On the time lags of the LIGO signals
Journal of Cosmology and Astroparticle Physics IOP Publishing 2017:08 (2017) 013-013
Towards understanding the Planck thermal dust models
Physical Review D American Physical Society (APS) 95:10 (2017) 103517
Torque generation in the bacterial flagellar motor
Biophysical Journal Elsevier 112:3 S1 (2017) 30a
Analysis of an N-terminal deletion in subunit a of the Escherichia coli ATP synthase.
Journal of Bioenergetics and Biomembranes Springer Verlag 49:2 (2017) 171-181
Abstract:
Subunit a is a membrane-bound stator subunit of the ATP synthase and is essential for proton translocation. The N-terminus of subunit a in E. coli is localized to the periplasm, and contains a sequence motif that is conserved among some bacteria. Previous work has identified mutations in this region that impair enzyme activity. Here, an internal deletion was constructed in subunit a in which residues 6-20 were replaced by a single lysine residue, and this mutant was unable to grow on succinate minimal medium. Membrane vesicles prepared from this mutant lacked ATP synthesis and ATP-driven proton translocation, even though immunoblots showed a significant level of subunit a. Similar results were obtained after purification and reconstitution of the mutant ATP synthase into liposomes. The location of subunit a with respect to its neighboring subunits b and c was probed by introducing cysteine substitutions that were known to promote cross-linking: a_L207C聽+聽c_I55C, a_L121C聽+聽b_N4C, and a_T107C聽+聽b_V18C. The last pair was unable to form cross-links in the background of the deletion mutant. The results indicate that loss of the N-terminal region of subunit a does not generally disrupt its structure, but does alter interactions with subunit b.Cryo-EM structures of the autoinhibited E. coli ATP synthase in three rotational states
eLife eLife Sciences Publications 5:e21598 (2016) 1-18