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1.
Anal Chem ; 88(14): 7060-7, 2016 07 19.
Artigo em Inglês | MEDLINE | ID: mdl-27328020

RESUMO

Collision-induced dissociation (CID) is the dominant method for probing intact macromolecular complexes in the gas phase by means of mass spectrometry (MS). The energy obtained from collisional activation is dependent on the charge state of the ion and the pressures and potentials within the instrument: these factors limit CID capability. Activation by infrared (IR) laser radiation offers an attractive alternative as the radiation energy absorbed by the ions is charge-state-independent and the intensity and time scale of activation is controlled by a laser source external to the mass spectrometer. Here we implement and apply IR activation, in different irradiation regimes, to study both soluble and membrane protein assemblies. We show that IR activation using high-intensity pulsed lasers is faster than collisional and radiative cooling and requires much lower energy than continuous IR irradiation. We demonstrate that IR activation is an effective means for studying membrane protein assemblies, and liberate an intact V-type ATPase complex from detergent micelles, a result that cannot be achieved by means of CID using standard collision energies. Notably, we find that IR activation can be sufficiently soft to retain specific lipids bound to the complex. We further demonstrate that, by applying a combination of collisional activation, mass selection, and IR activation of the liberated complex, we can elucidate subunit stoichiometry and the masses of specifically bound lipids in a single MS experiment.


Assuntos
Gases/efeitos da radiação , Espectrometria de Massas/métodos , Proteínas de Membrana/efeitos da radiação , Complexos Multiproteicos/efeitos da radiação , Acidianus/enzimologia , Avidina/química , Avidina/efeitos da radiação , Chaperonina 60/química , Chaperonina 60/efeitos da radiação , Gases/química , Raios Infravermelhos , Proteínas de Membrana/química , Micelas , Complexos Multiproteicos/química , Fosfatidilgliceróis/química , Subunidades Proteicas/química , Subunidades Proteicas/efeitos da radiação , Thermus thermophilus/enzimologia , ATPases Vacuolares Próton-Translocadoras/química , ATPases Vacuolares Próton-Translocadoras/efeitos da radiação
2.
Biochemistry ; 41(37): 11301-7, 2002 Sep 17.
Artigo em Inglês | MEDLINE | ID: mdl-12220197

RESUMO

Using a combination of cysteine mutagenesis and covalent cross-linking, we have identified subunits in close proximity to specific sites within subunit B of the vacuolar (H(+))-ATPase (V-ATPase) of yeast. Unique cysteine residues were introduced into subunit B by site-directed mutagenesis, and the resultant V-ATPase complexes were reacted with the bifunctional, photoactivatable maleimide reagent 4-(N-maleimido)benzophenone (MBP) followed by irradiation. Cross-linked products were identified by Western blot using subunit-specific antibodies. Introduction of cysteine residues at positions Glu(106) and Asp(199) led to cross-linking of subunits B and E, at positions Asp(341) and Ala(424) to cross-linking of subunits B and D, and at positions Ala(15) and Lys(45) to cross-linking of subunits B and G. Using a molecular model of subunit B constructed on the basis of sequence homology between the V- and F-ATPases, the X-ray coordinates of the F(1)-ATPase, and energy minimization, Glu(106), Asp(199), Ala(15), and Lys(45) are all predicted to be located on the outer surface of the complex, with Ala(15) and Lys(45) located near the top of the complex furthest from the membrane. By contrast, Asp(341) and Ala(424) are predicted to face the interior of the A(3)B(3) hexamer. These results suggest that subunits E and G form part of a peripheral stalk connecting the V(1) and V(0) domains whereas subunit D forms part of a central stalk. Subunit D is thus the most likely homologue to the gamma subunit of F(1), which undergoes rotation during ATP hydrolysis and serves an essential function in rotary catalysis.


Assuntos
Reagentes de Ligações Cruzadas/química , Cisteína/química , Proteínas de Saccharomyces cerevisiae/química , ATPases Vacuolares Próton-Translocadoras/química , Benzofenonas/química , Cisteína/genética , Ativação Enzimática/genética , Ativação Enzimática/efeitos da radiação , Transporte de Íons/genética , Transporte de Íons/efeitos da radiação , Maleimidas/química , Mutagênese Sítio-Dirigida , Processamento de Proteína Pós-Traducional/genética , Processamento de Proteína Pós-Traducional/efeitos da radiação , Subunidades Proteicas , Prótons , Proteínas de Saccharomyces cerevisiae/genética , Proteínas de Saccharomyces cerevisiae/efeitos da radiação , Raios Ultravioleta , ATPases Vacuolares Próton-Translocadoras/genética , ATPases Vacuolares Próton-Translocadoras/efeitos da radiação
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