Use of plasma and plasma fractions for improving pain, wound healing and post-surgical recovery - Patent Application 20070122997

Plasma fractions address the limitations of current postoperative treatments by enhancing recovery through reduced pain and accelerated wound healing, providing a safer and more effective alternative to opioid analgesics.

JP7785128B2Active Publication Date: 2025-12-12ALKAHEST INC
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Patent Information

Application Number
JP2024094345
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-05-02
Filing Date
2024-06-11
Publication Date
2025-12-12
Estimated Expiration
2039-10-21

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Abstract

SOLUTION: Methods and compositions for improving postoperative recovery are described. The compositions used in the methods include blood plasma and blood plasma fractions derived from blood plasma with efficacy in treating and / or preventing conditions associated with postoperative recovery.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to the prevention and treatment of diseases and age-related disorders. The present invention relates to the use of blood products such as plasma and plasma fractions to improve and accelerate recovery from surgery and surgery-related conditions and symptoms, etc. The present invention further relates to the use of blood products such as plasma or plasma fractions to alleviate chronic pain or neurological disorders and to treat symptoms related to wound healing. [Background technology]

[0002] The following is provided merely for background information and is not admitted to be prior art to the present invention.

[0003] Surgery is often associated with complications due to pain, cardiopulmonary problems, infection, thromboembolic problems, and postoperative wound healing. Furthermore, wound healing takes time, whether the wound results from the surgery itself (e.g., incision) or from accident, violence, or disease and is subsequently treated by a surgical procedure. These complications are often exacerbated by aging. Additional complications may arise from the surgical stress response with subsequent demands on organ function, often mediated by trauma-induced endocrine metabolic changes and activation of cascades (cytokines, complement, arachidonic acid metabolites, nitric oxide, and free oxygen radicals) (Kehlet H., et al., Br. J. Anaesthesia, 78:606-17 (1997)). During the surgical stress response, the sympathetic nervous system is activated (Starkweather A, et al., Topics in Pain Management, 32(8):1-11 (2017)). Increased pituitary hormone secretion results in energy transfer through catabolism, resulting in salt and water retention. Increased secretion of adrenocorticotropic hormone (ACTH) increases norepinephrine and sympathetic activity, resulting in cardiovascular responses such as tachycardia and hypertension, glucagon release, and hyperglycemia. Increased growth hormone and cortisol inhibit the differentiation of monocytes into macrophages, resulting in disruption of T cell signaling / histamine production and decreased immune cell migration (ibid.).

[0004] Current treatments for postoperative recovery include postoperative pain relief and multimodal interventions (see references above). Pain management is important in many types of surgical recovery, and acute pain is expected (Pinto PR, J Pain Res, 10:1087-98 (2017)). Postoperative pain is a common symptom of surgery. This occurs in a significant proportion of patients undergoing surgery (Couceiro TC, Rev Bras Anestesiol, 59(3):314-20 (2009)). Pain also plays a negative role in clinical outcomes by impairing healing and recovery. (Ibid.) Hip and knee replacements in particular are associated with both chronic pain (e.g., from osteoarthritis) and acute pain. (Ibid.) Accordingly, analgesics are commonly used in post-operative recovery, both in inpatient treatment and at-home recovery.

[0005] One type of multimodal intervention is Enhanced Recovery After Surgery (ERAS) (Starkweather, supra). A). ERAS focuses on a wide range of surgeries, including colorectal surgery, orthopedic surgery, gynecological surgery, urological surgery, head and neck cancer surgery, bladder cancer surgery, liver disease surgery, rectal / pelvic disease surgery, colonic lesion surgery, pancreaticoduodenectomy, gastrectomy surgery, bariatric surgery, and gynecological oncology surgery (ibid.). As a multimodal approach, emphasis is placed on preoperative techniques (counseling, fluid / carbohydrate loading, short-term fasting), perioperative techniques (short-acting anesthetics, normothermia, antibiotic prophylaxis, thromboembolic prophylaxis, prevention of salt / water overload, anti-emesis), and postoperative techniques (early oral feeding, exercise, non-opioid analgesics, and post-discharge support) (ibid.). Summary of the Invention [Problem to be solved by the invention]

[0006] However, current treatments have failed to eliminate postoperative morbidity and mortality. Multimodal techniques, by their very nature, are time- and resource-consuming. Furthermore, no single technique or drug treatment can be compatible with such multimodal treatments. Due to these shortcomings, new treatments are needed to improve postoperative recovery. [Means for solving the problem]

[0007] The present invention is based on the production and use of blood products to treat symptoms and conditions that affect post-surgical recovery, such as pain and wound healing. The present invention recognizes the need for new treatments, particularly for treating undesirable conditions associated with post-surgical recovery and for improving such recovery. The present compositions of the present invention derived from blood and plasma are directed to a solution to the shortcomings and deficiencies of current therapies, utilizing plasma fractions to improve such recovery, which have shown efficacy in treating undesirable conditions associated with post-surgical recovery.

[0008] The present invention is further based on the production and use of blood products to treat symptoms and conditions associated with acute and chronic pain. The present invention recognizes the need for new therapies, particularly for alleviating pain. While therapies exist for treating acute and chronic pain, many such therapies, such as opioid analgesics, exhibit high incidences of addiction, abuse, and associated morbidity and mortality.

[0009] 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]

[0010] [Figure 1] Figure 1. Chronic constriction injury (CCI) experiments. 23-month-old wild-type mice underwent CCI surgery or sham surgery by ligation 24 hours before a 7-day continuous pulse regimen of either PPF1, gabapentin, recombinant human albumin (rhAlb), or vehicle control. Behavior was assessed from weeks 2 to 5, and tissue collection for histology was performed at week 5. [Figure 2]Figure 2 shows the location of CCI performed on a 22-month-old wild-type mouse. Ligation was performed on the sciatic nerve as shown in Figure 2. Figure 2 is adapted from Suter MR, et al., Anesthesiology Res and Practice (2011), which is incorporated herein by reference in its entirety. [Figure 3] This figure shows data from the von Frey mechanical allodynia test in wild-type mice treated with CCI or sham surgery, as shown in Figure 1. The hind paw, dampened by the target sciatic nerve, was useful for analyzing pain behavior, and was performed using von Frey filament stimulation. The pressure to which the mice withdrew their hind paw was measured and plotted in Figure 3. Figure 3 shows that mice treated with PPF1 after CCI exhibited significantly reduced pain (they were able to tolerate higher pressures) than mice treated with vehicle control after CCI. Furthermore, mice treated with vehicle after sham surgery also exhibited significantly reduced pain compared to mice treated with vehicle control after CCI. This indicates that PPF1 positively impacts the loss of mechanical pain sensation. [Figure 4] Figure 1 shows data from hippocampal histology performed on wild-type mice. Neurogenesis was measured using the doublecortin (DCX) marker. Mice undergoing CCI and treated with PPF1 had significantly more neurogenesis in the hippocampus than mice receiving vehicle. Mice undergoing sham surgery and receiving vehicle tended to have more neurogenesis than mice undergoing CCI and receiving vehicle post-surgery. Thus, PPF1 demonstrated the ability to restore neurogenesis after chronic nerve injury. [Figure 5] This figure shows data from hippocampal histology performed on wild-type mice, as shown in Figure 1. CD68 expression was quantified, demonstrating that mice receiving CCI and vehicle had significantly more CD68-positive cells in the hippocampus than mice receiving CCI and PPF1. Similar differences were observed between mice receiving CCI and vehicle and mice receiving sham surgery and vehicle. This indicates that PPF1 may help block neuroinflammation caused by chronic nerve injury. [Figure 6] This figure shows data from the von Frey mechanical allodynia test in 22-month-old C57BL / 6J mice that underwent CCI surgery or sham surgery and were tested according to the timeline shown in Figure 1. The pressure at which the mice withdrew their hind paw was assessed and is shown in Figure 6 as the number of weeks after CCI surgery or sham surgery. Figure 6 shows that mice administered PPF1 after CCI surgery had significantly increased tolerance to mechanical pain at all assessment time points compared to mice treated with vehicle after CCI surgery. In contrast, mice administered gabapentin alone showed a significant improvement in mechanical pain at 2 weeks after CCI surgery, similar to vehicle-treated mice at all other time points. Sham-operated mice showed significantly increased responses to mechanical pain at 3 and 5 weeks after surgery. These data demonstrate that PPF1 improves peripheral pain for a longer period than standard treatment (gabapentin). [Figure 7] Figure 7 shows hot plate test data for 22-month-old wild-type mice that underwent CCI or sham surgery and were tested according to the timeline shown in Figure 1. The assay was performed as described by Woolfe and Macdonald (Woolfe G. and Macdonald AD, J. Pharmacol. Exp. Ther. 80:300-07 (1944), incorporated herein by reference in its entirety). The hot plate temperature was set at 55°C. Mice were placed in a transparent cylinder for 30 minutes for acclimation. The cylinder was placed on the hot plate and a timer was started. The first observed nocifensive behavior (e.g., hind paw licking or jumping) was recorded as the latency. Figure 7 shows hot plate nocifensive latency 5 weeks after CCI or sham surgery. PPF1 treatment significantly reduced responses to hot plate stimulation compared to mice that underwent CCI and vehicle control, demonstrating the rescue effect of PPF1. On the other hand, the effect of standard treatment (gabapentin) is similar to that of the vehicle. [Figure 8]Figure 8 shows hot plate test data for wild-type mice that underwent CCI or sham surgery and were tested according to the timeline shown in Figure 1. Figure 8 shows hot plate nocifensive latency 5 weeks after CCI or sham surgery. PPF1 treatment and rhALB significantly reduced responses to hot plate stimulation compared to mice that underwent CCI and vehicle control. [Figure 9] Figure 9 shows data from the von Frey mechanical allodynia test in C57BL / 6J mice that underwent CCI or sham surgery and were tested according to the timeline shown in Figure 1. Figure 9 shows that mice treated with PPF1 after CCI surgery had significantly increased tolerance to mechanical pain at all assessment time points compared to vehicle-treated mice after CCI surgery. In contrast, mice treated with rhALB showed a similar mechanical allodynia response to vehicle-treated mice at all time points. [Figure 10] Figure 10 shows data from sciatic nerve histological analysis (approximately 1000 μm distal to the final ligature) of myelin basic protein (MBP) expression in C57BL / 6J mice subjected to CCI or sham surgery, with tissue harvested and analyzed 35 days later, as shown in Figure 1. Figure 10 shows that mice administered PPF1 after CCI surgery exhibited significantly increased MBP intensity and increased myelin expression compared to vehicle-treated mice. Sham mice also expressed more MBP than CCI-injured vehicle mice. [Figure 11]Figure 11 shows data from histological analysis of sciatic nerves (approximately 1000 μm distal to the final ligature) for S-100 protein (expressed by Schwann cells) in C57BL / 6J mice subjected to CCI or sham surgery, with tissue harvested and analyzed 35 days later, as shown in Figure 1. Figure 11 shows that mice administered PPF1 after CCI surgery have significantly increased S-100 intensity and increased Schwann cells (cells that produce myelin in peripheral nerves) compared to vehicle-treated mice. Sham mice also express more S-100 than CCI-injured vehicle mice. [Figure 12] Figure 10 shows images representing the intensity of S-100 protein (expressed by Schwann cells) and myelin basic protein selected from sciatic nerve histological analysis identifying the location (approximately 1000 μm distal from the final ligature) used for quantification in Figures 10 and 11 in C57BL / 6J mice that underwent CCI surgery as shown in Figure 1 and were treated with either vehicle or PPF1, and were used for qualitative analysis of sciatic nerve tissue 35 days later. [Figure 13] Figure 1 shows data from spinal cord histological analysis (performed on spinal cord tissue harvested from lumbar regions L4-L6) of C57BL / 6J mice subjected to CCI or sham surgery, as shown in Figure 1, and analyzed 35 days later. Figure 13 shows that mice administered PPF1 after CCI surgery significantly reduced BDNF levels in the dorsal horn of the spinal cord and reduced microglial activation in the spinal cord. Because BDNF is a pro-inflammatory cytokine released by activated microglia, these results suggest that PPF1 reduces a fundamental regulator of pain states in the spinal cord, normalizing levels to those of sham (non-CCI) mice. [Figure 14]Figure 14 shows data from spinal cord histological analysis (performed on spinal cord tissue harvested from lumbar regions L4-L6) of C57BL / 6J mice subjected to CCI or sham surgery, as shown in Figure 1, and tissue was harvested and analyzed 35 days later. Figure 14 shows that mice administered PPF1 after CCI surgery had significantly reduced CD68 intensity in the dorsal horn of the spinal cord and reduced microglial activation within the spinal cord. Because CD68 protein is expressed by activated microglia, this suggests that PPF1 reduces the activation of fundamental cell types involved in the induction of pain states within the spinal cord, normalizing levels to those of sham (non-CCI) mice. The data shown in Figures 13 and 14 indicate that PPF1 centrally regulates the pain state resulting from sciatic nerve injury, improving or preventing the establishment of pain signaling between peripheral nerves and the brain, also known as central sensitization. [Figure 15] Figure 14 shows images representing the intensity of CD68 protein (expressed by activated microglia) selected from spinal cord histological analysis identifying the location of the dorsal horn used for quantification in Figure 14 (performed on spinal cord tissue harvested from lumbar regions L4-L6) in C57BL / 6J mice that underwent CCI surgery as shown in Figure 1 and were treated with either vehicle or PPF1, and then used for qualitative analysis of spinal cord tissue 35 days later. [Figure 16] Figure 13 shows images representing the intensity of BDNF protein (a cytokine released by activated microglia) selected from spinal cord histological analysis identifying the location of the dorsal horn used for quantification in Figure 13 (performed on spinal cord tissue harvested from lumbar regions L4-L6) in C57BL / 6J mice that underwent CCI surgery as shown in Figure 1 and were treated with either vehicle or PPF1, and then used for qualitative analysis of spinal cord tissue 35 days later. [Figure 17]Figure 1 shows a chronic constriction injury (CCI) experiment. 22-month-old wild-type mice underwent CCI surgery by ligation or sham surgery 2 weeks before receiving a 7-day continuous pulse regimen of either PPF1, rhALB, or vehicle control. Behavior was assessed weekly from weeks 2 to 7, and tissue collection for histology was performed at week 7. [Figure 18] This figure shows data from the von Frey mechanical allodynia test in C57BL / 6J mice that underwent CCI or sham surgery and were tested according to the timeline shown in Figure 17. Figure 18 shows that mice administered PPF1 two weeks after CCI surgery exhibited a significantly increased tolerance to mechanical pain, beginning one week after cessation of PPF1 treatment, which was maintained throughout the study period. The results in Figure 18 suggest that PPF1 treatment initiates a process that leads to a long-term decrease in sensitivity to mechanical allodynia, as the improved tolerance is not evident until one week after treatment (in contrast to treatments such as opioid analgesics, which are only effective during treatment) but persists for at least 28 days. In contrast, mice administered rhALB exhibited a similar mechanical allodynia response to vehicle-treated mice at all time points. [Figure 19] Figure 19 shows hot plate test data for wild-type mice that underwent CCI or sham surgery and were tested on the timeline shown in Figure 17. Figure 19 shows hot plate nocifensive latency 5 weeks after CCI or sham surgery. PPF1 treatment significantly reduces responses to hot plate stimulation compared to mice that underwent CCI and vehicle control. [Figure 20] Figure 20 shows hot plate test data for wild-type mice that underwent CCI or sham surgery and were tested on the timeline shown in Figure 17. Figure 20 shows hot plate nocifensive latency 7 weeks after CCI or sham surgery. PPF1 treatment significantly reduces responses to hot plate stimulation compared to mice that underwent CCI and vehicle control. [Figure 21]Figure 21A shows a histological comparison of untreated diabetic wounds (B6.BKS(D)-Leprdb / J diabetic mouse model) (Figure 21A) or PPF1-treated diabetic wounds (Figure 21B). The black bar indicates wound thickness (epidermis and granulation layer). The arrow indicates the wound border. Mice treated with PPF1 had increased wound thickness as determined by wound thickness. Thus, PPF1 demonstrates improved wound healing. [Figure 22] Figure 22A shows a histological comparison of untreated diabetic wounds (B6.BKS(D)-Leprdb / J diabetic mouse model) (Figure 22A) or PPF1-treated diabetic wounds (Figure 22B). Black bars indicate the granulation layer. Blue bars indicate the epidermal layer. PPF1-treated wounds showed a thicker epidermal layer than untreated wounds, but the granulation layer tended to differ more significantly between PPF1-treated and untreated wounds (i.e., the granulation layer was thicker in PPF1-treated wounds than in untreated wounds). [Figure 23] Figure 2 shows the general design of the diabetic wound healing experiment used in Figures 24 to 28. The blood drop indicates when blood was collected to measure fasting blood glucose levels. The skin was injured on day 2 and intravenous (iv) administration was performed on days 1-7. Histology (as demonstrated by microscopy) was examined after sacrifice. [Figure 24] Figure 1 shows the percentage of wounds still open at multiple time points after wounding in the first study (Study 1). Mice were treated with either PPF1 (150 μL) or saline control for 7 days. After 10 days, the size of open wounds in mice treated with PPF1 was significantly reduced compared to saline control (**p<0.006 by unpaired t-test). [Figure 25] Figure 1 shows the percentage of wounds still open at multiple time points after injury in a similar second study (Study 2). Mice were treated with either PPF1 (150 μL) or saline control for 7 days. After 8 days, the size of open wounds in mice treated with PPF1 was significantly reduced compared to saline control (**p<0.0018 by unpaired t-test). [Figure 26] Figure 1 shows a graph of the percentage of wounds still open 11 days after injury, combining data from Study 1 and Study 2. Mice treated with PPF1 show a statistically significant decrease in the percentage of wounds that remained open after 11 days (**p<0.006 by unpaired t-test). The difference between PPF1-treated mice and vehicle-treated mice on day 10 was also significant (**p<0.006 by unpaired t-test). [Figure 27] Figure 27 shows the results of a study using PPF1 or vehicle administered topically to wounds in B6 ob / ob (B6.Cg-Lepob / J mice). Figure 27 shows the study paradigm of daily administration of 30 μL of PPF1 or control vehicle administered topically to wounds. Wounds were injured as described for Figure 10. [Figure 28] Figure 28 shows the results of a topical study along with the percentage of the area of ​​the original wound remaining after 10 days of treatment. Figure 28 shows that PPF1 significantly reduced the percentage of open wounds remaining after 10 days compared to the control vehicle. DETAILED DESCRIPTION OF THE INVENTION

[0011] A. Introduction The present invention relates to the identification and discovery of methods and compositions for treating undesirable conditions associated with post-surgical recovery to improve such recovery. By "improving such recovery" it is meant that a subject's post-surgical recovery may be accelerated, meaning that the subject may become mobile or discharged from inpatient care in a shorter time than would be the case without treatment in the absence of the intervention of embodiments of the present invention. By "undesirable condition" is meant, by way of example and without limitation, conditions or symptoms such as pain, cardiopulmonary problems, infection, thromboembolic problems, inflammation, and delayed wound healing. The present invention relates to methods and compositions for treating subjects suffering from undesirable conditions associated with post-surgical recovery to improve such recovery. Compositions are described herein, and are embodiments of the present invention. Also described herein are dosing regimens for causing improvement in subjects suffering from undesirable conditions associated with post-surgical recovery and improving such recovery. The methods and compositions described herein are useful for preventing complications of post-surgical recovery, ameliorating symptoms of complications of post-surgical recovery, and promoting post-surgical recovery. The methods and compositions of the present invention may be utilized or administered preoperatively (pre-operative), intraoperatively (intra-operative), or post-operatively (post-operative).

[0012] Another aspect of the present invention is directed to treating chronic pain / neuropathy more generally, rather than just chronic pain / neuropathy associated with post-operative recovery. The methods and compositions of the present invention described herein can be used to treat chronic pain and neuropathy. By "treating chronic pain and neuropathy" is meant that the level of chronic pain experienced by a subject to whom the composition of the present invention is administered is slightly, moderately, or significantly reduced, as assessed by subjective or objective means. Such means may include, but are not limited to, self- or medically administered tests such as x-rays, MRIs, CT scans, patient ratings or descriptions of pain, range of motion, reflexes, muscle strength, sensitivity (e.g., the time it takes a subject to remove a limb from pressure or other stimulation), blood tests for inflammatory markers, electromyography (EMG), and nerve conduction velocity.

[0013] In practicing the present invention, a plasma fraction is used as a treatment, such as one or more fractions or effluents obtained from a blood fractionation process, such as the Cohn fractionation process described below. In an embodiment of the present invention, a plasma fraction (a solution containing normal human albumin, alpha globulins, beta globulins, gamma globulins, and other proteins, individually or in complexes (hereinafter referred to as "plasma fraction")) is used. In another embodiment of the present invention, a plasma protein fraction (PPF) is used as a treatment. In another embodiment of the present invention, a human albumin solution (HAS) fraction is used as a treatment. In yet another embodiment, an effluent obtained from a blood fractionation process, such as Effluent I or Effluent II / III, described below, is used. Further embodiments include plasma fractions from which substantially all coagulation factors have been removed to maintain efficacy while reducing the risk of thrombosis (see, e.g., U.S. Patent Application Nos. 62 / 236,710 and 63 / 376,529, which are incorporated herein by reference in their entireties).

[0014] 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.

[0015] 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 must be independently confirmed.

[0016] 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 in 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 ranges, 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. When the stated range includes one or both of the limits, ranges excluding either or both of those included limits are also encompassed within the invention. Included.

[0017] Please note 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," and the like, or for use of a "negative" limitation in connection with the recitation of claim elements.

[0018] 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.

[0019] 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 incorporated publications to the extent there is a conflict.

[0020] 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, reference to a "cell" includes a plurality of such cells, and reference to a "peptide" includes reference to one or more peptides and equivalents thereof, such as polypeptides known to those skilled in the art.

[0021] 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 some 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 embodiments, the subject is a human. Other subjects 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 some embodiments, the subject is a human. The term subject is meant to include humans or organisms of any age, weight, or other physical characteristics; the subject may be an adult, child, infant, or newborn.

[0022] "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" refer to individuals aged 0 and 40 years. "Young" and "young individual" may refer to subjects of any age between 0, 1, 5, 10, 15, 20, 25, 30, 35, or 40 years old, for example, 0, 1, 5, 10, 15, 20, 25, 30, 35, or 40 years old. In other cases, "young" and "young individual" may refer to biological age (as opposed to chronological age), e.g., individuals who do not exhibit levels of inflammatory cytokines in plasma that are indicative of older individuals. In contrast, "young" and "young individual" may refer to biological age (as opposed to chronological age), e.g., individuals who exhibit higher levels of anti-inflammatory cytokines in plasma compared to levels in older individuals. By way of non-limiting example, the inflammatory cytokine is eotaxin, and the fold difference between young subjects or young individuals and older individuals is at least 1.5-fold. Similarly, the fold difference between older and younger individuals for other inflammatory cytokines may be used to refer to biological age (see U.S. Patent Application No. 13 / 575,437, incorporated herein by reference). Typically, the individual is healthy, eg, the individual does not have a hematological malignancy or autoimmune disease at the time of collection.

[0023] "Treatment," as used herein, refers to either (i) the prevention of a disease or disorder, or (ii) the reduction or elimination of symptoms of a disease or disorder. Treatment may be performed prophylactically (before the onset of the disease) or therapeutically (after the onset of the disease). The effect may be preventative, in that the disease or its symptoms are completely or partially prevented, and / or therapeutic, in that the disease and / or side effects resulting from the disease are partially or completely cured. Thus, the term "treatment," as used herein, includes any treatment of a condition associated with post-surgical recovery in a mammal, including (a) preventing the onset of the condition in a subject, (b) inhibiting the condition, i.e., arresting the onset of the condition, or (c) alleviating the condition, i.e., causing the disappearance of the condition. 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 the condition. Therapeutic treatment may also be administered during, or in some cases after, the symptomatic period of the condition.

[0024] 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, for example, an individual suffering from a post-surgical condition. Thus, in a method according to an embodiment 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 a post-surgical condition. A "blood product containing a plasma component" refers to any product derived from blood containing plasma (e.g., whole blood, plasma, or a fraction thereof). 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 factor, 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 consisting 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 at least one or more components found in whole blood, such as red blood cells, white blood cells, etc., to the extent that such components are present in whole blood. In some cases, the plasma product is substantially, if not completely, cell-free; in such cases, the intracellular 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 completely devoid of cells, i.e., the cell-free plasma fraction is cell-free.

[0025] Collection of blood products containing 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 products. Methods for obtaining plasma-containing blood products from donors are well known in the art (e.g., AABB TECHNICAL TECHNOLOGY, vol. 1, pp. 111-114, which are incorporated herein by reference). MANUAL, (see Mark A. Fung, et al., eds., 18th ed. 2014)).

[0026] 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, plasma-containing blood products are obtained using the process of plasmapheresis. Plasmapheresis allows for the removal of a weight-adjusted plasma volume 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 citrate administration is preferably in the range of 690-880 mL, preferably matched to the donor's weight.

[0027] C. Plasma fraction During World War II, when soldiers lost large amounts of blood, a need arose for a stable plasma expander that could be employed on the battlefield. As a result, methods for preparing freeze-dried plasma were developed. However, the need for sterile water for reconstitution made freeze-dried plasma difficult to use in combat situations. Dr. EJ Cohn suggested that albumin could be used as an alternative and prepared a ready-to-use, stable solution that could be immediately administered for the treatment of shock (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.

[0028] 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" involved 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), and U.S. Pat. Nos. 3,869,431, 5,110,907, 5,219,995, 7,531,513, and 8,772,461, all of which are incorporated herein by reference). The experimental parameters described above can be adjusted to obtain specific protein fractions.

[0029] In more recent times, fractionation methods have become more complex and therefore constitute further embodiments of the present invention. These recent increases in complexity include cryoprecipitates, cryo-poor plasma and The introduction of chromatography has resulted in the isolation of new proteins from existing fractions, such as corn fractions and corn fractions, increased IgG recovery through the integration of chromatography and ethanol fractionation, and the reduction / inactivation / removal of viruses (ibid.). Anion exchange chromatography can be used to capture proteins at physiological pH and ionic strength, thereby preserving the functional activity of proteins and / or protein fractions. Heparin and monoclonal antibodies are also used in affinity chromatography. Additionally, gel filtration fractionation, 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 specific plasma proteins.

[0030] The plasma fractionation method can further be an ammonium sulfate-based fractionation method (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 methods have 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).

[0031] 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 frozen and stored 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). Continuous centrifugation and sedimentation isolation can be applied in subsequent steps. 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.

[0032] In an embodiment of the invention, the plasma fraction may include a plasma fraction containing a substantial concentration of albumin. In another embodiment of the 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 is prepared using Gamunex-C™, which has been substantially depleted of immunoglobulins (IgG) by methods well known to those skilled in the art, such as protein A-mediated depletion. The plasma fraction may include IGIV plasma fractions such as IGIV-specific IgG4-binding proteins (e.g., IgG4-binding proteins ...

[0033] 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 products and have even been removed from the pharmacopoeias of some countries (ibid.). Contrary to these concerns, the present invention makes beneficial use of these "contaminants." The methods of the present invention utilize additional proteins or other factors within the "contaminants" that promote processes such as neurogenesis, neuronal survival, improved cognitive or motor function, and reduced neuroinflammation, in addition to α-, β-, and γ-globulins and the aforementioned PKA.

[0034] Those skilled in the art will recognize that there are or have been multiple commercially available sources of PPF ("commercially available PPF preparations"). These include 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). Those skilled in the art will recognize that there are or have been multiple commercially available sources of HAS ("commercially available HAS preparations"). These include Albuminar™ (CSL Behring), AlbuRx™ (CSL Behring), Albutein™ (Grifols, Clayton, NC), Buminate™ (Baxalta, Inc., Bannockburn, IL), Flexbumin™ (Baxalta, Inc., Bannockburn, IL), and Plasbumin™ (Grifols, Clayton, NC).

[0035] 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 plasma recovered from whole blood prepared as specified in 21 CFR 640.1-640.5 (incorporated herein by reference) or a plasma source prepared as specified in 21 CFR 640.60-640.76 (incorporated herein by reference).

[0036] PPF is determined according to 21 CFR 640.92 (incorporated herein by reference) based on the following criteria: The product is tested to determine whether it meets the criteria. (a) The final formulation should be a 5.0 ± 0.30 percent solution of the protein. (b) The total protein of 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 globulins. 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.

[0037] 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 17% or less, and a gamma globulin content of 1% or less, 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)).

[0038] 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 plasma recovered from whole blood prepared as specified in 21 CFR 640.1-640.5 (incorporated herein by reference) or 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).

[0039] Albumin (human) is determined to meet the following criteria in accordance with 21 CFR 640.82: It is tested to (a) Protein concentration The final formulation should conform to one of the following concentrations: 4.0±0.25 percent; 5.0±0.30 percent; 20.0±1.2 percent; and 25.0±1.5 percent solution of protein. (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.

[0040] 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 content 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 with a similar composition when suspended in a solvent. The total globulin fraction may be determined by subtracting albumin from the total protein.

[0041] 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 make, 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.

[0042] 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 can be 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 is believed 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.

[0043] Thus, in one embodiment, the present invention is directed to a method of treating a subject suffering from an undesirable condition associated with post-surgical recovery. 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 is substantially devoid of (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 is substantially devoid of at least one clotting factor and IgM. In certain embodiments, the blood The blood product is substantially devoid of fibrinogen (Factor I). In further embodiments, the blood product is substantially devoid of 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.

[0044] 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.

[0045] In the above embodiments of the present invention, the total gamma globulin concentration may be 1-5%.

[0046] The specific concentration of proteins in the 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.

[0047] 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 flasks containing citrate or 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.

[0048] 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 lowering the plasma temperature to -2°C, cold 53.3% ethanol (176 mL / L of plasma) can be added, for example, using a jet at a rate of 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.

[0049] 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 lowering the temperature of Effluent I 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.

[0050] 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% 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 VI-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% and a pH of 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, 170 mL of cold ethanol (95%) is added for every liter of conditioned Effluent IV-1. The precipitated proteins are allowed to settle for 36 hours and can then be removed by centrifugation at -7°C.

[0051] 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.

[0052] Those skilled in the art will recognize that each of the various fractions and effluents described above can be used in conjunction with the methods of the present invention to treat conditions associated with post-surgical recovery. For example, without limitation, Effluent I or Effluent II / III may be utilized to treat conditions associated with post-surgical recovery or to promote post-surgical recovery, and are embodiments of the present invention.

[0053] The aforementioned methods for preparing plasma fractions and plasma protein fractions (PPF) are merely exemplary and include 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 fractions 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 fractions and plasma protein fractions.

[0054] Further embodiments of the present invention contemplate methods and compositions that utilize and / or include additional plasma fractions. For example, the present invention specifically contemplates that a particular concentration of albumin is not critical for treating conditions associated with or promoting post-operative recovery. Thus, fractions with reduced albumin concentrations, e.g., fractions having less than 83% albumin, are contemplated by the present invention.

[0055] 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 known in the art. By way of example and not limitation, in one embodiment of the methods of the invention described herein, fresh frozen plasma is administered to a subject to treat a condition associated with post-surgical recovery. In one embodiment, the plasma-containing blood product is administered immediately, e.g., within about 12-48 hours after collection from the donor, to an individual suffering from a condition associated with post-surgical recovery. In such cases, 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 upon thawing, is administered to the subject 60-75 minutes after the thawing process begins. Each subject preferably receives a single unit of fresh frozen plasma (200-250 mL). This fresh frozen plasma is preferably from a donor within a predetermined age range. In one embodiment of the invention, the fresh frozen plasma is provided by a young individual. In another embodiment of the invention, the fresh frozen plasma is provided by a donor of the same gender. In another embodiment of the invention, the fresh frozen plasma is provided by a donor in the 18-22 year age range.

[0056] In an embodiment of the invention, the compositions of the invention (e.g., plasma-containing blood products such as plasma fractions) are administered intravenously. The compositions of the invention may also be administered intraperitoneally. In another embodiment of the invention, the compositions of the invention may be administered orally, subcutaneously, or topically. Topical preparations for treating wounds and promoting healing may be formulated as gels, creams, ointments, gauzes, bandages, and the like, as known in the art (e.g., Kahn AW, et al., Pharmacogn Mag, 9(Suppl 1):S6-S10 (2013); U.S. Pat. No. 5,641,483; U.S. Pat. No. 4,885,163, which are incorporated herein in their entireties). (See U.S. Patent No. 8,313,764).

[0057] 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 by blood type after donation in accordance with the requirements of 21 CFR 640.33 and FDA Screen for infectious agents such as HIV I&II, HBV, HCV, HTLV I&II, and anti-HBc according to the recommendations contained in the guidance document.

[0058] 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.

[0059] 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 known in the art. By way of example and not limitation, in one embodiment of the methods of the invention described herein, fresh frozen plasma is administered to a subject to treat a condition associated with post-surgical recovery. In one embodiment, the plasma-containing blood product is administered immediately, e.g., within about 12-48 hours after collection from the donor, to an individual suffering from an undesirable condition associated with post-surgical recovery. In such cases, 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 the subject 60-75 minutes after the thawing process begins. Each subject preferably receives a single unit of fresh frozen plasma (200-250 mL). This fresh frozen plasma is preferably obtained from donors within a predetermined age range. In one embodiment of the invention, the fresh frozen plasma is obtained from a young individual. In another embodiment of the invention, the fresh frozen plasma is obtained from a donor of the same gender. In another embodiment of the invention, the fresh frozen plasma is obtained from a donor in the 18-22 year old 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 by blood type after donation in accordance with the requirements of 21 CFR 640.33 and FDA Screen for infectious agents such as HIV I&II, HBV, HCV, HTLV I&II, and anti-HBc according to the recommendations contained in the guidance document.

[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 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.

[0062] In an embodiment of the invention, a subject suffering from a condition associated with post-surgical recovery is treated by administering an effective amount of plasma or a plasma fraction to the subject. In another embodiment of the invention, an effective amount of plasma or a plasma fraction is administered and the subject is subsequently monitored for improved function, wound healing, the presence of markers, reduced pain, or reduced inflammation. In another embodiment of the invention, a subject suffering from a condition associated with post-surgical recovery is treated by administering an effective amount of plasma or a plasma fraction to the subject, wherein the plasma or plasma fraction is administered to result in improved function, wound healing, the presence of markers, reduced pain, or reduced inflammation after the mean or median half-life of the plasma protein or plasma fraction protein has been reached compared to the most recent dose (referred to herein as "pulse administration" or "pulsed administration") (see U.S. Pat. No. 10,357,513 and U.S. Patent Application Nos. 15 / 961,618 and 62 / 701,411, which are incorporated herein by reference in their entireties). In another embodiment of the invention, the plasma or plasma fraction is administered according to a dosing regimen of at least two consecutive days, and the subject is monitored for improved function or HSC marker levels at least three days after the last administration. In a further embodiment of the invention, the plasma or plasma fraction is administered according to a dosing regimen 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 function, wound healing, presence of markers, reduced pain, or reduced inflammation at least three days after the last administration. In yet another embodiment of the invention, the plasma or plasma fraction is administered according to a dosing regimen of at least two consecutive days, and the subject is monitored for improved function, wound healing, presence of markers, reduced pain, or reduced inflammation after the last administration, once the average half-life of the proteins in the plasma or plasma fraction has been reached. In another embodiment of the invention, the plasma or plasma fraction is administered according to a non-consecutive dosing regimen of 2 to 14 days, where the interval between administrations may be within a range of 0 to 3 days.

[0063] 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.

[0064] Biochemically, an "effective amount" or "effective dose" of an active agent refers to an amount of active agent that prevents, attenuates, reduces, diminishes, or inhibits an undesirable condition associated with post-surgical recovery 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, and in some cases reverses an undesirable condition associated with post-surgical recovery.

[0065] 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.

[0066] 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, 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.

[0067] 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.

[0068] 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.

[0069] L. Signs The methods, plasma-containing blood products, and fractions are used to treat undesirable conditions associated with post-surgical recovery and to promote post-surgical recovery. Such conditions and symptoms include, by way of example and without limitation, pain and wound healing. The methods and compositions of the present invention are also used to treat acute and chronic pain in diseases or conditions not necessarily associated with post-surgical recovery. The methods and compositions are also used to treat wound healing not necessarily associated with post-surgical recovery. The methods and compositions are also used to promote or stimulate remyelination to treat myelination-related diseases, such as multiple sclerosis.

[0070] The methods, plasma-containing blood products, and fractions are also used to treat conditions related to the nervous system. Such conditions include, by way of example and without limitation, conditions of the central nervous system, such as central neuropathic pain, spinal cord injury, bone marrow injury, and central neuropathic pain associated with post-operative recovery. Approximately 17,000 new cases of spinal cord injury occur annually, with 40-75% of the approximately 300,000 prevalence being spinal cord injuries, including central neuropathic pain (Jadad A et al., AHRQ Evidence Report Summaries, Agency for Healthcare Research and Quality; (1998-2005); https: / / www.nscisc.uab.edu / Public / Facts%202016.pdf; and https: / / www.nscisc.uab.edu / PublicDocuments / fact_figures_docs / Facts%202012%20Feb%20Final.pdf). One-third of patients experience severe pain, and only one-third experience a 50% or greater reduction in pain with treatment (Charbonneau R, CMAJ, 189(2):E48-E49 (2017); and Hadjipavlou G, et al., BJA Education, 16(8):264-68 (2016)). The incidence of bone marrow injury is 605 per million, and while surgical options exist, no medical treatments exist, representing an unmet need in the field (Nouri A, et al., Spine, 40(12):E675-93 (2015); and The Lancet Neurology, editorial 18(7):P615 (2019)).

[0071] These conditions also include, by way of example and without limitation, plexus / nerve root conditions such as plexopathies, cervical radiculopathy, and sciatica (lumbar radiculopathy). The incidence of plexopathies is 2-3 per 100,000. Current options include management of neuropathic pain with antiepileptics and antidepressants, representing an unmet need. The incidence of cervical radiculopathy is 100 per 100,000 in men and 60 per 100,000 in women (McCartney S, et al. al., Br. J. Gen. Pract., 68(666):44-46 (2018)). The annual incidence of sciatica is 1-5 % and many cases resolve spontaneously, but sciatica responds less to treatment over time. Treatment options include surgery, standard pain medications, and steroids, highlighting the need for new therapies (Lewis R, et al., Health Technology Assessment - The Clinical Effectiveness and Cost-Effectiveness of Management Strategies for Sciatica: Systematic Review and Economic Model, No. 15.39 NIHR Journals Library (2011)).

[0072] Additional indications include peripheral nervous system disorders, including, but not limited to, peripheral neuropathy, peripheral neuropathy associated with postoperative recovery, carpal tunnel syndrome, chemotherapy-induced peripheral neuropathy, compression and trauma, diabetic neuropathy, peripheral neuropathy associated with shingles (postherpetic neuralgia), complex regional pain syndrome, and trigeminal neuralgia. Peripheral neuropathy is a disorder of the peripheral nerves that affects at least 20 million people in the United States. Approximately 60% of people with diabetes experience diabetic neuropathy, a type of peripheral neuropathy (http: / / www.healthcommunities.com / neuropathy / overview-of-neuropathy.shtml). Carpal tunnel syndrome affects 3-6% of adults, and treatments include splinting, steroids, and surgery (LeBlanc KE, et al., Am Fam Physician, 83(8):952-58 (2011)). Chemotherapy-induced peripheral neuropathy occurs in 40-60% of patients both during chemotherapy and within three months of chemotherapy, with a reported incidence of 650,000 patients receiving chemotherapy annually. Peripheral neuropathy can lead to chemotherapy dose reduction or discontinuation, affect quality of life, and no medications or supplements have been shown to prevent the condition (JAMA Oncology, 5(5):750, (2019)). Compression- and trauma-related peripheral neuropathy occurs in 2-3% of trauma patients, accounting for 3 million trauma cases in the United States. While surgery is often effective, there is a need for new medications (American Association for the Surgery of Trauma - Trauma Facts, available at http: / / www.aast.org / trauma-facts; and https: / / emedicine.medscape.com / article / 1270360-overview). Novak CB, Medscape - Peripheral Nerve Injuries, (Oct 5, 2018)).

[0073] An additional peripheral nervous system indication for which the present methods, plasma-containing blood products, and fractions may be used to treat includes diabetic neuropathy. In the United States, the diabetic population is approximately 30 million, of which 8-26% suffer from neuropathy (Risson V, et al., Incidence and prevalence of painful diabetic neuropathy and postherpetic neuralgia in major 5 European countries, the United States and Japan, Value in Health (20):A339-A811 PSY18 (2017) available at https: / / www.valueinhealthjournal.com / article / S1098-3015(17)31179-8 / pdf). FDA-approved options for diabetic neuropathy pain include pregabalin, duloxetine, fluoxetine, and tapentadol, all of which are unresponsive to many patients and do not directly address nerve damage.

[0074] The methods and formulations of the present invention may also treat peripheral neuropathy associated with shingles (postherpetic neuralgia). Twenty percent of shingles patients experience postherpetic neuralgia, accounting for 1 million cases per year in the United States (see https: / / emedicine.medscape.com / article / 1143066-overview#a6 and https: / / www.cdc.gov / shingles / hcp / clinical-overview.html). Gabapentin and pregabalin are approved for the treatment of this condition, but pain is often resistant to treatment (Sacks GM, Am J Manag Care 19(1 Suppl):S207-13 (2013)).

[0075] Additional peripheral neuropathy indications, such as complex regional pain syndrome and trigeminal neuralgia, may be treated using the methods and compositions of the present invention. These conditions occur at 5.5 to 26 cases per 100,000 population. These conditions are associated with severe pain and disability, have variable response to treatment, and demonstrate a high unmet need (Complex Regional Pain Syndrome Fact Sheet, National Institutes of Health - National Institute of Neurological Disorders and Stroke, available at https: / / www.ninds.nih.gov / Disorders / Patient-Caregiver-Education / Fact-Sheets / Complex-Regional-Pain-Syndrome-Fact-Sheet). Trigeminal neuralgia occurs at 4.2 to 28.9 cases per 100,000 population. Trigeminal neuralgia significantly impacts quality of life and can become resistant to treatment over time, requiring patients to try various treatments (Wu N, et al., J Pain, 18(Suppl 4):S69, (2017)). The only approved treatment is carbamazepine, so there is an unmet need to treat the pain experienced by these patients.

[0076] Additional indications that may be treated using the methods and compositions of the present invention include central post-stroke pain, central pain in multiple sclerosis, post-traumatic headache, Dejerine-Roussy syndrome, optic neuritis, mitochondrial optic neuropathy, ischemic optic neuropathy, neuromyelitis optica, hereditary optic neuropathy, alcoholic neuropathy, Guillain-Barré syndrome, chronic inflammatory demyelinating polyneuropathy (CIDP), multifocal motor neuropathy (MNN), paraneoplastic autonomic neuropathy, peripheral neuropathy associated with sarcoidosis, peripheral neuropathy associated with rheumatoid arthritis, peripheral neuropathy associated with systemic lupus erythematosus, peripheral neuropathy associated with Sjogren's syndrome, peripheral neuropathy associated with celiac disease, Bell's palsy, peripheral neuropathy associated with Lyme disease, peripheral neuropathy associated with leprosy, peripheral neuropathy associated with hepatitis B, peripheral neuropathy associated with hepatitis C, peripheral neuropathy associated with HIV / AIDS, peripheral neuropathy associated with amyloidosis, anti-MAG Examples include peripheral neuropathy associated with cerebrovascular disease, peripheral neuropathy associated with cryoglobulinemia, peripheral neuropathy associated with POEMS, peripheral neuropathy associated with toxins, peripheral neuropathy associated with kidney disease, peripheral neuropathy associated with vasculitis, peripheral neuropathy associated with vitamin and nutritional deficiencies, Charcot-Marie-Tooth disease (CMT), idiopathic peripheral neuropathy, fibromyalgia, and paraneoplastic peripheral neuropathies.

[0077] The methods, plasma-containing blood products, and fractions are also used to treat indications related to wound healing. Wounds may be, for example, but not limited to, avulsions, dehiscences, incisions, lacerations, and punctures. Such indications may include both chronic and acute wounds. By way of example and not limitation, wound indications include chronic wounds such as diabetic ulcers, pressure ulcers, venous ulcers, and arterial ulcers, as well as acute wounds such as surgical wounds, traumatic wounds, and burns. However, any type of chronic or acute wound may be treated by the methods and compositions of the present invention.

[0078] Diabetic ulcers affect more than 2.2 million people in the United States, with a global incidence of 6.4% (Chun D, ​​et al., J Clin Med, 8:748 (2019)). Despite multiple treatment options, including debridement and medical dressings, many patients endure infection and ultimately require amputation, highlighting the need for new treatments, particularly pharmacologic ones.

[0079] Pressure ulcers occur in 1.8% of all hospital admissions, with the total number of cases annually numbering in the hundreds of thousands (Bauer K, et al., Ostomy Wound Manage, 62(11):30-38 (2016)). Similarly, although treatment options such as debridement and medical dressings are available, many patients experience infection and pressure ulcers can lead to death.

[0080] Venous ulcers, primarily affecting the legs, pose a significant burden to older adults, affecting approximately 1% of the world's population (Nelzen O, Phlebolymphology, 15(4) (2008)). Venous ulcers are difficult to heal and are more likely to recur than other chronic ulcers. Similar to diabetic ulcers and pressure ulcers, treatment options include debridement and medical dressings, but the recurrence of venous ulcers highlights the need for new treatments, particularly drug-based treatments. Arterial ulcers occur in approximately one-quarter of venous ulcers (Gabriel A, Vascular Ulcers, (2018) available at https: / / emedicine.medscape.com / article / 1298345-overview#a6). Treatment options include debridement and medical dressings, but approved medications are scarce.

[0081] Surgical wounds occur in approximately 1.3 million patients annually (see MediWound - Innovating Solutions for Wound & Burn Care (2019)19, available at http: / / ir.mediwound.com / static-files / cd547017-d1ed-460e-8cb2-0550b1e18a29). Surgical wounds are cuts or incisions in the skin, usually made by a scalpel during surgery, but can also result from drains placed during surgery. Surgical wound healing is an important outcome of surgery. Postoperative wound dehiscence, or separation of wound layers with fascial disruption, can be a serious complication (see Hospital Harm Improvement Resource - Wound Disruption (2016), available at https: / / www.patientsafetyinstitute.ca / en / toolsResources / Hospital-Harm-Measure / Documents / Resource-Library / HHIR%20Wound%20Disruption.pdf). Furthermore, surgical wounds take much longer to heal in older patients compared to younger individuals (Gerstein AD, Dermatol Clin, 11(4):749-57 (1993)).

[0082] Traumatic wounds are primarily cut, laceration, puncture, or abrasion wounds that damage the skin and underlying tissues. Traumatic wounds are typically classified into three types: acute, incised, and penetrating. Acute wounds are wounds where the skin is torn or torn, giving the wound a jagged appearance, and typically contain foreign material such as glass, metal, gravel, sand, or dirt. Incised wounds are wounds where a sharp object penetrates the skin and underlying subcutaneous tissue. Penetrating wounds are the deepest and most serious of the three types. Stab and gunshot wounds are typical examples (see Traumatic Wounds, available at https: / / www.woundcarecenters.org / article / wound-types / traumatic-wounds; and Leaper DJ, BMJ, 332(7540):532-35 (2006)). Although there are several physical treatment options (eg, suturing), the need for pharmacological intervention remains.

[0083] The World Health Organization estimates that 180,000 people die each year as a result of burns. Non-fatal burns are also a major cause of morbidity, including prolonged hospitalization (https: / / www.who.int / news-room / fact-sheets / detail / burns). Typical treatments include surgery and dressings. Pharmacological treatments focus on analgesia, infection prevention, sedation, circulatory replacement, anticoagulation, and nutrition (Green A, et al., Clinical Pharmacist, 2:249-54 (2010)). The methods and compositions of the present invention can fulfill an unmet need for pharmacological interventions that promote healing of injuries to the skin and underlying tissues.

[0084] The methods, plasma-containing blood products and fractions can be used to treat conditions and symptoms associated with post-surgical recovery at various times, for example, without limitation, administration to a subject pre-operatively, intra-operatively (during treatment), or post-operatively.

[0085] In one embodiment of the present invention, the method, plasma-containing blood products, and fractions can be used to treat pain. Such pain may include, by way of example and without limitation, acute pain or chronic pain. In another embodiment of the present invention, the method, plasma-containing blood products, and fractions can further be used to treat central pain or central neurological disorders. Central pain includes neurological conditions resulting from damage or dysfunction of the central nervous system (CNS), including the brain, brainstem, and spinal cord. Central pain may affect most parts of the body or be limited to a specific area. Pain may be constant or intermittent. Pain intensity may be moderate to severe. Such pain may also be affected by touch, movement, emotion, and changes in body temperature. Pain may develop immediately after the inciting event or may be delayed for months or years (see Central Pain Information Page - National Institute of Neurological Disorders and Stroke, Central Pain Syndrome Information Page, available at https: / / www.ninds.nih.gov / disorders / all-disorders / central-pain-syndrome-information-page; and Colloca L, et al., Nat Rev Dis Primers, 3:17002 (2017)). In further embodiments of the present invention, the methods, plasma-containing blood products, and fractions are used to treat spinal cord injury (SCI), myelopathy, plexopathy, cervical radiculopathy, sciatica (lumbar radiculopathy), central post-stroke pain, central pain in multiple sclerosis, post-traumatic headache, Dejerine-Roussy syndrome, optic neuritis, mitochondrial optic neuropathy, ischemic optic neuropathy, neuromyelitis optica, and hereditary optic neuropathies.

[0086] Another embodiment of the present invention is that the methods, plasma-containing blood products and fractions can further be used to treat peripheral pain or peripheral neuropathy. Peripheral neuropathy can refer to several conditions involving damage to the peripheral nervous system. Over 100 peripheral neuropathies have been identified, depending on which type(s) of nerve(s) is / are affected, including motor, sensory, and autonomic nerves (see Central Page Information Page - National Institute of Neurological Disorders and Stroke, Peripheral Neuropathy Fact Sheet, available at https: / / www.ninds.nih.gov / Disorders / Patient-Caregiver-Education / Fact-Sheets / Peripheral-Neuropathy-Fact-Sheet; and Colloca L, et al., Nat Rev Dis Primers, 3:17002 (2017)).In a further embodiment of the present invention, the methods, plasma-containing blood products and fractions may be used to treat carpal tunnel syndrome, chemotherapy-induced peripheral neuropathy, compression and trauma, diabetic neuropathy, peripheral neuropathy associated with shingles (postherpetic neuralgia), complex regional pain syndrome, trigeminal neuralgia, alcoholic neuropathy, Guillain-Barré syndrome, chronic inflammatory demyelinating polyneuropathy (CIDP), multifocal motor neuropathy (MNN), paraneoplastic autonomic neuropathy, peripheral neuropathy associated with sarcoidosis, peripheral neuropathy associated with rheumatoid arthritis, peripheral neuropathy associated with systemic lupus erythematosus, peripheral neuropathy associated with Sjogren's syndrome, peripheral neuropathy associated with celiac disease, Bell's palsy, peripheral neuropathy associated with Lyme disease, peripheral neuropathy associated with leprosy, peripheral neuropathy associated with hepatitis B, peripheral neuropathy associated with hepatitis C, peripheral neuropathy associated with HIV / AIDS, peripheral neuropathy associated with amyloidosis, anti-MAG It treats peripheral neuropathy associated with cerebrovascular disease, peripheral neuropathy associated with cryoglobulinemia, peripheral neuropathy associated with POEMS, peripheral neuropathy due to toxins, peripheral neuropathy associated with kidney disease, peripheral neuropathy associated with vasculitis, peripheral neuropathy associated with vitamin and nutritional deficiencies, Charcot-Marie-Tooth disease (CMT), idiopathic peripheral neuropathy, fibromyalgia, and paraneoplastic peripheral neuropathy.

[0087] One embodiment of the present invention is that the methods, plasma-containing blood products and fractions can be used to treat wounds by promoting wound healing. In a further embodiment of the present invention, the methods, plasma-containing blood products and fractions are used to treat chronic or acute wounds. In a further embodiment of the present invention, diabetic ulcers, pressure ulcers, venous ulcers, arterial ulcers, surgical wounds, traumatic wounds and burns are treated.

[0088] 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.

[0089] 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.

[0090] The kit may further comprise blood collection bags, tubing, needles, centrifuge tubes, etc. In yet other embodiments, the kits described herein comprise 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 in that container, 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 in that container, which may include information regarding the age of the donor of the plasma product. For example, the identification information provides data regarding the age of the donor of the plasma product (such identification information may be the donor's age at the time of collection). Optionally, each container of the kit contains plasma product from a donor of substantially the same age. That is, all containers contain product from donors of substantially, if not exactly the same, age. By substantially the same age, we mean that the ages of the various donors from whom the plasma products of the kit are obtained may differ, in some cases, by 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 identification information may be present on any convenient element of the container, such as a label, an RFID chip, etc. The identification 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 in 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 a medical-grade plastic material. In some cases, the container has the configuration of a bag or pouch. In addition to the container, such a kit may further comprise an administration device, e.g., as described above. The components of such a kit 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.

[0091] In addition to the above elements, the kit may further include 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. 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.

[0092] N. Experimental Examples 1. Models for Pain a) Pain - Pre-injury treatment (1) Neuropathic nerve damage changes Using a chronic pain model employing chronic constriction injury (CCI), we determined pain levels in 22-month-old C57BL / 6J mice treated with (1) PPF1 after CCI, (2) vehicle after CCI, or (3) vehicle after sham surgery. Using such a model, the nervous system is conditioned to a persistent state of high reactivity that lowers pain threshold long after the initial injury occurs (see, e.g., Safakhah, HA et al., Journal of Pain, 10:1457-66, and Suter MR, et al., Anesthesiology Res and Practice (2011), both of which are incorporated by reference in their entireties).

[0093] PPF1 is a PPF3 with 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 vivo in the examples herein using a 5% solution (w / v, 50 g / L). PPF2 is also a PPF3, but differs significantly from PPF1. PPF2 meets the same protein content and protein concentration specifications as PPF1.

[0094] Figure 1 shows the timeline of the CCI experiment. 23-month-old wild-type mice underwent CCI surgery by ligation or sham surgery 24 hours before a 7-day continuous pulse regimen of either 150 μL / day (into the tail vein) of PPF1 or vehicle control. Behavior was assessed at 4 weeks, and tissue collection for histology was performed at 5 weeks.

[0095] Figure 2 shows the location of CCI performed on a 23-month-old wild-type mouse. The ligation was performed on the sciatic nerve as shown in Figure 2. Figure 2 is adapted from Suter MR, et al., Anesthesiology Res and Practice, (2011), which is incorporated herein by reference in its entirety. be.

[0096] Figure 3 shows data from the von Frey mechanical allodynia test in wild-type mice 4 weeks after CCI or sham surgery, as detailed in Figure 1. To determine the mice's tolerance to mechanical pressure, the hind paw, weakened by the target sciatic nerve, was stimulated with von Frey filaments of different thicknesses. The pressure to which the mice withdrew their hind paw was measured and plotted in Figure 3. Figure 3 shows that mice treated with PPF1 after CCI exhibited significantly reduced pain (they were able to tolerate higher pressures) than mice treated with vehicle control after CCI. Sham-operated mice also exhibited significantly reduced pain than mice treated with vehicle control after CCI. The primary finding is that PPF1 positively impacts the lack of mechanical pain sensation induced by CCI. ***P<0.001 CCI PPF1-treated vs. CCI vehicle-treated; *P<0.05 sham Vehicle vs. CCI vehicle; one-way ANOVA with Tukey post-hoc test.

[0097] Figure 4 shows data from hippocampal histology performed on wild-type mice as shown in Figure 1. Neurogenesis was measured using the doublecortin (DCX) marker. Mice undergoing CCI surgery and treated with PPF1 had significantly more neurogenesis in the dentate gyrus of the hippocampus than mice receiving vehicle. Mice undergoing sham surgery tended to have more neurogenesis than mice undergoing CCI surgery. Both groups received vehicle treatment after surgery. Thus, PPF1 demonstrated the ability to restore neurogenesis after chronic nerve injury. *P<0.05 CCI PPF1 treatment vs. CCI vehicle treatment; unpaired t-test.

[0098] Figure 5 shows data from hippocampal histology performed on wild-type mice, as shown in Figure 1. Inflammatory markers, measured by CD68 expression, were quantified. Our results show that mice undergoing CCI surgery and vehicle treatment had significantly increased numbers of CD68-positive cells in the hippocampus compared with mice treated with PPF1 after CCI surgery. Mice treated with PPF1 exhibited similar inflammation levels to mice in the sham-operated group. This indicates that PPF1 may help ameliorate neuroinflammation caused by chronic nerve injury. *P<0.05 CCI-PPF1-treated vs. CCI-vehicle-treated, sham-vehicle vs. CCI-vehicle; one-way ANOVA with Tukey's post-hoc test.

[0099] Figure 6 shows data from the von Frey mechanical allodynia test in C57BL / 6J mice that underwent CCI or sham surgery and were tested according to the timeline shown in Figure 1. Twenty-two-month-old mice received a 7-day continuous pulse administration regimen of either 150 μL / day of PPF1 (into the tail vein) or vehicle control. Another group received 75 mg / kg of gabapentin (intraperitoneally) daily for 7 consecutive days. All treatments began 24 hours after CCI or sham surgery. To determine the mice's tolerance to mechanical pressure, the hind paw, weakened by the target sciatic nerve, was stimulated with von Frey filaments of different thicknesses. The pressure with which the mice withdrew their hind paw was assessed and is shown in Figure 6 as the number of weeks after CCI or sham surgery. Figure 6 demonstrates that mice administered PPF1 after CCI surgery had significantly increased tolerance to mechanical pain at all assessment time points compared with mice treated with vehicle after CCI surgery. In contrast, mice administered gabapentin alone showed a significant improvement in mechanical pain sensation 2 weeks after CCI surgery, similar to vehicle-treated mice at all other time points. Sham-operated mice showed a significantly increased response to mechanical pain sensation 3 and 5 weeks after surgery. These data indicate that PPF1 improves peripheral pain for a longer period than standard treatment (gabapentin). ***,****P<0.001,P<0.0001 PPF1 vs. vehicle control; ANOVA with Tukey's post-hoc test. *P<0.05 Gabapentin vs. vehicle control; ANOVA with Tukey's post-hoc test. *,**P<0.05,P<0.01 Sham vs. vehicle control; ANOVA with Tukey's post-hoc test.

[0100] Figure 7 shows data from the hot plate test of wild-type mice shown in Figure 1 and treated as described by Woolfe and Macdonald (Woolfe G. and Macdonald AD, J. Pharmacol. Exp. Ther. 80:300-07 (1944), incorporated herein by reference in its entirety). The hot plate temperature was set at 55°C. Mice were placed in a transparent cylinder for 30 minutes for acclimation. The cylinder was placed on the hot plate and a timer was started. The time when nocifensive behavior (e.g., hind paw licking or jumping) was first observed was recorded as the latency. If nocifensive behavior was observed, the mouse was removed at a predetermined cutoff time, such as 30 seconds, to prevent tissue damage. Because repeated testing has been shown to alter sensitivity, mice were tested only 2 and 5 weeks after CCI surgery. Figure 7 shows hot plate nocifensive latencies 5 weeks after CCI surgery or sham surgery. PPF1 treatment significantly reduced responses to hot plate stimulation compared to mice that received CCI and vehicle control, demonstrating a rescue effect by PPF1. **P<0.01 sham vs. CCI, ****P<0.0001 PPF1-treated mice that received CCI vs. vehicle-treated mice that received CCI. ANOVA with Tukey's post-hoc test.

[0101] (2) Prevention of spinal cord neuroinflammation Another study similar to the previous one (above) was performed on 22-month-old C57BL / 6J mice. Cohorts of mice were treated with (1) PPF2 (PPF2) after CCI, (2) vehicle after CCI, (3) recombinant human albumin (rhAlb) after CCI, or (4) vehicle after sham surgery. Mice received a 7-day continuous pulse administration regimen of 150 μL / day (into the tail vein) of PPF2, recombinant human albumin, or vehicle control. All treatments began 24 hours after CCI or sham surgery.

[0102] Figure 8 shows data from the hot plate test (as described above) 35 days after CCI as treated with the timeline in Figure 1. Mice treated with PPF2 had significantly reduced responses to hot plate stimulation compared to mice receiving CCI and vehicle control. Mice treated with recombinant human albumin also had significantly reduced responses compared to mice receiving CCI and vehicle control, but not to the same extent as mice treated with PPF2. *P<0.05 rhAlb-treated CCI mice vs. vehicle-treated CCI mice, ***P<0.001 PPF2-treated CCI-operated mice vs. vehicle-treated CCI-operated mice. ANOVA with Tukey's post-hoc test.

[0103] Figure 9 shows data from von Frey mechanical allodynia tests of these same mice at various time intervals both before (baseline) and after CCI. The pressure at which the mice withdrew their hind paw was assessed and expressed as the number of weeks after CCI or sham surgery. Figure 9 shows that mice administered PPF2 after CCI surgery had significantly increased tolerance to mechanical pain at all assessment time points compared with mice treated with vehicle or recombinant human albumin (rhAlb) after CCI surgery. This indicates that PPF2 ameliorated pain for a longer period than either the control vehicle or albumin, the major protein component of PPF. Thus, these effects appear not to be mediated through albumin but rather through other proteins present in PPF. * P<0.05; ** P<0.01; *** P<0.001; **** P<0.0001 vs. vehicle control; ANOVA with Tukey's post-hoc test.

[0104] Figure 10 shows the relative levels of myelin basic protein (MBP, detected by Abcam, ab40390 anti-rabbit antibody) in the distal sciatic nerve 5 weeks after the last administration of PPF (PPF1) in another similar experiment performed in 22-month-old mice as described above. *P<0.05; ***P<0.001 vs. vehicle control; ANOVA with Tukey's post-hoc test.

[0105] Figure 11 shows the relative levels of the S-100 Schwann cell marker in these mice. In both cases, PPF in mice that underwent CCI increased the relative levels of these markers compared to vehicle-control mice that underwent CCI. This together indicates that PPF promotes sciatic nerve repair by increasing the expression of myelin and S-100 proteins. This further indicates that PPF triggers the myelinating repair mechanism. **P<0.01; ***P<0.001 vs. vehicle control; ANOVA with Tukey's post-hoc test.

[0106] FIG. 12 is a qualitative view of the fluorescence microscopy of the data shown in FIGS.

[0107] Figures 13 and 14 show the detection of BDNF and CD68 in the dorsal horn of the spinal cord of mice treated 24 hours after CCI injury. Brain-derived neurotrophic factor (BDNF, detected by Abcam ab108319 anti-rabbit antibody) is secreted by activated microglia and has been shown to enhance spinal nociception (detection of painful stimuli) through mechanisms such as synaptic facilitation and central sensitization. Neuropathic pain due to peripheral nerve injury is often accompanied by increased spinal cord expression of BDNF (Garraway SM, et al. Neural Plast. Article ID 9857201 (2016)). We also determined CD68 levels (detected by Biorad MCA1957 GA anti-rat antibody). CD68 is a marker of activated microglia. Figures 13 and 14 show that PPF treatment 24 hours after CCI injury significantly reduced both BDNF and CD68 markers in the dorsal horn of the spinal cord, indicating prevention of microglial activation and the detrimental downstream events associated with the development of neuropathic pain. **P<0.01; ***P<0.001 vs. vehicle control; ANOVA with Tukey's post-hoc test.

[0108] Figures 15 and 16 show fluorescence microscopy images of the data shown in Figures 13 and 14, respectively. The rectangle highlights the dorsal horn of the spinal cord analyzed at the L4-L6 lumbar region. The images on the right of Figures 15 and 16 are high-focus images of the rectangular area on the left of each figure.

[0109] b) Pain - Treatment 14 days after injury Figure 17 shows the protocol used in 22-month-old C57BL / 6J mice. Baseline von Frey paw withdrawal thresholds for measuring mechanical allodynia were obtained 3–4 days before CCI or sham surgery. Cohorts of mice were treated with (1) PPF1 (PPF1) 14 days after CCI, (2) vehicle 14 days after CCI, (3) recombinant human albumin (rhAlb) 14 days after CCI, or (4) vehicle 14 days after sham surgery. Mice received a 7-day continuous pulse administration regimen of 150 μL / day (into the tail vein) of PPF1, recombinant human albumin, or vehicle control. All treatments began 14 days after CCI or sham surgery.

[0110] Figure 18 shows von Frey paw withdrawal thresholds at baseline and 14, 21, 28, 35, 42, and 49 days after CCI. At 14 days, a significant decrease was observed in all groups except the sham-operated group, indicating central sensitization in all CCI groups 2 weeks after injury. This was not reversed until 7 days (28 days) after cessation of PPF treatment, indicating that PPF does not provide brief analgesia in this model. Instead, PPF treatment produces a mechanistic effect not observed with vehicle or recombinant human albumin (rhAlbumin). This indicates that pain (which necessarily includes a central component) that was fully established before PPF treatment is significantly alleviated by PPF compared to vehicle control. ** P<0.01; *** P<0.001; **** P<0.0001 vs. vehicle control; ANOVA with Tukey's post-hoc test.

[0111] Figures 19 and 20 show hot plate latency values ​​at 35 days post-CCI (Figure 19) and 49 days post-CCI (Figure 20). Both sets of results demonstrate that mice treated with PPF had a long-lasting reduction in hot plate pain sensitivity, further supporting that PPF functions through a mechanistic effect, as opposed to simply providing an analgesic effect. **P<0.01; ANOVA with Tukey's post-hoc test.

[0112] 2. Model for Wound Healing A mouse model of diabetes (B6.BKS(D)-Lepr db / J) to investigate the role of PPF1 in wound healing The efficacy of PPF1 was evaluated. The backs of 6-week-old male B6.BKS(D)-Leprdb / J mice were shaved 1 day prior to treatment. On day 0, mice received two wounds on their backs. Mice received daily intravenous treatments of vehicle (150 μL) or PPF1 (150 μL) from day 0 (immediately after skin wounding) through day 6.

[0113] Skin injury was performed as follows: Mice were depilated using a depilatory cream the day before injury, and then the skin was gently washed with warm water. Mice were anesthetized using inhaled isoflurane, the surgical site was shaved, and the area was prepared with povidone-iodine ("Betadine") or chlorhexidine disinfectant (or similar surgical scrub) and 70% ethanol. A warm-water heat pad (or similar surgical product) was placed under the mouse. Two wound sites on the dorsal skin were marked with 5 mm diameter circles using a permanent marker. The dorsal skin was lifted using clean forceps and cut along the marked circles using fine surgical scissors. A 15 mm diameter silicone splint with a 6 mm diameter cut in the center was applied around the wound using Vetbond and nylon sutures. After skin injury, mice were weighed (initial weight) and placed in a clean cage with a heating pad underneath and softened food. The mice remained on the heating pad and were monitored until they were bright, alert, and reactive.

[0114] After surgery, wound healing was assessed daily until the sutures were removed. Buprenorphine was administered intraperitoneally immediately after surgery and approximately every 12 hours for a total of three doses. Meloxicam was administered intraperitoneally before surgery and 24 hours after surgery. Softened food and clean H2O recovery gel were placed on the bottom of the cage after surgery. Mice were weighed daily after surgery. If a mouse lost more than 1 gram of weight from its postoperative weight, it was given 500 μl of saline per day.

[0115] Mice were assessed daily for the amount of wound closure by measuring wound size with calipers. Mice were sacrificed on days 10 and 14. Mice were deeply anesthetized with avertin (250 mg / kg IP), followed by cardiac puncture to collect blood samples using a syringe prefilled with EDTA. The blood / EDTA was then injected into microcentrifuge tubes. The microcentrifuge tubes were kept on ice, and plasma was separated as quickly as possible by centrifugation at 1000 g (+4°C) for 15 minutes. Plasma from each mouse was aliquoted at 100 μL per vial, and the remainder was placed in a second vial and stored at -80°C.

[0116] Skin from each mouse was fixed in 4% paraformaldehyde, washed twice in PBS, and then embedded in paraffin. Tissues were sectioned or lysed and analyzed for inflammatory markers by standard histological and biochemical methods, including qRT-PCR, Western blot, ELISA, and immunohistochemistry.

[0117] Figure 21 shows the (B6.BKS(D)-Lepr db Figure 21 shows a histological comparison of untreated diabetic wounds (Figure 21A) or PPF1-treated diabetic wounds (Figure 21B) from a 1 / J diabetic mouse model. The black bar indicates wound thickness (epidermis and granulation layer). The arrow indicates the wound border. Mice treated with PPF1 had increased wound thickness as determined by wound thickness. Thus, PPF1 demonstrates improved wound healing.

[0118] Figure 22 shows the (B6.BKS(D)-Lepr dbFigure 22 shows a histological comparison of untreated diabetic wounds (Figure 22A) or PPF1-treated diabetic wounds (Figure 22B) from a 1 / J diabetic mouse model. Black bars indicate the granulation layer. Blue bars indicate the epidermal layer. Wounds treated with PPF1 exhibited a thicker epidermal layer than untreated wounds, but the granulation layer showed a trend toward a greater difference between PPF1-treated and untreated wounds (i.e., the granulation layer was thicker in PPF1-treated wounds than in untreated wounds).

[0119] Figures 23-26 show the results of a B6 ob / ob (B6.Cg-Lepob / J mice) diabetic mouse model evaluating the efficacy of PPF1 versus vehicle in diabetic wound healing. Nine-week-old male B6 OB / OB mice were used. The day before wounding, mice were weighed and fasted for 5 hours, and fasting blood glucose levels were determined from tail bleeds. Mice were equally divided into two different treatment groups based on body weight and blood glucose levels. To injure the mice, the mice were shaved and a depilatory cream (Nair™) was applied to the mice. Two wounds (5 mm diameter excisions) were made on the back, after which a silicone ring (12 mm outer circumference and 6 mm inner circumference) soaked in 70% alcohol was applied to the mouse. The silicone ring was attached to the open wound using Vectabond™. Four sutures were placed on each silicone ring to ensure that it remained attached to the wound throughout the entire course of the experiment. 30 μL of PPF1 and control were applied directly to the top of the wound, and the two wounds were sealed with a single sheet of Tegaderm™. Treatments were performed daily by injecting PPF1 and control inside the Tegaderm™ covering the wound. To image the wounds, the Tegaderm™ covering the wound was cut away and the wound was resealed with a new sheet of Tegaderm™. At sacrifice, the rings were removed and the wounds were dissected from the back for histological examination.

[0120] Wound healing was assessed daily by determining the amount of wound closure. Wound size was measured using a camera and a precision ruler for scale. Terminal tissue collection was performed on days 10 and 14. Tissues were sectioned or lysed and analyzed for markers of inflammation by standard histological methods, including immunohistochemistry, qRT-PCR, and H&E, as well as other specialized stains.

[0121] Figure 23 shows the general design of the experiment. Blood droplets indicate when blood was drawn to measure fasting blood glucose levels. Skin injury occurred on day 2, and intravenous (iv) administration occurred on days 1-7. Figure 24 shows the percentage of wounds still open at multiple time points after injury in the first study (Study 1). Mice were treated with either PPF1 (150 μL) or saline control for 7 days. After 10 days, the size of open wounds in mice treated with PPF1 was significantly reduced compared to saline controls (**p<0.006 by unpaired t-test).

[0122] Figure 25 shows the percentage of wounds still open at multiple time points after injury in a similar second study (Study 2). Mice were treated with either PPF1 (150 μL) or saline control for 7 days. After 8 days, the size of open wounds in mice treated with PPF1 was significantly reduced compared to saline control (**p<0.0018 by unpaired t-test).

[0123] Figure 26 shows the percentage of wounds still open 11 days after injury, combining data from Study 1 and Study 2. Mice treated with PPF1 show a statistically significant reduction in the percentage of wounds that remained open after 11 days (**p<0.006 by unpaired t-test). The difference between PPF1-treated and vehicle-treated mice on day 10 was also significant (**p<0.006 by unpaired t-test).

[0124] Figures 27 and 28 show the results of a study using PPF1 or vehicle administered topically to wounds in B6 ob / ob (B6.Cg-Lepob / J mice). Figure 27 shows the study paradigm of daily administration of 30 μL of PPF1 or control vehicle administered topically to wounds. Wounds were injured as described for Figure 23. Figure 28 shows the results of the topical study using the percentage of the initial wound area remaining 10 days after treatment. Figure 28 shows that PPF1 significantly reduced the percentage of open wounds remaining after 10 days compared to the control vehicle.

[0125] In at least some of the above-described embodiments, one or more elements used in an embodiment may be used in another embodiment, unless the substitution is technically infeasible. Those skilled in the art will appreciate that various other omissions, additions, and modifications may be made to the methods and structures described above without departing from the scope of the claimed subject matter. All such modifications and variations are intended to be included within the scope of the subject matter as defined by the appended claims.

[0126] Those skilled in the art will understand that terms used in this specification generally, and in the appended claims in particular (e.g., the body of the appended claims), are generally intended as "open" terms (e.g., the term "including" should be interpreted as meaning "including"). (The term "having" should be interpreted as "having at least," and the term "includes" should be interpreted as "including, but not limited to.") Those skilled in the art will further understand that where a specific number of introduced claim recitations is intended, such intention will be explicitly recited in the claim, and that in the absence of such recitation, no such intention exists. For example, the following appended claims may include the use of the introductory phrases "at least one" and "one or more" to introduce claim recitations as an aid to understanding. However, the use of such introductory phrases should not be interpreted as meaning that introducing a claim recitation with the indefinite article "a" or "an" limits any particular claim that includes such introduced claim recitation to embodiments containing only one such recitation (e.g., "a" and / or "an" should be interpreted to mean "at least one" or "one or more"). The same applies to the use of definite articles used to introduce claim recitations. Additionally, even when a specific number of introduced claim recitations is explicitly recited, those skilled in the art will recognize that such recitation should be interpreted to mean at least the recited number (e.g., the literal recitation "two recitations" means at least two recitations or more than two recitations, without any other modifier). Furthermore, when using a convention similar to "at least one of A, B, and C, etc.", such a configuration is generally intended in the sense that one skilled in the art would understand this convention (e.g., "a system comprising at least one of A, B, and C" includes, but is not limited to, systems comprising A only, B only, C only, both A and B, both A and C, both B and C, and / or both A, B, and C, etc.).When a convention similar to "at least one of A, B, or C, etc." is used, such a configuration is generally intended in the sense that one of ordinary skill in the art would understand this convention (e.g., "a system comprising at least one of A, B, or C" includes, but is not limited to, systems comprising A only, B only, C only, both A and B, both A and C, both B and C, and / or both A, B, and C, etc.). Those of ordinary skill in the art will further understand that virtually any disjunctive word and / or disjunctive phrase presenting two or more alternative terms, whether in the specification, claims, or drawings, should be understood to contemplate the possibility of including one of the terms, either of the terms, or both terms. For example, the phrase "A or B" is understood to include the possibilities of "A" or "B" or "A and B."

[0127] Additionally, when features or aspects of the disclosure are described in Markush format, those skilled in the art will recognize that the disclosure is further described with respect to any individual member or subgroup member of the Markush group.

[0128] As will be understood by those skilled in the art, for any and all purposes, including as set forth in the specification, all ranges disclosed herein further encompass any and all possible subranges and combinations of these subranges. Any recited range can be readily recognized as being sufficiently descriptive to allow that same range to be divided into at least equal halves, thirds, quarters, fifths, tenths, etc. As a non-limiting example, each range described herein can be readily divided into a lower third, middle third, upper third, etc. As will be further understood by those skilled in the art, all terms such as "up to," "at least," "greater than," "less than," etc., are inclusive of the recited number and are intended to be used in conjunction with the preceding paragraphs. "A range refers to a range that can be divided into subranges, such as 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 51, 52, 53, 54, 55, 56, 57, 58, 59, 60, 61, 62, 63, 64, 65, 66, 67, 68, 69, 70, 71, 72, 73, 74, 75, 76, 77, 78, 79, 80, 81, 82, 83, 84, 85, 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, 99, 100, 101, 102, 103, 104, 105, 106, 107, 108, 110, 111, 112, 113, 114, 115, 116, 117, 118, 119, 120, 121,

[0129] Although the foregoing invention has been described in some detail by way of illustration and example for purposes of clarity of understanding, it will be readily apparent to those skilled in the art in light of the teachings of this invention that certain changes and modifications may be made thereto without departing from the spirit or scope of the appended claims.

[0130] Accordingly, the foregoing merely illustrates the essence of the present invention. It is clear that those skilled in the art will be able to devise various configurations that embody the essence of the present invention and are within the spirit and scope of the present invention, although not explicitly described or shown herein. Furthermore, all examples and conditional language set forth herein are intended essentially to aid the reader in understanding the essence of the present invention and the concepts provided by the inventors to advance the art, and should not be construed as limiting the scope of the present invention to the specifically set forth examples and conditions. Furthermore, all statements herein that describe the essence, aspects, and embodiments of the present invention, as well as specific examples of the present invention, are intended to encompass both structural and functional equivalents of the present invention. Additionally, such equivalents are intended to include both currently known equivalents and equivalents developed in the future, i.e., all elements developed that perform the same function, regardless of structure. Furthermore, the descriptions disclosed herein are not intended as publications only, regardless of whether such disclosure is explicitly recited in the claims.

[0131] Accordingly, the scope of the present invention is not intended to be limited to the exemplary embodiments shown and described herein. Rather, the scope and spirit of the present invention is embodied by the appended claims. With respect to claims, 35 U.S.C. 112(f) or U.S.C. Section 112(6) does not refer to "means for" or "step for." It is expressly provided that a limitation in a claim will only be invoked if strict language is recited at the beginning of such limitation in the claim, and if such strict language is not used in a claim limitation, 35 U.S.C. 112(f) or 35 U.S.C. 112(6) will not be invoked. stomach.

[0132] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority under 35 U.S.C. §119(e) to the filing dates of U.S. Provisional Patent Application No. 62 / 751,448, filed October 26, 2018, and U.S. Provisional Patent Application No. 62 / 842,403, filed May 2, 2019, the disclosures of which are incorporated herein by reference.

Claims

1. 1. A composition for use in ameliorating or alleviating peripheral pain associated with post-operative recovery in a subject, comprising: containing an effective amount of a plasma protein fraction comprising albumin in the range of 83% to 95% of total protein, alpha globulins and beta globulins in the range of 17% to 5%, and gamma globulins not exceeding 1%; The composition, wherein the peripheral pain is chronic pain.

2. 1. A composition for use in ameliorating or alleviating central pain associated with post-operative recovery in a subject, comprising: containing an effective amount of a plasma protein fraction comprising albumin in the range of 83% to 95% of total protein, alpha globulins and beta globulins in the range of 17% to 5%, and gamma globulins not exceeding 1%; The composition, wherein the central pain is chronic pain.

3. 3. The composition according to claim 1, wherein the plasma protein fraction is a commercially available plasma protein fraction.

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

5. 5. The composition of claim 4, wherein the pulse dosing regimen comprises administration on 3 to 14 consecutive days.

Citation Information

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