Use of myostatin antagonists, combinations containing them, and their use

Combining ActRII receptor inhibitors with chemotherapeutic agents or mTOR inhibitors addresses cancer cachexia and chemotherapy-induced muscle wasting, enhancing treatment outcomes.

JP7841838B2Active Publication Date: 2026-04-07NOVARTIS AG
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2016-11-09
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Cancer cachexia, characterized by significant skeletal muscle loss and poor treatment tolerance, remains without a standard treatment, and chemotherapy drugs like cisplatin exacerbate muscle wasting, complicating cancer treatment outcomes.

Method used

Combining ActRII receptor inhibitors, such as bimaglumab, with chemotherapeutic agents or mTOR inhibitors to modulate muscle growth pathways, counteracting muscle wasting and improving chemotherapy tolerance.

Benefits of technology

Enhances chemotherapy efficacy, improves progression-free survival and overall survival in cancer patients by reducing muscle loss and increasing chemotherapy tolerance.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention relates to myostatin antagonists for the treatment of cancer cachexia and cancer cachexia resulting from chemotherapy. In particular, bimaglumab, a myostatin antagonist, has been found to be beneficial in treating cancer cachexia by reducing weight loss. This invention also relates to combinations of myostatin antagonists and mTOR inhibitors and their use for treating cancer cachexia by reducing, maintaining or increasing weight loss, or for use in treating age-related conditions.
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Description

[Technical Field]

[0001] This disclosure relates to the use of myostatins or activin antagonists, particularly activin type II (ActRII) receptor inhibitors, in the treatment of cancer cachexia.

[0002] More particularly, the present invention relates to a combination of (a) an activin type II receptor (ActRII) inhibitor and (b) a chemotherapeutic agent or a pharmaceutically acceptable salt thereof, for simultaneous, individual, or sequential use in the treatment of cancer cachexia, the use thereof, or a method of treatment using thereof.

[0003] This disclosure also relates to combinations of myostatin antagonists and mTOR inhibitors and their use. Such combinations are intended for use in cancer cachexia and age-related conditions. [Background technology]

[0004] Cachexia affects the majority of patients with advanced cancer and is associated with poor outcomes, reduced treatment tolerance, response to treatment, quality of life, and survival. Skeletal muscle loss appears to be the most significant event in cancer cachexia and cannot be fully reversed with conventional nutritional support [Fearon et al 2011, Tan et al 2009]. Recently, mouse models of ectopic lung and colon cancer have shown that direct myostatin inhibition using monoclonal antibodies and indirect inhibition using soluble ActRIIB-Fc protect against muscle wasting and even extend survival [Benny Klimek et al 2010, Busquets et al 2012, Murphy et al 2011, Zhou et al 2010].

[0005] Several members of the transforming growth factor beta (TGF-β) superfamily, including myostatin, activin A, and growth differentiation factor 11 (GDF-11), are known to negatively regulate skeletal muscle mass in animals and humans throughout the life cycle. The mechanism of myostatin signaling is complex due to the activation of several downstream pathways [Elkina et al 2011]. Myostatin, activin, and GDF-11 bind to the activin type II receptor (ActRII) and induce aggregation with the activin type I receptor. The absence of myostatin in animal and human development results in a hypermuscular phenotype with increased muscle fiber number and size [Lee and McPherron 2001, Schuelke et al 2004]. Similarly, inhibition of myostatin activity in adult animals increases muscle mass, suggesting that myostatin also suppresses skeletal muscle mass in adults [Whittemore et al 2003, Lee et al 2005, Nakatani et al 2008]. Conversely, high levels of myostatin or activin A have been reported to promote cachexia and subsequent muscle wasting [Zimmers et al, 2002; Chen et al, 2014].

[0006] International Publication No. 07 / 067616 shows that in normal mice treated with 5-fluorouracil, weight loss is reduced by administration of myostatin conjugates such as peptide-bound myostatin. However, International Publication No. 07 / 067616 does not show, as demonstrated by this disclosure, whether peptide-bound myostatin reduces or increases weight loss in tumor-bearing mouse models such as CT-26, with or without treatment using anticancer drugs.

[0007] Bimaglumab is a human monoclonal antibody developed to competitively bind to ActRII with higher affinity than its natural ligand, myostatin, and activin A. In mice, bimaglumab has been shown to induce skeletal muscle hypertrophy, protect against dexamethasone-induced atrophy [Lach-Trifilieff et al 2014], improve the disease status of patients with sporadic inclusion body myositis without causing serious adverse events [Amato et al 2014]. Pharmacological blockade of the ActRII pathway using soluble receptor antagonists has been shown to protect against cancer-induced cachexia in mice [Busquets et al 2012, Zhou et al 2010], but patients with cachexia and advanced cancer will likely receive anticancer drugs targeting specific cancer types as standard treatment, and it remains unclear whether ActRII inhibition remains effective when combined with anticancer drugs.

[0008] According to this invention, the effects of a chimeric mouse version of bimaglumab, which has been shown to retain the binding, selectivity, and potency profile of bimaglumab while reducing the risk of immunogenicity and enabling long-term profiling studies in mice, were evaluated in a CT-26 mouse colon cancer cachexia model, revealing the interaction between bimaglumab and chemotherapy. Furthermore, intervention at the activin type II receptor level via the use of bimaglumab as a neutralizing agent is effective in protecting against cancer-induced cachexia, as previously reported through blockade of circulating ligands (anti-myostatin agent or soluble ActRIIB-Fc).

[0009] Platinum-based drugs, such as cisplatin, are cytotoxic inserts that inhibit DNA replication in a highly nonspecific manner and are typically used as first-line therapies. Unfortunately, cisplatin has been shown to accelerate weight and muscle mass loss as a side effect. Therefore, we first aimed to evaluate the potential of bimaglumab in counteracting the cisplatin-mediated effects on muscle wasting. Subsequently, in follow-up studies, we evaluated the effects of more frequent administrations of bimaglumab and everolimus, new-generation, less cytotoxic molecular targeted agents that inhibit the mammalian target (mTOR) of rapamycin, on cancer cachexia.

[0010] Furthermore, a decrease in muscle mass and consequently a decrease in total body water (as part of the pathophysiology of cachexia) leads to a smaller volume of distribution for chemotherapeutic agents [Parsons 2012]. This, in turn, results in higher concentrations (Cmax and AUC) of these cytotoxic agents, leading to more adverse events and poorer chemotherapy tolerance in patients with cachexia than in cancer patients without cachexia [Sjoblom 2015, Arrieta 2015]. This invention demonstrates that, in patients with cancer cachexia, better chemotherapy tolerance, more effective anticancer treatment, and better outcomes (including progression-free survival and overall survival) can be achieved compared to using anticancer treatment alone.

[0011] Currently, there is no standard treatment for cancer cachexia. [Overview of the Initiative] [Problems that the invention aims to solve]

[0012] Therefore, whether or not chemotherapy is used, there is a strong need for drug therapies, particularly mTOR inhibitors, that can reduce, prevent, or even increase weight loss in the context of cancer.

[0013] Furthermore, combinations of myostatin or activin antagonists with the mTOR inhibitors described herein also have the potential to treat age-related conditions. [Means for solving the problem]

[0014] Therefore, the first subject matter of this disclosure relates to a combination of ActRII receptor inhibitors and chemotherapeutic agents for treating cancer cachexia.

[0015] Therefore, another subject of this disclosure relates to methods for treating cancer cachexia or the use of compositions comprising myostatin or activin antagonists, which may be myostatin-binding molecules or ActRII-binding molecules.

[0016] This disclosure describes how the effects of a chimeric mouse version of bimaglumab, which has been shown to retain the binding, selectivity, and potency profile of bimaglumab while reducing the risk of immunogenicity and enabling long-term profiling studies in mice, were evaluated in a CT-26 mouse colon cancer cachexia model, revealing the interaction between bimaglumab and chemotherapy. Furthermore, intervention at the activin type II receptor level via the use of bimaglumab, a neutralizing agent, is effective in protecting against cancer-induced cachexia, as previously reported through blockade of circulating ligands (anti-myostatin agents or soluble ActRIIB-Fc).

[0017] Platinum-based drugs, such as cisplatin, are cytotoxic inserts that interfere with DNA replication in a highly nonspecific manner and are typically used as first-line therapies. Unfortunately, cisplatin has been shown to accelerate weight and muscle loss as a side effect. First, we aimed to evaluate the potential of bimaglumab in counteracting the cisplatin-mediated effects on muscle wasting. Then, in follow-up studies, we evaluated the effects of more frequent administration of bimaglumab and everolimus, new-generation, less cytotoxic molecular targeted agents that inhibit the mammalian target (mTOR) of rapamycin, on cancer cachexia.

[0018] Muscle regulation and ActRII receptors Several members of the transforming growth factor beta (TGF-β) superfamily, including myostatin, activin A, and growth differentiation factor 11 (GDF11), negatively regulate skeletal muscle mass in animals and humans throughout the life cycle. Ligand signaling occurs via type II activin receptors (both ActRIIA and B, as well as the Smad2 / 3 pathway), inhibiting muscle protein synthesis and myocyte differentiation and proliferation. The absence of any of these ligands in animal and human development results in a hypermuscular phenotype with increased muscle fiber number and size. Postpartum myostatin levels decrease, leading to skeletal muscle hypertrophy due to increased size of existing muscle fibers (Lee et al 2005; Lee et al 2010; Trendelenburg et al 2012). Therefore, the ability to modulate muscle growth by disrupting this signaling pathway at the receptor level is considerably greater than previously recognized by direct anti-myostatin approaches.

[0019] As used herein, "myostatin antagonist" refers to a molecule that can antagonize (e.g., reduce, inhibit, decrease, or delay) the function, expression, and / or signaling of myostatin (e.g., by blocking the binding of myostatin to its myostatin receptor, i.e., ActRIIB). Non-limiting examples of antagonists include myostatin-binding molecules and ActRII (ActRIIA, ActRIIB, or ActRIIA / B) receptor-binding molecules. Myostatin antagonists are used in some embodiments of the methods, regimens, kits, processes, uses, and compositions of this disclosure.

[0020] "Myostatin-binding molecule" means any molecule that can bind to the human myostatin antigen, either alone or in association with other molecules. Binding reactions may be demonstrated by standard methods (qualitative assays), including, for example, binding assays, competitive assays, or bioassays to determine inhibition of myostatin binding to the receptor, or any type of binding assay, regardless of specificity, but ideally based on a negative control test using an antibody of the same isotype, e.g., an anti-CD25 antibody. Non-limiting examples of myostatin-binding molecules include small molecules, myostatin receptor decoys, and antibodies produced by B cells or hybridomas that bind to myostatin, as well as chimeric molecules, CDR grafts, or human antibodies or any fragments thereof, e.g., F(ab')2 and Fab fragments, and single-chain or single-domain antibodies. Preferably, the myostatin-binding molecule antagonizes (e.g., reduces, inhibits, diminishes, or delays) the function, expression, and / or signaling of myostatin. In some embodiments of the methods, regimens, kits, processes, uses, and compositions disclosed herein, myostatin-binding molecules are used.

[0021] "ActRII receptor inhibitor" means any molecule that can bind to the human ActRII receptor (ActRIIA and / or ActRIIB), either alone or in association with other molecules, and inhibit the signal transduction of the receptor. The binding and inhibition reactions may be shown by standard methods (qualitative assays) including, for example, binding assays, competition assays or bioassays to determine the inhibition of ActRII receptor binding to myostatin, or any type of binding assay based on a negative control test using an antibody of the same isotype, for example, anti-CD25 antibody, although specificity is not relevant. Non-limiting examples of ActRII receptor inhibitors include small molecules, myostatin decoys, and antibodies produced by B cells or hybridomas against the ActRII receptor, as well as chimeric, CDR grafted or human antibodies or any fragment thereof, for example F(ab’)2 and Fab fragments, and single-chain or single-domain antibodies. Preferably, the ActRII receptor binding molecule antagonizes (e.g., reduces, inhibits, decreases, delays) the function, expression and / or signal transduction of myostatin / activin. In some embodiments of the combinations, uses, methods and compositions of the present disclosure, an ActRII receptor inhibitor is used.

[0022] Bimagrumab Bimagrumab, a pharmaceutically active compound used according to the present invention, is a fully human monoclonal antibody (modified IgG1, 234-235-Ala-Ala, λ2) developed to competitively bind to activin receptor type II (ActRII) with higher affinity than natural ligands (including myostatin and activin) that limit muscle mass growth. Bimagrumab is cross-reactive with human and mouse ActRIIA and ActRIIB and is effective with respect to human, cynomolgus monkey, mouse and rat skeletal muscle cells. Bimagrumab binds to human ActRIIB with extremely high affinity (KD 1.7 ± 0.3 pM) and to human ActRIIA with relatively low affinity (KD 434 ± 25 pM).

[0023] The present invention is based on the therapeutic approach that when myostatin binding to the receptor ActRII (ActRIIB and / or ActRIIA) is sufficiently blocked, the activity of myostatin and other ligands that inhibit skeletal muscle growth acting on the receptor is significantly reduced, while some of these ligands can perform other physiological functions via secondary receptors (Upton et al 2009). Other approaches to reducing myostatin activity, namely, competitive soluble ActRII that provides a soluble receptor sink, may deplete a series of ActRII ligands that are active in other receptors, and may pose a greater safety risk than using receptor antagonist antibodies such as bimagrumab.

[0024] As another approach, the use of antibodies that bind to myostatin, such as LY2495655 (Eli Lilly), is mentioned, and these will then inhibit or reduce signal transduction via the ActRII receptor.

[0025] As a potent inhibitor of ActRII, bimagrumab blocks the effects of myostatin, activin A, GDF11, and probably other ligands that act via this receptor.

[0026] Therefore, the present invention provides, inter alia, myostatin antagonists or activin (e.g., activin A, activin B or activin AB) antagonists, preferably myostatin binding molecules or antibodies, more preferably inhibitors or more preferably anti-ActRII receptor antibodies, most preferably bimagrumab, for use in the treatment of cancer cachexia.

[0027] The present invention will be described in detail below with reference to the accompanying drawings: The present invention will be described in detail below with reference to the accompanying drawings:

Brief Description of the Drawings

[0028] [Figure 1]This graph shows the effects of cisplatin alone or in combination with CDD866 on body weight (A, B, C), tumor volume (D), and weight (E) in CT-26 mice with colon cancer-induced cachexia. Values ​​are expressed as mean ± SEM (n=10). Percentage change in body weight was calculated compared to the start of treatment on day 0; *: P<0.05, **: P<0.01 vs. non-tumor control; &&: P<0.01 vs. CT-26 control; ++: P<0.01 vs. non-tumor cisplatin; ##: P<0.01 vs. CT-26 cisplatin (Sidak multiple comparison test after ANOVA). [Figure 2] This graph shows the effects of cisplatin alone or in combination with CDD866 on muscle mass and progression-free survival in CT-26 mice with colon cancer-induced cachexia. Values ​​are expressed as mean ± SEM (n=10). The percentage change in muscle mass normalized to initial body weight on day 0 was calculated compared to non-tumor controls (A, B, C); *: P<0.05, **: P<0.01 vs non-tumor control; &: P<0.05, &&: P<0.01 vs CT-26 control; ++: P<0.01 vs non-tumor cisplatin; xx: P<0.01 vs non-tumor CDD866; ##: P<0.01 vs CT-26 cisplatin; $: P<0.05, $$: P<0.01 vs CT-26 CDD866 (Sidak multiple comparison test after ANOVA). The progression-free interval was expressed as a percentage event defined by the discontinuation criteria (D); the median number of days elapsed before reaching the discontinuation criteria was represented by a box with a minimum to maximum range (n=10) (E); and P<0.05 and P<0.01 were compared to CT-26 control (vehicle 1 / vehicle 2) (by Dunn multiple comparison test after ANOVA). [Figure 3]This graph shows the effects of everolimus alone or in combination with CDD866 on body weight (A, B, C), tumor volume (D), and weight (E) in CT-26 mice with colon cancer-induced cachexia. Values ​​are expressed as mean ± SEM (n=10). Percentage change in body weight was calculated compared to the start of treatment on day 0; *: P<0.05, **: P<0.01 vs. non-tumor control; &&: P<0.01 vs. CT-26 control; ++: P<0.01 vs. non-tumor everolimus; ##: P<0.01 vs. CT-26 everolimus (Sidak multiple comparison test after ANOVA). [Figure 4] This graph shows the effects of everolimus alone or in combination with CDD866 on muscle mass and progression-free survival in CT-26 mice with colon cancer-induced cachexia. Values ​​are expressed as mean ± SEM (n=10). Percentage change in muscle mass normalized to initial body weight on day 0 was calculated compared to non-tumor controls (A, B, C); *: P<0.05, **: P<0.01 vs non-tumor control; &: P<0.05, &&: P<0.01 vs CT-26 control; ++: P<0.01 vs non-tumor everolimus; xx: P<0.01 vs non-tumor CDD866; ##: P<0.01 vs CT-26 everolimus; $: P<0.05, $$: P<0.01 vs CT-26 CDD866 (Sidak multiple comparison test after ANOVA). The progression-free interval was expressed as a percentage event defined by the discontinuation criteria (D); the median number of days elapsed before reaching the discontinuation criteria was represented by a box with a minimum to maximum range (n=10) (E); and P<0.05 and P<0.01 were compared to CT-26 control (vehicle 1 / vehicle 2) (by Dunn multiple comparison test after ANOVA). [Figure 5] This figure shows that mTOR is overexpressed in the muscles of aged versus young rats. 1. mTOR is hyperactive in the skeletal muscle of aged versus young rats. 2. In the skeletal muscle of aged versus young rats, mTOR is not adequately downregulated after fasting. [Modes for carrying out the invention]

[0029] Detailed description of the present invention The present invention relates to a combination comprising (a) an activin receptor type II inhibitor and (b) a chemotherapeutic agent or a pharmaceutically acceptable salt thereof for the treatment of a target cancer cachexia, and to the use thereof for simultaneous, individual, or sequential use.

[0030] The present invention also relates to a combination of (a) a myostatin or activin antagonist and (b) an mTOR inhibitor for treating age-related conditions.

[0031] This combination may or may not be fixed in place, and is preferably not fixed.

[0032] Unless otherwise explicitly stated, the general terms used herein are defined as follows:

[0033] The terms “comprising” and “including” are used herein in an open-ended and non-restrictive sense unless otherwise noted.

[0034] The terms “a,” “an,” “the,” and similar references should be interpreted as encompassing both singular and plural forms in the context describing the present invention (particularly in the context of the following claims), unless otherwise explicitly stated herein or explicitly denied by the context. When the plural form is used for a compound, salt, etc., it is also considered to mean the singular compound, salt, etc.

[0035] The terms “combination” or “combination drug” are defined herein to refer to any fixed combination of one unit dosage form, an unfixed combination, or a kit of parts for combination administration in which an activin type II receptor (ActRII) antagonist or blocker and a chemotherapeutic agent, or a pharmaceutically acceptable salt thereof, can be administered simultaneously, individually, or sequentially, independently, within a time interval in which the combination partners can exhibit a cooperative, for example, additive or synergistic effect.

[0036] The term "fixed combination" means that the active ingredient or therapeutic agent is administered to the patient simultaneously in the form of a single entity or dosage form.

[0037] The term "unfixed combination" means that the active ingredients or therapeutic agents are administered to the patient as separate entities or dosage forms, either simultaneously, concurrently, or sequentially, without specific time constraints, and such administration brings three compounds to a therapeutically effective level in the body of the target, e.g., a mammal or a human.

[0038] Preferably, in this specification, the terms "combination" or "combination drug" refer to a combination that is not fixed.

[0039] The term “pharmaceutical composition” is defined herein to mean a mixture or solution containing at least one therapeutic agent to be administered to a subject, for example, a mammal or human being, in order to treat a particular disease or condition that the subject is suffering from.

[0040] The term “pharmaceutically acceptable” is defined herein to mean a compound, biological agent, material, composition and / or dosage form that, within the bounds of sound medical judgment, is suitable for contact with a subject, e.g., mammalian or human tissue, and does not have excessive toxicity, irritation, allergic reactions and other problematic complications, and is commensurate with a reasonable benefit-risk ratio.

[0041] The term “combined administration,” as used herein, is defined to encompass the administration of a selected therapeutic agent to a single subject, e.g., a mammal or a human, and is intended to include treatment regimens in which the therapeutic agents are not necessarily administered via the same route of administration or simultaneously.

[0042] The term “to treat” or “treatment,” as used herein, includes treatment that reduces, diminishes or alleviates at least one symptom in a subject, or that delays the progression of a disease, condition, and / or disorder. For example, treatment may be the attenuation of one or more symptoms of a disorder, or the complete elimination of the disorder. In the sense of the present invention, the term “to treat” also means preventing or delaying the onset of disease (i.e., the period prior to the clinical manifestations of a disease) and / or reducing the risk of developing or worsening a disease.

[0043] As used herein, the term “progression-free survival” refers to the length of time during and after treatment for a disease, such as cancer, during which a patient is alive but not experiencing a worsening of the disease. In clinical trials, measuring progression-free survival is one way to determine if a new treatment is working well. Progression-free survival is also known as PFS.

[0044] The term "overall survival," as used herein, refers to the length of time since the date of diagnosis or the start of treatment for a disease, such as cancer, that a patient is still alive. In clinical trials, measuring overall survival is one way to determine whether a new treatment is working well. Overall survival is also known as OS.

[0045] The term "pharmaceutically effective dose" or "therapeutic effective dose" for a combination of therapeutic agents is the amount sufficient to produce an observable improvement over baseline in the clinically observable signs and symptoms of the disease.

[0046] As used herein, the term “synergistic effect” refers to the action of two drugs, such as (a) and (b), or pharmaceutically acceptable salts thereof, that produce an effect on a subject, for example, by promoting and / or enhancing an immune response, and which is greater than the mere sum of the effects of each drug administered on its own. Synergistic effects can be calculated using appropriate methods, such as the sigmoid-emax equation (Holford, NHG and Scheiner, LB, Clin. Pharmacokinet. 6: 429-453 (1981)), Loewe's additive equation (Loewe, S. and Muischnek, H., Arch. Exp. Pathol Pharmacol. 114: 313-326 (1926)), and the median-effect equation (Chou, TC and Talalay, P., Adv. Enzyme Regul. 22: 27-55 (1984)). Applying each of the above-mentioned equations to experimental data and creating corresponding graphs can help evaluate the effects of drug combinations. The corresponding graphs associated with the above-mentioned equations are the concentration-effect curve, the isobologram curve, and the combination exponential curve, respectively.

[0047] The terms “subject” or “patient,” as used herein, include animals that can promote and / or enhance an immune response and / or have age-related conditions. Examples of subjects include mammals, e.g., humans, dogs, cattle, horses, pigs, sheep, goats, cats, mice, rabbits, rats, and transgenic non-human animals. In preferred embodiments, the subject is a human, e.g., a human who has, is at risk of developing, or is potentially developing cancer cachexia or an age-related condition.

[0048] The terms "about" or "approximately" mean within 10%, more preferably within 5%, of a given value or range.

[0049] The present invention will be described and illustrated in more detail below.

[0050] The present invention is provided in the following embodiments: 1. A combination comprising (a) an ActRII receptor inhibitor and b) a chemotherapeutic agent.

[0051] 2. Combinations of the items described in Embodiment 1 for simultaneous, individual, or consecutive use.

[0052] 3. A combination according to embodiment 1 or 2, wherein a) an ActRII receptor inhibitor and b) a chemotherapeutic agent are in separate forms.

[0053] 4.a) The combination according to Embodiments 1 to 3, wherein the anti-ActRII receptor antibody.

[0054] 5. The combination according to embodiments 1 to 4, wherein the anti-ActRII antibody is bimaglumab.

[0055] 6.b) The combination according to embodiments 1 to 5, wherein the platinum-containing anticancer agent is 6.b.

[0056] 7. A combination of any of the above embodiments for use as a pharmaceutical product.

[0057] 8. A combination according to embodiments 1 to 6, comprising (a) an ActRII receptor inhibitor and b) a chemotherapeutic agent, for use in the treatment of cancer cachexia.

[0058] 9. A combination of the embodiments described in 1 to 6, wherein the treatment for cancer cachexia is the reduction of weight loss.

[0059] 10. ActRII receptor inhibitors for use in the treatment of cancer cachexia.

[0060] 11. An ActRII receptor inhibitor for use according to embodiment 11, wherein cancer cachexia is caused by treatment with a chemotherapeutic agent.

[0061] 12. An ActRII receptor inhibitor for use according to any embodiment 10-12, wherein the treatment of cancer cachexia is to reduce weight loss.

[0062] 13. ActRII receptor inhibitors for use according to embodiments 10-12 in delaying the progression-free survival period of cancer in patients.

[0063] 14. ActRII receptor inhibitors for use according to embodiments 10-12 in delaying the progression-free period of cancer cachexia.

[0064] 15. ActRII receptor inhibitors for use according to embodiments 10-12 in extending cancer survival.

[0065] 16. An ActRII receptor inhibitor for use according to embodiments 10 to 15, wherein the ActRII receptor inhibitor is an anti-ActRII receptor antibody.

[0066] 17. An ActRII receptor inhibitor for use according to embodiment 16, wherein the anti-ActRII receptor antibody is bimaglumab.

[0067] 18. An ActRII receptor inhibitor for use according to embodiments 11 to 17, wherein the chemotherapeutic agent is a platinum-containing anticancer agent.

[0068] 19. A combination of a) a myostatin antagonist and b) an mTOR inhibitor.

[0069] 20. The combination according to embodiment 19, wherein the myostatin antagonist is an ActRII receptor inhibitor.

[0070] 21. The combination according to embodiment 20, wherein the ActRII receptor inhibitor is an anti-ActRII receptor antibody.

[0071] 22. The combination according to embodiment 21, wherein the anti-ActRII receptor antibody is bimaglumab.

[0072] 23. The combination according to embodiments 19 to 22, wherein the mTOR inhibitor is everolimus.

[0073] 24. Combinations of the substances described in embodiments 19 to 23 for use as pharmaceuticals.

[0074] 25. Combinations according to embodiments 19 to 23 for use in the treatment of cancer cachexia.

[0075] 26. The combination according to embodiments 19-23, wherein treating cancer cachexia prevents weight loss.

[0076] 27. The combination according to embodiments 19-23, wherein the treatment of cancer cachexia is to maintain body weight.

[0077] 28. The combination according to embodiments 19-23, wherein the treatment for cancer cachexia is to increase body weight.

[0078] 29. A combination according to embodiments 1 to 9, or a combination for use according to embodiments 19 to 28, wherein the therapeutic agent is present in an individual pharmaceutical composition.

[0079] 30. A combination of any one of embodiments 19 to 23 for use in the treatment of age-related conditions.

[0080] 31. The combination according to embodiment 30, wherein the age-related conditions are selected from the group consisting of sarcopenia, cutaneous atrophy, muscle wasting, cerebral atrophy, atherosclerosis, arteriosclerosis, emphysema, osteoporosis, osteoarthritis, hypertension, erectile dysfunction, dementia, Huntington's disease, Alzheimer's disease, cataracts, age-related macular degeneration, prostate cancer, stroke, reduced life expectancy, renal dysfunction, as well as age-related hearing loss, age-related mobility impairment (e.g., frailty), cognitive decline, age-related dementia, memory impairment, tendon stiffness, cardiac hypertrophy and cardiac dysfunction such as systolic and diastolic dysfunction, immunosenescence, cancer, obesity, and diabetes.

[0081] 32. Myostatin antagonists for use in delaying the progression-free survival period of cancer in patients treated with chemotherapy agents.

[0082] 33. A myostatin antagonist for use according to embodiment 30, wherein the chemotherapeutic agent is a platinum-containing anticancer drug such as cisplatin or carboplatin, or an mTOR inhibitor such as everolimus.

[0083] 34. A myostatin antagonist for use according to embodiments 32-33, wherein the myostatin antagonist is an ActRII receptor inhibitor.

[0084] 35. A myostatin antagonist for use according to embodiment 34, wherein the ActRII receptor inhibitor is an anti-ActRII receptor antibody.

[0085] 36. A myostatin antagonist for use according to embodiment 35, wherein the anti-ActRII receptor antibody is bimaglumab.

[0086] 37. A method for treating a subject having cancer cachexia, comprising administering an ActRII receptor inhibitor to the subject in an amount effective against the cancer cachexia.

[0087] 38. The method according to embodiment 37, wherein cancer cachexia is caused by treatment using a chemotherapeutic agent.

[0088] 39. The method according to embodiment 38, wherein the chemotherapeutic agent is a platinum-containing anticancer agent.

[0089] 40. The method according to any aspect 37-39, wherein the treatment of cancer cachexia is to reduce weight loss.

[0090] 41. A method for delaying the progression-free period of cancer in a subject with cancer, comprising administering an ActRII receptor inhibitor to the subject in an amount effective for delaying the progression-free period of cancer.

[0091] 42. A method for delaying the progression-free period of cancer in a subject having cancer cachexia, comprising administering an ActRII receptor inhibitor to the subject in an amount effective for delaying the progression-free period of cancer cachexia.

[0092] 43. A method for extending the cancer survival of a subject, comprising administering an ActRII receptor inhibitor to the subject in an amount effective for extending cancer survival.

[0093] 44. The method according to embodiments 37 to 44, wherein the ActRII receptor inhibitor is an anti-ActRII receptor antibody.

[0094] 45. The method according to embodiment 44, wherein the anti-ActRII receptor antibody is bimaglumab.

[0095] 46. ​​A method for treating a subject having cancer cachexia, comprising administering a myostatin antagonist and an mTOR inhibitor to the subject.

[0096] 47. A method for treating a subject having an age-related condition, comprising administering a myostatin antagonist and an mTOR inhibitor to the subject.

[0097] 48. The method according to embodiments 46-47, wherein the myostatin antagonist is an ActRII receptor inhibitor.

[0098] 49. The method according to embodiment 48, wherein the ActRII receptor inhibitor is an anti-ActRII receptor antibody.

[0099] 50. The method according to embodiment 49, wherein the anti-ActRII receptor antibody is bimaglumab.

[0100] 51. The method according to embodiments 46 to 50, wherein the mTOR inhibitor is everolimus.

[0101] 52. The method according to aspects 46 to 50, wherein the age-related conditions are selected from the group consisting of sarcopenia, cutaneous atrophy, muscle wasting, cerebral atrophy, atherosclerosis, arteriosclerosis, emphysema, osteoporosis, osteoarthritis, hypertension, erectile dysfunction, dementia, Huntington's disease, Alzheimer's disease, cataracts, age-related macular degeneration, prostate cancer, stroke, reduced life expectancy, renal dysfunction, as well as age-related hearing loss, age-related mobility impairment (e.g., frailty), cognitive decline, age-related dementia, memory impairment, tendon stiffness, cardiac hypertrophy and cardiac dysfunction such as systolic and diastolic dysfunction, immunosenescence, cancer, obesity, and diabetes.

[0102] 53. Methods of treatment in accordance with either the use or combination described above.

[0103] A preferred combination and use is bimaglumab with a platinum-containing anticancer agent such as cisplatin.

[0104] Another preferred combination and its use is bimaglumab with an mTOR inhibitor such as everolimus.

[0105] Further embodiments include: a) A combination of an ActRII receptor inhibitor such as bimaglumab and b) a PI3K inhibitor.

[0106] A combination according to any of the above embodiments, comprising an ActRII receptor inhibitor such as bimaglumab and a) a VEGF receptor inhibitor.

[0107] A further specific embodiment is a combination of a) an ActRII receptor inhibitor such as bimaglumab and b) a chemotherapeutic agent, for use in improving progression-free survival.

[0108] Another further specific embodiment is a combination comprising a) an ActRII receptor inhibitor such as bimaglumab and b) a chemotherapeutic agent for use in improving overall survival.

[0109] All embodiments can be combined with one another within the scope of the present invention.

[0110] In a further embodiment, the present invention provides a pharmaceutical composition comprising, individually, amounts that together are therapeutically effective in the treatment of cancer cachexia, the use thereof, or a method of treating cancer cachexia using such a pharmaceutical composition comprising a combination partner (a) and a combination partner (b) administered concurrently but individually or sequentially, in order to delay the progression-free period of cancer / cancer cachexia, to extend cancer survival, to improve progression-free survival or overall survival, and to treat age-related conditions.

[0111] Bimagrumab Information regarding the manufacturing of bimaglumab is provided in International Publication No. 2010 / 125003.

[0112] Bimaglumab contains at least one immunoglobulin heavy chain variable domain (V) in its sequence, which is a hypervariable region comprising CDR1 of SEQ ID NO: 1, CDR2 of SEQ ID NO: 2, and CDR3 of SEQ ID NO: 3. H It contains an antigen-binding site that includes ).

[0113] The use of antibodies having one, two, or three residues modified from any of the CDR1, CDR2, and / or CDR3 sequences of the heavy chain is also within the scope of the present invention.

[0114] Bimaglumab contains at least one immunoglobulin light chain variable domain (V) in its sequence, which is a hypervariable region comprising CDR1 of SEQ ID NO: 4, CDR2 of SEQ ID NO: 5, and CDR3 of SEQ ID NO: 6 or its CDR equivalent. L This also includes antigen-binding sites, including those listed above.

[0115] The use of antibodies having one, two, or three residues modified from any of the CDR1, CDR2, and / or CDR3 sequences of the light chain is also within the scope of the present invention.

[0116] Bimaglumab also includes the light chain of SEQ ID NO: 7 or SEQ ID NO: 8 and the heavy chain of SEQ ID NO: 9.

[0117] According to the present invention, the use of an antibody having 95% identity with the light chain and / or heavy chain is also included.

[0118] Bimaglumab sequence listing

[0119] [ka]

[0120] [ka]

[0121] [ka]

[0122] [ka]

[0123] [ka]

[0124] [ka]

[0125] [ka]

[0126] [ka]

[0127] [ka]

[0128] [ka]

[0129] [ka]

[0130] [ka]

[0131] Cachexia, or wasting syndrome, is characterized by weight loss, muscle atrophy, fatigue, weakness, and marked loss of appetite in individuals who are not actively trying to lose weight. The formal definition of cachexia is a decrease in body mass (weight) in which lean body mass is lost, even if the affected patient consumes more calories, and a primary pathology is appropriate.

[0132] Cachexia is seen in patients with cancer, AIDS, chronic obstructive pulmonary disease, multiple sclerosis, congestive heart failure, tuberculosis, familial amyloid polyneuropathy, gadolinium poisoning, mercury poisoning (acrospinal pain syndrome), and hormone deficiencies.

[0133] Cachexia is a positive risk factor for death; that is, if a patient has cachexia, the chance of death from the underlying condition increases dramatically. Cachexia can be a sign of various underlying disorders; when a patient presents with cachexia, physicians generally consider the possibility of cancer, metabolic acidosis (from decreased protein synthesis and increased protein catabolism), certain infections (e.g., tuberculosis, AIDS), chronic pancreatitis, and some autoimmune disorders, or amphetamine dependence. Cachexia physically weakens the patient from loss of appetite, asthenia, and anemia to immobility, and the response to standard care is usually poor. Sarcopenia is included as part of the pathology of cachexia.

[0134] Cancer cachexia: Cancer cachexia is a multifactorial syndrome defined by progressive skeletal muscle mass loss (which may or may not include fat mass loss) that cannot be fully reversed with conventional nutritional support and leads to progressive functional impairment.

[0135] Chemotherapy agents: Examples of chemotherapeutic agents include platinum-containing anticancer drugs (e.g., cisplatin, carboplatin), PI3K / mTOR inhibitors, everolimus, PI3K inhibitors, and VEGFR inhibitors.

[0136] In a broader sense, when referring to "chemotherapy," examples of chemotherapy include alkylating agents (e.g., cyclophosphamide, temozolomide), platinum-containing agents, antimetabolites (e.g., 5-fluorouracil, methotrexate, hydroxyurea, cytarabine, gemcitabine), topoisomerase inhibitors (e.g., doxorubicin, irinotecan), microtubule polymerization / depolymerization agents (e.g., vinblastine, vincristine, paclitaxel, docetaxel), endocrine agents (e.g., bicalutamide, leuprorelin, tamoxifen, letrozole), and more recent molecularly targeted agents (e.g., kinase inhibitors, antibodies).

[0137] mTOR inhibitor: As used herein, the term “mTOR inhibitor” refers to a compound or ligand that inhibits the cellular mTOR kinase, or a pharmaceutically acceptable salt thereof. In one embodiment, the mTOR inhibitor is an allosteric inhibitor. In one embodiment, the mTOR inhibitor is a catalytic inhibitor.

[0138] Allosteric mTOR inhibitors include rapamycin (sirolimus), a neutral tricyclic compound; rapamycin-related compounds, such as rapamycin derivatives and rapamycin analogs (also known as rapalogs), which have structural and functional similarities to rapamycin; and other macrolide compounds that inhibit mTOR activity.

[0139] Rapamycin is a known macrolide antibiotic produced by Streptomyces hygroscopicus, which has the structure shown in formula A.

[0140] [ka] See, for example, McAlpine, JB, et al., J. Antibiotics (1991) 44: 688; Schreiber, SL, et al., J. Am. Chem. Soc. (1991) 113: 7433; and U.S. Patent No. 3,929,992. Various numbering schemes have been proposed for rapamycin. To avoid confusion, in this specification, when naming a particular rapamycin analog, the name is given based on rapamycin using the numbering scheme of formula A.

[0141] Useful rapamycin analogs in the present invention are, for example, O-substituted analogs in which the hydroxyl group of the cyclohexyl ring of rapamycin is replaced by OR1 (wherein R1 is a hydroxyalkyl, hydroxyalkoxyalkyl, acylaminoalkyl, or aminoalkyl; for example, RAD001, also known as everolimus, is described in U.S. Patent No. 5,665,772 and International Publication No. 94 / 09010, which are incorporated by reference). Other suitable rapamycin analogs include those substituted at the 26 or 28 position. The rapamycin analog may be an epimer of the analog described above, in particular an epimer of the analog substituted at the 40, 28, or 26 position, and may optionally be further hydrogenated as described in U.S. Patent No. 6,015,815, International Publication No. 95 / 14023 and International Publication No. 99 / 15530, whose contents are incorporated by reference, for example ABT578, also known as zotarolimus, or a rapamycin analog described in U.S. Patent No. 7,091,213, International Publication No. 98 / 02441 and International Publication No. 01 / 14387, whose contents are incorporated by reference, for example AP23573, also known as ridafololimus.

[0142] Examples of rapamycin analogs suitable for use in the present invention, as specified in U.S. Patent No. 5,665,772, but not limited to these, include 40-O-benzylrapamycin, 40-O-(4'-hydroxymethyl)benzylrapamycin, 40-O-[4'-(1,2-dihydroxyethyl)]benzylrapamycin, 40-O-allylrapamycin, 40-O-[3'-(2,2-dimethyl-1,3-dioxolan-4(S)-yl)-propa-2'-en-1'-yl]rapamycin, (2'E,4'S)-40-O-(4',5 '-dihydroxypenta-2'-en-1'-yl)-rapamycin, 40-O-(2-hydroxy)ethoxycarbonylmethyl-rapamycin, 40-O-(2-hydroxy)ethyl-rapamycin, 40-O-(3-hydroxy)propyl-rapamycin, 40-O-(6-hydroxy)hexyl-rapamycin, 40-O-[2-(2-hydroxy)ethoxy]ethyl-rapamycin, 40-O-[(3S)-2,2-dimethyldioxolan-3-yl]methyl-rapamycin, 40-O-[(2S)-2,3-dihydroxypropane-1-yl ]-rapamycin, 40-O-(2-acetoxy)ethyl-rapamycin, 40-O-(2-nicotinoyloxy)ethyl-rapamycin, 40-O-[2-(N-morpholino)acetoxy]ethyl-rapamycin, 40-O-(2-N-imidazolylacetoxy)ethyl-rapamycin, 40-O-[2-(N-methyl-N'-piperazinyl)acetoxy]ethyl-rapamycin, 39-O-desmethyl-39,40-O,O-ethylene-rapamycin, (26R)-26-dihydro-40-O-(2-hydroxy)ethyl-rapamycin, 40- Examples include O-(2-aminoethyl)-rapamycin, 40-O-(2-acetaminoethyl)-rapamycin, 40-O-(2-nicotinamideethyl)-rapamycin, 40-O-(2-(N-methylimidazo-2'-ylcarbesoxamide)ethyl)-rapamycin, 40-O-(2-ethoxycarbonylaminoethyl)-rapamycin, 40-O-(2-tolylsulfonamidoethyl)-rapamycin, and 40-O-[2-(4',5'-dicarboethoxy-1',2',3'-triazole-1'-yl)-ethyl]-rapamycin.

[0143] Other rapamycin analogs useful in the present invention are those in which the hydroxyl group and / or the hydroxyl group at position 28 of the cyclohexyl ring of rapamycin are replaced with a hydroxyester group. For example, rapamycin analogs found in US RE44,768, such as temsirolimus, are known.

[0144] Other rapamycin analogs useful in the present invention include those in which the methoxy group at position 16 is replaced by another substituent, preferably (optionally hydroxy-substituted) alkynyloxy, benzyl, orthomethoxybenzyl, or chlorobenzyl, and / or the methoxy group at position 39 is lost along with the 39th carbon, so that the cyclohexyl ring of rapamycin becomes a cyclopentyl ring lacking the methoxy group at position 39; for example, as described in International Publications 95 / 16691 and 96 / 41807, which are incorporated by reference. The analogs may also be further modified so that the hydroxyl at position 40 of rapamycin is alkylated, and / or the 32-carbonyl is reduced.

[0145] As rapamycin analogs from International Publication No. 95 / 16691, but not limited to these, are 16-demethoxy-16-(penta-2-inyl)oxyrapamycin, 16-demethoxy-16-(buta-2-inyl)oxyrapamycin, 16-demethoxy-16-(propargyl)oxyrapamycin, 16-demethoxy-16-(4-hydroxybuta-2-inyl)oxyrapamycin, 16-demethoxy-16-benzyloxy-40-O-(2-hydroxyethyl)rapamycin, 16-demethoxy-16-benzyloxyrapamycin, 16-demethoxy-16-ortho-methoxybenzylrapamycin, 16-demethoxy-40-O-(2-methoxyethyl)-16-penta-2-inyl)oxyrapamycin, 39-demethoxy-40 Examples include desoxy-39-formyl-42-nor-rapamycin, 39-demethoxy-40-desoxy-39-hydroxymethyl-42-nor-rapamycin, 39-demethoxy-40-desoxy-39-carboxy-42-nor-rapamycin, 39-demethoxy-40-desoxy-39-(4-methyl-piperazine-1-yl)carbonyl-42-nor-rapamycin, 39-demethoxy-40-desoxy-39-(morpholine-4-yl)carbonyl-42-nor-rapamycin, 39-demethoxy-40-desoxy-39-[N-methyl,N-(2-pyridine-2-yl-ethyl)]carbamoyl-42-nor-rapamycin, and 39-demethoxy-40-desoxy-39-(p-toluenesulfonylhydrazonomethyl)-42-nor-rapamycin.

[0146] Examples of rapamycin analogs from International Publication No. 96 / 41807 include, but are not limited to, 32-deoxo-rapamycin, 16-O-penta-2-inyl-32-deoxo-rapamycin, 16-O-penta-2-inyl-32-deoxo-40-O-(2-hydroxy-ethyl)-rapamycin, 16-O-penta-2-inyl-32-(S)-dihydro-40-O-(2-hydroxyethyl)-rapamycin, 32(S)-dihydro-40-O-(2-methoxy)ethyl-rapamycin, and 32(S)-dihydro-40-O-(2-hydroxyethyl)-rapamycin.

[0147] Another suitable rapamycin analog is umilolimus, which is described in U.S. Patent Application Publication No. 2005 / 0101624, the content of which is incorporated by reference.

[0148] In mammalian cells, targets of rapamycin (mTOR) kinase exist as multiprotein complexes described as the mTORC1 or mTORC2 complex (which sense nutrient and energy availability and integrate inputs from growth factors and stress signaling). The mTORC1 complex is sensitive to allosteric mTOR inhibitors such as rapamycin and consists of mTOR, GβL, and a regulatory associative protein (raptor) of mTOR, which binds to the peptidyl-prolyl isomerase FKBP12 protein (FK506-binding protein 1A, 12kDa). In contrast, the mTORC2 complex consists of mTOR, GβL, and a rapamycin-insensitive companion protein (rictor) of mTOR, and does not bind to the FKBP12 protein in vitro.

[0149] The mTORC1 complex, acting as a growth factor and nutrient-sensitive machinery for regulating growth and proliferation, has been shown to be involved in the regulation of protein translation. mTORC1 regulates protein translation through two key downstream substrates: P70S6 kinase, in turn, phosphorylates the ribosomal protein P70 S6, and 4E-binding protein 1 (4EBP1), a eukaryotic translation initiation factor, plays a crucial role in modulating eIF4E-regulated cap-dependent translation. The mTORC1 complex regulates cell growth in response to cellular energy and nutrient homeostasis, and de-dysregulation of mTORC1 is common to a wide variety of human cancers. The functions of mTORC2 include the regulation of cell survival via Akt phosphorylation and the modulation of actin cytoskeleton dynamics.

[0150] The mTORC1 complex is sensitive to allosteric mTOR inhibitors such as rapamycin and its derivatives, primarily through the mechanism of action of rapamycin, which includes the formation of an intracellular complex with FKBP12 and binding to the FKBP12-rapamycin-binding (FRB) domain of mTOR. This leads to conformational changes in mTORC1, which are thought to alter and weaken its interaction with its scaffold protein, raptor, and subsequently prevent substrates such as P70 S6K1 from accessing and phosphorylating mTOR. Rapamycin and rapaglogs, such as RAD001, have gained clinical relevance by inhibiting the overactivation of mTOR associated with proliferative disorders in both benign and malignant organisms.

[0151] In addition, RAD001, known as everolimus (Afinitor®), has the chemical name (1R,9S,12S,15R,16E,18R,19R,21R,23S,24E,26E,28E,30S,32S,35R)-1,18-dihydroxy-12-{(1R)-2-[(1S,3R,4R)-4-(2-hydroxyethoxy)-3 [-Methoxycyclohexyl]-1-methylethyl}-19,30-dimethoxy-15,17,21,23,29,35-hexamethyl-11,36-dioxa-4-aza-tricyclo[30.3.1.04,9]hexatriaconta-16,24,26,28-tetraene-2,3,10,14,20-pentaone and the following chemical structures.

[0152] [ka]

[0153] Everolimus is an FDA-approved drug for the treatment of advanced kidney cancer and is being investigated in several other Phase III clinical trials in oncology. Preclinical studies have shown that everolimus can inhibit the proliferation of a wide variety of tumor cell lines both in vitro and in vivo, possibly through the inhibition of rapamycin-sensitive mTORC1 function. As a rapamycin derivative, everolimus is an allosteric mTOR inhibitor that is highly potent at the mTORC1 function inhibitory moiety, namely P70 S6 kinase (P70 S6K) and its downstream P70 S6K substrate P70 S6. Allosteric mTOR inhibitors like everolimus (and other rapamycin analogs) have only a slight effect, or no effect at all, on inhibiting the mTORC2 pathway or the resulting activation of its Akt signaling. Further examples of allosteric mTOR inhibitors include sirolimus (rapamycin, AY-22989), 40-[3-hydroxy-2-(hydroxymethyl)-2-methyl-propanoate]-rapamycin (also known as temsirolimus or CCI-779), and ridafololimus (AP-23573 / MK-8669). Other examples of allosteric mTOR inhibitors include zotarolimus (ABT578) and umilolimus.

[0154] Alternatively, or even more specifically, catalytic, ATP-competitive mTOR inhibitors have been found to directly target the mTOR kinase domain and target both mTORC1 and mTORC2. These are also more complete inhibitors of mTORC1 than allosteric mTOR inhibitors such as rapamycin, as they also modulate rapamycin-resistant mTORC1 output, e.g., 4EBP1-T37 / 46 phosphorylation and cap-dependent translation.

[0155] Combinations of bimaglumab and mTOR inhibitors such as everolimus may be particularly effective in treating age-related muscle dysfunction because bimaglumab increases muscle mass and everolimus improves muscle quality. Bimaglumab improves muscle mass by inhibiting the myostatin / activin pathway. Everolimus improves muscle function by inhibiting the mTOR pathway, which is hyperactive in aging muscles (unpublished internal data that the inventors may have added). Inhibition of mTOR may improve muscle function by enhancing mitochondrial function, reducing inflammation, and increasing autophagy. Improving muscle mass and function by combining bimaglumab with mTOR inhibitors such as everolimus may have therapeutic benefits in sarcopenia and heart failure. Furthermore, improving muscle mass and function may have therapeutic benefits in diabetes mellitus by increasing glucose uptake in muscles. Increased mTOR activity was demonstrated in muscle biopsies obtained from healthy elderly subjects (60-84 years old) compared to healthy young subjects (18-40 years old) (Markofski M et al., Exp Geront, 2015). Various embodiments of the present invention are shown below. 1. A combination comprising (a) an ActRII receptor inhibitor and b) a chemotherapeutic agent. 2. Combinations of the items described in item 1 above, for simultaneous, individual, or consecutive use. 3. A combination of the above 1 or 2, wherein a) an ActRII receptor inhibitor and b) a chemotherapeutic agent are in separate forms. 4.a) A combination of the above 1 to 3, wherein the antibody is an anti-ActRII receptor antibody. 5. The combination described in 1 to 4 above, wherein the anti-ActRII antibody is bimaglumab. 6.b) A combination of the above 1 to 5, wherein the platinum-containing anticancer agent is 6.b. 7. Any combination of the above for use as a pharmaceutical product. 8. A combination of the above 1 to 6, comprising (a) an ActRII receptor inhibitor and b) a chemotherapeutic agent, for use in the treatment of cancer cachexia. 9. The treatment of cancer cachexia is the reduction of weight loss, as described in item 8 above. 10. ActRII receptor inhibitors for use in the treatment of cancer cachexia. 11. An ActRII receptor inhibitor for use as described in item 10 above, for cancer cachexia resulting from treatment with chemotherapeutic agents. 12. ActRII receptor inhibitors for use as described in 10 to 11 above, which treat cancer cachexia by reducing weight loss. 13. ActRII receptor inhibitors for use as described in 10 to 12 above, in delaying the progression-free survival period of cancer in patients. 14. ActRII receptor inhibitors for use as described in items 10 to 12 above in delaying the progression-free period of cancer cachexia. 15. ActRII receptor inhibitors for use as described in items 10 to 12 above in extending cancer survival. 16. An ActRII receptor inhibitor for use according to items 10 to 15 above, wherein the ActRII receptor inhibitor is an anti-ActRII receptor antibody. 17. An ActRII receptor inhibitor for use according to 16, wherein the anti-ActRII receptor antibody is bimaglumab. 18. An ActRII receptor inhibitor for use according to items 11 to 17 above, wherein the chemotherapeutic agent is a platinum-containing anticancer agent. 19. A combination of a) a myostatin antagonist and b) an mTOR inhibitor. 20. The combination described in 19 above, wherein the myostatin antagonist is an ActRII receptor inhibitor. 21. The combination described in 20 above, wherein the ActRII receptor inhibitor is an anti-ActRII receptor antibody. 22. The combination described in 21 above, wherein the anti-ActRII receptor antibody is bimaglumab. 23. The combinations described in 19 to 22 above, wherein the mTOR inhibitor is everolimus. 24. Combinations of the substances described in items 19 to 23 above, for use as pharmaceuticals. 25. Combinations of the above items 19 to 23 for use in the treatment of cancer cachexia. 26. The combination described in items 19 to 23 above, wherein treating cancer cachexia prevents weight loss. 27. The combination described in paragraphs 19 to 23 above, wherein the treatment of cancer cachexia is to maintain body weight. 28. The combination described in paragraphs 19 to 23 above, wherein the treatment of cancer cachexia is to increase body weight. 29. A combination of the uses described in 1 to 9 above, or 19 to 28 above, wherein the therapeutic agent is present in an individual pharmaceutical composition. 30. A combination of any one of items 19 to 23 above, for use in the treatment of age-related conditions. 31. The combination described in 30 above, wherein the age-related conditions are selected from the group consisting of sarcopenia, cutaneous atrophy, muscle wasting, cerebral atrophy, atherosclerosis, arteriosclerosis, emphysema, osteoporosis, osteoarthritis, hypertension, erectile dysfunction, dementia, Huntington's disease, Alzheimer's disease, cataracts, age-related macular degeneration, prostate cancer, stroke, reduced life expectancy, renal dysfunction, as well as age-related hearing loss, age-related mobility impairment (e.g., frailty), cognitive decline, age-related dementia, memory impairment, tendon stiffness, cardiac hypertrophy and cardiac dysfunction such as systolic and diastolic dysfunction, immunosenescence, cancer, obesity, and diabetes. 32. Myostatin antagonists for use in improving progression-free survival in cancer patients treated with chemotherapy agents. 33. A myostatin antagonist for use as described in 32 above, wherein the chemotherapeutic agent is a platinum-containing anticancer drug such as cisplatin or carboplatin, or an mTOR inhibitor such as everolimus. 34. A myostatin antagonist for use according to 32 to 33 above, wherein the myostatin antagonist is an ActRII receptor inhibitor. 35. A myostatin antagonist for use as described in 34 above, wherein the ActRII receptor inhibitor is an anti-ActRII receptor antibody. 36. A myostatin antagonist for use as described in 35, wherein the anti-ActRII receptor antibody is bimaglumab. 37. A method for treating a subject having cancer cachexia, comprising administering an ActRII receptor inhibitor to the subject in an amount effective against the cancer cachexia. 38. The method described in 37 above, wherein cancer cachexia is caused by treatment using chemotherapeutic agents. 39. The method according to 38 above, wherein the chemotherapeutic agent is a platinum-containing anticancer agent. 40. The method according to any one of the above 37 to 39, wherein treating cancer cachexia reduces weight loss. 41. A method for delaying the progression-free period of cancer in a subject with cancer, comprising administering an ActRII receptor inhibitor to the subject in an amount effective for delaying the progression-free period of cancer. 42. A method for delaying the progression-free period of cancer in a subject having cancer cachexia, comprising administering an ActRII receptor inhibitor to the subject in an amount effective for delaying the progression-free period of cancer cachexia. 43. A method for extending the cancer survival of a subject, comprising administering an ActRII receptor inhibitor to the subject in an amount effective for extending cancer survival. 44. The method according to 37 to 44 above, wherein the ActRII receptor inhibitor is an anti-ActRII receptor antibody. 45. The method according to 44 above, wherein the anti-ActRII receptor antibody is bimaglumab. 46. ​​A method for treating a subject having cancer cachexia, comprising administering a myostatin antagonist and an mTOR inhibitor to the subject. 47. A method for treating a subject having an age-related condition, comprising administering a myostatin antagonist and an mTOR inhibitor to the subject. 48. The method according to 46 to 47 above, wherein the myostatin antagonist is an ActRII receptor inhibitor. 49. The method according to 48 above, wherein the ActRII receptor inhibitor is an anti-ActRII receptor antibody. 50. The method according to 49 above, wherein the anti-ActRII receptor antibody is bimaglumab. 51. The method according to 46 to 50 above, wherein the mTOR inhibitor is everolimus. 52. The method according to 46 to 50 above, wherein the age-related condition is selected from the group consisting of sarcopenia, cutaneous atrophy, muscle wasting, cerebral atrophy, atherosclerosis, arteriosclerosis, emphysema, osteoporosis, osteoarthritis, hypertension, erectile dysfunction, dementia, Huntington's disease, Alzheimer's disease, cataracts, age-related macular degeneration, prostate cancer, stroke, reduced life expectancy, renal dysfunction, as well as age-related hearing loss, age-related mobility impairment (e.g., frailty), cognitive decline, age-related dementia, memory impairment, tendon stiffness, cardiac hypertrophy and cardiac dysfunction such as systolic and diastolic dysfunction, immunosenescence, cancer, obesity, and diabetes. 53. Methods of treatment in accordance with either the use or combination described above.

[0156] [Examples] The present invention will be described in more detail below, particularly with reference to examples, but this is not intended to limit the invention.

[0157] material and method material Bimaglumab is a human IgG1 Leu234Ala / Leu235Ala monoclonal antibody targeting ActRII. CDD866, a mouse-derived version of bimaglumab in which the Fc region of the human antibody is replaced with mouse Fc.CDD866, was generated in CHO cells at Novartis Pharma AG (Basel, Switzerland). Cisplatin (cis-diaminedichloro-platinum(II)) was purchased from Sigma Aldrich (catalog number 479306). Everolimus was synthesized at Novartis Pharma AG.

[0158] Animal experiments Adult male Balb / cJRj mice, 11 to 12 weeks old, were purchased from Janvier Laboratories (Le Genest St Isle, France). The mice were acclimated to the facility for 7 days. The animals were housed in groups of no more than 5 individuals at 25°C with a 12:12h light-dark cycle. The animals were fed a standard laboratory diet containing 18.2% protein and 3.0% fat (energy content of 15.8 MJ / kg) (NAFAG 3890, Kliba, Basel, Switzerland). Food and water were provided free of charge.

[0159] Mouse colon cancer cell line CT-26 was cultured at 37°C with 5% CO2 in RPMI 1640 medium supplemented with fetal bovine serum inactivated by 10% heat and an antibiotic-antifungal drug solution. CT-26 cells were harvested using Accutase® (PAA Laboratories GmbH, Passing, Austria) and suspended in a solution containing 50% PBS and 50% BD Matrigel® Matrix (catalog number 356237, BD Biosciences, Bedford, MA, USA) without phenol red. 3 × 10 5 A 0.1 mL cell suspension containing [number] cells was subcutaneously inoculated into the left flank of mice. Mice bearing tumors of acceptable morphology and size, where a tumor was palpable, were randomized to generate a balanced group in terms of mean tumor size, body weight, and extent. Treatment was initiated on the day of randomization.

[0160] A therapeutic intervention study was conducted to evaluate the effects of CDD866 alone or in combination with anticancer drugs. CDD866 was administered once or twice weekly at a volume of 5 mL / kg, at a dose of 20 mg / kg sc. Cisplatin was administered twice weekly at a dose of 1 mg / kg ip. Everolimus was administered once daily at a dose of 5 mg / kg po. In the combination groups, cisplatin or everolimus treatment was combined with subcutaneous treatment of CDD866 once or twice weekly, respectively. Body weight and tumor volume were measured two to three times per week. At the end of the experiment, mice were euthanized with CO2, and tumors, tibialis anterior muscle, gastrocnemius-soleus-plantar muscle complex, and quadriceps muscle were collected and weighed.

[0161] A combination of CDD866 and cisplatin or everolimus can lead to a weight loss of up to 20% or 1,500 mm. 3A progression-free study was conducted as a follow-up to evaluate whether the progression of cancer cachexia to the discontinuation criterion, defined by a tumor volume exceeding 1,500 mm³, was slowed. The treatment regimen was the same as that used in the treatment intervention study. Body weight and tumor volume were measured 2 to 3 times per week for the first two weeks, and then daily until the end of the experiment. Weight loss approached 20%, or tumor volume reached 1,500 mm³. 3 If the temperature exceeded a certain level, the mice were euthanized with CO2.

[0162] Protein analysis A lysis buffer consisting of a 1% protease inhibitor cocktail (calbiochem# 539131) and an extraction reagent (Phosphosafe; Novagen Inc., Madison, WI, USA) supplemented with 0.2% SDS was added. Precellys Homogenates (FastPrep-Machine FP20) were separated by centrifugation at 4°C for 20 minutes (14,000 rpm). The supernatant was collected and the protein content was measured using a commercially available protein determination kit (BCA Kit; Thermo Scientific). The samples were diluted in SDS-PAGE sample buffer and denatured at 70°C for 10 minutes. Equal volumes of protein were loaded onto lanes of 4 to 12% and 8% polyacrylamide gels (NuPAGE Bis-Tris gel; Invitrogen Corp., Carlsbad, CA, USA), separated by electrophoresis, and then transferred to a nitrocellulose membrane. The membranes were blocked in TBS containing 0.1% Tween and 5% w / v nonfat milk powder. Primary antibodies, phospho-SMAD3 (diluted at Millipore #04 1042 1:1000) and α-tubulin (diluted at Sigma T6199 1:5000), were incubated in TBS containing 0.1% Tween20 and 5% w / v nonfat milk powder, while secondary antibodies were incubated in TBS containing 0.1% Tween20, 0.05% SDS, and 5% nonfat milk powder. Immunoactivity was detected using SuperSignal West Femto Maximum Sensitivity Substrate (Thermo Scientific) by exposure to the film or by FusionSpectra. Quantitative determination of mTOR and IL-6 was performed using assay kits from MesoScale Discovery with a MesoScale Discovery reader, according to the manufacturer's instructions.

[0163] statistical analysis Values ​​were expressed as mean ± SEM. Statistical analysis was performed using Sidak multiple comparison tests after ANOVA to compare treatment groups to control groups (non-tumor-bearing and tumor-bearing), anticancer drug monotherapy (cisplatin or everolimus), or CDD866 monotherapy in treatment intervention studies, and Dunn multiple comparison tests for progression-free survival studies. A difference was considered statistically significant if the probability value was <0.05. Statistical analysis was performed using GraphPad Prism (GraphPad Software, Inc., La Jolla, CA, USA). Body weight was expressed as a percentage change from day 0, which was the start of treatment. Tumor volume in cubic mm was expressed using the formula (length × width). 2 Muscle weight was calculated according to ) / 2. Muscle weight was normalized to body weight on the day of cell inoculation (initial body weight) and then expressed as a percentage change from the non-tumor control group. [Examples]

[0164] Bimaglumab inhibits cisplatin-induced weight loss. Extensive weight loss has been identified as a significant determinant of cancer-related mortality. Therefore, long-term weight growth was monitored (Figures 1A and B). Ten days after the start of treatment, tumor-bearing animals receiving cisplatin as monotherapy lost 20% of their initial body weight (Figures 1B and C). In controls, vehicle-treated and tumor-bearing animals experienced a 10% weight loss, while animals treated with CDD866 alone or in combination with cisplatin showed only moderate weight loss of 3% and 5%, respectively (Figures 1B and C). In healthy control animals, cisplatin had no effect on body weight, while CDD866 administration resulted in significant weight gain, both in the presence and absence of cisplatin (Figures 1A and C). These data demonstrate that effective antitumor doses of cisplatin (see Figure 1E) actually accelerate weight loss in cachexic animals, and that CDD866 significantly reduces chemotherapy-induced wasting.

[0165] The primary concerns of this study were the efficacy of chemotherapy in promoting tumor growth and potential drug-drug interactions that could reduce the effects of CDD866. At the start of treatment, the mean tumor volume was ≥260 mm². 3 This was the case (Figure 1D). CDD866 did not accelerate tumor progression (Figures 1D and E), nor did it impair the antitumor effect of cisplatin (Figures 1D and E). Therefore, CDD866 is effective in reducing chemotherapy-mediated weight loss in cancer cachexia without interfering with the antitumor effect of cisplatin. [Examples]

[0166] Bimaglumab counteracts cisplatin-induced muscle wasting. Taking into account the positive effect of CDD866 on body weight, the inventors then determined the effects of various interventions on individual skeletal muscles. In the gastrocnemius muscle, cisplatin induced a 25% decrease in muscle weight. CDD866 treatment tended to reduce muscle weight loss to 13%, and this protective effect was maintained even in the presence of cisplatin (12%) (Figure 2B). A similar level of protection was observed in the quadriceps muscle (Figure 2C). The tibialis anterior muscle benefited most from CDD866 treatment. In the tibialis anterior muscle, animals treated with cisplatin experienced a 34% decrease in muscle wasting, while co-administration with CDD866 significantly reduced muscle loss to 16% (Figure 2A). [Examples]

[0167] Bimaglumab combined with cisplatin delays the progression-free survival period in cancer cachexia. Extensive tumor growth and subsequent weight loss are important predictors of mortality in cancer patients. Therefore, we wanted to evaluate whether the combination of CDD866 and cisplatin has an effect on the length of survival. For ethical reasons, we refrained from conventional survival studies. Instead, each mouse was subjected to weight loss exceeding 20% ​​of its initial body weight, or 1,500 mm. 3 When either tumor volume reached a certain level, the individual was euthanized, and the progression-free period was determined accordingly.

[0168] On average, animals receiving vehicle or cisplatin had to be euthanized at 12 and 12 days, respectively (Figures 2D and E). Animals treated with CDD866 had to be euthanized at 16 days, which supports previous findings that CDD866 treatment reduced weight loss but did not promote tumor growth. The combination treatment of CDD866 and cisplatin was superior to any of the other interventions tested. In fact, the combination treatment extended progression-free survival to 21 days (Figure 2E). Monitoring was stopped at 39 days for 35% of the animals in the combination group that had not yet reached one of the defined discontinuation criteria (Figure 2D).

[0169] combination with cisplatin Despite substantial tumor growth inhibition, cisplatin accelerated weight loss in cachexic animals, which may be due to the high toxicity of the anticancer drug. CDD866 effectively prevented cisplatin-mediated weight loss, demonstrating that ActRII inhibition remained effective in the presence of cisplatin. Cisplatin treatment, both alone and in combination with CDD866, reduced CT-26 tumor weight to similar levels, highlighting that the anticancer effect of cisplatin was not negatively affected by CDD866.

[0170] Consistently, cisplatin treatment did not improve CT-26 tumor-induced skeletal muscle wasting; rather, it tended to worsen skeletal muscle loss. In contrast, administration of CDD866 alone or in combination with cisplatin protected against skeletal muscle weight loss compared to animals receiving cisplatin alone, further supporting the fact that ActRII inhibition remains sufficiently effective under cisplatin treatment. Thus, these results demonstrate that CDD866 in combination with cisplatin counteracts muscle wasting in cachexic animals compared to cisplatin treatment alone. Notably, CDD866 was administered only once a week, and mice received injections only twice throughout the entire study (excluding the survival study). Release of activin by cancer tissue.17 Since it potentially competes with ActRII inhibition by CDD866, a high dose or high frequency of CDD866 administration may be required in cancer cachexia to induce a more significant or maximal response. Indeed, avoidance of stronger muscle wasting was observed for CDD866 alone in combination studies with everolimus under a more frequent dosing regimen.

[0171] Cancer patients with low muscle mass have an increased risk of chemotherapy-derived treatment-related toxicity and show an overall increased mortality. 18 Consistently, CDD866 significantly delays disease progression by greatly increasing muscle mass. The tumor-free interval of cancer cachexia was further delayed by co-treatment with CDD866 and cisplatin, while at the same time counteracting muscle wasting and inhibiting tumor growth.

Example

[0172] Bimagrumab and everolimus prevent cancer cachexia in an additive manner. In the next step, everolimus, a molecularly targeted agent against the mammalian target of rapamycin (mTOR), was selected as a combination partner since mTOR is known to play a central role in cell growth and proliferation. Furthermore, the treatment frequency for CDD866 was increased to twice a week to ensure a significant anti-cachectic effect when administered as a single agent, and the combination of everolimus and CDD866 was evaluated in non-tumor mice and tumor-bearing cachectic mice.

[0173] In the non-tumor-bearing group, everolimus treatment had little effect on weight gain. In contrast, as expected, CDD866 treatment resulted in a significant increase in weight gain (Figures 3A and C). Weight gain was slightly slower in the combination group (Figures 3A and C), but still significantly different from everolimus alone and not significantly different from CDD866 alone until the end of day 14. In the CT-26 group, weight decreased significantly in the tumor-bearing control group at day 14 compared to the non-tumor control group (Figures 3B and C). The weight loss induced by CT-26 was completely prevented by everolimus, CDD866, and the combination of everolimus and CDD866. The effect of CDD866 on weight was maintained in the presence of everolimus.

[0174] Everolimus slowed CT-26 tumor growth and maintained its antitumor effect in the presence of CDD866 (Figure 3D). CT-26 tumor weight was significantly reduced with everolimus treatment alone or in combination with CDD866. There was no significant effect of CDD866 treatment on CT-26 tumor weight.

[0175] In the non-tumor-bearing group, the weights of the tibialis anterior, gastrocnemius-soleus-plantar complex, and quadriceps were unaffected by everolimus treatment but significantly increased with CDD866 treatment (Figures 4A-C). The effect of CDD866 on muscle weight was maintained in the presence of everolimus. CT-26 tumors induced a significant decrease in the weights of the tibialis anterior, gastrocnemius-soleus-plantar complex, and quadriceps compared to the non-tumor-bearing control group (Figures 4A-C). The muscle weight loss induced by CT-26 was significantly reduced by everolimus or CDD866 treatment. Interestingly, the combination of everolimus and CDD866 appeared to reverse the skeletal muscle weight loss in an additive manner, and the effect of the combination treatment differed significantly from that of everolimus treatment alone. [Examples]

[0176] Bimaglumab combined with everolimus delays the progression-free survival period in cancer cachexia. In addition to the beneficial effects of everolimus and CDD866 on CT-26-induced cachexia in therapeutic intervention studies, the effects of these treatments on cancer and associated cachexia progression were evaluated using the same criteria as those used in cisplatin combination studies. In the CT-26 control group, the median number of days to discontinuation (progression-free survival) was 17.5 days after randomization and initiation of treatment (Figures 4D and E). Everolimus treatment significantly extended progression-free survival to 23 days, primarily due to its antitumor effect, while the extension trend shown by CDD866 was not significant, extending only to 21 days. The lack of significance of CDD866 for progression-free survival is explained by the fact that while the treatment is very effective in preventing weight loss, it did not inhibit tumor growth, the second discontinuation criterion. Importantly, the everolimus and CDD866 combination appears to further delay progression-free survival to 28.5 days, a significant effect compared to the CT-26 control group.

[0177] combination with everolimus Since mTOR is known to play a central role in cell growth and proliferation, mTOR inhibition by everolimus showed a significant antitumor effect, as expected, both in the absence and in the presence of CDD866. This result clearly demonstrates that the anticancer effect of everolimus is not negatively affected by ActRII inhibition by CDD866. Consistent with the weight loss caused by CT-26 tumors, skeletal muscle weight was significantly reduced in the CT-26 control group. Everolimus or CDD866 treatment alone significantly protected tumor-bearing mice against skeletal muscle weight loss caused by CT-26 tumors. Interestingly, ActRII inhibition by CDD866 not only remained effective in the presence of everolimus, but also showed a less significant tendency towards an additive effect that reversed skeletal muscle weight loss, despite the fact that mTOR is necessary for normal muscle growth. Similarly, in non-tumor-bearing mice, everolimus treatment had no effect on body weight, while CDD866 significantly increased body weight. The effect of CDD866 on body weight was maintained even in the presence of everolimus, clearly demonstrating that mTOR inhibition did not alter the effect of CDD866 on body weight. In non-tumor-bearing mice, the anabolic response observed in response to CDD866 treatment was significant and unaffected by mTOR inhibition at doses that were clearly effective against tumors.

[0178] Everolimus treatment alone extended progression-free survival as an alternative to survival, and CDD866 also showed a tendency to extend it. Importantly, the combination of everolimus and CDD866 appeared to further delay progression-free survival. Each treatment acted complementaryly to exert a beneficial effect, with everolimus inhibiting tumor growth and CDD866 preventing cachexia. The tendency toward additive anti-cachexic effects observed with the CDD866 and everolimus combination requires further explanation regarding how ActRII blockade and mTOR inhibition positively interact with skeletal muscle under the progression of cachexia.

[0179] mTORC1 has been reported to be activated in denervated skeletal muscle atrophy, but the anti-atrophic effect of mTOR inhibition by rapamycin treatment has not been conclusive. mTOR activation has also been reported in other pathological conditions such as aging, obesity, insulin resistance, and diabetes, where mTOR inhibition is thought to be beneficial. In this study, phosphorylation and total mTOR levels are significantly increased in tumor-bearing mice. Therefore, such abnormal mTOR activation in CT-26 colon cancer-induced cachexia also contributes to cell-induced cachexia, and thus mTOR inhibition may have shown further benefits when combined with ActRII blockade. [Examples]

[0180] The combination of mTOR inhibitors and myostatin antagonists in aging Combinations of bimaglumab and mTOR inhibitors such as everolimus may be particularly effective in treating age-related muscle dysfunction because bimaglumab increases muscle mass and everolimus improves muscle quality. Bimaglumab improves muscle mass by inhibiting the myostatin / activin pathway. Everolimus improves muscle function by inhibiting the mTOR pathway, which is hyperactive in aging muscles. Inhibition of mTOR may improve muscle function by enhancing mitochondrial function, reducing inflammation, and increasing autophagy. Improving muscle mass and function with a combination of bimaglumab and mTOR inhibitors such as everolimus may have therapeutic benefits in sarcopenia and heart failure. Furthermore, improving muscle mass and function may have therapeutic benefits in diabetes mellitus by increasing glucose uptake in muscles.

[0181] The data in Figure 5 support the rationale for the beneficial use of mTOR inhibitors and myostatin / activin pathway antagonists (e.g., bimaglumab) in aging, and demonstrate the following: 1. mTOR is hyperactive in the skeletal muscle of aged rats compared to juvenile rats. 2. mTOR is not adequately downregulated after fasting in the skeletal muscle of aged rats compared to juvenile rats.

[0182] References The following references, in particular the definitions and descriptions contained herein, are incorporated herein by reference. ·Fearon, K. et al. Definition and classification of cancer cachexia: an international consensus. Lancet Uncool. 12, 489-495 (2011). ·Tan, BH, Birdsell, LA., Martin, L., Baracos, VE & Fearon, KC Sarcopenia in an overweight or obese patient is an adverse prognostic factor in pancreatic cancer. Clin. Cancer Res. 15,: 6973-6979 (2009). ·Benny Klimek, ME et al. Acute inhibition of myostatin-family proteins preserves skeletal muscle in mouse models of cancer cachexia. Biochem. Biophys. Res. Commun. 391, 1548-1554 (2010). ·Busquets, S. et al. Myostatin blockage using actRIIB antagonism in mice bearing the Lewis lung carcinoma results in the improvement of muscle wasting and physical performance. J. Cachexia Sarcopenia Muscle. 3, 37-43 (2012). ·Murphy, K. T. et al. Antibody-directed myostatin inhibition enhances muscle mass and function in tumor-bearing mice. Am. J. Physiol. Regul. Integr. Comp. 301, R716-R726 (2011). ·Zhou, X. et al. Reversal of cancer cachexia and muscle wasting by ActRIIB antagonism leads to prolonged survival. Cell. 142, 531-543 (2010). ·Elkina, Y., von Haehling, S., Anker, S. D. & Springer, J. The role of myostatin in muscle wasting: an overview. J. Cachexia Sarcopenia Muscle. 2, 143-151 (2011). ·Lee, S. J. & McPherron, A. C. Regulation of myostatin activity and muscle growth. Proc. Natl. Acad. Sci. U.S.A. 98, 9306-9311 (2011). ·Schuelke, M. et al. Myostatin mutation associated with gross muscle hypertrophy in a child. N. Engl. J. Med. 350, 2682-2688 (2004). ·Whittemore, L. A. et al. Inhibition of myostatin in adult mice increases skeletal muscle mass and strength. Biochem. Biophys. Res. Commun. 300, 965-971 (2003). ·Lee, S. J. et al. Regulation of muscle growth by multiple ligands signaling through activin type II receptors. Proc. Natl. Acad. Sci. U.S.A. 102, 18117-18122 (2005). ·Nakatani, M. et al. Transgenic expression of a myostatin inhibitor derived from follistatin increases skeletal muscle mass and ameliorates dystrophic pathology in mdx mice. FASEB J. 22, 477-487 (2007). ·Zimmers, T. A. et al. Induction of cachexia in mice by systemically administered myostatin. Science. 296, 1486-1488 (2002). ·Chen, J. L. et al. Elevated expression of activins promotes muscle wasting and cachexia. FASEB J. 28, 1711-1723 (2014). ·Lach-Trifilieff, E. et al. An antibody blocking activin type II receptors induces strong skeletal muscle hypertrophy and protects from atrophy. Mol. Cell. Bio. 34, 606-618 (2014). ·Amato, A. A. et al. Treatment of sporadic inclusion body myositis with bimagrumab. Neurology. 83, 2239-2246 (2014). ·Arrieta O. et al. Nutritional Status, Body Surface, and Low Lean Body Mass / Body Mass Index Are Related to Dose Reduction and Severe Gastrointestinal Toxicity Induced by Afatinib inPatients With Non-SmallCell LungCancer, The Oncologist 20, 967-974 (2015). ·Sjoblom et al. Low muscle mass is associated with chemotherapy-induced haematological toxicity in advanced non-small cell lung cancer. Lung Cancer 90 85-91 (2015) ·Parsons HA, Tsimberidou AM, Fu S, Hong D, Wen S, Baracos VE, Kurzrock R. Evaluation of the clinical relevance of body composition parameters in patients with cancer metastatic to the liver treated with hepatic arterial infusion chemotherapy. Nutr Cancer; 64: 206-17 (2012). ·Reis, F. M. et al. Serum and tissue expression of activin a in postmenopausal women with breast cancer. J. Clin. Endocrinol. Metab. 87, 2277-2282 (2002). ·Tsai, S. Importance of lean body mass in the oncologic patient. Nutr. Clin. Pract. 27, 593-598 (2012). ·Bentzinger, C. F. et al. Skeletal muscle-specific ablation of raptor, but not of rictor, causes metabolic changes and results in muscle dystrophy. Cell Metab. 8, 411-424 (2008). ·Risson, V. et al. Muscle inactivation of mTOR causes metabolic and dystrophin defects leading to severe myopathy. J. Cell Biol. 187, 859-874 (2009). ·Argadine, H. M., Mantilla, C. B., Zhan, W. Z. & Sieck, G. C. Intracellular signaling pathways regulating net protein balance following diaphragm muscle denervation. Am. J. Physiol. Cell Physiol. 300, C318-327 (2011). ·Machida, M. et al. Reduction of ribosome biogenesis with activation of the mTOR pathway in denervated atrophic muscle. J. Cell Physiol. 227, 1569-1576 (2012). ·MacDonald, E. M. et al. Denervation atrophy is independent from Akt and mTOR activation and is not rescued by myostatin inhibition. Dis. Model. Mech. 7, 471-481 (2014). ·Tang, H. et al. mTORC1 promotes denervation-induced muscle atrophy through a mechanism involving the activation of FoxO and E3 ubiquitin ligases. Sci. Signal. 7, ra18 (2014). ·Nacarelli, T., Azar, A. & Sell, C. Aberrant mTOR activation in senescence and aging: A mitochondrial stress response? Exp. Gerontol. 68, 66-70 (2015). ·Khamzina, L., Veilleux, A., Bergeron, S. & Marette, A. Increased activation of the mammalian target of rapamycin pathway in liver and skeletal muscle of obese rats: possible involvement in obesity-linked insulin resistance. Endocrinology. 146, 1473-1481 (2005). ·Drake, J. C., Always, S. E., Hollander, J. M. & Williamson, D. L. AICAR treatment for 14 days normalizes obesity-induced dysregulation of TORC1 signaling and translational capacity in fasted skeletal muscle. Am. J. Physiol. Regul. Integr. Comp. Physiol. 299, R1546-1554 (2010). ·Markofski M. et al. Effect of age on basal muscle protein synthesis and mTORC1 signaling in a large cohort of young and older men and women. Exp. Geront. 65, 1-7. 2015

Claims

1. A combination for increasing or maintaining muscle mass in a subject requiring it, comprising (a) an ActRII receptor inhibitor and (b) a chemotherapeutic agent, wherein (a) the ActRII receptor inhibitor is an anti-ActRII receptor antibody and (b) the chemotherapeutic agent is an mTOR inhibitor, (i) the anti-ActRII receptor antibody is bimaglumab, (ii) the anti-ActRII receptor antibody contains the amino acid sequence of SEQ ID NOs: 1-3 and 4-6, or (iii) the anti-ActRII receptor antibody contains the amino acid sequence of SEQ ID NOs: 7 or 8 and 9. The aforementioned mTOR inhibitor is everolimus. The subject requiring it has an age-related condition, A combination of items.

2. A combination according to claim 1 for simultaneous, individual, or consecutive use.

3. a) the anti-ActRII receptor antibody and b) the mTOR inhibitor are in separate forms, the combination according to claim 1 or 2.

4. The combination according to claim 1, wherein the subject having the aforementioned aging state has symptoms selected from the group consisting of sarcopenia, cutaneous atrophy, muscle wasting, cerebral atrophy, arteriosclerosis, pulmonary emphysema, osteoporosis, osteoarthritis, hypertension, erectile dysfunction, dementia, Huntington's disease, Alzheimer's disease, cataracts, age-related macular degeneration, stroke, renal dysfunction, age-related hearing loss, age-related mobility impairment, cognitive decline, memory impairment, tendon stiffness, cardiac dysfunction, immunosenescence, cancer, obesity, and diabetes.

5. The combination according to claim 4, wherein arteriosclerosis is atherosclerosis, dementia is age-related dementia, cancer is prostate cancer, and cardiac dysfunction is any of cardiac hypertrophy, systolic dysfunction, and diastolic dysfunction.

Citation Information

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