» Articles » PMID: 17890066

Adsorption and Activity of Thermomyces Lanuginosus Lipase on Hydrophobic and Hydrophilic Surfaces Measured with Dual Polarization Interferometry (DPI) and Confocal Microscopy

Overview
Publisher Elsevier
Specialty Chemistry
Date 2007 Sep 25
PMID 17890066
Citations 3
Authors
Affiliations
Soon will be listed here.
Abstract

The adsorption and activity of Thermomyces lanuginosus lipase (TLL) was measured with dual polarization interferometry (DPI) and confocal microscopy at a hydrophilic and hydrophobic surface. In the adsorption isotherms, it was evident that TLL both had higher affinity for the hydrophobic surface and adsorbed to a higher adsorbed amount (1.90 mg/m(2)) compared to the hydrophilic surface (1.40-1.50mg/m(2)). The thickness of the adsorbed layer was constant (approximately 3.5 nm) on both surfaces at an adsorbed amount >1.0mg/m(2), but decreased on the hydrophilic surface at lower surface coverage, which might be explained by partially unfolding of the TLL structure. However, a linear dependence of the refractive index of the adsorbed layer on adsorbed amount of TLL on C18 surfaces indicated that the structure of TLL was similar at low and high surface coverage. The activity of adsorbed TLL was measured towards carboxyfluorescein diacetate (CFDA) in solution, which upon lipase activity formed a fluorescent product. The surface fluorescence intensity increase was measured in a confocal microscope as a function of time after lipase adsorption. It was evident that TLL was more active on the hydrophilic surface, which suggested that a larger fraction of adsorbed TLL molecules were oriented with the active site facing the solution compared to the hydrophobic surface. Moreover, most of the activity remained when the TLL surface coverage decreased. Earlier reports on TLL surface mobility on the same surfaces have found that the lateral diffusion was highest on hydrophilic surfaces and at low surface coverage of TLL. Hence, a high lateral mobility might lead to a longer exposure time of the active site towards solution, thereby increasing the activity against a water-soluble substrate.

Citing Articles

Interfacial activation of M37 lipase: A multi-scale simulation study.

Willems N, Lelimousin M, Koldso H, Sansom M Biochim Biophys Acta Biomembr. 2016; 1859(3):340-349.

PMID: 27993564 PMC: 5287222. DOI: 10.1016/j.bbamem.2016.12.012.


Engineering lipid bilayer membranes for protein studies.

Khan M, Dosoky N, Williams J Int J Mol Sci. 2013; 14(11):21561-97.

PMID: 24185908 PMC: 3856022. DOI: 10.3390/ijms141121561.


Theory and applications of surface plasmon resonance, resonant mirror, resonant waveguide grating, and dual polarization interferometry biosensors.

Daghestani H, Day B Sensors (Basel). 2011; 10(11):9630-46.

PMID: 22163431 PMC: 3230998. DOI: 10.3390/s101109630.