Human dairy products useful in pre- and post-operative care
A high-energy/high-fat human milk composition addresses the nutritional needs of infants post-surgery by supplementing human milk with balanced nutrients, improving clinical outcomes and reducing complications.
Patent Information
- Application Number
- JP2023164166
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2015-12-30
- Filing Date
- 2023-09-27
- Publication Date
- 2026-01-30
- Estimated Expiration
- 2036-12-29
AI Technical Summary
Infants undergoing surgery often require nutritional solutions that meet their increased caloric needs without increasing fluid volume or osmotic load, as unfortified human milk may not suffice, leading to complications like intestinal dysfunction and metabolic disorders.
A high-energy/high-fat human milk composition is developed to supplement human donor milk or a mother's own milk, providing a balanced mix of protein, fat, and carbohydrates to meet nutritional requirements without increasing overall volume, thereby reducing the need for total parenteral nutrition.
The composition improves short- and long-term clinical outcomes by enhancing growth rate, wound healing, and reducing hospital stay, while minimizing complications such as intestinal dysfunction and metabolic disorders.
Smart Images

Figure 0007809093000005 
Figure 0007809093000006 
Figure 0007809093000007
Abstract
Description
[Technical Field]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to and the benefit of U.S. Provisional Application No. 62 / 273,243, filed December 30, 2015, the entire contents of which are incorporated herein by reference.
[0002] The present disclosure relates to human milk compositions and methods of making and using the same. Specifically, the disclosure features methods of using human milk compositions for feeding a subject before and / or after a surgery or medical procedure, which are useful for promoting recovery and reducing the length of time the subject must be hospitalized. Accordingly, methods are also provided for promoting the recovery of a subject, particularly an infant, after surgery by feeding the subject one or more of the compositions described herein. [Background technology]
[0003] Human milk is an ideal source of nutrition for premature infants, offering benefits in host defense, gastrointestinal maturation, infection rates, neurodevelopmental outcomes, and long-term cardiovascular and metabolic diseases (Schanler, RJ, Outcomes of human milk-fed premature infants. Semin Perinatol, 2011. 35(1): p. 29-33). Diets based exclusively on human milk (HM) significantly reduce the rate of necrotizing enterocolitis (NEC), sepsis, number of days of parenteral nutrition, and mortality (Sullivan, S., et al., An exclusively human milk-based diet is associated with a lower rate of necrotizing enterocolitis than a diet of human milk and bovine milk-based products. J Pediatr, 2010. 156(4): pp. 562-567. e1; Cristofalo, EA, et al., Randomized trial of exclusive human milk versus preterm formula diets in extremely premature infants. The Journal of Pediatrics, 2013(163): pp. 1592-1595; Abrams, SA, et al., Greater Mortality and Morbidity in Extremely Preterm Infants Fed a Diet Containing Cow Milk Protein Products. Breastfeeding Medicine, 2014.9(6):p.281-285).
[0004] Medical nutrition therapy is an important consideration for patient populations at risk for malnutrition. This is particularly important for infants undergoing surgery, as they are at increased risk for failure to thrive, developmental delay, necrotizing enterocolitis, poor wound healing, and delayed sepsis, which risk increases with earlier gestational age and lower birth weight, as well as for infants who require surgery shortly after birth. Human milk is generally the food of choice for all infants, regardless of gestational age at birth, due to its nutritional composition and immunological benefits.
[0005] Breast milk may also be the nutrition of choice for infants before and after surgery due to its ease of digestion, nutritional composition, immunological components, and anti-infective benefits. (See AAP Committee on Nutrition, AAP Section on Breastfeeding, AAP Committee on Fetus and Newborn. "Donor Human Milk for the High-Risk Infant: Preparation, Safety, and Usage Options in the United States." Pediatrics. 2017;139(1):e20163440.) Furthermore, infants undergoing surgery often cannot tolerate breastfeeding regimens due to intolerance to artificial infant formula, leading to full or partial supplementation with prolonged total parenteral nutrition (TPN), increasing the risk of metabolic disorders and TPN-related complications.
[0006] Infants who require surgery shortly after birth include those with congenital birth defects affecting major organs such as the heart (e.g., hypoplastic left heart syndrome) and intestines (e.g., gastroschisis and omphalocele), as well as those who develop conditions requiring surgery after birth, including those who develop necrotizing enterocolitis (NEC).
[0007] Even when infants are able to tolerate breastfeeding during, around, and after surgery, unfortified human milk does not meet the nutritional needs of many of these infants, who require supplementation with, for example, total parenteral nutrition (TPN). The use of TPN and incomplete enteral breastfeeding can lead to intestinal brush border dysfunction, dysbiosis (the overgrowth of harmful bacteria in the intestine), metabolic disorders, and TPN-associated liver disease, which can impair postoperative recovery and affect long-term development. This is of particular concern when the infant's condition requires fluid restriction, as is often the case in infants with congenital heart disease. Recent data have shown that the energy content of human milk is often below the generally accepted value of 20 kcal / oz (Wojcik, KY, et al., Macronutrient analysis of a nationwide sample of donor breast milk. Journal of the American Dietetic Association, 2009. 109(1): pp. 137-140; Vieira, AA, et al., Analysis of the influence of pasteurization, freezing / thawing, and offtake processes on human milk's macronutrient concentrations. Early Human Development, 2011. 87(8): pp. 577-580). As a result, the expected energy and nutrient content may not be achievable in perioperative infants, especially those with congenital heart disease, whose total fluid intake is limited. Due to the increased energy and macronutrient requirements of this population compared with normal infants, the ability to provide extra calories is an important step toward therapeutic intervention in the nutritional management of perioperative infants.
[0008] Therefore, there is a need to prepare nutritional solutions to assist infants recovering from surgery, especially those who must maintain a fluid-restricted diet. Summary of the Invention
[0009] The present invention provides a high-energy / high-fat human milk composition that can be administered orally or enterally to increase the caloric content of human donor milk or the mother's own milk without substantially increasing the overall volume or osmotic load necessary to meet the nutritional requirements of these infants. The opportunity for an exclusive human milk diet in infants requiring surgery thereby improves short- and long-term clinical outcomes, including improved growth rate and wound healing, reduced length of stay (LOS), and improved neurodevelopment.
[0010] The present disclosure features human milk compositions and methods of making and using such compositions. In some embodiments, the human milk composition is a human milk fortifier. In some embodiments, the human milk composition includes milk and a human milk fortifier. In some embodiments, the milk is human breast milk. In other embodiments, the milk is pooled human milk. In some embodiments, the milk is a prepared product. In other embodiments, the milk is non-human. In some embodiments, the human milk composition includes infant formula.
[0011] The present invention provides a human milk composition comprising about 19 mg / mL to about 26 mg / mL of protein, about 49 mg / mL to about 64 mg / mL of fat, and about 81 mg / mL to about 97 mg / mL of carbohydrates. In another embodiment, the human milk composition comprises about 24 mg / mL to about 26 mg / mL of protein, about 60 mg / mL to about 64 mg / mL of fat, and about 83 mg / mL to about 97 mg / mL of carbohydrates. In another embodiment, the human milk composition comprises about 19 mg / mL to about 20 mg / mL of protein, about 49 mg / mL to about 51 mg / mL of fat, and about 81 mg / mL to about 89 mg / mL of carbohydrates. In another embodiment, the human milk composition comprises about 21 mg / mL to about 23 mg / mL of protein, about 54 mg / mL to about 57 mg / mL of fat, and about 82 mg / mL to about 89 mg / mL of carbohydrates.
[0012] In one embodiment, the method provides for administering to a subject a human milk composition comprising about 19 mg / mL to about 26 mg / mL of protein, about 49 mg / mL to about 64 mg / mL of fat, and about 81 mg / mL to about 97 mg / mL of carbohydrate. In another embodiment, the method provides for administering to a subject a human milk composition comprising about 24 mg / mL to about 26 mg / mL of protein, about 60 mg / mL to about 64 mg / mL of fat, and about 83 mg / mL to about 97 mg / mL of carbohydrate. In another embodiment, the method provides for administering to a subject a human milk composition comprising about 19 mg / mL to about 20 mg / mL of protein, about 49 mg / mL to about 51 mg / mL of fat, and about 81 mg / mL to about 89 mg / mL of carbohydrate. In another embodiment, the method provides for administering to a subject a human milk composition comprising about 21 mg / mL to about 23 mg / mL of protein, about 54 mg / mL to about 57 mg / mL of fat, and about 82 mg / mL to about 89 mg / mL of carbohydrate.
[0013] In one embodiment, the human milk composition provides about 67 to about 139 kcal / kg / day. In another embodiment, the human milk composition provides about 80 to about 130 mL / kg / day. In another embodiment, the human milk composition provides about 90 to about 100 mL / kg / day.
[0014] In one embodiment, the human milk composition further comprises one or more members selected from the group consisting of calcium, chloride, copper, iron, magnesium, manganese, phosphorus, potassium, selenium, sodium, and zinc, hi another embodiment, the human milk composition further comprises human milk oligosaccharides.
[0015] In one embodiment, the human milk composition is administered to the subject orally. In another embodiment, the human milk composition is administered to the subject enterally.
[0016] In one embodiment, the subject is a human child or infant. In certain embodiments, the child is about 18 years old to about 2 years old. In other embodiments, the subject is a child about 2 years old or younger. In another embodiment, the subject is 7 days old or younger. In yet other embodiments, the subject is a premature infant. In some embodiments, the subject is a human adult. In one embodiment, the human adult is 18 years old or older.
[0017] In one aspect, the method includes providing nutrition to a subject undergoing or having undergone surgery. In a further aspect, the method includes administering to the subject a human milk composition comprising a fortifier composition. In one embodiment, the human milk composition provides about 70% of complete nutrition, and the fortifier composition provides about 30% of complete nutrition. In another embodiment, the human milk composition provides about 60% of complete nutrition, and the fortifier composition provides about 40% of complete nutrition. In another embodiment, the human milk composition provides about 50% of complete nutrition, and the fortifier composition provides about 50% of complete nutrition.
[0018] Human milk is defined as expressed breast milk or donor milk and its derivatives, human milk-based fortifiers, and human milk calorie fortifiers. Standard human milk formulations include Prolact-RTF™, PROLACT PLUS™, PROLACT+4®, PROLACT+6®, PROLACT+8®, and / or PROLACT+10®, which are produced from human milk and contain varying concentrations of nutritional components.
[0019] The present disclosure features standardized human milk formulations or fortifiers produced from human milk. Methods of making and using such compositions are also described herein. In some embodiments, the standardized human milk formulations are supplemented with vitamins and / or minerals. In some embodiments, the standardized milk formulations are given orally to subjects undergoing or who have undergone surgery. Methods for producing these compositions are designed to optimize the amount of nutrients and calories in the compositions.
[0020] In some embodiments, the human milk composition further comprises one or more members selected from the group consisting of calcium, chloride, copper, iron, magnesium, manganese, phosphorus, potassium, selenium, sodium, and zinc.
[0021] In one aspect, the disclosure features a human milk fortifier composition comprising about 35 mg / mL to about 45 mg / mL of a human protein component and about 80 mg / mL to about 100 mg / mL of a human fat component. In one aspect, the disclosure features a human milk fortifier composition comprising about 35 mg / mL to about 42 mg / mL of a human protein component and about 84 mg / mL to about 95 mg / mL of a human fat component. In another aspect, the disclosure features a human milk fortifier composition comprising about 37 mg / mL to about 42 mg / mL of a human protein component and about 86 mg / mL to about 94 mg / mL of a human fat component. In another aspect, the disclosure features a human milk fortifier composition comprising about 39.2 mg / mL of a human protein component and about 94.5 mg / mL of a human fat component. The carbohydrate component may include additional lactose. In some embodiments, the composition further comprises one or more members selected from the group consisting of calcium, chloride, copper, iron, magnesium, manganese, phosphorus, potassium, selenium, sodium, and zinc.
[0022] In one aspect, a method for obtaining a human milk composition is provided. In some embodiments, the method includes (a) genetically screening human milk for one or more viruses, (b) optionally filtering the milk, (c) optionally heat-treating the milk, for example, at about 63°C or higher for about 30 minutes, (d) separating the milk into a cream and a supernatant, (e) adding a portion of the cream to the supernatant, and (f) pasteurizing or otherwise sterilizing the composition.
[0023] In some embodiments, the genetic screening in step (a) is polymerase chain reaction and / or includes screening for one or more viruses, such as human immunodeficiency virus type 1 (HIV-1), hepatitis B virus (HBV), and / or hepatitis C virus (HCV).
[0024] In some embodiments, the milk is optionally filtered through an about 200 micron screen in step (b).
[0025] In some embodiments, the method further comprises passing the cream, e.g., about 30-70% fat in the cream, through a separator after step (d). In one embodiment, the method further comprises filtering the supernatant after step (d), e.g., filtering water from the supernatant. In some embodiments, after filtering the supernatant after step (d), the filter used for filtering is washed to obtain a post-wash solution. In a further embodiment, the post-wash solution is added to the supernatant.
[0026] In some embodiments, the method further comprises performing a mineral analysis of a portion of the composition obtained after step (e). In one embodiment, the method also comprises adding one or more minerals selected from the group consisting of calcium, chloride, copper, iron, magnesium, manganese, phosphorus, potassium, selenium, sodium, and zinc to the composition obtained after step (e). Adding the one or more minerals, in some embodiments, comprises heating the composition.
[0027] In certain embodiments, the method also includes cooling the composition after step (f), performing biological testing of a portion of the composition after step (f), and / or performing nutritional testing of a portion of the composition after step (f).
[0028] In some embodiments, the human milk in step (a) is pooled human milk. Thus, in some embodiments, the methods provided herein are performed on a large amount of starting material, e.g., human milk, e.g., pooled human milk. In some embodiments, this amount can range from about 75 liters / lot to about 10,000 liters / lot of starting material (e.g., about 2,500 liters / lot, or about 2,700 liters / lot, or about 3,000 liters / lot, or about 5,000 liters / lot, or about 7,000 liters / lot, or about 7,500 liters / lot, or about 10,000 liters / lot).
[0029] In another aspect, the disclosure features a method for obtaining a human milk composition, the method including (a) genetically screening human milk for one or more viruses, (b) filtering the milk, (c) adding cream, and (d) pasteurizing.
[0030] In one embodiment, the genetic screening in step (a) is polymerase chain reaction. In some embodiments, the genetic screening includes screening for one or more viruses, such as HIV-1, HBV, and / or HCV.
[0031] In one embodiment, the milk is optionally filtered through an approximately 200 micron screen in step (b). In some embodiments, the method further comprises ultrafiltering the whole milk through a filter after step (b). In some embodiments, the filter used during ultrafiltration is post-washed. In some embodiments, the filter used during ultrafiltration is post-washed with permeate. In some embodiments, the filter used during ultrafiltration is post-washed with water.
[0032] In some embodiments, the composition is cooled after step (d). In some embodiments, biological and / or nutritional testing of the composition is performed after step (d).
[0033] In some embodiments, the human milk in step (a) is pooled human milk. Thus, in some embodiments, the methods featured herein are performed on large quantities of starting material, e.g., human milk, e.g., pooled human milk. In some embodiments, the quantity ranges from about 75 to 10,000 liters / lot of starting material. In certain embodiments, the quantity is about 2,000 liters / lot. In other embodiments, the quantity is about 2,500 liters / lot. In other embodiments, the quantity is about 2,700 liters / lot. In other embodiments, the quantity is about 3,000 liters / lot. In other embodiments, the quantity is about 4,000 liters / lot. In yet other embodiments, the quantity is about 5,000 liters / lot. In yet other embodiments, the quantity is about 7,000 liters / lot. In yet other embodiments, the quantity is about 7,500 liters / lot. In yet other embodiments, the quantity is about 10,000 liters / lot.
[0034] In some embodiments, the method includes adding one or more minerals selected from the group consisting of calcium, chloride, copper, iron, magnesium, manganese, phosphorus, potassium, selenium, sodium, and zinc to the composition obtained after step (c).
[0035] In one aspect, a method is provided for improving one or more outcomes of a subject recovering from surgery. In some embodiments, the one or more improved clinical outcomes include short-term and / or long-term benefits. In certain embodiments, the one or more improved clinical outcomes are selected from improved neurodevelopmental outcomes, improved growth rate including weight gain rate, incremental linear growth, incremental head circumference growth rate, reduced length of hospital stay, and / or reduced number of days of parenteral nutrition. In some embodiments, the one or more improved clinical outcomes are selected from reduced incidence and / or severity of feeding intolerance, reduced incidence and / or severity of sepsis, reduced incidence and / or severity of necrotizing enterocolitis (NEC), reduced incidence and / or severity of wound infection and / or wound dehiscence. Thus, in one aspect, a method is provided for improving the clinical outcomes of a subject, particularly an infant, recovering from surgery. [Brief explanation of the drawings]
[0036] [Figure 1] 1 is a flow chart illustrating a method for producing a fortifier. [Figure 2] 1 is a flow chart of an exemplary post-operative feeding protocol. [Figure 3] 1 is a flowchart of the feeding intolerance algorithm. [Figure 4] 1 is a flowchart of a parenteral nutrition algorithm. [Figure 5] 1 is a chart of a weaning schedule. DETAILED DESCRIPTION OF THE INVENTION
[0037] The present disclosure features human milk compositions, such as human milk fortifiers, human milk fortifiers mixed with a mother's own milk, and standardized prepared human milk compositions, as well as methods of making and using such compositions.
[0038] The present disclosure also features standardized human milk formulations produced from human milk. Methods of making and using such compositions are also disclosed. These standardized human milk formulations can be used to provide subjects undergoing or who have undergone surgery, with or without mixing them with other fortifiers or milk, such as the mother's own milk. Human milk formulations can include a variety of calorie contents; for example, the human milk compositions described herein can provide from about 67 to about 139 kcal / kg / day, e.g., from about 90 to about 100 kcal / kg / day.
[0039] The compositions of the present disclosure are produced from human donor milk, e.g., pooled milk, and undergo rigorous genetic screening, processing (e.g., to concentrate nutrients in the fortifier composition and / or reduce bioburden), and pasteurization. The milk may be supplemented with various minerals and / or vitamins. Accordingly, the present disclosure also features methods of obtaining and processing milk from human donors.
[0040] The methods of the present disclosure can be used to process large amounts of donor milk starting material, for example, about 75-7,500 liters per lot. In certain embodiments, the amount is about 2,000 liters per lot. In other embodiments, the amount is about 2,500 liters per lot. In other embodiments, the amount is about 2,700 liters per lot. In other embodiments, the amount is about 3,000 liters per lot. In other embodiments, the amount is about 4,000 liters per lot. In yet other embodiments, the amount is about 5,000 liters per lot. In yet other embodiments, the amount is about 7,000 liters per lot. In yet other embodiments, the amount is about 7,500 liters per lot. In yet other embodiments, the amount is about 10,000 liters per lot.
[0041] As used herein, the term "adulterant" refers to any non-human milk found in human milk. The addition of an adulterant to human milk is referred to as "adulteration." Examples of adulterants include milk from non-human species (e.g., cow's milk, goat's milk, etc.), plant-derived dairy-like products (e.g., soy milk), and infant formula.
[0042] As used herein, the term "contaminant" refers to the inclusion of an undesirable substance in human milk. While an adulterant is a "contaminant," generally, the use of the term "contaminant" as used herein refers to drugs, environmental pollutants, and / or other substances such as bacteria and viruses. The inclusion of a contaminant in human milk is referred to as "contamination." The inclusion of a contaminant can be due to any reason, including, but not limited to, accident, negligence, or intent.
[0043] As used herein, the terms "surgery" and "surgical procedure" and "surgical manipulation" and "surgery" or "surgical care" or "surgical procedure" are used interchangeably herein and refer to a medical procedure using surgical manuals and instrumental techniques, including any invasive (involving cutting) or non-invasive (i.e., accessing internal organs through an opening in the body) procedure performed on the human body to investigate and / or treat a pathological condition such as a disease or injury, to help improve the function or appearance of the body, or to repair an area of unwanted rupture.
[0044] As used herein, the terms "donor" and "individual" are used interchangeably and refer to a woman who provides or donates a quantity of her milk, whether or not she is compensated, e.g., financially, for the milk.
[0045] As used herein, the term "full term" or "term infant" refers to an infant born between 37 and 42 weeks of gestation.
[0046] As used herein, the terms "preterm," "premature," "premature," or "premature infant" are used interchangeably and refer to infants born before 37 weeks.
[0047] As used herein, the term "enteral nutrition" refers to the delivery of a nutritionally complete supply containing protein, carbohydrates, fat, water, minerals, and vitamins directly to the stomach, duodenum, or jejunum. Typically, in infants who are too premature to be bottle-fed or who otherwise cannot effectively feed from a bottle, short-term delivery of enteral nutrition (mechanical or functional) is achieved by placement of a nasogastric (NG) or nasojejunal (NJ) tube. When oral feeding is delayed for long periods of time, more permanent feeding tubes may be placed into the stomach as a gastrostomy tube or directly into the small intestine as a jejunostomy tube.
[0048] As used herein, the terms "human milk," "breast milk," "donor milk," and "mammary fluid" are used interchangeably and refer to milk from a human.
[0049] As used herein, the term "child" or "children" refers to one or more human subjects under the age of 18.
[0050] As used herein, the term "infant" refers to a child under the age of 1 year.
[0051] As used herein, the term "adult" refers to a human being 18 years of age or older.
[0052] As used herein, the term "parenteral nutrition" refers to intravenous feeding of a subject, bypassing the normal eating and digestive processes. Compositions for parenteral nutrition contain nutrients such as glucose, amino acids, vitamins, and dietary minerals. Fats are administered separately as lipid emulsions through a central vein or peripheral vein. Total parenteral nutrition (TPN) can refer to a situation in which a patient receives the majority of nutrients via a parenteral route. However, the term TPN is often used in the art and herein synonymously with the nutrient solution used for parenteral nutrition, regardless of the proportion of nutrients delivered via this route. Parenteral nutrition may be administered through peripheral venous access in the limbs or through a line placed in a large central vein.
[0053] As used herein, the term "whole milk" refers to human milk from which the fat has not been removed.
[0054] As used herein, the term "bioburden" refers to microbiological contaminants and pathogens (generally living), such as viruses, bacteria, molds, fungi, etc., that may be present in milk.
[0055] As used herein, the term "congenital heart defect" or CHD refers to a problem with the structure of the heart. Congenital heart defects present at birth are the most common type of birth defect. These defects can involve the walls of the heart, the heart's valves, and the arteries and veins near the heart. Heart defects can interfere with normal blood flow through the heart and its compartments to the heart, body, and brain. Blood flow can slow down, flow in the wrong direction or to the wrong place, or be completely blocked.
[0056] The terms "single ventricle physiology," "single defect," or "single ventricle defect" refer to a variety of cardiac defects in which only one of the heart's two chambers is present or functioning properly. As a result of having only one functioning ventricle, infants with single ventricle defects have a "Y"-shaped circulation, in which blood flows from the heart to both the lungs and the body. Furthermore, the working ventricle can be either the left or right ventricle. Therefore, in certain situations, it can be difficult to distinguish which pumping chamber is working properly, making single ventricle physiology the most complex cardiac defect.
[0057] The term "necrotizing enterocolitis" or "NEC" refers to a common and serious intestinal disease in premature infants. It also occurs with increased frequency in some full-term infants who require surgery, for example, for severe cardiac anomalies. NEC occurs when tissue in the small or large intestine becomes damaged or begins to die, possibly due to causes such as too little oxygen or blood flow to the intestine at birth, an underdeveloped intestine, damage to the intestinal lining, excessive growth of harmful bacteria in the intestine (dysbiosis), and artificial feeding. Once damaged, the intestine cannot retain waste products, which can lead to leakage of bacteria and other waste products into the infant's bloodstream or abdominal cavity and possible subsequent infections.
[0058] The term "sepsis" refers to a potentially life-threatening complication of infection. Sepsis occurs when chemicals released into the bloodstream to fight infection trigger an inflammatory response throughout the body. This inflammation can damage multiple organ systems and trigger a cascade of changes that cause their failure.
[0059] Any human milk product designated as a "mixed human milk composition" or "mixed composition" or "mixed formulation" or "mixed" refers to a composition in which a fortifier is mixed with a separate milk formulation for use in feeding an infant. In some embodiments, the fortifiers described herein may be mixed with an infant's breast milk, donor milk, a standardized prepared human milk formulation, or other human or non-human milk or infant formula. Thus, a "mixed composition" is a prepared composition.
[0060] As used herein, the term "formulated," when used to describe a human milk formulation / composition, refers to milk in a form suitable for feeding to an infant without further dilution, concentration, or mixing (i.e., not a fortifier). In some embodiments, the formulated composition is made by mixing a fortifier with pasteurized donor breast milk, a mother's own milk, or other standardized pasteurized breast milk formulation. In some embodiments, the formulated composition is formulated directly from pooled human milk donations and provided to an infant in a form ready to feed without additional mixing. Such formulated formulations derived directly from pooled human milk donations are also referred to as "standardized human milk formulations." These formulations are "standardized" because they contain specific (i.e., standardized) levels of components (i.e., fat, protein, and carbohydrates). Thus, as used herein, a "standardized high-fat human milk formulation" or a "high-fat standardized human milk formulation" is a formulated formulation produced directly from pooled human milk donations. "Prepared high-fat formulas" are either made from mixing a high-fat fortifier with prepared milk (breast milk, donor milk, or other standardized milk formulas) or are made directly from human milk donations.
[0061] As used herein, "fortifier" means any human milk composition that is added to another milk formulation (human or other) to result in a ready-to-use formula.
[0062] As used herein, the term "pasteurization" refers to any method used to reduce bioburden or otherwise sterilize human milk for human consumption. Methods of pasteurization include, but are in no way limited to, the use of high temperature (HTST or "flash" pasteurization) for short periods of time, and ultra-high temperature (UHT) for very short periods of time. These methods can optionally be combined with homogenization and / or high pressure treatment of the milk.
[0063] Nutritional requirements for subjects preparing for and recovering from surgery Some infants require surgery immediately after birth. After surgery is completed, patients are typically transferred directly from the operating room to a neonatal intensive care unit and closely monitored. Once the patient is deemed to have recovered from anesthesia, they may be transferred to a surgical ward or other intensive care unit elsewhere in the hospital. During the postoperative period, the patient's general function and the outcome of the procedure are assessed, and the surgical site is checked for signs of bleeding, wound dehiscence, or infection. The likelihood of a positive postoperative recovery is related to nutritional and immune health both preoperatively and postoperatively. Indeed, given the stress on the body and the energy required for recovery, infants requiring surgery typically require more calories than infants without surgical procedures to maintain basal metabolic levels, maintain and / or increase growth, and heal from surgery. However, milk expressed by the mothers of infants born after 37 weeks of gestation generally does not meet this increased caloric need, as its biological function is to nourish a healthy, full-term infant capable of withstanding full-calorie feeding.
[0064] The subjects described herein include adults, children, and / or infants who have undergone or will undergo surgery. Infants include full-term and premature infants. While the methods and protocols described herein are performed on infants 7 days of age or younger, those skilled in the art will understand that the compositions and methods are suitable for older children, adults, and / or premature infants. Those skilled in the art will be able to readily adapt the disclosures herein to meet the nutritional requirements of such older children and adults.
[0065] It is important that the nutritional content of a daily feeding for infants requiring or recovering from surgery meets acceptable levels of key components, including total calories and protein, within a volume they can tolerate. In this regard, the nutritional situation of infants requiring or recovering from surgery is similar to that of premature infants. However, the caloric content of human milk provided to infants is rarely measured but is assumed to be 20 calories per ounce. Traditional human milk fortifiers attempt to increase calorie content, in part, by increasing protein levels. However, while this strategy is appropriate for premature infants, it may not be appropriate for full-term infants requiring fluid-restricted surgery, who may not require as much protein per calorie as healthy full-term infants.
[0066] The human milk compositions described herein provide a solution to this problem and can be used to supplement human milk to increase the caloric content to a desired level without providing excess protein and without increasing, or even decreasing, the amount fed to the infant. This is particularly useful when increased calorie intake, rather than increased protein content, is all that is needed. Similarly, provided herein are compositions that are standardized high-calorie human milk products containing increased caloric content in similar or reduced amounts compared to donor milk or the mother's own milk that can be used without fortifiers. The compositions of the present invention solve this problem by increasing calories without oversupplying protein, thus providing a more cost-effective solution to the problem while also avoiding the possible liver and / or kidney dysfunction associated with excessive protein consumption.
[0067] The present disclosure features human milk compositions and methods of making and using such compositions to provide fluid to subjects undergoing or who have undergone surgery, and to subjects who are fluid-restricted due to an underlying medical condition. The specific human milk compositions herein provide a unique balance of protein, fat, and carbohydrates so that useful calories can be delivered without the need for large amounts of fluid. The human milk compositions can be used to reduce or eliminate the need for TPN.
[0068] Human milk composition The human milk fortifier compositions described herein are produced from human whole milk. The compositions featured herein contain varying amounts of nutrients, such as protein, carbohydrates, fat, vitamins, and minerals, as well as other milk components. Standardized human milk formulations (including donor milk or the mother's own milk) can be supplemented with vitamins and / or minerals, if desired, and can be fed orally or enterally to subjects undergoing or who have undergone surgery. The methods for producing these compositions are designed to optimize the amount of nutrients and calories in the compositions. Human Milk Fortifier
[0069] High-energy / high-fat human milk fortifiers as noted herein can be mixed with human milk or other standardized human milk formulations to produce fortified human milk formulations suitable for administration to infants requiring or recovering from surgery. The human milk fortifiers described herein are made according to Table 1. [Table 1]
[0070] In some aspects of the invention, the fortifiers described in Table 1 are mixed with human milk (the infant's mother's own milk, donor milk, or a standardized human milk composition, e.g., Prolact-RTF™), cow's milk, or infant formula. However, the fortifiers are preferably mixed with whole human milk (e.g., breast milk, donor milk, or Prolact-RTF™). In some embodiments, the human milk fortifiers described herein are mixed with human milk in a 50:50 ratio to obtain a mixture containing the components listed in Table 2 below. In some embodiments, the human milk fortifiers described herein are mixed with human milk in a 70:30 ratio to obtain a mixture containing the components listed in Table 3 below. In some embodiments, the human milk fortifiers described herein are mixed with human milk in a 60:40 ratio to obtain a mixture containing the components listed in Table 4 below. In some embodiments, the human milk fortifiers are mixed with cow's milk. In some embodiments, a human milk fortifier described herein is mixed with cow's milk in a 50:50 ratio to obtain a mixture containing the components listed in Table 2 below. In some embodiments, a human milk fortifier described herein is mixed with cow's milk in a 70:30 ratio to obtain a mixture containing the components listed in Table 3 below. In some embodiments, a human milk fortifier described herein is mixed with human milk in a 60:40 ratio to obtain a mixture containing the components listed in Table 4 below. In some embodiments, a human milk fortifier is mixed with infant formula. In some embodiments, a human milk fortifier described herein is mixed with infant formula in a 50:50 ratio to obtain a mixture containing the components listed in Table 2 below. In some embodiments, a human milk fortifier described herein is mixed with infant formula in a 70:30 ratio to obtain a mixture containing the components listed in Table 3 below. In some embodiments, the human milk fortifier described herein is mixed with human milk in a 60:40 ratio to obtain a mixture containing the components listed in Table 4 below. Standardized Human Milk Preparation
[0071] The standardized human milk formulas featured herein are used to reduce or eliminate the need for TPN in subjects undergoing or having undergone surgery. These standardized formulas contain various nutritional components for the growth and development of the subject.
[0072] Exemplary standardized human milk compositions are found in Tables 2, 3, and 4. These standardized human milk compositions can be made directly from donor milk and supplied in ready-to-eat formulas, or can be made by mixing appropriate amounts of the high-fat human milk fortifiers described herein with donor milk, a mother's own milk, and other ready-to-eat standardized feeding formulas of human milk or non-human milk, including cow's milk and infant formula. [Table 2] [Table 3] [Table 4]
[0073] Specific components of the composition of interest One component of milk compositions of interest herein is protein. In the body, protein is required for growth, enzyme and hormone synthesis, and replacement of protein lost through the skin, urine, and feces. These metabolic processes determine the need for both the total amount of protein and the relative amounts of specific amino acids in milk. The adequacy of the amount and type of protein in milk for a subject can be determined by measuring growth, nitrogen absorption and retention, plasma amino acids, certain blood analytes, and metabolic responses.
[0074] Another component of the dairy compositions described herein is fat, which is generally a source of energy for a subject due to its high caloric density as well as its low osmotic activity in solution.
[0075] Vitamins and minerals are important for proper nutrition and development of subjects. Subjects need electrolytes, such as sodium, potassium, and chloride, for growth and for acid-base balance. Adequate intake of these electrolytes is also required to replace losses in urine and feces, as well as through the skin. Calcium, phosphorus, and magnesium are required for proper bone mineralization and growth.
[0076] Trace elements are associated with cell division, immune function, and growth. As a result, sufficient amounts of trace elements are required for the growth and development of a subject. Some important trace elements include, for example, copper, magnesium, and iron (e.g., important for the synthesis of hemoglobin, myoglobin, and other iron-containing enzymes). Zinc is required, for example, for growth, for the activity of many enzymes, and for the synthesis of DNA, RNA, and proteins. Copper, for example, is essential for the activity of several important enzymes. Manganese, for example, is required for the development of bone and cartilage and is important in the synthesis of polysaccharides and glycoproteins. Therefore, the human milk formulations and compositions of the present invention can be supplemented with vitamins and minerals, as described herein.
[0077] Vitamin A is a fat-soluble vitamin essential for growth, cell division, vision, and proper functioning of the immune system. Vitamin D is important for calcium absorption, and to a lesser extent, phosphorus absorption, as well as bone development. Vitamin E (tocopherol) prevents the peroxidation of polyunsaturated fatty acids within cells, thus preventing tissue damage. Folic acid plays a role in amino acid and nucleotide metabolism, for example.
[0078] As noted above, the variability in vitamin and mineral concentrations in human milk often requires some fortification to ensure that children receive adequate amounts of vitamins and minerals. Examples of vitamins and minerals that can be added to the human milk compositions of interest herein include vitamin A, vitamin B1, vitamin B2, vitamin B6, vitamin B12, vitamin C, vitamin D, vitamin E, vitamin K, biotin, folic acid, pantothenic acid, niacin, m-inositol, calcium, phosphorus, magnesium, zinc, manganese, copper, selenium, sodium, potassium, chloride, iron, and selenium. These compositions can also be, or may require, supplementation with chromium, molybdenum, iodine, taurine, carnitine, and choline.
[0079] The osmolality of the standardized human milk formulations featured herein can affect the adsorption, absorption, and digestion of the composition. For example, high osmolality above about 400 mOsm / Kg H2O has been associated with increased rates of NEC, a gastrointestinal disorder affecting newborns (see, e.g., Srinivasan et al., Arch. Dis. Child Fetal Neonatal Ed. 89:514-17, 2004). The osmolality of the human milk compositions of the present disclosure is typically less than about 400 mOsm / Kg H2O. Osmolality can be adjusted by methods known in the art. Methods for Producing Human Milk Compositions
[0080] The human milk compositions described herein are produced from whole human milk. The human milk can be obtained from the infant's mother or from one or more donors. In certain embodiments, the human milk is pooled to provide a pool of human milk. For example, the pool of human milk includes milk from two or more donors (e.g., 10 or more donors). As another example, the pool of human milk includes two or more donations from a single donor. Obtaining human milk from qualified and selected donors
[0081] Generally, human milk is provided by donors, who are pre-screened and approved before any milk is processed. Various techniques are used to identify and approve suitable donors. Potential donors must obtain releases from their own physician and their children's pediatrician as part of the approval process. This helps ensure, among other things, that the donor is not chronically ill and that the children will not suffer from illness as a result of the donation(s). Methods and systems for approving and monitoring milk collection and distribution are described, for example, in U.S. Patent Nos. 8,545,920, 7,943,315, 9,149,052, 7,914,822, and 8,278,046, which are incorporated herein by reference in their entireties. Donors may or may not be compensated for their donations.
[0082] Donor screening typically includes a comprehensive lifestyle and medical history questionnaire, including prescription and non-prescription drug assessment, drug abuse testing, and testing for certain pathogens. Donor milk or breast milk can be screened for, for example, human immunodeficiency virus type 1 (HIV-1), HIV-2, human T-lymphotropic virus type 1 (HTLV-I), HTLV-II, hepatitis B virus (HBV), hepatitis C virus (HCV), and syphilis. These examples are not meant to be an exhaustive list of possible pathogens that may be screened for.
[0083] Donors may be reapproved periodically. Donors who are not reapproved or who fail approval are deferred until such time as they are approved, or permanently deferred if warranted by the results of the reapproval screening. In the latter situation, all remaining milk provided by the donor is removed from inventory and destroyed or used solely for research purposes.
[0084] Donors can donate at a designated facility (e.g., a breast milk bank office) or, in a preferred embodiment, express milk at home. If donors express milk at home, they will measure the temperature in the freezer with a provided thermometer, for example, to ensure it is cold enough to store human milk for approval. Donor Identification Test
[0085] Once a donor is approved, donor identification matching may be performed on the donated human milk, as the milk may be expressed by the donor at home and not collected at a breast milk banking facility. In certain embodiments, each donor's milk may be sampled for genetic markers, e.g., DNA markers, to ensure that the milk is truly from an approved donor. Such target identification techniques are known in the art (see, e.g., U.S. Pat. No. 7,943,315, incorporated herein by reference in its entirety). The milk may be stored (e.g., at -20°C or below) and quarantined until test results are received.
[0086] For example, the methods featured herein may include a step for obtaining a biological reference sample from a potential human breast milk donor. Such samples, such as, but not limited to, a cheek swab cell sample, or a blood sample, milk, saliva, hair root, or other convenient tissue, may be obtained by methods known in the art. A sample of reference donor nucleic acid (e.g., genomic DNA) may be isolated from any convenient biological sample, including, but not limited to, milk, saliva, cheek cells, hair root, blood, and any other suitable cell or tissue sample with intact interphase nuclei or metaphase cells. The sample is labeled with a unique reference number. The sample may be analyzed for one or more markers capable of identifying the potential donor at or around the time the sample is obtained. The analysis results may be stored, for example, on a computer-readable medium. Alternatively, or additionally, the sample may be stored and analyzed at a later time to identify markers.
[0087] It is contemplated that the biological reference sample may be DNA typed by methods known in the art, such as STR analysis of STR loci, HLA analysis of HLA loci, or multi-gene analysis of individual genes / alleles. The DNA type profile of the reference sample is recorded and stored, for example, on a computer-readable medium.
[0088] It is further contemplated that the biological standard sample can be tested for autoantigens using antibodies or other methods known in the art to determine the autoantigen profile. The antigen (or other peptide) profile can be recorded and stored, for example, on a computer-readable medium.
[0089] A test sample of human milk is taken for identification of one or more identifying markers. The donated human milk sample is analyzed for the same marker(s) as the donor reference sample. The marker profiles of the biological reference sample and the donated milk are compared. A match between the markers (and the absence of any additional unmatched markers) indicates that the donated milk is from the same individual as the person who provided the reference sample. The absence of a match (or the presence of additional unmatched markers) indicates that the donated milk is either from an untested donor or is contaminated with moisture from an untested donor.
[0090] The provided human milk sample and the provided biological standard sample can be tested for more than one marker. For example, each sample can be tested for multiple DNA and / or peptide markers. However, both samples need to be tested for at least some of the same markers in order to compare the markers from each sample.
[0091] Thus, the standard sample and the provided human milk sample may be tested for the presence of different identification marker profiles. The absence of identification marker profiles other than those from the expected subject generally indicates the absence of moisture (e.g., milk) from other humans or animals contaminating the provided human milk. If a signal other than that expected for the subject is present, the result indicates contamination. Such contamination will cause the milk to fail the test.
[0092] Testing of the reference sample and donated human milk may be performed at the donation facility and / or the milk processing facility. The results of the reference sample testing may be archived and compared against any future donations by the same donor. Contaminant and adulterant screening
[0093] Milk is also tested for pathogens. Milk is genetically screened, for example, by polymerase chain reaction (PCR), to identify viruses such as HIV-1, HBV, and HCV. Contaminants can also be detected using a microbial panel that screens via culture for various bacterial species, fungi, and molds. For example, the microbial panel can test for aerobic plate count, Bacillius cereus, Escherichia coli, Salmonella, Pseudomonas, coliforms, Staphylococcus aureus, yeast, and mold. Specifically, B. cereus is a pathogenic bacterium that cannot be eliminated through pasteurization. Pathogen screening can be performed both before and after pasteurization.
[0094] In addition to screening for pathogens, donor milk may be tested for drugs of abuse (e.g., cocaine, opiates, synthetic opioids (e.g., oxycodone / oxymorphone), methamphetamine, benzodiazepines, amphetamine, and THC) and / or adulterants such as non-human proteins. For example, ELISA can be used to test milk for non-human proteins, such as bovine proteins, to ensure that, for example, cow's milk or cow's milk infant formula has not been added to human milk to increase donations, for example, when donors are compensated for donations.
[0095] Adulters include any non-human milk or filler that is added to a human milk offering such that the offering is no longer unadulterated, pure human milk. Specific adulterants screened include non-human milk and infant formula. As used herein, "non-human milk" refers to milk derived from animals, plants, and synthetic sources. Examples of non-human animal milk include, but are not limited to, buffalo milk, camel milk, cow's milk, donkey milk, goat milk, horse milk, reindeer milk, sheep milk, and yak milk. Examples of non-human plant-derived milk include, but are not limited to, almond milk, coconut milk, hemp milk, oat milk, rice milk, and soy milk. Examples of infant formula include cow's milk formula, soy formula, hydrolyzed formula (e.g., partially hydrolyzed formula or fully hydrolyzed formula), and amino acid or elemental formula. Cow's milk formula may also be referred to as dairy-based formula. In certain embodiments, the blends screened include cow's milk, cow's milk formula, goat's milk, soy milk, and soy milk formula.
[0096] Methods known in the art can be adapted to detect non-human milk proteins, such as cow's milk and soy proteins, in human milk samples. Specifically, immunoassays using antibodies specific for proteins found in adulterants but not in human milk can be used to detect the presence of proteins in human milk samples. For example, enzyme-linked immunosorbent assays (ELISAs), such as sandwich ELISAs, can be used to detect the presence of adulterants in human milk samples. ELISAs can be performed manually or automated. Another common protein detection assay is Western blot or immunoblot. Flow cytometry is another immunoassay technique that can be used to detect adulterants in human milk samples. ELISA, Western blot, and flow cytometry protocols are well known in the art, and related kits are commercially available. Another useful method for detecting adulterants in human milk is infrared spectroscopy, specifically mid-range Fourier transform infrared spectroscopy (FTIR).
[0097] Human milk can be pooled before screening. In one embodiment, human milk is pooled from more than one donation from the same individual. In another embodiment, human milk is pooled from two or more, three or more, four or more, five or more, six or more, seven or more, eight or more, nine or more, or ten or more individuals. In a specific embodiment, human milk is pooled from ten or more individuals. Human milk may be pooled before obtaining the sample by mixing human milk from two or more individuals. Alternatively, human milk samples may be pooled after they are obtained, thereby keeping the remainder of each donation separate.
[0098] The screening step will produce a positive result if the adulterant is present in the human milk sample at about 20% or more, about 15% or more, about 10% or more, about 5% or more, about 4% or more, about 3% or more, about 2% or more, about 1% or more, or about 0.5% or more of the total amount of the milk donation.
[0099] Screening of donated human milk for one or more adulterants can be performed at the donor facility and / or the milk processing facility.
[0100] Human milk that is determined to be free of adulterants or found to be negative for adulterants can be selected, stored, and / or further processed. Human milk that contains adulterants will be discarded, and the donor may be disqualified. For example, if adulterants are found in two or more human milk samples from the same donor, the donor will be disqualified. In another embodiment, if adulterants are found in one or more human milk samples from the same donor, the donor will be disqualified. Human milk processing
[0101] Once the human milk is screened, it is processed to produce a high-fat product, e.g., a human cream composition. The providing facility and the milk processing facility can be the same or different facilities. Milk processing can be carried out on large quantities of human milk, e.g., from about 75 liters / lot to about 10,000 liters / lot of starting material (e.g., about 2,500 liters / lot, or about 2,700 liters / lot, or about 3,000 liters / lot, or about 5,000 liters / lot, or about 7,000 liters / lot, or about 7,500 liters / lot, or about 10,000 liters / lot).
[0102] Methods for obtaining compositions comprising lipids from human milk to provide nutrition to patients are described in U.S. Patent No. 8,377,445, filed May 17, 2010 (national phase entry of PCT / US07 / 86973, filed December 10, 2007), the entire contents of which are incorporated herein by reference.
[0103] After the human milk has been carefully analyzed for both identification purposes and to avoid the above-mentioned contamination, the milk may optionally undergo further optional steps of filtration, for example, through an approximately 200 micron filter, and heat treatment. For example, the composition may be treated at about 63°C or higher for about 30 minutes or more. The milk is then transferred to a separator, for example, a centrifuge, to separate the cream (i.e., the fat portion) from the supernatant. This supernatant may be transferred to a second processing tank maintained at about 2-8°C until the filtration step. Optionally, the cream separated from the supernatant may be subjected to a second separation to remove additional supernatant.
[0104] Following separation of the cream and the supernatant, the supernatant is subjected to further filtration, e.g., ultrafiltration. This process concentrates the nutrients in the skim milk by filtering out the water. The water obtained during concentration is called permeate. The resulting supernatant can be further processed to produce human milk fortifiers and / or standardized human milk formulations.
[0105] Human milk fortifiers (e.g., PROLACT PLUS™ human milk fortifiers (e.g., PROLACT+4®, PROLACT+6®, PROLACT+8®, and / or PROLACT+10®), which are produced from human milk and contain various concentrations of nutritional components, and the processing of human milk to obtain the fortifier compositions are described in U.S. Pat. No. 8,545,920, filed Nov. 29, 2007, the entire contents of which are incorporated herein. These fortifiers can be added to the milk of nursing mothers to, for example, fortify the nutrient content of the milk for premature infants.
[0106] Standardized human milk formulations (exemplified by PROLACT 20™ and / or PROLACT 24™), as well as methods for obtaining the formulations themselves, are also discussed in U.S. Pat. No. 8,545,920, filed Nov. 29, 2007, the entire contents of which are incorporated herein. These standardized human milk formulations can be used, for example, to feed infants. They provide a nutritious, human-derived formulation and can be a substitute for breast milk.
[0107] Uses of Human Milk Compositions The disclosed human milk compositions are particularly useful for providing nutrition to subjects undergoing or who have undergone surgery, to provide sufficient calories to meet the increased nutritional requirements associated with pre-surgical conditioning regimens, complications resulting from surgical procedures, and the subject's physical growth demands. The compositions of the present invention are useful in situations where infants and / or children require enteral nutrition. Total parenteral nutrition (TPN) is often used to feed subjects who have undergone surgery. However, enteral nutrition is desirable due to negative effects associated with TPN. Enteral nutrition can also be combined with TPN. The use of human lipids for parenteral nutrition, the implementation of parenteral nutrition (e.g., total parenteral nutrition), for patients in need thereof, is described in U.S. Patent Nos. 8,821,878 and 8,377,445, the contents of each of which are incorporated herein in their entirety.
[0108] The compositions and methods of the present disclosure are useful in providing nutrition to infants before, after, or before and after surgery.
[0109] Pre-operative feeding guidelines may include providing 2.5 mL / kg of the human milk composition of the present invention every 3 hours for a total of 20 mL / kg per day. If well tolerated, feeding per cue may be increased by the maximum amount per standard practice at the center, e.g., feeding may be increased by a maximum of 20 mL / kg per day every 24 hours as determined by the attending physician, e.g., a maximum feeding may be 60 mL / kg per day.
[0110] Postoperative breastfeeding guidelines may include a stepwise approach. Phase 1, when deemed appropriate by the attending physician, may involve initiating nutritional feeding with the human milk composition of the present invention at 1 mL / kg body weight per day for a goal of 1-5 days. Phase 1 may also involve initiating feeding at 20 mL / kg / day, followed by a continuous increase of 20-40 mL / kg / day after 24 hours. Phase 2 may involve increasing feeding toward a goal of about 60 to about 100 mL / kg / day. Increased feeding may occur every 6-12 hours, with an increase to full feeding during Phase 2. Once Phase 2 is tolerated for 24 hours, Phase 3 may begin. Phase 3 may involve increasing feeding by 10-20 mL / kg / day toward a goal of about 130-140 mL / kg / day. Increase to Phase 4 may occur after tolerance in Phase 3 has been observed for at least 24 hours. Gradual intensification can occur during each phase beginning with 24 calories / oz in Phase 2, increasing to 26 calories / oz in Step 3, 28 calories / oz in Step 4, and finally to 30 calories / oz at the completion of Step 4. If poor weight gain is demonstrated, additional increments of 10-20 mL / kg / day can be utilized and titrated to weight gain. Those skilled in the art will appreciate that the above represents an exemplary protocol, and that the exact timing of calorie and / or volume increases will depend on the post-surgical situation encountered (e.g., gastroschisis vs. cardiac) or subject being served (e.g., premature vs. term vs. older infant vs. adult).
[0111] All patents, patent applications, and references cited herein are incorporated by reference in their entirety. Unless defined otherwise, technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art. [Example]
[0112] The following examples are intended to illustrate, but not limit, the present disclosure.
[0113] Example 1 Standardized human milk and fortifier products A human cream composition was produced that can be enterally delivered to provide nutritional supplementation that can add a desired amount of calories to a mother's own milk or donor milk without adding significant amounts, thereby avoiding the negative effects associated with TPN. Human milk from previously screened and approved donors was mixed together to create a pool of donor milk. In a clean indoor environment, the pool of donor milk was further tested for specific pathogens and bovine proteins. Specifically, PCR testing was used to screen for the presence of HIV-1, HBV, and HCV in the milk. A microbial panel was also conducted, testing for aerobic counts, Bacillius cereus, Escherichia coli, Salmonella, Pseudomonas, coliforms, Staphylococcus aureus, yeast, and mold.
[0114] Figure 1 is a chart illustrating an embodiment of producing a human milk fortifier. The screened and pooled milk is subjected to filtration (step 2), e.g., through an approximately 200 micron filter, and heat treatment (step 3). For example, the composition may be treated at about 63°C or higher for about 30 minutes or more. However, depending on the method used, the initial filtration and / or heat treatment steps may be omitted. In step 4, the milk is transferred to a separator, e.g., a centrifuge, to separate the cream from the supernatant. This supernatant may be transferred to a second processing tank maintained at about 2-8°C until the filtration step (step 5).
[0115] Optionally, the cream separated from the supernatant in step 4 can be subjected to separation again to obtain further supernatant.
[0116] Following separation of the cream and supernatant (Step 4), a desired amount of cream is added to the supernatant, and the composition is subjected to further filtration (Step 5), e.g., ultrafiltration. This process concentrates the nutrients in the skim milk by filtering out the water. The water obtained during concentration is called the permeate. The filter used during ultrafiltration can be post-washed, and the resulting solution can be added to the supernatant to maximize the amount of nutrients obtained. The supernatant is then blended with the cream (Step 6), and a sample is taken for analysis. At this point in the process, the composition generally contains about 8.5% to 9.5% fat, about 3.5% to about 4.3% protein, and about 8% to 10.5% carbohydrates, e.g., lactose.
[0117] After separation of the cream and supernatant in step 4, the cream flows into a holding tank, e.g., a stainless steel vessel. The cream can be analyzed for its calorie, protein, and fat content. If the nutritional content of the cream is known, a portion of the cream can be added to the supernatant (step 5) after filtration, e.g., ultrafiltration, to achieve the calorie, protein, and fat content required for the particular product being made. Minerals can be added to the milk before pasteurization.
[0118] At this point, the processed composition can be frozen before adding minerals and later thawed for further processing. Any unused excess cream can also be stored, for example, frozen. Optionally, before freezing the processed composition, a sample is taken for mineral analysis. Once the mineral content of the processed milk is known, the composition can be thawed (if frozen), and the desired amount of minerals can be added to achieve the target value.
[0119] After step 6 and / or optional freezing and / or mineral addition, the composition is subjected to pasteurization (step 7). For example, the composition can be placed in a processing tank connected to a high-temperature, short-time (HTST) pasteurizer via platinum-hardened silastic piping. After pasteurization, the milk can be collected in a second processing tank and cooled. Other pasteurization methods known in the art can be used. For example, in static pasteurization, the milk in the tank is heated to a minimum of 63°C and held at that temperature for a minimum of 30 minutes. The air above the milk is steam heated to at least 3°C above the temperature of the milk. In one embodiment, the product temperature is about 66°C or higher, the air temperature above the product is about 69°C or higher, and the product is pasteurized for about 30 minutes or longer. In another embodiment, both HTST and static pasteurization are performed.
[0120] The resulting fortifier composition is generally processed aseptically. After cooling to approximately 2-8°C, the product is filled into containers of the desired volume, and various samples of the fortifier are taken for nutritional and bioburden analysis. The nutritional analysis ensures the appropriate content of the composition. A label reflecting the nutritional analysis is generated for each container. The bioburden analysis tests for the presence of contaminants, such as total aerobic plate count, B. cereus, E. coli, Coliform, Pseudomonas, Salmonella, Staphylococcus, yeast, and / or mold. The bioburden test can be a genetic test.
[0121] Once the analysis is complete and the desired results are obtained, the product is packaged and shipped.
[0122] Example 2 Use of human dairy products in infants undergoing surgery A randomized controlled trial will be conducted to evaluate the growth rate and clinical outcomes of infants with single ventricle physiology who are fed an exclusive human milk diet with early fortification after surgical repair. The methods and clinical protocols described herein are performed on term infants 7 days of age or younger, although one skilled in the art will understand that the compositions and methods would be suitable for older children, adults, and preterm infants.
[0123] Approximately 40,000 births per year in the United States are associated with congenitally malformed hearts. Infants with single ventricle physiology (approximately 15% of all CHDs) face significant challenges in terms of both short-term and long-term growth, especially after initial palliative surgery during the interstage period (Anderson JB, Iyer SB, Schidlow DN et al. Variation in Growth of Infants with Single Ventricle. J Pediatrics 2012;161:16-21).
[0124] Currently, the standard of care is to feed unfortified human milk or formula to infants until they reach near-exclusive feeding. Early feeding of fortified human milk has been shown to improve growth in neonatal populations at highest risk for growth failure, such as preterm infants (Cristofalo EA, Schanler RJ, Blanco CL, et al. Randomized trial of exclusive human milk versus preterm diets in extremely premature infants. J Pediatrics, doi:10.1016 / j.jpeds.2013.07.011, 2013. Hair AB, Hawthorne KM, Chetta KE, Abrams SA. Human milk feeding supports adequate growth in infants ≦1250 grams birth weight. BMC Res Notes, 2013, 6:459. doi:10.1186 / 1756-0500-6-459). Additionally, it has been well documented over the past several years that extremely premature infants (birth weight <1250 g) fed a 100% human milk diet exhibit significantly better clinical outcomes, including a reduced incidence of NEC and time spent on parenteral nutrition (TPN), than infants fed diets containing any cow's milk-based ingredients. Currently, all participating centers do not use an exclusive human milk diet in term infants with single-ventricle physiologic heart defects because such infants require increased caloric intake via fortification with cow's milk-derived products (fortifiers / formulas). Growth patterns are similar to when standard feeding protocols are used, but much more invasive protocols are possible with a 100% human milk diet, resulting in improved growth with similar nutritional intake (Hair, 2013).
[0125] In this single-blind (physician-investigator), randomized controlled trial, we evaluate growth velocity and clinical outcomes in infants with single-ventricle physiology fed an exclusive human milk diet during their first postnatal hospital stay and at the 30-day postoperative restorative feeding period or discharge, whichever occurs first.
[0126] The study population includes infants 7 days of age or younger with single ventricle cardiac physiology whose enteral nutrition, if present, consisted of an exclusive human milk diet prior to study enrollment and who required surgical palliation within the first month of life.
[0127] Subjects will be randomized to one of two groups at birth or immediately after diagnosis if prenatal care was not available (described in more detail below). Parents who decline to have their infant participate in the study will be asked to consent to data collection regarding their infant, who will be treated and breastfed according to institutional practice. Data from these individuals will be summarized and evaluated descriptively compared with actual study results. Any infant who is randomized and undergoes cardiac repair will continue the intervention even if an exclusion criterion is later discovered (i.e., microarray returns positive for 22q11 deletion). If it is not in the infant's best interest (i.e., chylothorax, NEC), the infant will be withdrawn from the study.
[0128] All patients receive exclusive human breast milk or human donor milk before randomization. Once randomized, patients in Group 1 receive an exclusive human milk diet before surgery and for the 30-day breastfeeding period after surgical repair or until discharge, whichever comes first. Day 1 is defined as the first day of enteral feeding after surgery. Patients in Group 2 (control group) receive human breast milk, formula, or human donor milk (according to the standard of care at each hospital) during the preoperative period. During the postoperative period, the control group receives human milk or formula according to the feeding algorithm.
[0129] The primary objective was to assess growth velocity (weight velocity [g / kg / day] and weight z-score from the WHO growth chart) 30 days after the start of postoperative feeding in infants with single ventricle physiology who were fed an exclusive human milk diet from birth over a 30-day feeding period after surgical repair or until hospital discharge, whichever came first. Day 1 was defined as the day of the first enteral feeding after surgery.
[0130] The secondary objective was to evaluate the role of an exclusive human milk diet on secondary growth measures, such as linear growth rate (cm / week and z-score from the WHO growth chart) and incremental head circumference growth rate (cm / week and z-score from the WHO growth chart), over the first 6 months of the postoperative period or before second-stage palliative surgery, whichever occurs first. Additional secondary measures included: 1) breastfeeding intolerance, defined as at least 24 hours of not eating or drinking (NPO) on day 30 of the postoperative enteral feeding period (day 1 being the first day of postoperative breastfeeding). NPO due to elective surgery or procedures is not defined as breastfeeding intolerance; 2) postoperative hospital stay and length of stay in intensive care / cardiac unit; 3) significant morbidity during the 30-day postoperative period, e.g., Incidence of confirmed sepsis (defined as clinical signs and symptoms consistent with sepsis associated with isolation of the causative organism from a blood culture). Definitive proof of infection must include one or more of the following: 1) a positive blood culture (requiring at least two positive cultures that are temporally and physically separated in cases of coagulase-negative staphylococci [CoNS]); 2) a positive urine culture; 3) a positive CSF culture. For the purposes of this endpoint, only culture-proven sepsis will be evaluated in the analysis. The number of cultures taken for each patient will be recorded, and data will be collected on the number of events of "suspected sepsis" versus "confirmed sepsis." Necrotizing enterocolitis (NEC), defined as stage II or higher according to Bell's criteria and whether surgical intervention was required Wound infection, as defined by CDC surgical site infection The infection occurs within 30 days after any surgical procedure, involves only the skin and subcutaneous tissues of the incision, and has at least one of the following: a) purulent drainage, b) an organism identified in a specimen obtained aseptically from a superficial incision or subcutaneous tissue by culture or non-culture-based microbiological testing methods performed for clinical diagnostic or therapeutic (not investigative) purposes, c) a superficial incision intentionally opened by the surgeon / attending physician, and the patient has at least one of the following signs or symptoms: pain or sensitivity, localized swelling, erythema, or fever, d) a diagnosis of superficial incisional SSI by the surgeon or attending physician. Cellulitis, suture abscess alone, or localized pin site infection do not qualify. Classify as deep if it involves deep soft tissues (fascia and muscle layers). Wound dehiscence requiring intervention (wound vac) Number of days of parenteral nutrition (PN) in the 30-day postoperative period
[0131] Developmental outcome is assessed based on the Bayley III score at 18–24 months.
[0132] Data on cardiac anatomy and physiological risk factors, assessed by routine cardiac endoscopy, were collected periodically throughout the study period, from the preoperative period through the 18- to 24-month evaluation (ideally before the initial surgery, before stage 2 palliative surgery, within 1 week after surgery if obtained as standard of care, and at 18- to 24-months). This included data on congenital cardiac anatomic subtype, qualitative assessment of dominant ventricular function, qualitative assessment of AV valve regurgitation, degree of systemic outflow obstruction (aortic stenosis or coarctation), degree of aortic insufficiency, and presence of residual pulmonary venous obstruction.
[0133] Quality objectives include duration of human milk diet at follow-up visits at 3 months, 6 months, and 18–24 months after discharge.
[0134] Supporting variables included time from birth to surgical repair, need for cardiac reoperation, need for interventional cardiac catheterization, data collection of any noncardiac surgery and extracorporeal membrane oxygenation (ECMO), and major STS morbidity / complications (Jacobs ML, O'Brien SM, et al. An empirically based tool for analyzing morbidity associated with operations for congenital heart disease. J Thorac. Cardiovascular. Surg. 2013;145:1046-1057). Major STS morbidity / complications, as defined by the local STS database manager, included complete heart block (CHB) requiring pacemaker placement, diaphragmatic paralysis requiring plication, tracheostomy at discharge, renal failure requiring dialysis, new postoperative neurological deficits persisting at discharge, need for postoperative mechanical circulatory support, and unplanned reoperation.
[0135] Additionally, a sample of human milk (4 mL of breast milk or donor milk thawed to prepare the feed the day before any fortification) will be tested for micronutrient content (calories, protein, carbohydrates, and fat) once a week. The frequency of breastfeeding per day will be recorded during the study intervention. The duration for which patients are breastfed will be recorded at follow-up visits.
[0136] As a result of early fortification and better feeding tolerance, infants have improved growth and wound healing, and complications occurring during post-operative repair, in addition to the immunological and anti-inflammatory benefits of an exclusive human milk diet, are reduced. Overall hospital stays and the associated costs of prolonged hospitalization are reduced. Furthermore, the incidence of confirmed sepsis and other morbidities such as NEC is lower.
[0137] Preoperative supply management
[0138] 1. Readiness for feeding is determined by the clinician team. In an attempt to standardize across centers, the criteria for considering initiating enteral feeding are: 1) hemodynamic stability (stable vital signs by the attending physician), adequate urine output (>2 mL / kg / h), and good perfusion by test; 2) minimal or no acidosis based on stable milk secretion levels or base deficit; and 3) no vasoactive support or low vasoactive support for at least 12 hours. Milrinone and dopamine ≤ 3 mcg / kg / min or epinephrine ≤ 0.03 mcg / kg / min are acceptable. Prostaglandins (PGE1) are acceptable, and alternatively, UAC or UVC are acceptable. The Wernovsky inotropic score is calculated for informational purposes (Wernovsky et al., 1995). Failure to adhere to these criteria is not considered a violation of the protocol.
[0139] 2. If adequate tolerance allows for increased PO supply per queue at the maximum amount per standard practice in the center, initiate PO supply (20 mL / kg / day).
[0140] 3. If not involved in PO feeding but meets the above criteria, then NPO may be maintained or nutritional feeding may be initiated (20 mL / kg / day) with OG, NG, or NJ.
[0141] 4. Type of feeding after randomization: If the infant is in Group 1 (study group), the infant will receive human breast milk or human donor milk. If the infant is in Group 2, the infant will receive human milk (breast milk or donor milk) or formula (any TERM formula 20 cal / oz) per each hospital's standard of care. The study coordinator, dietitian, and dietary techs will be blinded to group assignment. All treating clinicians, including attending physicians, residents, fellows, registered nurses (RNs), and associate practical nurses (APNs), will remain blinded to group assignment.
[0142] Criteria for not feeding preoperatively include: 1) other bowel conditions such as difficulty feeding or motility dysfunction as determined by the treating physician (which may include abdominal girth, vomiting, slight bowel sounds, absence of stool for more than 48 hours with a history of regular bowel movements, and increased gastric residual if NG feeding is performed per standard hospital practice) (infants with NEC or bowel surgical intervention will be excluded from the study), and 2) infants with a history of preoperative shock and / or multiorgan failure (diagnosed with at least two of the following positive diagnoses: acute tubular necrosis, acute liver failure with coagulopathy, intestinal hemorrhage). The clinician will determine whether the preoperative shock and multiorgan failure are severe enough to not feed.
[0143] Postoperative supply management
[0144] 1. Readiness for feeding is determined by the clinician team. In an attempt to standardize across centers, the criteria for considering initiating enteral feeding are: 1) hemodynamic stability (stable vital signs by the attending physician), adequate urine output (>2 mL / kg / h), and good perfusion by test; 2) minimal or no acidosis based on stable milk secretion levels or base deficit; and 3) no vasoactive support or low vasoactive support for at least 12 hours. Milrinone and dopamine ≤ 3 mcg / kg / min or epinephrine ≤ 0.03 mcg / kg / min are acceptable. Prostaglandins (PGE1) are acceptable, and UAC or UVC are acceptable instead. The Wernovsky inotropic score is calculated for informational purposes (Wernovsky et al., 1995). Failure to adhere to these criteria is not considered a violation of the protocol.
[0145] 2. Follow the post-operative feeding algorithm for amount, type, fortification, and augmentation (Figure 2). Briefly, fortification will begin at 60 mL / kg / day in the exclusive human milk group, and the control group will begin fortification (expected to be approximately 100 mL / kg / day) with usual care at the participating center during the post-operative period.
[0146] 3. Advocate according to the feeding intolerance algorithm to maintain / enhance supply (Figure 3). Supply may be maintained at the physician's discretion; failure to follow the algorithm is not considered a protocol deviation.
[0147] Criteria for not feeding after surgery include: 1) other bowel conditions such as difficulty feeding or motility dysfunction, as determined by the treating physician (which may include abdominal girth, vomiting, slight bowel sounds, absence of stool for more than 48 hours with a history of regular bowel movements, and increased gastric residual if fed per standard hospital practice) (infants with NEC or bowel surgical intervention will be excluded from the study); 2) infants with a history of postoperative shock and / or multiorgan failure (diagnosed with at least two of the following positive diagnoses: acute tubular necrosis, acute liver failure with coagulation abnormalities, or intestinal bleeding). The clinician will determine whether preoperative shock and multiorgan failure are severe enough to not feed; and 3) the presence of chylothorax. If this occurs during the study, the infant will be removed from the protocol.
[0148] The type of feeding and fortification in a particular amount is protocol-driven. Specific postoperative nutrition protocols are given for any period of 1 year, more than 1 year, more than 2 years, more than 3 years, more than 4 years, more than 5 years, and longer than 5 years. In certain embodiments of any of the methods described herein, the treatment regimen includes providing the subject with a halogenated compound, e.g., iodine, for life. The clinician determines the enteral amount, frequency per day given to the infant, and route (PO / NG / NJ). The order should read the type of feeding and fortification according to the protocol. Otherwise, this study will not change the medical and / or surgical management of patients with single ventricle physiology.
[0149] In both the investigational and control groups, TPN will be given as needed according to the treating physician, both in the pre-operative and immediate post-operative periods (see Figure 4 for the proposed TPN algorithm). The amount of TPN given each day will be recorded in terms of volume, kcal, and protein. This overall randomization process will be performed at each of the study centers.
[0150] Randomization between study arms will be performed using a mixed block randomization scheme (block size will remain blinded to the investigator). A predetermined randomization table will be provided to each study site by the study statistician, who will administer it to an individual at each site who is not involved in patient evaluation. Randomization will occur as soon as the infant is enrolled in the study. Study assignment will be disclosed to the study coordinator, dietitian, and dietitian to ensure that appropriate fortification and type of milk is provided to each patient according to the feeding algorithm. All treating clinicians, including attending physicians, residents, fellows, RNs, and APNs, will remain blinded to group assignment, but the stage of fortification will be disclosed upon request (stages defined in the postoperative feeding algorithm, Figure 2).
[0151] Infants remain on this feeding algorithm for 30 days or until discharge, whichever comes first. Once discharge is anticipated, transition from human donor milk and fortifier begins and follows the weaning chart (Figure 5). Once infants are completely weaned from the human milk fortifier (Prolacta product), formula / HMF is added to provide a minimum of 24 kcal / oz according to individual institution practice, and fortification can be adjusted by the treating physician. For the control group (study group 1), transition to discharge formula does not occur because they are already receiving formula / HMF. Fortification can be adjusted by the treating physician once infants are weaned from the intervention.
[0152] The transition to a discharge feeding regimen is summarized in Figure 5 and is only required for infants in the strictly human milk group. If discharge is expected within 5 days, begin transitioning from DBM (donor breast milk) according to the feeding chart below. Optionally, the transition on day 3 may be skipped. If EBM (expressed breast milk) is available, transition to EBM fortified to 24 kcal / oz with TERM formula. If the standard of care at the institution is to discharge with human donor milk, it may be used. If EBM is not available, transition to TERM formula fortified to 24 kcal / oz. The TERM formula used may be selected for each institution by the dietitian or cardiac team. The minimum concentration during the intervention period is 20 kcal / oz. Breastfeeding may be incorporated into the institution's feeding regimen.
[0153] Example 3 statistical analysis Quantitative data will be summarized using mean±standard deviation and / or median±interquartile range, and qualitative data will be summarized using proportions and percentages.
[0154] The primary endpoints of the study included weight rate (g / kg / day) during the 30-day enteral feeding period after surgical repair or until hospital discharge, whichever occurred first, and body length (cm / week) and head circumference growth (cm / week) in the first 6 months after surgery (or before the second palliative surgery).
[0155] Experimental and control groups are compared in each case using the Wilcoxon rank sum test. Calculation of weight velocity (g / kg / day) is based on the method proposed by Patel et al. (2009). Calculation of body length and head circumference velocity is based on the change in measurements from the first reading to the last value obtained in the relevant period, divided by the time frame (weeks).
[0156] The incidence of any feeding intolerance, confirmed sepsis, NEC, wound infection, and wound dehiscence will be compared between study groups using Fisher's exact test. These analyses look only at whether these outcomes occurred, but if there were multiple occurrences, the rate will be assessed using a two-sample exact test for Poisson rates (based on the algorithm found in the program StatXact 11).
[0157] Length of hospital stay, length of stay in the intensive care / cardiac unit, and number of days of parenteral nutrition in the postoperative period are compared using the Wilcoxon rank-sum test. However, if there is any censoring in any of these variables (e.g., if the infant is transitioned or dies), the data are evaluated using the Kaplan-Meier estimation scheme and compared with the log-rank test.
[0158] Multivariate regression models (linear for quantitative variables, Cox proportional hazards for censored data, logistic for qualitative data, and Poisson for count data) can be used in quadratic adjusted analyses to account for predefined relevant covariates (i.e., birth weight, sex, type of surgical procedure, etc.). In all analyses, significance was declared for any p-value less than 0.05, without adjustment for multiple endpoints.
[0159] Regarding developmental outcomes, Bayley scores at 18–24 months will be compared using the Wilcoxon rank sum test.
[0160] For research purposes, various quantitative measures obtained from echocardiography will be assessed using the Wilcoxon rank sum test and compared between groups using either Fisher's exact test (dichotomous data) or chi-squared test for homogeneity, and exact calculation of p values (StatXact 11) for multimethod outcomes.
[0161] For quality purposes, the duration of the exclusive human milk diet after discharge at the 3- and 6-month (±2 weeks) and 18- to 24-month follow-up visits will be assessed individually by Wilcoxon rank-sum tests. However, if information is not completely known at a particular time, a log-rank test will be used for censoring. Regarding supportive variables, time from birth to surgical repair will be analyzed using the Wilcoxon rank sum test. The need for reoperation will be compared between groups using Fisher's exact test.
Claims
1. 1. A human milk composition for providing nutrition to a subject about to undergo or who has undergone surgery for a congenital defect, said human milk composition comprising human milk and a human milk fortifier, said human milk composition comprising 19-26 mg / mL human protein, 49-64 mg / mL human fat, and 81-97 mg / mL human carbohydrate; A human milk composition, wherein the subject is a full-term infant with a congenital heart defect or a congenital intestinal defect.
2. 10. The composition of claim 1, wherein the human milk composition comprises 24-26 mg / mL human protein, 60-64 mg / mL human fat, and 83-97 mg / mL human carbohydrate.
3. 10. The composition of claim 1, wherein the human milk composition comprises 19-20 mg / mL human protein, 49-51 mg / mL human fat, and 81-89 mg / mL human carbohydrate.
4. 10. The composition of claim 1, wherein the human milk composition comprises 21-23 mg / mL human protein, 54-57 mg / mL human fat, and 82-89 mg / mL human carbohydrate.
5. 5. The composition of claim 1, wherein the human milk composition human milk fortifier comprises 35-45 mg / mL human protein and 80-100 mg / mL human fat.
6. 6. The composition of any one of claims 1 to 5, wherein the human milk fortifier of the human milk composition can further comprise one or more members selected from the group consisting of calcium, chloride, copper, iron, magnesium, manganese, phosphorus, potassium, selenium, sodium, and zinc.
7. The composition of any one of claims 1 to 6, wherein the human milk composition is administered orally or enterally.
8. The composition of any one of claims 1 to 7, wherein administration of the human milk composition improves one or more clinical outcomes in the subject.
9. 9. The composition of claim 8, wherein the one or more improved clinical outcomes comprise improved neurodevelopmental outcome, improved growth rate including rate of weight gain, incremental linear growth, incremental head circumference growth rate, reduced length of hospital stay, and / or reduced number of days of parenteral nutrition.
10. 10. The composition of claim 8 or 9, wherein the one or more improved clinical outcomes comprises a reduced incidence of feeding intolerance, sepsis, necrotizing enterocolitis (NEC), wound infection, and / or wound dehiscence.
11. The composition of any one of claims 1 to 10, wherein the full-term infant is 7 days old or younger.
12. The composition of any one of claims 1 to 11, wherein the congenital cardiac defect comprises single ventricle physiology.
13. The composition of any one of claims 1 to 11, wherein the congenital intestinal defect comprises gastroschisis or omphalocele.
Citation Information
Patent Citations
Method for obtaining sterile milk and its composition
JP2010502186A
Method of obtaining sterile milk and composition thereof
JP2012231793A
Human milk composition, and method of making and using the same
JP2012254091A