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1 L131F mutant only omega-1 hydroxylation, of lauric acid.
2 er when compared with diets rich in myristic/lauric acid.
3 demonstrated that BSFL has a predominance of lauric acid.
4 N(SiMe(3))(2)}(2)(thf)], hexadecylamine, and lauric acid.
5 crosomal capacity for omega-hydroxylation of lauric acid.
6 ome unusual cooperativity with the substrate lauric acid.
7 tion of AKT induced by lipopolysaccharide or lauric acid.
8 tans that had been mono- and diacylated with lauric acid.
9 sgenic B. napus line that has high levels of lauric acid.
10 fold higher for the omega-1 hydroxylation of lauric acid.
11 oteins were each active in the metabolism of lauric acid.
13 of saturated fatty acids with 4-10 carbons, lauric acid (12:0), and myristic acid (14:0) were associ
15 medium-chain saturated fatty acids, such as lauric acid (12:0: 9.32 +/- 1.8 compared with 4.47 +/- 1
18 Together, these results demonstrate that lauric acid activates TLR2 dimers as well as TLR4 for wh
19 isotopically labeled palmitic, myristic, and lauric acids added to the medium were incorporated into
20 tudy evaluated the antimicrobial property of lauric acid against P. acnes both in vitro and in vivo.
22 In this study, we examined the metabolism of lauric acid and 14C-acetate in developing seeds of oilse
24 ith selected synthetic agonists but not with lauric acid and allowed for the characterization of bind
25 Together, these results demonstrate that lauric acid and DHA reciprocally modulate TLR4 activatio
26 thesis of glucose esters with palmitic acid, lauric acid and hexanoic acid using lipase enzyme was st
29 YkuN and YkuP supported monohydroxylation of lauric acid and myristic acid, but secondary oxygenation
33 enz-2-oxa-1,3-diazol-4-yl)) (NBD)-conjugated lauric acid and sphingosine were added to cultured lymph
34 f benzyl alcohol, ethylbenzene, Tris buffer, lauric acid, and methyl laurate and epoxidations of styr
35 B activation and COX-2 expression induced by lauric acid are at least partly mediated through the TLR
36 tained data highlight the potential of using lauric acid as an alternative treatment for antibiotic t
40 ntal properties of AD and T2D in literature (lauric acid, asparagine, fructose, arachidonic acid, ami
41 cells metabolized lauric acid to 12-hydroxy-lauric acid at a rate 5 times greater than that of cells
42 cept electrons from NADPH in the presence of lauric acid at a rate comparable to that of the unmodifi
47 inooctanoic acid (Aoc) residue acylated with lauric acid (C12 fatty acid), which is linked to a pepti
49 est quartile, high intake of dodecanoic acid/lauric acid (C12:0) was associated with reduced risk of
52 propionic acid [C3:0], caprylic acid [C8:0], lauric acid [C12:0], stearic acid [C18:0]) and docosahex
53 owever, it has not been demonstrated whether lauric acid can be used for acne treatment as a natural
54 -I hydroxylates the unactivated C-H bonds of lauric acid [D(C-H) ~ 100 kilocalories per mole], with a
55 e presence of lysine and the major component lauric acid derivative, as indicated by electrospray ion
58 ation of Garner's aldehyde, N-acylation with lauric acid, dihydroxylation of the terminal alkene, and
59 al injection and epicutaneous application of lauric acid effectively decreased the number of P. acnes
61 fflower oil, linolenic acid from canola oil, lauric acid from coconut oil, and palmitic and stearic a
65 hydrolyzed by bacteria, one of the products, lauric acid, has identical inhibitory activity and is me
66 from 22 to 28 with 7 alanines did not reduce lauric acid hydroxylase activity of the proteins express
67 orresponding CYP4B1(Ser) variants, supported lauric acid hydroxylation preferentially at the omega-po
69 netic deuterium isotope effects for all four lauric acid hydroxylations indicated that the rate of C-
71 e is available, is shown here to hydroxylate lauric acid in a reaction supported by putidaredoxin and
73 sized via the esterification of lactose with lauric acid in different organic solvents without using
75 se showed that the intracavitary position of lauric acid in TL is similar to that in beta-lactoglobul
77 the first time that the saturated fatty acid lauric acid induced dimerization and recruitment of TLR4
82 olyunsaturated fatty acid, inhibited LPS- or lauric acid-induced dimerization and recruitment of TLR4
83 its downstream signaling components inhibits lauric acid-induced expression of a CD86 promoter-report
84 ne lactone, suppress both ligand-induced and lauric acid-induced Nod2 signaling, leading to the suppr
85 , the previously observed cooperativity with lauric acid is explained by a surprisingly open substrat
89 sequential adsorption of major SOM compounds-lauric acid (lipid), pentaglycine (amino acid), trehalos
90 way occurs, presumably to compensate for the lauric acid lost through beta-oxidation or for a shortag
91 14L mutation, whereas kinetic parameters for lauric acid metabolism, a substrate which cannot interac
93 alysis exhibited additional fatty acids i.e. lauric acid methyl ester, 1-dodecanol, palmitoleic acid,
94 howed that for the dominant hexaacyl form, a lauric acid moiety was lost at one position on the lipid
97 CYP4A measured as either arachidonic acid or lauric acid omega-hydroxylase activity (1.4-2.0-fold inc
99 ses showed (a) the presence of an endogenous lauric acid omega-hydroxylase and arachidonic acid epoxy
100 maximal effective concentration (EC(50)) of lauric acid on P. acnes, S. aureus, and S. epidermidis g
103 induced, but docosahexaenoic acid inhibited lauric acid- or Nod2 ligand MDP-induced, Nod2 oligomeriz
109 pha in vitro, N-lauroylethanolamine, but not lauric acid, selectively inhibited abscisic acid-induced
111 tic efficiency with those of arachidonic and lauric acids showed that EETs are one of the best endoge
112 ted side reaction which consumes part of the lauric acid, the main stabilizing ligand, transforming i
113 8.3 pmol/microg/h, respectively, whereas for lauric acid they were 73.76 microM and 232.5 pmol/microg
115 ells, (b) the CYP 4A3-dependent oxidation of lauric acid to 11- and 12-hydroxylaurate (24 and 76% of
116 d-SM22-4A1-transduced A7r5 cells metabolized lauric acid to 12-hydroxy-lauric acid at a rate 5 times
117 rase that is responsible for the addition of lauric acid to the lipid A moiety of LPS, as well as a D
118 y demonstrate that the saturated fatty acid, lauric acid, up-regulates the expression of costimulator
120 A2, that catalyzes in-chain hydroxylation of lauric acid was also shown to be involved in sporopollen
121 unmodified forms, although oxidation of the lauric acid was not observed with either modified enzyme
128 including a high amounts of mono-esterified lauric acid with beta-cryptoxanthin and with cryptocapsi
129 o catalyze the light-driven hydroxylation of lauric acid with total turnover numbers of 935 and initi
130 led in that it slowly (omega-1)-hydroxylates lauric acid yet consumes NADPH at approximately the same
131 hylococcus epidermidis (S. epidermidis) with lauric acid yielded minimal inhibitory concentration (MI