Plasma fractions for use in liver regeneration

Plasma fractions are used to enhance liver recovery and regeneration, addressing the lack of effective therapies and donor liver shortages by leveraging their impurities for stimulating liver growth and regeneration.

JP7754810B2Active Publication Date: 2025-10-15ALKAHEST INC
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
JP2022529741
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-02-12
Filing Date
2020-11-18
Publication Date
2025-10-15
Estimated Expiration
2040-11-18

AI Technical Summary

Technical Problem

There is a significant lack of effective therapies for liver failure and insufficient donor livers for transplantation, with existing albumin treatments containing undesirable protein contaminants.

Method used

Utilizing plasma fractions, including 'contaminants' or 'impurities', to enhance liver recovery and regeneration, leveraging their potential for stimulating liver growth and regeneration.

Benefits of technology

Plasma fractions accelerate liver recovery and regeneration, improving outcomes for patients with liver disease, resection, or transplantation, and overcoming the limitations of pure albumin treatments.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007754810000001
    Figure 0007754810000001
  • Figure 0007754810000002
    Figure 0007754810000002
  • Figure 0007754810000003
    Figure 0007754810000003
Patent Text Reader

Abstract

Methods and compositions for treating age-related diseases, as well as liver regeneration, prevention of liver degeneration, and liver maintenance are described. The compositions used in the methods include plasma and plasma fractions derived from plasma that are effective in treating and / or preventing disease.
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present invention relates to the prevention and treatment of diseases, including age-related diseases. The present invention relates to the use of blood products, such as plasma and plasma fractions, to treat and / or prevent age-related conditions associated with liver growth, maintenance, and regeneration. This application claims priority under 35 U.S.C. §119(e) to the filing dates of U.S. Provisional Patent Application No. 62 / 937,965, filed November 20, 2019, and U.S. Provisional Patent Application No. 62 / 975,637, filed February 12, 2020, the disclosures of which are incorporated herein by reference. [Background technology]

[0002] Liver failure currently represents a large market for the sole therapeutic intervention—liver transplantation. Approximately 35 million Americans, or one in ten, suffer from some form of liver disease. This number is increasing due to the increasing prevalence of cirrhosis among an increasingly obese population. NAFLD (nonalcoholic fatty liver disease) is a major risk factor contributing to cirrhosis, which can ultimately lead to liver failure. Due to the declining health of the general population, fewer organs are available for transplantation. As a result, only approximately one-third of patients on the liver transplant list receive a transplant. This list generally does not include patients over 65 years of age due to the age-related increase in risks associated with organ transplantation. For patients with cirrhosis awaiting a liver transplant, the statistics are particularly bleak. In the United States, there are 300,000 hospitalizations and 36,000 deaths due to cirrhosis annually, and more than half of these patients are ineligible for transplant. The availability of alternative treatments could have a significant impact on the large proportion of liver disease patients for whom no other treatments are available.

[0003] Liver failure can be acute or chronic.Acute liver failure is often caused by viral infection (e.g., hepatitis B and hepatitis C), excessive use of drugs or toxins (e.g., acetaminophen), and metabolic or vascular disorders such as autoimmune hepatitis and Wilson's disease.Chronic liver failure is usually classified as cirrhosis and can be caused by viral infection, alcoholism, NAFLD (due to obesity, high cholesterol and triglycerides, and high blood pressure), autoimmune disease, blocked or damaged ducts, such as the bile duct from the liver to the intestine, exposure to toxins or certain drugs, parasites, and heart failure that causes blood to accumulate in the liver.

[0004] Liver resection and transplantation may be performed for liver failure as described above, but transplantation is more commonly performed for chronic liver failure. Furthermore, these procedures can be performed for primary malignancies and secondary malignancies (i.e., cancer). Improved outcomes from liver resection and transplantation are associated with attention to preoperative, intraoperative, and postoperative care (Wrighton LJ, et al., J Gastrointest Oncol., 3(1): 41-47, (2012)). These include advances in surgical and anesthesia techniques, improved understanding of liver physiology, nutritional support, glycemic control, and reduced postoperative infections (ibid.). In liver transplants, immunosuppressants are most commonly used. The physician's role in managing liver rejection and addressing long-term complications such as hypertension and obesity is an important part of improved outcomes (see Issa DH, Cleveland Clinic J of Med., 82(6):361-72 (2015)). Summary of the Invention [Problem to be solved by the invention]

[0005] There remains a significant lack of new therapies to improve outcomes for patients with liver failure and / or those who have undergone resection or transplantation. Furthermore, even in the case of liver transplantation, there are simply not enough donor livers to accommodate all patients (see, for example, Helwick C, The ASCO Post, (Sep 25, 2017) stating that the “problem with transplantation is organ allocation.”).

[0006] One compound being investigated for the treatment of liver cirrhosis is albumin, which replaces albumin production lost due to reduced albumin production by the liver itself in cirrhosis. The rationale is that albumin helps replenish osmotic pressure, binds harmful substances, regulates homeostasis, and functions as an anti-inflammatory agent (Carvalho JR, et al., Annals of Hepatology, 17(4): 547-60 (2018)). Therefore, conventional wisdom in this field is that the more pure the albumin, the higher its concentration and, consequently, its efficacy. Therapeutic albumin is typically produced by plasma fractionation. Fractionation methods can produce albumin solutions that contain undesirable protein "contaminants" or "impurities." [Means for solving the problem]

[0007] The present invention provides novel therapeutic methods using plasma fractions to enhance and accelerate the recovery of diseased, resected, or transplanted livers in patients with liver disease. Furthermore, because the liver is the only internal organ capable of regenerating, the present invention provides methods for stimulating the growth and regeneration of existing livers, which can accelerate recovery from surgery, for example, in some liver-related indications. Furthermore, the present invention utilizes what are considered "contaminants" or "impurities" obtained from plasma fractions to more effectively treat liver disease.

[0008] Incorporation by Reference All publications and patent applications mentioned in this specification are herein incorporated by reference to the same extent as if each individual publication or patent application was specifically and individually indicated to be incorporated by reference. [Brief explanation of the drawings]

[0009] [Figure 1]

[0023] Figure 1 is a graph showing the weight progression of 20-month-old C57BL / 6 mice on a high-fat diet ("HFD"). After 8.5 weeks on the HFD, the mice showed significant weight gain. [Figure 2] Oil Red O staining of livers from mice as shown in Figure 1. Mice on an HFD developed fatty liver compared to mice receiving a normal diet ("normal diet"). [Figure 3] Figure 1 shows the experimental design for evaluating the effect of PPF1 on 20-month-old C57BL / 6 mice with fatty liver. The mice received a 60% high-fat diet for 7 weeks, followed by treatment with PPF1 or vehicle for 7 consecutive days. Surgery (70% hepatectomy) was performed the day after the last administration of PPF1 or vehicle, and during the hepatectomy, the preoperative middle lobe and left lobe (removed) were removed. The right lobe and caudate lobe (remaining) were harvested 48 hours after hepatectomy. [Figure 4] FIG. 4 shows the resected and remaining lobes following a 70% hepatectomy in a mouse treated as shown in FIG. 3. [Figure 5] 4 is a graph showing the results of determining the ratio of resected liver weight to body weight in hepatectomized mice treated with vehicle and PPF1 as shown in FIG. 3. [Figure 6] 4 is a graph showing the weight of excised liver sections from mice treated with vehicle and PPF1 as shown in FIG. 3. [Figure 7] 1 is a graph showing that serum ALT levels are normal and unaffected in mice receiving a HFD and treated with PPF1 before hepatectomy. [Figure 8]FIG. 4 is a graph showing the results of determining liver weight to body weight ratios in vehicle- and PPF1-treated mice with remaining livers 48 hours after hepatectomy, as shown in FIG. 3. [Figure 9] FIG. 4 is a graph showing liver weights of vehicle- and PPF1-treated mice with remaining livers 48 hours after hepatectomy, as shown in FIG. 3. [Figure 10] As shown in Figure 3, this is a graph showing the results of serum ALT levels in vehicle- and PPF1-treated mice 48 hours after hepatectomy. [Figure 11] Figure 1 shows the percentage of cell proliferation after hepatectomy. EdU was delivered 24 hours after hepatectomy, and the percentage of proliferation was followed by Click-it labeling of EdU-positive cells. PPF1 significantly increased the number of EdU-positive cells per region compared to vehicle-treated animals. [Figure 12] Figure 1 shows cell proliferation 48 hours after hepatectomy, as measured by the number of Ki67-positive cells per area. PPF1 significantly increased the number of Ki67-positive cells per area compared to vehicle-treated animals. [Figure 13] Figure 1 shows the percentage of cell proliferation in the remaining liver by qPCR gene expression. Relative expression of the cell cycle marker cyclin B1 is shown. In the remaining liver sections, cyclin B1 expression was significantly upregulated in mice treated with PPF1 compared to mice treated with vehicle. [Figure 14A] 14A-14C are graphs showing qPCR expression of single markers in resected liver. The relative expression of the cell cycle marker Cyclin B1 (FIG. 14A) is shown. In resected liver sections removed during hepatectomy as preoperative controls, PPF1 surprisingly significantly increased cell proliferation in this cell cycle marker compared to vehicle controls. [Figure 14B]Figure 14B is a diagram showing qPCR expression of single markers in resected liver. The relative expression of the cell cycle marker cyclin A2 (Figure 14B) is shown. In resected liver sections removed during hepatectomy as preoperative controls, PPF1 surprisingly significantly increased cell proliferation in this cell cycle marker compared to vehicle controls. [Figure 14C] Figure 14B is a diagram showing qPCR expression of single markers in resected liver. The relative expression of the cell cycle marker Ki67 (Figure 14C) is shown. In resected liver sections removed during hepatectomy as preoperative controls, PPF1 surprisingly significantly increased cell proliferation in this cell cycle marker compared to vehicle controls. [Figure 14D] Figure 14D shows the relative expression level of TNFα in resected liver sections. TNFα is known to contribute to the recovery of functional liver mass by promoting hepatocyte proliferation during liver regeneration. [Figure 15] FIG. 14C shows representative images of Ki67 immunostaining in resected livers, confirming that PPF1-treated resected livers had significantly higher numbers of Ki67-positive cells compared to vehicle controls. [Figure 16] FIG. 16 is a chart showing quantification of the immunostaining in FIG. 15, demonstrating an increase in the number of Ki67-positive cells in resected livers treated with PPF1. [Figure 17] 1 is a chart showing the total number of animals undergoing hepatectomy and survival rates by treatment. [Figure 18] Two representative confocal microscopy sections from the remaining liver in which EdU was incorporated 24 hours after hepatectomy (see Figure 3). Tissue sections were stained with GFAP antibody (a stellate cell marker) to observe the level of colocalization between GFAP and EdU. The lack of colocalization between EdU and GFAP indicated that cell proliferation associated with PPF1 administration did not occur in stellate cells. [Figure 19]Two representative confocal microscopy sections from the remaining liver into which EdU was incorporated 24 hours after hepatectomy (see Figure 3). Tissue sections were stained with CD68 antibody (a Kupffer cell marker) to observe the level of colocalization between CD68 and EdU. The lack of colocalization between EdU and CD68 indicated that the cell proliferation associated with PPF1 administration did not occur in Kupffer cells. [Figure 20] Representative confocal microscopy sections from the remaining liver where EdU was incorporated 24 hours after hepatectomy (see Figure 3). Tissue sections were stained with HNF4a antibody (a hepatocyte marker) to observe the level of colocalization between HNF4a and EdU. The lack of colocalization between EdU and HNF4a indicated that cell proliferation associated with PPF1 administration did not occur in hepatocytes. [Figure 21] Representative confocal microscopy sections from the remaining liver where EdU was incorporated 24 hours after hepatectomy (see Figure 3). Tissue sections were stained with CD3 antibody (a T cell marker) to observe the level of colocalization between CD3 and EdU. The lack of colocalization between EdU and CD3 indicated that the cell proliferation associated with PPF1 administration did not occur in T cells. [Figure 22] Two representative confocal microscopy sections from the remaining liver in which EdU was incorporated 24 hours after hepatectomy (see Figure 3). Tissue sections were stained with CD31 antibody (a sinusoidal endothelial cell marker) to observe the level of colocalization between CD31 and EdU. The clear colocalization of EdU and CD31 indicated that cell proliferation induced by PPF1 administration was associated with liver sinusoidal endothelial cells (LSECs). The arrows indicate LSECs containing EdU-positive cells. [Figure 23]Figure 1 shows the experimental design for evaluating the effects of PPF1 (plasma fraction "PF") and recombinant human albumin (rhAlbumin) in 20-month-old C57BL / 6 mice. Mice received a 60% high-fat diet for 8 weeks, followed by treatment with PPF1, rhAlbumin, or vehicle for 7 consecutive days. Surgery (70% hepatectomy) was performed the day after the last administration of PPF1, rhAlbumin, or vehicle. During the hepatectomy, the preoperative median and left lobes (removed) were removed. The right and caudate lobes (remaining) were harvested 48 hours after hepatectomy. [Figure 24] This figure shows cell proliferation in resected livers 48 hours after hepatectomy, measured by the number of Ki67-positive cells per area. PPF1 significantly increased the number of Ki67-positive cells per area compared to vehicle-treated animals. In contrast, animals treated with rh albumin showed no significant difference from vehicle-treated animals. [Figure 25] Figure 1 shows the cell proliferation rate in the remaining liver after hepatectomy. EdU was delivered 24 hours after hepatectomy, and the proliferation rate was monitored by click chemistry. PPF1 significantly increased the number of EdU-positive cells per region compared to vehicle-treated animals. In contrast, animals treated with rhAlbumin did not show a significant trend toward proliferation compared to vehicle-treated animals. [Figure 26] Figure 1 shows the experimental design for evaluating the effects of PPF1 and HAS1 on 20-month-old C57BL / 6 mice. The mice received a 60% high-fat diet for 8 weeks, followed by treatment with different plasma fractions (PFs) of PPF1 and HAS1 or vehicle for 7 consecutive days. Surgery (70% hepatectomy) was performed the day after the last administration of PPF1, HAS1, or vehicle. During the hepatectomy, the preoperative median and left lobes (removed) were removed. The right and caudate lobes (remaining) were harvested 48 hours after hepatectomy. [Figure 27] Figure 1 shows the cell proliferation rate 24 hours after hepatectomy. EdU was delivered 24 hours after hepatectomy. Both PPF1 and HAS1 significantly increased the number of EdU-positive cells in the remaining liver compared to vehicle. [Figure 28] This is a graph showing the cell proliferation rate 48 hours after hepatectomy. Ki67 immunostaining was performed on the remaining livers harvested 48 hours after hepatectomy. While both PPF1 and HAS1 significantly increased cell proliferation compared to control animals, PPF1 also induced more significant proliferation compared to animals treated with HAS1. [Figure 29] FIG. 1 shows the experimental design to evaluate the effect of PPF1 2 hours after the last administration to 20-month-old C57BL / 6 mice. [Figure 30] Figure 29 is a chart showing the results of TNFα gene expression analysis of mice treated as shown in Figure 29. Compared to vehicle-treated animals, animals treated with PPF1 had significantly increased TNFα gene expression by QPCR. [Figure 31] 29 is a graph showing the results of Ki67 immunostaining analysis of mice treated as shown in Figure 29. Compared to vehicle-treated animals, PPF1-treated animals had a significant increase in Ki67-positive cells 2 hours after the last dose, indicating increased hepatocyte proliferation by PPF1. DETAILED DESCRIPTION OF THE INVENTION

[0010] A. Introduction The present invention relates to the treatment of liver damage or disease. Plasma fractions, including plasma fraction products, have been shown to have significant activity in inducing liver recovery after hepatic resection. Furthermore, plasma fractions have been shown to activate cell proliferation in quiescent (pre-hepatic resection) and intact livers. Plasma fractions offer several advantages over whole plasma serum, as plasma fractionation processes can remove problematic clotting factors, obviating the need for blood cross-reactivity. Furthermore, plasma fractions have shown unexpectedly improved efficacy compared to young plasma in certain assays (see, e.g., U.S. Patent Application Nos. 15 / 499,694 and 16 / 432,114, both of which are incorporated herein by reference in their entirety). Therefore, predicting the efficacy of plasma fraction products from whole plasma serum is not subject to reasonable predictability.

[0011] Before describing the present invention in detail, it is to be understood that this invention is not limited to the particular methods or compositions described, as such may, of course, vary. It is also to be understood that the terminology used herein is for the purpose of describing particular embodiments only, and is not intended to be limiting, since the scope of the present invention will be limited only by the appended claims.

[0012] The publications discussed herein are provided solely for their disclosure prior to the filing date of the present application. Nothing herein should be construed as an admission that the present invention is not entitled to antedate such publication by virtue of prior invention. Further, the dates of publication provided may be different from the actual publication dates, which may need to be independently confirmed.

[0013] Where a range of values ​​is given, it is understood that each intervening value between the upper and lower limit of that range, to the tenth of the unit of the lower limit, unless the context clearly indicates otherwise, is also specifically disclosed. Each smaller range between any stated or intervening value in a stated range and any other stated or intervening value within that stated range is encompassed within the invention. The upper and lower limits of these smaller ranges may independently be included in or excluded from the smaller range, and each range in which either or both of the upper and lower limits are included in the smaller range is also encompassed within the invention, subject to any specifically excluded limit in the stated range. Where the stated range includes one or both of the limits, ranges excluding either or both of those included limits are also included in the invention.

[0014] It should be noted that the claims may be drafted to exclude any optional element. Accordingly, this statement is intended to serve as a predicate for use of exclusive terminology such as "solely," "only," or the use of a "negative" limitation in connection with the recitation of claim elements.

[0015] As will be apparent to those skilled in the art upon reading this disclosure, each of the individual embodiments described and illustrated herein comprises discrete components and features which may be readily separated from or combined with any of the features of the other multiple embodiments without departing from the scope or spirit of the invention. Any recited method may be carried out in the order of events recited or in any other order which is logically possible.

[0016] B. Definition Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs. Although any methods and materials similar or equivalent to those described herein can be used in the practice or testing of the present invention, some potentially preferred methods and materials are described herein. All publications mentioned herein are incorporated by reference to disclose and describe the methods and / or materials in connection with the cited publications. It is understood that the present disclosure supersedes any disclosure of an incorporated publication to the extent there is a conflict.

[0017] It should be noted that as used in this specification and the appended claims, the singular forms "a," "an," and "the" include plural referents unless the context clearly dictates otherwise. Thus, for example, a reference to a "cell" includes a plurality of such cells, and a reference to a "peptide" includes a reference to one or more peptides and equivalents thereof known to those skilled in the art, such as polypeptides.

[0018] In describing the methods of the invention, the terms "host," "subject," "individual," and "patient" are used interchangeably and refer to any mammal in need of such treatment according to the disclosed methods. Such mammals include, for example, humans, sheep, cattle, horses, pigs, canines, felines, non-human primates, mice, and rats. In certain embodiments, the subject is a non-human mammal. In some embodiments, the subject is a livestock animal. In other embodiments, the subject is a companion animal. In some embodiments, the subject is a mammal. In some cases, the subject is a human. Other subjects may include domesticated pets (e.g., dogs and cats), livestock (e.g., cows, pigs, goats, horses, etc.), rodents (e.g., disease model animals, e.g., mice, guinea pigs, and rats), and non-human primates (e.g., chimpanzees, monkeys). Thus, subjects of the invention include, but are not limited to, mammals, such as humans and other primates, including chimpanzees and other ape and monkey species and the like, and in certain embodiments, the subject is a human. The term subject is further meant to include humans or organisms of any age, weight, or other physical characteristics; the subject may be an adult, child, infant, or newborn.

[0019] "Young" or "young individual" refers to an individual of chronological age 40 years or younger, e.g., 35 years or younger, 30 years or younger, e.g., 25 years or younger, or 22 years or younger. In some cases, the individual serving as the source of the young plasma-containing blood product is an individual 10 years or younger, e.g., 5 years or younger, 1 year or younger. In some cases, the subject is a newborn and the source of the plasma product is the umbilical cord, in which case the plasma product is collected from the newborn's umbilical cord. Thus, "young" and "young individual" can refer to a subject between 0 and 40 years of age, e.g., 0, 1, 5, 10, 15, 20, 25, 30, 35, or 40 years of age. In other cases, "young" and "young individual" can refer to biological age (as opposed to chronological age), e.g., an individual who does not exhibit the levels of inflammatory cytokines in the plasma of a relatively older individual. In contrast, "young" and "young individual" may refer to biological age (as opposed to chronological age), e.g., an individual who exhibits higher levels of anti-inflammatory cytokines in plasma compared to levels in relatively older individuals. By way of non-limiting example, the pro-inflammatory cytokine is eotaxin, and the fold difference between young subjects or individuals and older individuals is at least 1.5-fold. Similarly, the fold difference in other pro-inflammatory cytokines between older and younger individuals may be used to refer to biological age (see U.S. Patent Application No. 13 / 575,437, incorporated herein by reference). Typically, individuals are healthy, e.g., they are not suffering from a hematological malignancy or autoimmune disease at the time of collection.

[0020] "Treatment," as used herein, refers to either (i) prevention of a disease or disorder, or (ii) reduction or elimination of symptoms of a disease or disorder. Treatment may be administered prophylactically (before liver damage or liver failure occurs) and includes (a) preventing the onset of symptoms in a subject, (b) inhibiting symptoms, i.e., arresting the onset of symptoms, or (c) alleviating symptoms, i.e., causing the disappearance of symptoms. Treatment may result in a variety of different physical manifestations, such as modulation of gene expression, rejuvenation of tissues or organs, reduced inflammation, etc. Therapeutic agents may be administered before, during, or after the onset of symptoms. Therapeutic methods may be administered during, or in some cases after, the symptomatic period of symptoms. Treatment may further be administered by administering interventions such as plasma, plasma fractions, or blood products containing plasma components before, during, and / or after liver resection or transplantation.

[0021] "Improve," "improve," or "improved," in relation to liver function, regeneration, or restoration, refers to any measurable increase in liver function as measured using standard methods known in the art. By way of example and without limitation, this may include measurement of blood levels of specific proteins such as alanine transaminase (ALT), aspartate transaminase (AST), alkaline phosphatase (ALP), albumin and total protein, bilirubin, gamma-glutamyltransferase (GGT), L-lactate dehydrogenase (LD), and prothrombin time (PT). Examples of normal levels of the proteins include ALT (7-55 U / L), AST (8-48 U / L), ALP (40-129 U / L), albumin (3.5-5.0 g / dL), total protein (6.3-7.9 g / dL), bilirubin (0.1-1.2 mg / dL), GGT (8-61 U / L), LD (122-222 U / L), and PT (9.4-12.5 seconds).

[0022] Blood products containing plasma components In carrying out the method, a blood product containing a plasma component is administered to an individual in need thereof, e.g., an individual suffering from one or more symptoms of liver damage and liver failure. Thus, in methods according to embodiments of the present invention, a blood product containing a plasma component from an individual (a "donor individual" or "donor") is administered to an individual (a "recipient individual" or "recipient") suffering from one or more symptoms of liver damage and liver failure. A "blood product containing a plasma component" refers to any product derived from blood (e.g., whole blood, plasma, or a fraction thereof) that contains plasma. The term "plasma" is used in its conventional sense to refer to the pale / slightly yellow liquid component of blood, which is composed of approximately 92% water, 7% proteins, e.g., albumin, gamma globulin, antihemophilic factors, and other clotting factors, and 1% inorganic salts, sugars, fats, hormones, and vitamins. Non-limiting examples of plasma-containing blood products suitable for use in the present methods include whole blood treated with an anticoagulant (e.g., EDTA, citrate, oxalate, heparin, etc.), blood products produced by filtering whole blood to remove leukocytes (for "leukocyte reduction"), blood products composed of plasma obtained by plasmapheresis or apheresis, fresh frozen plasma, blood products consisting essentially of purified plasma, and blood products consisting essentially of plasma fractions. In some cases, the plasma product used is a non-whole blood plasma product, meaning that the non-whole blood plasma product is not whole blood because it lacks one or more components found in whole blood, such as red blood cells, white blood cells, etc., at least to the extent that such components are present in whole blood. In some cases, the plasma preparation is substantially, if not completely, acellular, in which case the cell content may be 5% or less by volume, e.g., 1% or less by volume, 0.5% or less by volume, and in some cases the cell-free plasma fraction is a composition that is completely devoid of cells, i.e., the cell-free plasma fraction does not contain cells.

[0023] Collection of blood products, including plasma components Embodiments of the methods described herein include administering blood products containing plasma components, which may be derived from donors, including human volunteers. The term "human-derived" may refer to such preparations. Methods for harvesting plasma-containing blood products from donors are known in the art (see, e.g., AABB TECHNICAL MANUAL, (Mark A. Fung, et al., eds., 18th ed. 2014), incorporated herein by reference).

[0024] In one embodiment, blood donation is performed by venipuncture. In another embodiment, venipuncture is a single venipuncture. In another embodiment, saline supplementation is not employed. In a preferred embodiment, a plasma-containing blood product is obtained using the process of plasmapheresis. Plasmapheresis allows for the removal of a weight-adjusted volume of plasma and the return of cellular components to the donor. In a preferred embodiment, sodium citrate is used during plasmapheresis to prevent cellular coagulation. The volume of plasma withdrawn from the donor after administration of citrate is preferably in the range of 690-880 mL, preferably matched to the donor's weight.

[0025] C. Plasma fraction During World War II, a need arose for a stable plasma expander that could be used when soldiers lost large amounts of blood on the battlefield. As a result, methods were developed to prepare freeze-dried plasma. However, the need for sterile water for reconstitution made the use of freeze-dried plasma difficult in combat situations. Dr. E.J. Cohn suggested that albumin could be used as an alternative and prepared a ready-to-use, stable solution that could be immediately administered for shock treatment (see Johan, Current Approaches to the Preparation of Plasma Fractions in (Biotechnology of Blood) 165 (Jack Goldstein ed., 1st ed. 1991)). Dr. Cohn's procedure for purifying plasma fractions utilizes cold ethanol for its denaturing effect and changes in pH and temperature to achieve separation.

[0026] Embodiments of the methods described herein include administering a plasma fraction to a subject. Fractionation is a process for separating specific protein subsets from plasma. Fractionation techniques are known in the art and are based on a process developed by Cohn et al. in the 1940s (E. Cohn, Preparation and properties of serum and plasma proteins. IV. A system for the separation into fractions of the protein and lipoprotein components of biological tissues and fluids. 68 J Am Chem Soc 459 (1946), incorporated herein by reference). This process involves multiple steps, each involving a specific ethanol concentration and changes in pH, temperature, and osmolality that result in selective protein precipitation. The precipitate is then further separated by centrifugation or sedimentation. The original "Cohn fractionation process" involves separating proteins by precipitation into five fractions designated Fraction I, Fraction II+III, Fraction IV-1, Fraction IV-4, and Fraction V. Albumin was the first identified endpoint (Fraction V) product of this process.According to embodiments of the present invention, each fraction (or the effluent from a previous separation step) contains or may contain a therapeutically useful protein fraction (see Thierry Burnouf, Modern Plasma Fractionation, 21(2) Transfusion Medicine Reviews 101 (2007); Adil Denizli, Plasma fractionation: conventional and chromatographic methods for albumin purification, 4 J. Biol. & Chem. 315, (2011); and T. Brodniewicz-Proba, Human Plasma Fractionation and the Impact of New Technologies on the Use and Quality of Plasma-derived Products, 5 Blood Reviews 245 (1991), which are incorporated herein by reference, as well as U.S. Pat. Nos. 3,869,431, 5,110,907, 5,219,995, 7,531,513, and 8,772,461). The experimental parameters described above can be adjusted to obtain specific protein fractions.

[0027] In more recent years, fractionation has become more complex and thus constitutes a further embodiment of the present invention. This recent increase in complexity has occurred through the introduction of chromatography to isolate new proteins from existing fractions, such as cryoprecipitate, cryo-poor plasma, and Cohn fractions; increased IgG recovery through the integration of chromatography and ethanol fractionation; and viral reduction / inactivation / removal (see references cited above). Anion exchange chromatography can be used to capture proteins at physiological pH and ionic strength, thereby preserving the functional activity of the protein and / or protein fraction. Heparin and monoclonal antibodies are also used in affinity chromatography. Additionally, fractionation using gel filtration, salt fractionation, and polyethylene glycol fractionation are used (Hosseini M Iran J Biotech, 14(4): 213-20 (2016)). Those skilled in the art will recognize that the parameters and techniques described above may be adjusted to obtain fractions containing a particular desired plasma protein.

[0028] Plasma fractionation can also be ammonium sulfate-based fractionation (see, e.g., Odunuga OO, Biochem Compounds, 1:3 (2013); Wingfield PT, Curr Protoc Protein Sci, Appx. 3 (2001), which are incorporated herein by reference). Ammonium sulfate-based fractionation has been used to reduce abundant proteins from plasma in addition to obtaining specific blood fractions (Saha S, et al., J. Proteomics Bioinform, 5(8) (2012), which are incorporated herein by reference).

[0029] In an embodiment of the invention, plasma is fractionated in an industrial setting. Frozen plasma is thawed at 1°C to 4°C. The thawed plasma is subjected to continuous refrigeration centrifugation to isolate the cryoprecipitate. The collected cryoprecipitate is stored frozen at -30°C or below. The cryoprecipitate-poor ("cryo-poor") plasma is immediately processed to capture labile coagulation factors, such as factor IX complex and its components, and protease inhibitors, such as antithrombin and C1 esterase inhibitor (e.g., by primary chromatography). Subsequent steps of continuous centrifugation and precipitate isolation can be applied. Such techniques are known to those skilled in the art and are described, for example, in U.S. Pat. Nos. 4,624,780, 5,219,995, 5,288,853, U.S. Patent Application Publication Nos. 2014 / 0343255 and 2015 / 0343025, the entire disclosures of which are incorporated herein by reference.

[0030] In embodiments of the present invention, the plasma fraction may include a plasma fraction containing a substantial concentration of albumin. In another embodiment of the present invention, the plasma fraction may include a plasma fraction containing a substantial concentration of IgG or intravenous immunoglobulin (IGIV) (e.g., Gamunex-C®). In another embodiment of the present invention, the plasma fraction may include an IGIV plasma fraction, such as Gamunex-C®, that has been substantially depleted of immunoglobulin (IgG) by methods known to those skilled in the art, such as protein A-mediated depletion (see Keshishian, H., et al., Multiplexed, Quantitative Workflow for Sensitive Biomarker Discovery in Plasma Yields Novel Candidates for Early Myocardial Injury, Molecular & Cellular Proteomics, 14 at 2375-93 (2015)). In a further embodiment, the plasma fraction may be one from which substantially all coagulation factors have been removed to preserve the efficacy of the fraction at reducing the risk of thrombosis. For example, the plasma fraction may be a plasma fraction as described in U.S. Patent No. 62 / 376,529, filed August 18, 2016, the entire disclosure of which is incorporated herein by reference.

[0031] D. Albumin preparations Those skilled in the art will recognize that there are two general categories of albumin plasma preparations ("APPs"): plasma protein fractions ("PPFs") and human albumin solutions ("HASs"). PPFs are obtained from processes that produce higher yields than HASs, but have a lower minimum albumin purity than HASs (greater than 83% for PPFs and greater than 95% for HASs) ("Production of human albumin solution: a continually developing colloid," P. Matejtschuk et al., British Journal of Anaesthesia 85(6): 887-95, at 888 (2000)). In some cases, PPFs have albumin purities in the range of 83%-95% or 83%-96%. Albumin purity can be determined by electrophoresis or other quantitative assays, such as mass spectrometry. Furthermore, PPFs have been noted by some to have disadvantages due to the presence of protein "contaminants," such as PKA (ibid.). As a result, PPF preparations have fallen out of favor with albumin plasma preparations and have even been removed from the pharmacopoeias of some countries (see references cited above). Contrary to these concerns, the present invention makes effective use of these "contaminants." The methods of the present invention utilize additional proteins or other factors within the "contaminants" that promote processes such as cell proliferation and tissue regeneration, in addition to α-, β-, and γ-globulins and the aforementioned PKA.

[0032] Those skilled in the art will recognize that there are or have been multiple commercially available sources of PPF ("commercially available PPF preparations"), including Plasma-Plex™ PPF (Armour Pharmaceutical Co., Tarrytown, NY), Plasmanate™ PPF (Grifols, Clayton, NC), Plasmatein™ (Alpha Therapeutics, Los Angeles, CA), and Protenate™ PPF (Baxter Labs, Inc. Deerfield, IL).

[0033] Those skilled in the art will recognize that there are or have been multiple commercially available sources of HAS ("commercially available HAS preparations"), including Albuminar™ (CSL Behring), AlbuRx™ (CSL Behring), Albutein™ (Grifols, Clayton, NC), Buminate™ (Baxatla, Inc., Bannockburn, IL), Flexbumin™ (Baxatla, Inc., Bannockburn, IL), and Plasbumin™ (Grifols, Clayton, NC).

[0034] 1. Plasma Protein Fraction (Human) (PPF) According to the U.S. Food and Drug Administration ("FDA"), "Plasma Protein Fraction (Human)" or PPF is the official name for a product defined as "a sterile solution of proteins composed of albumins and globulins derived from human plasma" (Code of Federal Regulations "CFR" 21 CFR 640.90, incorporated herein by reference). The source of PPF is whole blood prepared as specified in 21 CFR 640.1-640.5 (incorporated herein by reference) or plasma collected from a plasma source prepared as specified in 21 CFR 640.60-640.76 (incorporated herein by reference).

[0035] PPF is examined in accordance with 21 CFR 640.92 (incorporated herein by reference) to determine that the following criteria are met: (a) The final product should be a 5.0 ± 0.30 percent solution of protein. (b) The total protein in the final product should consist of at least 83 percent albumin and not more than 17 percent globulins. Not more than 1 percent of the total protein should be gamma globulin. Protein composition will be determined by methods approved for each manufacturer by the Director of the Center for Biologics Evaluation and Research, Food and Drug Administration.

[0036] As used herein, "plasma protein fraction" or "PPF" refers to a sterile solution of proteins composed of albumin and globulins derived from human plasma, having an albumin content of at least 83%, a globulin content (including α1 globulin, α2 globulin, β globulin, and γ globulin) and other plasma proteins of not more than 17%, and a gamma globulin content of not more than 1%, as determined by electrophoresis (Hink, JH, Jr., et al., Preparation and Properties of a Heat-Treated Human Plasma Protein Fraction, VOX SANGUINIS 2(174) (1957)). PPF may also refer to a solid form having a similar composition when suspended in a solvent. The total globulin fraction can be determined by subtracting albumin from total protein (Busher, J., Serum Albumin and Globulin, CLINICAL METHODS: THE HISTORY, PHYSICAL, AND LABORATORY EXAMINATIONS, Chapter 10, Walker HK, Hall WD, Hurst JD, eds. (1990)).

[0037] 2. Human albumin (HAS) According to the FDA, "Albumin (Human)" (also referred to herein as "HAS") is the official name for a product defined as a "sterile solution of albumin derived from human plasma" (Code of Federal Regulations "CFR" 21 CFR 640.80, incorporated herein by reference). The source of Albumin (Human) is whole blood prepared as specified in 21 CFR 640.1-640.5 (incorporated herein by reference) or plasma collected from a plasma source prepared as specified in 21 CFR 640.60-640.76 (incorporated herein by reference). Other requirements for Albumin (Human) are listed in 21 CFR 640.80-640.84 (incorporated herein by reference).

[0038] Albumin (human) is tested in accordance with 21 CFR 640.82 to determine whether it meets the following criteria: (a) Protein concentration The final product should conform to one of the following concentrations of protein: 4.0 ± 0.25 percent solution; 5.0 ± 0.30 percent solution; 20.0 ± 1.2 percent solution; and 25.0 ± 1.5 percent solution. (b) Protein composition At least 96 percent of the total protein in the final product should be albumin, as determined by methods approved for each manufacturer by the Director of the Food and Drug Administration's Center for Biologics Evaluation and Research.

[0039] As used herein, "albumin (human)" or "HAS" refers to a sterile solution of proteins composed of albumin and globulins derived from human plasma, with at least 95% albumin and no more than 5% globulins (including α1 globulin, α2 globulin, β globulin, and γ globulin) and other plasma proteins. HAS may also refer to a solid form having a similar composition when suspended in a solvent. The total globulin fraction may be determined by subtracting albumin from the total protein.

[0040] As will be appreciated by those skilled in the art, the PPF fraction and the HAS fraction can also be in a lyophilized form or other solid form. Such preparations can be used with appropriate additives to produce, for example, tablets, powders, granules, or capsules. In the solid form, the PPF fraction and the HAS fraction can be formulated into an injectable preparation by dissolving, suspending, or emulsifying them in an aqueous or non-aqueous solvent, such as vegetable oil or other similar oils, synthetic fatty acid glycerides, esters of higher fatty acids, or propylene glycol, optionally with conventional additives such as solubilizers, isotonicity agents, suspending agents, emulsifiers, stabilizers, and preservatives.

[0041] E. Coagulation factor-depleted fraction Another embodiment of the present invention uses plasma fractions in which substantially all clotting factors have been removed to reduce the risk of thrombosis and preserve the efficacy of the fraction. Conveniently, blood products can be obtained from young donors or pools of young donors and devoid of IgM to provide ABO-compatible young blood products. Currently, transfused plasma is matched to the ABO blood type, as the presence of naturally occurring antibodies against A and B antigens can cause transfusion reactions. IgM appears to be involved in transfusion reactions when ABO-incompatible plasma is given to patients. Removal of IgM from blood products or blood fractions helps avoid transfusion reactions in subjects receiving the blood products and plasma fractions of the present invention.

[0042] Accordingly, in one embodiment, the present invention is directed to a method of treating a subject suffering from any of the following undesirable symptoms associated with liver damage or liver failure: The method comprises administering to the subject a blood product or blood fraction derived from whole blood from an individual or pool of individuals, wherein the blood product or blood fraction substantially lacks (a) at least one clotting factor and / or (b) IgM. In some embodiments, the individual or individuals from whom the blood product or blood fraction is obtained are young individuals. In some embodiments, the blood product substantially lacks at least one clotting factor and IgM. In certain embodiments, the blood product substantially lacks fibrinogen (Factor I). In further embodiments, the blood product substantially lacks red blood cells and / or white blood cells. In further embodiments, the blood product is substantially acellular. In other embodiments, the blood product is derived from plasma. Such embodiments of the present invention are further supported by U.S. Patent Application No. 62 / 376,529, filed August 18, 2016, which is incorporated herein by reference in its entirety.

[0043] F. Processing of Protein-Enriched Plasma Protein Products Further embodiments of the invention utilize plasma fractions that have reduced albumin concentrations but increased amounts of globulins and other plasma proteins (some refer to as "contaminants") compared to PPF. All such embodiments, like PPF, HAS, Effluent I, and Effluent II / III, are effectively free of coagulation factors. Such plasma fractions are hereinafter referred to as "protein-enriched plasma protein products." For example, embodiments of the invention may utilize a protein-enriched plasma protein product consisting of 82% albumin and 18% alpha, beta, and gamma globulins and other plasma proteins. Another embodiment of the invention may utilize a protein-enriched plasma protein product consisting of 81% albumin and 19% alpha, beta, and gamma globulins and / or other plasma proteins. Another embodiment of the invention may utilize a protein-enriched plasma protein product consisting of 80% albumin and 20% alpha, beta, and gamma globulins and / or other plasma proteins. In a further embodiment of the present invention, a protein-enriched plasma protein product may be used that is composed of 70-79% albumin and a corresponding 21-30% of α-, β-, and γ-globulins and other plasma proteins. In a further embodiment of the present invention, a protein-enriched plasma protein product may be used that is composed of 60-69% albumin and a corresponding 31-40% of α-, β-, and γ-globulins and other plasma proteins. In a further embodiment of the present invention, a protein-enriched plasma protein product may be used that is composed of 50-59% albumin and a corresponding 41-50% of α-, β-, and γ-globulins and other plasma proteins. In a further embodiment of the present invention, a protein-enriched plasma protein product may be used that is composed of 40-49% albumin and a corresponding 51-60% of α-, β-, and γ-globulins and other plasma proteins. In a further embodiment of the present invention, a protein-enriched plasma protein product may be used that is composed of 30-39% albumin and a corresponding 61-70% of α-, β-, and γ-globulins and other plasma proteins.In a further embodiment of the invention, a protein-enriched plasma protein product may be used that is composed of 20-29% albumin and a corresponding 71-80% of α-, β-, and γ-globulins and other plasma proteins. In a further embodiment of the invention, a protein-enriched plasma protein product may be used that is composed of 10-19% albumin and a corresponding 81-90% of α-, β-, and γ-globulins and other plasma proteins. In a further embodiment of the invention, a protein-enriched plasma protein product may be used that is composed of 1-9% albumin and a corresponding 91-99% of α-, β-, and γ-globulins and other plasma proteins. In a further embodiment of the invention, a protein-enriched plasma protein product may be used that is composed of 0% albumin and 100% of α-, β-, and γ-globulins and other plasma proteins.

[0044] In the above-described embodiment of the present invention, the total gamma globulin concentration may further be 1 to 5%.

[0045] The specific concentration of a protein in a plasma fraction may be determined using techniques well known to those skilled in the relevant art, including, by way of example and without limitation, electrophoresis, mass spectrometry, ELISA analysis, and Western blot analysis.

[0046] G. Preparation of Plasma Fractions Methods for preparing PPF and other plasma fractions are well known to those skilled in the art. In an embodiment of the present invention, blood used to prepare human plasma protein fractions is collected in a flask containing a citrate solution or an anticoagulant citrate dextrose solution (or other anticoagulant) to prevent coagulation, and further separation into Fraction I, Fraction II+III, Fraction IV, and PPF can be performed according to the method disclosed by Hink et al. (See Hink, JH, Jr., et al., Preparation and Properties of a Heat-Treated Human Plasma Protein Fraction, VOX SANGUINIS 2(174) (1957), incorporated herein by reference). This method allows the mixture to be collected at 2-8°C. The plasma can then be separated and removed by centrifugation at 7°C and stored at -20°C. The plasma can then be thawed and fractionated at 37°C, preferably within 8 hours of removal from -20°C storage.

[0047] Plasma can be separated from Fraction I using 8% ethanol at a protein concentration of 5.1 to 5.6 percent, pH 7.2, and a temperature of -2 to -2.5°C. While the plasma temperature is being lowered to -2°C, 53.3 percent cold ethanol (176 mL / L of plasma) can be added using a jet at a rate of, for example, 450 mL / min, along with acetate buffer (200 mL of 4 M sodium acetate, 230 mL of glacial acetic acid, and H2O up to 1 L). Fraction I can be separated and isolated from the effluent (Effluent I) by ultracentrifugation. Fibrinogen can be obtained from Fraction I according to methods well known to those skilled in the art.

[0048] Fraction II+III can be separated from Effluent I by adjusting the effluent to 21 percent ethanol at a pH of 6.8 and a temperature of -6°C at a protein concentration of 4.3 percent. While the temperature of Effluent I is being lowered to -6°C, 95 percent cold ethanol (176 mL / L of Effluent I) can be added, for example, using a jet at a rate of 500 mL / min, along with 10 M acetic acid used for pH adjustment. The resulting precipitate (Fraction II+III) can be removed by centrifugation at -6°C. Gamma globulin can be obtained from Fraction II+III using methods well known to those skilled in the art.

[0049] Fraction IV-1 can be isolated from Effluent II+III ("Effluent II / III") by adjusting the effluent to 19% ethanol at a protein concentration of 3% at pH 5.2 and a temperature of -6°C. While Effluent II / III is maintained at -6°C for 6 hours, HO and 10 M acetic acid, used for pH adjustment, can be added using a jet. The precipitated Fraction IV-1 can be stabilized at -6°C for 6 hours and then separated from the effluent by centrifugation at the same temperature. The stabilized plasma protein fraction can be recovered from Effluent IV-1 by adjusting the ethanol concentration to 30% at a protein concentration of 2.5% at pH 4.65, a temperature of -7°C, and a pH of 4.65. Such recovery can be achieved by adjusting the pH of Effluent IV-1 with cold acid-alcohol (2 parts 2 M acetic acid and 1 part 95% ethanol). While maintaining the temperature at -7°C, add 170 mL of cold ethanol (95%) for every liter of conditioned Effluent IV-1. The precipitated proteins can be allowed to stabilize for 36 hours and then removed by centrifugation at -7°C. Fraction IV-4 paste can also be obtained using the Cohn fractionation process. Indeed, Fraction IV-4 and its manufacturing process have been previously described (Schopfer LM, et al., PLoS ONE, 14(1):e0209795 (2018), which is incorporated herein by reference in its entirety) (Schopfer LM, et al., PLoS ONE, 14(1):e0209795 (2018), and Bertolini J, Goss N, Curlin J eds., PRODUCTION OF PLASMA PROTEINS FOR THERAPEUTIC USE, 16.4: 231:232 (2013), which is incorporated herein by reference in its entirety).

[0050] The recovered protein (stable plasma protein fraction) can be dried (e.g., by lyophilization) to remove alcohol and HO. The resulting dried powder can be dissolved in sterile distilled water, e.g., using 15 liters of water per kg of powder, and the solution can be adjusted to pH 7.0 with 1 M NaOH. A final protein concentration of 5 percent can be achieved by adding sterile distilled water containing sodium acetyltryptophan, sodium caprylate, and NaCl to a final concentration of 0.004 M acetyltryptophan salt, 0.004 M caprylate, and 0.112 M sodium. Finally, the solution can be filtered at 10°C to obtain a clear solution, followed by heat treatment at 60°C for at least 10 hours to inactivate pathogens.

[0051] Those skilled in the art will recognize that each of the various fractions, effluents, or pastes described above can be used in conjunction with the methods of the present invention to treat conditions such as liver damage or liver failure. For example, without limitation, Effluent I or Effluent II / III may be utilized to treat conditions such as liver damage or liver failure, and these are embodiments of the present invention. As a further example, Fraction I paste, Fraction II+III paste, Fraction IV-1 paste, Fraction IV-4 paste, and / or Fraction V paste or suspensions thereof may be used to treat conditions such as liver damage or liver failure, and are embodiments of the present invention.

[0052] The above-described methods for preparing plasma and plasma protein fractions (PPF) are merely exemplary and comprise embodiments of the present invention. Those skilled in the art will recognize that these methods may vary. For example, pH, temperature, and ethanol concentration, among others, may be adjusted to produce variations in plasma and plasma protein fractions in various embodiments and methods of the present invention. In another example, further embodiments of the present invention contemplate the use of nanofiltration for the removal / inactivation of pathogens in plasma and plasma protein fractions.

[0053] In further embodiments of the present invention, methods and compositions using and / or including additional plasma fractions are contemplated. For example, the present invention specifically contemplates that a particular concentration of albumin is not critical for treating conditions associated with liver damage or liver failure. Thus, fractions with reduced albumin concentrations, e.g., fractions having less than 83% albumin, are contemplated by the present invention.

[0054] H. Treatment Aspects of the methods of the invention described herein include treating a subject with a plasma-containing blood product, e.g., a plasma fraction, as described above. Embodiments include treating a human subject with a plasma-containing blood product. Those skilled in the art will recognize that methods of treating a subject with a plasma-containing blood product are accepted in the art. By way of example and not limitation, in one embodiment of the methods of the invention described herein, a plasma fraction or fresh frozen plasma is administered to a subject to treat a liver-related disorder, such as acute or chronic liver failure. In further embodiments of the invention, acute liver failure is associated with infectious diseases such as hepatitis B or hepatitis C, overuse of drugs or toxins (e.g., acetaminophen, isoniazid), and metabolic or vascular disorders such as autoimmune hepatitis and Wilson's disease. In further embodiments of the invention, chronic liver failure is associated with viral infection, alcoholism, NAFLD (due to obesity, high cholesterol and triglycerides, or high blood pressure), autoimmune disease, blocked or damaged ducts, e.g., the bile duct from the liver to the intestine, exposure to toxins or certain drugs, parasites, or heart failure resulting in blood accumulation in the liver.

[0055] Further embodiments of the present invention include liver damage or liver failure associated with genetic diseases, including, by way of example and not limitation, alpha-1 antitrypsin deficiency; bile acid synthesis disorders (Wilson's disease, progressive familial intrahepatic cholestasis type 3); carbohydrate metabolism disorders (hereditary fructose intolerance, glycogen storage disease type 4); amino acid metabolism disorders (tyrosinemia type 1); urea cycle disorders (argininosuccinate lyase deficiency, citrin deficiency - CTLN2, NICCD); lipid metabolism disorders (cholesterol ester storage disease); cystic fibrosis; hemochromatosis; Alström syndrome; and congenital hepatic fibrosis (Scorza M, et al., Int'l J Hepatology, 2014, Article ID 713754 (2014)).

[0056] Further embodiments of the present invention include liver damage or failure associated with infectious agents, including, but not limited to, viruses (Epstein-Barr virus, cytomegalovirus, herpes simplex virus and other herpes viruses, yellow fever, dengue fever, hepatitis B and C); bacteria (typhoid, tuberculosis, brucellosis, Q fever, leptospirosis, spirochete-syphilis, borrelia); parasites (schistosomiasis, malaria); fungi (Candida) and the like (Talwani R, et al., Clin Liver Dis., 15(1):111-30 (2011)).

[0057] Further embodiments of the present invention include, by way of example and not limitation, liver damage or failure associated with drugs or harmful substances such as acetaminophen, isoniazid, drugs metabolized by the liver, etc.

[0058] Further embodiments of the present invention include liver disorders in which the liver is partially or completely resected. Further embodiments include liver disorders in which a donor liver is transplanted into a subject suffering from liver disorder. In further embodiments, a therapeutic agent, such as a plasma-containing blood product or plasma fraction, is administered to the subject before, during, and / or after surgery.

[0059] In one embodiment, the plasma-containing blood product is administered immediately, e.g., within about 12 to 48 hours after collection from the donor, to an individual suffering from symptoms associated with liver damage or liver failure. In such an example, the product may be refrigerated, e.g., at 0 to 10°C. In another embodiment, the fresh frozen plasma is stored frozen (cryopreserved) at -18°C or below. The fresh frozen plasma is thawed prior to administration, and once thawed, is administered to the subject 60 to 75 minutes after the thawing process begins. Each subject preferably receives a single unit of fresh frozen plasma (200 to 250 mL), and the fresh frozen plasma is preferably obtained from donors within a predetermined age range. In one embodiment of the present invention, the fresh frozen plasma is provided by a young individual. In another embodiment of the present invention, the fresh frozen plasma is provided by a donor of the same gender. In another embodiment of the present invention, the fresh frozen plasma is provided by a donor within the 18 to 22 year age range.

[0060] In an embodiment of the invention, plasma-containing blood products are screened by blood type after donation. In another embodiment of the invention, plasma-containing blood products are screened for infectious agents such as HIV I&II, HBV, HCV, HTLV I&II, anti-HBc, etc. in accordance with the requirements of 21 CFR 640.33 and the recommendations contained in FDA guidance documents.

[0061] In yet another embodiment of the invention, a subject is treated with a plasma fraction. In an embodiment of the invention, the plasma fraction is PPF, HAS, Fraction IV-1, Fraction IV-1 paste, Fraction IV-4, or Fraction IV-4 paste. In a further embodiment of the invention, the plasma fraction is one of a commercially available PPF preparation or a commercially available HAS preparation. In another embodiment of the invention, the plasma fraction is PPF, HAS, Fraction IV-4, or Fraction IV-4 paste obtained from a pool of individuals within a specific age range, such as young individuals, or is a modified PPF, HAS, Fraction IV-4, or Fraction IV-4 paste that has been further fractionated or processed (e.g., PPF, HAS, Fraction IV-1, Fraction IV-1 paste, Fraction IV-4, or Fraction IV-4 paste from which one or more specific proteins have been partially or substantially removed). In another embodiment of the invention, the plasma fraction is an IGIV plasma fraction that has been substantially depleted of immunoglobulins (IgG). A blood fraction that is "substantially depleted" or "substantially removed" of a particular protein, such as IgG, refers to a blood fraction that contains less than about 50%, e.g., less than 45%, less than 40%, less than 35%, less than 30%, less than 25%, less than 20%, less than 15%, less than 5%, less than 4%, less than 3%, less than 2%, less than 1%, less than 0.5%, less than 0.25%, less than 0.1%, an undetectable level, or any integer between these values, of the amount occurring in a reference product or whole blood plasma, as measured using standard assays well known in the art.

[0062] I. Administration Aspects of the methods of the invention described herein include treating a subject with a plasma-containing blood product, e.g., plasma or a plasma fraction, as described above. Embodiments include treating a human subject with a plasma-containing blood product. Those skilled in the art will recognize that methods of treating a subject with a plasma-containing blood product are accepted in the art. In one embodiment of the methods of the invention described herein, by way of example and not limitation, fresh frozen plasma is administered to a subject to treat a condition such as liver damage or liver failure. In one embodiment, the plasma-containing blood product is administered immediately, e.g., within about 12-48 hours after collection from a donor, to an individual suffering from an undesirable condition such as liver damage or liver failure. In such an example, the product may be refrigerated, e.g., at 0-10°C. In another embodiment, the fresh frozen plasma is stored frozen (cryopreserved) at -18°C or below. The fresh frozen plasma is thawed prior to administration, and once thawed, is administered to a subject 60-75 minutes after the thawing process begins. Each subject preferably receives a single unit of fresh frozen plasma (200-250 mL), with the fresh frozen plasma preferably obtained from donors within a predetermined age range. In one embodiment of the present invention, the fresh frozen plasma is provided by (obtained from) a young individual. In another embodiment of the present invention, the fresh frozen plasma is provided by (obtained from) a donor of the same gender. In another embodiment of the present invention, the fresh frozen plasma is provided by (obtained from) a donor within the age range of 18-22 years.

[0063] In an embodiment of the invention, plasma-containing blood products are screened by blood type after donation. In another embodiment of the invention, plasma-containing blood products are screened for infectious agents such as HIV I&II, HBV, HCV, HTLV I&II, anti-HBc, etc. in accordance with the requirements of 21 CFR 640.33 and the recommendations contained in FDA guidance documents.

[0064] In yet another embodiment of the invention, a subject is treated with a plasma fraction. In an embodiment of the invention, the plasma fraction is PPF or HAS. In a further embodiment of the invention, the plasma fraction is one of a commercially available PPF preparation or a commercially available HAS preparation. In another embodiment of the invention, the plasma fraction is PPF or HAS obtained from a pool of individuals of a particular age range, such as young individuals, or is a modified PPF or HAS fraction that has been subjected to further fractionation or processing (e.g., PPF or HAS from which one or more specific proteins have been partially or substantially removed). In another embodiment of the invention, the plasma fraction is an IGIV plasma fraction that has been substantially depleted of immunoglobulins (IgG). A blood fraction that is "substantially depleted" or "substantially removed" of a particular protein, such as IgG, refers to a blood fraction that contains less than about 50%, e.g., less than 45%, less than 40%, less than 35%, less than 30%, less than 25%, less than 20%, less than 15%, less than 5%, less than 4%, less than 3%, less than 2%, less than 1%, less than 0.5%, less than 0.25%, less than 0.1%, an undetectable level, or any integer between these values, of the amount occurring in a reference product or whole blood plasma, as measured using standard assays well known in the art.

[0065] In an embodiment of the present invention, a subject suffering from a condition such as liver damage or liver failure is treated by administering an effective amount of plasma or a plasma fraction to the subject. In another embodiment of the present invention, an effective amount of plasma or a plasma fraction is administered and the subject is subsequently monitored for improved liver function, liver regeneration, the presence of markers, reduced pain, or decreased inflammation. In another embodiment of the present invention, a subject suffering from a condition such as liver damage or liver failure is treated by administering an effective amount of plasma or a plasma fraction to the subject, wherein the plasma or plasma fraction is administered in a manner that results in improved liver function, liver regeneration, the presence of markers, reduced pain, or decreased inflammation after the mean or median half-life of the plasma or plasma fraction protein for the most recent dose has been reached (referred to herein as "pulse administration" or "pulsed administration") (see U.S. Patent Application Nos. 15 / 499,697 and 62 / 701,411, which are incorporated herein by reference in their entireties). In another embodiment of the invention, plasma or a plasma fraction is administered according to a dosing schedule of at least two consecutive days, and the subject is monitored for improved liver function or HSC marker levels at least three days after the last administration. In a further embodiment of the invention, plasma or a plasma fraction is administered according to a dosing schedule of at least 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, or 14 consecutive days, and the subject is monitored for improved liver function, liver regeneration, the presence of markers, reduced pain, or reduced inflammation at least three days after the last administration. In yet another embodiment of the invention, plasma or a plasma fraction is administered according to a dosing schedule of at least two consecutive days, and the subject is monitored for improved liver function, the presence of markers, reduced pain, or reduced inflammation once the average half-life of the proteins in the plasma or plasma fraction is reached after the last administration. In another embodiment of the invention, plasma or a plasma fraction is administered according to a non-consecutive dosing schedule of 2 to 14 days, where the interval between administrations may be within a range of 0 to 3 days.

[0066] Optionally, when pulse-dosing in accordance with the present invention, a first set of doses is administered, followed by a period of no administration, e.g., a "dose-free period," before another dose or set of doses is administered, e.g., as described above. The length of this "dose-free" period can vary, but in some embodiments, is 7 days or more, e.g., 10 days or more, e.g., 14 days or more; and optionally, the dose-free period extends for 15 to 365 days, e.g., 30 to 90 days, e.g., 30 to 60 days. Accordingly, embodiments of the present methods include non-chronic (i.e., non-sustained) administration, e.g., non-chronic administration of a plasma product. In some embodiments, the pulse-dosing followed by a dose-free period is repeated multiple times as needed, and optionally continues for one year or more, e.g., two years or more, up to the lifetime of the subject. In another embodiment of the present invention, plasma or a plasma fraction is administered according to a five-day dosing regimen, followed by a two- to three-day dose-free period followed by two to fourteen consecutive days of administration.

[0067] Further embodiments of the present invention include liver disorders in which the liver is partially or completely resected. Further embodiments include liver disorders in which a donor liver is transplanted into a subject suffering from liver damage. In further embodiments, therapeutic agents, such as plasma-containing blood products or plasma fractions, are administered to the subject before, during, and / or after surgery. Methods for liver resection and transplantation are well known in the art.

[0068] Biochemically, an "effective amount" or "effective dose" of an active agent refers to an amount of active agent that prevents, attenuates, reduces, alleviates, or inhibits, or in some cases reverses, an undesirable condition, such as liver damage or liver failure, by about 20% or more, e.g., 30% or more, 40% or more, or 50% or more, in some cases 60% or more, 70% or more, 80% or more, or 90% or more, and in some cases about 100%, i.e., to a negligible extent.

[0069] J. Plasma Protein Fractions In practicing the methods of the present invention, a plasma fraction is administered to a subject. In embodiments, the plasma fraction is a plasma protein fraction (PPF). In further embodiments, the PPF is selected from commercially available PPF preparations.

[0070] In another embodiment, PPF is composed of 88% normal human albumin, 12% alpha and beta globulins, and 1% or less gamma globulins, as determined by electrophoresis. Further embodiments of this embodiment for use in practicing the methods of the invention include, for example, an embodiment of a 5% solution of PPF buffered with sodium carbonate and stabilized with 0.004 M sodium caprylate and 0.004 M acetyltryptophan. Additional formulations, such as those varying the percentage of PPF in solution (e.g., about 1% to about 10%, about 10% to about 20%, about 20% to 25%, about 25% to 30%) and the concentrations of solvents and stabilizers, may be utilized in practicing the methods of the invention.

[0071] K. Plasma fractions of specific donor ages In a further embodiment of the invention, plasma protein fractions obtained from the plasma of individuals of a certain age range are administered. In an embodiment, PPF or HAS obtained from the plasma of young individuals are administered. In another embodiment of the invention, the young individuals are of a single specific age or a specific age range. In yet another embodiment, the average age of the donors is less than the age of the subject or less than the average age of the subjects to be treated.

[0072] In one embodiment of the invention, blood or plasma obtained from individuals within a particular age range is pooled and the plasma is fractionated as described above to obtain a plasma protein fraction product, such as PPF or HAS. In an alternative embodiment of the invention, the plasma protein fraction or specific plasma protein fraction is obtained from specific individuals falling within a specified age range.

[0073] L. Indications In an embodiment of the present invention, a plasma fraction or a plasma fraction product is administered to a subject diagnosed with liver damage or liver failure who would benefit from improved liver growth or regeneration. In a further embodiment of the present invention, the disease is associated with acute liver failure, chronic liver failure, or acute exacerbation of liver failure. Acute exacerbation of liver failure occurs in patients with relatively stable chronic liver disease who suddenly develop acute liver failure, which usually results in a very high mortality rate. In another embodiment of the present invention, acute failure is associated with infectious diseases such as hepatitis B or hepatitis C, overuse of drugs or toxins (e.g., acetaminophen, isoniazid), and metabolic or vascular disorders such as autoimmune hepatitis and Wilson's disease. In a further embodiment of the present invention, chronic liver failure is associated with viral infection, alcoholism, NAFLD (due to obesity, high cholesterol and triglycerides, or high blood pressure), autoimmune disease, blockage or damage to ducts such as the bile ducts leading from the liver to the intestine, exposure to toxins or certain drugs, parasites, or heart failure resulting in blood accumulation in the liver.

[0074] Further embodiments of the present invention include liver damage or liver failure associated with genetic diseases, including, by way of example and not limitation, alpha-1 antitrypsin deficiency; bile acid synthesis disorders (Wilson's disease, progressive familial intrahepatic cholestasis type 3); carbohydrate metabolism disorders (hereditary fructose intolerance, glycogen storage disease type 4); amino acid metabolism disorders (tyrosinemia type 1); urea cycle disorders (argininosuccinate lyase deficiency, citrin deficiency - CTLN2, NICCD); lipid metabolism disorders (cholesterol ester storage disease); cystic fibrosis; hemochromatosis; Alström syndrome; and congenital hepatic fibrosis (Scorza M, et al., Int'l J Hepatology, 2014, Article ID 713754 (2014)).

[0075] Further embodiments of the present invention include liver damage or failure associated with infectious agents, including, but not limited to, viruses (Epstein-Barr virus, cytomegalovirus, herpes simplex virus and other herpes viruses, yellow fever, dengue fever, hepatitis B and C); bacteria (typhoid, tuberculosis, brucellosis, Q fever, leptospirosis, spirochete-syphilis, borrelia); parasites (schistosomiasis, malaria); fungi (Candida) and the like (Talwani R, et al., Clin Liver Dis., 15(1):111-30 (2011)).

[0076] Further embodiments of the present invention include, by way of example and not limitation, liver damage or failure associated with drugs or harmful substances such as acetaminophen, isoniazid, drugs metabolized by the liver, etc.

[0077] Further embodiments of the present invention include liver disorders in which the liver is partially resected. Further embodiments include liver disorders in which a donor liver is transplanted into a subject suffering from liver disorder. In further embodiments, a therapeutic agent, such as a plasma-containing blood product or plasma fraction, is administered to the subject before, during, and / or after surgery.

[0078] M. Reagents, Devices, and Kits Further provided are reagents, devices and kits for carrying out one or more of the above methods. The reagents, devices and kits thereof may vary widely.

[0079] Reagents and devices of interest include those described above with respect to methods of preparing plasma-containing blood products for infusion into a subject in need thereof, such as anticoagulants, cryopreservatives, buffers, isotonic solutions, etc.

[0080] The kit may further comprise blood collection bags, tubing, needles, centrifuge tubes, etc. In yet other embodiments, the kit as described herein comprises two or more containers of plasma product, such as plasma protein fractions, e.g., three or more, four or more, five or more, e.g., six or more. In some cases, the number of individual containers of plasma product in the kit may be nine or more, twelve or more, fifteen or more, eighteen or more, twenty-one or more, twenty-four or more, thirty or more, e.g., thirty-six or more, e.g., forty-eight or more. Each container may be associated with identifying information comprising various data regarding the plasma product contained therein, which may include one or more of the age of the donor of the plasma product, processing details regarding the plasma product, e.g., whether the plasma product has been processed to remove proteins above an average molecular weight (as described above), details of blood type, etc. In some cases, each container in the kit comprises identifying information regarding the plasma contained therein, which may include information regarding the age of the donor of the plasma product, e.g., the identifying information confirms data regarding the age of the donor of the plasma product (such identifying information may be the donor's age at the time of collection). In some cases, each container in the kit contains a blood plasma product obtained from a donor of substantially the same age, i.e., the containers contain products obtained from donors of substantially the same age, if not all of the same. By substantially the same age, it is meant that the ages of the various donors from whom the plasma products in the kit are obtained may differ by, in some cases, 5 years or less, e.g., 4 years or less, e.g., 3 years or less, e.g., 2 years or less, e.g., 1 year or less, e.g., 9 months or less, e.g., 6 months or less, e.g., 3 months or less, e.g., 1 month or less. The identifying information may be present on any convenient element of the container, such as a label, an RFID chip, etc. The identifying information may be human-readable or computer-readable, as appropriate. The container may have any convenient configuration. The volume of the container may vary, but in some cases, this volume is within the range of 10 mL to 5000 mL, e.g., 25 mL to 2500 mL, e.g., 50 mL to 1000 mL, e.g., 100 mL to 500 mL. The container may be rigid or flexible and may be formed from any convenient material, e.g., a polymeric material, including medical-grade plastic materials. In some cases, the container has the configuration of a bag or pouch.In addition to the container, such kits may further include an administration device, e.g., as described above. The components of such kits may be provided in any suitable packaging, e.g., a box or similar structure, configured to hold the container and the other components of the kit.

[0081] In addition to the above elements, the kit further comprises instructions for carrying out the method. These instructions may be provided in the kit in a variety of forms, and one or more of the instructions may be provided in the kit. One form in which these instructions may be provided is as information printed on a suitable medium or substrate, such as one or more pieces of paper on which the information is printed, kit packaging, a package insert, etc. Yet another means is a computer-readable medium on which the information is recorded, such as a diskette, CD, portable flash drive, etc. Yet another means that may be present is a website address that can be used via the internet to access the information at a remote location. Any convenient means may be provided in the kit.

[0082] N. Experimental Examples 1. Example 1 a) PPF1-induced functional recovery of the liver in 20-month-old C57BL / 6 mice after 70% partial hepatectomy. Twenty-month-old male C57BL / 6J mice (The Jackson Laboratory, Sacramento, CA) were used. All mice were individually housed under specific pathogen-free conditions with a 12-hour light / 12-hour dark cycle. All animal handling and use followed standard guidelines approved by the Institutional Animal Care and Use Committee. Animals were fed a 60% high-fat diet (Bio-Serv F3282) for 7–8 weeks and randomly assigned to vehicle- and PPF1-treated groups according to postprandial body weight and ALT levels to ensure identical mean body weights and serum ALT levels between groups. Surgery was performed as previously described with minor modifications (Nevzorova, Y., et al., Lab. Anim. 49, 81–88 (2015)). The resected liver (left and median lobes) was collected as a preoperative control, while the remaining liver (caudate and right lobes) was collected 48 hours after surgery. 24 hours after surgery, EdU (2.5 mg / mL stock in saline) was injected intraperitoneally at 30 mg / kg body weight. 46 hours after surgery, BrdU (10 mg / mL stock in saline) was injected intraperitoneally at 30 mg / kg body weight. 48 hours after surgery, all animals were weighed, and the remaining liver (median and caudate lobes) and serum were collected for ALT analysis.

[0083] Commercially available PPF ("PPF1"), such as the commercially available PPF preparation described above in a 5% solution, was stored at 4°C. PPF1 is a PPF having approximately 88% normal human albumin, 12% alpha and beta globulins, and less than 1% gamma globulins (based on total protein), as determined by electrophoresis. Except where noted, PPF1 is administered in the examples herein using a 5% solution (w / v, 50 g / L).

[0084] For qPCR analysis, RNA was extracted from the resected or remaining liver, which had been powdered with liquid nitrogen and a mortar and pestle. Extraction was then performed using Trizol (Ambion / Fisher 15-596-018) and the RNeasy Mini Kit (Qiagen 74106). cDNA was amplified using iScript Reverse Transcription Supermix (Bio-Rad 1030). Amplification was performed using SsoAdvanced Universal SYBR green master mix (Bio-Rad 1725272) and qPCR was performed using Quant Studio 6 Flex (Applied Biosystems). Gene expression was normalized to RPS18 (ribosomal protein s18).

[0085] For immunostaining, 12-micron-thick frozen liver sections embedded in OCT compound (Sakura 4583) were used for immunofluorescence staining. Antigen retrieval was performed at 95°C for 30 minutes using citrate buffer (Sigma C9999). Click-IT Plus EdU Alexa Fluor 555 was used for EdU labeling (Fisher C10638). Nuclear labeling was performed using Hoechst 33342 at 1-100,000 in ddH2O for 3 minutes (Fisher H3570). Oil Red O staining was performed to visualize triglyceride accumulation in the liver. Temporarily, frozen liver sections were immersed in 0.375% Oil Red O in isopropyl alcohol for 5 minutes. Sections were washed in tap water for 30 minutes and mounted with Prolong Gold antifade reagent (Invitrogen P36934).

[0086] Figure 1 is a graph showing the weight progression of 20-month-old C57BL / 6 mice on a high-fat diet ("HFD"). After 8.5 weeks on the HFD, mice showed significant weight gain. Mean ± SEM, ****p<0.0001, ordinary one-way ANOVA.

[0087] Figure 2 shows Oil Red O staining of livers from mice such as those shown in Figure 1. Mice receiving an HFD developed fatty liver compared to mice receiving a normal diet ("normal diet").

[0088] FIG. 3 shows the experimental design to evaluate the effect of PPF1 on 20-month-old C57BL / 6 mice receiving a high-fat diet as described above.

[0089] FIG. 4 shows the resected lobe and the remaining lobe following a 70% hepatectomy in a mouse treated as shown in FIG.

[0090] FIG. 5 shows the results of determining liver weight to body weight ratios in resected livers treated with vehicle and PPF1 from mice treated as shown in FIG.

[0091] FIG. 6 shows liver weights of vehicle- and PPF1-treated excised livers from mice treated as shown in FIG.

[0092] Figure 7 shows that serum ALT levels were normal and unaffected in mice receiving a HFD and treated with PPF1 before hepatectomy. ALT levels are considered normal when they are below 50-60 units per liter (e.g., Mazzaccara C, et al., PLoS ONE, 3(11):e3772 (2008)).

[0093] Figure 8 shows the results of determining the liver weight-to-body weight ratio in vehicle- and PPF1-treated mice with remaining livers 48 hours after hepatectomy, as shown in Figure 3. Compared to vehicle-treated animals, PPF1-treated animals showed a significant increase in liver weight 48 hours after hepatectomy. Mean ± SEM, **p<0.001, unpaired t-test with Whitney correction.

[0094] Figure 9 shows the liver weights of vehicle- and PPF1-treated mice with remaining livers 48 hours after hepatectomy, as shown in Figure 3. Compared to vehicle-treated animals, PPF1-treated animals showed a significant increase in liver weight 48 hours after hepatectomy. Mean ± SEM, *p<0.05, unpaired t-test with Whitney correction.

[0095] Figure 10 shows the results of serum ALT levels in vehicle- and PPF1-treated mice with remaining livers 48 hours after hepatectomy, as shown in Figure 3. Compared to vehicle-treated animals, PPF1-treated animals showed a significant decrease in serum ALT levels 48 hours after hepatectomy, indicating that the degree of liver damage was further significantly reduced in PPF1-treated animals. Mean ± SEM, **p<0.001, unpaired t-test with Whitney correction.

[0096] In contrast, the differences in excised liver weight, liver weight / body weight ratio, and ALT levels did not reach significance between vehicle- and PPF1-treated animals.

[0097] Figure 11 shows the rate of cell proliferation after hepatectomy. EdU was delivered 24 hours after hepatectomy, and the rate of proliferation was tracked by Click-it labeling of EdU-positive cells. PPF1 significantly increased the number of EdU-positive cells per region in the remaining liver compared with vehicle-treated animals.

[0098] Figure 12 shows cell proliferation 48 hours after hepatectomy, as measured by the number of Ki67-positive cells per region. PPF1 significantly increased the number of Ki67-positive cells per region in the remaining liver compared to vehicle-treated animals.

[0099] Figure 13 shows the percentage of cell proliferation in the remaining liver by qPCR gene expression. Relative expression of the cell cycle marker Cyclin B1 is shown. In the remaining liver sections, expression of Cyclin B1 was significantly upregulated in mice treated with PPF1 compared to mice treated with vehicle. Mean ± SEM, *p<0.05, unpaired T-test with Whitney correction.

[0100] Figures 14A-14D show qPCR expression of multiple markers in resected livers. The relative expression of cell cycle markers cyclin B1 (Figure 14A), cyclin A2 (Figure 14B), and Ki67 (Figure 14C) is shown. Surprisingly, in resected liver sections removed during hepatectomy as preoperative controls, PPF1 significantly increased cell proliferation in all three cell cycle markers compared to vehicle controls. Figure 14D shows the relative expression level of TNFα in resected liver sections. TNFα is known to contribute to the restoration of functional liver mass by promoting hepatocyte proliferation and liver regeneration. In summary, PPF1 treatment activated cell proliferation in quiescent (pre-hepatectomy) and intact livers compared to vehicle controls. Mean ± SEM, *p<0.05, unpaired t-test with Whitney correction.

[0101] Figure 15 shows immunostaining of Ki67 in the resected livers as shown in Figure 14C, confirming that the resected livers treated with PPF1 had significantly higher numbers of Ki67-positive cells compared to the vehicle control.

[0102] Figure 16 shows quantification of the immunostaining in Figure 15, demonstrating an increased number of Ki67-positive cells in resected livers treated with PPF1. Mean ± SEM, *p<0.05, unpaired T-test with Whitney correction.

[0103] 17 is a chart showing the total number of animals that underwent hepatectomy and the survival rate of animals that received each treatment. Animals treated with PPF1 showed a trend toward increased survival rate compared to animals treated with vehicle.

[0104] Figure 18 shows two confocal microscopy fields from the remaining liver where EdU was incorporated 24 hours after hepatectomy (see Figure 3). Tissue sections were stained with GFAP antibody (a stellate cell marker) to observe the level of colocalization between GFAP and EdU. The lack of colocalization between EdU and GFAP indicated that cell proliferation associated with PPF1 administration did not occur in stellate cells.

[0105] Figure 19 shows two confocal microscopy fields from the remaining liver where EdU was incorporated 24 hours after hepatectomy (see Figure 3). Tissue sections were stained with CD68 antibody (a Kupffer cell marker) to observe the level of colocalization between CD68 and EdU. The lack of colocalization between EdU and CD68 indicated that the cell proliferation associated with PPF1 administration did not occur in Kupffer cells.

[0106] Figure 20 shows confocal microscopy sections from the remaining liver into which EdU was incorporated 24 hours after hepatectomy (see Figure 3). Tissue sections were stained with HNF4a antibody (a hepatocyte marker) to observe the level of colocalization between HNF4a and EdU. The lack of colocalization between EdU and HNF4a indicated that cell proliferation associated with PPF1 administration did not occur in hepatocytes.

[0107] Figure 21 shows confocal microscopy sections from the remaining liver where EdU was incorporated 24 hours after hepatectomy (see Figure 3). Tissue sections were stained with CD3 antibody (a T cell marker) to observe the level of colocalization between CD3 and EdU. The lack of colocalization between EdU and CD3 indicated that the cell proliferation associated with PPF1 administration did not occur in T cells.

[0108] Figure 22 shows two confocal microscopy sections from the remaining liver in which EdU was incorporated 24 hours after hepatectomy (see Figure 3). Tissue sections were stained with CD31 antibody (a sinusoidal endothelial cell marker) to observe the level of colocalization between CD31 and EdU. The clear colocalization of EdU and CD31 indicated that cell proliferation induced by PPF1 administration was associated with liver sinusoidal endothelial cells (LSECs). These results suggest that PPF1 increases liver capillary cell proliferation, bringing more blood to the injury site, suggesting a mechanism by which tissue repair and regeneration occurs with PPF1 treatment (arrows indicate LSECs containing EdU-positive cells).

[0109] 2. Example 2 a) Effects of PPF1, recombinant human albumin, and HAS1 on the liver of 20-month-old C57BL / 6 mice after 70% partial hepatectomy. Recombinant Human Albumin Male C57BL / 6J mice were treated as described above in Example 1, except that an additional cohort was treated with recombinant human albumin ("rh albumin"). Comparisons were made between PPF1-, rh albumin-, and vehicle-treated groups.

[0110] Figure 23 shows the experimental design for evaluating the effects of PPF1 (a type of plasma fraction "PF") and recombinant human albumin (rhAlbumin) in 20-month-old C57BL / 6 mice receiving a high-fat diet. The mice received a 60% high-fat diet for 8 weeks and then received treatment with PPF1, rhAlbumin, or vehicle for 7 consecutive days. Surgery (70% hepatectomy) was performed the day after the last administration of PPF1, rhAlbumin, or vehicle. During the hepatectomy, the preoperative median and left lobes (removed) were removed. The right and caudate lobes (remaining) were harvested 48 hours after hepatectomy.

[0111] Figure 24 shows cell proliferation in resected livers 48 hours after hepatectomy, measured by the number of Ki67-positive cells per area. PPF1 significantly increased the number of Ki67-positive cells per area compared to vehicle-treated animals. In contrast, animals treated with rh albumin showed no significant difference from vehicle-treated animals. Mean ± SEM, ***p<0.0001, unpaired t-test with Whitney correction, ns indicates non-significant.

[0112] Figure 25 shows the rate of cell proliferation in the remaining liver after hepatectomy. EdU was delivered 24 hours after hepatectomy, and the rate of proliferation was monitored by click chemistry. PPF1 significantly increased the number of EdU-positive cells per region compared to vehicle-treated animals. In contrast, animals treated with rh albumin did not achieve significant proliferation compared to vehicle-treated animals.

[0113] These results suggest that albumin, the most abundant component of PPF1, is likely not the component of PPF1 involved in proliferation, tissue repair, and regeneration. Instead, other components of PPF1, often considered residual impurities in plasma fractions, unexpectedly promote these activities of PPF1.

[0114] Human Albumin Solution (HAS) Male C57BL / 6J mice were further treated as described above in Example 1, except that an additional cohort was treated with human albumin solution ("HAS1"). Comparisons were made between the PPF1-, HAS1-, and vehicle-treated groups.

[0115] Figure 26 shows the experimental design for evaluating the effects of PPF1 and HAS1 on 20-month-old C57BL / 6 mice receiving a high-fat diet. The mice received a 60% high-fat diet for 8 weeks, followed by treatment with PPF1, rh albumin, or vehicle for 7 consecutive days. Surgery (70% hepatectomy) was performed the day after the last administration of PPF1, HAS1, or vehicle. During the hepatectomy, the preoperative median and left lobes (removed) were removed. The right and caudate lobes (remaining) were harvested 48 hours after hepatectomy.

[0116] Figure 27 shows the cell proliferation rate 24 hours after hepatectomy. EdU was delivered 24 hours after hepatectomy. Both PPF1 and HAS1 significantly increased the number of EdU-positive cells in the remaining liver compared to vehicle. *p<0.05, Welch's t-test. Error bars are SEM. HAS1 was a commercially available HAS, such as the above-mentioned commercial HAS preparation, in a 5% solution and stored at 4°C.

[0117] Figure 28 shows the cell proliferation rate 48 hours after hepatectomy. Ki67 immunostaining was performed on the remaining livers harvested 48 hours after hepatectomy. While both PPF1 and HAS significantly increased cell proliferation compared to control animals, PPF1 further induced more significant proliferation compared to animals treated with HAS1. *p<0.05, **p<0.005, ***p<0.0005, Welch's t-test. Error bars are SEM.

[0118] These results clearly demonstrate that plasma fraction-induced hepatocyte proliferation was observed in both HAS1- and PPF1-treated fatty livers. However, while both different plasma fractions (HAS1 and PPF1) significantly induced proliferation compared to vehicle after 24 hours, the effect of PPF1 after 48 hours was significantly more significant than HAS1 and even more significant than vehicle. This further indicates that albumin, which is more pure and abundant in HAS1 compared to PPF1, is unexpectedly not the primary component responsible for the effects of the plasma fractions on proliferation, tissue repair, and regeneration. Instead, it suggests that other components of the plasma fractions, or residual "impurities" in the plasma fractions, unexpectedly promote these activities.

[0119] 3. Example 3 a) Effect of PPF1 on the liver of 20-month-old C57BL / 6 mice 2 hours after the last treatment dose Twenty-month-old male C57BL / 6J mice were randomly assigned to vehicle- and PPF1-treated groups based on body weight, ensuring identical mean body weights between groups. Mice were maintained on a normal diet, not a high-fat diet. Animals were intravenously administered 150 μL of vehicle or PPF1 daily for seven consecutive days. On day 7, livers were removed 2 hours after administration. For gene expression analysis, RNA was extracted, reverse-transcribed, and subjected to SYBR qPCR for TNFα. Gene expression was normalized to RPS18. For immunostaining, Ki67 antibody was used to label proliferating cells in the harvested livers.

[0120] FIG. 29 shows the experimental design to evaluate the effect of PPF1 2 hours after the last administration to 20-month-old C57BL / 6 mice.

[0121] Figure 30 shows the results of TNFα gene expression analysis of mice treated as shown in Figure 29. Compared to vehicle-treated animals, animals treated with PPF1 had significantly increased TNFα gene expression by QPCR. **p<0.005. Welch's t-test, error bars are SEM.

[0122] Figure 31 shows the results of Ki67 immunostaining analysis of mice treated as shown in Figure 29. Compared to vehicle-treated animals, PPF1-treated animals had significantly increased Ki67-positive cells 2 hours after the last dose, indicating increased hepatocyte proliferation by PPF1. *p<0.05. Welch t-test, error bars are SEM.

[0123] These results indicate that plasma fractions such as PPF1 can be effective in inducing both proliferation and regeneration, even in healthy, non-steatotic aged livers.

[0124] 4. Example 4 a) Effect of Fraction IV-1 paste suspension on the liver of 20-month-old C57BL / 6 mice after 70% partial hepatectomy Twenty-month-old male C57BL / 6J mice (The Jackson Laboratory, Sacramento, CA) were used. All mice were individually housed under specific pathogen-free conditions with a 12-hour light / 12-hour dark cycle. All animal handling and use followed standard guidelines approved by the Institutional Animal Care and Use Committee. Animals were fed a 60% high-fat diet (Bio-Serv F3282) for 7–8 weeks and randomly assigned to vehicle-treated and Fraction IV-1 paste suspension-treated groups according to post-prandial body weight and ALT levels, ensuring identical mean body weights and serum ALT levels between groups. Surgery was performed as previously described with minor modifications (Nevzorova, Y., et al., Lab. Anim. 49, 81–88 (2015)). The resected liver lobes (left and median lobes) were harvested as preoperative controls, while the remaining liver lobes (caudate and right lobes) were harvested 48 hours after surgery. Twenty-four hours after surgery, EdU (2.5 mg / mL stock in saline) was injected intraperitoneally at 30 mg / kg body weight. Forty-six hours after surgery, BrdU (10 mg / mL stock in saline) was injected intraperitoneally at 30 mg / kg body weight. Forty-eight hours after surgery, all animals were weighed, and the remaining livers (median and caudate lobes) and serum were collected for ALT analysis. The effects of Fraction IV-1 paste suspension on these experimental readouts will be compared to vehicle. Furthermore, the effects of Fraction IV-1 paste suspension on these experimental readouts will be compared to other plasma fractions.

Claims

1. 1. A composition for use in improving liver regeneration in a subject diagnosed with a liver disorder that would benefit from improved liver regeneration, comprising: containing an effective amount of a plasma protein fraction, The plasma protein fraction comprises between 83% and 95% albumin relative to total protein.

2. 10. The composition of claim 1, wherein the plasma protein fraction contains 1% or less of gamma globulin.

3. 3. The composition of claim 1, wherein the plasma protein fraction contains no more than 17% of globulins and other plasma proteins.

4. The composition according to any one of claims 1 to 3, wherein the plasma protein fraction is a fraction administered using a pulse dosing regimen.

5. The composition according to any one of claims 1 to 3, wherein the liver damage is acute liver failure.

6. The composition according to any one of claims 1 to 4, wherein the liver damage is chronic liver failure.

7. The composition according to any one of claims 1 to 5, wherein the liver damage is acutely exacerbated liver failure.

8. 1. A composition for use in improving recovery from liver resection surgery in a subject, comprising: containing an effective amount of a plasma protein fraction, The plasma protein fraction comprises between 83% and 95% albumin relative to total protein.

9. 9. The composition of claim 8, wherein the plasma protein fraction contains 1% or less of gamma globulin.

10. 10. The composition of claim 8 or 9, wherein the plasma protein fraction contains no more than 17% of globulins and other plasma proteins.

11. The composition according to any one of claims 8 to 10, wherein the plasma protein fraction is a fraction administered using a pulse dosing regimen.

12. The composition according to any one of claims 8 to 10, wherein the plasma protein fraction is a fraction administered after surgery.

13. 1. A composition for use in improving recovery from liver transplant surgery in a subject, comprising: containing an effective amount of a plasma protein fraction, The plasma protein fraction comprises between 83% and 95% albumin relative to total protein.

14. 14. The composition of claim 13, wherein the plasma protein fraction contains 1% or less of gamma globulin.

15. 15. The composition of claim 13 or 14, wherein the plasma protein fraction contains no more than 17% of globulins and other plasma proteins.

16. The composition according to any one of claims 13 to 15, wherein the plasma protein fraction is a fraction administered after surgery.

Citation Information

Patent Citations

  • Methods for screening human blood products comprising plasma using immunocompromised rodent models

    US20170232118A1

  • Blood Plasma and Plasma Fractions as Therapy for Tumor Growth and Progression

    US20170340671A1