Plant extracts for improving sleep

Spearmint extract supplementation enhances cognitive health by improving memory and mood, addressing the limitations of current products through chronic administration of rosmarinic acid-rich Lamiaceae extracts.

JP7818640B2Active Publication Date: 2026-02-20KEMIN INDUSTRIES INC
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Patent Information

Application Number
JP2024046345
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2014-09-15
Filing Date
2024-03-22
Publication Date
2026-02-20
Estimated Expiration
2035-09-15

AI Technical Summary

Technical Problem

Current cognitive health products show inconsistent benefits in chronic supplementation and lack evidence for improving cognitive function in healthy individuals, particularly in areas such as memory, reasoning, attention, and mood, with limited research on spearmint extracts.

Method used

Administration of Lamiaceae plant extracts, particularly spearmint containing rosmarinic acid, to enhance cognitive health and function, including improvements in memory, reasoning, attention, planning, mood, and sleep, through chronic supplementation.

Benefits of technology

Spearmint extract supplementation demonstrates significant improvements in working memory, spatial memory, and mood, with no adverse effects, indicating its potential as a safe and effective natural remedy for cognitive enhancement.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a composition for improving the ability to get to sleep, quality of sleep, ease of awakening from sleep, alertness and behavior after awakening, duration of sleep, or sleep efficiency.SOLUTION: A composition contains an effective amount of spearmint plant extract, belonging to the Lamiaceae family, for improving mammalian sleep. The composition is administered for at least 45 days. The effective amount of the extract is 0.01 mg / kg / day to 50 mg / kg / day. The main active ingredients of the extract are rosmarinic acid and plant polyphenols. The extract contains at least 8 wt.% of rosmarinic acid.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] This application claims priority to U.S. Patent Application No. 62 / 050,563, filed September 15, 2014, which is incorporated herein by reference in its entirety. [Background technology]

[0002] There is strong demand for products that can improve cognitive health and function, and the market for these products has continued to grow in recent years despite adverse economic pressures. Part of this growth can be attributed to the increasing elderly population, particularly in Asia and the United States. Global sales of cognitive health ingredients are approximately $455 million. Frost and Sullivan predicts a compound annual growth rate of 12% in the region from 2016 to 2019. We are measuring.

[0003] The leading cognitive health ingredients currently include phosphatidylserine (PS), CoQ10, omega-3 (marine / algae oil), citicoline, ginkgo, and ginseng. Of the top cognitive health ingredients, phosphatidylserine is the only one with an FDA-approved qualified claim. The growing body of scientific evidence supporting this claim Sales of this ingredient have grown by double digits. In 2010, health claims for DHA and EPA regarding brain function, heart health, and vision received a positive opinion from the European Food and Drug Administration (EFSA). Citicoline is promoted as an ingredient that prevents neuronal degeneration and improves memory.

[0004] Poor sleep quality correlates with cognitive decline in older adults (Blackwell T, Yaffe K, Laffan A, Ancoli-Israel S, Redline S, Ensrud KE, et al. Associations of objectively and subjectively measured sleep quality with subsequent cognitive decline in older community-dwelling men: the MrOS sleep study) [Association between sleep quality and cognitive decline in community-dwelling older adults: MrOS Sleep Study]. Sleep 2014; 37: 655-663). Furthermore, evidence suggests that sleep deprivation increases oxidative stress and inflammation (Lavie L. Oxidative stress in obstructive sleep apnea and intermittent hypoxia--revisited--the bad ugly and good: implications to the heart and brain]. Sleep Med Rev 2015; 20: 27-45). Melatonin, lemon Limited research has shown that valerian / lemon balm may be beneficial for sleep (Cerny A, Schmid K. Tolerability and efficacy of valerian / lemon balm in healthy volunteers (a double-blind, placebo-controlled, multicentre study). Fitoterapia 1999; 70: 221-228. Taavoni S, Nazem Ekbatani N, Haghani H. Valerian / lemon balm use for sleep disorders during menopause Use valerian / lemon balm]. Complement Ther Clin Pract 2013;19:193-196).

[0005] Rosmarinic acid (RA) is one of the main components in spearmint and plays an important role in its antioxidant capacity (Fletcher et al., 2011). Heat stress reduces the accumulation of of rosmarinic acid and the total antioxidant capacity in spearmint (Mentha spicata L). [Heat stress reduces the accumulation of rosmarinic acid and the total antioxidant capacity in spearmint (Mentha spicata L)]. Journal of the Science of Food and Agriculture 85: 2429-2436, 2005. RA, a naturally occurring phenolic compound, is an ester of caffeic acid and 3,4-dihydroxyphenyllactic acid. Its structure consists of a carbonyl group, an unsaturated double bond, and a hydroxyl group. RA consists of a carboxylic acid between two phenolic rings and a bond between the two phenolic rings. RA has shown several biological activities, including anti-inflammatory, antimutagenic, antibacterial, antidepressant, HIV-1 inhibitory, antioxidant, and antiviral properties. These properties make it an attractive ingredient for the pharmaceutical and cosmetic industries. RA is used topically in Europe as a nonsteroidal anti-inflammatory drug (Ritschel et al. Percutaneous absorption of rosmarinic acid in the rat. Methods and Findings in Experimental and Clinical Pharmacology 11: 345-352, 1989). RA is also used in the food industry as a flavoring agent and anti-inflammatory agent. Due to its widespread use as a preservative, RA is considered a safe ingredient for daily consumption (Alkam et al. A natural scavenger of peroxynitrites, rosmarinic acid, protects against impairment of memory induced by Αβ25-35 [natural scavenger of peroxynitrite]). The sequestering agent rosmarinic acid prevents memory impairment induced by Aβ25-35. Behavioural Brain Research 180: 139-145, 2007).

[0006] [ka]

[0007] Evidence for the nonspecific protective properties of RA has been found in the brain. It has been demonstrated that after administration of RA to aging mice, the activities of superoxide dismutase (SOD) and catalase (CAT) in the brain were enhanced, while maleic dialdehyde (MDA) was reduced, improving the antioxidant activity of the brain (Shou et al., Rosmarinic acid attenuates D-galactose-induced behavior impairment in mice and its mechanism, 2010, pp. 1723–1726). These data demonstrate the nonspecific protective properties of RA as an antioxidant. However, previous data have not demonstrated the ability of RA to affect specific brain regions, i.e., have not been proven based on specific clinical outcomes.

[0008] Three studies have already evaluated RA administration in vivo. In these studies, RA was administered either orally or IP in intracranial injury or stress models used to represent specific cognitive disease states (Alkam et al., 2013). A natural scavenger of peroxynitrites, rosmarinic acid, protects against impairment of memory induced by Behavioral Brain Research 180: 139-145, 2007, Park et al., Subchronic administration of rosmarinic acid, a natural prolyl oligopeptidase inhibitor, enhances cognitive performance. Subchronic administration of rosmarinic acid, an enzyme inhibitor, improves cognitive ability. Fitoterapia 81: 644-648, 2010, Zhou et al. Rosmarinic acid attenuates D-galactose induced behavior impairment in mice and its mechanism. RA has been shown to be beneficial in these models, but it has not been shown to attenuate the cognitive changes of normal aging. It was not a valid model for evaluation. Furthermore, it is unclear whether the mechanism of action is antioxidant-specific or non-specific. No studies to date have evaluated RA supplementation, either alone or with the use of spearmint extract, in humans.

[0009] Learning and memory can be divided into two major categories: declarative and procedural. Declarative memory involves temporal, spatial, and associative memory components. It is associated with learning and memory that has a conscious component, requiring attention and vigilance. In humans, this involves the acquisition, recognition, and recall of discrete events, places, people, and facts. Procedural learning and memory may form when declarative memory tasks become routine or habitual, as measured in current animal studies by lever pressing. This relates to learning and memory that does not have a conscious component (in humans, habits or skills such as riding a bicycle). Declarative tasks are thought to be activated by the hippocampus, while procedural tasks are primarily associated with the caudate region of the brain.

[0010] Working memory is related to the ability to use and manipulate information stored in short-term memory. Current evidence suggests that even in healthy individuals, working memory declines with age, beginning in early adulthood (Park et al. 2002; Salthouse 1991; Salthouse 1994), and that it takes longer to process and retrieve stored information. Wesnes et al. reported that in healthy individuals (n=2282; 18-87 years old), there was a decline in working memory of approximately 10% / decade after the age of 40 (Wesnes 2003). This decline in working memory was also observed in subjects aged 70-80 years. reached approximately 22%.

[0011] Memory impairment is considered a normal consequence of aging in healthy older adults. Gall et al. reported that self-reported memory impairment occurs in approximately 20% of elderly subjects (over 50 years of age) (Gallo JJ, Morales KH, Bogner HR, Raue PG, Zee J, Bruce ML, Reynolds CF. Long-term effect of depression care management on mortality in older adults: follow-up of cluster randomized clinical trial in primary care [Effects on mortality in the elderly Long-term effects of dementia care management: follow-up of a randomized clinical trial in primary care. BMJ 2013; 346: f2570). Interestingly, in a cross-sectional study of 2,934 patients aged 65 years and older in 17 general practice settings, 23% of these patients self-reported memory problems when prompted. However, only 18% (of the 23%) had consulted a doctor about their memory problems (Waldorff FB, Rishoi S, Waldemar G. If you don't ask (about memory), they probably won't tell. J Fam Pract 2008; 57(1): 41-4). It is generally accepted as a natural consequence of aging, but it significantly reduces quality of life (Grossi D, Postiglione A, Schettini B, Trojano L, Barbarulo AM, Guigliano V, Ambron E, Aiello A. Autobiographical recall training in elderly adults with subjective memory complaint: a pilot study. Percept Mot Skills 2007; 104(2): 621-8). There are 5.4 million older adults with cognitive impairment without dementia, and approximately 12% of these patients develop dementia each year (Plassman BL, Langa KM, Fisher GG, Heeringa SG, Weir DR, Ofstedal MB, Burke JR, Hurd MD, Potter GG, Rodgers WL, Steffens DC, Mcardle JJ, Willis RJ, Wallace RB, Prevalence of cognitive impairment without dementia in the United States. Ann Intern Med 2008; 148(6): 427-34). While many treatments are available for dementia, this major health concern highlights the need to explore ways to improve, maintain, or slow the decline of cognitive function associated with aging.

[0012] Cognitive impairment associated with brain aging may result from many factors, including hypertension and vascular dysfunction, dietary intake, metabolic disorders, increased oxidative stress and inflammation, altered neurotransmission, and sleep disruption (Harman 2006; Uranga, Bruce-Keller et al. 2010; Gorelick, Scuteri et al. 2011; Levine and Stadtman 2001; Morris 2012). Protein, lipid, and DNA / RNA oxidation increases with age at the tissue level as a result of increased production of reactive oxygen species and decreased antioxidant repair (Levine and Stadtman 2001). Brain aging is also associated with changes in cholinergic neuronal transmission; specifically, acetylcholine (ACh) and dopamine. Decreased concentrations of transporters are well documented in the aging brain and in more advanced stages of cognitive dysfunction (i.e., Alzheimer's disease) (Bartus, Dean et al. 1982; Terry and Buccafusco 2003). Inflammatory signaling also increases with aging, including TNF-α, interleukin (IL-1), and inflammatory cytokines. It has been reported that sleep disturbances and poor sleep quality are associated with cognitive decline in older adults, including elevated levels of interleukin (IL)-1 and IL-6 (Tha, Okuma et al. 2000; Michaud, Balardy et al. 2013). Furthermore, sleep disturbances and poor sleep quality correspond to cognitive decline in older adults (Yaffe et al. 2014; Blackwell et al. 2011; Blackwell et al. 2014; Jelicicet et al. 2002; Song et al. 2014).

[0013] Cognitive decline and brain aging occur in most mammals and are commonly reported in companion animals, especially cats and dogs. Aging-associated cognitive decline in companion animals, referred to as cognitive dysfunction syndrome, is often characterized by behavioral changes, including disorientation, disrupted sleep-wake cycles, anxiety, changes in activity levels, and learning and memory impairments that cannot be attributed to other clinical outcomes (Landsberg et al. 2012). Specifically, as aging progresses, In dogs, cognitive declines on tests of spatial memory, spatial attention, and executive function have been reported as early as middle age (Studzinksi et al. 2006; Milgram et al. 1994; Tapp et al. 2003). This has led to the development of early detection and nutritional intervention to prevent cognitive decline in companion animals. It has the potential to support the quality of life.

[0014] Traditional medicine has long used plant-based remedies to treat many illnesses, and more recently, the following plant-based remedies have been investigated in clinical trials for their potential to improve cognitive function in healthy volunteers: For example, ginkgo biloba (Wesnes KA, Ward T, Mcginty A, Petrini O. The memory enhancing effects of a ginkgo biloba / Panax ginseng combination in healthy middle-aged volunteers. Psychopharmacology (Berl) 2000; 152(4): 353-61; Snitz BE, O'meara ES, Carlson MC, Arnold AM, Ives DG, Rapp SR, Saxton J, Lopez OL, Dunn LO, Sink KM, Dekosky ST. Ginkgo biloba for preventing cognitive decline in older adults: a randomized trial. JAMA 2009; 302(24): 2663-70), Korean ginseng (Wesnes 2008; Reay JL, Kennedy DO, Scholey AB. Single doses of Panax ginseng (G115) reduce blood glucose levels and improve cognitive performance during sustained mental activity.J Psychopharmacol 2005; 19(4): 357-65, Kennedy DO, Haskell CF, Robertson B, Reay J, Brewster-Maund C, Luedemann J, Maggini S, Ruf M, Zangara A, Scholey AB. Improved cognitive performance and mental fatigue following a multi-vitamin and mineral supplement with added guarana (Paullinia cupana). Appetite 2008; 50(2-3): 506-13) and guarana (Kennedy 2004; Haskell 2007). A recent meta-analysis of 13 randomized controlled trials suggests that herbal medicines provide small but consistent benefits compared with placebo and are as effective as pharmaceutical interventions in improving cognitive function in subjects with dementia (May BH, Lit M, Xue CC, Yang AW, Zhang AL, Owens MD, Head R, Cobiac L, Li CG, Hugel H, Story DF. Herbal medicine for dementia: a systematic review. [Comprehensive review]. Phytother Res 2009; 23(4): 447-59). Furthermore, several studies have been carried out. Lemon balm (Kennedy DO, Scholey AB, Tildesley NT, Perry EK, Wesnes KA. Modulation of mood and cognitive performance following acute administration of Melissa officinalis (lemon balm) Regulation of mental state and cognitive function. Pharmacol Biochem Behav 2002; 72(4): 953-64), Moss M, Cook J, Wesnes K, Duckett P. Aromas of rosemary and lavender essential oils differentially affect cognition and mood in healthy adults. The scents of lees and lavender essential oils have different effects on cognition and mood in healthy adults. Int J Neurosci 2003; 113(1): 15-38), sage (Tildesley NT, Kennedy DO, Perry EK, Ballard CG, Savelev S, Wesnes KA, Scholey AB. Salvia lavandulaefolia (Spanish sage) enhances memory in healthy young volunteers [Salvia lavandulaefolia ( Spanish sage enhances memory in healthy young volunteers. Pharmacol Biochem Behav 2003; 75(3): 669-74. Tildesley NT, Kennedy DO, Perry EK, Ballard CG, Wesnes KA, Scholey AB. Positive modulation of mood and cognitive performance following administration of acute doses of Salvia lavandulaefolia essential oil to healthy young volunteers. Beneficial modulation of mood and cognitive performance following exercise. Physiol Behav 2005; 83(5): 699-709, Schooley AB, Tildesley NT, Ballard CG, Wesnes KA, Tasker A, Perry EK, Kennedy DO. An extract of Salvia (sage) with anticholinesterase properties improves memory and attention in healthy older volunteers Sage extract improves memory and attention in healthy elderly volunteers. Psychopharmacology (Berl) 2008; 198(1): 127-39) and rosemary (Pengelly A, Snow J, Mills SY, Scholey A, Wesnes K, Butler LR. Short-term study on the effects of rosemary on cognitive function in an elderly population. J Med Food 2012; 15(1): 10-7) suggest that the intake of plants from the mint family may promote cognitive function in healthy volunteers. Compounds in the essential oils of plants from the Lamiaceae family, such as menthone, piperitone oxide, camphor, linalool, and polyphenols, are reported to be involved in the effects of these plant extracts. These findings may contribute to the wide range of biological activities reported in Sokovic M, Mihajlovic B, Matavulj M. Antimicrobial and antioxidant activities of three Mentha species essential oils. Planta Med 2003; 69(5): 413-9, Hussain AI, Anwar F, Nigam PS, Ashraf M, Gilani AH. Seasonal variation in content, chemical composition, and antimicrobial and cytotoxic activities of essential oils from four Mentha species. Seasonal variations in oil content, chemical composition, antibacterial activity, and cytotoxic activity. J Sci Food Agric 2010; 90(11): 1827-36). However, randomized controlled trials specifically examining the effects of spearmint on cognitive function are limited to a few studies suggesting that spearmint-flavored chewing gum improves memory in healthy volunteers, and the evidence is conflicting (Baker JR, Bezance JB, Zellaby E, Aggleton JP. Chewing gum can produce context-dependent effects upon memory). Appetite 2004; 43(2): 207-10, Tucha O, Mecklinger L, Maier K, Hammerl M, Lange KW. Chewing gum differentially affects aspects of attention in healthy subjects. Appetite 2004; 42(3): 327-9. Miles C, Johnson AJ. Chewing gum and context-dependent memory effects: a re-examination. Appetite 2007; 48(2): 154-8. Johnson AJ, Miles C. Chewing gum and context-dependent memory: the independent roles of chewing gum and mint flavor. Br J Psychol 2008; 99(Pt 2): 293-306.

[0015] Currently, spearmint is widely used as an additive in beverages and confectioneries, and in the United States is generally recognized as a natural flavoring, essential oil, or natural extract by the Food and Drug Administration. FDA 2012a: Substances Generally Recognized as Safe: Essential Oils, Oleoresins (Solvent-Free), and Natural Extracts (Including Distillates): 12CRF182.20, FDA 2012b: Substances Generally Recognized as Safe: Spices and Other Natural Seasonings and Flavorings: 12CRF182.10). However, the safety and tolerability of spearmint in humans when taken in doses greater than those typically consumed as a flavoring or seasoning has not been evaluated. Summary of the Invention

[0016] Current cognitive health products have only shown benefit in acute crossover studies and have conflicting findings. Therefore, there is a need for natural plant extracts with demonstrated efficacy after chronic supplementation. The invention described herein relates to the administration of Lamiaceae plant extracts containing rosmarinic acid, which positively impacts overall cognitive health, including improvements in memory, reasoning, attention / concentration, planning, mood, sleep, and related behaviors. [Brief explanation of the drawings]

[0017] [Figure 1] FIG. 1 shows a graph of working memory quality scores during 90 days of spearmint extract supplementation. [Figure 2] FIG. 2 shows a graph of spatial working memory inhibitory stimulus items correctly identified during 90 days of spearmint extract supplementation. DETAILED DESCRIPTION OF THE INVENTION

[0018] The invention described herein relates generally to plant extracts that enhance, improve or sustain cognitive health and function, and more particularly to the administration of extracts of plants from the Lamiaceae family, including the genus Mentha, such as spearmint (Mentha spicata L.), that contain rosmarinic acid, which has shown surprising improvements in memory, reasoning, attention / concentration, planning, mood, sleep and related behaviors.

[0019] definition To facilitate understanding of this disclosure, the following definitions are provided.

[0020] As used herein, the terms "administer," "administered," and "administration" refer to any method of providing a composition or extract to a mammal. Such methods are well known to those of skill in the art and include, but are not limited to, oral, transdermal, inhalation, nasal, and topical administration. Administration may be continuous or intermittent. In various aspects, the formulations can be administered therapeutically, i.e., administered to treat an existing disease or condition. In further various aspects, the formulations can be administered prophylactically, i.e., administered to prevent a disease or condition.

[0021] Cardiovascular health or vascular health refers to assessment of systemic brachial blood pressure, aortic blood pressure, heart rate, wave reflection, systolic blood pressure, augmentation index, diastolic blood pressure or aortic / arterial stiffness. Cardiovascular assessment also refers to blood oxygenation levels, cerebral metabolic rate of oxygen, cerebral blood flow, and cerebral cellular energy.

[0022] Cognitive health refers to the overall health of the brain, tissues, and blood supply and their ability to function properly across a variety of conditions. Good cognitive health is essential for the brain to perform all mental processes at peak performance. These mental processes are collectively known as cognition and include, but are not limited to, learning, intuition, judgment, language, attention (simple, complex, and sustained), vigilance, concentration, and memory (both long-term and short-term). Poor cognitive health due to aging, disease, and / or other cognitive impairments reduces the brain's ability to function properly, resulting in significant declines in cognitive function and executive abilities.

[0023] Cognitive function refers to any mental or intellectual process that involves neurological or symbolic operations, such as communication, perception, comprehension, reasoning, memory, thinking, awareness, speed of thought, focus, concentration, attention, alertness, motivation, ability to draw conclusions, executive function, consideration, episodic memory, executive function, working memory, letter-number sequencing and cancellation, processing speed (COMPASS & Weschler), motor / psychomotor speed, image creation, creativity, judgment, finger tapping test, symbolic digit coding, Stroop test, shifting attention test, serial performance test, nonverbal reasoning test, four-part serial performance test, language, perspective-building skills, conceptual thinking, calculation, orientation, word presentation, immediate word processing. These tests include recall, picture presentation, reaction time (simple and choice), digit vigilance test, digit span, numerical working memory, spatial working memory, delayed word recall, word recognition, picture recognition, and tracking. In animal model systems, cognitive function can be measured using a variety of conventional methods known in the art, including, for example, the Morris Water Maze (MWM), Barnes Circular Maze, radial arm ascending maze, T-maze, or other mazes in which animals use spatial information. Other tests known in the art may also be used to assess cognitive function, such as novel object recognition, foot lever pressing, and odor recognition tasks.

[0024] Executive function refers to the cognitive processes that regulate, control, and manage other cognitive processes such as planning, working memory, attention, problem solving, verbal and non-verbal reasoning, mathematical ability, inhibition, mental / cognitive flexibility, task switching, initiation, flexibility, visual attention, mathematical skills, adaptability to new or changing environments, and monitoring of behavior.

[0025] Learning refers to the action, process, or experience of acquiring knowledge or skills, especially psychological or behavioral modification through experience or acclimatization.

[0026] Memory is the accumulation of information from past learning and experiences stored in a person's brain. A memory, for example, is a mental image of an experience, a piece of information stored in memory. Memory involves higher-level mental processes such as learning, retention, retrieval, and recognition, and is the ability to remember past experiences and learned information as a result of chemical changes between neurons in several different areas of the brain, including the hippocampus. There are several types of memory: (1) declarative learning or memory, which allows for conscious recall of facts and knowledge; (2) working memory, which actively stores multiple pieces of temporary information in the brain where they can be manipulated; (3) reference memory, which refers to information from previous experiences, whether recent or distant; (4) recognition memory, which is the ability to recognize previously encountered events, objects, or people; (5) associative memory, which is the ability to learn and remember relationships between unrelated items; (6) episodic memory, which is the memory of autobiographical events that can be explicitly described (time, place, associated emotions, and other contextual "who, what, where, why" knowledge); and (7) secondary memory, which is the ability to recall information after a period of time, whether recent or more recent (hours, days, months, or years). In each case, an individual has experienced some form of memory-interfering stimulus since the information was first learned. Each of these types of memory has components of immediate, short-term, and long-term memory. Immediate memory lasts only a few seconds. Short-term memory stores minimally processed information and is available for only a few minutes, such as remembering a phone number long enough to use it. Short-term memory can be transferred to long-term memory, and can be retained for many years only if repeated use of the information facilitates neurochemical changes that allow the memory to be retained. Long-term memory is used interchangeably with secondary memory.

[0027] Mood may refer to, but is not limited to, tension, anxiety, calmness, depression, downcast, anger, hostility, vigor, vitality, energy, fatigue, lethargy, lethargy, confusion, confusion, embarrassment, mood disorder, contentment, serenity, worry, relaxation, happiness, sadness, withdrawal, sociable, friendly, incompetent, skilled, and total mood disorder.

[0028] Polyphenols are widely distributed in plants and play a protective role in defense against environmental stresses such as extreme temperatures, ultraviolet light, and pathogens. Polyphenols are classified into different classes of compounds according to the number of phenolic rings they contain and the bond structure of these rings. Recent studies have suggested a role for dietary polyphenols in disease prevention and health promotion.

[0029] "Quality of life" refers to satisfaction with aspects of life, including health, These include physical and mental functioning, activities of daily living, psychological well-being, spiritual well-being, social well-being, economic well-being and family satisfaction.

[0030] Sleep refers to ease of falling asleep, sleep quality, waking from sleep, ease of waking from sleep, alertness upon waking, behavior after waking, calmness, coordination, sleep duration, sleep disturbances, sleep latency, daily dysfunction due to sleepiness, sleep efficiency, use of sleeping medication, and Global Pittsburgh Sleep Quality Index score.

[0031] Stressful conditions refer to events that lead to stress (i.e., anxiety, worry, and adverse effects on mental and physical well-being, i.e., conditions that disturb physical or mental balance). Sleep-related stress conditions include, but are not limited to, conditions characterized by circadian rhythm disruption such as jet lag, time zone changes, pregnancy, medication, and changes in routine and shift work.

[0032] As used herein, a therapeutically effective amount refers to an amount of a compound, composition, or derivative thereof of the present invention that, when administered to a subject, produces the intended therapeutic effect. The full therapeutic effect may not necessarily be achieved by a single dose, but may be achieved after a series of doses. Therefore, a therapeutically effective amount may be administered in one or more doses. The precise effective amount required for a subject will depend, for example, on the subject's physical size, health, and age, the nature and extent of cognitive impairment, and the treatment or combination of treatments selected for administration and the mode of administration. In one embodiment, at least one extract of a Labiatae plant described herein, e.g., RA, is administered once daily or more frequently, e.g., twice, three times, or four times daily.

[0033] The use of the term "treatment" refers to clinical intervention in an attempt to alter the natural course of the individual, animal, or cell being treated, and may be performed for the prevention of disease or during the clinical pathology process. Desired effects include preventing the onset or recurrence of disease, alleviating symptoms, and diminishing the direct or indirect pathological consequences of the disease, slowing the rate of disease progression, improving or mitigating the disease state, and achieving remission or improved prognosis. The term "treatment" refers to the taking of measures to obtain beneficial or desired results, including clinical outcomes, for a disease or subject. Beneficial or desired clinical results include, but are not limited to, improving, improving, or maintaining cognitive health and / or cognitive function, reducing or alleviating one or more symptoms associated with mild cognitive impairment or age-related cognitive impairment, ameliorating, alleviating, or stabilizing such impairment, and other beneficial results, such as improving cognitive function or slowing the rate of cognitive decline in subjects with or at risk for age-related cognitive impairment. In at least one embodiment, these terms include the prevention or treatment of cognitive disorders such as dyslexia, aphasia, attention deficit hyperactivity disorder, attention deficit disorder, autism, Alzheimer's disease, Parkinson's disease or stroke, or other impairment of executive function.

[0034] As used herein, the singular forms "a," "an," and "the" include plural referents unless the context clearly dictates otherwise. Thus, reference to "a factor" refers to one factor or a combination of factors, and reference to "the method of treatment" refers to a single factor or combination of factors. References include references to equivalent steps and methods known to those skilled in the art.

[0035] Before describing various aspects of the present disclosure, it is to be understood that this invention is not limited to the details of construction and the arrangement of components set forth in the following description. Other aspects may be practiced or carried out in various ways. Also, it is to be understood that the phraseology and terminology used herein is for the purpose of description and should not be regarded in any way as limiting the described invention.

[0036] Throughout this disclosure, various publications, patents and published patent specifications are referenced. Where permitted, the disclosures of these publications, patents and published patent specifications are hereby incorporated by reference in their entireties in order to more fully describe the state of the art.

[0037] As described herein, one aspect of the present invention includes a method for enhancing, improving, or maintaining cognitive health and / or function in a mammal, comprising administering an effective amount of an extract of the perilla plant, wherein the primary active components are rosmarinic acid and plant polyphenols. According to at least one embodiment, the extract further comprises a plant polyphenol, such as carnosic acid.

[0038] Another aspect of the present invention is a method for treating or preventing decline in cognitive health and / or function in a mammal, comprising administering an effective amount of an extract of a plant from the Labiatae family, wherein the primary active ingredients are rosmarinic acid and plant polyphenols.

[0039] In at least one embodiment of the invention, administration of the extract improves learning, executive function, memory, mood or sleep. In at least one embodiment of the invention, administration of the extract improves quality of life.

[0040] A further aspect of the present invention includes a method for improving mood in a mammal, including improving vitality, vigor, energy, or alertness. In at least one embodiment of the present invention, administration of the extract results in improved vitality, vigor, energy, or alertness that occurs in the absence of increased depression, low mood, fatigue, or lethargy. Mood can be measured according to criteria understood by those skilled in the art (e.g., but is not limited to, the POMS).

[0041] In another aspect, the present invention includes a method for improving sleep in a mammal, including, but not limited to, improving sleep quality, improving the ability to fall asleep, reducing sleep interruptions, and improving behavior after waking. For example, in at least one embodiment, administration of the extract reduces sleep latency.

[0042] In another aspect of the present invention, administering the extract prevents stress-induced impairment of cognitive function under stress conditions.Stress conditions include but are not limited to sleep-related stress conditions.Sleep can be measured according to standards understood by those skilled in the art, including but not limited to LSEQ.

[0043] According to at least one embodiment, the extract comprises at least 8% by weight of rosmarinic acid. In a further embodiment, the extract is derived from a plant that yields at least 8% rosmarinic acid on a dry weight basis, including, for example, the extracts described in U.S. Patent Nos. 13 / 367,888 and 13 / 367,863, which are incorporated herein by reference in their entireties.

[0044] According to at least one embodiment, the extract is administered in an amount ranging from 0.01 to 50 mg / kg / day. In another embodiment, the extract is administered as an oral dose ranging from 600 to 900 mg / day. In one embodiment, the extract is administered at regular intervals, including at least one administration per day, while other embodiments include multiple administrations, such as two, three, or four times per day.

[0045] According to at least one embodiment, the extract is administered for at least 45 days. In another embodiment, the extract is administered for at least 90 days. Still other embodiments involve chronic administration of the extract.

[0046] In another aspect of the invention, the extract is administered to humans. In another embodiment, the extract is administered to companion animals such as cats and dogs.

[0047] Example 1 The efficacy of spearmint extract was tested in the SAMP8 mouse model of accelerated aging. The potential for improving learning and memory in SAMP8 mice was evaluated (U.S. Patent Application No. 13 / 962,609, filed August 8, 2013, and incorporated herein by reference). SAMP8 mice were administered spearmint extract or a vehicle control. Additionally, a 50% backcross of SAMP8 was administered vehicle and used as a control. After 90 days of treatment, mice were subjected to three behavioral tests, including foot shock avoidance in a T-maze, object recognition, and lever pressing. Spearmint extract improved acquisition (at both 16 mg active ingredient / kg body weight and 32 mg active ingredient / kg body weight) and retention (at all doses) in the T-maze test. Furthermore, spearmint containing rosmarinic acid improved object recognition at 16 and 32 mg / kg body weight. The mouse doses of 16 mg (active ingredient) / kg body weight and 32 mg (active ingredient) / kg body weight correspond to a human equivalent dose of 600-1200 mg of spearmint extract containing 91-180 mg of rosmarinic acid, or approximately 15% of the active ingredient. These results demonstrate that spearmint extract has beneficial effects on age-related learning and memory deficits in SAMP8 mice.

[0048] Vanta Biosciences (Chennai, India) A safety study of spearmint extract (spearmint extract containing 15.4% [w / w] rosmarinic acid) was conducted in accordance with OECD and FDA Redbook 2000 guidelines. The study included an Ames bacterial reverse mutation test, a clastogenicity test, and 14-day and 90-day oral gavage toxicity studies. Genotoxicity results indicated that spearmint extract was nonmutagenic up to 5000 μg / plate as measured by the Ames bacterial reverse mutation test. Additionally, the spearmint extract was found to be clastogenic (non-clastogenic) at doses up to 5000 μg / ml.

[0049] Spearmint extract was well tolerated when administered orally to male and female Sprang-Dawley rats daily for 14 days at doses of up to 600 mg rosmarinic acid / kg body weight / day. No adverse effects attributable to the test article were detected. The "No Observed Adverse Effect Level (NOAEL)" for this test article under these test conditions was 3896.1 mg / kg body weight for spearmint extract. A 90-day follow-up study in which spearmint extract was orally administered to male and female Sprang-Dawley rats at doses up to 1948 mg / kg body weight / day of rosmarinic acid was well tolerated. The "no observed adverse effect level (NOAEL)" for the test article under the test conditions and doses used was 300 mg / kg body weight / day of rosmarinic acid. The results showed that the dose was 19.48 mg / kg body weight / day (corresponding to 1948.2 mg / kg body weight / day of spearmint extract). Using a safety factor of 100, this dose corresponds to a human equivalent dose of spearmint extract of 19.48 mg / kg body weight / day, or 1364 mg of spearmint extract per 70 kg human.

[0050] Example 2 A randomized, double-blind, placebo-controlled trial evaluated the effects of spearmint extract on measures of cognitive performance, sleep, mood, and tolerance in men and women with age-associated memory impairment (AAMI).The purpose of this study was to evaluate the acute and chronic effects of two doses (600 mg or 900 mg) of a proprietary spearmint extract on aspects of cognitive function in men and women with AAMI.

[0051] Methods: Participants (N = 90; 67% female, age = 59.4 ± 0.6 years) were randomly assigned (n = 30 / group) to receive 900 mg, 600 mg, or 0 mg / day of spearmint extract for 90 days. Computerized assessments of cognitive performance, subjective cognition, mood, and sleep were completed on days 0, 45, and 90. Fasting blood samples, vital signs, and adverse events were collected to assess tolerability.

[0052] Results: In this study, after supplementation with 900 mg / day of spearmint extract, working memory quality and spatial working memory accuracy improved by 11% (P = 0.0469) and 7.4% (P = 0.0456), respectively, compared with placebo. Participants receiving 900 mg / day of spearmint extract reported improved ability to fall asleep compared with placebo (P = 0.0046). Furthermore, overall treatment effects were evident for vigor / vitality (P = 0.0399), overall mood disturbance (P = 0.0374), and alertness and behavior after awakening (P = 0.0415). There were no significant differences between treatments in subjective cognition after 90 days of supplementation. No serious adverse events or clinically relevant findings were observed in any of the tolerability parameters. These results suggest that spearmint extract is well tolerated and may be beneficial for the cognitive and overall health of older subjects with AAMI.

[0053] Study Design Overview: This double-blind, placebo-controlled, parallel study included one telephone screening, two screening visits (Days -14 and -7), one baseline (initiation) visit (Day 0), and two treatment visits (Days 45 and 90). Subjects were randomly assigned to one of three treatments: 600 mg spearmint extract, 900 mg spearmint extract, or placebo, taken daily with breakfast over the 90-day treatment period. During the baseline and treatment visits (Days 0, 45, and 90), subjects completed the CDR System™ computerized cognitive function test battery, computerized Bond-Lader Visual Analog Scales (VAS) for mood and alertness, and a computerized Profile of Mood States (POM). S; Days 0 and 90 only: -0.75 hours), computerized Leeds Sleep Evaluation Questionnaire (LSEQ; Days 0 and 90 only: -0. 0.75 hours), and a computerized Subjective Global Impression Scale of Cognition Questionnaire (SGI; Day 90 only, - Following pre-dose assessments, subjects consumed a standardized breakfast and one serving of their assigned study product (0 hours). Subjects also completed a computerized CDR System™ test battery and Bond-Lader VAS at 0.5, 2, 4, and 6 hours post-dose. completed.

[0054] Population description and baseline characteristics: Participants were recruited at a hospital (Biofortis Innovation Services, Chicago, IL) between August 2013 and January 2014. In total, 1 Ninety-eight subjects were screened, and 90 eligible subjects were randomly assigned to treatment, comprising the intention-to-treat (ITT) population. Men and women with AAMI were randomly assigned to one of three treatments: 0 (placebo), 600 mg / day, or 900 mg / day of spearmint extract (N = 90; n = 30 / group). Of the 90 randomized subjects, three subjects did not complete the final study visit (early stopping). The three subjects who did not complete the study withdrew due to adverse events, including knee pain, muscle pain, headache, worsening oily scalp, cystic acne, and heartburn. All adverse events were considered "unrelated" except for heartburn, which was considered "probably related" to study product intake.

[0055] The baseline characteristics of the subjects are shown in Table 1. The mean age of the population was 59.4 ± 0.6 years, and the mean body mass index (BMI) was 26.9 ± 0.4 kg / m 2 The subjects The majority of participants were non-Hispanic white (90%) and female (67%). Mean baseline scores on the Memory Assessment Clinic Scale Questionnaire (MAC-Q), Mini-Mental State Exam (MMSE), and Verbal Paired Associates (VPA) I and II were 29 and 30, respectively. The scores were 28.5 ± 0.2 points, 23.7 ± 0.7 points, and 7.0 ± 0.2 points. Furthermore, compliance with study drug intake over the 90-day supplementation period was 98.1 ± 0.9%, 99.1 ± 0.8%, and 100.0% for the placebo, 600 mg / day spearmint extract, and 900 mg / day spearmint extract groups, respectively. The mean mean age was 1 ± 0.4%. There was no difference in compliance between treatments over the 90-day period.

[0056] [Table 1]

[0057] Cognitive performance outcome results: Bracket (CDR System™) computerized test The battery was utilized to assess the effects of acute and chronic supplementation. No significant main effects or interactions were identified on the composite scores from the CDR cognitive task when assessed after acute administration. A limited number of individual cognitive task scales showed significant main effects in the acute analysis assessments over 45 and 90 days. No significant effects were evident in the acute analysis on day 0. This analysis was called acute on days 0, 45, and 90; however, subjects were not included in the acute analysis at days 45 and 90. Chronic dosing was completed before acute dosing on days 45 and 90; therefore, data from days 45 and 90 were considered acute within chronic. The overall model for choice reaction time reached significance in the acute analysis at day 45 (P = 0.0296). Pairwise comparisons with placebo showed impairments only 2 hours after supplementation in both the 900 and 600 mg / day spearmint extract groups (P = 0.0015 and P = 0.0065, respectively). An overall effect on numerical working memory was also evident in both groups receiving spearmint extract after acute dosing on day 90 (P = 0.0296). Pairwise comparisons with placebo showed improvement 6 hours after supplementation in the 600 mg / day spearmint extract group (P = 0.0434).

[0058] After chronic administration, an overall cognitive treatment effect was identified for working memory quality in subjects supplemented with spearmint extract for 90 days (P = 0.0435; Figure 1). Pairwise comparisons of change from baseline showed that the 900 mg / day spearmint extract group demonstrated improved working memory quality compared with both the 600 mg / day spearmint extract group (P = 0.0212, Cohen's d effect size: [d] = 0.546) and the placebo group (P = 0.0469, d = 0.473). This improvement over the 90-day supplementation period was 22% in the 900 mg / day group and 5% and 7% in the 600 mg / day and placebo groups, respectively. Furthermore, subjects supplemented with spearmint extract for 90 days had an overall treatment effect on spatial working memory (correctly identified inhibitory stimulus items, P = 0.0373; Figure 2). This improvement from baseline was significantly greater in subjects receiving 900 mg / day (17% = 0.483) than in subjects receiving 600 mg / day (3%, P = 0.0172, d = 0.563) or placebo (6%, P = 0.0456, d) over the 90-day supplementation period.

[0059] Although spatial working memory contributes to the overall quality of a memory composite that also incorporates tasks assessing word recognition, word recall, and picture recognition, no significant differences between treatments were evident in these factors. Furthermore, there were no statistically significant differences between groups in subjective cognition (SGI), attention, sequence of attention, speed of memory, or the quality of the episodic secondary memory factor or the individual cognitive tasks to which they contribute after 90 days of supplementation.

[0060] [Table 2]

[0061] Mood Outcome Results: A computerized questionnaire on mood characteristics (POMS) confirmed a significant treatment effect on the vitality factor (P=0.0399, Table 2) after 90 days of spearmint extract supplementation. The vitality factor includes responses to eight adjectives, including active, dynamic, lively, and alert. Comparison of treatment groups showed that subjects receiving 900 mg / day of spearmint extract over 90 days were significantly more energetic than those receiving placebo. A trend toward improvement was observed in subjects receiving supplementation with 900 mg / day of spearmint extract compared to 600 mg / day (P = 0.0646, d = 0.502). However, the effect of subjects receiving 900 mg / day of spearmint extract was clear and significant (P = 0.0149, d = 0.729) compared to subjects receiving 600 mg / day.

[0062] A treatment effect was also evident in the overall model for TMD, derived from all 65 questions on the POMS (P = 0.0374). Consistent with the findings for the Vitality factor, there was a trend toward improvement in TMD for subjects supplemented with 900 mg / day of spearmint extract over 90 days compared with placebo subjects (P = 0.0832, d = 0.443). However, the effect of subjects receiving 900 mg / day of spearmint extract versus those receiving 600 mg / day was clearly significant (P = 0.0123, d = 0.621). Further investigation, incorporating age and MMSE into the post hoc covariate model, revealed an overall treatment effect for 90 days of spearmint extract supplementation (P = 0.0002). Furthermore, the effect of 600 mg TMD improved in those receiving 900 mg / day of spearmint extract compared with both the 900 mg / day spearmint extract (P = 0.0009) and placebo groups (P = 0.0176). There were no significant findings for other factors assessed by the POMS questionnaire. Analysis of mood using the Bond-Lader VAS showed that spearmint extract significantly improved TMD compared with placebo. No acute or chronic effects of supplementation were observed.

[0063] Sleep Outcome Results: Subjects completed the LSEQ to assess sleep onset, sleep quality, ease of awakening from sleep, and alertness and behavior after awakening (Table 3). An overall treatment effect was evident in the sleep onset assessment after 90 days of supplementation (P = 0.0170). Furthermore, between-group comparisons indicated that individuals receiving 900 mg / day of spearmint extract demonstrated improved ability to improve sleep onset compared with those receiving placebo (P = 0.0046, d = 0.805). An overall treatment effect was also observed in behavior after awakening (P = 0.0415). Between-group comparisons suggest that subjects receiving 900 mg / day of spearmint extract demonstrated improved behavior after awakening compared with those receiving 600 mg / day of spearmint extract (P = 0.0137). No significant differences were observed in sleep quality or ease of awakening after spearmint extract supplementation compared with placebo.

[0064] [Table 3]

[0065] Safety and Tolerability Outcome Results: Pre-supplementation vital signs, clinical chemistry, complete hematology, and lipids Differences identified in the comparison matches were within normal limits and not clinically significant. Changes from pre-supplementation were also assessed for all tolerance measures after 90 days of supplementation. There were no significant differences between all treatment groups over the supplementation period. Although the overall model was not significant, both within- and between-group differences in vital and clinical chemistry measures remained within normal limits. Finally, there were no significant differences between treatment groups in the number of subjects reporting adverse events (P = 0.791) or adverse events potentially related to study product intake (P = 0.692). No severe or serious events were observed.

[0066] Conclusions: The data indicate that a proprietary aqueous spearmint extract high in rosmarinic acid was well tolerated in elderly subjects with AAMI. Furthermore, chronic supplementation at 900 mg / day for 90 days improved working memory and spatial working memory quality versus placebo. As previously discussed, working memory refers to the ability to use and manipulate information stored in short-term memory. Study results showed that working memory and spatial working memory quality improved by approximately 15% and 9% versus placebo, respectively. While self-reported cognitive findings did not support these objective findings, based on the results of objective measures, chronic administration of aqueous spearmint extract may be able to prevent working memory decline equivalent to that lost over 10 years of life.

[0067] Participants also reported improved ability to fall asleep. Subjective mood ratings indicated improvements in vitality and overall mood disturbance, which appeared to be attributable to 900 mg / day of spearmint extract supplementation. The study results showed a striking difference in sleep ratings after 90 days of 900 mg / day of spearmint extract supplementation, 7.8 mm greater than ratings in the placebo group, comparable to changes reported after use of common sleep aids (Zisapel and Nir 2003). The study results indicated a positive impact on cognitive health, with subjects reporting improved working memory, mood ratings (e.g., improved vitality and overall mood disturbance), and improved sleep (e.g., improved ability to fall asleep at night, improved behavior after waking).

[0068] A strength of the current study is its use of a randomized, double-blind, placebo-controlled design, which reduces the potential for confounding by baseline variables and interventions, as well as subject and investigator bias. Compliance with study drug intake was greater than 98% in all groups. The CDR System™ computerized test battery has been used in numerous clinical trials validated in AAMI populations and has been shown to be sensitive to acute and chronic nutritional supplementation. The computerized tests were utilized in a parallel format to reduce learning effects, and all groups received training sessions to familiarize them with the test battery. Additionally, all tools utilized for data collection were validated within the group and completed in a supervised, light- and noise-controlled environment.

[0069] Limitations of this study include the use of free-living subjects, which may be confounded by factors such as diet and lifestyle. However, subjects were required to maintain habitual eating and exercise habits and maintained consistent sleep periods the night before and during study visits. Studies using computerized cognitive test batteries to evaluate nutritional supplementation interventions have mostly used crossover designs, which may be more suitable for assessing acute effects, potentially explaining the lack of acute findings in the current study. Outcomes measured at multiple time points on each study day, including objective cognitive measures and mood assessed by the Bond-Lader, utilized averages of daily values. One drawback of this approach is that the use of daily averages at the baseline visit may confound chronic analyses with acute effects from pretreatment assessments. However, no between-group differences were observed at the baseline visit between pretreatment and posttreatment visits. Therefore, the differences measured and reported in this study best reflect what individuals may expect following a chronic treatment regimen.

[0070] For the first time, this study describes the effects of aqueous spearmint extract on cognitive function after chronic administration in a parallel design. The results of this randomized, double-blind, placebo-controlled trial suggest that spearmint extract was well tolerated with chronic supplementation. Administration of 900 mg / day of an aqueous spearmint extract containing hydroxybenzoates improved working memory and also had a beneficial effect on mood and sleep in elderly individuals with AAMI. Furthermore, this data suggests that administration of the plant extracts described herein may have a beneficial effect on overall cognitive health and / or function, including improvements in memory, reasoning, attention / concentration, planning, mood, sleep, and related behaviors. This data supports the use of this unique aqueous spearmint extract as a nutritional intervention for cognitive health and overall wellness.

[0071] The foregoing description and drawings include exemplary embodiments of the present invention. The above embodiments and methods described herein may vary based on the ability, experience, and preferences of those skilled in the art. The mere listing of steps in a certain order in a method does not limit the order of steps in that method. The foregoing description and drawings merely explain and illustrate the present invention, and the claims are not limited thereto. Those skilled in the art may modify and vary what is disclosed above without departing from the scope of the present invention. [1] A method for treating a rheumatoid arthritis comprising administering an effective amount of a plant extract of the Lamiaceae family, A method for enhancing, improving or sustaining cognitive health and / or function in a mammal, wherein the key active ingredients are rosmarinic acid and plant polyphenols. [2] The method according to [1], wherein the mammal is a human or a companion animal. [3] The method according to [1], wherein the plant is selected from the group consisting of basil, mint, sage, savory, marjoram, oregano, thyme, lavender, spearmint, and rosemary. [4] The method according to [1], wherein the plant is selected from the genus Mentha. [5] The method according to [1], wherein the extract contains at least 8% by weight of rosmarinic acid. [6] The method according to [1], wherein the effective amount is 0.01 mg / kg / day to 50 mg / kg / day. [7] The method according to [1], wherein the effective amount is an oral dose ranging from 600 mg / day to 900 mg / day. [8] The method according to [1], wherein the extract is administered at regular intervals. [9] The method according to [8], wherein the extract is administered at least once a day.

[10] The method according to [1], wherein administration of the extract improves learning, executive function, memory, mood, or sleep.

[11] The method according to [1], wherein administration of the extract improves quality of life.

[12] A method for treating or preventing decline in cognitive health and / or function in a mammal, comprising administering an effective amount of a Labiatae plant extract, wherein the primary active components of the extract are rosmarinic acid and plant polyphenols.

[13] The method according to

[12] , wherein the mammal is a human or a companion animal.

[14] The method according to

[12] , wherein the plant is selected from the group consisting of basil, mint, sage, savory, marjoram, oregano, thyme, lavender, spearmint, and rosemary.

[15] The method according to

[12] , wherein the plant is selected from the genus Mint.

[16] The method according to

[12] , wherein the extract contains at least 8% by weight of rosmarinic acid.

[17] The method according to

[12] , wherein the effective amount of the extract is 0.01 mg / kg / day to 50 mg / kg / day.

[18] The method according to [1], wherein the effective amount is an oral dose ranging from 600 mg / day to 900 mg / day.

[19] The method according to

[12] , wherein the extract is administered at regular intervals.

[20] The method according to

[19] , wherein the extract is administered at least once a day.

[21] The method of

[19] , wherein the extract is administered daily for at least 45 days.

[22] The method of

[12] , wherein administration of the extract maintains learning, executive function, memory, mood, or sleep.

[23] The method according to

[12] , wherein administration of the extract improves quality of life.

[24] The method according to

[12] , wherein administration of the plant extract prevents cognitive impairment caused by stress.

[25] A method for improving mood in a mammal, comprising administering an effective amount of a Labiatae plant extract, the main active components of which are rosmarinic acid and plant polyphenols.

[26] The method according to

[25] , wherein the mammal is a human or a companion animal.

[27] The method according to

[25] , wherein the plant is selected from the group consisting of basil, mint, sage, savory, marjoram, oregano, thyme, lavender, spearmint, and rosemary.

[28] The method according to

[25] , wherein the plant is selected from the genus Mint.

[29] The method according to

[25] , wherein the extract contains at least 8% by weight of rosmarinic acid.

[30] The method according to

[25] , wherein the effective amount of the extract is 0.01 mg / kg / day to 50 mg / kg / day.

[31] The method according to

[25] , wherein the effective amount is an oral dose ranging from 600 mg / day to 900 mg / day.

[32] The method according to

[25] , wherein the extract is administered at regular intervals.

[33] The method according to

[32] , wherein the extract is administered at least once a day.

[34] The method of

[32] , wherein the extract is administered daily for at least 45 days.

[35] The method of

[25] , wherein administration of the extract improves vitality, vitality, energy, or alertness.

[36] The method of

[35] , wherein said improvement in vigor, vitality, energy or alertness occurs without an increase in depression, low mood, fatigue or lethargy.

[37] Mood improvement was measured by POMS, as described in

[25] .

[38] A method for improving sleep in a mammal, comprising administering an effective amount of a Labiatae plant extract, wherein the main active components of the extract are rosmarinic acid and plant polyphenols.

[39] The method according to

[38] , wherein the mammal is a human or a companion animal.

[40] The method according to

[38] , wherein the plant is selected from the group consisting of basil, mint, sage, savory, marjoram, oregano, thyme, lavender, spearmint, and rosemary.

[41] The method according to

[38] , wherein the plant is selected from the genus Mentha.

[42] The method according to

[38] , wherein the extract contains at least 8% by weight of rosmarinic acid.

[43] The method according to

[38] , wherein the effective amount of the extract is 0.01 mg / kg / day to 50 mg / kg / day.

[44] The method according to

[38] , wherein the effective amount is an oral dose ranging from 600 mg / day to 900 mg / day.

[45] The method according to

[38] , wherein the extract is administered at regular intervals.

[46] The method of

[45] , wherein the extract is administered at least once a day.

[47] The method of

[45] , wherein the extract is administered daily for at least 45 days.

[48] ​​The method according to

[38] , wherein administration of the extract shortens sleep latency.

[49] The method according to

[38] , wherein administration of the extract improves the ability to fall asleep or behavior after waking.

[50] The method according to

[38] , wherein the improvement in sleep is measured by LSEQ.

Claims

1. 1. A composition for improving sleep in a mammal, comprising an effective amount of an extract from spearmint (Mentha spicata L.), administered for at least 45 days, The effective amount of the extract is 0.01 mg / kg / day to 50 mg / kg / day; The main active ingredients of the extract are rosmarinic acid and plant polyphenols, The extract contains at least 8% by weight of rosmarinic acid. composition.

2. The composition of claim 1 for shortening sleep latency.

3. 10. The composition of claim 1 for improving the ability to fall asleep, sleep quality, ease of waking from sleep, alertness and behavior after waking, sleep duration, or sleep efficiency.

4. 10. The composition of claim 1, wherein the improvement in sleep is measured by the Leed's Sleep Evaluation Questionnaire (LSEQ).

5. 10. The composition of claim 1, wherein the improved sleep improves vitality, alertness, and energy, and reduces fatigue.

6. 10. The composition of claim 1 for improving mood as measured by POMS.

7. 1. A composition for improving sleep in a mammal, comprising an effective amount of an extract from spearmint (Mentha spicata L.), administering at least 600 mg / day of the extract to the mammal for at least 45 days; The extract contains at least 8% by weight of rosmarinic acid. composition.

8. 8. The composition of claim 7, which is orally administered as a capsule.

9. 8. The composition of claim 7, wherein the composition is administered for at least 90 days.

10. 1. A composition for improving sleep in a mammal, comprising an effective amount of an extract from spearmint (Mentha spicata L.), The effective amount of the extract is 0.01 mg / kg / day to 50 mg / kg / day; The main active ingredients of the extract are rosmarinic acid and plant polyphenols, the extract contains at least 8% by weight of rosmarinic acid; administered at least twice daily, composition.

11. The composition of claim 10 for shortening sleep latency.

12. 11. The composition of claim 10 for improving the ability to fall asleep, sleep quality, ease of waking from sleep, alertness and behavior after waking, sleep duration, or sleep efficiency.

13. 11. The composition of claim 10, wherein the improvement in sleep is measured by LSEQ.

14. 11. The composition of claim 10, wherein the improved sleep improves vitality, alertness, and energy, and reduces fatigue.

15. 11. The composition of claim 10 for improving mood as measured by POMS.

16. 11. The composition of claim 10, administered at least three times per day.

17. 11. The composition of claim 10, wherein the composition is administered for at least 45 days.

18. 1. A composition for improving sleep in a mammal, comprising an effective amount of an extract from spearmint (Mentha spicata L.), administered for at least 90 days, The effective amount of the extract is 0.01 mg / kg / day to 50 mg / kg / day; The main active ingredients of the extract are rosmarinic acid and plant polyphenols, The extract contains at least 8% by weight of rosmarinic acid. composition.

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