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  • Inhibitory effects of stilbene derivatives from Parthenocissus tricuspidata on adipocyte differentiation and pancreatic lipase.

Inhibitory effects of stilbene derivatives from Parthenocissus tricuspidata on adipocyte differentiation and pancreatic lipase.

Natural product communications (2013-12-21)
Sang Hoon Lee, Qing Liu, Bang Yeon Hwang, Mi Kyeong Lee
ABSTRACT

Obesity, which is characterized by excessive fat accumulation, occurs by fat absorption by lipase and sequential fat accumulation in adipocytes through adipocyte differentiation. Thus, inhibition of pancreatic lipase activity and adipocyte differentiation would be crucial for the prevention and treatment of obesity. Investigation of anti-obesity compounds from Parthenocissus tricuspidata stems resulted in the isolation of nineteen compounds including five acetophenones, five flavonoids and nine stilbene derivatives. Among them, the stilbene derivatives showed the most potent anti-obesity effects. Stilbene monomers showed strong inhibitory activity on both adipocyte differentiation and pancreatic lipase, followed by stilbene dimer and trimer. Flavonoids showed mild inhibition on adipocyte differentiation, whereas acetophenones showed little effect in our assay system. Taken together, P. tricuspidata might be a new candidate for the development of obesity treatment.

MATERIALS
Product Number
Brand
Product Description

Sigma-Aldrich
Lipase from Rhizopus oryzae, powder (fine), ~10 U/mg
Sigma-Aldrich
Lipase from Candida rugosa, lyophilized, powder (fine), 15-25 U/mg
Sigma-Aldrich
Lipase from Aspergillus oryzae, lyophilized, powder, white, ~50 U/mg
Sigma-Aldrich
Lipase from Mucor miehei, powder, slightly brown, ~1 U/mg
Sigma-Aldrich
Lipase from Rhizopus niveus, powder (fine), ≥1.5 U/mg
Sigma-Aldrich
Lipase from Pseudomonas sp., Type XIII, lyophilized powder, ≥15 units/mg solid
Sigma-Aldrich
Lipase from Candida rugosa, Type VII, ≥700 unit/mg solid
Sigma-Aldrich
Lipase from Candida rugosa, lyophilized powder, ≥40,000 units/mg protein
Sigma-Aldrich
Lipase from Mucor miehei, lyophilized powder, ≥4,000 units/mg solid (using olive oil)
Sigma-Aldrich
Lipase from porcine pancreas, Type II, ≥125 units/mg protein (using olive oil (30 min incubation)), 30-90 units/mg protein (using triacetin)
Sigma-Aldrich
Lipase from porcine pancreas, Type VI-S, ≥20,000 units/mg protein, lyophilized powder
Sigma-Aldrich
Lipase from wheat germ, Type I, lyophilized powder, 5-15 units/mg solid
Sigma-Aldrich
Lipase from Aspergillus oryzae, ≥20,000 U/g
Sigma-Aldrich
Lipase from Aspergillus oryzae, solution, ≥100,000 U/g, white, beige
Sigma-Aldrich
Lipase acrylic resin, ≥5,000 U/g, recombinant, expressed in Aspergillus niger
Sigma-Aldrich
Lipase from Candida rugosa, powder, yellow-brown, ≥2 U/mg
Sigma-Aldrich
Lipase from Candida sp., recombinant, expressed in Aspergillus niger
Sigma-Aldrich
Lipase A Candida antarctica, recombinant from Aspergillus oryzae, powder, beige, ~2 U/mg
Sigma-Aldrich
Lipase B Candida antarctica, recombinant from Aspergillus oryzae, powder, beige, ~9 U/mg
Sigma-Aldrich
Lipase from Aspergillus niger, powder (fine), ~200 U/g
Sigma-Aldrich
Lipase immobilized from Candida antarctica, beads, slightly brown, >2 U/mg
Sigma-Aldrich
Lipase from Mucor javanicus, lyophilized powder, ≥300 units/mg solid (using olive oil)
Sigma-Aldrich
Lipase from Pseudomonas cepacia, powder, light beige, ≥30 U/mg