Methods and compositions for preventing, treating, or delaying heart failure using neuregulins
Neuregulin 1β administration, tailored by NT-proBNP levels or NYHA classification, effectively reduces mortality and rehospitalization in heart failure patients, addressing the limitations of current treatments.
Patent Information
- Application Number
- JP2022550720
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-03-13
- Filing Date
- 2021-02-19
- Publication Date
- 2026-01-28
- Estimated Expiration
- 2041-02-19
AI Technical Summary
Current treatments for heart failure, such as ACE inhibitors and mechanical devices, have limited efficacy and are invasive or expensive, necessitating the development of more effective and less invasive therapies.
Administration of neuregulin, specifically neuregulin 1β, to patients with heart failure, tailored through pre-treatment testing to ensure an effective dose is administered to those within a therapeutically appropriate range, as determined by NT-proBNP levels or NYHA classification.
Significant reduction in mortality and rehospitalization rates, along with improved myocardial function, is achieved through neuregulin therapy in heart failure patients, particularly those with optimal NT-proBNP levels or NYHA class II-III.
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Abstract
Description
[Technical Field]
[0001] FIELD OF THE INVENTION The present invention relates to the use of neuregulin in the manufacture of a medicament for preventing, treating, or delaying human heart failure, and to a method for administering the medicament therefor. In particular, the present invention provides a method for preventing, treating, or delaying human heart failure by administering a medicament comprising neuregulin to a specific population of patients with heart failure. In particular, the present invention provides a method for treating heart failure using a medicament comprising neuregulin. The method involves pre-treatment testing and determining an appropriate treatment for the patient based on the test results. If the results of the pre-treatment testing are in the optimal therapeutic range, it is appropriate to administer an effective dose of neuregulin to the patient with heart failure. [Background technology]
[0002] BACKGROUND OF THE INVENTION Heart failure (HF) is a syndrome associated with cardiac dysfunction caused by various cardiac diseases. Angiotensin-converting enzyme (ACE) inhibitors, the primary treatment for patients with HF, are effective at dilating blood vessels, lowering blood pressure, and reducing cardiac workload. Despite statistically significant decreases in mortality rates (%) in patients treated with ACE inhibitors, the actual mortality reduction averages only 3%–4%, and there is potential for some side effects. Other preventive or therapeutic options for HF also have limitations. For example, heart transplants are inevitably more expensive and invasive than medical therapy and are limited by the availability of donor hearts. Furthermore, treatment options using mechanical devices, such as biventricular pacemakers, are also invasive and expensive. Due to the shortcomings of existing therapies, novel treatments are urgently needed.
[0003] A promising new treatment involves administering neuregulin (NRG, neuregulin, heregulin (HRG)), a 440 KD glycoprotein also known as glial growth factor (GGF) or novel differentiation factor (NDF), to patients with or at risk for HF. NRGs are proteins involved in intercellular signaling and act as ligands that bind to the ErbB family of receptor tyrosine kinases. The NRG family consists of four members: NRG1, NRG2, NRG3, and NRG4 (Falls et al., Exp Cell Res. 284:14-30, 2003). NRGs are involved in a variety of biological responses: stimulating breast cancer cell differentiation and milk protein production, inducing neural crest cell differentiation into Schwann cells, stimulating acetylcholine receptor synthesis in skeletal muscle cells, and promoting cardiomyocyte survival and DNA synthesis. In vivo studies in homozygous mouse embryos with severe neuregulin deficiency have shown that neuregulin is essential for cardiac and neural development. NRG1 plays an important role in the development of the nervous system, heart, and mammary gland. Several lines of evidence suggest that NRG1 signaling plays a role in the development and function of some other organs / systems, as well as in the pathogenesis of human diseases (such as schizophrenia and breast cancer). NRG1 exists in multiple isoforms. Studies in genetically mutant mice (gene knockout mice) suggest that the in vivo functions of isoforms differ depending on their N-terminal region or epidermal growth factor (EGF)-like region. The present invention is based on neuregulin 1β (NRG-1β).
[0004] Neuregulin 1β is a transmembrane protein (Holmes et al., Science 256, 1205-1210, 1992). The extramembrane portion containing the Ig-like and EGF-like domains is the N-terminus, and the intramembrane portion is the C-terminus. Under the action of metalloproteases in the extracellular matrix, the extramembrane portion of neuregulin can be enzymatically cleaved and released. This promotes binding of neuregulin to ErbB receptors on the surface of surrounding cells, activating the corresponding cell signaling pathways.
[0005] The ErbB family also has four members: ErbB1, ErbB2, ErbB3, and ErbB4. All of them are transmembrane proteins with molecular weights of approximately 180-185 kD. With the exception of ErbB2, they all contain a ligand-binding domain at their extramembrane N-termini; with the exception of ErbB3, their intramembrane C-termini all possess protein tyrosine kinase activity. ErbB1 is an epidermal growth factor receptor (EGFR) receptor, while ErbB3 and ErbB4 are neuregulin receptors. Of these neuregulin receptors, only ErbB2 and ErbB4 are highly expressed in the heart (Yarden et al., Nat Rev Mol Cell Biol, 2:127-137, 2001).
[0006] Neuregulin binding to the extramembrane portion of ErbB3 / ErbB4 can lead to heterodimerization of ErbB3 / ErbB4 with other ErbB family members (often including ErbB2) or homodimerization of ErbB4 itself, which is responsible for phosphorylating the intramembrane portion (Yarden et al., Nat Rev Mol Cell Biol, 2:127-137, 2001). The phosphorylated intramembrane portion can further bind to multiple intracellular signaling proteins, thereby activating downstream ERK or AKT signaling pathways and triggering a series of cellular responses, including stimulation or inhibition of cell proliferation, apoptosis, migration, differentiation, or cell adhesion.
[0007] Neuregulin is particularly essential for cardiac development (WO0037095, CN1276381, WO03099300, WO9426298, US6444642, WO9918976, WO0064400, Zhao et al., J. Biol. Chem. 273, 10261-10269, 1998). During early embryonic development, neuregulin expression is primarily restricted to the endocardium; it is then released into surrounding cardiomyocytes via a paracrine pathway and binds to the extramembrane portion of the protein tyrosine kinase receptor ErbB4 in the plasma membrane. ErbB4 subsequently forms a heterodimer with ErbB2. The formation and activation of the ErbB4 / ErbB2 complex is essential for the formation of cardiac trabeculae in the early cavernous heart. Deficiency of any of the neuregulin, ErbB4, and ErbB2 genes results in the loss of fetal trabeculae in the womb during early development and death. According to WO0037095, a certain concentration of neuregulin can continuously activate the ERK signaling pathway, promote the proliferation and differentiation of cardiomyocytes, induce the reorganization of sarcomere septa and cell frameworks in cardiomyocytes and cell adhesion, improve the structure of cardiomyocytes, and enhance cardiomyocyte contraction. Furthermore, WO0037095 and WO003099300 state that neuregulin can be used for the detection, diagnosis, and treatment of many cardiovascular diseases.
[0008] Some prior art documents related to the present invention are listed below: 1. Myocardial function and operation: WO0037095; 2. Novel applications of the growth factor neuregulin and its analogs: CN1276381; 3. Neuregulin-based methods and compositions for treating cardiovascular diseases: WO03099300; 4. Zhao YY, Sawyer DR, Baliga RR, Opel DJ, Han X, Marchionni MA, and Kelly RA, "Neuregulins Promote Survival and Growth of Cardiac Myocytes." J. Biol. Chem. 273, 10261-10269 (1998); 5. Methods for treating muscular diseases and disorders: WO9426298; 6. 6. Methods of increasing myotube formation or survival or muscle cell mitogenesis, differentiation, or survival using neuregulin: US6444642. 7. Methods of treatment involving the use of neuregulin: WO9918976; 8. Methods of treating congestive heart failure: WO0064400; 9. Holmes WE, Sliwkowski MX, Akita RW, Henzel WJ, Lee J, Park JW, Yansura D, Abadi N, Raab H, Lewis GD, et al., "Identification of heregulin, a specific activator p185erbB2." Science 256, 1205-1210 (1992); 10. Falls DL, "Neuregulins: functions, forms and signaling strategies." "Strategies." Experimental Cell Research, 284, 14-30 (2003). 11. Yarden Y, Sliwkowski X, "Untangling the ErbB signaling network." Nature Reviews: Molecular Cell Biology, 2127-137 (2001).
[0009] Studies have shown that the EGF-like domain of NRG1, approximately 50–64 amino acids long, is sufficient to bind to and activate these receptors. Previous studies have shown that neuregulin-1β (NRG-1β) can directly bind to ErbB3 and ErbB4 with high affinity. The orphan receptor ErbB2 can form heterodimers with ErbB3 or ErbB4 with higher affinity than the homodimerization of ErbB3 or ErbB4. Neurodevelopmental studies suggest that an intact NRG-1β, ErbB2, and ErbB3 signaling pathway is required for the formation of the sympathetic nervous system. Targeted disruption of NRG-1β, ErbB2, or ErbB4 is fetal lethal due to resulting cardiac developmental defects. Recent studies have also highlighted the important roles of NRG-1β, ErbB2, and ErbB4 in cardiovascular development and maintaining normal cardiac function in adults. NRG-1β has been shown to enhance the sarcomere organization of adult cardiomyocytes. Administration of recombinant NRG-1β EGF-like domains can significantly improve or prevent the decline in myocardial function in various animal models of HF, and similar results have been observed in clinical trials. However, more research is needed to clarify how to use this product or composition and how to achieve better therapeutic effects in certain subpopulations. The present invention provides a method for treating heart failure using a pharmaceutical containing neuregulin. The method involves pretreatment testing and determining an appropriate treatment for the patient based on the test results. If the results of the pretreatment testing are within the optimal therapeutic range, it is appropriate to administer an effective dose of neuregulin to a patient with heart failure. Summary of the Invention
[0010] (Summary of the Invention) (A. Brief Overview) During clinical trials for the treatment of HF with neuregulin, the applicant discovered that neuregulin therapy achieved significant therapeutic effects in HF patients screened by grading according to the New York Heart Association (NYHA) functional classification or measuring NT-proBNP or BNP levels in the patient's plasma. These therapeutic outcomes included a significant reduction in mortality. These therapeutic outcomes included a significant reduction in rehospitalization for treatment. Furthermore, studies have shown that NRG significantly improves or prevents the decline in myocardial function in various animal models of HF and in patients with HF. Neuregulin, neuregulin polypeptides, neuregulin variants, neuregulin derivatives, compositions comprising NRG-like functional domain(s), or compounds with activity similar to neuregulin are all within the scope of the present invention.
[0011] In a first aspect of the present invention, a pharmaceutical composition comprising an effective dose of neuregulin for the treatment of heart failure is provided. Patients treated with the pharmaceutical composition achieved significant therapeutic results. In some embodiments, the therapeutic effect was manifested as a significant reduction in mortality. In some embodiments, the therapeutic effect was manifested as a significant reduction in re-hospitalization for treatment. In some embodiments, the therapeutic effect was manifested as a decrease in biomarker levels, indicating improvement in chronic heart failure. In some embodiments, the pharmaceutical composition was administered to the patient for an induction regimen. In some embodiments, the induction regimen included repeated administration of the pharmaceutical composition over at least 3, 5, 7, or 10 consecutive days. In some preferred embodiments, administration of the pharmaceutical composition was maintained for at least 3, 6, or 12 months after the induction regimen. In some preferred embodiments, the maintenance regimen included administering the pharmaceutical composition every 3, 5, 7, or 10 days. In preferred embodiments, the HF patient treated was female. In a preferred embodiment, the HF patients treated were female HF patients with plasma NT-proBNP levels of 3000 fmol / ml or less and male HF patients with plasma NT-proBNP levels of 1600 fmol / ml or less. In a preferred embodiment, the HF patients treated were female HF patients with plasma NT-proBNP levels of 3000 fmol / ml or less.
[0012] In another embodiment of the present invention, a method improves survival or reduces mortality in chronic HF patients, and the method comprises administering to the chronic HF patient a pharmaceutical composition comprising an effective dose of neuregulin. In some embodiments, the pharmaceutical composition was administered to the patient for an induction regimen. In some preferred embodiments, the induction regimen comprised repeated administration of the pharmaceutical composition for at least 3, 5, 7, or 10 consecutive days. In some preferred embodiments, administration of the pharmaceutical composition was maintained for at least 3, 6, or 12 months after the induction regimen. In some preferred embodiments, the maintenance regimen comprised administering the pharmaceutical composition every 3, 5, 7, or 10 days. In preferred embodiments, the HF patient treated was female. In preferred embodiments, the HF patient treated was a female HF patient with a plasma NT-proBNP level of 3000 fmol / ml or less and a male HF patient with a plasma NT-proBNP level of 1600 fmol / ml or less. In a preferred embodiment, the HF patient treated was a female HF patient with a plasma NT-proBNP level of 3000 fmol / ml or less.
[0013] In another embodiment of the present invention, information regarding the application of neuregulin in drug preparations is provided. The drug may provide long-term benefits to patients with chronic heart failure. In one embodiment, long-term benefit refers to improved survival rate. In one embodiment, long-term benefit refers to reduced rehospitalization rate. In another embodiment, long-term benefit refers to improved (decreased) biomarkers, which can predict the long-term prognosis of HF. In some embodiments, the drug was administered to the patient for an induction regimen. In some preferred embodiments, the induction regimen includes repeated administration of the drug for at least 3, 5, 7, or 10 consecutive days. In some preferred embodiments, the patient received maintenance administration for at least 3, 6, or 12 months after the induction regimen. In some preferred embodiments, the maintenance regimen included drug administration every 3, 5, 7, or 10 days. In preferred embodiments, the HF patient treated was female. In preferred embodiments, the HF patient treated was a female HF patient with a plasma NT-proBNP level of 3000 fmol / ml or less and a male HF patient with a plasma NT-proBNP level of 1600 fmol / ml or less. In a preferred embodiment, the HF patients treated were female HF patients with plasma NT-proBNP levels below 3000 fmol / ml.
[0014] In another embodiment of the present invention, a method for screening HF patients suitable for treatment with neuregulin is provided. The method includes measuring the patient's NT-proBNP plasma level. In one embodiment, it has been demonstrated that an NT-proBNP plasma level of 4000 fmol / ml or less indicates that the HF patient is suitable for treatment with neuregulin. In another embodiment, an NT-proBNP plasma level in the range of 1600 fmol / ml to 4000 fmol / ml indicates that the patient's HF is suitable for treatment with neuregulin. In another embodiment, an NT-proBNP plasma level of 1600 fmol / ml or less indicates that the patient's HF is suitable for treatment with neuregulin. In another preferred embodiment, it has been demonstrated that HF in female HF patients with NT-proBNP plasma levels of 3000 fmol / ml or less is suitable for treatment with neuregulin. In another preferred embodiment, female HF patients with NT-proBNP plasma levels of 3000 fmol / ml or less and male HF patients with NT-proBNP plasma levels of 1600 fmol / ml or less have been shown to be suitable for treatment with neuregulin. In another preferred embodiment, female HF patients have been shown to be suitable for treatment with neuregulin, regardless of their NT-proBNP plasma levels.
[0015] In another embodiment of the present invention, a method for screening HF patients suitable for treatment with neuregulin is provided. The method includes assessing the patient's cardiac function according to the New York Heart Association (NYHA) functional classification. In one embodiment, NYHA class II indicates that the patient's HF is suitable for treatment with neuregulin. In another embodiment, NYHA class III indicates that the patient's HF is suitable for treatment with neuregulin.
[0016] In another embodiment of the present invention, a method is provided for treating chronic heart failure with neuregulin. The method includes a pre-treatment evaluation procedure and determining the patient's eligibility to receive neuregulin treatment according to the evaluation results. In some embodiments, the evaluation procedure includes grading the NYHA functional class of the chronic HF patient. In another embodiment, the evaluation procedure includes determining the plasma NT-proBNP or BNP level of all chronic HF patients.
[0017] In another embodiment of the present invention, a diagnostic reagent kit for screening HF patients suitable for treatment with neuregulin is provided. In one embodiment, the reagent kit includes immunoassay reagent(s) for measuring NT-proBNP plasma levels in HF patients. A level of 4000 fmol / ml or less indicates that the patient is suitable for treatment of HF with neuregulin. In another embodiment, an NT-proBNP plasma level in the range of 1600 fmol / ml to 4000 fmol / ml indicated that the patient's HF is suitable for treatment with neuregulin. In another embodiment, an NT-proBNP plasma level of 1600 fmol / ml or less indicated that the patient's HF is suitable for treatment with neuregulin. In another preferred embodiment, HF in female HF patients with NT-proBNP plasma levels of 3000 fmol / ml or less was shown to be suitable for treatment with neuregulin.
[0018] In another embodiment of the present invention, a companion diagnostic test for the treatment of chronic HF with neuregulin is provided. N-terminal brain natriuretic peptide (NT-proBNP) is used as a biomarker for the diagnostic test. In some embodiments, a level of 4000 fmol / ml or less indicates that the patient's HF is suitable for treatment with neuregulin. In another embodiment, a level of 1600 fmol / ml to 4000 fmol / ml indicates that the patient's HF is suitable for treatment with neuregulin. In another embodiment, an NT-proBNP plasma level of 1600 fmol / ml or less indicates that the patient's HF is suitable for treatment with neuregulin. In another preferred embodiment, HF in female HF patients with NT-proBNP plasma levels of 3000 fmol / ml or less was shown to be suitable for treatment with neuregulin.
[0019] In another aspect of the present invention, a companion diagnostic kit for determining the eligibility of a HF patient to receive neuregulin therapy is provided, which includes a reagent kit for determining plasma NT-proBNP or BNP levels and instructions for determining the patient's eligibility to receive neuregulin therapy according to the test results.
[0020] In another embodiment of the present invention, a kit is provided. The kit includes one or more containers of an effective dose of neuregulin. The protein may be provided alone or may be combined with other compatible drugs / substances to form a composition. Preferred drug dosage forms can be used in combination with sterile saline, glucose solution, buffer, or other compatible sterile solutions. Optionally, the composition may be lyophilized or desiccated. In one embodiment, the kit of the present invention further includes a needle or syringe for injection, preferably in sterile packaging, and / or packaged alcohol cotton balls. In another embodiment, the kit of the present invention further includes an instruction manual, which may include instructions for the physician or patient on how to use the drug composition, as appropriate. In another preferred embodiment, the kit of the present invention includes an effective dose of NRG and a reagent kit, and the diagnostic kit includes immunoassay reagent(s) for measuring NT-proBNP plasma levels in HF patients.
[0021] In another embodiment of the present invention, neuregulin is administered at an effective dose to chronic HF patients who have NT-proBNP plasma levels in a therapeutically appropriate range before treatment. In one embodiment, the therapeutically appropriate range is 4000 fmol / ml or less. In another embodiment, the therapeutically appropriate range is 1600 fmol / ml to 4000 fmol / ml. In another embodiment, the therapeutically appropriate range is 1600 fmol / ml or less. In another preferred embodiment, the appropriate range for female HF patients to receive treatment is 3000 fmol / ml or less. In another preferred embodiment, the plasma level is determined by immunoassay.
[0022] In another embodiment of the present invention, neuregulin is administered at an effective dose to patients with chronic HF whose cardiac function has been graded according to the New York Heart Association (NYHA) functional classification. In some embodiments, the specific functional class is NYHA class II. In some embodiments, the specific functional class is NYHA class III. DETAILED DESCRIPTION OF THE INVENTION
[0023] (B.Definition) Unless otherwise defined, all technical terms used herein have the same meaning as understood by a person of ordinary skill in the art to which this invention belongs. All patent documents, patent applications, published patent documents and other publications are incorporated herein by reference in their entirety. In the event that a definition set forth herein does not match or conflicts with the corresponding definition in any of the above references, the definition in this specification shall prevail.
[0024] Unless clearly indicated otherwise by context, all singular and plural determiners / nouns (e.g., a, an, the, these, etc.) are interchangeable, and "at least one" and "one or more" are interchangeable.
[0025] As used herein, "neuregulin" or "NRG" refers to a protein or polypeptide that binds to and activates ErbB2, ErbB3, ErbB4, or heterodimers or homodimers thereof, including neuregulin isoforms, neuregulin EGF-like domains, polypeptides containing neuregulin EGF-like domain(s), neuregulin variants or derivatives, and other neuregulin-like gene products that can activate the above receptors. Neuregulin also includes NRG1, NRG2, NRG3, and NRG4 proteins, polypeptides with NRG-like function, fragments, and complexes. Preferably, neuregulin is a protein or polypeptide that can bind to and activate ErbB2 / ErbB4 or ErbB2 / ErbB3 heterodimers. To refer to an illustrative, but not limiting, example, the neuregulin of the present invention is a fragment of the NRG-1β2 isoform, i.e., a fragment of amino acids 177 to 237, which contains the EGF-like domain. The fragment has the following amino acid sequence: [ka] The neuregulin used in the present invention can activate the above receptors and regulate their biological functions; for example, neuregulin can stimulate the synthesis of acetylcholine receptors in skeletal muscle cells and promote the differentiation, survival, and DNA synthesis of cardiomyocytes. Neuregulin also includes neuregulin variants with conservative mutations that do not substantially affect the biological function of the protein. As is well understood by those of ordinary skill in the art, single amino acid mutations in non-critical regions generally do not alter the biological function of a protein or polypeptide (see Watson et al., Molecular Biology of the Gene, 4th ed., 1987, The Bejacmin / Cummings Pub. Co., p. 224). The neuregulin used in the present invention can be isolated from natural sources or obtained through genetic recombination, artificial synthesis, or other approaches.
[0026] As used herein, an "epidermal growth factor-like domain" or "EGF-like domain" is encoded by the neuregulin gene and can bind to and activate ErbB2, ErbB3, ErbB4, or heterodimers or homodimers thereof, and is described in the following references: WO 00 / 64400; Holmes et al., Science, 256:1205-1210 (1992); U.S. Pat. Nos. 5,530,109 and 5,716,930; Hijazi et al., Int. J. Oncol., 13:1061-1067 (1998); Chang et al., Nature, 387:509-512 (1997); Carraway et al., Nature, 387:512-516 (1997); It refers to a polypeptide fragment structurally similar to the EGF receptor-binding domain described in Higashiyama et al., J. Biochem., 122:675-680 (1997), and WO 97 / 09425. In some embodiments, the EGF-like domain binds to and activates ErbB2 / ErbB4 or ErbB2 / ErbB3 heterodimers. In some embodiments, the EGF-like domain comprises amino acids in the receptor-binding domain of NRG-1. In some embodiments, the EGF-like domain refers to amino acids at positions 177-226, 177-237, or 177-240 of NRG-1. In some embodiments, the EGF-like domain comprises amino acids in the receptor-binding domain of NRG-2. In some embodiments, the EGF-like domain comprises amino acids in the receptor-binding domain of NRG-3. In some embodiments, the EGF-like domain comprises amino acids in the receptor-binding domain of NRG-4. In some embodiments, the EGF-like domain comprises the following amino acid sequence set forth in U.S. Patent No. 5,834,229: Ala Glu Lys Glu Lys Thr Phe Cys Val Asn Gly Gly Glu Cys Phe Met Val Lys Asp Leu Ser Asn Pro.
[0027] The dosage form, dose, and route of administration of neuregulin proteins, as well as the preferred pharmaceutical composition, can be determined according to methods known in the art (e.g., "Remington: The Science and Practice of Pharmacy," Alfonso R. Gennaro (ed.), Mack Publishing Company, 1997; "Therapeutic Peptides and Proteins: Formulation, Processing, and Delivery Systems," Banga, 1999; "Pharmaceutical Formulation Development of Peptides and Proteins," Hovgaard and Frkjr (eds.), Taylor & Francis, Inc., 2000; "Medical Applications of Liposomes," Lasic and Papahadjopoulos (eds.), Elsevier Science, 1998; "Textbook of Gene Therapy," Gene Therapy, 19 ...Therapeutic Peptides and Proteins: Formulation, Processing, and Delivery Systems," Banga, 1999; "Pharmaceutical Formulation Development of Peptides and Proteins," Gene Therapy, 1999 (See, for example, "Adenoviruses: Basic Biology to Gene Therapy," Jain, Hogrefe & Huber Publishers, 1998; "Adenoviruses: Basic Biology to Gene Therapy," Vol. 15, Seth, Landes Bioscience, 1999; "Biopharmaceutical Drug Design and Development," Wu-Pong and Rojanasakul (eds.), Humana Press, 1999; and "Therapeutic Angiogenesis: From Basic Science to the Clinic," Vol. 28, Dole et al. (eds.), SpringerVerlag New York, 1999).
[0028] Neuregulin proteins can be formulated for oral, rectal, topical, inhalation, buccal (sublingual), parenteral (e.g., subcutaneous, intramuscular, intradermal, or intravenous), transdermal, or other suitable routes of administration. Of all these modes of administration, the most appropriate can be determined depending on the nature and severity of the disease and the characteristics of the particular neuregulin protein used. Neuregulin proteins can be administered alone; or, more appropriately, co-administered with a drug-compatible carrier or excipient. Any currently suitable drug-acceptable carrier or excipient can be used in current methods (see, e.g., Remington: The Science and Practice of Pharmacy, Alfonso R. Gennaro (editor), Mack Publishing Company, April 1997).
[0029] According to the present invention, various preparations of neuregulin protein alone or with other vehicles, carriers, or excipients can be used for a variety of suitable administration routes, including intracavity injection, subcutaneous injection, intravenous injection, intramuscular injection, intradermal injection, oral administration, or buccal administration. Neuregulin can be administered in unit dosage form in ampoules or multi-dose containers containing a preservative. Neuregulin can be prepared in dosage forms such as suspensions, solutions, aqueous or butter emulsions, and suspending, stabilizing, and / or dispersing agents can be added; alternatively, the active ingredient can be in powder form before use and dissolved in an appropriate vehicle, such as sterile, nonpyrogenic water or other solvents. When used as a topical product, the medicament of the present invention can be prepared into a foaming composition, gel, salve, transdermal patch, or pasta.
[0030] Acceptable compositions and modes of administration for the drugs of the present invention include, but are not limited to, those disclosed in U.S. Patent Nos. 5,736,154, 6,197,801 B1, 5,741,511, 5,886,039, 5,941,868, 6,258,374 B1, and 5,686,102.
[0031] The magnitude of a therapeutic dose in treatment or prophylaxis will vary with the severity of the condition to be treated and the route of administration. The dose, and perhaps the frequency of administration, will also vary with the age, weight, condition, and response of the individual patient.
[0032] Please note that the attending physician has the obligation to know when and how to terminate or interrupt treatment or adjust / reduce the dosage in the event of toxicity or adverse reactions, and conversely, the physician should know when and how to adjust the dose to a higher level if the clinical response is inadequate.
[0033] Any suitable route of administration can be used. Drugs can be in the form of tablets, lozenges, wafers, dispersions, suspensions, solutions, capsules, patches, and the like. See Remington's Pharmaceutical Sciences. In practical use, neuregulin proteins, alone or in combination with other drugs, can be combined as active ingredients in intimate mixtures with pharmaceutical carriers or excipients, such as β-cyclodextrin and 2-hydroxypropyl-β-cyclodextrin, according to conventional pharmaceutical compounding techniques. Carriers can be a wide variety of preparations desirable for topical or parenteral administration. In preparing compositions for parenteral dosage forms, such as intravenous injection or infusion, similar pharmaceutical vehicles known to those skilled in the art can be utilized, such as water, glycols, oils, buffers, sugars, preservatives, liposomes, and the like. Examples of such parenteral compositions include, but are not limited to, dextrose 5% w / v, normal saline, or other solutions. The total dose of neuregulin protein to be administered, alone or in combination with other drugs, can be administered in a vial of intravenous fluid ranging from about 1 ml to 2000 ml, with the volume of the diluent varying depending on the total dose to be administered.
[0034] The present invention also provides kits for carrying out the therapeutic regimen. The kits include one or more containers of an effective dose of neuregulin protein. The protein can be provided alone or in combination with other acceptable drugs / substances to form a composition. A preferred pharmaceutical form is combined with sterile saline, dextrose solution, or buffer, or other pharmaceutically acceptable sterile liquid. Alternatively, the composition can be lyophilized or desiccated; in this case, the kit optionally further includes a pharmaceutically acceptable solution, preferably sterile, for reconstituting the complex in a container to form a solution for injection. Exemplary pharmaceutically acceptable solutions are saline and dextrose solution.
[0035] As used herein, "therapy" or "treatment" refers to any manner in which the symptoms of a condition, disorder, or disease are ameliorated or otherwise beneficially altered. The effect may be prophylactic, in the sense of completely or partially preventing the disease or its symptoms, and / or therapeutic, in the sense of partially or completely curing the disease and / or the deleterious effects attributable to the disease. Treatment also encompasses any pharmaceutical use of the compositions herein.
[0036] As used herein, "heart failure" refers to an abnormality in cardiac function in which the heart does not pump blood at a rate necessary for metabolic tissue needs. Heart failure includes a wide range of disease states, such as congestive heart failure, myocardial infarction, tachyarrhythmia, familial hypertrophic cardiomyopathy, ischemic heart disease, idiopathic dilated cardiomyopathy, and myocarditis. Heart failure can be caused by several factors, including, but not limited to, ischemic, congenital, rheumatic, viral, toxic, or idiopathic forms. Chronic cardiac hypertrophy is a serious disease state that is a precursor to congestive heart failure and cardiac arrest.
[0037] Unless the context specifies otherwise, the terms "protein", "polypeptide" and "peptide" as used herein have the same meaning.
[0038] Unless the context specifies otherwise, "plasma" and "serum" as used herein have the same meaning.
[0039] Unless the context clearly indicates otherwise, as used herein, "not more than" refers to "less than or equal to."
[0040] As used herein, "long-term benefit" refers to a benefit caused by a treatment or intervention that cannot be observed in the short term after the treatment or intervention. For patients with chronic heart failure, long-term benefit can be improved survival, reduced re-hospitalization, or improved biomarkers indicative of long-term prognosis. In some embodiments, the observation period for benefit is about 6 months. In some embodiments, the observation period for benefit is about 1 year. In some embodiments, the observation period for benefit is about 2 years. And in other embodiments, the observation period for benefit is about 3 years, 5 years, 10 years, or more.
[0041] As used herein, "survival" refers to the time or probability that a subject will remain alive or survive. It can also be expressed as survival time or survival rate. Survival time is the period from diagnosis or treatment to the end of life. Survival rate refers to the percentage of people who are alive for a given period after diagnosis or treatment. For each subject, an extension of survival time resulting from treatment or intervention can be considered a benefit. For a group or large population of subjects, an extension of average survival time or an increase in survival rate can be considered a benefit.
[0042] As used herein, "readmission" refers to the number or frequency of a patient's hospitalization within a given period of time. Hospitalizations may be due to all conditions or only to the same condition being treated. For each subject, a reduction in the number of readmissions within a given period of time can be considered a benefit. And for a group or population of subjects, a reduction in the total or average number of readmissions can be considered a benefit.
[0043] As used herein, "N-terminal brain natriuretic peptide" or "NT-proBNP" refers to the inactive remnant N-terminal proBNP, which is a prohormone of the hormonally active natriuretic peptide BNP that is released primarily from cardiac myocytes in the left ventricular wall. In response to stretch and strain of the cardiac muscle wall, the prohormone proBNP is separated by proteolytic cleavage into BNP and the hormonally inactive remnant NT-proBNP.
[0044] Plasma levels of BNP and NT-proBNP are promising tools for the daily management of suspected or established heart failure. Most studies on the use of BNP and NT-proBNP in clinical practice have addressed their diagnostic properties, and an increasing amount of evidence is available supporting the prognostic value of BNP and NT-proBNP. NT-proBNP has a serum half-life approximately six times longer than BNP, making it more widely used as a diagnostic or prognostic marker for heart failure. Plasma NT-proBNP levels can be analyzed using commercially available kits, including, but not limited to, commercial kits from Roche or Biomedica.
[0045] Both BNP and NT-proBNP levels in plasma are used in screening and prognosis of heart failure, as both markers are typically higher in patients with poorer outcomes, and are useful in establishing the prognosis of heart failure. The present invention has discovered that plasma levels of BNP or NT-proBNP indicate that a patient is suitable for neuregulin-based treatment of heart failure.
[0046] As used herein, the "New York Heart Association (NYHA) functional classification" or "NYHA" cardiac functional classification is a simple method for classifying the degree of heart failure. This classification places patients into one of four categories based on how much limitation they experience during physical activity; the limitation / symptoms are related to normal breathing and various degrees of shortness of breath and / or anginal pain: I, symptoms and limitations during normal physical activity, such as no shortness of breath when walking or climbing stairs; II, mild symptoms (mild shortness of breath and / or angina) and slight limitations during normal activity; III, symptoms significantly limit activity even during less than normal activity, such as walking short distances (20-100m), and are only stable at rest; and IV, severe limitations, often bedridden patients, who experience symptoms even at rest.
[0047] As used herein, "activity unit" or "EU" or "U" refers to the amount of a standard capable of inducing 50% of the maximum response. In other words, to determine the activity unit of a given active agent, the EC50 must be measured. For example, if a batch of product has an EC50 of 0.1 pg, that would be 1 unit. Furthermore, if 1 pg of that product is used, 10 EU (1 / 0.1) would be used. EC50 can be determined by any method known in the art, including the method employed by the inventors. This determination of activity unit is important for the quality control of genetically engineered products and clinically used drugs, allowing for the quantification of products manufactured by different pharmaceutical companies and / or with different batch numbers on a uniform basis.
[0048] The following is an exemplary rapid, sensitive, high-throughput, and quantitative method for determining the biological activity of NRG-1 through its binding to cell surface ErbB3 / ErbB4 molecules and indirect mediation by ErbB2 phosphorylation (see, e.g., Michael D. Sadick et al., 1996, Analytical Biochemistry, 235:207-214 and WO03 / 099300).
[0049] Briefly, this assay, called the kinase receptor activation enzyme-linked immunosorbent assay (KIRA-ELISA), consists of two separate microtiter plates: one for cell culture, ligand stimulation, and cell lysis / receptor solubilization, and the other for receptor capture and phosphotyrosine ELISA. For analysis of NRG-induced ErbB2 activation, an assay was developed that utilizes stimulation of intact receptors on the surface of the adherent breast cancer cell line MCF-7. Membrane proteins were solubilized by Triton X-100 lysis, and the receptor was captured in ELISA wells coated with an antibody specific for ErbB2 but not cross-reactive with ErbB3 or ErbB4. The extent of receptor phosphorylation was then quantified by anti-phosphotyrosine ELISA. A reproducible standard curve was generated using heregulin β1(177-244) with an EC50 of approximately 360 pM. When the same sample of HRGβ1(177-244) was analyzed by both KIRA-ELISA and quantitative anti-phosphotyrosine Western blot analysis, the results correlated very closely with each other. The assay described in this report is capable of specifically quantifying tyrosine phosphorylation of ErbB2 resulting from the interaction of HRG with ErbB3 and / or ErbB4.
[0050] Since most genetically engineered drugs are proteins and polypeptides, their activity can be determined by their amino acid sequence or the active center formed by their three-dimensional structure. The potency of proteins and polypeptides does not correspond to their absolute quality, so it cannot be determined using weight units like the potency of chemical drugs. However, the biological activity of genetically engineered drugs generally corresponds to their pharmacodynamic properties, and a potency determination system established through a given biological activity can determine its potency unit. Therefore, determining biological activity can be part of the dose setting process for biologically active substances and is an important component of the quality control of genetically engineered products. It is important to determine biological activity standards for the quality control of genetically engineered products and drugs used in clinical practice.
[0051] The amount of standard that can induce 50% of the maximum response is defined as an activity unit (1 EU), allowing products manufactured by different pharmaceutical companies and with different batch numbers to be quantified on a uniform basis. [Example]
[0052] (Detailed Description of the Invention) Embodiment 1: A Randomized, Double-Blind, Multicenter, Placebo-Controlled Survival Study of Recombinant Human Neuregulin in Patients with Chronic Heart Failure on Standard of Care (Study 209) (Study 209) A phase II, double-blind, multicenter, placebo-controlled, standard-of-care (STC) study was conducted at multiple clinical centers in China to evaluate the efficacy of injectable recombinant human neuregulin (rhNRG-1) in the treatment of chronic heart failure. A total of 351 patients with NYHA class III or IV chronic heart failure were enrolled and randomized to placebo or rhNRG-1 (0.6 μg / kg). There were no significant differences between the groups in terms of demographics and background treatment. Patients were admitted to the hospital, administered the drug for 10 consecutive days as planned, and discharged on day 11. From week 3 to week 25, patients received a weekly dose in the outpatient ward. Blood samples were collected from patients before treatment and after each dose. Plasma NT-proBNP levels were determined by a core laboratory (using a reagent kit manufactured by Biomedica). Patient survival information was collected at week 52 of the study.
[0053] Investigational Products: Specifications: rhNRG-1, a 61 amino acid polypeptide, contains the EGF-like domain of the neuregulin-1β2 isoform and has a molecular weight of 7054 Da (1 pg = 0.14 nmol). placebo: Specifications: Excipient for rhNRG-1 (250 pg / vial without active recombinant human neuregulin-1 protein). Dosage regimen: [Table 1]
[0054] Inclusion criteria for the clinical trial included patients with CHF (ages 18 to 65 years, NYHA class III or IV, LVEF ≤ 40%) in a relatively stable clinical state (including clinical signs, symptoms, and approved standard treatment for CHF at target doses or maximum tolerated doses for more than one month). Major exclusion criteria included acute myocardial infarction, hypertrophic cardiomyopathy, constrictive pericarditis, significant valvular or congenital heart disease, severe pulmonary hypertension, systolic blood pressure < 90 mmHg or > 160 mmHg, severe ventricular arrhythmia, cardiac surgery, or cerebrovascular event within the past 6 months, claustrophobia, or pregnant female subjects. All patients provided written informed consent.
[0055] Embodiment 2: A Multicenter, Randomized, Double-Blind, Placebo-Controlled Survival Study of Recombinant Human Neuregulin in Patients with Chronic Heart Failure on Standard of Care (Study 301) A phase III, double-blind, multicenter, placebo-controlled, standard-of-care (STC) study was conducted at multiple clinical centers in China to evaluate the efficacy of injectable recombinant human neuregulin (rhNRG-1) in the treatment of chronic heart failure. A total of 331 patients with NYHA class III or IV chronic heart failure were enrolled and randomized to placebo, rhNRG-1 (0.6 μg / kg), or rhNRG-1 (1.0 μg / kg). There were no significant differences in demographics or background treatment between the groups. Patients were admitted to the hospital and administered the drug for 10 consecutive days as scheduled, and were discharged on day 11. From week 3 to week 25, patients received a weekly dose in the outpatient ward. Blood samples were collected from patients before treatment and after each dose. Plasma NT-proBNP levels were determined by a core laboratory using a reagent kit manufactured by Biomedica. Patient survival information was collected at week 52 of the study.
[0056] Investigational Products: Specifications: rhNRG-1, a 61 amino acid polypeptide, contains the EGF-like domain of the neuregulin-1β2 isoform and has a molecular weight of 7054 Da (1 pg = 0.14 nmol). placebo: Specifications: Excipient for rhNRG-1 (250 pg / vial without active recombinant human neuregulin-1 protein). Dosage regimen: [Table 2]
[0057] Inclusion criteria for the clinical trial included patients aged 18 to 80 years with CHF (NYHA class III or IV) and LVEF ≤ 40% in a relatively stable clinical condition (including clinical signs, symptoms, and approved standard treatment for CHF at target doses or maximum tolerated doses for more than one month). Major exclusion criteria included acute myocardial infarction, hypertrophic cardiomyopathy, constrictive pericarditis, significant valvular or congenital heart disease, severe pulmonary hypertension, systolic blood pressure < 90 mmHg or > 160 mmHg, severe ventricular arrhythmia, cardiac surgery, or cerebrovascular event within the past 6 months, claustrophobia, or pregnant female subjects. All patients provided written informed consent.
[0058] Embodiment 3: A Multicenter, Randomized, Double-Blind, Placebo-Controlled Survival Study of Recombinant Human Neuregulin in Patients with Chronic Heart Failure on Standard of Care (Study 305) A double-blind, multicenter, placebo-controlled, standard-of-care study was conducted at multiple clinical centers in China to evaluate the efficacy of injectable recombinant human neuregulin (rhNRG-1) in the treatment of chronic heart failure. A total of 679 patients with NYHA class II or class III chronic heart failure were enrolled and randomized to placebo or rhNRG-1 (0.6 μg / kg). There were no significant differences between the groups in terms of demographics and background treatment. Patients were admitted to the hospital, administered the drug for 10 consecutive days as planned, and discharged on day 11. From week 3 to week 25, patients received a weekly dose in the outpatient ward. Blood samples were collected from patients before treatment and after each dose. Plasma NT-proBNP levels were determined by a core laboratory using a reagent kit manufactured by Biomedica. Patient survival information was collected at week 52 of the study.
[0059] Investigational Products: Specifications: rhNRG-1, a 61 amino acid polypeptide, contains the EGF-like domain of the neuregulin-1β2 isoform and has a molecular weight of 7054 Da (1 pg = 0.14 nmol). placebo: Specifications: Excipient for rhNRG-1 (250 pg / vial without active recombinant human neuregulin-1 protein). Dosage regimen: [Table 3]
[0060] Inclusion criteria for the study: Patients with chronic HF (NYHA functional class II or III) aged 18 to 75 years with clinically stable (including clinical symptoms and physical signs) LVEF ≤ 40% who had been receiving standard HF treatment at the target dose level or at the maximum tolerated dose for > 1 month. Exclusion criteria: acute myocardial infarction, hypertrophic cardiomyopathy, stenosing pericarditis, significant valvular pathological changes or congenital heart disease, severe pulmonary artery hypertension, systolic pressure < 90 mmHg or > 160 mmHg, severe ventricular arrhythmias, cardiac surgery within 6 months of the study, or a cerebrovascular accident, claustrophobia, or pregnant women. All patients were required to understand and sign an informed consent form.
[0061] The applicant conducted a statistical analysis of data from three separate clinical trials. The analysis of pooled data from the three separate clinical trials in all female subjects (patients with mild, moderate, and severe NYHA class II-IV disease) showed the following results: Women in the treatment group achieved a statistically significant survival benefit (P=0.016) compared with standard patients in the treatment-based placebo control group. All-cause mortality among subjects was reduced by more than 50% during the study period. In each of the separate trials, all women in the treatment group achieved a survival benefit, a trend consistent with that observed in the analysis of pooled data from the three trials.
[0062] The results from the analysis of pooled data: In general, the lower the subjects' baseline NT-proBNP levels, the greater their survival benefit (relative reduction in all-cause mortality) during the study period; among female subjects with baseline NT-proBNP levels of 3000 fmol / mL or less, the treatment group subjects had a 0% mortality rate; in contrast, the all-cause mortality rate for standard subjects in the treatment-based placebo control group was approximately 10%; treatment group subjects achieved a highly statistically significant survival benefit (P<0.001). In all separate studies, female subjects showed a trend toward a survival benefit, consistent with the trend in the analysis of pooled data.
[0063] Clinical results demonstrated that rhNRG-1 can more effectively identify patients with mild to moderate heart failure, consistent with the results of a rat model of HF induced by aortic coarctation. As HF progresses to a more severe stage, with the heart bending and pumping function failing, the expression of ErbB2 and ErbB4 receptors is significantly reduced. Therefore, recombinant human neuregulin may be able to provide greater benefit to patients in the early stages of HF, i.e., before the downregulation of ErbB2 / ErbB4 receptor expression.
[0064] Table 1: All-cause mortality - summary of subgroup analyses: (pooled analysis of data from studies 209 / 301 / 305) [Table 4] Abbreviations: LVEF = left ventricular ejection fraction, N = total number of subjects analyzed, n = number of subjects in a particular category, NYHA = New York Heart Association
[0065] When assay results revealed baseline NT-proBNP levels of ≦1600 fmol / ml, rhNRG-1 demonstrated the potential to significantly reduce mortality in subjects regardless of their gender (Table 1); however, this conclusion did not hold when pooled data from subjects of both genders with higher baseline NT-proBNP levels were analyzed. Further analysis revealed that rhNRG-1 resulted in a statistically significant reduction in mortality in all female subjects studied (Table 1). As shown in Table 2, the same trend in women was found in individual studies 209, 301, and 305.
[0066] Table 2: All-cause mortality - summary of subgroup analyses: Single clinical trial (analysis of tests 209 / 301 / 305) [Table 5] Abbreviations: LVEF = left ventricular ejection fraction, N = total number of subjects analyzed, n = number of subjects in a particular category, NYHA = New York Heart Association
[0067] Because female subjects showed greater improvement in both the pooled and individual studies, baseline NT-proBNP percentiles were subjected to further subgroup analyses for female subjects. These subgroups were subjected to pooled and single analyses for patients with NT-proBNP ≦1600 fmol / ml (∼50%), NT-proBNP ≦3000 fmol / ml (∼75%), and all female patients, as shown in Table 3.
[0068] A pooled analysis of three clinical trials, 209, 301, and 305, revealed that the mortality rates for female subjects in three subgroups of rhNRG-1-treated female subjects were 0%, 0%, and 7.1%, respectively: those with NT-proBNP ≦1600, those with NT-pro BNP ≦3000 fmol / ml, and all female patients. The mortality rates for the three corresponding subgroups of subjects receiving placebo were 8.4%, 10.4%, and 16.1%, respectively; rhNRG-1 was shown to be able to significantly reduce mortality, especially in the NT-proBNP ≦3000 fmol / ml subgroup, which accounted for 75% of the enrolled female subjects, as shown in Table 3.
[0069] Separate analyses of studies 209, 301, and 305 revealed that the mortality rates for female subjects in the NT-proBNP ≦3000 fmol / ml subgroup in the NRG-1 treatment arms of the studies were 0%, 0%, and 0%, respectively, while the mortality rates in the corresponding placebo arms were 21.4%, 8.3%, and 6.3%, as shown in Table 3.
[0070] In male patients, in the subgroups with NT-proBNP ≦4000 fmol / ml or NT-proBNP ≦3000 fmol / ml, some clinical trials have shown that the mortality rate in the rhNRG-1 treatment group is superior to that in the placebo group. More specifically, a pooled analysis of male subjects with NT-proBNP ≦1600 fmol / ml in Studies 209, 301, and 305 revealed that the mortality rate in the rhNRG-1 treatment group was significantly lower than that in the placebo group (2.6% vs. 5.6%). This reduction was in line with the comprehensive analysis of all subjects of both genders.
[0071] Table 3: All-cause mortality - female subgroup analysis summary: (pooled and individual analyses of data from studies 209 / 301 / 305) [Table 6]
[0072] In light of the above analyses, individual and pooled analyses of female subjects with NT-proBNP ≦3000 fmol / ml and male subjects with NT-proBNP ≦1600 fmol / ml in any of the three clinical trials were performed as shown in Table 4. For these pooled male and female subjects, the mortality improvement results in the rhNRG-1 treatment group were significantly better than in the placebo group.
[0073] Table 4: All-cause mortality - summary of subgroup analyses: (pooled and individual analyses of data from studies 209 / 301 / 305) [Table 7]
[0074] The above embodiments do not limit the scope of protection of the test. Those skilled in the art can adjust and modify the present invention without departing from the purpose and scope of the present invention. Therefore, the scope of protection of the present invention should be defined according to rights and requirements, rather than specific embodiments. The present application provides the following aspects of the invention. (Aspect 1) Use of NRG in the manufacture of a medicament for the treatment of heart failure (HF), wherein the patient with heart failure is a female HF patient whose pre-treatment plasma level of NT-proBNP is 3000 fmol / ml or less. (Aspect 2) The use of embodiment 1, wherein the NRG is NRG-1. (Aspect 3) The use of embodiment 1, wherein said NRG comprises the EGF-like domain of NRG-1. (Aspect 4) The use of embodiment 1, wherein the NRG comprises the amino acid sequence of SEQ ID NO:1. (Aspect 5) 1. A method for screening HF patients suitable for treatment with neuregulin, comprising: performing a pretreatment diagnostic test; and determining the patient's eligibility for neuregulin treatment according to the test results. (Aspect 6) The method of embodiment 5, wherein the diagnostic test is a test for plasma levels of NT-proBNP or BNP. (Aspect 7) The method of embodiment 6, wherein the female HF patient has a pre-treatment plasma level of NT-proBNP of 3000 fmol / ml or less and the results of the diagnostic test indicate suitability for treatment with neuregulin. (Aspect 8) A diagnostic kit for use in screening HF patients for treatment with neuregulin, the diagnostic kit comprising immunoassay reagents for measuring plasma levels of NT-proBNP in HF patients. (Aspect 9) The diagnostic kit of embodiment 8, wherein the female HF patient has a pre-treatment plasma level of NT-proBNP of 3000 fmol / ml or less, and the results of the diagnostic test indicate suitability for treatment with neuregulin. (Aspect 10) A kit for treating heart failure, comprising the diagnostic kit of embodiment 8 and an effective dose of NRG.
Claims
1. A pharmaceutical composition for treating heart failure (HF) in a patient, the pharmaceutical composition comprising neuregulin (NRG), and the patient being a female HF patient with a pre-treatment plasma level of NT-proBNP of 3000 fmol / ml or less.
2. 2. The pharmaceutical composition of claim 1, wherein the NRG is NRG-1.
3. 2. The pharmaceutical composition of claim 1, wherein the NRG comprises the EGF-like domain of NRG-1.
4. 2. The pharmaceutical composition of claim 1, wherein the NRG comprises the amino acid sequence of SEQ ID NO:
1.
5. A method for obtaining data to screen HF patients for treatment with neuregulin, the method comprising measuring the plasma level of NT-proBNP in the HF patient, wherein if the HF patient is a female HF patient and has a pre-treatment plasma level of NT-proBNP of 3000 fmol / ml or less, the HF patient is indicated as being suitable for treatment with neuregulin.
Citation Information
Patent Citations
Compositions and therapies for the treatment of heart failure
JP2015501297A