Plant Comparison

Rhodiola Rosea vs Japanese Rose

A side-by-side comparison of two medicinal plants — every documented constituent, action, use, safety note and cited source, assembled automatically from the Omnia Sana database.

First plant
Second plant
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Plant ARhodiola RoseaRhodiola roseaCrassulaceaeFull monograph →
Plant BJapanese RoseRosa rugosaRosaceaeFull monograph →

At a glance

Rhodiola Rosea and Japanese Rose: they share 5 indicated uses (arthritis / joint pain, cold & flu, immune support, …); 3 pharmacological actions in common.

Rhodiola RoseaJapanese Rose
Constituents34
Pharmacological actions64
Indicated uses117
Safety notes22
Cited sources1814
Indicated uses
Only Rhodiola Rosea
Blood sugar / diabetes supportCognitive functionFatigue / low energyMemoryMetabolic supportMuscle soreness
Shared (5)
Arthritis / joint painCold & fluImmune supportInflammation (general)Skin irritation
Only Japanese Rose
Cancer (anticancer research)Cardiovascular / heart health
Pharmacological actions
Only Rhodiola Rosea
Antidiabetic (blood-sugar lowering)Physical performance / ergogenicNeuroprotective / cognition support
Shared (3)
Anti-inflammatoryAntioxidantImmunomodulator / immune support
Only Japanese Rose
Anticancer (preclinical)

Evidence face-off — shared uses

ConditionRhodiola RoseaJapanese RoseVerdict
Arthritis / joint pain6/107/10Comparable evidence
Cold & flu6/107/10Comparable evidence
Immune support6/107/10Comparable evidence
Inflammation (general)9/107/10Stronger for Rhodiola Rosea
Skin irritation6/107/10Comparable evidence

Evidence scores (1–10) are computed from the tier of each cited source. “Comparable” means the two scores are within one point. Follow a score to its detailed sources.

Key Constituents

Rosavins (rosavin, rosarin, rosin)[3]

Characteristic phenylpropanoid glycosides largely unique to Rhodiola rosea, used as a standardisation marker for commercial extracts.

Salidroside and tyrosol[3]

Phenylethanoid glycosides considered key adaptogenic and antioxidant constituents.

Phenylpropanoids and flavonoids[2]

Contribute to the anti-inflammatory and antioxidant activity of the root.

Flavonoids
Flavonoids (quercetin, kaempferol glycosides)[2]

The dominant bioactive class, driving much of the antioxidant and anti-inflammatory activity.

FlavonoidsQuercetinKaempferol
Polysaccharides[1]

Studied for immunomodulatory, hepatoprotective and gut-microbiota-modulating effects.

Polysaccharides
Vitamin C and carotenoids (hips)[2]

Concentrated in the hips, underpinning their traditional food-tonic use.

Carotenoids
Oleamide and other root compounds[8]

Isolated from the root and studied for antioxidant/neuroprotective activity.

Pharmacological Actions

Anti-inflammatory[2, 9, 11, 12, 13]
Antidiabetic (blood-sugar lowering)[11, 12, 13]
Antioxidant[11, 12, 13]
Physical performance / ergogenic[4, 11, 12, 13]

Physical performance / strength improvement

Immunomodulator / immune support[11, 12, 13]
Neuroprotective / cognition support[10, 11, 12, 13]
Anti-inflammatory[1, 2, 7, 11, 12, 13]
Anticancer (preclinical)[6, 10]
Antioxidant[1, 2, 5, 8, 9, 11, 12, 13]
Immunomodulator / immune support[6, 9, 11, 12, 13]

Traditional & Indicated Uses

Arthritis / joint pain[11, 12, 13]Moderate · 6/10

inferred from anti-inflammatory action

Evidence: 6
Label: Arthritis / joint pain
Blood sugar / diabetes support[11, 12, 13]Moderate · 6/10

inferred from antidiabetic action

Evidence: 6
Label: Blood sugar / diabetes support
Cognitive function[3, 5, 10, 11, 12, 13]Strong · 9/10

inferred from neuroprotective action

Evidence: 9
Label: Cognitive function
Cold & flu[11, 12, 13]Moderate · 6/10

inferred from immunomodulator action

Evidence: 6
Label: Cold & flu
Fatigue / low energy[1, 3, 4, 7, 8, 11, 12, 13]Strong · 10/10

inferred from ergogenic action

Evidence: 10
Label: Fatigue / low energy
Immune support[11, 12, 13]Moderate · 6/10
Evidence: 6
Label: Immune support
Inflammation (general)[2, 9, 11, 12, 13]Strong · 9/10

inferred from anti-inflammatory action

Evidence: 9
Label: Inflammation (general)
Memory[11, 12, 13]Moderate · 6/10

inferred from neuroprotective action

Evidence: 6
Label: Memory
Metabolic support[11, 12, 13]Moderate · 6/10
Evidence: 6
Label: Metabolic support
Muscle soreness[4, 11, 12, 13]Strong · 9/10

inferred from ergogenic action

Evidence: 9
Label: Muscle soreness
Skin irritation[11, 12, 13]Moderate · 6/10

inferred from anti-inflammatory action

Evidence: 6
Label: Skin irritation
Arthritis / joint pain[11, 12, 13]Good · 7/10

inferred from anti-inflammatory action

Evidence: 7
Label: Arthritis / joint pain
Cancer (anticancer research)[6, 10]Traditional · 2/10

inferred from anticancer action

Evidence: 2
Label: Cancer (anticancer research)
Cardiovascular / heart health[4, 11, 12, 13]Good · 7/10
Evidence: 7
Label: Cardiovascular / heart health
Cold & flu[11, 12, 13]Good · 7/10

inferred from immunomodulator action

Evidence: 7
Label: Cold & flu
Immune support[11, 12, 13]Good · 7/10
Evidence: 7
Label: Immune support
Inflammation (general)[11, 12, 13]Good · 7/10

inferred from anti-inflammatory action

Evidence: 7
Label: Inflammation (general)
Skin irritation[3, 7, 11, 12, 13]Good · 7/10

inferred from anti-inflammatory action

Evidence: 7
Label: Skin irritation

Safety, Cautions & Contraindications

Safety note[11, 12, 13]Caution

Generally well tolerated. May cause agitation, insomnia, or vivid dreams in sensitive individuals — take in the morning. Avoid in manic episodes or severe anxiety. Theoretical interactions with MAOIs, SSRIs, and CNS stimulants. Avoid during pregnancy and breastfeeding.

Safety note[11, 12, 13, 14]Info

Duke (2002) does not include a dedicated entry for Rhodiola rosea in the Handbook of Medicinal Herbs, Second Edition.

Safety note[11, 12, 13]Caution

Generally safe as a food plant. Rose hips should be used after removing the achenes (seeds and inner hairs), which can cause irritation. Allergic reactions are rare. No significant drug interactions documented.

Safety note[11, 12, 13, 14]Info

Duke (2002) does not include a dedicated entry for Japanese rose (Rosa rugosa) in the Handbook of Medicinal Herbs, Second Edition.

External Ids

Gbif: 2985688
Wikidata: Q161665
Gbif: 3003979
Wikidata: Q634975

Botanical Description

Succulent perennial herb (Crassulaceae), 15-40 cm tall, with a thick, fleshy, branching rhizome that has a rose-like fragrance when cut - the origin of the name 'rosea'. Leaves are fleshy, greyish-green, oval to oblong. Small yellow (occasionally reddish) flowers are clustered in dense terminal heads; the species is dioecious, with separate male and female plants. Fruit follicles turn red as they ripen.[3]

Height: 15-40 cm
Habit: Succulent perennial herb, dioecious
Leaves: Fleshy, greyish-green, oval to oblong
Flowers: Small, yellow (occasionally reddish), in dense terminal clusters
Stem: Erect, succulent
Root: Thick, fleshy, branching rhizome, rose-scented when cut
Fruit: Follicles, turning red as they ripen
Flowering Period: June-July

Dense, thicket-forming deciduous shrub (Rosaceae), 1-1.5 m tall (occasionally to 2 m), with stems densely covered in numerous straight, bristly thorns. Leaves are pinnate with 5-9 deeply veined, glossy, leathery leaflets. Large, fragrant, deep pink to white, five-petalled flowers are followed by large, tomato-red, flattened-globose hips.[2]

Height: 1-1.5 m (occasionally to 2 m)
Habit: Dense, thicket-forming deciduous shrub
Leaves: Pinnate, 5-9 deeply veined, glossy, leathery leaflets
Flowers: Large, fragrant, deep pink to white, five-petalled
Stem: Densely covered in numerous straight, bristly thorns
Root: Woody, suckering root system
Fruit: Large, tomato-red, flattened-globose hips
Flowering Period: June-September

Habitat

Native to arctic and mountainous regions of Europe, Asia and North America (circumpolar), growing in cold, rocky, high-altitude or high-latitude terrain - cliffs, rocky slopes and tundra - tolerating harsh, exposed conditions.[3]

Native to coastal eastern Asia (Japan, Korea, China, far-eastern Russia), typically growing on sand dunes and coastal scrub. Widely planted and naturalised as an ornamental and hedging shrub, notably tolerant of salt spray, wind and poor sandy soils, in temperate coastal regions worldwide.[2]

Harvesting

Rhizome and root are dug from plants at least a few years old (traditionally 4-5 years), typically in autumn, then cleaned and dried. Wild populations grow slowly, so cultivated sources are increasingly preferred for sustainability.[3]

Parts: Rhizome, Root
Season: Autumn, from plants at least 4-5 years old

Flowers/petals are picked as they open in summer; hips are picked in autumn once fully coloured and slightly softened.[2]

Parts: Flower, Fruit, Petals
Season: Flower in summer; hips in autumn

Traditional Uses

Rhodiola has a long tradition of use across Scandinavian, Russian and Central Asian folk medicine as a tonic for cold-climate hardiness, physical endurance and mental stamina. It is classified as a modern 'adaptogen', and clinical trials support benefits for stress-related fatigue, mood and cognitive performance.[1, 3]

Rosa rugosa has a long East Asian tradition - particularly in Traditional Chinese Medicine, where the flower is known as 'Mei Gui Hua' - as a mood-regulating, digestive and menstrual-cycle-supporting remedy, and the vitamin-C-rich hips are used as a food tonic. Modern research on its flavonoid- and polysaccharide-rich extracts supports broad antioxidant, anti-inflammatory, hepatoprotective and immunomodulatory activity.[2]

Preparations

Standardised root extract (capsule)[7, 8]

Standardised to rosavins and salidroside (commonly the SHR-5 extract), the form used in most clinical trials.

Flower tea/infusion[2]

Dried petals or flower buds steeped in hot water - the classic Traditional Chinese Medicine preparation.

Standardised extract[1, 2]

Concentrated flavonoid/polysaccharide extract used in research.

Dosage

Standardised extract[7, 8]

Clinical trials have most often used 340-680 mg/day of standardised root extract (e.g. SHR-5, standardised to rosavins/salidroside), typically taken in the morning to avoid overstimulation. Educational reference only, not a prescription.

Flower infusion[2]

Traditional guidance suggests roughly 3-6 g dried flower per cup as an infusion, or hip tea/syrup at similar strength, taken once or twice daily. Educational reference only, not a prescription.

References

REF-1526, REF-1527, REF-1528, REF-1529, REF-1530, REF-1531, REF-1532, REF-1533, REF-1534, REF-1535
REF-1005, REF-1006, REF-1007, REF-1008, REF-1009, REF-1010, REF-1011, REF-1012, REF-1013, REF-1014

Drug Class Interactions

Safety note[15, 16]Caution
Drug Class: antidepressants-serotonergic
Mechanism: Rhodiola inhibits monoamine oxidase (MAO-A/B) and raises serotonin and dopamine activity; a case report described serotonergic-syndrome-type symptoms (restlessness, trembling) when rhodiola was added to the antidepressant paroxetine. Combined with antidepressants it may add to serotonergic effects.
Reviewed By: Omnia Sana (owner-authorized)
Reviewed Date: 2026-07-03

Not documented

Pairings

Rhodiola and eleuthero (Siberian ginseng) are classic adaptogens combined in traditional and studied fixed formulas to build resistance to stress and fatigue; used together their stress-protective effects are complementary.[17, 18]

Partner Id: eleutherococcus-senticosus
Type: synergy
Reviewed By: Omnia Sana (owner-authorized)
Reviewed Date: 2026-07-03

Rhodiola and schisandra are adaptogens co-formulated in clinically studied combinations for stress, fatigue and mental performance; combined use is intended to be synergistic rather than harmful.[17, 18]

Partner Id: schisandra-chinensis
Type: synergy
Reviewed By: Omnia Sana (owner-authorized)
Reviewed Date: 2026-07-03

Not documented

Lookalikes Review

Outcome: none-known
Reviewed By: Omnia Sana (owner-authorized)
Reviewed Date: 2026-07-07
Outcome: none-known
Reviewed By: Omnia Sana (owner-authorized)
Reviewed Date: 2026-07-07

References & Sources

  1. Ivanova Stojcheva, E. and Quintela, J.C (2022) 'The Effectiveness of Rhodiola rosea L. Preparations in Alleviating Various Aspects of Life-Stress Symptoms and Stress-Induced Conditions - Encouraging Clinical Evidence', Molecules, 27(12), pp. 3902. doi:10.3390/molecules27123902 Meta-analysis / review
    https://doi.org/10.3390/molecules27123902
  2. Pu, W.L., Zhang, M.Y., Bai, R.Y., Sun, L.K. and others (2019) 'Anti-inflammatory effects of Rhodiola rosea L.: A review', Biomedicine & Pharmacotherapy, 121, pp. 109552. doi:10.1016/j.biopha.2019.109552 Meta-analysis / review
    https://doi.org/10.1016/j.biopha.2019.109552
  3. Panossian, A., Wikman, G. and Sarris, J (2010) 'Rosenroot (Rhodiola rosea): traditional use, chemical composition, pharmacology and clinical efficacy', Phytomedicine, 17(7), pp. 481-493. doi:10.1016/j.phymed.2010.02.002 Meta-analysis / review
    https://doi.org/10.1016/j.phymed.2010.02.002
  4. Tinsley, G.M., Jagim, A.R., Potter, G.D.M., Garner, D. and Galpin, A.J (2023) 'Rhodiola rosea as an adaptogen to enhance exercise performance: a review of the literature', The British Journal of Nutrition, 131(3), pp. 461-473. doi:10.1017/S0007114523001988 Meta-analysis / review
    https://doi.org/10.1017/S0007114523001988
  5. Cropley, M., Banks, A.P. and Boyle, J (2015) 'The Effects of Rhodiola rosea L. Extract on Anxiety, Stress, Cognition and Other Mood Symptoms', Phytotherapy Research, 29(12), pp. 1934-1939. doi:10.1002/ptr.5486 Randomized trial
    https://doi.org/10.1002/ptr.5486
  6. Amsterdam, J.D. and Panossian, A.G (2016) 'Rhodiola rosea L. as a putative botanical antidepressant', Phytomedicine, 23(7), pp. 770-783. doi:10.1016/j.phymed.2016.02.009 Meta-analysis / review
    https://doi.org/10.1016/j.phymed.2016.02.009
  7. Olsson, E.M., von Scheele, B. and Panossian, A.G (2009) 'A randomised, double-blind, placebo-controlled, parallel-group study of the standardised extract SHR-5 of the roots of Rhodiola rosea in the treatment of subjects with stress-related fatigue', Planta Medica, 75(2), pp. 105-112. doi:10.1055/s-0028-1088346 Randomized trial
    https://doi.org/10.1055/s-0028-1088346
  8. Ishaque, S., Shamseer, L., Bukutu, C. and Vohra, S (2012) 'Rhodiola rosea for physical and mental fatigue: a systematic review', BMC Complementary and Alternative Medicine, 12, pp. 70. doi:10.1186/1472-6882-12-70 Meta-analysis / review
    https://doi.org/10.1186/1472-6882-12-70
  9. Borgonetti, V., Governa, P., Biagi, M., Dalia, P. and Corsi, L (2019) 'Rhodiola rosea L. modulates inflammatory processes in a CRH-activated BV2 cell model', Phytomedicine, 68, pp. 153143. doi:10.1016/j.phymed.2019.153143 Preclinical
    https://doi.org/10.1016/j.phymed.2019.153143
  10. Coors, A., Brosch, M., Kahl, E., Khalil, R. and others (2019) 'Rhodiola rosea root extract has antipsychotic-like effects in rodent models of sensorimotor gating', Journal of Ethnopharmacology, 235, pp. 320-328. doi:10.1016/j.jep.2019.02.031 Preclinical
    https://doi.org/10.1016/j.jep.2019.02.031
  11. Darbinyan, V. et al (2000) 'Rhodiola rosea in stress induced fatigue — a double blind cross-over study of a standardized extract SHR-5', 7(5), pp. 365--371. Randomized trial
    https://scholar.google.com/scholar?q=Rhodiola%20rosea%20in%20stress%20induced%20fatigue%20%E2%80%94%20a%20double%20blind%20cross-over%20study%20of%20a%20standardized%20extract%20SHR-5
  12. Kelly, G.S (2001) 'Rhodiola rosea: a possible plant adaptogen', 6(3), pp. 293--302. Traditional / reference
    https://scholar.google.com/scholar?q=Rhodiola%20rosea%3A%20a%20possible%20plant%20adaptogen
  13. Panossian, A., Wikman, G. and Sarris, J (2010) 'Rosenroot (Rhodiola rosea): traditional use, chemical composition, pharmacology and clinical efficacy', 17(7), pp. 481--493. doi:10.1016/j.phymed.2010.02.002 Randomized trial
    https://doi.org/10.1016/j.phymed.2010.02.002
  14. Duke, J.A (2002) 'Handbook of Medicinal Herbs, Second Edition'. Traditional / reference
    https://scholar.google.com/scholar?q=Handbook%20of%20Medicinal%20Herbs%2C%20Second%20Edition
  15. Maniscalco, I., Toffol, E., Giupponi, G. and Conca, A (2014) 'The interaction of Rhodiola rosea and antidepressants. A case report', Neuropsychiatrie, 29(1), pp. 36-38. doi:10.1007/s40211-014-0124-8 Clinical study
    https://doi.org/10.1007/s40211-014-0124-8
  16. van Diermen, D., Marston, A., Bravo, J., Reist, M., Carrupt, P.A. and Hostettmann, K (2009) 'Monoamine oxidase inhibition by Rhodiola rosea L. roots', Journal of Ethnopharmacology, 122(2), pp. 397-401. doi:10.1016/j.jep.2009.01.007 Preclinical
    https://doi.org/10.1016/j.jep.2009.01.007
  17. Panossian, A.G (2013) 'Adaptogens in mental and behavioral disorders', Psychiatric Clinics of North America, 36(1), pp. 49-64. doi:10.1016/j.psc.2012.12.005 Meta-analysis / review
    https://doi.org/10.1016/j.psc.2012.12.005
  18. Karosanidze, I., Kiladze, U., Kirtadze, N., Giorgadze, M. and Panossian, A (2022) 'Efficacy of Adaptogens in Patients with Long COVID-19: A Randomized, Quadruple-Blind, Placebo-Controlled Trial', Pharmaceuticals, 15(3), pp. 345. doi:10.3390/ph15030345 Randomized trial
    https://doi.org/10.3390/ph15030345
  1. Zhang, Z., Hu, W., Yu, A., Bai, M. and others (2024) 'Physicochemical properties, health benefits, and applications of the polysaccharides from Rosa rugosa Thunb.: A review', International Journal of Biological Macromolecules, 282(Pt 3), pp. 136975. doi:10.1016/j.ijbiomac.2024.136975 Traditional / reference
    https://doi.org/10.1016/j.ijbiomac.2024.136975
  2. Dong, X., Li, Y., Yang, K., Zhang, L. and others (2024) 'Total flavonoids from Rosa rugosa Thunb.: A comprehensive review of its extraction and purification process, chemical composition, biological effect and applications', Naunyn-Schmiedeberg's Archives of Pharmacology, 398(3), pp. 2343-2363. doi:10.1007/s00210-024-03504-x Traditional / reference
    https://doi.org/10.1007/s00210-024-03504-x
  3. Kim, J., Lee, S., Park, H. and others (2024) 'Hair Growth Effect and the Mechanisms of Rosa rugosa Extract in DHT-Induced Alopecia Mice Model', International Journal of Molecular Sciences, 25(21), pp. 11362. doi:10.3390/ijms252111362 Preclinical
    https://doi.org/10.3390/ijms252111362
  4. Baiyisaiti, A., Liu, Y., Zhang, J. and Yang, R (2019) 'Rosa rugosa flavonoids exhibited PPAR-alpha agonist-like effects on genetic severe hypertriglyceridemia of mice', Journal of Ethnopharmacology, 240, pp. 111952. doi:10.1016/j.jep.2019.111952 Preclinical
    https://doi.org/10.1016/j.jep.2019.111952
  5. Lei, L., Zhu, Y., Gao, W., Du, X. and others (2023) 'Ethanol Extract of Rosa rugosa Ameliorates Acetaminophen-Induced Liver Injury via Upregulating Sirt1 and Subsequent Potentiation of LKB1/AMPK/Nrf2 Cascade in Hepatocytes', Molecules, 28(21), pp. 7307. doi:10.3390/molecules28217307 Preclinical
    https://doi.org/10.3390/molecules28217307
  6. Dai, C., Zheng, X., Zhu, J., Zhang, H. and others (2025) 'Polysaccharides derived from Rosa rugosa cv. Plena ameliorate colorectal cancer by regulating intestinal microbiota composition and lipid metabolism pathway', NPJ Science of Food, 9(1), pp. 176. doi:10.1038/s41538-025-00544-2 Preclinical
    https://doi.org/10.1038/s41538-025-00544-2
  7. Chen, M., Peng, Y., Zhu, R., Luo, X. and others (2025) 'Therapeutic potential of Rosa rugosa polysaccharide and its nanofiber membrane in psoriasis via PI3K-AKT/mTOR pathway inhibition', International Journal of Biological Macromolecules, 320(Pt 2), pp. 145724. doi:10.1016/j.ijbiomac.2025.145724 Preclinical
    https://doi.org/10.1016/j.ijbiomac.2025.145724
  8. Park, C.K., Choi, S.J., Kim, C.R., Shin, H.R. and others (2025) 'Ethanolic Extract of Rosa rugosa Roots and Its Bioactive Compound, Oleamide, Prevented Amyloid beta-Induced Oxidative Stress and Improved Behavioral Tests in Mice', International Journal of Molecular Sciences, 26(9), pp. 4214. doi:10.3390/ijms26094214 Preclinical
    https://doi.org/10.3390/ijms26094214
  9. Ashraf, S., Ashraf, M.Z., Miao, B. and Zhao, X (2025) 'Optimizing Extraction Methods for Bioactive Polysaccharides from Rosa rugosa and Rosa damascena', Foods, 14(18), pp. 3211. doi:10.3390/foods14183211 Traditional / reference
    https://doi.org/10.3390/foods14183211
  10. Liu, X., Liu, H., Zhang, Y. and others (2022) 'Rosa rugosa polysaccharide induces autophagy-mediated apoptosis in human cervical cancer cells via the PI3K/AKT/mTOR pathway', International Journal of Biological Macromolecules, 212, pp. 257-274. doi:10.1016/j.ijbiomac.2022.05.023 Preclinical
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Generated automatically from the Omnia Sana plant database and its cited sources. For educational purposes only — not medical advice. Always consult a qualified practitioner before using medicinal plants.