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De novo design of a transmembrane Zn²?-transporting four-helix bundle.


ABSTRACT: The design of functional membrane proteins from first principles represents a grand challenge in chemistry and structural biology. Here, we report the design of a membrane-spanning, four-helical bundle that transports first-row transition metal ions Zn(2+) and Co(2+), but not Ca(2+), across membranes. The conduction path was designed to contain two di-metal binding sites that bind with negative cooperativity. X-ray crystallography and solid-state and solution nuclear magnetic resonance indicate that the overall helical bundle is formed from two tightly interacting pairs of helices, which form individual domains that interact weakly along a more dynamic interface. Vesicle flux experiments show that as Zn(2+) ions diffuse down their concentration gradients, protons are antiported. These experiments illustrate the feasibility of designing membrane proteins with predefined structural and dynamic properties.

SUBMITTER: Joh NH 

PROVIDER: S-EPMC4400864 | biostudies-literature | 2014 Dec

REPOSITORIES: biostudies-literature

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De novo design of a transmembrane Zn²⁺-transporting four-helix bundle.

Joh Nathan H NH   Wang Tuo T   Bhate Manasi P MP   Acharya Rudresh R   Wu Yibing Y   Grabe Michael M   Hong Mei M   Grigoryan Gevorg G   DeGrado William F WF  

Science (New York, N.Y.) 20141201 6216


The design of functional membrane proteins from first principles represents a grand challenge in chemistry and structural biology. Here, we report the design of a membrane-spanning, four-helical bundle that transports first-row transition metal ions Zn(2+) and Co(2+), but not Ca(2+), across membranes. The conduction path was designed to contain two di-metal binding sites that bind with negative cooperativity. X-ray crystallography and solid-state and solution nuclear magnetic resonance indicate  ...[more]

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