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Boettcher, B.

Publications and source records attributed to Boettcher, B..

2 recordsLinked to original sources

SLC26A11 is an atypical solute carrier with dual transport-channel function mediating lysosomal sulfate transport

Membrane transporters and channels are generally assumed to be based on distinct structural and functional principles. SLC26A11, a solute carrier with high expression levels in the brain, has been proposed to function as either an anion transporter or a channel. Here, we resolve this apparent discrepancy by demonstrating that SLC26A11 is a dual-function protein capable of operating as both a sulfate transporter and a chloride channel. By resolving its structure and combining biochemical studies and molecular dynamics simulations, we show that SLC26A11 exhibits all the hallmarks of a secondary transporter. The mechanistic basis for its selective ion transport identifies the protein as the elusive lysosomal sulfate exporter. Additionally, we demonstrate that SLC26A11 exhibits an uncoupled, channel-like chloride conductance gated by proton:sulfate symport. Our finding that the chloride-conducting state arises from the transport cycle may contribute to the development of novel therapeutic strategies for treating brain edema, and the identification of its role in lysosome sulfate efflux may provide new approaches to study and treat lysosomal storage diseases.

biochemistry↗

YnaI exemplifies the diversity of structural gating mechanisms in mechanosensitive channels of small conductance

Osmotically varying environments are challenging for bacterial cells. Sudden drops in osmolytes cause an increased membrane tension and rupture the cells in the absence of protective mechanisms. One family of protective proteins are mechanosensitive channels of small conductance that open in response to membrane tension. Although these channels have a common architecture, they vary widely in the number of transmembrane helices, conductivity, and gating characteristics. Despite of several structures of channels in the open and closed state, the underlying common principles of the gating mechanism are not well understood. Here we show that YnaI opens by radial relocation of the transmembrane sensor paddles together with a shortening of the pore. This contrasts the prototypic smaller MscS which tilts the sensor paddles and retains the pore length. A chimera of both channels with the YnaI sensor paddles and the pore containing C-terminal part of MscS has the conductivity of the pore donor and the tension response of the paddle donor together with the conformational changes of the respective donor. Our research shows that elements with different types of structural rearrangements can be mixed and matched within one channel as long as they support the common area expansion on the periplasmic side.

biochemistry↗