| Literature DB >> 27821609 |
Vanessa Leone1, José D Faraldo-Gómez1.
Abstract
Two subunits within the transmembrane domain of the ATP synthase-the c-ring and subunit a-energize theEntities:
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Year: 2016 PMID: 27821609 PMCID: PMC5129741 DOI: 10.1085/jgp.201611679
Source DB: PubMed Journal: J Gen Physiol ISSN: 0022-1295 Impact factor: 4.086
Figure 1.Cryo-EM map of the subunit The map shown is a selection of that previously reported for the complete ATP synthase dimer (Allegretti et al., 2015). (A) The c-ring, comprising 10 c subunits, viewed along the plane of the membrane. The proton-motive force drives protons inwards, from the electropositive or P side of the membrane to the electronegative or N side, i.e., inwards. (B) In the cryo-EM map, subunit a appears as two hairpins of two transmembrane helices each, adjacent to the c-ring, and highly tilted relative to the membrane perpendicular. (C) Same as B, viewed from the mitochondrial interior. To energize the synthesis of ATP, inward proton translocation downhill results in the counterclockwise rotation of the c-ring against subunit a, which is believed to remain static.
Figure 2.Refined cryo-EM structure of the (A) The c-ring, viewed along the membrane plane. The ring consists of 10 hairpin-like c subunits, with the N-terminal helix in the interior and the outer helix in the exterior. A conserved glutamate in each of the outer helices (red spheres) marks the location of the proton-binding sites. (B) The c-ring, viewed from the mitochondrial interior. Note that the outer helices are staggered relative to the inner helices, rather than projecting radially (dashed black lines). (C) Close-up of one of the proton-binding sites, at the interface between two adjacent c subunits, featuring the conserved glutamate side chain (Glu58).
Figure 3.Evolutionary analysis of correlated mutations within subunit (A) Matrix representation of the evolutionary couplings detected between pairs of residues within subunit a; the amino acid sequence and secondary structure elements of this subunit are indicated along the x and y axes. Each element in the matrix corresponds to a specific pair of residues, color-coded according to the degree to which these residues have evolved (i.e., mutated) in a correlated manner (see color scale on the right). The transmembrane regions are shaded in gray. The two possible topologies of subunit a, given a TM4-out/TM5-in assignment, i.e., clockwise and Z-like, are schematized in the top left inset (see Results and discussion). (B) Evolutionary couplings between the outer helix of the c subunit and helices TM4 and TM5 in subunit a. The horizontal dashed line divides the c subunit outer helix in two halves, before and after the proton-binding site, one closer to the P side of the membrane and the other to the N side.
Figure 4.Quantitative evaluation of alternative threadings of the transmembrane helices of subunit (A) Analysis of the TM4-TM5 hairpin; the two possible assignments of TM4 (in/out) and TM5 (out/in) are evaluated separately in each panel (see Results and discussion). In each case, 11 alternative threadings were considered (as numbered), shifted relative to each other in one-residue increments. An ensemble of models was produced for each threading and analyzed individually, in terms of the consistency of the models with the Cα–Cα distances inferred from the evolutionary couplings between TM4 and TM5 (Fig. 3 A). Specifically, each column is a histogram of the percentage of distance violations calculated for each of the ensembles/threadings; the color scale indicates the population of each bin. The threadings marked with red arrows are the most compatible with the evolutionary analysis because the corresponding ensembles include the largest populations of models with the lowest percentage of violations. (B) Analysis of the TM2-TM3 hairpin. 17 different threadings of the TM2-TM3 hairpin (in a clockwise topology relative to TM4-TM5) were evaluated through an analysis identical to that summarized in A, except that the evolutionary couplings considered are those between TM2 and TM3 (Fig. 3 A). A single threading (marked with a red arrow) stands out as the most compatible with this evolutionary data.
Figure 5.Quantitative evaluation of alternative threadings of TM4 and TM5 into the cryo-EM map. The eight most likely threadings of the TM4-TM5 hairpin, based on the analysis described in Fig. 4 A, are evaluated further. (A) The ensembles of models constructed for each threading are evaluated in terms of the evolutionary couplings between the TM4-TM5 hairpin and the outer helix of subunit c (Fig. 3 B). For clarity, a single, global score was calculated for each model from this evolutionary data (Materials and methods), and a histogram of that score across the ensemble is shown; by definition, the maximum value of this score (i.e., no distance violations) is 11. (B) Analogous analysis to A, instead based on Cα–Cα distances inferred from cross-linking experiments (Materials and methods and Table S2); by definition, the maximum value of this score is 19. (C) Analysis of the top three threadings according to A and B, in terms of the proximity between Glu58 in subunit c, Arg145 in TM4 of subunit a, and Gln201 in TM5 (see Results and discussion). The plots show the percentage of models in each ensemble for which the distance between these side chains is less than or equal to an increasing value between 0 and 20 Å.
Figure 6.Cryo-EM structure of the subunit (A) The a–c complex is viewed from the mitochondrial matrix, i.e., the N side. The gray mesh is the cryo-EM map for subunit a; that for the c-ring is omitted for clarity. Red spheres indicate the Cα atoms of the conserved glutamate (Glu58) in the c-ring proton-binding sites. The dark and light blue spheres on subunit a indicate the conserved arginine (Arg145) in TM4 and the conserved glutamine (Gln201) in TM5. Green and yellow spheres indicate the positions in the E. coli subunit a for which a substituted cysteine is reactive with Cd2+, added from either the N or the P side, respectively, thereby blocking the proton transport mechanism (Gln201 is also a site of external Cd2+ block). (B) Same as A viewed along the membrane plane. (C–E) Smoothed surface of subunit a up to the Cγ atom of each side chain, colored as follows: blue, Lys or Arg; red, Asp, Glu, or His; green, polar; white, hydrophobic.
Figure 7.Hypothetical mechanism coupling the translocation of protons through the (1) Most of the c-ring binding sites are exposed to the membrane interior, and the conserved glutamate residue (Glu58 in Polytomella) is protonated and retracted in a closed state. However, one binding site is exposed to the aqueous crevice at the a–c interface that is open to the interior/negative side of the membrane; as a result, this N site fluctuates between a closed and open state. The adjacent c-ring binding site, counterclockwise, or P site, forms a salt bridge with a conserved arginine in TM4 of subunit a (Arg145). A protonatable side chain exposed to the exterior/positive side of the membrane serves as a transient buffering site for H+. (2) The aqueous nature of a crevice at the a–c interface (on the N side) fosters the deprotonation of the N site; the released H+ might be transiently captured by a buffering residue analogous to that on the opposite side of the membrane. (3) The N and P sites compete for the same interaction with Arg145, as the c-ring rotates back and forth, stochastically. (4) When the N site is engaged by Arg145, the proton buffered in the P channel can transfer to the deprotonated Glu58 in the P site, through an aqueous pathway. (5) The P site, H+ loaded, can now exchange between open and closed states. The H+ buffered in the N channel is released into the internal solution. (6) The protonated, closed P site enters the hydrophobic membrane interior, as the c-ring rotates counterclockwise; the N site becomes the new P site and continues to engage Arg145, and a new binding site enters the a–c interface, resetting the transport cycle. Note the proposed mechanism is entirely reversible, consistent with the fact that ATP synthases can function as ATP-driven ion pumps.
Figure 8.Evaluation of the consistency of the proposed structure of the See Fig. S6 for a quantitative representation. (A) Green bars connect residues for which disulfide cross-links could be engineered, partially or fully, in the E. coli ATP synthase (see Table S2 and references therein). These cross-links cluster in five groups: cluster #1 pertains to the internal arrangement of the TM2-TM5 bundle, whereas clusters #2 to #5 reflect its orientation relative to the c-ring; note the latter are entirely consistent with the high tilt of TM5, relative to the outer helices in the c-ring. (B) Similarly to A, purple bars indicate cross-links between subunit a and the c-ring, mediated by an M2M spacer, which also cluster in three groups.
Figure 9.Insights into the mechanism of bi-directional inhibition of the ATP synthase by oligomycin. (A) Structure of the a–c complex, viewed as in Fig. 6 A, with two oligomycin molecules (yellow/red) bound to the c-ring. The binding pose of oligomycin is exactly that observed in a cocrystal structure of the c-ring from S. cerevisiae (in the absence of subunit a; see Results and discussion). This pose appears to be entirely feasible with two different sites at the a–c interface, to the left and to the right of the site where Glu58 interacts with Arg145 (i.e., the P site). An oligomycin molecule would not fit in this P site, implying that binding at the flanking sites shown would ultimately halt the rotation of the ring. The positions in the S. cerevisiae c and a subunits where mutations confer resistance to oligomycin inhibition (see Results and discussion) are marked with green and cyan spheres, respectively. These positions are Leu52, Ala55, Leu56, and Phe63 in the outer helix of the c subunit (Leu53, Ala56, Leu57, and Phe64 in S. cerevisiae), Leu130 and Ser134 in aTM4, and Leu193 in aTM5 (aILe171, aSer175, and aLeu232 in S. cerevisiae). (B) Side view of the oligomycin inhibition site when the c-ring rotates clockwise, transporting H+ uphill, driven by ATP hydrolysis. (C) Side view of the inhibition site when the c-ring rotates counterclockwise, driven by downhill H+ permeation, during ATP synthesis.