, 10).
[0136] Proteins from mouse left ventricles were digested with trypsin protease and the resulting peptides were subjected to high pressure liquid chromatography coupled with tandem mass spectrometry (LC-MS / MS). The acquired spectra were then analyzed using label-free quantification (LFQ) searched against a mouse database and normalized by total ion current. LFQ analysis identified 86 proteins with significantly altered expression in BAG3 KO mice (p<0.05 vs. WT, Figure 2A and Table 1 below).
[0137] [Table 1]
[0138] Strikingly, pathway analysis of these proteins revealed that the largest proportion (36%) was primarily localized to mitochondria (Figure 2B), suggesting that disruption of mitochondrial function may contribute to cardiac dysfunction associated with reduced Bag3 expression. When 86 proteins were analyzed according to their biological functions, among their major functions were regulating mitochondrial metabolism and mitochondria-dependent apoptosis (Figure 2C). Bag3 has been linked to mitochondrial function in neonatal rat ventricular cardiomyocytes, and Bag3 knockdown was associated with reduced mitophagy (39). However, this is the first to show that reducing Bag3 significantly alters the expression of mitochondrial proteins, further indicating a role for Bag3 in mitochondria-mediated cell survival pathways and non-mitochondrial inflammation in the heart.
[0139] Hypoxia-reoxygenation stress: apoptosis in BAG3+ / - mice To determine how Bag3 haploinsufficiency affects apoptosis in a mouse model of BAG3 deficiency, we cultured adult muscle cells at 8- to 10-week-old WT and BAG3 + / - Cells were harvested from mice and stained for nuclear DNA (DAPI), viable mitochondria (NAO), and damaged DNA (TMR Red-TUNEL), and the resulting confocal images were analyzed using one-way ANOVA (Figure 3A) followed by subgroup analysis with Bonferroni correction (Figure 3B; p<0.0125 is statistically significant). In the absence of stress, Bag3 + / - There was a slight and non-significant (p=0.1130) increase in apoptosis in mice. When WT myocytes were stressed with 1 hour of hypoxia followed by 2 hours of reoxygenation (H / R), there were significantly (p<0.0001) more TUNEL-positive cells when compared to WT-normoxia cells; as expected after H / R insult. Similarly, H / R increased the expression of Bag3 + / - -Significantly (p<0.0001) more TUNEL-positive Bag3 compared to normoxic cells+ / - More interestingly, H / R resulted in Bag3 expression in myocytes when compared with WT-H / R myocytes. + / - This resulted in significantly (p=0.0076) more TUNEL-positive cells in myocytes; indicating that BAG3 haploinsufficiency exacerbates H / R injury.
[0140] Homozygous loss of BAG3 reduces mitochondrial membrane potential (ΔΨ m ) A separate group of studies set out to measure the effect of Bag3 deletion on mitochondrial area (size) and levels of reactive oxygen species (ROS) using confocal microscopy. Pilot experiments suggested that heterozygous BAG3 deletion had no effect on mitochondrial reactive oxygen species (ROS). - / - Cells isolated from mice were used for these experiments, with plans to follow up on any positive findings. As can be seen in Figure 3D, homozygous deletion had no effect on mitochondrial reactive oxygen species, nor did homozygous deletion have any effect on mitochondrial content. In contrast, when these same cells were stained with a marker of membrane potential, Bag3 downregulation was observed when compared to WT mice. - / - Mitochondrial membrane potential (ΔΨ m ) was significantly (p<0.01) decreased (Figure 3E).
[0141] Bag3 + / - and Bag 3 WT Comparative analysis of related protein levels in mice To support the results of the proteomic survey, we focused on apoptosis-related proteins, Bag3 WT and Bag 3 + / - We measured the levels of proteins critical for myocyte homeostasis and proteostasis in mouse left ventricular myocardium. The intrinsic pathway of apoptosis is activated by signals derived from mitochondria.
[0142] As seen in Figure 4A, there was a significant (p<0.01) increase in the levels of caspase-3, the main effector protein of apoptosis. However, the ratio of cleaved caspase-3 / total caspase-3 protein was significantly higher than that of Bag3 when compared to protein isolated from WT mouse hearts. + / - Bag3 haploinsufficiency was not elevated in ventricular myocardium from mice, suggesting that Bag3 haploinsufficiency causes only little to minimal apoptosis in the early stages of disease. While not wishing to be bound by any theory or hypothesis, it is possible that caspase-3 activation was observed for early disease, a time point when there is no cardiac remodeling, whereas in aged mice with reduced cardiac remodeling and function there is activation of caspase-3. However, in aged mice at either 10-12 weeks or 18-22 weeks of age, there was a significant increase in the levels of activated caspase-3, but the ratio of cleaved caspase-3 / total caspase-3 protein was still not increased (compared to WT), suggesting that only severe stress combined with advanced age would activate caspase-3-mediated apoptosis in mouse hearts (Figure 4B).
[0143] BAG3 deficiency and the extrinsic pathway of apoptosis The extrinsic / mitochondria-independent pathway (40) was then evaluated, which is activated by tumor necrosis factor-alpha (TNFa) through binding to the TNFR1 receptor with subsequent cleavage and activation of caspase 8. Cleaved caspase 8 can then activate caspase 3, which leads directly to apoptosis, or alternatively, caspase 3 can bind to the Bcl-2 family member bid, which then interacts with tBid, which triggers the release of cytochrome c after translocation to mitochondria. Cytochrome c then binds to the apoptosome with subsequent activation of procaspase 9.
[0144] TNFα levels were significantly increased in Bag3 cells compared to WT littermate control mice (36.7 4 2.7; n = 5). + / -The extrinsic pathway was significantly higher in mice (58.0 ± 2.7, n = 5; p = 0.014), indicating that the extrinsic pathway is associated with Bag3 + / - These effects were TNF-restricted, as no changes in the levels of the proinflammatory cytokine IL-6 were detected (Fig. 4C). The ratio of cleaved caspase 8 / total caspase 8 (0.94 ± 0.09, n = 5) was significantly higher than that of Bag3 when compared to tissue obtained from WT mice (0.54 ± 0.03, n = 5, Fig. 4D). + / - The finding that Bag3 was significantly (p<0.003) increased in the ventricular myocardium + / - Further support was given for the role of extrinsic signaling in apoptosis in mice.
[0145] Bag3 + / - That reduced levels of Bag3 are associated with increased cellular inflammation was supported by the finding that the heart had a significant increase in poly(ADP-ribose) polymerase-1 (PARP-1), a protein that transfers ADP-ribose to apoptosis-inducing factor (AIF) and results in the translocation of AIF from mitochondria to the nucleus, where AIF initiates cell death by signaling DNA fragmentation (41, 42) (Figure 4E). Thus, overall, these studies of protein levels in cardiomyocytes from mice lacking one allele of BAG3 indicate that canonical TNF receptor signaling is a defining feature of Bag3 haploinsufficiency and that canonical TNF receptor signaling leads to activation of PARP1 and AIF, which in turn leads to sterile inflammation and DNA fragmentation (41, 42).
[0146] Caspases, SMAC, and cIAP-Regulation of Apoptotic Signaling To better understand the mechanism of Bag3 regulation of apoptosis and mitochondrial homeostasis, we investigated proteins that are part of the Bag3 proteome. As already noted, caspase 3 is one of the executioner caspases located at the final end of the apoptosis signaling cascade, and the activity of caspase 3 depends on signals involving mitochondria, including the release of cytochrome c and endonuclease G from the mitochondrial matrix. Therefore, caspase 3 is considered to be a "mitochondria-dependent" caspase. In the absence of stress, cellular inhibitors of apoptosis (cIAPs) bind to receptors on caspase 3 (as well as all other caspases) and inhibit the ability of caspase 3 to be cleaved to its active portion. However, in the presence of stress, such as ischemia or toxins, the second mitochondria-derived activator of caspases (SMAC) is released from the outer mitochondrial membrane (OMM), (as well as other caspases). Caspase 3 can then be cleaved and initiate apoptosis of cardiac cells.
[0147] Young Bag 3 + / - Data from mice show that while the ratio of cleaved / procaspase-3 is unchanged, how Bag3 + / - This posed a conundrum: how could cIAPs significantly increase apoptosis in adult muscle cells from mice? A possible explanation for this apparent discrepancy is a potential change in the function of SMAC. SMAC, a protein transcribed by the DIABLO gene, is located in the intermitochondrial space. For the first time, as seen in Figure 4F, cIAPs co-immunoprecipitate (co-IP) with Bag3 and caspase-3, but not with SMAC, and Bag3 co-IPs with cIAPs, but not with SMAC or caspase-3. The association between Bag3 and cIAPs was selective, since Bag3 did not co-immunoprecipitate with the highly homologous XIAP (x-linked IAP) (Figure 4F).
[0148] The second key element in modulating mitochondrial homeostasis is a protein import system called the translocase of the outer membrane (TOM) and the translocase of the inner membrane system called TIM. TOM and TIM proteins are required for the translocation of key elements into and out of mitochondria. TOM22 (along with TOM20) is an accessory unit of the translocator of the outer membrane (TOM), a pore in the OMM that transports short chains of proteins into the mitochondrial matrix. Interestingly, Bag3 also co-immunoprecipitates with TOM22 protein (Figure 4F).
[0149] In the absence of Bag3, SMAC is embedded in the OMM. Although not wishing to be bound by any theory or mechanism of action, one hypothesis was that caspase-3 is not activated upon Bag3 haploinsufficiency due to SMAC being stuck at the mitochondrial membrane and not relocalized to the cytoplasm. To address this hypothesis, neonatal myocytes from wild-type mice were isolated and cultured. The cells were then exposed to 1) normal control conditions, 2) hypoxia / reoxygenation; 3) siRNA against Bag3; or 4) hypoxia / reoxygenation + Bag3 siRNA.
[0150] As seen in Figure 5A, under control culture conditions, SMAC was prominent in mitochondria (Mito), with a small amount of protein in the cytoplasm (Cyto). Addition of H / R stress to SMAC itself did not change this localization of SMAC. However, in the absence of Bag3 (siRNA Bag3), there was no detectable SMAC in the cytoplasm. Similarly, when cells lacking Bag3 (siBag3) were exposed to H / R stress, SMAC was not seen in the cytoplasm. TOM22 served as a control, as it is exclusively mitochondrial. Across the four conditions investigated, TOM22 remained at the mitochondria, indicating that SMAC translocation requires Bag3.
[0151] BAG3 + / -Pre-heart failure proteome To gain a broader understanding of how Bag3 deletion affects apoptosis, we assessed other apoptosis signaling proteins associated with myocardial failure. Figures 5A-5D show that 8-week-old Bag3 + / - We show that the effect of Bag3 deficiency in mice is substantially different from the changes in protein levels that are hallmarks of LV dysfunction seen in later stages of the disease. For example, no changes were observed in either cIAPs or total P39, a MAP kinase involved in mediating pathological changes associated with inflammatory and apoptotic processes (43) (Figure 5B). As seen in Figures 5A-5C, no changes were observed in JNK, which is upregulated in failing hearts and activates multiple proapoptotic signaling pathways, or in Jun, which is differentially regulated in HFrEF and has very similar effects on cells in part by releasing SMAC from mitochondria. Finally, expression of phosphoro-ERK1 / 2 and total ERK was assessed, but no changes were attributed to BAG3.
[0152] One observation derived from the proteomic screen was unexpected but consistent with the overarching hypothesis that abnormal levels of Bag3 lead to increased cardiac inflammasome activity. The RNA-binding protein human antigen R (HuR:ELAV-1) was significantly increased in Bag3 when compared to levels in WT control mice (1.07 ± 0.11, n = 9, p = 0.03). + / -HuR was overexpressed in the heart (1.51 ± 0.16, n = 8) (Figure 5D). This may not be surprising in light of the observation that Bag3 haploinsufficiency is associated with increased inflammasome activity, as HuR knockdown attenuates inflammatory responses and may be a therapeutic target in pathological cardiac hypertrophy (44, 45). Thus, overall, these investigations of protein levels in cardiomyocytes from mice lacking one allele of Bag3 strongly suggest that canonical TNF receptor signaling is a defining feature of Bag3 haploinsufficiency and that canonical TNF receptor signaling leads to inflammation and DNA fragmentation. There was also a significant decrease in the levels of TOM22, a protein that regulates the import of proteins and other nutrients into the mitochondrial matrix (Figure 4E).
[0153] Bag3 haploinsufficiency results in abnormal mitochondrial Ca 2+ Inducing homeostasis As seen in Figures 2A-2C and Table 1, the proteomic survey disclosed herein demonstrated that the primary effect of Bag3 haploinsufficiency is an alteration in the abundance of specific mitochondrial proteins that function in cellular metabolism and energy production. Specifically, knockout of one BAG3 allele resulted in reduced expression of enzymes associated with mitochondrial function, including isocitrate dehydrogenase, pyruvate dehydrogenase, and alpha-ketoglutarate dehydrogenase. Haploinsufficiency of Bag3 results in abnormal mitochondrial Ca 2+ Therefore, we took a three-pronged approach to investigate whether Bag3 haploinsufficiency leads to Bag3 activation in the heart. + / - We evaluated the hypothesis that cerebrospinal fluid (CSF) may be a causative factor in the decline of cerebrospinal fluid (CSF) function.
[0154] 1) Haploinsufficiency of Bag3 impedes the heart's ability to maintain mitochondrial membrane potential (MMP) In the first set of studies, adult muscle cells were cultured with WT and Bag3 + / - Myocytes were then exposed to H / R and the mitochondrial membrane potential (Δ Ψm) using the ratiometric indicator JC-1 to measure mitochondrial Ca 2+ Uptake was assessed using the ratiometric dye Fura-FF, and fluorescence was measured using a dual-wavelength emission spectrofluorometer as described previously ( 35 ).
[0155] As can be seen in Figures 7A and 7B, as expected, ΔΨ in myocytes from normoxic WT hearts was significantly lower than in myocytes from WT hearts exposed to the stress of H / R. m There was a significant (p<0.001) decrease in Bag3 after H / R. + / - Compared to mouse-derived muscle cells, Bag3 + / - ΔΨ in mouse muscle cells m However, there was also a significant decrease (p<0.001) in BAG3 when compared to WT myocytes exposed to H / R. + / - ΔΨ in muscle cells m There was an additional significant (p<0.05) decrease in Bag3 expression, suggesting that H / R stress exacerbates the underlying effect of Bag3 haploinsufficiency on mitochondrial function. A similar phenomenon was observed when looking at the effect of deletion of one allele of Bag3 on calcium homeostasis (Figures 7C and 7D). Adult myocytes from WT mice were transfected with Bag3 + / - When compared to cells isolated from mice, Bag3 + / - Mitochondrial [Ca 2+ ] m There was a significant (p<0.001) decrease in the rate of uptake (1 / τ). Overall, these results suggest that Bag3 deletion reduces the uptake of Ca, especially in cells undergoing stress. 2+ This supports the hypothesis that it results in substantial changes in homeostasis.
[0156] 2) Heterozygous deletion of Bag3 inhibits Ca 2+ Change the functionality of the uniporter The uniporter is composed of two pore-forming subunits (MCU and MCUb) and three regulatory subunits (MICU1, MICU2, and EMRE), which together maintain the negative potential of the outer mitochondrial membrane (OMM) (46). This negative potential across the OMM is responsible for the transfer of valuable resources to mitochondria. Under resting conditions, MICU1 and MICU2 dimerize and act as gatekeepers for the MCU. They mediate the transfer of cytosolic [Ca] to mitochondria. 2+ ] release is initiated by Ca 2+ Blocking MICU-2-dependent inhibition of Ca translocation induces a conformational change in the protein complex. MICU1 activates the channel, allowing Ca transport into mitochondria. 2+ EMRE stabilizes the MCU-MICU1 complex, which in turn transports Ca that can enter mitochondria. 2+ Fine-tune the level of
[0157] As seen in Figures 7E and 7F, compared with Bag3-WT mice, + / - There was a trend towards decreased levels of MICU2 in mice, but this trend did not reach statistical significance. However, Bag3 was significantly decreased when compared to WT controls. + / - There was a significant (p<0.05) decrease in the levels of MICU1 and BAG3 haploinsufficiency in mice, which reduced mitochondrial Ca 2+ This provides further support that it is directly related to and causative of the development of abnormal homeostasis.
[0158] 3) MCU function is normalized by adenoviral overexpression of Bag3 To confirm that the reduced mitochondrial calcium uptake is due to reduced MCU activity and directly related to Bag3 haploinsufficiency, we cultured cardiac mitoplasts from WT myocytes and Bag3 + / - Myocytes were isolated from the splenic myocytes (both overexpressing GFP as a control). 2+ Before and after the addition of MCU) were measured from voltage-clamped mitoplasts. These measurements, although technically challenging, allow the determination of membrane potential, Ca 2+ and H + Tight control of gradient conditions allows for comparison of MCU activity between different populations of mitochondria. As shown, during the voltage ramp, I MCU It was recorded.
[0159] As shown in Figures 7G and 7H, peak I in WT-GFP mitoplasts MCU Bag3 + / - This was significantly (p=0.018) higher than that of GFP mitoplasts (n=5 for each). + / - Adenovirus-mediated overexpression of WT Bag3 in muscle cells induces peak I MCU Returned to normal (Bag3 + / - p=0.028 compared to control. These data indicate that sufficient levels of BAG3 are required to maintain MCU expression and / or activity.
[0160] The human proteome and inflammasome are characterized by Bag3 + / - Mirrors what is seen in mice As seen in Figure 8A, the levels of Bag3 are reduced by approximately 50% in the LV myocardium of failing human cardiac tissue when compared to non-failing controls. Furthermore, the inflammasomes of human hearts were found to be similar, but not identical, to those in mice with haploinsufficiency of Bag3: the levels of cPARP and cleaved caspase 8 were elevated, while the levels of cleaved caspase 3 were not increased (Figures 8D and 8E). An increase in cPARP was also observed (Figure 8D). In contrast to mice, no significant changes in HuR were observed (Figure 8G).
[0161] Example 3: Observations Just a little over a decade ago, Selcen and colleagues first reported that an idiopathic single nucleotide polymorphism (SNP) in BAG3, resulting in a substitution of leucine for proline at amino acid position 209, leads to phenotypes including giant axons, severe skeletal muscle dis-array, and mild cardiac hypertrophy in children. Subsequent genome-wide association studies (GWAS) as well as whole-exome (WES) and whole-genome (WGS) sequencing have identified truncations and SNPs in BAG3 as causative of various cardiac phenotypes, most notably DCM (3-6). Although new in age from the standpoint of scientific knowledge, BAG3 is quite ancient from a biological perspective, as evidenced by the fact that Bag3 homologs have been found in plants (47). To date, genomic abnormalities in Bag3 have been associated with reduced autophagy, increased apoptosis, abnormal excitation-contraction coupling, and abnormal sarcomere function at the protein and molecular levels. However, it was unclear whether the full extent of Bag3's functional capabilities was known.
[0162] Using young mice in which a single allele of BAG3 has been ablated but which have not yet developed reduced ejection fraction, and proteomics using high pressure liquid chromatography coupled with tandem mass spectrometry (LC-MS / MS), we have identified a previously unrecognized causal role for Bag3 haploinsufficiency. As shown in the proteomic survey and subsequent studies disclosed herein, BAG3 also plays a role in modifying the extrinsic pathway of apoptosis, while also acting as a regulator of the inflammation-to-activation of the cardiac inflammasome and in particular the TNFR1 signaling cascade. As disclosed herein for the first time, Bag3 mediates the transfer of Ca into and out of mitochondria. 2+ It has been shown that Ca transport plays an equally important role in supporting the transport of Ca. 2+ The transport of Ca is a biological event that provides the energy required by the enzymes of the tricarboxylic acid (TCA) cycle. 2+ Maintains the mitochondrial membrane potential required for flux.
[0163] The cellular mechanisms that allow Bag3 to exclude irretrievably damaged or diseased organelles and cells from tissues without the collateral damage that occurs when cells suddenly die are complex and involve multiple regulatory pathways. When cell death is programmed, as in apoptosis, the cell membrane remains intact throughout the process so that internal enzymes and toxic materials are degraded before the cell's ultimate end as a functional organelle. As reported more than a decade ago, two canonical pathways regulate apoptosis in the heart: type I or type II pathways (48). The type 1 (extrinsic or mitochondria-independent) pathway consists of a cascade of events that begins with the activation of death domain receptors, such as tumor necrosis factor receptor-1 (TNFR-1), and ends with the activation of the executioners caspases-7 and -3. In contrast, in the type II (intrinsic or mitochondria-dependent) pathway, apoptosis is activated by the release of apoptogenic signals from mitochondria, including cytochrome c and endonuclease g, and the subsequent activation of caspases-9 and -3.
[0164] It was proposed that apoptotic cell death does not necessarily occur as a direct result of activation of a cell death pathway after one or more anti-apoptotic proteins are depleted (whereas overexpression of Bcl-2 is sufficient to partially attenuate this pathway), but instead results from sustained TNF signaling leading to cell death (42). However, when this model was proposed over a decade ago (BAG3 has only recently been discovered), the importance of BAG3 to the cell and the organism as a whole was completely unclear. In fact, BAG3 was thought to regulate apoptosis by binding to Bcl2, linking actin filaments to the Z-disk. In fact, an early paper erroneously suggested that haploinsufficiency of BAG3 would not result in a HF phenotype. However, it is now known that the absence of a full complement of potent anti-apoptotic Bag3 proteins resulted in a phenotype very similar to the Bag3 haploinsufficiency model, with increased total caspase-3 and caspase-8 activity. Inherent in the haploinsufficiency of the Bag3 model are increased levels of TNF as well as deleterious changes (reductions) in mitochondrial membrane potential independent of exogenous TNF. Furthermore, the reduced role of cIAPs due to their inability to partner with the full complement of Bag3 may be a contributing factor in the pathobiology of BAG3 deficiency. Thus, the imbalance between apoptosis and survival has severe consequences in the myocardium.
[0165] In the canonical pathway of apoptosis, the type 1 pathway is downregulated by inhibitors of apoptosis (IAPs) (49). In contrast, the type 2 pathway is downregulated by pro-apoptotic (BIM, BID, BAD, BAX / BAK) and anti-apoptotic (Bcl-2, Bcl-X) kinases. LBag3 binding to Bcl-2, the founding member of the very large Bcl-2 family of proteins that includes both IL-1 and MCL-1 members (50). As disclosed herein, loss of one Bag3 allele and the resulting 50% reduction in Bag3 levels was associated with an increase in caspase-3, but not a change in the ratio of cleaved caspase-3 / total caspase-3. Rather, there is a significant increase in caspase-8 and cleaved caspase-8, as well as an increase in the ratio of cleaved caspase-8 to total caspase-8, that is associated with increased apoptosis. When activated, caspase-8 participates in apoptosis induced by the death receptors Fas, TNFR1, and DR3. In fact, previous studies have shown that deletion of caspase-8 and RIPK3 prevents aberrant cell death, reduces inflammation, and extends mouse survival (49). Caspase-8 has been extensively investigated in cancer, but less so in the heart (49, 51, 52). However, the results of these studies suggest that caspase-8 plays a larger role in the heart than understood.
[0166] One interesting and novel observation from the study herein is that cIAPs co-immunoprecipitate with Bag3. This association between Bag3 and cIAPs is selective, since Bag3 was found to co-immunoprecipitate with the x-linked homolog XIAP (53), a direct neutralizing inhibitor of caspase-9 and the effector caspases-3 and -7, and is found in abundance in many different types of advanced cancers. Previous studies in inflammatory bowel disease and in cancer have shown that cIAPs and their antagonists regulate spontaneous and TNF-induced proinflammatory cytokine and chemokine production (54). Since BAG3 immunoprecipitates with cIAPs, and cIAPs have previously been shown to couple with TNFR1 at the critical junction of TRAF2 / TRAF5, LUBAC, and RIPK1, the presence or absence of Bag3 may have an important role in TNF signaling and thus in the inflammasome in cardiomyocytes (55).
[0167] Surprisingly, Bag3 did not co-precipitate with caspase-3 or SMAC. When SMAC translocates to the cytoplasm, it competes with cIAP, displacing cIAP and activating caspase-3. Although the studies herein suggest that this translocation does not occur in the absence of Bag3, further studies may elucidate the mechanism by which BAG3 regulates SMAC translocation, especially given the observation that Bag3 and SMAC did not physically associate with each other.
[0168] Mitochondrial Ca 2+ The main route of mitochondrial Ca uptake 2+ (mCa 2+ ) uniporter is mCa 2+ The uniporter is involved in the production of ATP through the tricarboxylic acid cycle, especially the Ca 2+ Bag3 plays an important role in the heart as it is involved in the activity of regulatory enzymes (56). + / - A mouse proteomic survey demonstrated that Bag3 regulates Ca2+-dehydrogenases, including pyruvate dehydrogenase, alpha-ketoglutarate dehydrogenase, and isocitrate dehydrogenase. 2+ showed that elevated levels of mCa are associated with increased levels of the β-dependent tricarboxylic acid enzyme (57). 2+ leads to an increased workload and thereby increased cellular stress, while mCa 2+ The opposite occurs when levels are low and stress is minimized (58). The MCU regulates mitochondrial Ca 2+ The mitochondrial permeability transition pore is the primary route through which excess Ca 2+ is the area that is lost.
[0169] Bag3 + / - Although it would be tempting to suggest that reduced MCU levels and activity in the heart contribute to the HFrEF phenotype, mCa 2+The biology of mitochondrial calcium uniporter is complex and not without controversy. For example, mitochondrial calcium uniporter inhibition has been shown to be beneficial in both cardiac hypertrophy and heart failure with compromised function (59, 60). In contrast, studies in zebrafish (61), diabetic mouse hearts (62), and guinea pig models of heart failure (58) have shown that restoration of normal or supranormal levels of MCU would have a positive effect on cardiac function. The mechanisms involved in mitochondrial molecular and cellular biology, particularly how mitochondria regulate Ca 2+ There is also debate over whether Bag3 is involved in mitochondrial Ca homeostasis (58, 63), (64). Given the debate, it is possible that restoring normal levels of Bag3 may be involved in mitochondrial Ca homeostasis. 2+ The observation that improved uptake, which in turn enhances cellular bioenergetics, thereby providing a benefit to the cell, should be interpreted with caution.
[0170] Given Bag3's many protein-protein binding domains, it is ideally suited for a multitasking role. However, unlike intracellular proteins that are located in specific domains of the cell, such as receptors in the sarcolemma or contractile elements in the sarcomere, BAG3 is ubiquitous (Figure 9). Based on its specific engagement and location, however, BAG3 appears to establish distinct intracellular microenvironments. For example, BAG3 couples contractile elements to the Z-disk in the cardiac myometrium and couples β-adrenergic receptors to L-type Ca in the sarcolemma. 2+ It couples to channels, connects dynein motor proteins to the perinuclear aggresome, and co-chaperones protein components of autophagy within the proteasome domain.
[0171] The results disclosed herein demonstrate that BAG3 also colocalizes with TOM22 in mitochondria. Thus, rather than being merely a regulatory or even structural protein, Bag3 appears to act as a universal glue that selectively localizes proteins to specific cellular domains where it can interact with and possibly colocalize partner proteins. Although not common, there are examples of this type of protein multitasking: the multifunctional protein 4.1R is a good example (65).
[0172] References 1. Behl C. Breaking BAG: The Co-ChaperoneBAG3 in Health and Disease. Trends Pharmacol Sci 2016;37:672-688. 2. De Marco M, Turco MC, Marzullo L. BAG3 inTumor Resistance to Therapy. Trends Cancer 2020;6:985-988. 3. Norton N, Li D, Rieder MJ et al.Genome-wide studies of copy number variation and exome sequencing identify rarevariants in BAG3 as a cause of dilated cardiomyopathy. Am J Hum Genet2011;88:273-82. 4. Shah S, Henry A, Roselli C et al.Genome-wide association and Mendelian randomization analysis provide insights into the pathogenesis of heart failure. Nat Commun 2020;11:163. 5. Choquet H, Thai KK, Jiang C et al.Meta-Analysis of 26 638 Individuals Identifies Two Genetic Loci Associated WithLeft Ventricular Ejection Fraction. Circ Genom Precis Med 2020;13:e002804. 6. Mazzarotto F, Tayal U, Buchan RJ et al.Reevaluating the Genetic Contribution of Monogenic Dilated Cardiomyopathy.Circulation 2020;141:387-398. 7. Homma S, Iwasaki M, Shelton GD, EngvallE, Reed JC, Takayama S. BAG3 deficiency results in fulminant myopathy and earlylethality. Am J Pathol 2006;169:761-73. 8. McDermott-Roe C, Lv W, Maximova T et al.Investigation of a dilated cardiomyopathy-associated variant in BAG3 usinggenome-edited iPSC-derived cardiomyocytes. JCI Insight 2019;4. 9. Fang X, Bogomolovas J, Wu T et al.Loss-of-function mutations in co-chaperone BAG3 destabilize small HSPs andcause cardiomyopathy. J Clin Invest 2017;127:3189-3200. 10. Myers VD, Tomar D, Madesh M et al.Haplo-insufficiency of Bcl2-associated athanogene 3 in mice results inprogressive left ventricular dysfunction, beta-adrenergic insensitivity, andincreased apoptosis. J Cell Physiol 2018;233:6319-6326. 11. Feldman AM, Begay RL, Knezevic T et al.Decreased levels of BAG3 in a family with a rare variant and in idiopathicdilated cardiomyopathy. J Cell Physiol 2014;229:1697-702. 12. Toro R, Perez-Serra A, Campuzano O etal. Familial Dilated Cardiomyopathy Caused by a Novel Frameshift in the BAG3Gene. PLoS One 2016;11:e0158730. 13. Rosati A, Graziano V, De Laurenzi V,Pascale M, Turco MC. BAG3: a multifaceted protein that regulates major cellpathways. Cell Death Dis 2011;2:e141. 14. De Marco M, Basile A, Iorio V et al.Role of BAG3 in cancer progression: A therapeutic opportunity. Semin Cell DevBiol 2018;78:85-92. 15. Sherman MY, Gabai V. The role of Bag3 incell signaling. J Cell Biochem 2021. 16. Hockenbery D, Nunez G, Milliman C,Schreiber RD, Korsmeyer SJ. Bcl-2 is an inner mitochondrial membrane proteinthat blocks programmed cell death. Nature 1990;348:334-6. 17. Feldman AM, Gordon J, Wang J et al. BAG3regulates contractility and Ca(2+) homeostasis in adult mouse ventricularmyocytes. J Mol Cell Cardiol 2016;92:10-20. 18. Martin TG, Tawfik S, Moravec CS, Pak TR,Kirk JA. BAG3 Expression and Sarcomere Localization in the Human Heart areLinked to HSF-1 and are Differentially Affected by Sex and Disease. Am JPhysiol Heart Circ Physiol 2021. 19. Kimura K, Ooms A, Graf-Riesen K et al.Overexpression of human BAG3(P209L) in mice causes restrictive cardiomyopathy.Nat Commun 2021;12:3575. 20. Shy M, Rebelo AP, Feely SM et al.Mutations in BAG3 cause adult-onset Charcot-Marie-Tooth disease. J NeurolNeurosurg Psychiatry 2018;89:313-315. 21. Quintana MT, Parry TL, He J et al.Cardiomyocyte-Specific Human Bcl2-Associated Anthanogene 3 P209L ExpressionInduces Mitochondrial Fragmentation, Bcl2-Associated Anthanogene 3Haploinsufficiency, and Activates p38 Signaling. Am J Pathol2016;186:1989-2007. 22. Fang X, Bogomolovas J, Zhou PS et al.P209L mutation in Bag3 does not cause cardiomyopathy in mice. Am J PhysiolHeart Circ Physiol 2019;316:H392-H399. 23. Bristow MR, Minobe WA, Raynolds MV etal. Reduced beta 1 receptor messenger RNA abundance in the failing human heart.J Clin Invest 1993;92:2737-45. 24. Li YY, Feldman AM, Sun Y, McTiernan CF.Differential expression of tissue inhibitors of metalloproteinases in thefailing human heart. Circulation 1998;98:1728-34. 25. Huang DW, Sherman BT, Tan Q et al. DAVIDBioinformatics Resources: expanded annotation database and novel algorithms tobetter extract biology from large gene lists. Nucleic Acids Res2007;35:W169-75. 26. Huang da W, Sherman BT, Lempicki RA.Systematic and integrative analysis of large gene lists using DAVIDbioinformatics resources. Nat Protoc 2009;4:44-57. 27. Su F, Myers VD, Knezevic T et al.Bcl-2-associated athanogene 3 protects the heart from ischemia / reperfusioninjury. JCI Insight 2016;1:e90931. 28. Zhou YY, Wang SQ, Zhu WZ et al. Cultureand adenoviral infection of adult mouse cardiac myocytes: methods for cellulargenetic physiology. Am J Physiol Heart Circ Physiol 2000;279:H429-36. 29. Song J, Zhang XQ, Wang J et al.Regulation of cardiac myocyte contractility by phospholemman: Na+ / Ca2+ exchangeversus Na+ -K+ -ATPase. Am J Physiol Heart Circ Physiol 2008;295:H1615-25. 30. Wang J, Gao E, Rabinowitz J et al.Regulation of in vivo cardiac contractility by phospholemman: role of Na+ / Ca2+exchange. Am J Physiol Heart Circ Physiol 2011;300:H859-68. 31. Zhu W, Tilley DG, Myers VD, Coleman RC,Feldman AM. Arginine vasopressin enhances cell survival via a G protein-coupledreceptor kinase 2 / beta-arrestin1 / extracellular-regulated kinase 1 / 2-dependentpathway in H9c2 cells. Mol Pharmacol 2013;84:227-35. 32. Tilley DG, Zhu W, Myers VD et al.beta-adrenergic receptor-mediated cardiac contractility is inhibited viavasopressin type 1A-receptor-dependent signaling. Circulation 2014;130:1800-11. 33. Cheung JY, Thompson IG, Bonventre JV.Effects of extracellular calcium removal and anoxia on isolated rat myocytes.Am J Physiol 1982;243:C184-90. 34. Tucker AL, Song J, Zhang XQ et al. Alteredcontractility and [Ca2+]i homeostasis in phospholemman-deficient murinemyocytes: role of Na+ / Ca2+ exchange. Am J Physiol Heart Circ Physiol2006;291:H2199-209. 35. Miller BA, Hoffman NE, Merali S et al.TRPM2 channels protect against cardiac ischemia-reperfusion injury: role ofmitochondria. J Biol Chem 2014;289:7615-29. 36. Kirichok Y, Krapivinsky G, Clapham DE.The mitochondrial calcium uniporter is a highly selective ion channel. Nature2004;427:360-4. 37. Hoffman NE, Chandramoorthy HC,Shamugapriya S et al. MICU1 motifs define mitochondrial calcium uniporterbinding and activity. Cell Rep 2013;5:1576-1588. 38. Fang X, Bogomolovas J, Trexler C, ChenJ. The BAG3-dependent and -independent roles of cardiac small heat shockproteins. JCI Insight 2019;4. 39. Tahrir FG, Knezevic T, Gupta MK et al.Evidence for the Role of BAG3 in Mitochondrial Quality Control inCardiomyocytes. J Cell Physiol 2017;232:797-805. 40. Liu G, Zou H, Luo T et al.Caspase-Dependent and Caspase-Independent Pathways Are Involved inCadmium-Induced Apoptosis in Primary Rat Proximal Tubular Cell Culture. PLoSOne 2016;11:e0166823. 41. Mastrocola R, Aragno M, Alloatti G,Collino M, Penna C, Pagliaro P. Metaflammation: Tissue-Specific Alterations ofthe NLRP3 Inflammasome Platform in Metabolic Syndrome. Curr Med Chem2018;25:1294-1310. 42. Mashimo M, Bu X, Aoyama K et al. PARP1inhibition alleviates injury in ARH3-deficient mice and human cells. JCIInsight 2019;4. 43. Romero-Becerra R, Santamans AM,Folgueira C, Sabio G. p38 MAPK Pathway in the Heart: New Insights in Health andDisease. Int J Mol Sci 2020;21. 44. Green LC, Anthony SR, Slone S et al.Human antigen R as a therapeutic target in pathological cardiac hypertrophy.JCI Insight 2019;4. 45. Krishnamurthy P, Lambers E, Verma S etal. Myocardial knockdown of mRNA-stabilizing protein HuR attenuates post-MIinflammatory response and left ventricular dysfunction in IL-10-null mice.FASEB J 2010;24:2484-94. 46. Mammucari C, Gherardi G, Rizzuto R.Structure, Activity Regulation, and Role of the Mitochondrial Calcium Uniporterin Health and Disease. Front Oncol 2017;7:139. 47. Doukhanina EV, Chen S, van der Zalm E,Godzik A, Reed J, Dickman MB. Identification and functional characterization ofthe BAG protein family in Arabidopsis thaliana. J Biol Chem 2006;281:18793-801. 48. Haudek SB, Taffet GE, Schneider MD, MannDL. TNF provokes cardiomyocyte apoptosis and cardiac remodeling throughactivation of multiple cell death pathways. J Clin Invest 2007;117:2692-701. 49. Zhang J, Webster JD, Dugger DL et al.Ubiquitin Ligases cIAP1 and cIAP2 Limit Cell Death to Prevent Inflammation.Cell Rep 2019;27:2679-2689 e3. 50. Siddiqui WA, Ahad A, Ahsan H. Themystery of BCL2 family: Bcl-2 proteins and apoptosis: an update. Arch Toxicol2015;89:289-317. 51. Baumgartner HK, Gerasimenko JV, Thorne Cet al. Caspase-8-mediated apoptosis induced by oxidative stress is independentof the intrinsic pathway and dependent on cathepsins. Am J Physiol GastrointestLiver Physiol 2007;293:G296-307. 52. Kruidering M, Evan GI. Caspase-8 inapoptosis: the beginning of "the end"? IUBMB Life 2000;50:85-90. 53. Obexer P, Ausserlechner MJ. X-linkedinhibitor of apoptosis protein - a critical death resistance regulator andtherapeutic target for personalized cancer therapy. Front Oncol 2014;4:197. 54. Kearney CJ, Sheridan C, Cullen SP et al.Inhibitor of apoptosis proteins (IAPs) and their antagonists regulatespontaneous and tumor necrosis factor (TNF)-induced proinflammatory cytokineand chemokine production. J Biol Chem 2013;288:4878-90. 55. Brenner D, Blaser H, Mak TW. Regulationof tumour necrosis factor signalling: live or let die. Nat Rev Immunol2015;15:362-74. 56. Liu T, O'Rourke B. Regulation ofmitochondrial Ca2+ and its effects on energetics and redox balance in normaland failing heart. J Bioenerg Biomembr 2009;41:127-32. 57. Maack C, Cortassa S, Aon MA, Ganesan AN,Liu T, O'Rourke B. Elevated cytosolic Na+ decreases mitochondrial Ca2+ uptakeduring excitation-contraction coupling and impairs energetic adaptation incardiac myocytes. Circ Res 2006;99:172-82. 58. Liu T, Yang N, Sidor A, O'Rourke B. MCUOverexpression Rescues Inotropy and Reverses Heart Failure by Reducing SRCa(2+) Leak. Circ Res 2021;128:1191-1204. 59. Tang Y, Wu Y. Decreased ATP productionduring mitochondrial calcium uniporter inhibition enhances autophagy andmitophagy to provide cardioprotection in cardiac failure. Int J Cardiol2019;282:67. 60. Yu Z, Chen R, Li M et al. Mitochondrialcalcium uniporter inhibition provides cardioprotection in pressureoverload-induced heart failure through autophagy enhancement. Int J Cardiol2018;271:161-168. 61. Langenbacher AD, Shimizu H, Hsu W et al.Mitochondrial Calcium Uniporter Deficiency in Zebrafish Causes CardiomyopathyWith Arrhythmia. Front Physiol 2020;11:617492. 62. Suarez J, Cividini F, Scott BT et al.Restoring mitochondrial calcium uniporter expression in diabetic mouse heartimproves mitochondrial calcium handling and cardiac function. J Biol Chem2018;293:8182-8195. 63. Garbincius JF, Elrod JW. Is the FailingHeart Starved of Mitochondrial Calcium? Circ Res 2021;128:1205-1207. 64. Pan X, Liu J, Nguyen T et al. Thephysiological role of mitochondrial calcium revealed by mice lacking themitochondrial calcium uniporter. Nat Cell Biol 2013;15:1464-72. 65. Huang SC, Vu LV, Yu FH, Nguyen DT, BenzEJ, Jr. Multifunctional protein 4.1R regulates the asymmetric segregation of Numb during terminal erythroid maturation. J Biol Chem 2021;297:101051.
[0173] [Government support] This invention was made with Government support under Grant Nos. HL091799 and HL123093 awarded by the National Institutes of Health. The Government has certain rights in this invention.
Claims
1. A formulation for lowering, inhibiting, or reducing TNF signaling in a patient, comprising a BCL2-associated asanogene 3 (BAG3)-encoding nucleic acid, a BAG3 protein, or a BAG3 peptide.
2. A formulation for treating a patient suffering from or at risk of developing inflammation, comprising an agent that modulates the expression or amount of a BCL2-associated asanogene 3 (BAG3)-encoding nucleic acid, a BAG3 protein, or a BAG3 peptide.
3. A formulation for reducing, inhibiting, or decreasing inflammation or an inflammatory response in a patient, comprising a BCL2-associated asanogene 3 (BAG3)-encoding nucleic acid, a BAG3 protein, or a BAG3 peptide.
4. 10. The formulation of claim 1, wherein the TNF signaling occurs in the pulmonary system, lungs, cardiovascular system, central nervous system, bone, skeletal joints, skeletal muscle, gastrointestinal system, stomach, small intestine, large intestine, liver, kidney, or pancreas.
5. 3. The formulation of claim 2, wherein the inflammation affects the pulmonary system, lungs, cardiovascular system, central nervous system, bone, skeletal joints, skeletal muscle, gastrointestinal system, stomach, small intestine, large intestine, liver, kidney, or pancreas.
6. The formulation of claim 3, wherein the inflammation or inflammatory response affects the pulmonary system, lungs, cardiovascular system, central nervous system, bone, skeletal joints, skeletal muscle, gastrointestinal system, stomach, small intestine, large intestine, liver, kidney, or pancreas.
7. The formulation of claim 2, wherein the inflammation comprises chronic inflammatory disease, chronic inflammatory demyelinating polyneuropathy, primary immune thrombocytopenia, geriatric eating disorder, intestinal inflammation, inflammatory bowel disease, ulcerative colitis, Crohn's disease, lupus, rheumatoid arthritis, chronic myocarditis, chronic myocarditis after COVID-19 infection, psoriasis, psoriatic arthritis, or ankylosing spondylitis.
8. The formulation of claim 3, wherein the inflammation or inflammatory response comprises chronic inflammatory disease, chronic inflammatory demyelinating polyneuropathy, primary immune thrombocytopenia, geriatric eating disorder, intestinal inflammation, inflammatory bowel disease, ulcerative colitis, Crohn's disease, lupus, rheumatoid arthritis, chronic myocarditis, chronic myocarditis after COVID-19 infection, psoriasis, psoriatic arthritis, or ankylosing spondylitis.
9. A formulation for modulating PARP1 levels, expression, or activity in a patient, comprising a BCL2-associated asanogene 3 (BAG3)-encoding nucleic acid, a BAG3 protein, or a BAG3 peptide.
10. A formulation for lowering, inhibiting, or decreasing PARP1 levels, expression, or activity in a patient, comprising a BCL2-associated asanogene 3 (BAG3)-encoding nucleic acid, a BAG3 protein, or a BAG3 peptide.
11. A formulation for lowering, inhibiting, decreasing, or stabilizing the amount of alpha-synuclein in a patient, comprising a BCL2-associated asanogene 3 (BAG3)-encoding nucleic acid, a BAG3 protein, or a BAG3 peptide.
12. A formulation for reducing, inhibiting, or decreasing the worsening or severity of one or more symptoms of Parkinson's disease in a patient, comprising a BCL2-associated asanogene 3 (BAG3)-encoding nucleic acid, a BAG3 protein, or a BAG3 peptide.
13. The formulation of any one of claims 1 to 12, wherein the BAG3-encoding nucleic acid comprises an expression vector that expresses a BAG3 protein or an active BAG3 peptide thereof.
14. 14. The formulation of claim 13, wherein the expression vector further comprises a promoter, wherein the promoter comprises an inducible promoter, a constitutive promoter, a bicistronic promoter, a tissue-specific promoter, or a cardiac-specific promoter.
15. 14. The formulation of claim 13, wherein the expression vector comprises a viral vector, a cardiotropic vector, a plasmid, or a yeast vector.
16. The formulation of claim 15, wherein the viral vector or the cardiotropic vector comprises an adenovirus vector, an adeno-associated virus (AAV) vector, a coxsackievirus vector, a cytomegalovirus vector, an Epstein-Barr virus vector, a parvovirus vector, or a hepatitis virus vector.
17. 17. The formulation of claim 16, wherein the AAV vector comprises a capsid protein having 90% or more sequence identity to any of AAV1, AAV2, AAV3, AAV4, AAV5, AAV6, AAV7, AAV8, AAV9, AAV10, AAV11, or AAV12.
18. The formulation of claim 14, wherein the expression vector is a pseudotyped viral vector.
19. The formulation of claim 2 , wherein the inflammation is induced or increased by cytokines.
20. The formulation of claim 3, wherein the inflammation or inflammatory response is induced or increased by a cytokine.
21. 21. The formulation of claim 19 or 20, wherein the cytokine comprises tumor necrosis factor (TNF).
22. 13. The formulation of any one of claims 1 to 12, wherein the patient expresses lower than normal levels of BAG3 in tissues or organs or does not detectably express or produce functional BAG3.
23. 3. The formulation of claim 2, wherein the inflammation occurs in the pulmonary system, lungs, cardiovascular system, central nervous system, bone, skeletal joints, skeletal muscle, gastrointestinal system, stomach, small intestine, large intestine, liver, kidney, or pancreas.
24. The formulation of claim 3, wherein the inflammation or inflammatory response occurs in the pulmonary system, lungs, cardiovascular system, central nervous system, bone, skeletal joints, skeletal muscle, gastrointestinal system, stomach, small intestine, large intestine, liver, kidney, or pancreas.
25. The formulation of claim 13 , wherein the expression vector further comprises a promoter.
26. 26. The formulation of claim 25, wherein the promoter confers expression in the pulmonary system, lung, cardiovascular system, central nervous system, bone, skeletal joint, skeletal muscle, gastrointestinal system, stomach, small intestine, large intestine, liver, kidney, or pancreas.
27. 14. The formulation of claim 13, wherein the expression vector further comprises AAV inverted terminal repeats (ITRs).
28. The formulation of claim 13 , wherein the expression vector further comprises a polyadenylation sequence and / or a stop codon.
29. The formulation of any one of claims 1 to 12, wherein the patient is a human.
30. The formulation of any one of claims 1 to 12, wherein the patient has a mutation in an endogenous BAG3 polynucleotide or polypeptide.
31. The formulation of any one of claims 1 to 12, wherein the patient has reduced expression or activity of endogenous BAG3 polynucleotide or polypeptide.
32. The viral vector is 0.1 × 10 12 Vector genomes (vg) / kilogram patient weight (vg / kg) ∼1.0 x 10 14 16. The formulation according to claim 15, characterized in that it is used to be administered at a dose of 1000 mg / kg.
33. The viral vector is 1.0 × 10 12 vg / kg~0.5×10 14 16. The formulation according to claim 15, characterized in that it is used to be administered at a dose of 1000 mg / kg.
34. The viral vector is 3.0 × 10 12 vg / kg~1.0×10 13 16. The formulation according to claim 15, characterized in that it is used to be administered at a dose of 1000 mg / kg.
35. The viral vector is 3.0 × 10 12 vg / kg~9.0×10 12 16. The formulation according to claim 15, characterized in that it is used to be administered at a dose of 1000 mg / kg.
36. The viral vector is 3.0 × 10 12 vg / kg~8.0×10 12 16. The formulation according to claim 15, characterized in that it is used to be administered at a dose of 1000 mg / kg.
37. The viral vector is 3.0 × 10 12 vg / kg~5.0×10 12 16. The formulation according to claim 15, characterized in that it is used to be administered at a dose of 1000 mg / kg.