Antileishmanial Activity of Lignans, Neolignans …
167
214. Su B-N, Cuendet M, Farnsworth NR, Fong HHS, Pezzuto JM, Kinghorn AD (2002) Activityguided fractionation of the seeds of Ziziphus jujuba using a cyclooxygenase-2 inhibitory
assay. Planta Med 68:1125
215. Cho JY, Park J, Kim PS, Yoo ES, Baik KU, Park MH (2001) Savinin, a lignan from Pterocarpus
santalinus inhibits tumor necrosis factor-alpha production and T cell proliferation. Biol Pharm
Bull 24:167
216. Su G, Zhang R, Yang X, Bai R, Yin X, Gao X, Li L, Tu P, Chai X (2016) Lignans from the
stem bark of Syringa pinnatifolia. Fitoterapia 114:63
217. Jing Y, Zhang Y-F, Shang M-Y, Liu G-X, Li Y-L, Wang X, Cai S-Q (2017) Chemical
constituents from the roots and rhizomes of Asarum heterotropoides var. mandshuricum and
the in vitro antiinflammatory activity. Molecules 22:125
218. Rom S, Zuluaga-Ramirez V, Reichenbach NL, Ericson MA, Winfield M, Gajghate S,
Christofidu-Solomidou M, Jordan-Sciutto KL, Persidsky Y (2018) Secoisolariciresinol diglucoside is a blood-brain barrier protective and antiinflammatory agent: implications for
neuroinflammation. J Neuroinflammation 15:1
219. Kay AB (2001) Allergy and allergic diseases. N Engl J Med 344:30
220. Morikawa T, Hachiman I, Matsuo K, Nisida E, Ninomiya K, Hayakawa T, Yoshie O, Muraoka
O, Nakayama T (2016) Neolignans from the arils of Myristica fragrans as potent antagonists
of CC chemokine receptor 3. J Nat Prod 79:2005
221. Morikawa T, Hachiman I, Ninomiya K, Hata H, Sugawara K, Muraoka O, Matsuda H
(2018) Degranulation inhibitors from the arils of Myristica fragrans in antigen-stimulated
rat basophilic leukemia cells. J Nat Med 72:464
222. Tuyet T, Nguyen M, Lee H, Nguyen T, Mai Q, Jun C, Min S, Kim JA (2017) Four new lignans
and IL-2 inhibitors from Magnoliae Flos. Chem Pharm Bull 65:840
223. Li J, Xu P-S, Tan L-H, Zou Z-X, Wang Y-K, Long H-P, Zhou G, Li G, Xu K-P, Tan G-S
(2017) Neolignans and serratane triterpenoids with inhibitory effects on xanthine oxidase
from Palhinhaea cernua. Fitoterapia 119:45
224. Zhao L, Xiao H, Mu H, Huang T, Lin Z, Zhong L, Zeng G, Fan B, Lin C, Bian Z (2017)
Magnolol, a natural polyphenol, attenuates dextran sulfate sodium-induced colitis in mice.
Molecules 22:1218
225. Xu J, Tian G, Ma C, Gao H, Chen C, Yang W, Deng Q, Huang QZ, Huang F (2016) Flaxseed
lignan secoisolariciresinol diglucoside ameliorates experimental colitis induced by dextran
sulphate sodium in mice. J Funct Foods 26:187
226. Zhou J, Li C-J, Yang J-Z, Ma J, Wu L-Q, Wang W-J, Zhang D-M (2016) Phenylpropanoid
and lignan glycosides from the aerial parts of Lespedeza cuneata. Phytochemistry 121:58
227. Arts IC, Hollman PC, Feskens EJ, Bueno de Mesquita HB, Kromhout D (2001) Catechin intake
might explain the inverse relation between tea consumption and ischemic heart disease: the
Zutphen elderly study. Am J Clin Nutr 74:227
228. Gadkari PV, Balaraman M (2015) Catechins: sources, extraction and encapsulation: a review.
Food Bioprod Process 93:122
229. Friedman M (2007) Overview of antibacterial, antitoxin, antiviral, and antifungal activities
of tea flavonoids and teas. Mol Nutr Food Res 51:116
230. Zhao L, La VD, Grenier D (2013) Antibacterial, antiadherence, antiprotease, and antiinflammatory activities of various tea extracts: potential benefits for periodontal diseases. J Med
Food 16:428
231. Taylor PW, Hamilton-Miller JMT, Stapleton PD (2005) Antimicrobial properties of green tea
catechins. Food Sci 2:71
232. Yang CS, Wang H, Chen JX, Zhang J (2014) Effects of tea catechins on cancer signaling
pathways. Enzymes 36:195
233. Shin ES, Park J, Shin J-M, Cho D, Cho SY, Shin DW, Ham M, Kim JB, Lee TR (2008)
Catechin gallates are NADP + -competitive inhibitors of glucose-6-phosphate dehydrogenase
and other enzymes that employ NADP + as a coenzyme. Bioorg Med Chem 16:3580
234. Navarro-Perán E, Cabezas-Herrera J, García-Cánovas F, Durrant MC, Thorneley RNF,
Rodríguez-López JN (2005) The antifolate activity of tea catechins. Cancer Res 65:2059
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