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Morinda

Health Conditions38
Table of contents

Other Names

AachAalAchAchiAchuAi-nenukAinshiAkAlAninoAppunettiaAshyukaAwl treeAwltreeBa JiBa ji tianBa ji tian (巴戟天)Ba kichBajitianBamkoroBangkoroBangkuduBartundiBeach mulberryBeliceaBeliciaBengkuduBilimbiBingkudukBo-aalBois douleurBois tortueBulaBwa tortiCanary woodCaribe teChangkuduCheese fruitCheesefruitCheezefruitDiloDilo-KEaguguEast indian mulberryFei FroidFeyukkeFitoatyFriudemGreat morindaGuraGutenbergiaGuttenbergiaGynochthodes officinalisHag appleHai ba jiHai be jiHog appleIce leafImantinaIndian mulberryIndian mulberry rootJumbie breadfruitKaasvruchtKattapitalavamKemuduKesengelKikiriKonokono voalavoKoonjerungKuduKukureKuraLadaLeleLengon'antandroyLuo lingMaddiMaddi chettuMangal'wagManjanattiMannanattiMedicinal Indian mulberryMedicinal Indianmulberry RootMekuduMengkoedoeMengkuduMengkudu besarMengkudu jantanMhanbinMinamaramMingkuduMolaghaMora de la indiaMorinda angustifoliaMorinda asperaMorinda bracteataMorinda chachucaMorinda citrifoliaMorinda citrifolia subsp. ellipticaMorinda citrifolia var. potteriMorinda coreiaMorinda ellipticaMorinda ligulataMorinda litoralisMorinda littoralisMorinda lucidaMorinda macrophyllaMorinda morindoidesMorinda mudiaMorinda multifloraMorinda nodosaMorinda officinalisMorinda pubescensMorinda quadrangularisMorinda radixMorinda rootMorinda royocMorinda stenophyllaMorinda teysmannianaMorinda tinctoriaMorinda tinctoria subsp. multifloraMorinda tinctoria var. asperaMorinda tomentosaMorinda umbellataMorinda zollingerianaMorindae FoliumMorindae FructusMorindae officinalisMorindae RadixMorindeMouse's pineappleMulberryMunja pavattayNeihpahsaeNenNenukaNgelNgunaNgurataNhauNhoNhoo baanzNhorNinNo-noNokoNonNonaNoniNonoNono (Tahiti)NonuNuiNunaNuteOkoPachePain killerPain killer treePatjePemiiPindraPlatanocephalus orientalisPogonanthusPomme de singePomme-macaquePreyRacine du MorindaRadix MorindaeRadix Morindae OfficinalisRhubarbe caraïbeRiroRojocRonabeaRotten cheesefruitRotten cheesewoodRraRuibarboSamama citrifoliaSaraojiSarcocephalus leichhardtiiSarcopygmeSphaerophoraStigmanthusStigmatanthusStinkend kaasvruchtSurangiTagaseTe nonThomTogaruTokoonjaUraWeipwulWild pineWu ningYai yoYaiyaeYawYeiawa harachanYellow rootYema de hueroYoYo baanYo ban

Synopsis

Morinda: A Comprehensive Encyclopedic Reference

1. Identity and Botanical Classification

1.1 The Genus Morinda

The genus Morinda (family Rubiaceae) includes approximately 102 species and is distributed across tropical, subtropical, and temperate regions. Within the broader botanical and dietary supplement literature, the term "Morinda" most commonly refers to two distinct species that have attracted sustained scientific and commercial attention: Morinda citrifolia L. (noni) and Morinda officinalis F.C. How (Ba Ji Tian). A third species, Morinda lucida, is employed primarily in West African traditional medicine. These species are not interchangeable botanically or pharmacologically, although they share genus membership and certain chemical compound families.

1.2 Morinda citrifolia L. (Noni / Indian Mulberry)

Morinda citrifolia (Rubiaceae) is an evergreen shrub whose ripe fruit has a strong butyric acid smell and flavor. The leaves and especially the fruit are consumed in different forms by various communities throughout the world, while the root is also used as a dye. Morinda citrifolia has a variety of regionally significant names, including noni, great morinda, and Indian mulberry. It is native to Australasia and Southeast Asia and is naturalized throughout the Pacific region and the tropics.

Common names for M. citrifolia include: noni (Hawaiian/Polynesian), Indian mulberry, great morinda, cheese fruit, and Ba Ji Tian (a term sometimes applied to both this species and to M. officinalis depending on the regional tradition). Other commercially employed names include Tahitian Noni Juice® and Xeronine.

Morinda citrifolia is a small, tropical fruit tree commonly known as Indian Mulberry, Ba Ji Tian, or Noni, which has been used as a food and an herbal remedy for centuries in Polynesia and Southeast Asia.

1.3 Morinda officinalis F.C. How (Ba Ji Tian)

Morinda officinalis How, belonging to the genus Morinda of the family Rubiaceae, is a perennial vine naturally distributed in southern China and northern Vietnam. A commonly used traditional Chinese medicinal plant, it was first reported in the Shen Nong Ben Cao Jing and accepted in the Chinese Pharmacopoeia in 1963. The roots of M. officinalis, named bajitian in traditional Chinese medicine, are one of the four famous southern herbs from the Lingnan region of southern China. Scientifically, Morinda officinalis is the most common name of this species, but it is also known as Gynochthodes officinalis (F.C. How) Razafim. & B. Bremer.

1.4 Common Preparations and Dosage Forms

For M. citrifolia, commercially available preparations include:

  • Fruit juice — the dominant commercial form, typically prepared by fermenting or pressing ripe fruit; sold under brand names such as Tahitian Noni Juice®
  • Fruit puree and concentrate — approved as a novel food ingredient in the European Union
  • Capsules and tablets — containing dried fruit powder or standardized extracts
  • Leaf infusions (teas) — prepared from dried leaves
  • Topical preparations — used in cosmetic and skincare applications

Noni juice as a dietary supplement has driven more research focus on the compositional analysis of the fruit, including phenols, polysaccharides, coumarins, fatty acids, cyclic enol ether terpenes, flavonoids, carotenoids, essential oils, and other components; the composition of vitamins, amino acids, and trace minerals has also been reported.

For M. officinalis, preparations include:

  • Decoctions of dried root — the classical TCM preparation
  • Capsules containing oligosaccharide extracts — a modern pharmaceutical form approved in China for depression
  • Nourishing soups and tonics — used as functional foods in southern China
  • Wine preparations and powders — used in combination TCM formulas

2. Traditional and Historical Use

2.1 Morinda citrifolia in Polynesian, Hawaiian, and Pacific Island Traditions

Morinda citrifolia, commonly referred to as noni, is a Polynesian medicinal plant with over 2,000 years of traditional use. Noni is believed to be among the original plants that Pacific islanders brought with them in their voyaging canoes; they valued the plant for its medicine and dyes.

Remedies from isolated Polynesian cultures, such as that of Rotuma, illustrate traditional indications that focus upon leaves, roots, bark, and green fruit, primarily for topical ailments. All parts of the plant, including its fruit, leaves, bark, and root, are used by peoples native to Southeast Asia and the Pacific. The fruit is also used by Australian Aboriginal peoples.

In Polynesian culture, Morinda citrifolia is believed to be a gift from the gods and to be connected to the volcano goddess Pele. Polynesian peoples further associate the plant with the revival of the demigod Maui. Green fruit, leaves, and root or rhizomes might have been used in Polynesian cultures as a general tonic, in addition to its traditional place in Polynesian culture as a famine food.

Anecdotally collected Hawaiian remedies that employ noni fruit illustrate changing usage patterns, with shifts in recent times toward preparation of juice made of ripe or decaying fruit. Its fruit is fermented for juice and is used in curry, cooked rice dishes, and sauces.

Morinda citrifolia L., also known as noni, has been used traditionally as a folk remedy for many diseases, including diabetes, hypertension, and cancer in Polynesia, South and Southeast Asia, Northeastern Australia, and the Caribbean, owing to its diverse biological activities.

2.2 Morinda citrifolia in Indian, Southeast Asian, and Caribbean Traditions

The bark, stem, root, leaf, and fruit have been used traditionally as a folk remedy for many diseases including diabetes, hypertension, and cancer. In Indian traditional medicine (Ayurveda), the plant is known as Ashyuka and has historically been used for its analgesic and anti-inflammatory properties, applied both internally and topically. In the Caribbean and Central America, where the plant was introduced by migrating peoples, fruit preparations have been used for pain management and digestive complaints.

2.3 The Transition to Commercial Use

Ralph M. Heinicke promoted a wide range of claims about noni, and these seem to have fueled much of the current commercial interest in the plant. Recent studies of the proliferation of commercial products have shown that noni product manufacturers promote a range of therapeutic claims. These claims are based upon traditional Polynesian uses, Heinicke's ideas, and fragments of recent scientific studies including the activity of noni in the treatment of cancer. Noni juice was approved as a novel food by the European Commission in 2003.

2.4 Morinda officinalis in Traditional Chinese Medicine

M. officinalis, a commonly used traditional Chinese medicinal plant, was first reported in the Shen Nong Ben Cao Jing and accepted in the Chinese Pharmacopoeia in 1963. The Shen Nong Ben Cao Jing is the earliest surviving Chinese pharmacopoeia, dating to approximately the first or second century CE, making documented use of M. officinalis extremely ancient.

The medicinal plant Morinda officinalis How and its root have long been used in traditional medicines in China and northeast Asia as tonics for nourishing the kidney, strengthening the bone, and enhancing immune function in the treatment of impotence, osteoporosis, depression, and inflammatory diseases such as rheumatoid arthritis and dermatitis.

M. officinalis is a lianoid shrub mainly growing in mountains and forests of tropical and subtropical regions. Now it can be artificially cultivated. The application of M. officinalis root can be dated back to the late Qing Dynasty. It is now cultivated in Guangdong, Guangxi, and Fujian provinces of China and is regarded as a famous-region medicinal herb of Guangdong province. According to the book "Yaowu Chuchanbian" (A.D. 1930) written by CHEN Renshan, M. officinalis from Qingyuan, Sankeng, and Luoding of Guangdong province is regarded as the top-grade medicinal material.

Morindae officinalis radix (MOR), the dried root of medicinal plant Morinda officinalis How (Rubiaceae), has long been used in tonics and nutrient supplements — including healthcare products, nourishing soups, and drinks — in the southeast region of China for its action in nourishing the kidney, anti-osteoporosis, immune-enhancing effects, and for alleviating a wide spectrum of diseases.


3. Key Constituents and Active Compounds

3.1 Morinda citrifolia: Phytochemical Profile

The noni plant contains more than 160 chemical constituents, of which 120 are considered nutraceuticals; recognized phytochemical constituents include scopoletin, anthraquinones, octoanoic acid, vitamin C, terpenoids, β-sitosterol, polysaccharides, flavone glycosides, linoleic acid, carotene, alizarin, gallic acid, rosmarinic acid, amino acids, aucubin, L-asperuloside, ursolic acid, quercetin, rutin, and proxeronine.

Studies on the phytochemistry of M. citrifolia have focused on the roots, leaves, and fruits, with anthraquinones, iridoids, flavonoids, and coumarins as the main compounds; among these, damnacanthal, scopoletin, rutin, ursolic acid, and asperuloside are the main components. The compounds isolated from the roots are dominated by anthraquinone compounds (e.g., damnacanthal and sterols). The M. citrifolia leaves contain a variety of iridoids, flavonoids, and triterpenoids.

Anthraquinones

Anthraquinones, in particular damnacanthal, morindone, morindin, and aucubin, asperuloside, and scopoletin, have been prominently identified. These phenolics exhibit their antioxidative activity via several mechanisms of action, including as reducing agents, singlet oxygen quenchers, hydrogen donating antioxidants, free radical scavengers, and metal ion chelators.

Other anthraquinones isolated from M. citrifolia include alizarin, morindadiol, nordamnacanthal, rubiadin, ibericin, tectoquinone, lucidin, damnacanthol-ω-ethyl ether, lucidin-ω-butyl ether, rubiadin-dimethyl ether, rubiadin-1-methyl ether, rubiadin-3-methyl ether, and 1-hydroxy-2-methyl-9,10-anthraquinone.

Iridoids

Key iridoids include aucubin, asperulosidic acid, deacetylasperulosidic acid (DAA), and asperuloside. Isolation from M. citrifolia fruits has also yielded iridoid glucosides such as 6alpha-hydroxyadoxoside and 6beta,7beta-epoxy-8-epi-splendoside, along with asperuloside, asperulosidic acid, borreriagenin, citrifolinin B epimers, deacetylasperuloside, and dehydromethoxygaertneroside, among other known iridoids and non-iridoid compounds. Deacetylasperulosidic acid is quantitatively dominant among the iridoids: deacetylasperulosidic acid accounts for approximately 78% of the total iridoid content in commercial noni juice products.

Coumarins: Scopoletin

Scopoletin (6-methoxy-7-hydroxycoumarin) is among the most pharmacologically studied single compounds from M. citrifolia. Scopoletin is an active principle obtained from Morinda citrifolia that efficiently quenches oxidative stress through DJ-1/Nrf2 signaling. Administration of M. citrifolia extract has been shown to lessen protein aggregation as evidenced by decreased levels of nitrotyrosine and α-synuclein. In vitro studies revealed that scopoletin lessened rotenone-induced apoptosis in SH-SY5Y cells through preventing oxidative injury. Particularly, scopoletin markedly upregulated DJ-1, which then promoted the nuclear translocation of Nrf2 and transactivation of antioxidant genes.

Flavonoids

Key flavonoids include kaempferol and rutin. Rutin and other flavonols contribute to the plant's antioxidant and anti-inflammatory profile.

Polysaccharides

Polysaccharides and iridoids demonstrate dual antioxidant and anti-inflammatory effects via gut microbiota regulation. Among the notable polysaccharides, nonioside A has been identified in the fruit.

Xeronine and Proxeronine (Disputed)

Xeronine, a small alkaloid that has been patented (US4543212), is one of the bioactive compounds proposed for noni fruit, believed to be capable of modifying the molecular structure of specific inactive proteins thereby regulating proper folding to active enzymes. Despite reports of the potential of xeronine as a therapeutic agent, its presence is controversial and its structure has not been fully explored. The proxeronine theory was primarily promoted by biochemist Ralph Heinicke, and there remains insufficient peer-reviewed structural and mechanistic verification to consider this a firmly established active compound. Claims based solely on this theory should be treated with caution.

3.2 Morinda officinalis: Phytochemical Profile

Iridoid glycosides, anthraquinones, polysaccharides, and oligosaccharides are the main bioactive constituents of M. officinalis.

Oligosaccharides and Polysaccharides

The main active components of Morinda officinalis include sugars, anthraquinones, and iridoids. Among these, sugars — including monosaccharides, polysaccharides, and oligosaccharides — are considered the primary bioactive constituents. The polysaccharides in M. officinalis mainly consist of glucose and fructose, which have antifatigue, antidepressant, and anti-osteoporosis roles.

Iridoids of M. officinalis

Monotropein, a kind of iridoid compound, has potent anti-inflammatory and analgesic effects and is the main component of M. officinalis for dispelling wind and eliminating dampness.

Anthraquinones of M. officinalis

Phytochemical studies have shown that M. officinalis contains anthraquinones, iridoids, flavonoids, polysaccharides, volatile oils, and other important compounds. Anthraquinones are one of the main active components and mainly contain physcion, rubiadin-1-methylether, anthragallol-2-methylether, etc., which have various biological activities such as antibacterial, anticancer, anticoagulant, and antiviral activities.


4. Mechanisms of Action

4.1 Antioxidant Mechanisms

Systematic analyses reveal that noni-derived compounds exhibit potent free radical scavenging capacity (e.g., DPPH/ABTS inhibition), upregulate endogenous antioxidant enzymes (superoxide dismutase, catalase, glutathione peroxidase), and modulate key pathways such as Nrf2/Keap1 and NF-κB.

4.2 Anti-Inflammatory Mechanisms

Studies on Hawaiian noni fruit juice identified compounds with anti-inflammatory activity in lipopolysaccharide (LPS)-stimulated RAW 264.7 macrophages; five compounds — asperulosidic acid, rutin, nonioside A, a fatty acid glucoside, and tricetin — were isolated by bioassay-driven phytochemical analysis and shown to inhibit the production of nitric oxide (NO), a proinflammatory mediator, in LPS-stimulated macrophages.

4.3 Anticancer Mechanisms

Damnacanthal, an anthraquinone compound isolated from the roots of M. citrifolia L. (noni), has been used for traditional therapy in several chronic diseases, including cancer. Although noni has long been consumed in Asian and Polynesian countries, the molecular mechanisms by which it exerts several benefits are starting to emerge. Treatment of MCF-7 cells with damnacanthal indicated an antiproliferative activity; damnacanthal inhibited the growth of MCF-7 breast cancer cells at a concentration of 8.2 μg/mL for 72 hours, was found to induce cell cycle arrest at the G1 checkpoint in MCF-7 cells, and induced apoptosis as determined by Annexin V/PI dual-labeling, acridine-orange/PI dyeing, and caspase-7 expression.

Various demonstrated anticancer properties in different cancer models have been reported, with multiple mechanisms including antitumor, antiproliferative, pro-apoptotic, antiangiogenesis, antimigratory, anti-inflammatory, and immunomodulatory activities.

4.4 Antidepressant Mechanisms (M. officinalis)

Morinda officinalis oligosaccharides (MOO) are an oral drug approved in China for the treatment of depression. However, MOO is poorly absorbed, meaning their antidepressant mechanism had not been straightforwardly elucidated through direct pharmacokinetics. Research has subsequently demonstrated that MOO exerts antidepressant effects partly through modification of gut microbiota, thereby promoting 5-hydroxytryptophan (5-HTP) production and increasing serotonin levels in the brain.


5. Scientific Evidence by Area of Use

5.1 Antioxidant Activity

Human/Clinical Evidence (Moderate): To evaluate antioxidant activity in humans, Tahitian noni juice (TNJ) was evaluated in a 30-day, double-blind, placebo-controlled clinical trial with 285 current heavy smokers. Research participants were randomly assigned to three daily treatment groups: 118 mL placebo, 29.5 mL TNJ, and 118 mL TNJ. Plasma superoxide anion radicals (SAR) and lipid hydroperoxide (LOOH) levels were measured pre- and post-intervention. After 30 days, mean SAR decreased significantly in both TNJ dose groups (P < 0.01 and P < 0.001, respectively). The most significant effect of TNJ in this trial was on mean post-test plasma LOOH concentrations; in both TNJ groups, these were significantly less than pre-test values and the post-test mean of the placebo group.

Additionally, 245 heavy cigarette smokers completed a randomized, double-blind, placebo-controlled clinical trial designed to investigate the effect of noni juice on lipid hydroperoxide (LOOH)- and malondialdehyde (MDA)-DNA adducts in peripheral blood lymphocytes; volunteers drank noni juice or a fruit juice placebo every day for one month. Drinking 29.5–118 mL of noni juice significantly reduced adducts by 44.6–57.4%. The placebo, which was devoid of iridoid glycosides, did not significantly influence LOOH- and MDA-DNA adduct levels.

Evidence Characterization: These human trials demonstrate statistically significant antioxidant effects in a specific population (heavy smokers). Generalizability to healthy non-smoker populations has not been established in equivalent controlled studies. The evidence is promising but requires replication in broader populations.

5.2 Cardiovascular Risk Markers and Lipid Profiles

Human/Clinical Evidence (Moderate): 132 adult heavy smokers completed a randomized, double-blind, placebo-controlled clinical trial designed to investigate the effect of noni juice on serum cholesterol, triglyceride, LDL, HDL, high-sensitivity C-reactive protein (hs-CRP), and homocysteine; volunteers drank noni juice or a fruit juice placebo daily for one month. Drinking 29.5 mL to 188 mL of noni juice per day significantly reduced cholesterol levels, triglycerides, and hs-CRP. Decreases in LDL and homocysteine, as well as increases in HDL, were also observed among noni juice drinkers. The placebo, which was devoid of iridoid glycosides, did not significantly influence blood lipid profiles or hs-CRP.

Evidence Characterization: Findings are statistically significant in the enrolled smoker population and point toward the iridoid fraction as the likely active component. These results should be interpreted cautiously: the study population has particularly elevated baseline oxidative stress and dyslipidemia. Results have not been replicated in populations without smoking-related oxidative stress.

5.3 Anti-Inflammatory Effects

Human/Clinical Evidence (Limited): A prospective, randomized, double-blind, placebo-controlled trial was conducted in 100 university students aged 18 years and older over three menstrual cycles to evaluate the effect of 400 mg of noni capsules twice daily compared with placebo on pain and menstrual blood loss in the treatment of primary dysmenorrhoea. Of the 1,027 women screened, 100 eligible women were randomized; of those completing the study, 42 were assigned to noni and 38 to placebo.

Animal/Preclinical Evidence: Since noni is used to treat rheumatoid arthritis in traditional oriental medicine, researchers determined that noni might have anti-inflammatory properties by injecting aqueous extracts of noni derived from a slurry of ripe fruits (10 mg and 200 mg) into rats, and reported a dose-dependent reduction in paw inflammation triggered by an injected pro-inflammatory agent.

Evidence Characterization: Preclinical (animal and in vitro) evidence for anti-inflammatory activity is consistent across multiple studies. Human controlled trial evidence remains limited. The dysmenorrhoea trial provides one of the few prospective randomized human studies, but the sample size was small.

5.4 Anticancer Properties

Systematic Review Evidence: Morinda citrifolia L. has shown anticancer properties in in vitro, in vivo, and in clinical studies. A systematic review was conducted to collate scientific evidence using pre-determined keywords on five electronic databases (MEDLINE, CENTRAL, LILACS, Web of Science, EBSCOHost). A total of 51 clinical and preclinical studies comprising 41 efficacy studies and 10 safety studies were included.

Based on currently available clinical and preclinical efficacy evidence, noni is a potentially valuable medicinal plant in the treatment of cancer. The anticancer activities are evidently shown in breast and lung cancer models in which tumor volume is significantly decreased through apoptosis as well as disruption in cell migration and proliferation pathways.

In vitro and animal studies have shown potential antioxidant action, immune function stimulation, and antitumor activity, but there have been few trials in humans for any condition and no randomized controlled trials in cancer patients. An uncontrolled Phase 1 study showed no effect in tumor regression.

Evidence Characterization: The body of anticancer evidence is largely preclinical (cell culture and rodent models). While mechanisms such as damnacanthal's activity against tyrosine kinases are biologically plausible and have been demonstrated in vitro, no robust human randomized controlled trials have demonstrated anti-tumor efficacy in clinical oncology settings. Any therapeutic claims regarding cancer treatment must be viewed as highly preliminary.

5.5 Neuroprotective Effects

Preclinical Evidence: Research has tested the hypothesis that scopoletin, an active principle from M. citrifolia, efficiently quenches oxidative stress through DJ-1/Nrf2 signaling and ameliorates rotenone-induced Parkinson's disease (PD) in animal models. Despite reducing oxidative stress, administration of M. citrifolia extract lessened protein aggregation as evidenced by decreased levels of nitrotyrosine and α-synuclein. In vitro studies revealed that scopoletin lessened rotenone-induced apoptosis in SH-SY5Y cells through preventing oxidative injury.

Evidence Characterization: Neuroprotective evidence is entirely preclinical (animal and cell models). No human clinical trials for neurodegenerative conditions have been published as of the most recent review literature searched.

5.6 Antidepressant Effects (M. officinalis)

Regulatory / Clinical Evidence: Morinda officinalis oligosaccharides (MOO) are an oral drug approved in China for the treatment of depression. The oligosaccharide components exhibit significant antidepressant pharmacological activities; due to their antidepressant activities, Morinda officinalis oligosaccharide capsules not only have a significant antidepressant effect when used alone but also offer greater advantages when used in combination with other drugs.

Proposed Mechanism: Research has demonstrated that MOO exerts antidepressant effects partly by promoting 5-hydroxytryptophan (5-HTP) production through alteration of gut microbiota, thereby increasing serotonin in the brain — a mechanism distinct from classical serotonin reuptake inhibition and related to the gut-brain axis.

Evidence Characterization: The regulatory approval in China represents the strongest level of clinical evidence for any Morinda-derived compound in psychiatry. However, the specific clinical trial data underlying this approval have been primarily conducted and published in China, and the compound has not received regulatory approval in Western jurisdictions. Independent replication in large randomized controlled trials would further strengthen confidence.

5.7 Bone Health and Anti-Osteoporosis Effects (M. officinalis)

Preclinical Evidence: M. officinalis increases OPG expression, inhibits IL-6 and TNF-α expression, and promotes osteoblast proliferation in addition to the release of ALP and OC. After 4 weeks of ovariectomy, a study showed oral treatments with Morinda officinalis capsules prevented bone mass loss. Moreover, it raised plasma levels of serum ALP, TRAP, and OC, and increased bone mass and stopped the trabecular microarchitecture from deteriorating.

Pharmacological studies have indicated that the oligosaccharide components of Morinda officinalis possess significant anti-osteoporosis effects, highlighting their potential for further development and utilization.

Evidence Characterization: Evidence is primarily from in vitro and ovariectomized rodent models. There is a biologically plausible mechanism involving osteoblast stimulation and osteoclast suppression. Human clinical evidence specifically for osteoporosis treatment with M. officinalis preparations is limited in the English-language literature.

5.8 Reproductive and Aphrodisiac Effects (M. officinalis)

The roots of M. officinalis are widely used for the treatment of various diseases, such as impotence, infertility, abnormal menstruation, rheumatism, and arthralgia. Its dried roots are broadly used to treat various diseases such as impotence and rheumatism. The roots — an important traditional Chinese medicine and functional food — have been widely used for the treatment of sexual impotence, spermatorrhea, irregular menstruation, and female infertility for more than 2,000 years.

Various pharmacological and clinical studies have linked M. officinalis with aphrodisiac and immunomodulatory effects and anti-osteoporosis activity.

Evidence Characterization: The reproductive and aphrodisiac uses are strongly embedded in classical TCM texts and supported by animal studies. Human clinical evidence is limited and primarily comes from TCM clinical reports rather than rigorous randomized controlled trials that meet modern international methodological standards.

5.9 Antibacterial Properties

In Vitro Evidence: Extracts from noni leaves possessed antibacterial effects against Bacillus subtilis, Escherichia coli, Proteus vulgaris, and Staphylococcus aureus. Six phenolic compounds, including 5,15-dimethylmorindol, ferulic acid, p-hydroxycinnamic acid, methyl 4-hydroxybenzoate, methyl ferulate, and methyl 4-hydroxycinnamate, were identified as responsible compounds.

Evidence Characterization: Antibacterial evidence is exclusively in vitro. No human clinical trials for infectious diseases have been reported.


6. Body Systems and Health Areas Associated with Morinda

Based on the reviewed literature, Morinda species have been studied or used in relation to the following body systems:

  • Cardiovascular system: Lipid-lowering, antioxidant protection of vascular tissues, anti-inflammatory (reduction of hs-CRP and homocysteine) — primarily via human studies in smokers.
  • Immune system: Immunomodulatory polysaccharides (M. citrifolia fruit juice) have been studied in vitro and in animal models; anti-tumor immune stimulation is a proposed mechanism in cancer models.
  • Musculoskeletal system: M. officinalis has traditional use and preclinical evidence for anti-osteoporotic and anti-rheumatic effects; promotion of osteoblast activity and inhibition of osteoclastogenesis have been demonstrated in cell and animal studies.
  • Central nervous system: Scopoletin-mediated neuroprotection (Nrf2 pathway) studied in Parkinson's disease models; oligosaccharide-mediated antidepressant effects via gut-brain axis in M. officinalis.
  • Reproductive system: M. officinalis root has a millennia-long history in TCM for impotence, infertility, and menstrual irregularities; supported by animal research and limited clinical data from TCM practice.
  • Gastrointestinal system: Scopoletin acts as a 5-HT4 receptor agonist, influencing gastrointestinal motility; anthraquinones have mild laxative properties; noni may accelerate gastric emptying and modulate gut microbiota.
  • Integumentary system (skin): Traditional topical use for skin infections, wound healing, and anti-aging; cosmetic preparations are marketed based on antioxidant constituent activity.
  • Metabolic system: Animal studies have suggested hypoglycemic and hypolipidemic effects; human data in specific high-oxidative-stress populations support lipid-lowering activity.

7. Dosages Reported in Studies

The following dosages were reported in the specific studies identified above. These are presented solely as data points from published research and do not constitute dosage recommendations.

  • Noni juice (antioxidant, lipid-profile trials in smokers): In the 30-day, double-blind, placebo-controlled trial with 285 heavy smokers, daily treatment groups received either 29.5 mL or 118 mL of Tahitian noni juice.
  • Noni juice (lipid markers, 132-subject trial): Drinking 29.5 mL to 188 mL of noni juice per day significantly reduced cholesterol levels, triglycerides, and hs-CRP.
  • Noni capsules (dysmenorrhoea trial): Patients received 400 mg noni capsules or placebo. The study design evaluated 400 mg of noni twice daily compared with placebo.
  • DNA adduct reduction trial (smokers): Drinking 29.5–118 mL of noni juice significantly reduced DNA adducts by 44.6–57.4%.
  • M. officinalis oligosaccharides (depression, approved in China): Morinda officinalis oligosaccharide capsules are the approved oral form, but precise dosing from the specific approval regimen was not reported in the English-language sources reviewed.

8. Safety Considerations and Drug Interactions

8.1 Hepatotoxicity

Hepatotoxicity attributed to noni juice has occasionally been severe and led to acute liver failure, which in at least one case necessitated emergency liver transplantation. Rechallenge studies have not been reported.

In a reported two-case series, the first patient underwent successful liver transplantation while the second patient recovered spontaneously after cessation of NONI juice. The temporal relationship between NONI intake and liver dysfunction and extensive exclusion of alternative causes of acute hepatitis confirmed herbal hepatotoxicity in both cases. Causality assessment using the CIOMS scale yielded a score of +5 ("possible") in case 1 and a score of +7 ("probable") in case 2.

The most likely hepatotoxic components of Morinda citrifolia were identified as anthraquinones.

A review of the first four cases by the European Food Safety Authority (EFSA) concluded that there was "no convincing evidence for a causal relationship between the acute hepatitis observed in the case studies reported and the consumption of noni juice." Nonetheless, LiverTox (NIH) rated the likelihood of noni juice as a cause of liver injury as C (probable rare cause of clinically apparent liver injury), with the cases having all the characteristics of idiosyncratic liver injury rather than direct toxicity. Latency was between 2 to 8 weeks and resembled acute hepatitis with a hepatocellular pattern of serum enzyme elevations.

Two compounds isolated from M. citrifolia have been associated with hepatotoxicity: anthraquinones (dose-dependent) and coumarins (idiosyncratic); however, such causality needs to be further evaluated. Although several hepatotoxicity cases were reported, there is insufficient evidence to adequately assess the causality of noni as the causative agent.

A case of a 38-year-old woman who developed acute liver injury associated with noni juice consumption while on long-term (9 months) anticonvulsant therapy has been reported; clinical presentation and liver biopsy were consistent with severe, predominantly hepatocellular type of injury.

A pediatric case is notable: a case of acute hepatotoxicity after ingestion of an energy drink containing noni berries was reported in a previously healthy 14-year-old boy, who presented with fatigue and scleral icterus. Initial tests demonstrated an alanine aminotransferase (ALT) elevated to 3,000 U/L with direct bilirubin of 4.4 mg/dL and INR of 1.6. The patient had a peak ALT of 3,407 U/L and peak direct bilirubin of 12.3 mg/dL, which normalized two months after cessation of noni berry juice consumption; the patient recovered completely.

8.2 Potassium and Hyperkalemia

Noni contains relatively high levels of potassium (similar to levels in orange and tomato juice), and a case of hyperkalemia was reported in a patient with chronic renal insufficiency. Due to the potassium content of some noni juice products, there is a potential for interaction with drugs causing increased potassium levels. Individuals with renal impairment or those taking potassium-sparing diuretics or ACE inhibitors should be aware of this risk.

8.3 Drug Interactions

Warfarin/Anticoagulants: One case has been reported of resistance to the anticoagulant coumadin due to the vitamin K content of the particular noni product being used by the patient. There is a theoretical risk of reduced warfarin effects.

Phenytoin: A case of unsafe interaction between a commercial product of noni juice and phenytoin has been reported. Persistent subtherapeutic phenytoin levels (<10 mg/L) and poor seizure control were observed in an epileptic patient who co-administered noni fruit juice daily.

Phenobarbital (and anticonvulsants generally): In a reported drug-herb interaction case, both the noni juice and the anticonvulsant (phenobarbital) were stopped and corticosteroids were initiated; the patient had fully recovered five months later.

Gastrointestinal motility drugs (theoretical): A single-dose, randomized, open-label, 2-period crossover study in 20 healthy volunteers showed that the aqueous fruit extract influenced the motor activity of the gastrointestinal tract. The fruit extract enhanced the rate and extent of ranitidine absorption, partly due to the ability of its active component scopoletin to stimulate the 5-HT4 receptor.

Antihypertensives (theoretical): There is a theoretical risk of hypotension in those treated with antihypertensives.

8.4 EU Regulatory Status

Noni juice was approved as a novel food by the European Commission in 2003. An EFSA Panel concluded that, on the basis of data provided, the use of dried noni leaves for preparation of infusions was safe (EFSA 2008).

8.5 Genotoxicity Considerations

Morinda citrifolia (noni) is known to contain genotoxic anthraquinones in the roots. Because of the widespread use of noni juice, the possible genotoxic risk has been examined through a battery of short-term tests. Commercial noni juice is primarily derived from the fruit pulp and juice, which contains far lower concentrations of anthraquinones than the roots; formal testing of commercial juice fractions found no genotoxic signal at tested concentrations. Nevertheless, this remains an area of monitoring interest given the structural class of anthraquinone compounds.


References

Health Conditions

Health conditions that Morinda may help support.

  • Both M. officinalis and M. citrifolia possess well-characterised antioxidant activity. M. officinalis polysaccharides scavenge free radicals and activate the Nrf2/ARE pathway. M. citrifolia noni juice reduced malondialdehyde (MDA)-DNA adducts by 53% in a placebo-controlled clinical trial of 203 heavy smokers.

  • ArthritisScientific

    Both M. officinalis and M. citrifolia extracts demonstrate anti-arthritic and analgesic effects in preclinical models, and M. citrifolia has traditional documentation for arthritis across Polynesian, Asian, and Caribbean traditional medicine. Iridoid glycosides and anthraquinones are the primary active constituents suppressing inflammation via NF-κB and MAPK pathways.

  • Blood PressureScientific

    M. citrifolia noni juice significantly decreased systolic and diastolic blood pressure in spontaneously hypertensive rats in a 6-week study, operating via a GLP-1R-CaMKKβ-AMPK-eNOS endothelial pathway promoting vascular NO production. Traditional use of noni for hypertension is documented across multiple Pacific and Asian healing traditions.

  • M. officinalis root extract has demonstrated antidiabetic activity in high-fat diet/streptozotocin-induced diabetic mouse models, improving blood glucose, insulin, and lipid parameters. M. citrifolia has been documented for diabetes across multiple traditional medicine systems and shows antidiabetic activity in animal models.

  • Bone DensityScientific

    Multiple preclinical studies demonstrate that Morinda officinalis root extracts and saponins promote osteoblast differentiation, increase bone mineral density, and inhibit osteoclast activity via BMP-SMAD and NF-κB pathways. Animal models of ovariectomy-induced osteoporosis show significant protection of bone mass. Human clinical evidence is indirect but the mechanism is well-characterised.

  • CholesterolScientific

    A randomised double-blind placebo-controlled clinical trial of 132 heavy smokers found M. citrifolia noni juice (29.5–188 mL/day) significantly reduced total cholesterol, LDL, triglycerides, and hs-CRP while increasing HDL. Animal studies with M. citrifolia fruit, leaf, and root extracts confirmed significant reductions in total cholesterol, LDL-C, and triglycerides in high-fat-diet models.

  • Morinda officinalis iridoid glycosides, anthraquinones, and polysaccharides suppress pro-inflammatory cytokines (TNF-α, IL-1β, IL-6, IL-17) and inhibit NF-κB and MAPK signalling pathways in multiple in vitro and in vivo models. M. citrifolia fruit juice demonstrated anti-inflammatory effects in a clinical trial of heavy smokers (reduced hs-CRP).

  • Chronic PainScientific

    M. officinalis iridoid glycosides and M. citrifolia fruit extract demonstrate analgesic activity in preclinical pain models (acetic acid writhing test, hot plate test). In Caribbean traditional medicine, M. citrifolia is referred to as the 'painkiller bush.' Antinociceptive effects of M. officinalis are listed in pharmacological literature.

  • M. officinalis oligosaccharides (MOO) have been studied in multiple Alzheimer's disease animal models, demonstrating improved learning and memory, reduced amyloid-β toxicity, suppression of neuroinflammation, and activation of neuroprotective Nrf2/ARE antioxidant pathways. A dedicated 2022 Frontiers in Aging Neuroscience review summarises these neuroprotective mechanisms.

  • DepressionScientific

    Morinda officinalis oligosaccharides (MOO) are the most clinically studied active fraction for depression. A systematic review and meta-analysis of seven clinical studies (n=1,384) found MOO capsules non-inferior to conventional antidepressants such as fluoxetine for mild-to-moderate depression. Preclinical work shows MOO acts via the BDNF/TrkB/CREB pathway and gut-microbiota-mediated serotonin (5-HTP) production.

  • DermatitisScientific

    M. officinalis extract attenuated atopic dermatitis-like inflammation in a DNCB-induced mouse model via modulation of the MALAT1/miR-590-5p/CCR7 axis. M. citrifolia (fermented noni) also reduced DNCB-induced atopic dermatitis lesions in NC/Nga mice, improving dermatitis scores, immune balance, and skin barrier function. Traditional use of both species for skin inflammation is documented.

  • EnergyScientific

    M. officinalis polysaccharides (MP-1, MP-2, MP-3) demonstrated antifatigue activity in weight-loaded swimming mouse models. Traditional TCM use of the root as a tonic to combat fatigue and enhance physical vitality is extensively documented across classical texts.

  • M. officinalis oligosaccharides (MOO) alleviated CUMS-induced erectile dysfunction in mice alongside antidepressant effects, operating via HPG axis normalisation and BDNF/TrkB/CREB pathway activation. Traditional TCM documentation for impotence (erectile dysfunction) as a primary indication dates to the Shennong Bencao Jing.

  • Morinda officinalis bajijiasu, oligosaccharides, and polysaccharides have been shown in animal studies to enhance sperm motility, count, and morphology; increase testosterone levels; and protect human sperm DNA from oxidative damage. Polysaccharides activate the SIRT1/PGC-1α pathway in Leydig cells to promote testosterone secretion.

  • Healthy AgingScientific

    Traditional TCM records that M. officinalis 'delays aging,' and modern pharmacology has identified antifatigue, antioxidant, anti-inflammatory, immunomodulatory, and anti-tumour activities underpinning this claim. M. officinalis polysaccharides demonstrated antifatigue activity in weight-loaded swimming models in mice.

  • Heart HealthScientific

    M. citrifolia noni extracts demonstrate cardiovascular benefits through multiple mechanisms: antihypertensive effects via eNOS activation, antidyslipidaemic effects (reduced cholesterol, LDL, triglycerides), antioxidant protection of endothelial cells against AGE-induced damage, and anti-inflammatory reductions in hs-CRP. Clinical trial evidence supports lipid and inflammation benefits.

  • M. officinalis root extracts have demonstrated efficacy in reducing colitis severity in dextran sodium sulfate (DSS)-induced chronic ulcerative colitis mouse models, reducing pro-inflammatory cytokines and regulating T lymphocyte apoptosis. The relevant iridoid monotropein from M. officinalis roots has also been shown to attenuate NF-κB-mediated colitis.

  • Bajijiasu isolated from M. officinalis enhanced sexual function (mounting frequency, intromission) and testosterone levels in male mice, with histological evidence of testicular activity. Oligosaccharides from the root alleviated chronic stress-induced sexual dysfunction in CUMS mice via BDNF/TrkB/CREB and HPG axis normalisation.

  • Liver DetoxScientific

    M. officinalis-derived polysaccharides inhibit neutrophil and macrophage infiltration into the liver, acting as immune regulators to alleviate hepatic injury. M. citrifolia demonstrates hepatoprotective activity against CCl4-induced liver damage in rats, attributed to the antioxidant activity of flavonoid constituents.

  • MemoryScientific

    M. officinalis oligosaccharides significantly improved learning and memory in Aβ25-35-induced dementia model rats, and bajijiasu protected against cognitive impairment in APP/PS1 Alzheimer mice. Mechanisms include enhanced monoamine neurotransmitter levels, cholinergic system support, and antioxidant neuroprotection.

  • Morinda citrifolia (noni) was tested in a randomised double-blind placebo-controlled trial of 100 university students with primary dysmenorrhoea. The trial assessed pain scores, menstrual blood loss, and inflammatory markers over three menstrual cycles using 400 mg noni capsules.

  • M. citrifolia demonstrates activity across multiple components of metabolic syndrome: reduced cholesterol, LDL, and triglycerides; improved blood glucose; lower blood pressure; and reduced systemic inflammation (hs-CRP). A dedicated PMC review (2017) examined its potential in obesity-related metabolic dysfunction.

  • Morinda officinalis root extracts inhibit bone loss through dual action: stimulating osteoblast differentiation (via BMP-SMAD signalling) and suppressing osteoclast activity (via NF-κB inhibition). These effects have been reproducibly demonstrated in ovariectomized rodent models of postmenopausal osteoporosis.

  • Morinda officinalis iridoid glycosides (MOIG) and M. citrifolia extracts have demonstrated anti-arthritic activity in well-characterised animal models. MOIG suppresses synovial fibroblast proliferation and key inflammatory cytokines (IL-1β, IL-6, IL-17a) through MAPK and NF-κB pathway inhibition. Traditional TCM use for rheumatoid arthritis is extensively documented.

  • M. citrifolia is listed in a comprehensive 2017 literature review (Torres et al.) as having 'antiwrinkle and photoprotective activities.' Traditional TCM texts record that M. officinalis 'delays aging,' and modern research attributes anti-aging skin effects to antioxidant (Nrf2/ARE) and anti-glycation (AGE-RAGE blockade) mechanisms.

  • StressScientific

    M. officinalis oligosaccharides (MOO) have been repeatedly tested in the chronic unpredictable mild stress (CUMS) model, demonstrating normalisation of stress-induced depression, sexual dysfunction, and HPG axis disruption. MOO modulates neuroinflammation and mitophagy pathways relevant to stress physiology.

  • TestosteroneScientific

    Multiple animal studies show M. officinalis extracts and fractions (bajijiasu, polysaccharides) increase serum and testicular testosterone levels. Polysaccharides promote Leydig cell proliferation and testosterone secretion via the SIRT1/PGC-1α pathway, while bajijiasu acts as an androgen-like modulator.

  • TriglyceridesScientific

    The same randomised double-blind placebo-controlled clinical trial (n=132 heavy smokers) that documented cholesterol-lowering effects of M. citrifolia noni juice also found significant triglyceride reductions. Animal models consistently confirm triglyceride-lowering activity across fruit, leaf, and root extracts.

  • Wound HealingScientific

    M. citrifolia leaf extract demonstrated wound healing activity in rat excision and dead space wound models: 71% reduction in wound area (vs. 57% controls), with increased granulation tissue weight and hydroxyproline content. Traditional topical use of noni leaves for wounds is documented across Pacific Island and Asian traditional medicine.

  • ConstipationTraditional

    Prevention of constipation is documented as a traditional use of M. citrifolia fruit across Polynesian, Asian, and Pacific Island traditional medicine systems. Multiple ethnopharmacological reviews confirm this use.

  • EczemaTraditional

    M. citrifolia is documented in traditional medicine across Asia and the Pacific Islands for skin diseases including eczema and inflammatory skin conditions. Pharmacological evidence for atopic dermatitis (a related condition) supports the anti-inflammatory skin rationale, though no clinical trials specific to eczema have been conducted.

  • Morinda officinalis has been used in TCM for centuries to treat women's reproductive conditions including infertility, menstrual irregularities, and uterine coldness, framed as 'kidney-yang deficiency.' It appears as an ingredient in traditional TCM polyherbal formulas for PCOS-related infertility, though standalone clinical evidence is limited.

  • FeverTraditional

    Fever is documented as a traditional indication for M. citrifolia (noni) across Polynesian, Asian, and Caribbean traditional medicine. A 2025 Medscape review, multiple ethnopharmacological reviews, and the 2016 Pharmacognosy Journal review all include fever among noni's historically documented uses.

  • GastritisTraditional

    M. citrifolia is documented in traditional medicine systems across Asia and the Pacific for gastritis and stomach ailments. The 2016 Pharmacognosy Journal review and a 2024 ethnopharmacological review both list gastritis as a condition for which noni has 'proved beneficial.'

  • HeadachesTraditional

    Headache is documented as a traditional indication for M. citrifolia (noni) in Polynesian, Hawaiian, and Asian traditional medicine. Multiple ethnopharmacological reviews and a 2025 Medscape review confirm this traditional documentation.

  • Irregular CyclesTraditional

    Morinda officinalis is documented in classical TCM texts and modern ethnopharmacological reviews as a traditional treatment for menstrual irregularities (irregular cycles), attributed to its kidney-yang tonifying and uterus-warming properties. No standalone clinical trials have validated this use.

  • Kidney HealthTraditional

    Kidney-yang tonification is the foundational traditional Chinese medicine action of M. officinalis ('nourishing the kidney'), applied for kidney deficiency syndromes. Modern pharmacology identifies rutin in M. citrifolia as renal-protective via antioxidant inhibition of ROS and restoration of manganese-SOD and GSH.

  • UlcersTraditional

    Traditional Polynesian and Asian use of M. citrifolia leaves for mouth ulcers and skin ulcers is documented across multiple ethnopharmacological reviews and a 2025 Medscape review. Monotropein from M. officinalis roots showed NF-κB-mediated gastroprotective effects in an intestinal colitis model, providing mechanistic support.

Body Systems

Body systems that Morinda may help support.

  • No body systems available.
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Morinda | Vitabase