Amyloid peptide variants

IAPP peptides from non-human species like raccoon and chicken inhibit hIAPP aggregation, addressing the limitations of current therapies by enhancing cell survival and metabolic activity in treating amyloid diseases.

JP7825238B2Active Publication Date: 2026-03-06LOYOLA MARYMOUNT UNIV +1
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
JP2024091172
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-02-22
Filing Date
2024-06-05
Publication Date
2026-03-06
Estimated Expiration
2040-02-24

AI Technical Summary

Technical Problem

Existing treatments for amyloid diseases, such as type 2 diabetes, are inadequate in preventing or slowing the progression of the disease, as the role of misfolded proteins like human islet amyloid polypeptide (hIAPP) in disease progression remains unclear, and current therapies like pramlintide are toxic and ineffective in inhibiting aggregation.

Method used

Development of IAPP peptides derived from non-human species, including raccoon and chicken, which inhibit hIAPP aggregation and protect cells from toxicity, offering potential therapeutic applications.

Benefits of technology

These peptides effectively inhibit hIAPP aggregation and reduce cytotoxicity, providing a promising treatment for amyloid diseases by enhancing cell survival and metabolic activity.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007825238000007
    Figure 0007825238000007
  • Figure 0007825238000008
    Figure 0007825238000008
  • Figure 0007825238000009
    Figure 0007825238000009
Patent Text Reader

Abstract

To provide pharmaceutical compositions applicable for treatment of diseases caused by the aggregation of human Islet Amyloid Polypeptide (human IAPP) or diseases whose progression is related to the aggregation of human IAPP.SOLUTION: The present invention provides pharmaceutical compositions for inhibiting the aggregation of human IAPP, comprising IAPP peptides comprising a specific amino acid sequence, and one or more pharmaceutically acceptable excipients.SELECTED DRAWING: None
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of priority from U.S. Patent Application No. 62 / 809,167, filed February 22, 2019, entitled "AMYLOID PEPTIDE VARIANTS FOR THE TREATMENT OF DIABETES." [Background technology]

[0002] Many proteins are known to adopt alternative, misfolded structures that may be linked to various diseases. Proteins such as human islet amyloid polypeptide (hIAPP, amylin) in type 2 diabetes, Aβ42 in Alzheimer's disease, and α-synuclein in Parkinson's disease are all known to misfold and aggregate into toxic oligomers and fibrils. These misfolded proteins are known to be toxic to cells, but the exact role they play in the progression of these diseases remains a mystery.

[0003] Amyloid diseases pose a serious threat to human health. The economic and societal costs associated with type 2 diabetes have been well documented over the past decade. The American Diabetes Association estimates that 25.8 million children and adults in the United States, approximately 8.3% of the population, have diabetes, with nearly 2 million new cases diagnosed each year. Because the prevalence of the disease increases with age, the number of people affected by type 2 diabetes increases as the population ages. Unless a treatment is found to prevent or slow the progression of the disease, it is estimated that as many as 100 million Americans alone may develop diabetes within the next 40 years, with costs estimated to be greater than $174 billion annually. In 2008, $116 billion was spent in the United States on direct medical costs, with additional indirect costs estimated at $58 billion due to work loss, disability, and premature death.

[0004] Although obesity is a clear factor linked to type 2 diabetes, more than 70% of obese individuals do not have diabetes, suggesting that other factors influence the progression of this disease. One possible factor linked to the progression of type 2 diabetes is the aggregation of the amyloidogenic peptide Islet Amyloid Polypeptide (IAPP). This 37-amino acid polypeptide is co-secreted with insulin by beta islet cells of the pancreas. During the progression of type 2 diabetes, IAPP aggregates into a variety of different amyloidogenic states. IAPP is known to be found as extracellular deposits of amyloid in more than 90% of patients with this disease.

[0005] The link between IAPP aggregation and diabetes seems to be extended to non-humans.Similar to humans, cats and primates are known to develop diabetes.Similar to humans, cats and primates express IAPP variants that aggregate and form toxic amyloid.On the other hand, IAPP variants from rats, mice and hamsters do not aggregate and do not form toxic amyloidogenic species.Rats, mice and hamsters do not spontaneously develop diabetes.However, when mice and rats are engineered to express human IAPP, they develop type 2 diabetes and the symptoms associated with this disease.

[0006] Recently, it has been suggested that one form of IAPP may adopt a cylindrin fold. Although the structure of aggregate-forming IAPP molecules has yet to be determined, it is clear that some of these aggregates are highly toxic to cells. Studies have shown that synthetic IAPP acts as a highly toxic agent in vitro when added to various additional mammalian cell lines in addition to human pancreatic islet β cells. IAPP is found as amyloid extracellular deposits in approximately 90% of patients with type 2 diabetes. IAPP has also been shown to be a toxic agent in vitro when added to mammalian cells. While it remains unclear how IAPP self-assembly leads to disease development, recent studies suggest that the formation of lower-order protein aggregates (2–10 self-assembled proteins) leads to cytotoxicity and ultimately disease progression. Summary of the Invention

[0007] The present inventors have recently identified a series of IAPP peptides that inhibit human IAPP aggregation and rescue mammalian cells from hIAPP toxicity. These IAPP variants are potent inhibitors of hIAPP aggregation and can be used as probes to understand the underlying toxicity of therapeutic agents and amyloid proteins. The IAPP peptides have the following sequences: a) SEQ ID NOs: 15 to 18, b) SEQ ID NOs: 26 to 37; c) SEQ ID NOs: 42 to 46; d) SEQ ID NOs: 53 to 64, and e) SEQ ID NOs: 65 to 68 and having an amino acid sequence selected from one of:

[0008] These peptides include peptides mutated from Weddell seal IAPP (SEQ ID NOS: 15-18), raccoon IAPP (SEQ ID NOS: 26-37 and SEQ ID NOS: 42-46), and chicken IAPP (SEQ ID NOS: 53-64 and SEQ ID NOS: 65-68). In some embodiments, preferred sequences include SEQ ID NOS: 16-17 (WS_RL and WS_RP), SEQ ID NOS: 46 (Rac_L26Y), SEQ ID NOS: 31-34 (R1-27 to R1-30), SEQ ID NOS: 66-68 (Chv16L, ChI22L, ChY26L), and SEQ ID NOS: 59-61 (C1-27 to C1-29).

[0009] The above IAPP peptides can be used to inhibit hIAPP aggregation in vitro or in vivo. In one embodiment, these peptides can be used in the treatment of amyloid diseases, such as diabetes. When used in therapeutic applications, the IAPP peptides can be combined with one or more pharmaceutically acceptable excipients to form a pharmaceutical composition.

[0010] IAPP peptides naturally found in cats, dogs, chickens, polar bears, raccoons, and Weddell seals can also be used to treat amyloid diseases and inhibit hIAPP aggregation. These peptides can have sequences selected from SEQ ID NOS: 2-7. Raccoon and chicken IAPP peptides are preferred.

[0011] The IAPP peptides can therefore be used in methods for treating a subject suffering from an amyloid disease, the methods comprising administering an IAPP peptide to a subject in need thereof, wherein the IAPP peptide has an amino acid sequence selected from SEQ ID NOs: 2-7, 15-18, 26-37, 42-46, 53-64, and 65-68. [Brief explanation of the drawings]

[0012] [Figure 1] Figure 1 is a table comparing human IAPP with IAPP from various animals. Amino acids that differ from hIAPP are indicated in bold. [Figure 2] 2 is a chart showing the results of a Thioflavin T binding assay in which human IAPP was mixed with IAPP from other species. The average of at least three runs is shown, with error bars indicating the standard deviation between runs. [Figure 3] Figure 3 shows the results of atomic force microscopy (AFM) scans of IAPP variants. 37 μM human IAPP was mixed with 75 μM of each animal's IAPP, and the samples were incubated at 37°C with shaking for 40 minutes. All scans show raw data without flattening and are 10 μm x 10 μm. [Figure 4] Figure 4 is a chart showing the results of the MTT survival assay. The leftmost black bar indicates the average survival of cells alone. The left bar above each species designation (raccoon, chicken, etc.) on the horizontal axis indicates the average cell survival upon addition of 12.8 μM hIAPP or animal IAPP variants individually. The right bar above each species designation on the horizontal axis indicates the cell survival of hIAPP mixed with each animal IAPP variant (12.8 μM mixture of hIAPP with each designated animal IAPP at a 1:1 ratio). Asterisks indicate a significant increase in cell survival between hIAPP alone and hIAPP mixed with raccoon or chicken IAPP variants. [Figure 5] Figure 5 shows the results of AFM scans of the indicated materials. The sample labeled hIAPP contained 40 μM hIAPP. The pramlintide and hIAPP samples contained a 2:1 molar mixture (80 μM pramlintide mixed with 40 μM hIAPP). The raccoon IAPP alone and pramlintide alone samples contained 40 μM of the indicated peptide. Each sample was incubated at 37°C for 40 minutes with shaking, conditions known to promote hIAPP amyloid formation. All scans show raw data without flattening and are 10 μm x 10 μm. [Figure 6]Figure 6 is a chart showing the results of the MTT viability assay. The left bar indicates the average survival of cells alone. The left bar above each peptide identification on the horizontal axis indicates the average cell survival upon addition of 12.8 μM hIAPP or IAPP variant (variant indicated on the horizontal axis) individually. The right bar above each peptide identification on the horizontal axis indicates the cell survival of hIAPP mixed with each IAPP variant (each IAPP at a 1:1 ratio with 12.8 μM hIAPP). [Figure 7] 7 is a table listing the amino acid sequences of seal IAPP variants that were tested for their inhibitory ability against hIAPP amyloid formation. Peptides that inhibit hIAPP amyloid formation are indicated with a bold "yes" in the "inhibit" column, and peptides that rescue cells from hIAPP toxicity are indicated with a bold "yes" in the "rescue" column. [Figure 8] 8 is a chart showing the results of a Thioflavin T binding assay of hIAPP when mixed with the indicated Weddell seal IAPP peptide variants. Data represent the average of a minimum of three runs, and error bars indicate the standard deviation between runs. [Figure 9] Figure 9 shows AFM images of hIAPP mixed with the indicated Weddell seal IAPP variants. All scans show raw data without flattening and are 10 μm x 10 μm. [Figure 10] Figure 10 is a chart showing the results of the MTT viability assay. The leftmost black bar indicates the average survival of cells alone. The left bar above each peptide identifier (WS, WS-R, etc.) on the horizontal axis indicates the average cell survival upon addition of 12.8 μM hIAPP or Weddell Seal IAPP variant peptides individually. The right bar above each peptide identifier on the horizontal axis indicates the cell survival of hIAPP mixed with Weddell Seal IAPP variants (12.8 μM mixture of hIAPP with Weddell Seal IAPP at a 1:1 ratio). [Figure 11]11 is a table listing several peptides based on truncations of the full-length raccoon IAPP sequence. Peptides that inhibit hIAPP amyloid formation are indicated with a bold "yes" in the "inhibit" column, and peptides that rescue cells from hIAPP toxicity are indicated with a bold "yes" in the "rescue" column. [Figure 12] Figure 12 is a chart showing the results of a Thioflavin T binding assay of hIAPP when mixed with the indicated raccoon IAPP variant. Human IAPP was incubated with each indicated peptide at 37°C with shaking. The four vertical bars for each peptide indicate fluorescence after 10, 20, 25, and 30 minutes, from left to right, respectively. Data represent the mean of a minimum of two runs, and error bars indicate the standard deviation between runs. [Figure 13] Figure 13 is a chart depicting the results shown in Figure 12 for raccoon IAPP truncation mutants. The four vertical bars for each peptide indicate fluorescence from left to right after 10, 20, 25, and 30 minutes, respectively (the 30 minute reading is not included for native raccoon IAPP on the left side of the chart). [Figure 14] 14 is a table listing several peptides based on mutations in the sequence of raccoon IAPP. Peptides that inhibit hIAPP amyloid formation are indicated with a bold "yes" in the "inhibit" column, and peptides that rescue cells from hIAPP toxicity are indicated with a bold "yes" in the "rescue" column. [Figure 15] Figure 15 is a chart showing the results of a Thioflavin T binding assay of hIAPP when mixed with the indicated chicken and raccoon IAPP variants. Human IAPP was incubated with each indicated peptide at 37°C with shaking. The four vertical bars for each peptide indicate fluorescence after 10, 20, 25, and 30 minutes, from left to right, respectively. Data represent the mean of a minimum of two runs, and error bars indicate the standard deviation between runs. [Figure 16]16 is a chart showing the results of an MTT viability assay comparing variant raccoon IAPP peptides. The leftmost black bar indicates the average survival of cells alone. The left bar above each peptide identification on the horizontal axis indicates the average cell survival upon addition of 12.8 μM of each indicated IAPP peptide individually. The right bar above each peptide identification on the horizontal axis indicates the cell survival of hIAPP mixed with the indicated IAPP peptide (12.8 μM mixture of hIAPP with each indicated IAPP peptide at a 1:1 ratio). [Figure 17] 17 is a table listing several peptides based on truncations of the sequence of chicken IAPP. Peptides that inhibit hIAPP amyloid formation are indicated with a bold "yes" in the "inhibit" column, and peptides that rescue cells from hIAPP toxicity are indicated with a bold "yes" in the "rescue" column. [Figure 18] Figure 18 is a chart showing the results of a thioflavin T binding assay of hIAPP when mixed with the indicated chicken IAPP variants. hIAPP was incubated with each indicated peptide at 37°C with shaking. The four vertical bars for each peptide indicate fluorescence after 10, 20, 25, and 30 minutes, from left to right, respectively. Data represent the mean of a minimum of two runs, and error bars indicate the standard deviation between runs. [Figure 19] Figure 19 shows the results of AFM scans of truncated chicken and raccoon IAPP peptides. In the depicted scans, the R1-23, R8-23, and R8-30 peptides did not inhibit hIAPP aggregation, whereas the R1-29, R1-27, C1-29, and C1-27 peptides did. Each sample contained 37 μM hIAPP and 75 μM of the indicated peptide. Samples were incubated at 37°C with shaking for 40 minutes. All scans show raw data without flattening and are 10 μm x 10 μm. [Figure 20]Figure 20 is a table listing several peptides based on mutations in the sequence of chicken IAPP. Peptides that inhibit hIAPP amyloid formation are indicated with a bold "yes" in the "inhibit" column, and peptides that rescue cells from hIAPP toxicity are indicated with a bold "yes" in the "rescue" column. [Figure 21] 21 is a chart showing the results of an MTT survival assay comparing variant chicken IAPP peptides. The leftmost black bar indicates the average survival of cells alone. The left bar above each peptide identification on the horizontal axis indicates the average cell survival upon addition of 12.8 μM hIAPP or chicken IAPP variants individually. The right bar above each peptide identification on the horizontal axis indicates the cell survival of hIAPP mixed with chicken IAPP variants (12.8 μM mixture of hIAPP with each indicated IAPP peptide at a 1:1 ratio). [Figure 22] Figure 22 shows the results of AFM scans of raccoon and chicken IAPP variants when mixed with hIAPP. Each sample contained 37 μM hIAPP mixed with 37 μM of the indicated peptide. The samples were incubated with shaking at 37°C for 30 minutes, after which each sample was deposited onto freshly cleaved mica. DETAILED DESCRIPTION OF THE INVENTION

[0013] definition As used herein, the following terms and variations thereof have the meanings given below, unless a different meaning is intended by the context in which such term is used.

[0014] "About" and "approximately," unless the context of such use dictates otherwise, refer to an amount within 10% of the referenced amount. For example and without limitation, "about 10" means 9-11, and "about 10%" means 9-11%.

[0015] "Amyloid disease" refers to a medical condition caused by or associated with aggregates of peptides and / or proteins, particularly amylin, that have a fibrillar morphology and a β-sheet secondary structure. Human IAPP can form oligomers or plaques, and such aggregates are associated in some cases with type II diabetes and Alzheimer's disease.

[0016] "Cytoprotection" refers to the ability to attenuate, reduce, or prevent cell damage or death, particularly the toxic effects of exposure to hIAPP. Cytoprotection can be measured using methods known in the art, such as cell survival and cytotoxicity assays.

[0017] "IAPP" refers to islet amyloid polypeptide, which is found in a variety of animals, particularly mammals and birds.

[0018] "IAPP peptide" refers to a peptide having one or more amino acid substitutions compared to human IAPP (SEQ ID NO: 1). IAPP peptides can be truncated compared to hIAPP and preferably have a length of at least 70%, 73%, 75%, 80%, 85%, 90% or more of hIAPP. Preferably, IAPP peptides have at least 80% sequence identity with hIAPP, e.g., 89%, 92%, 95%, or up to 97% sequence identity.

[0019] "Inhibition" refers to slowing and / or preventing the formation of amyloid oligomers, fibrils, and aggregates, compared to the formation of such materials in the absence of the material that causes such inhibition. Amyloid formation can be measured in a manner known in the art, for example, using a thioflavin T binding assay. Preferably, the IAPP peptide inhibits IAPP aggregate formation by about 50% or more.

[0020] "Medical condition" refers to a condition that causes illness, discomfort and / or disability in a subject.

[0021] "Pharmaceutical effect" and "therapeutic effect" refer to an effect in restoring, correcting, or modifying a subject's physiological function, including curing, mitigating, treating, or preventing a medical condition in a subject. A "pharmaceutical composition" and a "medicament" are compositions that have a pharmacological effect.

[0022] "Treatment" refers to the act of attenuating, ameliorating, preventing, and / or resolving a medical condition. Treatment can refer to either prevention or treatment after the onset of a medical condition requiring treatment.

[0023] The term "comprise" and variations of that term, such as "comprising" and "comprises," are not intended to exclude other additives, ingredients, integers, or steps. The terms "a," "an," and "the" and similar reference words used herein should be construed to cover both the singular and the plural, unless their use in context dictates otherwise. Ranges stated as being "between" two values ​​include the indicated values.

[0024] IAPP peptide IAPP peptides from other species The present inventors compared the aggregation potential of naturally occurring IAPP peptides from various organisms and, in this context, evaluated the interaction of such peptides with human IAPP (hIAPP). During these studies, the present inventors surprisingly found that some of these animal IAPP peptides exhibited a remarkable ability to inhibit hIAPP aggregation, preventing amyloid formation and protecting mammalian cells from hIAPP toxicity.

[0025] The amino acid sequences of the naturally occurring IAPP peptides evaluated by the inventors are shown in Figure 1, with sequence differences from human IAPP indicated in bold. Animal IAPP peptides identified as exhibiting the ability to inhibit hIAPP aggregation are listed above the figure, and variants lacking inhibitory ability are listed below. While IAPP peptides from bovine, degu, guinea pig, horse, pig, rat, and sheep origins did not inhibit the aggregation of human IAPP, the inventors surprisingly found that IAPP from cat, dog, chicken, polar bear, raccoon, and seal origins could inhibit such aggregation when mixed with hIAPP. The sequences of these inhibitory IAPP peptides are shown in Table 1 below.

[0026] TIFF0007825238000001.tif68170

[0027] As discussed below in Examples 1-3, these peptides inhibited aggregate formation by hIAPP (FIGS. 1-3), and raccoon and chicken IAPP peptides also rescued live cells from the toxic effects of hIAPP (FIG. 4).

[0028] Weddell Seal Variant Variants (mutations) of Weddell seal IAPP were prepared to determine their ability to inhibit hIAPP aggregation. As shown in the table in Figure 7, some of these were found to be able to inhibit hIAPP aggregation and / or protect cells from hIAPP toxicity. Their sequences are shown in Table 2 below.

[0029] TIFF0007825238000002.tif55170

[0030] The results of a thioflavin T binding assay of hIAPP when mixed with the indicated Weddell seal variants are shown in Figure 8. WS-RL (SEQ ID NO: 16) and WS-LP (SEQ ID NO: 18) IAPP peptides inhibited hIAPP aggregation. WS-RL and WS-RP (SEQ ID NO: 17) also rescued cells from hIAPP toxicity in an MTT assay (Figure 10). However, the WS-LP (and WS-P) peptides were found to be toxic to cells with and without the addition of hIAPP.

[0031] Raccoon Variant Given the ability of raccoon IAPP to inhibit hIAPP-mediated aggregate formation and also rescue living cells from the toxic effects of hIAPP, a series of IAPP peptides based on the native raccoon IAPP peptide sequence were synthesized and characterized for their ability to inhibit human IAPP amyloid formation and rescue cells from hIAPP toxicity. As shown in Figures 12, 16, and 19, several IAPP peptides truncated from the C-terminus of the raccoon IAPP peptide were found to inhibit hIAPP aggregation and also protect cells from hIAPP toxicity. Removal of amino acids from the N-terminus (SEQ ID NOS: 21 and 23) and the middle (SEQ ID NOS: 22, 24, and 25) of full-length raccoon IAPP resulted in peptides that neither inhibited hIAPP aggregation nor reduced its cytotoxicity, whereas removal of up to 13 amino acids at the C-terminus of full-length raccoon IAPP resulted in peptides that could inhibit hIAPP aggregation and also protect cells. Table 3 below lists truncated raccoon hIAPP peptides that have the ability to inhibit hIAPP aggregate formation and protect cells from hIAPP cytotoxicity.

[0032] TIFF0007825238000003.tif116170

[0033] Whereas the corresponding native raccoon IAPP peptide exhibited some cytotoxicity when incubated with pancreatic cells, these truncated peptides were essentially free of toxicity.

[0034] Additional peptides with altered (mutated) sequences from raccoon IAPP were generated and analyzed for their ability to inhibit hIAPP aggregation. The sequences shown in Table 4 below and in Figure 12 demonstrated strong inhibition of hIAPP amyloid formation.

[0035] TIFF0007825238000004.tif61170

[0036] Rac-L26Y (SEQ ID NO: 46) was superior in its ability to inhibit hIAPP fibril formation and rescue cells from hIAPP toxicity while exhibiting minimal intrinsic toxicity.

[0037] Chicken variant Considering the ability of chicken IAPP to inhibit hIAPP-mediated aggregate formation and also rescue living cells from the toxic effects of hIAPP, a series of IAPP peptides based on the native chicken IAPP peptide sequence were synthesized and characterized for their ability to inhibit human IAPP amyloid formation and rescue cells from hIAPP toxicity. As shown in Figures 18, 19, and 21, several IAPP peptides truncated from the C-terminus of the chicken IAPP peptide were found to inhibit hIAPP aggregation and / or protect cells from hIAPP toxicity. Removal of amino acids from the N-terminus of full-length chicken IAPP resulted in peptides that did not inhibit hIAPP aggregation or reduce its cytotoxicity, and peptides truncated to lengths less than 24 amino acids lost their amyloid-inhibiting ability. However, removal of up to 13 amino acids at the C-terminus of full-length chicken IAPP resulted in peptides that could inhibit hIAPP aggregation and / or protect cells from hIAPP cytotoxicity. These peptides are shown in Table 5 below.

[0038] TIFF0007825238000005.tif115170

[0039] Whereas the corresponding native chicken IAPP peptide exhibited some cytotoxicity when incubated with pancreatic cells, these truncated peptides were essentially free of toxicity.

[0040] Additional peptides with modified sequences from chicken IAPP were generated and analyzed for their ability to inhibit hIAPP aggregation. The sequences in Table 6 below showed strong inhibition of hIAPP amyloid formation.

[0041] TIFF0007825238000006.tif55170

[0042] Ch-I22L (SEQ ID NO: 67) was able to inhibit hIAPP fibril formation and rescue cells from hIAPP toxicity while exhibiting minimal intrinsic toxicity (see Figures 15, 21, and 22).

[0043] Measurement of the effects of IAPP peptides Any of a number of assays known in the art can be used to assess the ability of IAPP peptides to inhibit hIAPP aggregation and / or protect cells from hIAPP toxicity. Thioflavin T (ThT) binding is one such technique for identifying amyloid formation in real time. Human IAPP is known to bind to thioflavin T during aggregation and amyloid formation, and upon binding to amyloid fibrils, ThT gives a strong fluorescent signal at approximately 482 nm when excited at 450 nm. ThT fluorescence is linearly correlated with the amyloid concentration in a sample and can therefore be used to determine the amount of aggregation in a sample. This technique can therefore be used to identify substances that have amyloid-inhibiting capabilities when such substances are mixed with human IAPP under conditions known to result in the formation of hIAPP aggregates. Determining the extent of aggregation can also be determined using other techniques, such as atomic force microscopy (AFM), which can provide information about particle size, shape, and substructure with nanometer resolution. In these assays and others that may be used by those skilled in the art, significant inhibition can be determined using a t-test by measuring the difference between hIAPP and hIAPP combined with IAPP peptides, with significant results indicating a t-test value of <0.05.

[0044] Cytoprotection can also be measured by a number of assays known in the art. One such assay is the MTT assay, which is a colorimetric assay for assessing cellular metabolic activity. NAD(P)H-dependent cellular oxidoreductase enzymes in the cytosolic compartment of cells reduce the tetrazolium dye MTT 3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide to formazan, an insoluble form with a purple color. Because the reduction of MTT (and other tetrazolium dyes) depends on the metabolic activity of cells, the loss of color during the course of performing the MTT assay indicates low metabolic activity, and is therefore an indicator of cell damage and death.

[0045] Pharmaceutical preparations IAPP peptides can be formulated as pharmaceutical compositions (medicines) for administration in a manner known in the art, including intramuscular, intravenous, and subcutaneous administration. Depending on the route of administration, the pharmaceutical composition can be formulated as a liquid, a powder or other solid, or a gel. If the composition is in powder form, the IAPP peptide can be in the form of a salt, such as an acetate salt. The pharmaceutical composition can include one or more pharmaceutically acceptable carriers and / or other pharmaceutically acceptable excipients, for example, to stabilize the composition and / or deliver the composition to a subject. Excipients for the pharmaceutical composition can include suitable additives, such as pharmaceutically effective carriers (i.e., sterile water, water, saline, etc.), buffers, neutralizing agents, stabilizers, humectants, viscosity-increasing agents, chemical stabilizers, thickeners, diluents, and / or solvents. Examples of excipients for some embodiments include, but are not limited to, alcohols and polyglycols, glycerin, waxes, water, deionized water, fatty acid esters, and the like, as well as mixtures and combinations thereof. Suitable formulations for parenteral administration, such as by intravenous, intramuscular, intradermal, and subcutaneous routes, include aqueous and non-aqueous isotonic sterile injection solutions.

[0046] Use of IAPP peptide IAPP peptides can be used to inhibit IAPP aggregation or protect cells, for example, as described in the Examples below. In one embodiment, IAPP peptides are administered to cells in vitro to protect cells from exposure to aggregates of amyloid fibrils, such as hIAPP, which have been found to induce cytotoxicity both when exogenously applied and when secreted from cells. The IAPP peptides can also be administered to a subject to reduce IAPP aggregation in vivo. The IAPP peptides can be particularly used to treat human or other mammalian subjects with amyloid diseases, such as diabetes. In one embodiment of the present invention, the IAPP peptides that inhibit hIAPP aggregation and protect cells from hIAPP toxicity can be administered to a subject to treat amyloid diseases.

[0047] Peptides derived from human IAPP, such as ANFLVH, which inhibit amyloid fibril formation and reduce cytotoxicity, have been shown to improve fasting blood glucose levels and glucose tolerance in subjects after injection (Wijesekara et al., Diabetes, Obesity and Metabolism 17:1003-1006, 2015). The IAPP peptide pramlintide has also been used to treat diabetes in humans. This peptide contains three amino acid substitutions found in rat IAPP. Pramlintide, however, is more amyloidogenic than the IAPP peptide and lacks cytoprotective effects. As can be seen in the AFM scans shown in Figure 5, raccoon IAPP alone did not aggregate, but pramlintide formed amyloid fibrils under the same conditions. The raccoon IAPP peptide also prevented the aggregation of hIAPP, whereas pramlintide failed to do so under the same conditions. Unlike raccoon and chicken IAPP, pramlintide is also toxic to cells and does not have the ability to protect cells from the toxic effects of hIAPP (see Figure 6).

[0048] IAPP peptides can be administered to subjects by methods known in the art, for example, parenterally, for example, intramuscularly, intravenously, or subcutaneously.In one embodiment, IAPP peptide compositions can be administered directly to the site where aggregated IAPP is found, for example, to the pancreas, particularly to the pancreatic islets of Langerhans.Since amylin oligomers and plaques have also been identified in blood vessels, perivascular spaces, and brain tissue (parenchyma), IAPP peptide compositions can also be injected or applied to these organs or compartments to administer the IAPP peptides to subjects.

[0049] Depending on the particular needs of the individual subject involved, the peptides can be administered in a variety of doses to provide effective treatment for amyloid diseases. Preferably, a dose of about 1 microgram (mcg) to about 500 micrograms can be administered to a subject, e.g., a dose of about 2mcg, 5mcg, 7mcg, 10mcg, 15mcg, 20mcg, 30mcg, 40mcg, 50mcg, 60mcg, 70mcg, 80mcg, 90mcg, 100mcg, 120mcg, 150mcg, 170mcg, 200mcg, 220mcg, 250mcg, 270mcg, 300mcg, 320mcg, 350mcg, 370mcg, 400mcg, 420mcg, 450mcg, or 470mcg. For example, the IAPP peptide may be administered at doses of, for example, 0.1 mcg / kg / day, 0.15 mcg / kg / day, 0.2 mcg / kg / day, 0.25 mcg / kg / day, 0.3 mcg / kg / day, 0.4 mcg / kg / day, 0.5 mcg / kg / day, 0.7 mcg / kg / day, 0.9 mcg / kg / day, 1.0 mcg / kg / day, 1.2 The peptide may be administered in an amount of 1.5 mcg / kg / day, 1.7 mcg / kg / day, 2.0 mcg / kg / day, 2.2 mcg / kg / day, 2.5 mcg / kg / day, 3.0 mcg / kg / day, 3.5 mcg / kg / day, 4.0 mcg / kg / day, 4.5 mcg / kg / day, or 5.0 mcg / kg / day. Factors such as the aggregation inhibitory activity of the selected peptide, the half-life of the peptide, the physiological characteristics of the subject, the extent or nature of the subject's condition, and the method of administration will determine what constitutes an effective amount of the selected peptide, as known to those skilled in the art. Generally, the initial dose is modified to determine the optimal dosage for treatment of a particular subject. Repeated doses of the peptide administered over an extended period of time may be required.

[0050] The effective amount of any embodiment of the present invention can be determined using methods known to pharmacologists and clinicians of ordinary skill in the art. For example, animal models can be used to determine applicable dosages for patients. Numerous models for diabetes and other amyloid diseases are known. A transgenic mouse model of type 2 diabetes that has been used to evaluate IAPP-derived peptides is disclosed, for example, in Wijesekara et al. (Diabetes, Obesity and Metabolism 17:1003-1006, 2015).

[0051] As known to those skilled in the art, a patient can initially be administered a very low dose of peptide, i.e., a dose found to be minimally toxic in animals (e.g., 1 / 10 x LD10 in mice), and if that dose is found to be safe, the patient can be treated with a higher dose. A therapeutically effective amount of one of the present peptides for treating an amyloid disease can then be determined by administering incremental amounts of such peptide to a patient suffering from such a condition until such time as the patient's symptoms are observed or reported by the patient to be reduced or eliminated.

[0052] Blood levels of the peptides can be determined using routine biological and chemical assays, and these blood levels can be matched to the route of administration and half-life of the selected peptide. The blood levels and route of administration can then be used to establish a therapeutically effective amount of a pharmaceutical composition comprising one of the peptides for preventing and / or treating amyloid diseases.

[0053] It should be noted that raccoon and chicken IAPP were found to prevent hIAPP aggregation in the presence of human insulin and are therefore safe for use in combination with diabetes treatments. Both raccoon and chicken IAPP are also less prone to aggregation than pramlintide, another diabetes treatment. [Example]

[0054] Example 1: Thioflavin T assay with hIAPP inhibitors from other species To identify IAPP peptides with inhibitory potential against hIAPP aggregation, peptides shown in Figure 1 from multiple species (cattle, degu, guinea pig, horse, pig, rat, and sheep) were mixed with hIAPP at a 2:1 molar ratio of animal peptide to hIAPP and incubated under conditions known to promote hIAPP aggregation and fibril formation. IAPP alone or mixed with animal IAPP was pipetted into a glass tube, and HFIP was removed under speed vacuum. The resulting peptide samples were dissolved in 20 mM Tris buffer (pH 7.4).

[0055] 37 μM human IAPP was mixed with 75 μM of each indicated animal IAPP. Aggregation was initiated by incubating the samples at 37°C for 40 minutes with shaking at 200 rpm. At the indicated time points, 17 μL aliquots of each sample were mixed with 50.0 μM thioflavin T in 663 μL of 20 mM Tris buffer (pH 7.4). Thioflavin T fluorescence emission was then recorded at 488 nm using a Hitachi F-7000 fluorescence spectrophotometer.

[0056] After 40 minutes, these samples were monitored for their ability to bind Thioflavin T (see Figure 2) and to form fibrils as identified using atomic force microscopy.

[0057] Example 2: Atomic force microscopy with hIAPP inhibitors from other species AFM was used to directly test the amyloid-inhibitory ability of each animal IAPP peptide shown in Figure 1. Samples of hIAPP with or without animal IAPP were prepared as described in Example 1 and then incubated at 37°C with shaking for 40 minutes. After this incubation, 17 μL of each sample was deposited onto freshly cleaved mica. The samples were incubated at room temperature for 5 minutes before being washed with 200 μL of sterile water. After drying, the samples were scanned using an MFP-3D atomic force microscope (Asylum Research) set in A / C mode and a 240 μm silicon cantilever (Olympus).

[0058] Under these conditions, human IAPP forms dense fibrils when deposited on mica and scanned via AFM. Many animal IAPP variants are known to similarly form fibrils and result in amyloid plaques when scanned via AFM. When mixed with hIAPP, animal IAPP peptides from cow, degu, dolphin, guinea pig, horse, pig, rat, and sheep all had no effect on hIAPP fibril formation or appeared to promote fibrils with hIAPP. Six IAPP variants were found to inhibit hIAPP fibril formation, and chicken, cat, dog, polar bear, raccoon, and seal all showed significant ability to prevent fibril formation. This is despite the fact that all of these IAPP peptides (except polar bear IAPP) are known to aggregate and form fibrils alone under these or similar conditions.

[0059] Example 3: Cell viability assays using hIAPP inhibitors from other species To test the ability of animal IAPP variants to rescue living cells from the toxic effects of hIAPP, both viability and cytotoxicity assays were performed. To test cell viability, we used the MTT colorimetric assay, which measures the conversion of yellow tetrazolium salts to purple formazan crystals catalyzed by mitochondrial reductase. Cell viability studies were performed using RIN-m cells (ATCC, CRL-2057). Equal numbers of RIN-m cells were plated in triplicate and incubated overnight in 96-well plates. The next day, fresh RPMI-1640 supplemented with 10% FBS and phenol red was added to the cells. Hexafluoroisopropanol (HFIP) was removed from each individual human and animal IAPP using a centrivap concentrator (LabOnco). All IAPP peptide samples were resuspended in RPMI-1640 containing 10% FBS. To ensure uniform resuspension, each resulting IAPP-containing vial was scraped six times with a pipette tip and vortexed for 15 seconds (Vortex Genie Mixer). The entire process, from drying each IAPP peptide to adding it to the cells, was uniform to ensure that each sample was incubated with each IAPP peptide for an equal amount of time. The IAPP peptides were added to the cells and incubated at 37°C for 46 hours. After incubation, the medium in each well was replaced with fresh DMEM / F-12 without phenol red. MTT (3-(4,5-dimethyl-2-thiazolyl)-2,5-diphenyl-tetrazolium bromide) was added to each well and incubated at 37°C for 2 hours. Formazan crystals formed at the bottom of the wells were resuspended in solubilization buffer (20% SDS and 50% dimethylformamide). The absorbance in each well was measured at 570 nm using a Multiskan FC Microplate Photometer (Thermos Fisher Scientific). Culture media was obtained from ATCC. All incubations were performed in a water-jacketed incubator (Shell Lab) at 37°C in 5% carbon dioxide.

[0060] Using an MTT survival assay, we measured the cell viability of RIN-m cells with hIAPP alone, each animal IAPP peptide alone, and hIAPP mixed with each animal IAPP peptide (results are shown in Figure 5). RIN-m cells alone were used as a control and set at 100% cell viability. Addition of 12.8 μM human IAPP consistently resulted in a decrease in cell viability to 55 + / - 5%. Addition of 12.8 μM raccoon, cat, seal, polar bear, and pig IAPP variants individually resulted in an average 20-25% decrease in cell viability, whereas addition of chicken and rat IAPP had an improving effect on cell viability. Mixing hIAPP with the raccoon IAPP variant at a 1:1 ratio (each IAPP at a concentration of 12.8 μM) protected RIN-m cells from the toxic effects of hIAPP. Addition of raccoon IAPP to hIAPP increased cell survival from 55% to an average of 72% (p=0.005705). Addition of chicken IAPP variants to hIAPP increased cell survival to an average of 76% (p=0.013556). Addition of cat and seal IAPP variants to hIAPP also increased cell survival to approximately 62%, with more variable results. Polar bear, rat, and pig IAPP variants were unable to protect RIN-m cells from the toxic effects of hIAPP.

[0061] Example 4: Weddell Seal IAPP Peptide Variants Thioflavin T binding assays were performed using the Weddell seal IAPP variants shown in Figure 7. Human IAPP (37 μM) was mixed with each of the indicated Weddell seal variants (75 μM) and incubated at 37°C for 30 minutes with shaking at 200 rpm. The results are shown in Figure 8. Weddell seal IAPP peptides were also subjected to atomic force microscopy as described in Example 2. These results, shown in Figure 9, indicate that the WS_RL and WS_LP variants were potent inhibitors of hIAPP fibril formation.

[0062] Example 5: Truncated Raccoon IAPP Peptide Variants Thioflavin T binding assays were performed using the raccoon IAPP variants shown in Figure 11. Human IAPP was mixed with each of the indicated raccoon variants and incubated at 37°C with shaking. The results are shown in Figures 12 and 13. The R1-27, R1-29, and R1-30 variants inhibited hIAPP aggregation and also rescued cells from hIAPP-induced cytotoxicity in an MTT viability assay (see Figure 16).

[0063] Example 6: Mutated raccoon IAPP peptide variants Thioflavin T binding assays were performed using the raccoon IAPP variants shown in Figure 10. Human IAPP was mixed with each of the indicated raccoon variants and incubated at 37°C with shaking. The results are shown in Figure 15. As shown in Figure 16, the Rac_V8A, Rac_N13D, Rac_L16V, Rac_L22I, and Rac_L26Y variants inhibited hIAPP aggregation, and Rac_L26Y also improved cell survival in the presence of hIAPP in an MTT viability assay.

[0064] Example 7: Truncated Chicken IAPP Peptide Variants Thioflavin T binding assays were performed using the chicken IAPP variants shown in Figure 17. Human IAPP was mixed with each of the indicated chicken variants and incubated at 37°C with shaking. The results are shown in Figure 18. The C1-27 and C1-29 variants inhibited hIAPP aggregation and also rescued cells from hIAPP-induced cytotoxicity in an MTT viability assay (see Figure 21). Although the C1-29 peptide prevented ThT binding, amyloid fibrils formed when AFM scanning was performed with this peptide (as described in Example 2), so this peptide is indicated in Figure 13 as not inhibiting hIAPP aggregation. However, since it was able to protect cells in the MTT assay, it appears to inhibit the formation of toxic oligomers while having a lower effect on inhibiting fibril formation (lower toxicity and lower ability to bind ThT).

[0065] Example 8: Mutated Chicken IAPP Peptide Variants Thioflavin T binding assays were performed using the chicken IAPP variants shown in Figure 14. Human IAPP was mixed with each of the indicated chicken variants and incubated at 37°C with shaking. The results are shown in Figure 15. Ch_V16L, Ch_I22L, and Ch_Y26L inhibited hIAPP aggregation and also rescued cells from hIAPP-induced cytotoxicity in an MTT viability assay (see Figure 21).

[0066] The term "comprise" and variations of that term, such as "comprising" and "comprises," are not intended to exclude other additives, ingredients, integers, or steps. The terms "a," "an," and "the" and similar reference words used herein should be construed to cover both the singular and the plural, unless their use in context dictates otherwise. Ranges stated as being "between" two values ​​include the indicated values.

[0067] Although the present invention has been described in considerable detail with reference to certain preferred embodiments, other embodiments are possible. For example, the steps disclosed for the present methods are not intended to be limiting, nor are they intended to indicate that each step is necessarily essential to the method, but are instead merely exemplary steps. Therefore, the scope of the appended claims should not be limited to the description of the preferred embodiments contained in this disclosure.

[0068] The description of ranges of values ​​herein is merely intended to serve as a shorthand way of individually referring to each separate value falling within the range.Unless otherwise indicated herein, each separate value is incorporated herein as if it were individually described herein.For example, "about 10" includes the description of exactly 10.All references cited herein are incorporated in their entirety by reference.

Claims

1. An IAPP peptide comprising an amino acid sequence selected from the group consisting of SEQ ID NOs: 65-68.

2. A pharmaceutical composition comprising the IAPP peptide of claim 1 and one or more pharmaceutically acceptable excipients.

3. A pharmaceutical composition for inhibiting human IAPP aggregation, said pharmaceutical composition comprising an IAPP peptide and one or more pharmaceutically acceptable excipients, said IAPP peptide comprising an amino acid sequence selected from the group consisting of SEQ ID NOs: 66-68.

Citation Information

Patent Citations

  • Pancreatic-islet Amyloid

    JP1990500857A

  • chemically modified peptide analogues

    JP2008517885A