1. |
Moerman DE. Native American Medicinal Plants: An Ethnobotanical Dictionary. Portland, OR: Timber Press; 2009. |
2. |
Moerman DE. Native American Ethnobotany Database. Dearborn, MI: University of Michigan at Dearborn; 2003. Google Scholar |
3. |
World Health Organization. WHO monographs on selected medicinal plants. http://whqlibdoc.who.int/publications/1999/9241545178.pdf. Accessed June 4, 2014. |
4. |
World Health Organization. WHO monographs on selected medicinal plants: volume 2. http://apps.who.int/medicinedocs/pdf/s4927e/s4927e.pdf. Accessed June 4, 2014. |
5. |
World Health Organization. WHO monographs on selected medicinal plants: volume 3. http://apps.who.int/medicinedocs/index/assoc/s14213e/s14213e.pdf. Accessed June 4, 2014. |
6. |
World Health Organization. WHO monographs on selected medicinal plants: volume 4. http://www.who.int/medicines/areas/traditional/SelectMonoVol4.pdf. Accessed June 4, 2014. |
7. |
Small E, Catling P. Canadian Medicinal Crops. Ottawa: NRC Research Press; 1999. Google Scholar |
8. |
Jellin JM, ed. Natural Medicines Comprehensive Database. Stockton, CA: Therapeutic Research Faculty; 2015. Google Scholar |
9. |
Health Canada. Cosmetic ingredient hotlist. http://www.hc-sc.gc.ca/cps-spc/cosmet-person/hot-list-critique/hotlist-liste-eng.php. Accessed June 4, 2014. |
10. |
US Department of Health and Human Services, Public Health Service National Toxicology Program. 13th report on carcinogens (RoC). http://ntp.niehs.nih.gov/pubhealth/roc/roc13/index.html. Accessed February 16, 2014. |
11. |
European Commission Health and Consumers. Cosmetic ingredients & substances (CosIng). http://ec.europa.eu/consumers/cosmetics/cosing/. Accessed June 4, 2014. |
12. |
Turner NC, Bell MAM. Ethnobotany of Southern Kwakiutl Indians of British Columbia. Econ Bot. 1973;27:257-310. Google Scholar CrossRef |
13. |
Lans C, Turner N, Khan T. Medicinal plant treatments for fleas and ear problems of cats and dogs in British Columbia, Canada. Parasitol Res. 2008;103:889-898. Google Scholar CrossRef, Medline |
14. |
Inamori Y, Shinohara S, Tsujibo H, . Antimicrobial activity and metalloprotease inhibition of hinokitiol-related compounds, the constituents of Thujopsis dolabrata S. and Z.hondai MAK. Biol Pharm Bull. 1999;22:990-993. Google Scholar CrossRef, Medline |
15. |
Komaki N, Watanabe T, Ogasawara A, Sato N, Mikami T, Matsumoto T. Antifungal mechanism of hinokitiol against Candida albicans. Biol Pharm Bull. 2008;31:735-737. Google Scholar CrossRef, Medline |
16. |
Chisty MM, Nargis M, Inaba T, Ishita K, Osanai A, Kamiya H. Transmission electron microscopy of Schistosoma mansoni cercariae treated with hinokitiol (beta-thujaplicin), a compound for potential skin application against cercarial penetration. Tohoku J Exp Med. 2004;202:63-67. Google Scholar CrossRef, Medline |
17. |
Arima Y, Hatanaka A, Tsukihara S, Fujimoto K, Fukuda K, Sakurai H. Scavenging activities of alpha-, beta- and gamma-thujaplicins against active oxygen species. Chem Pharm Bull (Tokyo). 1997;45:1881-1886. Google Scholar CrossRef |
18. |
Doulias PT, Nousis L, Zhu BZ, Frei B, Galaris D. Protection by tropolones against H2O2-induced DNA damage and apoptosis in cultured Jurkat cells. Free Radic Res. 2005;39:125-135. Google Scholar CrossRef, Medline |
19. |
Zhu Y-J, Qiu L, Zhou J-J, . Inhibitory effects of hinokitiol on tyrosinase activity and melanin biosynthesis and its antimicrobial activities. J Enzyme Inhib Med Chem. 2010;25:798-803. Google Scholar CrossRef, Medline |
20. |
Liu SC, Yamauchi H. p27-Associated
G1 arrest induced by hinokitiol in human malignant melanoma cells is
mediated via down-regulation of pRb, Skp2 ubiquitin ligase, and
impairment of Cdk2 function. Cancer Lett. 2009;286:240-249. Google Scholar CrossRef, Medline |
21. |
Baba T, Nakano H, Tamai K, . Inhibitory effect of beta-thujaplicin on ultraviolet B-induced apoptosis in mouse keratinocytes. J Invest Dermatol. 1998;110:24-28. Google Scholar CrossRef, Medline |
22. |
Cherng JY, Chen LY, Shih MF. Preventive Effects of beta-thujaplicin against UVB-induced MMP-1 and MMP-3 mRNA expressions in skin fibroblasts. Am J Chin Med. 2012;40:387-398. Google Scholar CrossRef, Medline |
23. |
Hwang SL, Kim JC. In vivo hair growth promotion effects of cosmetic preparations containing hinokitiol-loaded poly(epsilon-caprolacton) nanocapsules. J Microencapsul. 2008;25:351-356. Google Scholar CrossRef, Medline |
24. |
Arima Y, Nakai Y, Hayakawa R, Nishino T. Antibacterial
effect of beta-thujaplicin on staphylococci isolated from atopic
dermatitis: relationship between changes in the number of viable
bacterial cells and clinical improvement in an eczematous lesion of
atopic dermatitis. J Antimicrob Chemother. 2003;51:113-122. Google Scholar CrossRef, Medline |
25. |
Woods B, Calnan CD. Toxic woods. Br J Dermatol. 1976;94:1-97. Google Scholar CrossRef, Medline |
26. |
Sasseville D. Clinical patterns of phytodermatitis. Dermatol Clin. 2009;27:299-308. Google Scholar CrossRef, Medline |
27. |
Barranco P, Olalde S, Caminoa M, . Occupational asthma due to western red cedar in a guitar maker. J Invest Allergol Clin Immunol. 2012;22:293-294. Google Scholar Medline |
28. |
Bleumink E, Mitchell JC, Nater JP. Allergic contact dermatitis from cedar wood (Thuja plicata). Br J Dermatol. 1973;88:499-504. Google Scholar CrossRef, Medline |
29. |
Estlander T, Jolanki R, Alanko K, Kanerva L. Occupational allergic contact dermatitis caused by wood dusts. Contact Dermatitis. 2001;44:213-217. Google Scholar CrossRef, Medline |
30. |
Mitchell JC, Chanyeun. M. Contact allergy from frullania and respiratory allergy from thuja. Can Med Assoc J. 1974;110:653-657. Google Scholar Medline |
31. |
Fujita M, Aoki T. Allergic contact dermatitis to pyridoxine ester and hinokitiol. Contact Dermatitis. 1983;9:61-65. Google Scholar CrossRef, Medline |
32. |
Nakano Y, Matsuo S, Tani H, Sasai K, Baba E. Therapeutic effects of beta-thujaplicin eardrops on canine Malassezia-related otitis externa. J Vet Med Sci. 2006;68:373-374. Google Scholar CrossRef, Medline |
33. |
Ritch-Krc EM. A Selection of traditional Medicinal Remedies Important to Contemporary Carrier People in Their Treatment of Disease. Vancouver, BC: University of British Columbia; 1992. Google Scholar |
34. |
Chandler RF, Freeman L, Hooper SN. Herbal remedies of the maritime Indians. J Ethnopharmacol. 1979;1:49-68. Google Scholar CrossRef, Medline |
35. |
European Commission Health and Consumers. Cosmetic Ingredients & substances (CosIng) database: picea glauca. http://ec.europa.eu/consumers/cosmetics/cosing/index.cfm?fuseaction=search.details_v2&id=82463. Accessed June 4, 2014. |
36. |
Richardson MD, Peterson JR, Clark AM. Bioactivity screenings of plants selected on the basis of folkloric use or presence of lignans in a family. Phytother Res. 1992;6:274-278. Google Scholar CrossRef |
37. |
Willfor S, Nisula L, Hemming J, Reunanen M, Holmbom B. Bioactive phenolic substances in industrially important tree species. Part 1: knots and stemwood of different spruce species. Holzforschung. 2004;58:335-344. Google Scholar |
38. |
Harris CS, Lambert J, Saleem A, . Antidiabetic activity of extracts from needle, bark, and cone of Picea glauca: Organ-specific protection from glucose toxicity and glucose deprivation. Pharm Biol. 2008;46:126-134. Google Scholar CrossRef |
39. |
Willfor SM, Ahotupa MO, Hemming JE, . Antioxidant activity of knotwood extractives and phenolic compounds of selected tree species. J Agric Food Chem. 2003;51:7600-7606. Google Scholar CrossRef, Medline |
40. |
Cosentino M, Marino F, Ferrari M, . Estrogenic activity of 7-hydroxymatairesinol potassium acetate (HMR/lignanTM) from Norway spruce (Picea abies) knots and of its active metabolite enterolactone in MCF-7 cells. Pharmacol Res. 2007;56:140-147. Google Scholar CrossRef, Medline |
41. |
Cosentino M, Marino F, Maio RC, . Immunomodulatory activity of the lignan 7-hydroxymatairesinol potassium acetate (HMR/lignanTM) extracted from the heartwood of Norway spruce (Picea abies). Int Immunopharmacol. 2010;10:339-343. Google Scholar CrossRef, Medline |
42. |
Hammerbacher A, Ralph SG, Bohlmann J, Fenning TM, Gershenzon J, Schmidt A. Biosynthesis
of the major tetrahydroxystilbenes in spruce, astringin and
isorhapontin, =proceeds via resveratrol and is enhanced by fungal
infection. Plant Physiol. 2011;157:876-890. Google Scholar CrossRef, Medline |
43. |
Harbilas D, Martineau LC, Harris CS, . Evaluation
of the antidiabetic potential of selected medicinal plant extracts from
the Canadian boreal forest used to treat symptoms of diabetes: part II. Can J Physiol Pharmacol. 2009;87:479-492. Google Scholar CrossRef, Medline |
44. |
Valimaa AL, Honkalampi-Hamalainen U, Pietarinen S, Willfor S, Holmbom B, von Wright A. Antimicrobial and cytotoxic knotwood extracts and related pure compounds and their effects on food-associated microorganisms. Int J Food Microbiol. 2007;115:235-243. Google Scholar CrossRef, Medline |
45. |
Jellin JM, ed. Natural medicines comprehensive database. http://naturaldatabase.therapeuticresearch.com/nd/Search.aspx?cs=&s=ND&pt=100&sh=1&id=352. Accessed Januaey 4, 2015. |
46. |
Krasutsky PA. Birch bark research and development. Nat Prod Rep. 2006;23:919-942. Google Scholar CrossRef, Medline |
47. |
Laszczyk M, Jaeger S, Simon-Haarhaus B, Scheffler A, Schempp CM. Physical,
chemical and pharmacological characterization of a new oleogel-forming
triterpene extract from the outer bark of birch (Betulae Cortex). Planta Med. 2006;72:1389-1395. Google Scholar CrossRef, Medline |
48. |
Muceniece R, Saleniece K, Riekstina U, Krigere L, Tirzitis G, Ancans J. Betulin
binds to melanocortin receptors and antagonizes alpha-melanocyte
stimulating hormone induced cAMP generation in mouse melanoma cells. Cell Biochem Funct. 2007;25:591-596. Google Scholar CrossRef, Medline |
49. |
Gong YH, Raj KM, Luscombe CA, . The synergistic effects of betulin with acyclovir against herpes simplex viruses. Antiviral Res. 2004;64:127-130. Google Scholar CrossRef, Medline |
50. |
Pavlova NI, Savinova OV, Nikolaeva SN, Boreko EI, Flekhter OB. Antiviral activity of betulin, betulinic and betulonic acids against some enveloped and non-enveloped viruses. Fitoterapia. 2003;74:489-492. Google Scholar CrossRef, Medline |
51. |
Kazakova OB, Giniyatullina GnV, Yamansarov EY, Tolstikov GA. Betulin and ursolic acid synthetic derivatives as inhibitors of Papilloma virus. Bioorg Med Chem Lett. 2010;20:4088-4090. Google Scholar CrossRef, Medline |
52. |
Wert L, Alakurtti S, Corral MJ, Sanchez-Fortun S, Yli-Kauhaluoma J, Alunda JM. Toxicity of betulin derivatives and in vitro effect on promastigotes and amastigotes of Leishmania infantum and L. donovani. J Antibiot (Tokyo). 2011;64:475-481. Google Scholar CrossRef, Medline |
53. |
Chowdhury S, Mukherjee T, Sengupta S, Chowdhury SR, Mukhopadhyay S, Majumder HK. Novel betulin derivatives as antileishmanial agents with mode of action targeting type IB DNA topoisomerase. Mol Pharmacol. 2011;80:694-703. Google Scholar CrossRef, Medline |
54. |
Dehelean CA, Soica C, Ledeti I, . Study of the betulin enriched birch bark extracts effects on human carcinoma cells and ear inflammation. Chem Cent J. 2012;6:137. Google Scholar CrossRef, Medline |
55. |
Manez S, Recio MC, Giner RM, Rios JL. Effect of selected triterpenoids on chronic dermal inflammation. Eur J Pharmacol. 1997;334:103-105. Google Scholar CrossRef, Medline |
56. |
Recio MD, Giner RM, Manez S, . Investigations of the steroidal antiinflammatory activity of triterpenoids from Diospyros leucomelas. Planta Med. 1995;61:9-12. Google Scholar CrossRef, Medline |
57. |
Lee CW, Park NH, Kim JW, . Study
of skin anti-ageing and anti-inflammatory effects of dihydroquercetin,
natural triterpenoinds, and their synthetic derivatives. Bioorg Khim. 2012;38:374-381. Google Scholar Medline |
58. |
Zuo GY, Wang GC, Zhao YB, . Screening
of Chinese medicinal plants for inhibition against clinical isolates of
methicillin-resistant Staphylococcus aureus (MRSA). J Ethnopharmacol. 2008;120:287-290. Google Scholar CrossRef, Medline |
59. |
Shai LJ, McGaw LJ, Aderogba MA, Mdee LK, Eloff JN. Four pentacyclic triterpenoids with antifungal and antibacterial activity from Curtisia dentata (Burm.f)CA Sm. leaves. J Ethnopharmacol. 2008;119:238-244. Google Scholar CrossRef, Medline |
60. |
Hata K, Hori K, Takahashi S. Differentiation- and apoptosis-inducing activities by pentacyclic triterpenes on a mouse melanoma cell line. J Nat Prod. 2002;65:645-648. Google Scholar CrossRef, Medline |
61. |
Pisha E, Chai H, Lee IS, . Discovery of betulinic acid as a selective inhibitor of human melanoma that functions by induction of apoptosis. Nat Med. 1995;1:1046-1051. Google Scholar CrossRef, Medline |
62. |
Tsai JC, Peng WH, Chiu TH, Lai SC, Lee CY. Anti-inflammatory effects of Scoparia dulcis L. and Betulinic acid. Am J Chin Med. 2011;39:943-956. Google Scholar CrossRef, Medline |
63. |
Salti GI, Kichina JV, Das Gupta TK, . Betulinic
acid reduces ultraviolet-C-induced DNA breakage in congenital
melanocytic naeval cells: evidence for a potential role as a
chemopreventive agent. Melanoma Res. 2001;11:99-104. Google Scholar CrossRef, Medline |
64. |
Chung PY, Chung LY, Navaratnam P. Transcriptional profiles of the response of Methicillin-resistant Staphylococcus aureus to pentacyclic triterpenoids. Plos One. 2013;8:e56687. Google Scholar CrossRef, Medline |
65. |
Fontanay S, Grare M, Mayer J, Finance C, Duval RE. Ursolic, oleanolic and betulinic acids: antibacterial spectra and selectivity indexes. J Ethnopharmacol. 2008;120:272-276. Google Scholar CrossRef, Medline |
66. |
Horiuchi K, Shiota S, Hatano T, Yoshida T, Kuroda T, Tsuchiya T. Antimicrobial
activity of oleanolic acid from Salvia officinalis and related
compounds on vancomycin-resistant enterococci (VRIE). Biol Pharm Bull. 2007;30:1147-1149. Google Scholar CrossRef, Medline |
67. |
Tan YM, Yu R, Pezzuto JM. Betulinic acid-induced programmed cell death in human melanoma cells involves mitogen-activated protein kinase activation. Clin Cancer Res. 2003;9:2866-2875. Google Scholar Medline |
68. |
Fulda S, Scaffidi C, Susin SA, . Activation of mitochondria and release of mitochondrial apoptogenic factors by betulinic acid. J Biol Chem. 1998;273:33942-33948. Google Scholar CrossRef, Medline |
69. |
Selzer E, Pimentel E, Wacheck W, . Effects of betulinic acid alone and in combination with irradiation in human melanoma cells. J Invest Dermatol. 2000;114:935-940. Google Scholar CrossRef, Medline |
70. |
Eder-Czembirek C, Erovic BM, Czembirek C, . Betulinic acid a radiosensitizer in head and neck squamous cell carcinoma cell lines. Strahlenther Onkol. 2010;186:143-148. Google Scholar CrossRef, Medline |
71. |
Huyke C, Reuter J, Rodig M, . Treatment of actinic keratoses with a novel betulin-based oleogel. A prospective, randomized, comparative pilot study. J Dtsch Dermatol Ges. 2009;7:128-133. Google Scholar Medline |
72. |
Huyke C, Laszczyk M, Scheffler A, Ernst R, Schempp CM. Treatment of actinic keratoses with birch bark extract: a pilot study. J Dtsch Dermatol Ges. 2006;4:132-136. Google Scholar CrossRef, Medline |
73. |
European Commission, DG Health and Consumers, Public Health, Community register of orphan medicinal products. Dry extract from birch bark (DER 0.1-0.2:1), extraction solvent n-heptane 95% (V/V). http://ec.europa.eu/health/documents/community-register/html/o845.htm. Accessed February 23, 2014. |
74. |
U.S. National Institutes of Health. Oleogel-s10. http://www.clinicaltrials.gov/ct2/results?term=oleogel-s10. Accessed February 23, 2014. |
75. |
Pflugfelder A, Andonov E, Weide B, . Lack
of activity of betulin-based Oleogel-S10 in treatment of actinic
keratoses: a randomized, multicenter, placebo controlled double-blind
phase II trial. Br J Dermatol. 2015;172:926-932. Google Scholar CrossRef, Medline |
76. |
Laszczyk MN, Reitenbach-Blindt I, Gehring W. Regenerative and anti-inflammatory effects of betulin-emulsions on defective epidermal barrier. Akt Dermatolog. 2010;36:24-28. Google Scholar CrossRef |
77. |
Metelmann HR, Brandner J, Schumann H, Bross F, Hoffmann M, Podmelle F. Accelerating the aesthetic benefit of wound healing by triterpene. J Craniomaxillofac Surg. 2012;40:e150-e154. Google Scholar CrossRef, Medline |
78. |
Metelmann HR, Podmelle F, Waite PD, Müller-Debus CF, Hammes S, Funk W. Conditioning in laser skin resurfacing—betulin emulsion and skin recovery. J Craniomaxillofac Surg. 2013;41:249-253. Google Scholar CrossRef, Medline |
79. |
Weckesser S, Laszczyk MN, Mueller ML, Schempp CM, Schumann H. Topical treatment of necrotising herpes zoster with betulin from birch bark. Forsch Komplementarmed. 2010;17:271-273. Google Scholar CrossRef |
80. |
Phan NQ, Blome C, Siepmann D, Laszczyk MN, Augustin M, Stander S. Antipruritic potency of the triterpene betulin: results of an open-labelled trial in patients with chronic pruritus. J Invest Dermatol. 2010;130:S71. Google Scholar |
81. |
Gupta TKD. Phase
I/II evaluation of topical application of 20% betulinic acid ointment
in the treatment of dysplastic nevi with moderate to severe dysplasia. https://clinicaltrials.gov/ct2/show/NCT00346502. Accessed February 23, 2014. |
82. |
Arnason T, Hebda RJ, Johns T. Use of plants for food and medicine by native peoples of Eastern Canada. Can J Bot. 1981;59:2189-2325. Google Scholar CrossRef |
83. |
Martineau LC, Muhammad A, Saleem A, . Anti-adipogenic
activities of Alnus incana and Populus balsamifera bark extracts, part
II: bioassay-guided identification of actives salicortin and oregonin. Planta Med. 2010;76:1519-1524. Google Scholar CrossRef, Medline |
84. |
Martineau LC, Herve J, Muhamad A, . Anti-adipogenic activities of Alnus incana and Populus balsamifera bark extracts, part I: sites and mechanisms of action. Planta Med. 2010;76:1439-1446. Google Scholar CrossRef, Medline |
85. |
Knuth S, Schuebel H, Hellemann M, Juergenliemk G. Catechol, a bioactive degradation product of salicortin, reduces TNF-alpha induced ICAM-1expression in human endothelial cells. Planta Med. 2011;77:1024-1026. Google Scholar CrossRef, Medline |
86. |
Greenaway W, May J, Whatley FR. Flavonoid aglycones identified by gas-chromatography mass-spectrometry in bud exudate of Populus balsamifera. J Chromatogr A. 1989;472:393-400. Google Scholar CrossRef |
87. |
Isidorov VA, Vinogorova VT. GC-MS analysis of compounds extracted from buds of Populus balsamifera and Populus nigra. Z Naturforsch C. 2003;58:355-360. Google Scholar CrossRef, Medline |
88. |
Isaeva EV, Lozhkina GA, Ryazanova TV. A study of the alcohol extract from balsam poplar buds. Russ J Bioorg Chem. 2010;36:929-933. Google Scholar CrossRef |
89. |
Gopaul R, Knaggs HE, Lephart J. Salicin regulates the expression of functional “youth gene clusters” to reflect a more youthful gene expression profile. Int J Cosmet Sci. 2011;33:416-420. Google Scholar CrossRef, Medline |
90. |
Gopaul R, Knaggs HE, Lephart JF, Holley KC, Gibson EM. An evaluation of the effect of a topical product containing salicin on the visible signs of human skin aging. J Cosmet Dermatol. 2010;9:196-201. Google Scholar CrossRef, Medline |
91. |
Fisher AA, Rietschel RL, Fowler JF, Fisher AA. Fisher’s Contact Dermatitis. Hamilton: BC Decker Inc; 2008. Google Scholar |
92. |
Blumenthal M, Blumenthal Goldberg B.
Herbal Medicine: Expanded Commission E Monographs; Herb Monographs,
Based on Those Created by a Special Expert Committee of the German
Federal Institute for Drugs and Medical Devices. Newton, MA: Integrative Medicine Communications; 2000. Google Scholar |
93. |
Charton V, Portes P, Demarne F. Non-therapeutic use of an extract of Populus balsamifera as a depigmentation agent of the skin and/or in a cosmetic composition. Patent WO 2012004139 A3. |
94. |
Diouf PN, Stevanovic T, Cloutier A. Study
on chemical composition, antioxidant and anti-inflammatory activities
of hot water extract from Picea mariana bark and its
proanthocyanidin-rich fractions. Food Chem. 2009;113:897-902. Google Scholar CrossRef |
95. |
Garcia-Perez M-E, Royer M, Duque-Fernandez A, Diouf PN, Stevanovic T, Pouliot R. Antioxidant,
toxicological and antiproliferative properties of Canadian polyphenolic
extracts on normal and psoriatic keratinocytes. J Ethnopharmacol. 2010;132:251-258. Google Scholar CrossRef, Medline |
96. |
Garcia-Perez M-E, Royer M, Herbette G, Desjardins Y, Pouliot R, Stevanovic T. Picea mariana bark: a new source of trans-resveratrol and other bioactive polyphenols. Food Chem. 2012;135:1173-1182. Google Scholar CrossRef, Medline |
97. |
Garcia-Perez M-E, Allaeys I, Rusu D, Pouliot R, Janezic TS, Poubelle PE. Picea
mariana polyphenolic extract inhibits phlogogenic mediators produced by
TNF-alpha-activated psoriatic keratinocytes: impact on NF-kappa B
pathway. J Ethnopharmacol. 2014;151:265-278. Google Scholar CrossRef, Medline |
98. |
Melnik B. Use
of resveratrol and resveratrol derivatives, e.g. for treating acne,
rosacea, androgenetic alopecia, or hyperproliferative skin diseases. Patent WO2011039175-A1. |
99. |
Clement P, Teris M. Topical
composition useful for treating psoriasis, acne and herpes simplex
virus, and for wrinkle reduction, comprises solubilized resveratrol in
stable emulsion in presence of solvent system comprising dimethyl
isosorbide. Patent WO2009129627-A1. |
100. |
De Rosa R, Rossi F, Derosa M, Rossi M, De Rosa M. Use
of resveratrol and its ethers, esters and hydroxylated, ethoxylated and
glycosylated derivatives in the cosmetic treatment of dandruff. Patent WO200191714-A. |
101. |
Zhu YJ, Qiu L, Zhou JJ, . Inhibitory effects of hinokitiol on tyrosinase activity and melanin biosynthesis and its antimicrobial activities. J Enzyme Inhib Med Chem. 2010;25:798-803. Google Scholar CrossRef, Medline |
102. |
Smith HH. Ethnobotany of the Forest Potawatomi Indians. Milwaukee, WI: Published by order of the Board of Trustees; 1933. Google Scholar |
103. |
Compton BD. Upper North Wakashan
and Southern Tsimshian Ethnobotany: The knowledge and Usage of Plants
and Fungi Among the Oweekeno, Hanaksiala (Kitlope and Kemano), Haisla
(Kitamaat) and Kitasoo Peoples of the Central and North Coasts of
British Columbia. Vancouver, BC: The University of British Columbia; 1993. Google Scholar |
104. |
Palmer G. Shuswap Indian ethnobotany. Syesis. 1975;8:29-81. Google Scholar |
105. |
García-Pérez ME, Royer M, Rusu D, Poubelle PE, Stevanovic T, Pouliot R. Black
spruce polyphenols: chemical characterization and study of their
effects on the IL-8 production in normal and psoriatic keratinocytes
stimulated with TNF-a. J Pharm Pharm Sci. 2011;14:17S-190S. Google Scholar Medline |