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Effect and potential mechanism of action of sea cucumber saponins on postprandial blood glucose in mice. , Fu X, Wen M, Han X, Yanagita T, Xue Y, Wang J , Xue C , Wang Y ., Biosci Biotechnol Biochem. June 1, 2016; 80 (6): 1081-7.
Polyketides from the Mangrove-Derived Endophytic Fungus Nectria sp. HN001 and Their α- Glucosidase Inhibitory Activity. , Cui H, Liu Y, Nie Y, Liu Z, Chen S, Zhang Z, Lu Y, He L, Huang X, She Z., Mar Drugs. April 28, 2016; 14 (5):
α- Glucosidase inhibitory activities of fatty acids purified from the internal organ of sea cucumber Stichopus japonicas. , Nguyen TH, Kim SM., J Food Sci. April 1, 2015; 80 (4): H841-7.
A role for polyglucans in a model sea urchin embryo cellular interaction. , Singh S, Karabidian E, Kandel A, Metzenberg S, Carroll EJ , Oppenheimer SB., Zygote. August 1, 2014; 22 (3): 419-29.
RNA-Seq reveals dynamic changes of gene expression in key stages of intestine regeneration in the sea cucumber Apostichopus japonicus. [corrected]. , Sun L, Yang H , Chen M, Ma D, Lin C., PLoS One. January 1, 2013; 8 (8): e69441.
Two unsaturated fatty acids with potent α- glucosidase inhibitory activity purified from the body wall of sea cucumber (Stichopus japonicus). , Nguyen TH, Um BH, Kim SM., J Food Sci. January 1, 2011; 76 (9): H208-14.
Use of specific glycosidases to probe cellular interactions in the sea urchin embryo. , Idoni B, Ghazarian H, Metzenberg S, Hutchins-Carroll V, Oppenheimer SB, Carroll EJ ., Exp Cell Res. August 1, 2010; 316 (13): 2204-11.
[O-glycosylhydrolases of embryos of the sea urchin Strongylocentrotus intermedius and effect of some natural substances on their biosynthesis]. , Verigina NS, Kiseleva MI, Ermakova SP, Sova VV, Zviagintseva TN., Zh Evol Biokhim Fiziol. January 1, 2009; 45 (1): 53-8.
Carbohydrate involvement in cellular interactions in sea urchin gastrulation. , Khurrum M, Hernandez A, Eskalaei M, Badali O, Coyle-Thompson C, Oppenheimer SB., Acta Histochem. January 1, 2004; 106 (2): 97-106.