Cholesterol Regulates the Incorporation and Catalytic Activity of Tissue-Nonspecific Alkaline Phosphatase in DPPC Monolayers.

R Derradi, M Bolean, A M S Simão, L Caseli, J L Millán, M Bottini, P Ciancaglini, A P Ramos

Journal: Langmuir : the ACS journal of surfaces and colloids 2020;35(47):15232-15241

PMID: 31702926

Abstract

Matrix vesicles (MVs) are a special class of extracellular vesicles that drive bone and dentin mineralization by providing the essential enzymes and ions for the nucleation and propagation of mineral crystals. Tissue-nonspecific alkaline phosphatase (TNAP) is an integral protein of MV membrane and participates in biomineralization by hydrolyzing extracellular pyrophosphate (PP), a strong mineralization inhibitor, and forming inorganic phosphate (P), necessary for the growth of mineral crystals inside MVs and their propagation once released in the extracellular matrix. MV membrane is enriched in cholesterol (CHOL), which influences the incorporation and activity of integral proteins in biologic membranes; however, how CHOL controls the incorporation and activity of TNAP in MV membrane has not yet been elucidated. In the present study, Langmuir monolayers were used as a MV membrane biomimetic model to assess how CHOL affects TNAP incorporation and activity. Surface pressure-area (π-) isotherms of binary dipalmitoilphosphatidylcholine (DPPC)/CHOL monolayers showed that TNAP incorporation increases with CHOL concentration. Infrared spectroscopy showed that CHOL influences the conformation and orientation of the enzyme. Optical-fluorescence micrographs of the monolayers revealed the tendency of TNAP to incorporate into CHOL-rich microdomains. These data suggest that TNAP penetrates more efficiently and occupies a higher surface area into monolayers with a lower CHOL concentration due to the higher membrane fluidity. However, the quantity of enzyme transferred to solid supports as well as the enzymatic activity were higher using monolayers with a higher CHOL concentration due to increased rigidity that changes the enzyme orientation at the air-solid interface. These data provide new insights regarding the interfacial behavior of TNAP and CHOL in MVs and shed light on the biochemical and biophysical processes occurring in the MV membrane during biomineralization at the molecular level.

Address: Chemistry Department, Faculty of Philosophy, Sciences and Letters at Ribeirao Preto, Department of Chemistry , University of Sao Paulo , Avenida Bandeirantes, 3900, Monte Alegre , Ribeirao Preto , SP Brazil , 14040-901.; Institute of Environmental, Chemical and Pharmaceutical Sciences , Federal University of Sao Paulo , Rua Sao Nicolau, 210, Centro , Diadema , SP Brazil , 09913-030.; Sanford Burnham Prebys Medical Discovery Institute , La Jolla , California 92037 , United States.; Department of Experimental Medicine , University of Rome Tor Vergata , 00133 Rome , Italy.
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