Javascript must be enabled to continue!
Lipase‐catalyzed hydrolysis of TG containing acetylenic FA
View through CrossRef
AbstractHydrolysis of symmetrical acetylenic TG of type AAA [viz., glycerol tri‐(4‐decynoate), glycerol tri‐(6‐octadecynoate), glycerol tri‐(9‐octadecynoate), glycerol tri‐(10‐undecynoate), and glycerol tri‐(13‐docosynoate)] in the presence of eight microbial lipases was studied. Novozyme 435 (Candida antarctica), an efficient enzyme for esterification, showed a significant resistance in the hydrolysis of glycerol tri‐(9‐octadecynoate) and glycerol tri‐(13‐docosynoate). Hydrolysis of acetylenic TG with Lipolase 100T (Humicola lanuginosa) was rapidly accomplished. Lipase PS‐D (Pseudomonas cepacia) showed a fair resistance toward the hydrolysis of glycerol tri‐(6‐octadecynoate) only, which reflected its ability to recognize the Δ6 positional isomer of 18∶1. Lipase CCL (Candida cylindracea, syn. C. rugosa) and AY‐30 (C. rugosa) were able to catalyze the release of 10‐undecynoic acid and 9‐octadecynoic acid from the corresponding TG, but less readily the 13‐docosynoic acid in the case of glycerol tri‐(13‐docosynoate). The two lipases CCL and AY‐30 were able to distinguish the small difference in structure of fatty acyl moieties in the TG substrate. To confirm this trend, three regioisomers of mixed acetylenic TG of type ABC (containing one each of Δ6, Δ9, and Δ13 acetylenic FA in various positions) were prepared and hydrolyzed with CCL and AY‐40. The results reconfirmed the observation that AY‐30 and CCL were able to distinguish the slight differences in the molecular structure (position of the acetylenic bond and chain length) of the acyl groups in the TG during the hydrolysis of such TG substrates.
Title: Lipase‐catalyzed hydrolysis of TG containing acetylenic FA
Description:
AbstractHydrolysis of symmetrical acetylenic TG of type AAA [viz.
, glycerol tri‐(4‐decynoate), glycerol tri‐(6‐octadecynoate), glycerol tri‐(9‐octadecynoate), glycerol tri‐(10‐undecynoate), and glycerol tri‐(13‐docosynoate)] in the presence of eight microbial lipases was studied.
Novozyme 435 (Candida antarctica), an efficient enzyme for esterification, showed a significant resistance in the hydrolysis of glycerol tri‐(9‐octadecynoate) and glycerol tri‐(13‐docosynoate).
Hydrolysis of acetylenic TG with Lipolase 100T (Humicola lanuginosa) was rapidly accomplished.
Lipase PS‐D (Pseudomonas cepacia) showed a fair resistance toward the hydrolysis of glycerol tri‐(6‐octadecynoate) only, which reflected its ability to recognize the Δ6 positional isomer of 18∶1.
Lipase CCL (Candida cylindracea, syn.
C.
rugosa) and AY‐30 (C.
rugosa) were able to catalyze the release of 10‐undecynoic acid and 9‐octadecynoic acid from the corresponding TG, but less readily the 13‐docosynoic acid in the case of glycerol tri‐(13‐docosynoate).
The two lipases CCL and AY‐30 were able to distinguish the small difference in structure of fatty acyl moieties in the TG substrate.
To confirm this trend, three regioisomers of mixed acetylenic TG of type ABC (containing one each of Δ6, Δ9, and Δ13 acetylenic FA in various positions) were prepared and hydrolyzed with CCL and AY‐40.
The results reconfirmed the observation that AY‐30 and CCL were able to distinguish the slight differences in the molecular structure (position of the acetylenic bond and chain length) of the acyl groups in the TG during the hydrolysis of such TG substrates.
Related Results
Production of Lipase Enzyme by Marine Actinobacteria With Various pH and Temperature
Production of Lipase Enzyme by Marine Actinobacteria With Various pH and Temperature
Abstract: The demand for enzymes as biocatalysts in industry is very high. Research and development of different types of enzymes from different sources has started. One very impor...
Lipase Induction in
Mucor hiemalis
Lipase Induction in
Mucor hiemalis
The influence on lipase induction in
Mucor hiemalis
of different types of triglycerides containing mainly oleic acid (olive oil), erucic acid (mustard oil),...
A unique approach to enhance catalytic performance of Lipase by in situ formation of silver nanoclusters
A unique approach to enhance catalytic performance of Lipase by in situ formation of silver nanoclusters
The purpose of this study was to design and engineer a simple approach
to enhance the catalytic activity and thermal stability of Lipase.
Lipase is an enzyme with exciting multifar...
Computational Assessment of Botrytis cinerea Lipase for Biofuel Production
Computational Assessment of Botrytis cinerea Lipase for Biofuel Production
The demand for ecofriendly green catalysts for biofuel synthesis is greatly increasing with the effects of fossil fuel depletion. Fungal lipases are abundantly used as biocatalysts...
DNA intensity and genetic diversity of oil palm (Elaeis guineensis) to determine an elite low lipase line
DNA intensity and genetic diversity of oil palm (Elaeis guineensis) to determine an elite low lipase line
Abstract. Angkat NU, Siregar LAM, Basyuni M, Afandi D, Syahputra I. 2021. DNA intensity and genetic diversity of oil palm (Elaeis guineensis) to determine an elite low lipase line....
Physiological factors affecting production of extracellular lipase (LipA) in Acinetobacter calcoaceticus BD413: fatty acid repression of lipA expression and degradation of LipA
Physiological factors affecting production of extracellular lipase (LipA) in Acinetobacter calcoaceticus BD413: fatty acid repression of lipA expression and degradation of LipA
The extracellular lipase (LipA) produced by Acinetobacter calcoaceticus BD413 is required for growth of the organism on triolein, since mutant strains that lack an active lipase fa...
Biochemical properties of pancreatic colipase from the common stingray Dasyatis pastinaca
Biochemical properties of pancreatic colipase from the common stingray Dasyatis pastinaca
Background
Pancreatic colipase is a required co-factor for pancreatic lipase, being necessary for its activity during hydrolysis of dietary triglycerides in the presence ...
Anti- and Pro-Lipase Activity of Selected Medicinal, Herbal and Aquatic Plants, and Structure Elucidation of an Anti-Lipase Compound
Anti- and Pro-Lipase Activity of Selected Medicinal, Herbal and Aquatic Plants, and Structure Elucidation of an Anti-Lipase Compound
Plants that help in slowing down the digestion of triacylglycerols (TAGs) in the pancreas and small intestine of humans play an important role in the reduction of obesity. On the o...

