TY - JOUR
T1 - A combined fluorescence spectroscopy, confocal and 2-photon microscopy approach to re-evaluate the properties of sphingolipid domains
AU - Pinto, Sandra N.
AU - Fernandes, Fábio
AU - Fedorov, Alexander
AU - Futerman, Anthony H.
AU - Silva, Liana C.
AU - Prieto, Manuel
N1 - Fundacao para a Ciencia e Tecnologia (FCT), Portugal [PTDC/QUI-BIQ/111411/2009]; Compromisso para a Ciencia from FCT; [SFRH/BD/46296/2008]; [SFRH/BPD/64320/2009]This work was supported by PTDC/QUI-BIQ/111411/2009 from Fundacao para a Ciencia e Tecnologia (FCT), Portugal. FCT provided a research grant to S.N. Pinto (SFRH/BD/46296/2008) and F. Fernandes (SFRH/BPD/64320/2009). Alexander Fedorov and L.C. Silva acknowledge funding from Compromisso para a Ciencia 2007 and 2008 from FCT. A. H. Futerman is The Joseph Meyerhoff Professor of Biochemistry at the Weizmann Institute of Science.
PY - 2013
Y1 - 2013
N2 - The aim of this study is to provide further insight about the interplay between important signaling lipids and to characterize the properties of the lipid domains formed by those lipids in membranes containing distinct composition. To this end, we have used a combination of fluorescence spectroscopy, confocal and two-photon microscopy and a stepwise approach to re-evaluate the biophysical properties of sphingolipid domains, particularly lipid rafts and ceramide (Cer)-platforms. By using this strategy we were able to show that, in binary mixtures, sphingolipids (Cer and sphingomyelin, SM) form more tightly packed gel domains than those formed by phospholipids with similar acyl chain length. In more complex lipid mixtures, the interaction between the different lipids is intricate and is strongly dictated by the Cer-to-Chol ratio. The results show that in quaternary phospholipid/SM/Chol/Cer mixtures, Cer forms gel domains that become less packed as Chol is increased. Moreover, the extent of gel phase formation is strongly reduced in these mixtures, even though Cer molar fraction is increased. These results suggest that in biological membranes, lipid domains such as rafts and ceramide platforms, might display distinctive biophysical properties depending on the local lipid composition at the site of the membrane where they are formed, further highlighting the potential role of membrane biophysical properties as an underlying mechanism for mediating specific biological processes.
AB - The aim of this study is to provide further insight about the interplay between important signaling lipids and to characterize the properties of the lipid domains formed by those lipids in membranes containing distinct composition. To this end, we have used a combination of fluorescence spectroscopy, confocal and two-photon microscopy and a stepwise approach to re-evaluate the biophysical properties of sphingolipid domains, particularly lipid rafts and ceramide (Cer)-platforms. By using this strategy we were able to show that, in binary mixtures, sphingolipids (Cer and sphingomyelin, SM) form more tightly packed gel domains than those formed by phospholipids with similar acyl chain length. In more complex lipid mixtures, the interaction between the different lipids is intricate and is strongly dictated by the Cer-to-Chol ratio. The results show that in quaternary phospholipid/SM/Chol/Cer mixtures, Cer forms gel domains that become less packed as Chol is increased. Moreover, the extent of gel phase formation is strongly reduced in these mixtures, even though Cer molar fraction is increased. These results suggest that in biological membranes, lipid domains such as rafts and ceramide platforms, might display distinctive biophysical properties depending on the local lipid composition at the site of the membrane where they are formed, further highlighting the potential role of membrane biophysical properties as an underlying mechanism for mediating specific biological processes.
UR - http://www.scopus.com/inward/record.url?scp=84879228705&partnerID=8YFLogxK
U2 - 10.1016/j.bbamem.2013.05.011
DO - 10.1016/j.bbamem.2013.05.011
M3 - مقالة
SN - 0005-2736
VL - 1828
SP - 2099
EP - 2110
JO - Biochimica Et Biophysica Acta-Biomembranes
JF - Biochimica Et Biophysica Acta-Biomembranes
IS - 9
ER -