A specific requirement for lipids, particularly cardiolipin (CL), in cytochrome c oxidase (CcO) has been reported in many previous studies using mainly in vitro lipid removal approaches in mammalian systems. Our accompanying paper shows that CcO produced in markedly CL-depleted Rhodobacter sphaeroides displays wild-type properties in all respects, likely allowed by quantitative substitution with other negatively charged lipids. To further examine the structural basis for the lipid requirements of R. sphaeroides CcO and the extent of interchangeability between lipids, we employed a metabolic approach to enhance the alteration of the lipid profiles of the CcO-expressing strains of R. sphaeroides in vivo using a phosphate-limiting growth medium in addition to the CL-deficient mutation. Strikingly, the purified CcO produced under these conditions still maintained wild-type function and characteristics, in spite of even greater depletion of cardiolipin compared to that of the CL-deficient mutant alone (undetectable by MS) and drastically altered profiles of all the phospholipids and non-phospholipids. The lipids in the membrane and in the purified CcO were identified and quantified by ESI and MALDI mass spectrometry and tandem mass spectrometry. Comparison between the molecular structures of those lipids that showed major changes provides new insight into the structural rationale for the flexible lipid requirements of CcO from R. sphaeroides and reveals a more comprehensive interchangeability network between different phospholipids and non-phospholipids.
A span class="Chemical">pan class="Chemical">pen>an>cific requirement for n class="Chemical">papan>n class="Chemical">lipids, particularly n>n class="Chemical">cardiolipin (CL), in cytochrome c oxidase (CcO) has been reported in many previous studies using mainly in vitro lipid removal approaches in mammalian systems. Our accompanying paper shows that CcO produced in markedly CL-depleted Rhodobacter sphaeroides displays wild-type properties in all respects, likely allowed by quantitative substitution with other negatively charged lipids. To further examine the structural basis for the lipid requirements of R. sphaeroides CcO and the extent of interchangeability between lipids, we employed a metabolic approach to enhance the alteration of the lipid profiles of the CcO-expressing strains of R. sphaeroides in vivo using a phosphate-limiting growth medium in addition to the CL-deficient mutation. Strikingly, the purified CcO produced under these conditions still maintained wild-type function and characteristics, in spite of even greater depletion of cardiolipin compared to that of the CL-deficient mutant alone (undetectable by MS) and drastically altered profiles of all the phospholipids and non-phospholipids. The lipids in the membrane and in the purified CcO were identified and quantified by ESI and MALDI mass spectrometry and tandem mass spectrometry. Comparison between the molecular structures of those lipids that showed major changes provides new insight into the structural rationale for the flexible lipid requirements of CcO from R. sphaeroides and reveals a more comprehensive interchangeability network between different phospholipids and non-phospholipids.
Authors: Ling Qin; Carrie Hiser; Anne Mulichak; R Michael Garavito; Shelagh Ferguson-Miller Journal: Proc Natl Acad Sci U S A Date: 2006-10-18 Impact factor: 11.205
Authors: Isabel M López-Lara; Jun-Lian Gao; María José Soto; Alhondra Solares-Pérez; Barbara Weissenmayer; Christian Sohlenkamp; George P Verroios; Jane Thomas-Oates; Otto Geiger Journal: Mol Plant Microbe Interact Date: 2005-09 Impact factor: 4.171
Authors: Jun Liu; Sergey Ryabichko; Mikhail Bogdanov; Oliver J Fackelmayer; William Dowhan; Terry A Krulwich Journal: J Biol Chem Date: 2013-12-13 Impact factor: 5.157
Authors: Led Yered Jafet García Montes de Oca; Tecilli Cabellos Avelar; Gerardo Ignacio Picón Garrido; Alicia Chagoya-López; Luis González de la Vara; Norma Laura Delgado Buenrostro; Yolanda Irasema Chirino-López; Carlos Gómez-Lojero; Emma Berta Gutiérrez-Cirlos Journal: J Bioenerg Biomembr Date: 2016-08-09 Impact factor: 2.945