Plant Comparison

Birch vs Corn Silk

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
Show:
Plant ABirchBetula pendulaBetulaceaeFull monograph →
Plant BCorn SilkZea maysPoaceaeFull monograph →

At a glance

Birch and Corn Silk: they share 8 indicated uses (arthritis / joint pain, cancer (anticancer research), infection (general), …); 4 pharmacological actions in common.

BirchCorn Silk
Constituents33
Pharmacological actions105
Indicated uses1611
Safety notes22
Cited sources1613
Indicated uses
Only Birch
Acid refluxBack painBlood sugar / diabetes supportCold & fluEczemaIndigestionMetabolic supportWounds
Shared (8)
Arthritis / joint painCancer (anticancer research)Infection (general)Inflammation (general)Skin irritationSwelling / fluid retentionUrinary supportUrinary tract infection (UTI)
Only Corn Silk
CoughKidney supportSore throat
Pharmacological actions
Only Birch
Anti-rheumatic / anti-arthriticAntidiabetic (blood-sugar lowering)AntimicrobialAntiviralEmollient / skin-soothingGastroprotective
Shared (4)
Anti-inflammatoryAnticancer (preclinical)AntioxidantDiuretic
Only Corn Silk
Demulcent (soothing mucilage)

Evidence face-off — shared uses

ConditionBirchCorn SilkVerdict
Arthritis / joint pain1/101/10Comparable evidence
Cancer (anticancer research)2/102/10Comparable evidence
Infection (general)1/101/10Comparable evidence
Inflammation (general)1/101/10Comparable evidence
Skin irritation1/101/10Comparable evidence
Swelling / fluid retention1/101/10Comparable evidence
Urinary support1/101/10Comparable evidence
Urinary tract infection (UTI)1/101/10Comparable 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

Flavonoids (quercetin, myricetin, hyperoside)[1]

Principal diuretic and antioxidant constituents of the leaf.

FlavonoidsQuercetin
Triterpenes (betulin, betulinic acid)[1, 4]

Characteristic bark triterpenes, betulin giving birch bark its white colour; studied for anticancer and anti-inflammatory activity.

Terpenes / terpenoids
Tannins and phenolic acids[1]

Contribute to the astringent and antioxidant properties of the bark and leaf.

TanninsPhenolic acids
Flavonoids (including maysin)[1, 2, 11, 12]

Major antioxidant constituents of corn silk; maysin is the predominant flavonoid quantified in standardised extracts.

Flavonoids
Phenolic compounds[5, 11]

Contribute to antioxidant and anti-inflammatory activity.

Phenolic compounds
Potassium salts, polysaccharides and saponins[7, 10, 11]

Associated with the diuretic and demulcent actions.

PolysaccharidesSaponins

Pharmacological Actions

Anti-inflammatory[1, 4, 7, 9, 13, 14, 15]
Anti-rheumatic / anti-arthritic[4, 13, 14, 15]
Anticancer (preclinical)[7, 8, 9, 13, 14, 15]
Antidiabetic (blood-sugar lowering)[6, 13, 14, 15]
Antimicrobial[1, 13, 14, 15]
Antioxidant[1, 2, 5, 6, 7, 13, 14, 15]
Antiviral[13, 14, 15]
Diuretic[13, 14, 15]
Emollient / skin-soothing[13, 14, 15]
Gastroprotective[13, 14, 15]
Anti-inflammatory[2, 3, 4, 8, 11]

Antioxidant and anti-inflammatory

Anticancer (preclinical)[6]
Antioxidant[1, 4, 9, 11]

Antioxidant and anti-inflammatory

Demulcent (soothing mucilage)[11]

Soothing demulcent for urinary-tract irritation and mild urinary infections; supports kidney function

Diuretic[9, 11, 13]

Diuretic - increases urine output to support the urinary tract and mild fluid retention/swelling; in conscious rats the aqueous extract is diuretic and kaliuretic and modifies glomerular filtration and potassium excretion

Traditional & Indicated Uses

Acid reflux[13, 14, 15]Traditional · 1/10

inferred from gastroprotective action

Evidence: 1
Label: Acid reflux
Arthritis / joint pain[13, 14, 15]Traditional · 1/10

inferred from anti-inflammatory action

Evidence: 1
Label: Arthritis / joint pain
Back pain[13, 14, 15]Traditional · 1/10

inferred from anti-rheumatic action

Evidence: 1
Label: Back pain
Blood sugar / diabetes support[13, 14, 15]Traditional · 1/10

inferred from antidiabetic action

Evidence: 1
Label: Blood sugar / diabetes support
Cancer (anticancer research)[8]Traditional · 2/10

inferred from anticancer action

Evidence: 2
Label: Cancer (anticancer research)
Cold & flu[13, 14, 15]Traditional · 1/10

inferred from antiviral action

Evidence: 1
Label: Cold & flu
Eczema[13, 14, 15]Traditional · 1/10

inferred from emollient action

Evidence: 1
Label: Eczema
Indigestion[13, 14, 15]Traditional · 1/10

inferred from gastroprotective action

Evidence: 1
Label: Indigestion
Infection (general)[13, 14, 15]Traditional · 1/10

inferred from antimicrobial action

Evidence: 1
Label: Infection (general)
Inflammation (general)[13, 14, 15]Traditional · 1/10

inferred from anti-inflammatory action

Evidence: 1
Label: Inflammation (general)
Metabolic support[13, 14, 15]Traditional · 1/10

inferred from antidiabetic action

Evidence: 1
Label: Metabolic support
Skin irritation[13, 14, 15]Traditional · 1/10

inferred from anti-inflammatory action

Evidence: 1
Label: Skin irritation
Swelling / fluid retention[13, 14, 15]Traditional · 1/10

inferred from diuretic action

Evidence: 1
Label: Swelling / fluid retention
Urinary support[13, 14, 15]Traditional · 1/10

inferred from diuretic action

Evidence: 1
Label: Urinary support
Urinary tract infection (UTI)[13, 14, 15]Traditional · 1/10

inferred from diuretic action

Evidence: 1
Label: Urinary tract infection (UTI)
Wounds[13, 14, 15]Traditional · 1/10

inferred from antimicrobial action

Evidence: 1
Label: Wounds
Arthritis / joint pain[11]Traditional · 1/10

inferred from anti-inflammatory action

Evidence: 1
Label: Arthritis / joint pain
Cancer (anticancer research)[6]Traditional · 2/10

inferred from anticancer action

Evidence: 2
Label: Cancer (anticancer research)
Cough[11]Traditional · 1/10

inferred from demulcent action

Evidence: 1
Label: Cough
Infection (general)[11]Traditional · 1/10

Soothing demulcent for urinary-tract irritation and mild urinary infections; supports kidney function

Evidence: 1
Label: Infection (general)
Inflammation (general)[11]Traditional · 1/10

inferred from anti-inflammatory action

Evidence: 1
Label: Inflammation (general)
Kidney support
Evidence: 1
Label: Kidney support
Skin irritation[11]Traditional · 1/10

inferred from demulcent action

Evidence: 1
Label: Skin irritation
Sore throat[11]Traditional · 1/10

inferred from demulcent action

Evidence: 1
Label: Sore throat
Swelling / fluid retention[11, 13]Traditional · 1/10

Diuretic - increases urine output to support the urinary tract and mild fluid retention/swelling; in conscious rats the aqueous extract is diuretic and kaliuretic and modifies glomerular filtration and potassium excretion

Evidence: 1
Label: Swelling / fluid retention
Urinary support[11, 13]Traditional · 1/10

inferred from diuretic action

Evidence: 1
Label: Urinary support
Urinary tract infection (UTI)[11, 13]Traditional · 1/10

Diuretic - increases urine output to support the urinary tract and mild fluid retention/swelling; in conscious rats the aqueous extract is diuretic and kaliuretic and modifies glomerular filtration and potassium excretion; Soothing demulcent for urinary-tract irritation and mild urinary infections; supports kidney function

Evidence: 1
Label: Urinary tract infection (UTI)

Safety, Cautions & Contraindications

Safety note[13, 14, 15]Info

Generally considered safe when used appropriately. Side effects may include diarrhea, nausea, and allergic reactions (itching, rash, stuffy nose). Not recommended for individuals with edema caused by heart or kidney dysfunction. Ensure adequate fluid intake when using as a diuretic. Frequency of side effects is unknown.

Safety note[13, 14, 15, 16]Info

Duke (2002) provides clinical evidence (score 2) for birch leaf's diuretic activity, as well as for its use in urinary gravel, kidney stones, and rheumatic conditions — consistent with Commission E (KOM) and German Phytotherapy (PIP) approvals. It acts as an aquaretic, increasing urine volume without electrolyte loss. Antimelanomic activity has been demonstrated in experimental studies. The plant has a good safety profile and is classified as non-toxic at usual therapeutic doses (Duke, 2002).

Safety note[11]Caution

As a diuretic it should be taken with plenty of fluids; use caution alongside prescription diuretics or medicines that affect potassium.

Safety note[11, 12]Caution

May lower blood sugar and blood pressure, so use caution with antidiabetic or antihypertensive medication; avoid concentrated medicinal doses in pregnancy - a high-dose standardised extract increased pre-implantation losses in pregnant rats (no fetal malformations were seen).

External Ids

Gbif: 5331916
Powo: urn:lsid:ipni.org:names:295174-1
Wikidata: Q156895
Gbif: 5290052
Wikidata: Q11575

Botanical Description

Elegant deciduous tree with a slender trunk, distinctive smooth white bark that peels in papery horizontal strips and becomes dark and fissured near the base with age, and characteristically drooping ('pendulous') branchlets. The leaves are small, triangular to diamond-shaped, doubly toothed and long-pointed. Male and female flowers are borne in separate catkins on the same tree in spring.[1]

Height: Up to 25-30 m
Habit: Slender deciduous tree with drooping branchlets
Leaves: Small, triangular to diamond-shaped, doubly toothed, long-pointed
Flowers: Separate male and female catkins on the same tree
Stem: Slender trunk with smooth white, papery, peeling bark, dark and fissured at the base with age
Root: Shallow, wide-spreading root system
Fruit: Tiny winged seed (samara) shed from the female catkin
Flowering Period: April-May

Tall, robust annual grass with broad, strap-like leaves and a stout, jointed stem. Male flowers form a terminal tassel; female flowers develop on the ear (cob), each floret bearing a single long, silky style and stigma ('corn silk') that protrudes from the husk to catch pollen.[11]

Height: 1.5-3 m
Habit: Tall, robust annual grass
Leaves: Broad, strap-like, alternate
Flowers: Male tassel at the top; female flowers on the ear, each with a long silky style and stigma (corn silk)
Stem: Stout, jointed, unbranched
Root: Fibrous, with prominent brace roots at the lower stem nodes
Fruit: Kernel (grain) borne on the cob; the silky stigmas and styles are the medicinal part, collected before pollination completes
Flowering Period: Summer

Habitat

A pioneer tree of light, well-drained, often poor or acidic soils, growing in woodland, heathland and waste ground across Europe and much of temperate Asia.[1]

Cultivated worldwide as a major cereal food crop in warm-temperate to tropical climates on fertile, well-drained soils; not found wild, having been domesticated from a wild grass ancestor (teosinte) in Mesoamerica.[11]

Harvesting

Leaves are picked in spring and early summer while young and tender; bark is collected from felled or fallen wood (living trees should not be stripped of bark, which can kill them); sap is tapped in early spring, before leaf-out, through a small hole bored in the trunk.[1]

Parts: Bark, Leaf, Sap
Season: Leaf in spring/early summer; sap in early spring before leaf-out; bark from felled wood

The silky stigmas and styles are collected from the ears in mid- to late summer, just before or as pollination occurs, while still fresh and pale, then dried quickly to preserve colour and flavonoid content.[11]

Parts: Stigmas and styles (corn silk)
Season: Mid- to late summer, at silking

Traditional Uses

Birch leaf is a classic European 'aquaretic' diuretic used for urinary gravel, kidney stones and as a spring detoxifying tonic, and for rheumatic and joint complaints; the bark and its extracts have a long folk history for skin conditions, while the sap has been drunk fresh as a traditional spring tonic.[1]

Corn silk has a long traditional use across Chinese, Native American and European folk medicine as a gentle diuretic and soothing demulcent for urinary tract complaints, mild fluid retention and kidney support.[11]

Preparations

Infusion (leaf)[1]

Dried leaf infused in hot water as a traditional diuretic and 'detox' tea, classically taken as a course in spring.

Decoction (bark)[1]

Bark simmered in water or processed into extracts for topical skin use.

Infusion[11]

Dried corn silk infused in hot water as a traditional diuretic and urinary-support tea.

Dosage

Leaf infusion[12, 13]

The EU herbal monograph gives 2-3 g of the comminuted leaf in 150 mL of boiling water as an infusion, up to 4 times daily, in adolescents, adults and elderly, with adequate fluid intake; dry extract at 0.25-1 g 4 times daily and liquid extract at 15 mL 2-3 times daily are also listed. Traditionally used over a period of 2-4 weeks. Not recommended under 12 years. Educational reference only, not a prescription.

Not documented

References

REF-0743, REF-0744, REF-0745, REF-1692, REF-1693, REF-1694, REF-1695, REF-1696, REF-1697, REF-1698, REF-1699
REF-1624, REF-1625, REF-1626, REF-1627, REF-1628, REF-1629, REF-1630, REF-1631, REF-1632, REF-1633

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. Rastogi, S., Pandey, M.M. and Kumar Singh Rawat, A (2014) 'Medicinal plants of the genus Betula — traditional uses and a phytochemical-pharmacological review', Journal of Ethnopharmacology, 159, pp. 62-83. doi:10.1016/j.jep.2014.11.010 Traditional / reference
    https://doi.org/10.1016/j.jep.2014.11.010
  2. Penkov, D., Andonova, V., Delev, D. and Kostadinov, I (2018) 'Antioxidant Activity of Dry Birch (Betula pendula) Leaves Extract', Folia Medica, 60(4), pp. 571-579. doi:10.2478/folmed-2018-0035 Preclinical
    https://doi.org/10.2478/folmed-2018-0035
  3. Sevastre-Berghian, A.C., Ielciu, I., Bab, T., Olah, N.K. et al (2023) 'Betula pendula Leaf Extract Targets the Interplay between Brain Oxidative Stress, Inflammation, and NF-kB Pathways in Amyloid Abeta-Treated Rats', Antioxidants (Basel), 12(12), pp. 2110. doi:10.3390/antiox12122110 Preclinical
    https://doi.org/10.3390/antiox12122110
  4. Grundemann, C., Gruber, C.W., Hertrampf, A., Zehl, M., Kopp, B. and Huber, R (2011) 'An aqueous birch leaf extract of Betula pendula inhibits the growth and cell division of inflammatory lymphocytes', Journal of Ethnopharmacology, 136(3), pp. 444-451. doi:10.1016/j.jep.2011.05.018 Preclinical
    https://doi.org/10.1016/j.jep.2011.05.018
  5. Azman, N.A.M., Skowyra, M., Muhammad, K., Gallego, M.G. and Almajano, M.P (2017) 'Evaluation of the antioxidant activity of Betula pendula leaves extract and its effects on model foods', Pharmaceutical Biology, 55(1), pp. 912-919. doi:10.1080/13880209.2017.1282528 Preclinical
    https://doi.org/10.1080/13880209.2017.1282528
  6. Bljajic, K., Sostaric, N., Petlevski, R., Vujic, L., Brajkovic, A. and Fumic, B (2016) 'Effect of Betula pendula Leaf Extract on alpha-Glucosidase and Glutathione Level in Glucose-Induced Oxidative Stress', Evidence-Based Complementary and Alternative Medicine, 2016, pp. 8429398. doi:10.1155/2016/8429398 Preclinical
    https://doi.org/10.1155/2016/8429398
  7. Ou-Yang, T., Zhang, Y., Luo, H.Z., Liu, Y. and Ma, S.C (2023) 'Novel compounds discovery approach based on UPLC-QTOF-MS/MS chemical profile reveals birch bark extract anti-inflammatory, -oxidative, and -proliferative effects', Journal of Ethnopharmacology, 309, pp. 116148. doi:10.1016/j.jep.2023.116148 Preclinical
    https://doi.org/10.1016/j.jep.2023.116148
  8. Szoka, L., Nazaruk, J., Stocki, M. and Isidorov, V (2021) 'Santin and cirsimaritin from Betula pubescens and Betula pendula buds induce apoptosis in human digestive system cancer cells', Journal of Cellular and Molecular Medicine, 25(23), pp. 11085-11096. doi:10.1111/jcmm.17031 Preclinical
    https://doi.org/10.1111/jcmm.17031
  9. Isidorov, V., Szoka, L. and Nazaruk, J (2018) 'Cytotoxicity of white birch bud extracts: Perspectives for therapy of tumours', PLoS One, 13(8), pp. e0201949. doi:10.1371/journal.pone.0201949 Preclinical
    https://doi.org/10.1371/journal.pone.0201949
  10. Efthimiou, I., Vlastos, D., Triantafyllidis, V., Eleftherianos, A. and Antonopoulou, M (2022) 'Investigation of the Genotoxicological Profile of Aqueous Betula pendula Extracts', Plants, 11(20), pp. 2673. doi:10.3390/plants11202673 Preclinical
    https://doi.org/10.3390/plants11202673
  11. Jafari Hajati, R., Payamnoor, V., Ahmadian Chashmi, N. and Ghasemi Bezdi, K (2018) 'Improved accumulation of betulin and betulinic acid in cell suspension culture of Betula pendula Roth by abiotic and biotic elicitors', Preparative Biochemistry & Biotechnology, 48(10), pp. 915-924. doi:10.1080/10826068.2018.1514514 Preclinical
    https://doi.org/10.1080/10826068.2018.1514514
  12. European Medicines Agency (HMPC) (2015) 'European Union herbal monograph on Betula pendula Roth and/or Betula pubescens Ehrh. as well as hybrids of both species, folium'. Available at: https://www.ema.europa.eu/en/documents/herbal-monograph/final-european-union-herbal-monograph-betula-pendula-roth-betula-pubescens-ehrh-folium_en.pdf Traditional / reference
    https://www.ema.europa.eu/en/documents/herbal-monograph/final-european-union-herbal-monograph-betula-pendula-roth-betula-pubescens-ehrh-folium_en.pdf
  13. European Medicines Agency (HMPC) (2015) 'Birch leaf (Betulae folium): summary for the public'. Available at: https://www.ema.europa.eu/en/documents/herbal-summary/birch-leaf-summary-public_en.pdf Traditional / reference
    https://www.ema.europa.eu/en/documents/herbal-summary/birch-leaf-summary-public_en.pdf
  14. Oszmiański J, et al. Evaluating birch leaf tea as a functional herbal beverage. Food Res Int. 2024. https://www.sciencedirect.com/science/article/abs/pii/S0963996924005519 https://pmc.ncbi.nlm.nih.gov/articles/PMC7126499/ (2024) 'https://www.sciencedirect.com/science/article/abs/pii/S0963996924005519 https://pmc.ncbi.nlm.nih.gov/articles/PMC7126499/'. Available at: https://www.sciencedirect.com/science/article/abs/pii/S0963996924005519 Traditional / reference
    https://www.sciencedirect.com/science/article/abs/pii/S0963996924005519
  15. Rastogi S, Pandey MM, Rawat AKS. Medicinal plants of the genus Betula—Traditional uses and a phytochemical–pharmacological review. J Ethnopharmacol. 2015;159:62-83. https://pmc.ncbi.nlm.nih.gov/articles/PMC7126499/ (2015) ';159:62-83'. Available at: https://pmc.ncbi.nlm.nih.gov/articles/PMC7126499/ Traditional / reference
    https://pmc.ncbi.nlm.nih.gov/articles/PMC7126499/
  16. 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
  1. Zhang, Y., Wu, L., Ma, Z., Cheng, J. and Liu, J (2018) 'Corn silk (Zea mays L.), a source of natural antioxidants with alpha-amylase, alpha-glucosidase, advanced glycation and diabetic nephropathy inhibitory activities', Biomedicine & Pharmacotherapy, 110, pp. 510-517. doi:10.1016/j.biopha.2018.11.126 Preclinical
    https://doi.org/10.1016/j.biopha.2018.11.126
  2. Wang, Y. and others (2023) 'Corn Silk Flavonoids Ameliorate Hyperuricemia via PI3K/AKT/NF-kappaB Pathway', Journal of Agricultural and Food Chemistry, 71(26), pp. 9968-9979. doi:10.1021/acs.jafc.3c03422 Preclinical
    https://doi.org/10.1021/acs.jafc.3c03422
  3. Habtemariam, S (1998) 'Extract of corn silk (stigma of Zea mays) inhibits the tumour necrosis factor-alpha- and bacterial lipopolysaccharide-induced cell adhesion and ICAM-1 expression', Planta Medica, 64(4), pp. 314-318. doi:10.1055/s-2006-957441 Preclinical
    https://doi.org/10.1055/s-2006-957441
  4. Chen, M.Y., Wu, J.M. and others (2025) 'Unlocking Corn Silk's Potential: Bioactive Compounds Targeting Age-Related Diseases', Molecular Nutrition & Food Research, 69(10), pp. e70117. doi:10.1002/mnfr.70117 Meta-analysis / review
    https://doi.org/10.1002/mnfr.70117
  5. Li, Y. and others (2023) 'Diterpenoid and phenolic constituents from corn silk (Zea mays) with PTP1B inhibitory activity', Natural Product Research, 37(24), pp. 4189-4196. doi:10.1080/14786419.2023.2265038 Preclinical
    https://doi.org/10.1080/14786419.2023.2265038
  6. Wang, B. and others (2019) 'Corn Silk (Zea mays) Induced Apoptosis in Human Breast Cancer (MCF-7) Cells via the ROS-Mediated Mitochondrial Pathway', Oxidative Medicine and Cellular Longevity, 2019, pp. 9789241. doi:10.1155/2019/9789241 Preclinical
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  7. Guo, J. and others (2024) 'Extraction, purification, structural characteristics, and pharmacological activities of the polysaccharides from corn silk: A review', International Journal of Biological Macromolecules, 274, pp. 133433. doi:10.1016/j.ijbiomac.2024.133433 Meta-analysis / review
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  8. Li, X. and others (2025) 'Ultrasound-assisted extraction of anti-inflammatory actives from corn silk (Zea mays L.): Process optimization, machine learning screening, and interaction mechanisms', Ultrasonics Sonochemistry, 118, pp. 107420. doi:10.1016/j.ultsonch.2025.107420 Preclinical
    https://doi.org/10.1016/j.ultsonch.2025.107420
  9. Wang, Y. and others (2024) 'An Umbrella Insight into the Phytochemistry Features and Biological Activities of Corn Silk: A Narrative Review', Molecules, 29(4), pp. 891. doi:10.3390/molecules29040891 Meta-analysis / review
    https://doi.org/10.3390/molecules29040891
  10. Zhang, W. and others (2023) 'Acidic polysaccharide from corn silk: Structural & conformational properties and hepatoprotective activity', International Journal of Biological Macromolecules, 237, pp. 123851. doi:10.1016/j.ijbiomac.2023.123851 Preclinical
    https://doi.org/10.1016/j.ijbiomac.2023.123851
  11. Hasanudin, K., Hashim, P. and Mustafa, S (2012) 'Corn Silk (Stigma Maydis) in Healthcare: A Phytochemical and Pharmacological Review', Molecules. doi:10.3390/molecules171112937 Traditional / reference
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  12. Caixeta, G.A.B. and dos Santos Reis, D. and Soares, K.I. and de Brito Ramos, I. and Mendes, G.H.L. and others (2025) 'Toxicological Assessment of a Standardized Dry Extract of Zea mays L. (Poaceae) Stigmas During Gestation: Effects on Maternal Parameters and Fetal Outcomes in Wistar Rats', Birth Defects Research, 117(9). doi:10.1002/bdr2.2526 Traditional / reference
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  13. Velazquez, D.V.O. and Xavier, H.S. and Batista, J.E.M. and de Castro-Chaves, C (2005) 'Zea mays L. extracts modify glomerular function and potassium urinary excretion in conscious rats', Phytomedicine, 12(5), pp. 363--369. doi:10.1016/j.phymed.2003.12.010 Traditional / reference
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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.