137. Yumoto I, Yamazaki K, Hishinuma M, Nodasaka Y, Suemori A, Nakajima K, Inoue N,
Kawasaki K (2001) Pseudomonas alcaliphila sp. nov., a novel facultatively psychrophilic
alkaliphile isolated from seawater. Int J Syst Evol Microbiol 51:349–355
138. Gianotti A, Iucci L, Guerzoni ME, Lanciotti R (2009) Effect of acidic conditions on fatty acid
composition and membrane fluidity of Escherichia coli strains isolated from Crescenza cheese.
Ann Microbiol 59:603. https://doi.org/10.1007/BF03175152
139. Loffeld B, Keweloh H (1996) Cis-trans isomerization fatty acids as possible control mechanism of membrane fluidity in Pseudomonas putida P8. Lipids 31:811–815
140. Okuyama H, Enari D, Shibahara A, Yamamoto K, Morita N (1996) Identification of activities
that catalyze the cis-transisomerization of the double bond of a mono unsaturated fatty acid in
Pseudomonas sp. strain E-3. Arch Microbiol 165:415–417
141. Yuk YG, Marshall DL (2004) Adaptation of Escherichia coli O157:H7 to pH alters membrane
lipid composition, verotoxin secretion, and resistance to simulated gastric fluid acid. Appl
Environ Microbiol 70:3500–3505
142. Koga Y, Nishihara M, Mori H (1982) Lipids of alkaliphilic bacteria: identification, composition and metabolism. J Univ Occup Environ Health 4:227–240
143. Clejan S, Krulwich TA (1988) Permeability studies of lipid vesicles from alkalophilic Bacillus
firmus showing opposing effects of membrane isoprenoid and diacylglycerol fractions and
suggesting a possible basis for obligate alkalophily. Biochim Biophys Acta 946:40–48
144. Haines TH, Dencher NA (2002) Cardiolipin: a proton trap for oxidative phosphorylation.
FEBS Lett 528:35–39
145. Kitada M, Guffanti AA, Krulwich TA (1982) Bioenergetic properties and viability of the
alkalophilic Bacillus firmus RAB as a function of pH and Na
+ contents of the incubation
medium. J Bacteriol 152:1096–1104
146. Krulwich TA, Agus R, Schneier M, Guffanti AA (1985) Buffering capacity of bacilli that
grow at different pH ranges. J Bacteriol 162:768–772
147. Krulwich TA, Hicks DB, Seto-Young D, Guffanti AA (1988) The bioenergetics of
alkalophilic bacilli. Crit Rev Microbiol 16:15–36
148. Stolyar S, He Q, Joachimiak MP, He Z, Yang ZK, Borglin SE et al (2007) Response of
Desulfovibrio vulgaris to alkaline stress. J Bacteriol 189:8944–8952
149. Nah T, Kessler SH, Daumit KE, Kroll JH, Leone SR, Wilson KR (2013) OH-initiated
oxidation of sub-micron unsaturated fatty acid particles. Phys Chem Chem Phys
15:18649–18663
150. Eble KS, Coleman WB, Hantgan RR, Cunningham CC (1990) Tightly associated cardiolipin
in the bovine heart mitochondrial ATP synthase as analyzed by 31P nuclear magnetic
resonance spectroscopy. J Biol Chem 265:19434–19440
151. Fry M, Green DE (1981) Cardiolipin requirement for electron transfer in complex I and III of
the mitochondrial respiratory chain. J Biol Chem 256:1874–1880
152. Paradies G, Paradies V, De Benedictis V, Ruggiero FM, Petrosillo G (2014) Functional role of
cardiolipin in mitochondrial bioenergetics. Biochim Biophys Acta 1837:408–417
153. Robinson NC (1993) Functional binding of cardiolipin to cytochrome c oxidase. J Bioenerg
Biomembr 25:153–163
154. von Ballmoos C, Cook GM, Dimroth P (2008) Unique rotary ATP synthase and its biological
diversity. Annu Rev Biophys 37:43–64
155. Liberton M, Berg RH, Heuser J, Roth R, Pakrasi HB (2006) Ultrastructure of the membrane
systems in the unicellular cyanobacterium Synechocystis sp. strain PCC 6803. Protoplasma
227:129–138
156. Nevo R, Charuvi D, Shimoni E, Schwarz R, Kaplan A, Ohad I, Riech Z (2007) Thylakoid
membrane perforations and connectivity enable intracellular traffic in cyanobacteria. EMBO J
26:1467–1473
157. Schneider D, Fuhrmann E, Scholz I, Hess WR, Graumann PL (2007) Fluorescence staining of
live cyanobacterial cells suggest non-stringent chromosome segregation and absence of a
connection between cytoplasmic and thylakoid membranes. BMC Cell Biol 8:39. https://doi.
org/10.1186/1471-2121-8-39
128
G. Mamo
Précédent

- 136/353

Suivant