EP4599063A1 - Methods and materials for using pim1 inhibitors - Google Patents
Methods and materials for using pim1 inhibitorsInfo
- Publication number
- EP4599063A1 EP4599063A1 EP23875422.0A EP23875422A EP4599063A1 EP 4599063 A1 EP4599063 A1 EP 4599063A1 EP 23875422 A EP23875422 A EP 23875422A EP 4599063 A1 EP4599063 A1 EP 4599063A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- polypeptide
- pim1
- mammal
- polypeptides
- ipf
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Pending
Links
Classifications
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P11/00—Drugs for disorders of the respiratory system
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K31/00—Medicinal preparations containing organic active ingredients
- A61K31/075—Ethers or acetals
- A61K31/085—Ethers or acetals having an ether linkage to aromatic ring nuclear carbon
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K31/00—Medicinal preparations containing organic active ingredients
- A61K31/33—Heterocyclic compounds
- A61K31/335—Heterocyclic compounds having oxygen as the only ring hetero atom, e.g. fungichromin
- A61K31/35—Heterocyclic compounds having oxygen as the only ring hetero atom, e.g. fungichromin having six-membered rings with one oxygen as the only ring hetero atom
- A61K31/352—Heterocyclic compounds having oxygen as the only ring hetero atom, e.g. fungichromin having six-membered rings with one oxygen as the only ring hetero atom condensed with carbocyclic rings, e.g. methantheline
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K31/00—Medicinal preparations containing organic active ingredients
- A61K31/33—Heterocyclic compounds
- A61K31/335—Heterocyclic compounds having oxygen as the only ring hetero atom, e.g. fungichromin
- A61K31/35—Heterocyclic compounds having oxygen as the only ring hetero atom, e.g. fungichromin having six-membered rings with one oxygen as the only ring hetero atom
- A61K31/352—Heterocyclic compounds having oxygen as the only ring hetero atom, e.g. fungichromin having six-membered rings with one oxygen as the only ring hetero atom condensed with carbocyclic rings, e.g. methantheline
- A61K31/353—3,4-Dihydrobenzopyrans, e.g. chroman, catechin
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K31/00—Medicinal preparations containing organic active ingredients
- A61K31/33—Heterocyclic compounds
- A61K31/395—Heterocyclic compounds having nitrogen as a ring hetero atom, e.g. guanethidine or rifamycins
- A61K31/41—Heterocyclic compounds having nitrogen as a ring hetero atom, e.g. guanethidine or rifamycins having five-membered rings with two or more ring hetero atoms, at least one of which being nitrogen, e.g. tetrazole
- A61K31/425—Thiazoles
- A61K31/426—1,3-Thiazoles
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K31/00—Medicinal preparations containing organic active ingredients
- A61K31/33—Heterocyclic compounds
- A61K31/395—Heterocyclic compounds having nitrogen as a ring hetero atom, e.g. guanethidine or rifamycins
- A61K31/435—Heterocyclic compounds having nitrogen as a ring hetero atom, e.g. guanethidine or rifamycins having six-membered rings with one nitrogen as the only ring hetero atom
- A61K31/44—Non condensed pyridines; Hydrogenated derivatives thereof
- A61K31/445—Non condensed piperidines, e.g. piperocaine
- A61K31/4523—Non condensed piperidines, e.g. piperocaine containing further heterocyclic ring systems
- A61K31/454—Non condensed piperidines, e.g. piperocaine containing further heterocyclic ring systems containing a five-membered ring with nitrogen as a ring hetero atom, e.g. pimozide, domperidone
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K31/00—Medicinal preparations containing organic active ingredients
- A61K31/33—Heterocyclic compounds
- A61K31/395—Heterocyclic compounds having nitrogen as a ring hetero atom, e.g. guanethidine or rifamycins
- A61K31/495—Heterocyclic compounds having nitrogen as a ring hetero atom, e.g. guanethidine or rifamycins having six-membered rings with two or more nitrogen atoms as the only ring heteroatoms, e.g. piperazine or tetrazines
- A61K31/50—Pyridazines; Hydrogenated pyridazines
- A61K31/5025—Pyridazines; Hydrogenated pyridazines ortho- or peri-condensed with heterocyclic ring systems
-
- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12N—MICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
- C12N15/00—Mutation or genetic engineering; DNA or RNA concerning genetic engineering, vectors, e.g. plasmids, or their isolation, preparation or purification; Use of hosts therefor
- C12N15/09—Recombinant DNA-technology
- C12N15/11—DNA or RNA fragments; Modified forms thereof; Non-coding nucleic acids having a biological activity
- C12N15/113—Non-coding nucleic acids modulating the expression of genes, e.g. antisense oligonucleotides; Antisense DNA or RNA; Triplex- forming oligonucleotides; Catalytic nucleic acids, e.g. ribozymes; Nucleic acids used in co-suppression or gene silencing
- C12N15/1135—Non-coding nucleic acids modulating the expression of genes, e.g. antisense oligonucleotides; Antisense DNA or RNA; Triplex- forming oligonucleotides; Catalytic nucleic acids, e.g. ribozymes; Nucleic acids used in co-suppression or gene silencing against oncogenes or tumor suppressor genes
-
- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12N—MICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
- C12N2310/00—Structure or type of the nucleic acid
- C12N2310/10—Type of nucleic acid
- C12N2310/14—Type of nucleic acid interfering nucleic acids [NA]
Definitions
- This document relates to methods and materials for treating a mammal (e.g, a human) having a disease or disorder condition associated with an elevated level of a plurality of senescence-associated secretory phenotype (SASP) polypeptides (e.g, a fibrotic condition such as idiopathic pulmonary fibrosis (IPF)).
- a mammal e.g, a human
- a disease or disorder condition associated with an elevated level of a plurality of senescence-associated secretory phenotype (SASP) polypeptides e.g, a fibrotic condition such as idiopathic pulmonary fibrosis (IPF)
- one or more proviral integration site for Moloney murine leukemia virus kinase (PIM1) inhibitors can be administered to a mammal (e.g., a human) to reduce a level of a plurality of SASP polypeptides within a cell type associated with a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides within the mammal.
- PIM1 inhibitors can be administered to a mammal having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF) to treat the mammal.
- the onset of senescence burden can contribute to fibrosis progression (Nemeth et al., Front. Med-Lausanne, 7:2020; Liu et al., Experimental Gerontology, 132:2020; Merkt et al., Semin. Cell. Dev. Biol., 101 : 104-110 (2020); Hohmann et al., Am. J. Respir. Cell. Mol. Biol., 60:28-40 (2019); Schafer et al., Nat. Commun., 8: 14532 (2017); and Lin et al., Front. Cell. Dev. Biol., 8:593283 (2020)).
- IPF interstitial lung disease
- This document provides methods and materials for treating a mammal (e.g., a human) having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF).
- a mammal e.g., a human
- a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides e.g., a fibrotic condition such as IPF.
- one or more PIM1 inhibitors can be administered to a mammal (e.g., a human) to reduce a level of a plurality of SASP polypeptides within a cell type associated with a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides within the mammal (e.g., within fibroblasts of the mammal).
- one or more PIM1 inhibitors can be administered to a mammal having a disease or disorder condition associated an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF) to treat the mammal.
- a disease or disorder condition associated an elevated level of a plurality of SASP polypeptides e.g., a fibrotic condition such as IPF
- PIM1 polypeptides can induce secretion of SASP polypeptides in fibroblasts (e.g., lung fibroblasts) to induce cellular senescence (e.g., premature senescence) in those fibroblasts.
- fibroblasts e.g., lung fibroblasts
- one or more PIM1 inhibitors can reprogram the secretome of senescent fibroblasts to reduce the production of SASP polypeptides and slow the progression of fibrosis in those fibroblasts.
- Having the ability to reduce a level of a plurality of SASP polypeptides within a mammal as described herein provides a unique and unrealized opportunity to slow the progression of fibrosis within cell types associated with a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides within a mammal (e.g., a human) such as a mammal having a fibrotic condition such as IPF.
- a mammal e.g., a human
- a mammal having a fibrotic condition such as IPF.
- one aspect of this document features methods for reducing a level of each of a plurality of SASP polypeptides expressed by a cell type present within a mammal.
- the methods can include, or consist essentially of, (a) identifying a mammal as having the presence of a cell type associated with a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides, (b) identifying the cell type as expressing the plurality of SASP polypeptides, and (c) administering a PIM1 inhibitor to the mammal, thereby reducing a level of each of the plurality of SASP polypeptides expressed by the cell type.
- the mammal can be a human.
- the mammal can be identified as having fibrosis.
- the mammal can be identified as having IPF.
- the plurality of SASP polypeptides can include at least two polypeptides selected from an interleukin (IL)-6 polypeptide, a chemokine (C-C motif) ligand 2 (CCL2) polypeptide, an IL 10 polypeptide, an IL 16 polypeptide, a C-X-C motif chemokine ligand 2 (CXCL2) polypeptide, an IL 13 polypeptide, a CXCL16 polypeptide, a bone morphogenetic protein 4 (BMP4) polypeptide, a CXCL12 polypeptide, a CX3CL1 polypeptide, a TNF superfamily member 13b (TNFSF13B) polypeptide, a CXCL1 polypeptide, a CXCL8 polypeptide, a TNFSF11 polypeptide, a CCL1 polypeptide, a transforming growth factor beta 2 (TGFB2) polypeptide, a CCL11 polypeptide,
- the cell type can be a fibroblast cell type.
- the cell type can be a lung fibroblast cell type.
- the PIM1 inhibitor can inhibit PIM1 polypeptide expression.
- the PIM1 inhibitor can be a nucleic acid molecule designed to induce RNA interference of the PIM1 polypeptide expression.
- the PIM1 inhibitor can inhibit PIM1 polypeptide activity.
- the PIM1 inhibitor can be TCS, SMI- 4a, AZDI 208, epigallocatechin gallate (EGCG), quercetin, fisetin, luteolin, quercetagetin, TP-3654, or SMI- 16a.
- the method can include detecting a reduction in a level of each of the plurality of SASP polypeptides expressed by the cell type following the administering step.
- the PIM1 inhibitor can be selected from the group consisting of LGH447, TP- 3654, Uzansertib, ETP-339, IBL-100, and LGB-321. In some cases, the PIM1 inhibitor can be selected from the group consisting of BLX-0676, IBL-202, IBL-101, SAR-413792, and RF-1302. 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 pertains. Although methods and materials similar or equivalent to those described herein can be used to practice the invention, suitable methods and materials are described below. All publications, patent applications, patents, and other references mentioned herein are incorporated by reference in their entirety. In case of conflict, the present specification, including definitions, will control. In addition, the materials, methods, and examples are illustrative only and not intended to be limiting.
- Figures 1 A - 1C A PIM1 polypeptide regulates phosphorylation and activity of p65/RelA.
- Figure 1 A Non-IPF adult lung fibroblasts were transfected with non-targeting (NT) siRNA or siRNA targeting PIM1 for 72 hours. 15 minutes prior to collecting total cell protein for western blot analysis the indicated wells were stimulated with 50 ng/mL TNF-a. A representative image is shown, and band density for three independent experiments was quantified (* p ⁇ 0.05, ** p ⁇ 0.01 vs. the indicated group).
- Figure IB Non-IPF adult lung fibroblasts were transfected with NT siRNA or siRNA targeting PIM1 for 72 hours.
- FIGS 2A - 2C Senescent IPF patient-derived lung fibroblasts express spontaneously elevated PIM1 and p65/Rel phosphorylation.
- Figure 2B Lung fibroblasts from non-IPF or IPF donors were cultured for 24 hours in the absence of serum prior to RNA isolation and qPCR analysis. RNA transcript levels were quantified relative to the same representative non-IPF sample, using GAPDH as a housekeeping gene.
- N 4 non-IPF and 7 IPF biologically independent samples (* p ⁇ 0.05, ** p ⁇ 0.01 vs. non-IPF).
- Figure 2C Lung fibroblasts from non-IPF or IPF donors were stained for SA-P-gal staining as a marker of cellular senescence. Representative examples for non-IPF and IPF are shown.
- Figures 3 A - 3D PIM1/NF-KB and IL6/JAK2/STAT3 form a positive feedback loop.
- Figure 3B IPF patient-derived lung fibroblasts were cultured for 24 hours in the presence of an IL6 neutralizing antibody (IL6 Nab, 10 pg/mL), a JAK2 inhibitor (AZD 1480, 10 pM), or a STAT3 inhibitor (LLL12, 1
- IPF patient- derive lung fibroblasts were transfected with NT siRNA or siRNA targeting PIM1 for 72 hours prior to collecting whole cell protein for western blot analysis. Representative images are shown, and band density for three independent experiments was quantified (** p ⁇ 0.01 vs. the NT control group).
- FIG. 3D An exemplary positive feedback model.
- PIM1 phosphorylates p65/RelA, supporting NF-KB transcriptional activity which stimulates IL6 synthesis.
- IL6 signals though its receptor system and JAK2/STAT3 to transcribe PIMP
- FIGs 4A - 4B PIM1 can regulate expression of a broad range of cytokines and chemokines.
- Figure 4A IPF patient-derived lung fibroblasts were treated for 24 hours with PIM1 inhibitor (TCS, 3pM). RNA was isolated and a PCR profiler measuring expression of 84 cytokines and chemokines was performed, amplifying the cDNA 40 cycles, detecting 49 genes. RNA transcript levels were calculated and plotted to a heatmap by normalizing all samples relative to the average delta Ct for the two control treated samples, using GAPDH as a housekeeping gene. Genes were ranked by the average change in the two TCS treated samples.
- Figure 4B IPF patient-derived lung fibroblasts were treated for 24 hours with PIM1 inhibitor (TCS, 3pM). RNA was isolated and a PCR profiler measuring expression of 84 cytokines and chemokines was performed, amplifying the cDNA 40 cycles, detecting 49 genes. RNA transcript levels were calculated and plotted to
- RNA transcript levels in the TCS treated group were quantified relative to their respective control, using GAPDH as a housekeeping gene.
- N 3 biologically independent and experimentally independent experiments (** /? ⁇ 0.01, *** p ⁇ 0.001, **** p ⁇ 0.0001 vs. the control treated groups).
- FIGs 5 A - 5C PIM1 can regulate secretion of GRO, IL6, MCP-1 and MCP-3.
- IPF patient-derived lung fibroblasts were treated for 24 hours with PIM1 inhibitor (TCS, 3 pM) in media without fetal bovine serum (FBS). After incubation, conditioned media was collected and assessed by a cytokine immuno-array.
- Figure 5A Representative images of the cytokine array from control and TCS treated samples. +/- controls labeled along with the 6 cytokines exhibiting the strongest signal intensity.
- FIGS. 6C and 6E qPCR analysis from three independent experiments comparing gene expression between lenti-control and lenti-PIMl fibroblasts (* p ⁇ 0.05, ** p ⁇ 0.01, *** p ⁇ 0.01 vs. the lenti-control group).
- Figure 6D Lenti-control and lenti-PIMl expressing fibroblasts were cultured for 0 and 4 days and then stained for DAPI and quantified using automated imaging software. Representative images are shown for the number of DAPI objects (nuclei) on day 4.
- Quantification of three independent experiments plots the number of cells in each field of view, for each cell line, relative to the number of cells in each field of view immediately after the cells attached (day 0) (** p ⁇ 0.01 vs. the lenti-control group). Scale bar represents 200 pm.
- Figure 6F SA-0-gal staining comparing lenti-control vs. lenti-PIMl lung fibroblasts as the progress through cell culture passages 4-8. Representative images comparing fibroblasts at passage 8. Data were automated quantification of SA-P-gal positive cells relative to the total number of cells in each field of view from three independent experiments (** p ⁇ 0.01, **** p ⁇ 0.0001 vs. the lenti-control group). Scale bar represents 100 pm.
- Non-IPF adult lung fibroblasts were transfected with NT siRNA or siRNA targeting PIMP RNA was collected for qPCR analyses.
- N 3 independent experiments (*** p ⁇ 0.001 vs. NT siRNA).
- FIG. 8 Correlation comparisons between PIM1 and senescence associated genes.
- Lung fibroblasts from non-IPF or IPF donors were cultured for 24 hours in the absence of serum prior to RNA isolation and qPCR analysis.
- RNA transcript levels were quantified relative to the same representative non-IPF sample, using GAPDH as a housekeeping gene.
- N 4 non-IPF and 7 IPF biologically independent samples. These are the same data shown in Fig. 2B, set as XY correlations between two genes. Lighter gray datapoints are non-IPF and darker gray datapoints are IPF-patient derived.
- FIGS 9A - 9C TCS is non-cytotoxic at concentrations used in these studies.
- Figure 9 A IPF patient-derived lung fibroblasts were treated for 24 hours with TCS (3pM) or staurosporine (Staur, 1 pM (positive control for apoptosis)) prior to staining with a LIVE/DEAD assay. Representative images are shown.
- Figure 9C Dose-response curves up to 100 pM for TCS.
- FIGs 10A - 10B Selectivity of three previously established PIM kinase inhibitors.
- IPF patient-derived lung fibroblasts were cultured for 24 hours with PIM1 inhibitor (TCS - 3 pM, SMI-4a (SMI) - 10 pM, or the pan-PIM kinase inhibitor: AZD1208 (AZD) - 10 pM) for 24 hours prior to RNA isolation and qPCR analysis.
- RNA transcript levels were quantified relative to the DMSO treated control, using GAPDH as a housekeeping gene.
- N 4 biologically independent and experimentally independent experiments (**** p ⁇ 0.0001 vs. the control group).
- Figure 10B Selectivity of three previously established PIM kinase inhibitors.
- IPF patient-derived lung fibroblasts were cultured for 24 hours with PIM1 inhibitor (TCS - 3 pM, SMI-4a (SMI) - 10 pM, or the pan-PIM kinase
- RNA transcript levels are quantified relative to their NT control, using GAPDH as a housekeeping gene.
- N 3 independent experiments (***** p ⁇ 0.0001 vs. the indicated group).
- FIGs 11 A-B Ex vivo treatment with a Pirn kinase inhibitor reduces expression of IL-6 and CCL2 in lung slices from aged mice.
- Figure 11 A Experimental design: lungs from 2-month-old (young) and 22-month-old (aged) mice were collected, inflated with gelatin, and sliced using a vibratome to generate 300 pm thick “precision cut lung slices.” Lung slices were then cultured for 72 hours ex vivo without or without 3 pM TCS PIM-1 1 (TCS).
- TCS PIM-1 1 TCS
- Figure 12A-B Clinically tested Pirn kinase inhibitors reduce expression of age- related inflammation associated soluble factors in senescent adult lung fibroblasts.
- Figure 12A Published pharmacological characteristics of two clinically tested Pirn kinase inhibitors. TP-3654 and LGH447 inhibit Piml, Pim2, and Pim3.
- FIG. 13A-C Pirn kinase inhibitor reduces markers of age-related inflammation from multiple organs.
- Figure 13A Experimental design: 2-month-old (young) and 22- month-old (aged) mice were treated for 5-days, once daily orally delivered LGH447 (30 mg/kg).
- This document provides methods and materials for treating a mammal (e.g., a human) having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides e.g., a fibrotic condition such as IPF).
- a mammal e.g., a human
- one or more PIM1 inhibitors can be administered to a mammal (e.g, a human) to reduce a level of a plurality of polypeptides within a cell type associated with a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides within the mammal (e.g, within fibroblasts of the mammal).
- one or more PIM1 inhibitors can be administered to a mammal having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g, a fibrotic condition such as IPF) to treat the mammal.
- a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides e.g, a fibrotic condition such as IPF
- elevated level refers to any level that is higher than a reference level of that SASP polypeptide.
- reference level refers to the level of the polypeptide (or mRNA) typically observed in a control sample.
- Control samples are samples obtained from humans that do not have a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF) such as young, healthy humans.
- SASP polypeptides that can be elevated within a cell type associated with a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides include, without limitation, IL6 polypeptides, CCL2 polypeptides, IL 10 polypeptides, IL 16 polypeptides, CXCL2 polypeptides, IL 13 polypeptides, CXCL16 polypeptides, BMP4 polypeptides, CXCL12 polypeptides, CX3CL1 polypeptides, TNFSF13B polypeptides, CXCL1 polypeptides, CXCL8 polypeptides, TNFSF11 polypeptides, CCL1 polypeptides, TGFB2 polypeptides, CCL11 polypeptides, CCL13 polypeptides, TNFSF10 polypeptides, CXCL10 polypeptides, and CCL2 polypeptides.
- one or more PIM1 inhibitors can be administered to a mammal (e.g, a human) to reduce a level of a plurality of SASP polypeptides within a cell type associated with a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides within the mammal (e.g., within fibroblasts of the mammal).
- a mammal e.g, a human
- reduce a level of a plurality of SASP polypeptides within a cell type associated with a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides within the mammal e.g., within fibroblasts of the mammal.
- one or more PIM1 inhibitors can be administered to a mammal (e.g., a human) in need thereof (e.g, a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF) to reduce a level of a plurality of SASP polypeptides within a cell type associated with a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides within the mammal.
- a mammal e.g., a human
- a mammal e.g., a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF) to reduce a level of a plurality of SASP polypeptides within a cell type associated with a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides within the
- SASP polypeptides that can be reduced within a cell type associated with a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides within the mammal by administering one or more PIM1 inhibitors include, without limitation, IL6 polypeptides, CCL2 polypeptides, IL 10 polypeptides, IL 16 polypeptides, CXCL2 polypeptides, IL 13 polypeptides, CXCL16 polypeptides, BMP4 polypeptides, CXCL12 polypeptides, CX3CL1 polypeptides, TNFSF13B polypeptides, CXCL1 polypeptides, CXCL8 polypeptides, TNFSF11 polypeptides, CCL1 polypeptides, TGFB2 polypeptides, CCL11 polypeptides, CCL13 polypeptides, TNFSF10 polypeptides, CXCL10 polypeptides, and CCL2 polypeptides.
- IL6 polypeptides CCL
- One or more PIM1 inhibitors can be used to reduce a level of a plurality of SASP polypeptides within any appropriate type of cell within a mammal.
- types of cells that one or more PIM1 inhibitors can be used to reduce a level of a plurality of SASP polypeptides within include, without limitation, fibroblasts (e.g., lung fibroblasts), endothelial cells, epithelial cells, leukocytes, adipocytes, osteoblasts, osteoclasts, glial cells, astrocytes, neurons, and keratinocytes.
- a reduced level of a SASP polypeptide in a mammal refers to any level that is lower than the level of that SASP polypeptide observed in that mammal prior to being treated as described herein (e.g., by administering one or more PIM1 inhibitors).
- a reduced level of a SASP polypeptide can be a level that is at least 5 percent (e.g., at least 10, at least 15, at least 20, at least 25, at least 35, at least 50, at least 75, at least 100, or at least 150 percent) lower than the level of that SASP polypeptide prior to being treated as described herein.
- a reduced level of a SASP polypeptide can be a level that is at least 1.5 fold (e.g., about 1.5 fold, about 2 fold, about 2.5 fold, about 3 fold, about 3.5 fold, about 4 fold, about 5 fold, about 6 fold, or more) less than the level of that SASP polypeptide prior to being treated as described herein. It will be appreciated that levels from comparable samples are used when determining whether or not a particular level is a reduced level.
- one or more PIM1 inhibitors can be administered to a mammal (e.g., a human) in need thereof (e.g., a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF)) to reduce a level of a plurality of inflammatory cytokines within a cell type associated with a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides within the mammal (e.g., within fibroblasts of the mammal).
- a mammal e.g., a human in need thereof
- a mammal e.g., a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF)
- a mammal e.g., a human having a disease or disorder condition associated with an elevated level
- an inflammatory cytokine that can be reduced within a cell type associated with a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides within a mammal having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g, a fibrotic condition such as IPF) after one or more PIM1 inhibitors were administered to the mammal can be a chemokine.
- an inflammatory cytokine that can be reduced in a mammal having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g, a fibrotic condition such as IPF) after one or more PIM1 inhibitors were administered to the mammal can be an interleukin.
- inflammatory cytokines that can be reduced in a mammal having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g, a fibrotic condition such as IPF) as described herein (e.g., by administering one or more PIM1 inhibitors) include, without limitation, IL1 polypeptides, IL6 polypeptides, IL12 polypeptides, IL18 polypeptides, tumor necrosis factor alpha (TNF-a) polypeptides, interferon gamma (IFNy) polypeptides, granulocytemacrophage colony stimulating factor (GM-CSF) polypeptides, CCL2 polypeptides, IL10, IL 16 polypeptides, CXCL2 polypeptides, IL 13 polypeptides, CXCL16 polypeptides, BMP4 polypeptides, CXCL12 polypeptides, CX3CL1 polypeptides, TNFSF13B poly
- one or more PIM1 inhibitors can be administered to a mammal having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF) to reduce the level of one or more inflammatory cytokines within a cell type associated with a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides within the mammal (e.g., within fibroblasts of the mammal) by, for example, 10, 20, 30, 40, 50, 60, 70, 80, 90, 95, or more percent.
- a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides e.g., a fibrotic condition such as IPF
- one or more PIM1 inhibitors can be administered to a mammal having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF) to reduce the level of a plurality of inflammatory cytokines within a cell type associated with a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides within the mammal (e.g., within fibroblasts of the mammal) by, for example, at least 1.5 fold (e.g, about 1.5 fold, about 2 fold, about 2.5 fold, about 3 fold, about 3.5 fold, about 4 fold, about 5 fold, about 6 fold, or more).
- a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides e.g., a fibrotic condition such as IPF
- a fibrotic condition such as IPF
- one or more PIM1 inhibitors can be used to induce apoptosis of cells (e.g, senescent cells) within a mammal (e.g, a mammal such as a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g, a fibrotic condition such as IPF)).
- a mammal e.g, a mammal such as a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g, a fibrotic condition such as IPF)).
- one or more PIM1 inhibitors can be administered to a mammal (e.g, a human) in need thereof (e.g., a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g, a fibrotic condition such as IPF)) to induce apoptosis in senescent cells within the mammal.
- a mammal e.g, a human
- a mammal e.g, a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g, a fibrotic condition such as IPF)
- apoptosis in senescent cells within the mammal.
- Examples of types of cells that can be senescent and that one or more PIM1 inhibitors can be used to induce apoptosis in include, without limitation, fibroblasts (e.g, lung fibroblasts), endothelial cells, epithelial cells, leukocytes, adipocytes, osteoblasts, osteoclasts, glial cells, astrocytes, neurons, and keratinocytes.
- fibroblasts e.g, lung fibroblasts
- endothelial cells e.g, epithelial cells
- leukocytes e.g, adipocytes
- osteoblasts e.g., osteoclasts
- glial cells e.g., glial cells
- astrocytes e.g., astrocytes
- neurons e.g., keratinocytes.
- keratinocytes e.g, keratinocytes.
- one or more PIM1 inhibitors can be used to
- one or more PIM1 inhibitors can be administered to a mammal (e.g., a human) in need thereof (e.g, a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF)) to reduce the number senescent cells within the mammal.
- a mammal e.g., a human
- a mammal e.g., a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF)
- a mammal e.g., a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF)
- one or more PIM1 inhibitors can be effective to reduce the number of senescent cells within a mammal having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF) by, for example, 10, 20, 30, 40, 50, 60, 70, 80, 90, 95, or more percent.
- a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF) by, for example, 10, 20, 30, 40, 50, 60, 70, 80, 90, 95, or more percent.
- one or more PIM1 inhibitors can be effective to reduce the number of senescent cells within a mammal having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF) by, for example, at least 1.5 fold (e.g., about 1.5 fold, about 2 fold, about 2.5 fold, about 3 fold, about 3.5 fold, about 4 fold, about 5 fold, about 6 fold, or more).
- a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides e.g., a fibrotic condition such as IPF
- at least 1.5 fold e.g., about 1.5 fold, about 2 fold, about 2.5 fold, about 3 fold, about 3.5 fold, about 4 fold, about 5 fold, about 6 fold, or more.
- one or more PIM1 inhibitors can be used to reduce of one or more symptoms of a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g, a fibrotic condition such as IPF).
- a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides e.g, a fibrotic condition such as IPF.
- one or more PIM1 inhibitors can be administered to a mammal (e.g, a human) in need thereof (e.g., a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g, a fibrotic condition such as IPF)) to reduce one or more symptoms of the disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g, a fibrotic condition such as IPF).
- a mammal e.g, a human
- a mammal e.g, a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g, a fibrotic condition such as IPF)) to reduce one or more symptoms of the disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g, a fibrotic condition such as IPF).
- a mammal e.g, a
- one or more PIM1 inhibitors can be used to reduce one or more symptoms of a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF) in a mammal having the disease or disorder by, for example, 10, 20, 30, 40, 50, 60, 70, 80, 90, 95, or more percent.
- a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF) in a mammal having the disease or disorder by, for example, 10, 20, 30, 40, 50, 60, 70, 80, 90, 95, or more percent.
- one or more PIM1 inhibitors can be used to reduce one or more symptoms of a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF) in a mammal having the disease or disorder by, for example, at least 1.5 fold (e.g, about 1.5 fold, about 2 fold, about 2.5 fold, about 3 fold, about 3.5 fold, about 4 fold, about 5 fold, about 6 fold, or more).
- a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides e.g., a fibrotic condition such as IPF
- at least 1.5 fold e.g, about 1.5 fold, about 2 fold, about 2.5 fold, about 3 fold, about 3.5 fold, about 4 fold, about 5 fold, about 6 fold, or more.
- one or more PIM1 inhibitors can be used to reduce one or more complications associated with a fibrotic condition.
- one or more PIM1 inhibitors can be administered to a mammal (e.g., a human) in need thereof (e.g, a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF)) to reduce one or more complications associated with the fibrotic condition.
- one or more PIM1 inhibitors can be used to reduce one or more complications associated with a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF) in a mammal having the disease or disorder by, for example, 10, 20, 30, 40, 50, 60, 70, 80, 90, 95, or more percent.
- a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides e.g., a fibrotic condition such as IPF
- one or more PIM1 inhibitors can be used to reduce one or more complications associated with a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF) in a mammal having the disease or disorder by, for example, at least 1.5 fold (e.g, about 1.5 fold, about 2 fold, about 2.5 fold, about 3 fold, about 3.5 fold, about 4 fold, about 5 fold, about 6 fold, or more).
- a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides e.g., a fibrotic condition such as IPF
- at least 1.5 fold e.g, about 1.5 fold, about 2 fold, about 2.5 fold, about 3 fold, about 3.5 fold, about 4 fold, about 5 fold, about 6 fold, or more.
- one or more PIM1 inhibitors can be used to slow the progression of fibrosis in a mammal (e.g, a mammal such as a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g, a fibrotic condition such as IPF)).
- a mammal e.g, a mammal such as a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g, a fibrotic condition such as IPF)).
- one or more PIM1 inhibitors can be administered to a mammal (e.g, a human) in need thereof (e.g, a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g, a fibrotic condition such as IPF)) to slow the progression of fibrosis in the mammal.
- a mammal e.g, a human
- a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides e.g, a fibrotic condition such as IPF
- One or more PIM1 inhibitors can be used to slow the progression of fibrosis in any appropriate tissue within a mammal.
- tissues that can be fibrotic and where the progression of fibrosis can be slowed by one or more PIM1 inhibitors include, without limitation, lung, liver, bile ducts, renal tissue, skin, central nervous system (CNS) arthritic tissue, macular tissue (e.g., macular tissue in a mammal having macular degeneration), and cardiovascular tissue.
- one or more PIM1 inhibitors can be effective to slow the progression of fibrosis in a mammal having fibrosis by, for example, 10, 20, 30, 40, 50, 60, 70, 80, 90, 95, or more percent.
- one or more PIM1 inhibitors can be used to slow the progression of fibrosis in a mammal having fibrosis by, for example, at least 6 months (e.g., about 6 months, about 8 months, about 10 months, about 1 year, about 1.5 years, about 2 years, about 2.5 years, about 3 years, about 4 years, about 5 years, or more).
- at least 6 months e.g., about 6 months, about 8 months, about 10 months, about 1 year, about 1.5 years, about 2 years, about 2.5 years, about 3 years, about 4 years, about 5 years, or more.
- one or more PIM1 inhibitors can be used to increase the survival of a mammal (e.g., a mammal such as a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF)).
- a mammal e.g., a mammal such as a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF)).
- a composition containing one or more PIM1 inhibitors can be administered to a mammal (e.g., a human) in need thereof (e.g., a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF)) to increase the survival of the mammal.
- a mammal e.g., a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF)
- one or more PIM1 inhibitors can be used to increase the survival of a mammal having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g, a fibrotic condition such as IPF) by, for example, 10, 20, 30, 40, 50, 60, 70, 80, 90, 95, or more percent.
- one or more PIM1 inhibitors can be used to reduce inflammation in one or more tissues within a mammal (e.g, a mammal such as a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF)).
- a mammal e.g, a mammal such as a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF)).
- one or more PIM1 inhibitors can be administered to a mammal (e.g., a human) in need thereof (e.g, a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF)) to reduce inflammation in one or more tissues within the mammal.
- a mammal e.g., a human
- a mammal e.g., a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF)
- a mammal e.g., a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF)
- a fibrotic condition such as IPF
- tissues that can be inflamed and where inflammation can be reduced by one or more PIM1 inhibitors include, without limitation, lung, liver, bile ducts, renal tissue, skin, CNS tissue, arthritic tissue, macular tissue (e.g., macular tissue in a mammal having macular degeneration), and cardiovascular tissue.
- one or more PIM1 inhibitors can be used to reduce inflammation in one or more tissues within a mammal having a fibrotic condition (e.g., IPF) by, for example, 10, 20, 30, 40, 50, 60, 70, 80, 90, 95, or more percent.
- a fibrotic condition e.g., IPF
- Any appropriate mammal e.g., a mammal such as a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF)
- a mammal in need of reducing a level of a plurality of SASP polypeptides within a cell type associated with a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides within the mammal can be treated by administering one or more PIM1 inhibitors.
- a mammal having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides can be treated by administering one or more PIM1 inhibitors.
- mammals that can be treated as described herein include, without limitation, humans, non-human primates (e.g, monkeys), dogs, cats, horses, cows, pigs, sheep, mice, and rats.
- a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides e.g., a fibrotic condition such as IPF
- PIM1 inhibitors as described herein.
- a mammal e.g., a human
- the mammal can have any type of disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides.
- a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides can be an age-related disease.
- a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides can be a fibrotic condition.
- diseases and disorder conditions associated with an elevated level of a plurality of SASP polypeptides that can treated as described herein (e.g., by administering one or more PIM1 inhibitors) include, without limitation, pulmonary fibrosis (e.g., IPF), aged-related CNS disorders, arthritis, macular degeneration, and cardiovascular disease.
- pulmonary fibrosis e.g., IPF
- aged-related CNS disorders arthritis, macular degeneration, and cardiovascular disease.
- the methods described herein can include identifying a mammal (e.g., a human) as having elevated levels of a plurality of SASP polypeptides within a particular cell type.
- Any appropriate method can be used to identify a mammal as having elevated levels of a plurality of SASP polypeptides within a particular cell type (e.g., fibroblasts such as lung fibroblasts).
- a mammal e.g., fibroblasts such as lung fibroblasts
- fibroblasts such as lung fibroblasts
- blood tests, bronchial alveolar lavage, skin collection, urinalysis, and/or exhaled breath condensate can be used to identify mammals (e.g, humans) as having elevated levels of a plurality of SASP polypeptides within a particular cell type (e.g, fibroblasts such as lung fibroblasts).
- the methods described herein can include identifying a mammal (e.g., a human) as having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF).
- a mammal e.g., a human
- Any appropriate method can be used to identify a mammal as having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g, a fibrotic condition such as IPF).
- HRCT high-resolution computed tomography
- blood test e.g., blood test
- lung function tests can be used to identify mammals (e.g., humans) as having a fibrotic condition (e.g., IPF).
- a mammal e.g., a mammal such as a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides e.g., a fibrotic condition such as IPF
- a mammal can be administered or instructed to self-administer any appropriate one or more (e.g., one, two, three, four, or more) PIM1 inhibitors.
- a PIM1 inhibitor can be specific to PIM1 (e.g., does not inhibit other PIMs such as PIM2 and PIM3, or can selectively inhibit PIM1 over PIM2 and PIM3).
- a PIM1 inhibitor can be a pan-PIM kinase inhibitor (e.g., can also inhibit PIM2 and/or PIM3).
- a PIM1 inhibitor can inhibit PIM1 polypeptide activity or can inhibit PIM1 polypeptide expression.
- compounds that can inhibit PIM1 polypeptide activity include, without limitation, antibodies (e.g., neutralizing antibodies) that target (e.g., target and bind) to a PIM1 polypeptide, and small molecules that target (e.g., target and bind) to a PIM1 polypeptide.
- Examples of compounds that can inhibit of PIM1 polypeptide expression include, without limitation, nucleic acid molecules designed to induce RNA interference of polypeptide expression of a PIM1 polypeptide (e.g., a siRNA molecule a shRNA molecule), antisense molecules, miRNAs, and nucleic acid molecules designed to induce CRISPR interference (CRISPRi) of PIM1 polypeptide expression (e.g., a guide RNA (gRNA) molecule complexed with a Cas9 polypeptide such as catalytically dead Cas9 polypeptide (see, e.g., Saifaldeen et al., Cells, 9:2518 (2020) at, for example, Figure 1, Figure 2, and Table 1)).
- CRISPRi CRISPR interference
- PIM1 inhibitors that can be administered to mammal (e.g., a human) as described herein include, without limitation, TCS (also referred to as TCS PIM-1 1; CAS No.: 491871-58-0), SMI-4a (CAS No.: 438190-29-5), AZD1208 (CAS No.: 1204144-28-4), EGCG (Epigallocatechin Gallate), quercetin, fisetin, luteolin, quercetagetin, TP-3654 (CAS No.: 1361951-15-6), SMI-16a (CAS No.: 587852-28-6), LGH447 (also referred to as PIM447; CAS No.
- One or more PIM1 inhibitors can be administered to a mammal (e.g., a human) in need thereof (e.g., a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g, a fibrotic condition such as IPF)) by any appropriate route e.g, oral, topical, intranasal, inhalation, transdermal, and parenteral).
- a mammal e.g., a human in need thereof
- a mammal e.g., a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g, a fibrotic condition such as IPF)
- a mammal e.g., a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g, a fibrotic condition such as IPF)
- any appropriate route e.g,
- PIM1 inhibitors can be administered systemically by oral administration to a mammal (e.g, a human).
- PIM1 inhibitors can be administered both locally and systemically administration to a mammal (e.g, a human) by inhalation.
- One or more PIM1 inhibitors can be administered to a mammal (e.g, a human) in need thereof (e.g, a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g, a fibrotic condition such as IPF)) in any appropriate amount (e.g, any appropriate dose).
- a mammal e.g, a human
- An effective amount of one or more PIM1 inhibitors can be any amount that reduces a level of a plurality of SASP polypeptides within a cell type associated with a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides within the mammal being treated without producing significant toxicity to the mammal.
- an effective amount of TCS can be from about 0.0001 milligrams of TCS per kilogram body weight (mg/kg) per day to about 1000 mg/kg per day (e.g., from about 0.0001 mg/kg per day to about 750 mg/kg, from about 0.0001 mg/kg per day to about 500 mg/kg, from about 0.0001 mg/kg per day to about 250 mg/kg, from about 0.0001 mg/kg per day to about 100 mg/kg, from about 0.0001 mg/kg per day to about 75 mg/kg, from about 0.0001 mg/kg per day to about 50 mg/kg, from about 0.0001 mg/kg per day to about 25 mg/kg, from about 0.0001 mg/kg per day to about 10 mg/kg, from about 0.0001 mg/kg per day to about 5 mg/kg, from about 0.0001 mg/kg per day to about 1 mg/kg, from about 0.0001 mg/kg per day to about 0.5 mg/kg, from about 0.0001
- the effective amount can remain constant or can be adjusted as a sliding scale or variable dose depending on the mammal’s response to treatment.
- Various factors can influence the actual effective amount used for a particular application. For example, the frequency of administration, duration of treatment, use of multiple treatment agents, route of administration, and/or severity of the condition(s) in the mammal being treated may require an increase or decrease in the actual effective amount administered.
- One or more PIM1 inhibitors can be administered to a mammal (e.g, a human) in need thereof (e.g., a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides e.g., a fibrotic condition such as IPF)) at any appropriate frequency.
- the frequency of administration can be any frequency that reduces a level of a plurality of SASP polypeptides within a cell type associated with a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides within the mammal being treated without producing significant toxicity to the mammal.
- the frequency of administration can be from about twice a month to about once a month, from about twice a day to about one every other day, from about once a day to about once a week, from about once a day to about once a month, or from about once a week to about once a month.
- the frequency of administration can remain constant or can be variable during the duration of treatment.
- various factors can influence the actual frequency of administration used for a particular application.
- the effective amount, duration of treatment, use of multiple treatment agents, and/or route of administration may require an increase or decrease in administration frequency.
- One or more PIM1 inhibitors can be administered to a mammal (e.g, a human) in need thereof (e.g., a huma having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides e.g., a fibrotic condition such as IPF)) for any appropriate duration.
- An effective duration for administering or using one or more PIM1 inhibitors can be any duration that reduces a level of a plurality of SASP polypeptides within a cell type associated with a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides within the mammal being treated without producing significant toxicity to the mammal.
- the effective duration can vary from several days to a lifetime, from several weeks to several months, from several months to several years, or from several years to a lifetime. Multiple factors can influence the actual effective duration used for a particular treatment. For example, an effective duration can vary with the frequency of administration, effective amount, use of multiple treatment agents, and/or route of administration.
- the methods for treating a mammal can include administering to the mammal one or more PIM1 inhibitors as the sole active ingredient(s) to treat the mammal.
- a composition containing one or more PIM1 inhibitors can include the PIM1 inhibitors as the sole active ingredient in the composition that is effective to treat a mammal (e.g., a mammal having one or more fibrotic conditions such as IPF).
- the methods for treating a mammal also can include administering to the mammal one or more (e.g., one, two, three, four, five or more) additional agents/therapies.
- a mammal e.g., a mammal such as a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF)
- a mammal can be administered (or instructed to self-administer) one or more PIM1 inhibitors and can be administered (or instructed to self-administer) one or more antisenescence treatments.
- An anti-senescence treatment is a treatment designed to inhibit or reduce cellular senescence within a mammal.
- an anti-senescence treatment that can be administered to a mammal (e.g, a human) and/or assessed as described herein can be a treatment that includes administering one or more senotherapeutic agents to the mammal (e.g., the human).
- senotherapeutic agents that can be used as at least a part of an anti-senescence treatment described herein include, without limitation, dasatinib, navitoclax, A1331852, Al 155463, geldanamycin, tanespimycin, alvespimycin, piperlongumine, panobinostat, FOX04-related peptides, nutlin3a, ruxolitinib, metformin, rapamycin, JAK1/2 inhibitors (e.g., ruxolitinib, AZD 1480), NF-KB inhibitors, p38 inhibitors, IL6 inhibitors, and STAT3 inhibitors (e.g., LLL12).
- dasatinib navitoclax
- A1331852 Al 155463
- geldanamycin tanespimycin
- alvespimycin alvespimycin
- panobinostat panobinostat
- FOX04-related peptides e.g
- the one or more senotherapeutic agents can be administered at the same time (e.g., in a single composition containing both one or more PIM1 inhibitors and the one or more senotherapeutic agents) or independently.
- one or more PIM1 inhibitors can be administered first, and the one or more senotherapeutic agents administered second, or vice versa.
- a mammal e.g., a mammal such as a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g., a fibrotic condition such as IPF)
- a mammal can be administered (or instructed to self-administer) one or more PIM1 inhibitors and can be administered (or instructed to self-administer) one or more additional agents/therapies used to treat one or more fibrotic conditions (e.g., IPF).
- a combination therapy used to treat one or more fibrotic conditions can include administering to the mammal (e.g., a human) one or more PIM1 inhibitors and one or more (e.g., one, two, three, four, five or more) agents used to treat one or more fibrotic conditions (e.g, IPF).
- an agent that can be used to treat one or more fibrotic conditions can be a lysophosphatidic acid (LPA) antagonist.
- an agent that can be used to treat one or more fibrotic conditions can be a phosphodiesterase-4 (PDE4) inhibitor.
- agents that can be administered to a mammal to treat IPF include, without limitation, pirfenidone, nintedanib, atezolizumab, deupirfenidone, and any combinations thereof.
- the one or more additional agents can be administered at the same time (e.g., in a single composition containing both one or more PIM1 inhibitors and the one or more additional agents) or independently.
- one or more PIM1 inhibitors can be administered first, and the one or more additional agents administered second, or vice versa.
- the methods for treating a mammal also can include performing one or more (e.g., one, two, three, four, five or more) additional therapies used to treat one or more fibrotic conditions (e.g, IPF) on the mammal.
- additional therapies used to treat one or more fibrotic conditions include, without limitation, oxygen therapy, pulmonary rehabilitation, and/or lung transplantation.
- one or more PIM1 inhibitors are used in combination with one or more additional therapies used to treat one or more fibrotic conditions (e.g., IPF)
- the one or more additional therapies can be performed at the same time or independently of the administration of one or more PIM1 inhibitors.
- one or more PIM1 inhibitors can be administered before, during, or after the one or more additional therapies are performed.
- a course of treatment can be monitored as described herein.
- the levels of a plurality of SASP polypeptides within a cell type associated with a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides within the mammal can be monitored over the course of treatment to determine whether or not the treatment is effective and/or remains effective over time.
- Example 1 PIM1 Kinase is a Positive Feedback Regulator of the Senescent Lung Fibroblast Inflammatory Secretome
- This Example describes the identification of a PIM1 kinase as a regulatory polypeptide for the secretome of senescent, IPF patient-derived lung fibroblasts. As such, a PIM1 kinase can drive premature lung fibroblast senescence.
- Non-IPF or IPF patient-derived (IPF) fibroblasts were purchased from ATCC or Lonza; fibroblasts were isolated by explant culture from IPF donors or non-IPF donors whose lungs were rejected for transplantation. Fibroblasts were cultured in a humidified 37°C, 5% CO2 incubator with Eagle’s minimal essential medium (EMEM) (ATCC) containing 10% fetal bovine serum (FBS), and antibiotic-antimycotic (Thermo Fisher Scientific) unless otherwise noted. Cells were routinely characterized by PCR or western blotting using specific fibroblast markers including type I collagen and vimentin. Mycoplasma contamination was monitored routinely by PCR. Experiments were performed with cells between passages three and six. The age and sex of all cells used in this are provided in Table 1.
- DMSO Dimethyl sulfoxide
- 2- mercaptoethanol was purchased from Bio-Rad Laboratories, and was used for RNA isolation, per the RNeasy Plus Mini Kit (Qiagen) protocol.
- TCS PIM1 1 (TCS) and AZD 1480 were purchased from Cayman Chemical.
- LLL12 was purchased from BioVision.
- Endotoxin/azi defree IL6 neutralizing antibody (IL6 Nab) was purchased from Biolegend (501110).
- Recombinant TNFa was purchased from R&D systems (10291-TA).
- RNAiMAX Lipofectamine RNAiMAX (Life Technologies) with siGENOME siRNA SMARTpool (Dharmacon) targeting PIM1 (L- 003923-00-0005) or a nontargeting SMARTpool (D-001810-10-05) according to the manufacturers’ suggested protocols. Cells were cultured for 72 hours before collecting RNA or protein.
- Fibroblasts were plated in 6-well plates and treated as specified for each experiment. Total cellular protein was collected using RIPA buffer (Thermo) containing Pierce Phosphatase Inhibitor and Halt Protease Inhibitor Cocktail (Thermo). BCA Protein Assay Kit (Thermo) was used to measure the total protein concentration of the lysate samples, which were then run on gradient polyacrylamide gels.
- the control lentiviral vector (lenti-control) (pLV-EGFP-CMV-mCherry) and lentiviral vector carrying the human PIM1 gene (lenti-PIMl) (pLV-EGFP-CMV-hPIMl) were bought packaged in viral particles from VectorBuilder (Chicago, IL, USA).
- Normal human lung fibroblasts at passage 3 were transduced at an MOI of 3 with lenti-control or lenti-PIMl in MEM containing 10% FBS, 100 U/mL penicillin, 100 pg/mL streptomycin and 5 pg/mL polybrene for 48 hours. After which, transduced cells were expanded and FACS sorted for GFP + cells. After sorting, cells were expanded and used for experiments.
- Fibroblasts were treated as indicated for each experiment.
- the RNeasy Plus Mini Kit (Qiagen) was used to isolate RNA, following Qiagen’s protocol.
- the SuperScript VILO cDNA Synthesis Kit (Invitrogen) and PTC-200 Peltier Thermal Cycler (MJ Research) was used to synthesize cDNA.
- Fibroblasts were plated into 96-well plates (3,000 cells/well) and cultured for 4 days. Cells were then fixed in 4% paraformaldehyde, then permeabilized with 0.25% triton x-100, and DAPI stained. Images were then taken using a Cytation5 imaging reader (BioTek) and the number of DAPI objects within each field-of-view was quantified by automated Gen5 software (BioTek).
- Fibroblasts were plated into 12-well plates and SA-0 Galactosidase staining was performed per the manufacturer’ s protocol (Senescence 0-Galactosidase Staining Kit #9860, Cell Signaling Technology). Briefly, cells were washed with IX PBS and then IX fixative solution for 15 minutes at room temperature. The plates were then washed two times with IX PBS. 0-Galactosidase staining solution was made by diluting 100X solution A and solution B and 20 mg/mL X-gal solution in DMSO to IX staining solution, diluted from 10X solution provided with distilled water; then, the pH was adjusted to 6.0.
- 0-Galactosidase staining solution was added to each well.
- the plate was sealed with parafilm to prevent evaporation and crystal formation.
- the plate was incubated at 37°C overnight in a dry incubator (no CO2).
- the 0-Galactosidase staining solution was removed and rinsed with IX PBS.
- the cells were imaged with an optical microscope using a 10X objective.
- For quantification of SA- 0 Galactosidase staining (Fig. 6). Phase contrast images were first taken of the 0-Galactosidase staining followed by DAPI staining, imaging, and quantification using a Cytation5 imager with on-board automated software- Gen5 (Biotek). Data are plotted as the percentage of SA- 0 Galactosidase positive cells/total number of cells in each field of view.
- Fibroblasts were plated into 6-well plates and treated with 30 pM quercetin, 60 pM epigallocatechin gallate (EGCG), or 3 pM TCS in EMEM containing 0.1% FBS.
- Total RNA was isolated using RNeasy Plus Mini Kit (Qiagen), following the manufacturer’s protocol. 1 pg of RNA was then used for synthesis of cDNA using SuperScript VILO (Invitrogen).
- qPCR was performed using RT2 SYBR Green qPCR Mastermix (Qiagen) and run on a QuantStudio 5 (Applied Biosystems) 384 well real-time PCR thermocycler. Data were expressed as a fold change compared to control treated cells, by AACt relative to GAPDH.
- Fibroblasts were plated into 6-Well plates (Thermo Fischer Scientific) in EMEM containing 10% FBS and allowed to attach for 24 hours. Media was then exchanged with EMEM containing 0.1% FBS and cells were treated for 24 hours with 3 pM TCS. All wells were treated with a final concentration of 0. 1% DMSO. Conditioned media was harvested for the detection of cytokines, using the Human Cytokine Antibody Array (Abeam, ab 133997) according to the manufacturer’s instructions. All reagents and conditioned media samples were thawed on ice and prepared prior to use, and all membrane incubation periods were performed under gentle rocking. Briefly, array membranes were incubated with blocking buffer for 30 minutes at room temperature.
- conditioned media samples were incubated with array membranes overnight at 4°C.
- Membranes were washed and incubated with biotin-conjugated anti-cytokines for 2 hours at room temperature. Afterwards, membranes were washed and incubated with HRP-Conjugated Streptavidin for 2 hours at room temperature. Membranes were then washed and incubated with chemiluminescent detection reagents and imaged via ChemiDocTM Imaging System (Bio-Rad). Spot density was quantified via densitometry analysis using Image Lab v6.0 (Bio-Rad). Data is presented as raw signal intensity-background (Fig. 5B) and fold change relative to the control treated well for each donor sample (Fig. 5C).
- Fibroblasts were plated into 96-well plates. Cells were treated with the indicated compounds for 24 hours. Cells were incubated with each component of the LIVE/DEADTM kit (Thermo Fisher Scientific) for 30 minutes. A Cytation5 microplate fluorescence microscope (BioTek) was used to obtain fluorescent images of each well and cell counts were determined using Gen5 software (BioTek). Statistics
- PIM1 regulates phosphorylation and activity of p65/RelA
- PIM1 targeting siRNA also reduced total p65 expression (Fig. 1A).
- transcript expression of the well-defined NF-KB target genes: IL6, CCL2, andlLIB was measured by qPCR.
- TNFa enhanced gene expression, which was inhibited by knockdown of PIM1 (Fig. IB).
- siRNA targeting PIM1 was also performed in non-IPF lung fibroblasts not stimulated with TNFa and consistent impact in the expression of IL6, CCL2, and IL1B was observed, suggesting this pathway is inactive in these cells in the absence of exogenous stimuli (Fig. 7).
- TCS PIM1 1 (hereinafter referred to as: TCS).
- TCS blocked p65/RelA phosphorylation induced by TNFa, and promoted a loss in p65 total protein.
- Senescent IPF patient-derived lung fibroblasts express spontaneously elevated PIM1 and p65/Rel phosphorylation
- IPF patient-derived lung fibroblasts expressed elevated levels of senescence associated cyclin dependent kinase inhibitors and IL6 (Fig 2B). Correlation comparisons were plotted for each gene, an PIMl expression in cultured lung fibroblasts was found to align better with CDKN2A than either IL6 or CDKN1A (Fig. 8). Senescence associated P-galactosidase (SA-fl-Gal) staining was performed to confirm the senescence phenotype in IPF patient-derived fibroblasts (Fig. 2C). IPF patient-derived fibroblasts were positive for P-galactosidase staining.
- SA-fl-Gal Senescence associated P-galactosidase
- PIM1 /NF-KB and IL6/JAK2/STAT3 form a positive feedback loop
- PIM1 is involved in controlling expression of a broad range of cytokines and chemokines
- IPF patient-derived fibroblasts were treated for 24 hours with the PIM1 inhibitor TCS followed by gene expression analysis using a profiler PCR array. Transcripts of 84 genes encoding for cytokines and chemokines were amplified, and among them, 49 were found to be expressed in these cells. In response to PIM1 inhibition, numerous genes encoding for chemokines and NF-KB responders were repressed (Fig. 4A).
- RNA RNA-derived from IPF lung fibroblasts, treated with or without TCS.
- PIM1 kinase inhibition repressed the secretion of numerous chemokines, including GRO (detected via an antibody recognizing CXCL 1/2/3), GRO-a (detected via an antibody that selectively binds to CXCL1), IL6 (IL6), MCP-1 (CCZ2), and MCP-3 (CCL7) (Fig. 5).
- IL8 also was strongly secreted by cultured fibroblasts. However, it was not significantly repressed by PIM1 inhibition.
- PIM1 promotes premature senescence of human lung fibroblasts in vitro.
- TCS is an ATP competitive inhibitor of PIM1 kinase.
- Infection control lenti-control
- PIM1 overexpressing cells lenti-PIMl
- 3 pM TCS 3 and 24 hours prior to collecting total protein.
- p65 phosphorylation was impacted by TCS only in the control cells.
- the PIM1 overexpressing cells were refractory to the impact of TCS in this experiment (Fig. 6B).
- PIM1 overexpression enhanced RNA production of inflammatory SASP factors: II.6, CCL2, and IL1B.
- a consistent repression of proliferation was observed in PIM1 overexpressing cells (Fig. 6D). It was next explored if the enhanced expression of SASP factors and reduction in cellular proliferation were hints of premature senescence.
- PIM1 overexpression coincided with increased transcription of senescence-associated cyclin-dependent kinase inhibitors CDKN2A (pl6 INK4a ) and CDKN1A (p2 l wafl ) (Fig. 6E).
- Premature senescence was further confirmed in vitro by monitoring SA-0-Gal staining in control or PIM1 overexpressing lung fibroblasts from culture passage 4-8.
- passage 8 nearly 50% of the PIM1 overexpressing cells stained positively for SA-0-Gal.
- Fig. 6F identifying PIM1 overexpression as a sufficient driver of lung fibroblast senescence.
- PIM1 inhibitors can be used to reduce a level of a plurality of SASP polypeptides within fibroblasts, and can thus be used to treat a mammal having disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g, a fibrotic condition such as IPF).
- a mammal having disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides e.g, a fibrotic condition such as IPF.
- a human in need thereof e.g., a human having a disease or disorder condition associated with an elevated level of a plurality of SASP polypeptides (e.g, a fibrotic condition such as IPF)) is administered or self-administered one or more PIM1 inhibitors.
- the administered PIM1 inhibitor(s) can reduce a level of a plurality of SASP polypeptides in the human (e.g, can reduce SASP polypeptides expression by cells such as fibroblasts within the human).
- a human identified as having IPF is administered or self-administered one or more PIM1 inhibitors.
- the administered PIM1 inhibitor(s) reduce the severity of one or more symptoms of IPF.
- Example 4 Reducing Expression of a Plurality of SASP Polypeptides ex vivo, in vitro, and in vivo
- the Pirn kinase inhibitor TCS (TCS Pim-1 1) reduced expression of IL-6 and CCL2, two markers of age-related inflammation, in an ex vivo model of aged lung ( Figures 11 A and 1 IB).
- both TP-3654 and LGH447 reduced expression of IL-6, CCL2, and CCL7 in senescent lung fibroblasts ( Figures 12A and 12B).
- Pirn kinase inhibitor LGH447 reduced expression of age-related inflammation genes (e.g., IL-6, CCL2, and IL-10) from multiple organs in vivo in aged mice without impacting expression of these genes in young mice ( Figures 13A-13C). This is likely driven by the selective overexpression of the PIM kinase genes in these organs. Uniquely, expression of PIM1, PIM2, and PIM3 was not enhanced in whole brain.
Landscapes
- Health & Medical Sciences (AREA)
- Life Sciences & Earth Sciences (AREA)
- Chemical & Material Sciences (AREA)
- General Health & Medical Sciences (AREA)
- Animal Behavior & Ethology (AREA)
- Pharmacology & Pharmacy (AREA)
- Public Health (AREA)
- Veterinary Medicine (AREA)
- Medicinal Chemistry (AREA)
- Epidemiology (AREA)
- Engineering & Computer Science (AREA)
- Genetics & Genomics (AREA)
- Bioinformatics & Cheminformatics (AREA)
- Organic Chemistry (AREA)
- Biomedical Technology (AREA)
- Molecular Biology (AREA)
- Wood Science & Technology (AREA)
- Biotechnology (AREA)
- General Engineering & Computer Science (AREA)
- Zoology (AREA)
- Plant Pathology (AREA)
- Microbiology (AREA)
- Physics & Mathematics (AREA)
- Biophysics (AREA)
- Biochemistry (AREA)
- Oncology (AREA)
- Pulmonology (AREA)
- Chemical Kinetics & Catalysis (AREA)
- General Chemical & Material Sciences (AREA)
- Nuclear Medicine, Radiotherapy & Molecular Imaging (AREA)
- Medicines That Contain Protein Lipid Enzymes And Other Medicines (AREA)
Abstract
Description
Claims
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US202263414311P | 2022-10-07 | 2022-10-07 | |
| PCT/US2023/034276 WO2024076530A1 (en) | 2022-10-07 | 2023-10-02 | Methods and materials for using pim1 inhibitors |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| EP4599063A1 true EP4599063A1 (en) | 2025-08-13 |
| EP4599063A4 EP4599063A4 (en) | 2026-01-14 |
Family
ID=90608593
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP23875422.0A Pending EP4599063A4 (en) | 2022-10-07 | 2023-10-02 | METHOD AND MATERIALS FOR THE USE OF PIM1 INHIBITORS |
Country Status (2)
| Country | Link |
|---|---|
| EP (1) | EP4599063A4 (en) |
| WO (1) | WO2024076530A1 (en) |
Family Cites Families (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2015116735A1 (en) * | 2014-01-28 | 2015-08-06 | Mayo Foundation For Medical Education And Research | Methods and combinations for killing senescent cells and for treating senescence-associated diseases and disorders |
-
2023
- 2023-10-02 WO PCT/US2023/034276 patent/WO2024076530A1/en not_active Ceased
- 2023-10-02 EP EP23875422.0A patent/EP4599063A4/en active Pending
Also Published As
| Publication number | Publication date |
|---|---|
| EP4599063A4 (en) | 2026-01-14 |
| WO2024076530A1 (en) | 2024-04-11 |
Similar Documents
| Publication | Publication Date | Title |
|---|---|---|
| Chong et al. | CD36 initiates the secretory phenotype during the establishment of cellular senescence | |
| Sawaya et al. | Mevastatin promotes healing by targeting caveolin-1 to restore EGFR signaling | |
| Zhang et al. | Sirtuin 6 inhibits myofibroblast differentiation via inactivating transforming growth factor‐β1/Smad2 and nuclear factor‐κB signaling pathways in human fetal lung fibroblasts | |
| Young et al. | Muscle injury induces a transient senescence‐like state that is required for myofiber growth during muscle regeneration | |
| Alam et al. | Nuclear respiratory factor 1 (NRF‐1) upregulates the expression and function of reduced folate carrier (RFC) at the blood‐brain barrier | |
| Sun et al. | Na+/K+-ATPase β2-subunit (AMOG) expression abrogates invasion of glioblastoma-derived brain tumor-initiating cells | |
| Mukherjee et al. | Ionizing irradiation-induced Fgr in senescent cells mediates fibrosis | |
| US20160333343A1 (en) | Method of Treatment of Vascular Complications | |
| US11478466B2 (en) | Small molecule promoting osteoblast differentiation | |
| Zhu et al. | Irisin promotes cementoblast differentiation via p38 MAPK pathway | |
| Qu et al. | FSTL1 promotes inflammatory reaction and cartilage catabolism through interplay with NFκB signaling pathways in an in vitro ONFH model | |
| Dilley et al. | CAMKK2 is upregulated in primary human osteoarthritis and its inhibition protects against chondrocyte apoptosis | |
| Wagner et al. | Amanita muscaria extract potentiates production of proinflammatory cytokines by dsRNA-activated human microglia | |
| Huang et al. | Antiretroviral drug dolutegravir induces inflammation at the mouse brain barriers | |
| Zhou et al. | The role of CTGF in inflammatory responses induced by silica particles in human bronchial epithelial cells | |
| He et al. | Huwe1 interacts with Gadd45b under oxygen-glucose deprivation and reperfusion injury in primary Rat cortical neuronal cells | |
| Zonis et al. | Inflammation-induced Gro1 triggers senescence in neuronal progenitors: effects of estradiol | |
| Li et al. | Overexpression of TRIM3 protects against LPS-induced acute kidney injury via repressing IRF3 pathway and NLRP3 inflammasome | |
| CN112472795A (en) | Biological agents for inhibiting cell response to inflammatory factor stimulation | |
| WO2024076530A1 (en) | Methods and materials for using pim1 inhibitors | |
| Sun et al. | Interleukin-1β exacerbates the catabolic effects of human nucleus pulposus cells through activation of the Nuclear Factor kappa B signaling pathway under hypoxic conditions. | |
| CN115120723A (en) | Application of macrophage Piezo1 knockout in promotion of angiogenesis of ischemic tissues | |
| Kwon et al. | Interleukin-13 receptor subunit alpha 2 induces chemokine expression and macrophage polarization to promote inflammation and fibrosis | |
| Tachizaki et al. | Cylindromatosis lysine 63 deubiquitinase (CYLD) suppress TLR3-mediated CCL5 expression in human renal proximal tubular epithelial cells | |
| Panchenko et al. | Protein kinase CK1αLS promotes vascular cell proliferation and intimal hyperplasia |
Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| STAA | Information on the status of an ep patent application or granted ep patent |
Free format text: STATUS: THE INTERNATIONAL PUBLICATION HAS BEEN MADE |
|
| PUAI | Public reference made under article 153(3) epc to a published international application that has entered the european phase |
Free format text: ORIGINAL CODE: 0009012 |
|
| STAA | Information on the status of an ep patent application or granted ep patent |
Free format text: STATUS: REQUEST FOR EXAMINATION WAS MADE |
|
| 17P | Request for examination filed |
Effective date: 20250507 |
|
| AK | Designated contracting states |
Kind code of ref document: A1 Designated state(s): AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC ME MK MT NL NO PL PT RO RS SE SI SK SM TR |
|
| REG | Reference to a national code |
Ref country code: DE Ref legal event code: R079 Free format text: PREVIOUS MAIN CLASS: C12N0015113000 Ipc: A61K0031055000 |
|
| A4 | Supplementary search report drawn up and despatched |
Effective date: 20251212 |
|
| DAV | Request for validation of the european patent (deleted) | ||
| DAX | Request for extension of the european patent (deleted) | ||
| RIC1 | Information provided on ipc code assigned before grant |
Ipc: A61K 31/055 20060101AFI20251208BHEP Ipc: C12N 15/113 20100101ALI20251208BHEP Ipc: A61P 11/00 20060101ALI20251208BHEP Ipc: G01N 33/53 20060101ALI20251208BHEP Ipc: A61K 31/085 20060101ALI20251208BHEP Ipc: A61K 31/352 20060101ALI20251208BHEP Ipc: A61K 31/353 20060101ALI20251208BHEP Ipc: A61K 31/426 20060101ALI20251208BHEP Ipc: A61K 31/454 20060101ALI20251208BHEP Ipc: A61K 31/5025 20060101ALI20251208BHEP |