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Dive into the research topics where Samantha Miller is active.

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Featured researches published by Samantha Miller.


Microbiology and Molecular Biology Reviews | 2003

Two Families of Mechanosensitive Channel Proteins

Christopher D. Pivetti; Ming-Ren Yen; Samantha Miller; Wolfgang Busch; Yi-Hsiung Tseng; Ian R. Booth; Milton H. Saier

SUMMARY Mechanosensitive (MS) channels that provide protection against hypoosmotic shock are found in the membranes of organisms from the three domains of life: bacteria, archaea, and eucarya. Two families of ubiquitous MS channels are recognized, and these have been designated the MscL and MscS families. A high-resolution X-ray crystallographic structure is available for a member of the MscL family, and extensive molecular genetic, biophysical, and biochemical studies conducted in many laboratories have allowed postulation of a gating mechanism allowing the interconversion of a tightly closed state and an open state that controls transmembrane ion and metabolite fluxes. In contrast to the MscL channel proteins, which are of uniform topology, the much larger MscS family includes protein members with topologies that are predicted to vary from 3 to 11 α-helical transmembrane segments (TMSs) per polypeptide chain. Sequence analyses reveal that the three C-terminal TMSs of MscS channel proteins are conserved among family members and that the third of these three TMSs exhibits a 20-residue motif that is shared by the channel-forming TMS (TMS 1) of the MscL proteins. We propose that this C-terminal TMS in MscS family homologues serves as the channel-forming helix in a homooligomeric structure. The presence of a conserved residue pattern for the putative channel-forming TMSs in the MscL and MscS family proteins suggests a common structural organization, gating mechanism, and evolutionary origin.


Science | 2008

The Structure of an Open Form of an E. coli Mechanosensitive Channel at 3.45 Å Resolution

Wenjian Wang; Susan S. Black; Michelle D. Edwards; Samantha Miller; Emma Morrison; Wendy Bartlett; Changjiang Dong; James H. Naismith; Ian R. Booth

How ion channels are gated to regulate ion flux in and out of cells is the subject of intense interest. The Escherichia coli mechanosensitive channel, MscS, opens to allow rapid ion efflux, relieving the turgor pressure that would otherwise destroy the cell. We present a 3.45 angstrom–resolution structure for the MscS channel in an open conformation. This structure has a pore diameter of ∼13 angstroms created by substantial rotational rearrangement of the three transmembrane helices. The structure suggests a molecular mechanism that underlies MscS gating and its decay of conductivity during prolonged activation. Support for this mechanism is provided by single-channel analysis of mutants with altered gating characteristics.


The EMBO Journal | 2003

Domain organization of the MscS mechanosensitive channel of Escherichia coli.

Samantha Miller; Wendy Bartlett; Subramanian Chandrasekaran; Sally Simpson; Michelle D. Edwards; Ian R. Booth

The major structural features of the Escherichia coli MscS mechanosensitive channel protein have been explored using alkaline phosphatase (PhoA) fusions, precise deletions and site‐directed mutations. PhoA protein fusion data, combined with the positive‐inside rule, strongly support a model in which MscS crosses the membrane three times, adopting an Nout–Cin configuration. Deletion data suggest that the C‐terminal domain of the protein is essential for the stability of the MscS channel, whereas the protein will tolerate small deletions at the N‐terminus. Four mutants that exhibit either gain‐of‐function (GOF) or loss‐of‐function have been identified: a double mutation I48D/S49P inactivates MscS, whereas the MscS mutants T93R, A102P and L109S cause a strong GOF phenotype. The similarity of MscS to the last two domains of MscK (formerly KefA) is reinforced by the demonstration that expression of a truncated MscK protein can substitute for MscL and MscS in downshock survival assays. The data derived from studies of the organization, conservation and the influence of mutations provide significant insights into the structure of the MscS channel.


Cell | 2002

A mechanism of regulating transmembrane potassium flux through a ligand-mediated conformational switch.

Tarmo P. Roosild; Samantha Miller; Ian R. Booth; Senyon Choe

The regulation of cation content is critical for cell growth. However, the molecular mechanisms that gate the systems that control K+ movements remain unclear. KTN is a highly conserved cytoplasmic domain present ubiquitously in a variety of prokaryotic and eukaryotic K+ channels and transporters. Here we report crystal structures for two representative KTN domains that reveal a dimeric hinged assembly. Alternative ligands NAD+ and NADH block or vacate, respectively, the hinge region affecting the dimers conformational flexibility. Conserved, surface-exposed hydrophobic patches that become coplanar upon hinge closure provide an assembly interface for KTN tetramerization. Mutational analysis using the KefC system demonstrates that this domain directly interacts with its respective transmembrane constituent, coupling ligand-mediated KTN conformational changes to the permeases activity.


Nature Reviews Microbiology | 2007

Mechanosensitive channels in bacteria: signs of closure?

Ian R. Booth; Michelle D. Edwards; Susan S. Black; Ulrike Schumann; Samantha Miller

Bacterial mechanosensitive channels are activated by increases in tension in the lipid bilayer of the cytoplasmic membrane, where they transiently create large pores in a controlled manner. Mechanosensitive channel research has benefited from advances in electrophysiology, genomics and molecular genetics as well as from the application of biophysical techniques. Most recently, new analytical methods have been used to complement existing knowledge and generate insights into the molecular interactions that take place between mechanosensitive channel proteins and the surrounding membrane lipids. This article reviews the latest developments.


Proceedings of the National Academy of Sciences of the United States of America | 2003

A role for mechanosensitive channels in survival of stationary phase: Regulation of channel expression by RpoS

Neil R. Stokes; Heath Murray; Chandrasekaran Subramaniam; Richard L. Gourse; Petra Louis; Wendy Bartlett; Samantha Miller; Ian R. Booth

The mechanosensitive (MS) channels MscS and MscL are essential for the survival of hypoosmotic shock by Escherichia coli cells. We demonstrate that MscS and MscL are induced by osmotic stress and by entry into stationary phase. Reduced levels of MS proteins and reduced expression of mscL– and mscS–LacZ fusions in an rpoS mutant strain suggested that the RNA polymerase holoenzyme containing σS is responsible, at least in part, for regulating production of MS channel proteins. Consistent with the model that the effect of σS is direct, the MscS and MscL promoters both use RNA polymerase containing σS in vitro. Conversely, clpP or rssB mutations, which cause enhanced levels of σS, show increased MS channel protein synthesis. RpoS null mutants are sensitive to hypoosmotic shock upon entry into stationary phase. These data suggest that MscS and MscL are components of the RpoS regulon and play an important role in ensuring structural integrity in stationary phase bacteria.


Channels | 2012

Characterization of three novel mechanosensitive channel activities in Escherichia coli

Michelle D. Edwards; Susan S. Black; Tim Rasmussen; Akiko Rasmussen; Neil R. Stokes; Terri-Leigh Stephen; Samantha Miller; Ian R. Booth

Mechanosensitive channels sense elevated membrane tension that arises from rapid water influx occurring when cells move from high to low osmolarity environments (hypoosmotic shock). These non-specific channels in the cytoplasmic membrane release osmotically-active solutes and ions. The two major mechanosensitive channels in Escherichia coli are MscL and MscS. Deletion of both proteins severely compromises survival of hypoosmotic shock. However, like many bacteria, E. coli cells possess other MscS-type genes (kefA, ybdG, ybiO, yjeP and ynaI). Two homologs, MscK (kefA) and YbdG, have been characterized as mechanosensitive channels that play minor roles in maintaining cell integrity. Additional channel openings are occasionally observed in patches derived from mutants lacking MscS, MscK and MscL. Due to their rare occurrence, little is known about these extra pressure-induced currents or their genetic origins. Here we complete the identification of the remaining E. coli mechanosensitive channels YnaI, YbiO and YjeP. The latter is the major component of the previously described MscM activity (~300 pS), while YnaI (~100 pS) and YbiO (~1000 pS) were previously unknown. Expression of native YbiO is NaCl-specific and RpoS-dependent. A Δ7 strain was created with all seven E. coli mechanosensitive channel genes deleted. High level expression of YnaI, YbiO or YjeP proteins from a multicopy plasmid in the Δ7 strain (MJFGH) leads to substantial protection against hypoosmotic shock. Purified homologs exhibit high molecular masses that are consistent with heptameric assemblies. This work reveals novel mechanosensitive channels and discusses the regulation of their expression in the context of possible additional functions.


Nature Structural & Molecular Biology | 2015

The role of lipids in mechanosensation

Christos Pliotas; A. Caroline E. Dahl; Tim Rasmussen; Kozhinjampara R. Mahendran; Terry K. Smith; Phedra Marius; Joseph Gault; Thandiwe Banda; Akiko Rasmussen; Samantha Miller; Carol V. Robinson; Hagan Bayley; Mark S.P. Sansom; Ian R. Booth; James H. Naismith

The ability of proteins to sense membrane tension is pervasive in biology. A higher-resolution structure of the Escherichia coli small-conductance mechanosensitive channel MscS identifies alkyl chains inside pockets formed by the transmembrane helices (TMs). Purified MscS contains E. coli lipids, and fluorescence quenching demonstrates that phospholipid acyl chains exchange between bilayer and TM pockets. Molecular dynamics and biophysical analyses show that the volume of the pockets and thus the number of lipid acyl chains within them decreases upon channel opening. Phospholipids with one acyl chain per head group (lysolipids) displace normal phospholipids (with two acyl chains) from MscS pockets and trigger channel opening. We propose that the extent of acyl-chain interdigitation in these pockets determines the conformation of MscS. When interdigitation is perturbed by increased membrane tension or by lysolipids, the closed state becomes unstable, and the channel gates.


Proceedings of the National Academy of Sciences of the United States of America | 2010

Mechanism of ligand-gated potassium efflux in bacterial pathogens

Tarmo P. Roosild; Samantha Castronovo; Jess Healy; Samantha Miller; Christos Pliotas; Tim Rasmussen; Wendy Bartlett; Stuart J. Conway; Ian R. Booth

Gram negative pathogens are protected against toxic electrophilic compounds by glutathione-gated potassium efflux systems (Kef) that modulate cytoplasmic pH. We have elucidated the mechanism of gating through structural and functional analysis of Escherichia coli KefC. The revealed mechanism can explain how subtle chemical differences in glutathione derivatives can produce opposite effects on channel function. Kef channels are regulated by potassium transport and NAD-binding (KTN) domains that sense both reduced glutathione, which inhibits Kef activity, and glutathione adducts that form during electrophile detoxification and activate Kef. We find that reduced glutathione stabilizes an interdomain association between two KTN folds, whereas large adducts sterically disrupt this interaction. F441 is identified as the pivotal residue discriminating between reduced glutathione and its conjugates. We demonstrate a major structural change on the binding of an activating ligand to a KTN-domain protein. Analysis of the regulatory interactions suggests strategies to disrupt pathogen potassium and pH homeostasis.


Structure | 2009

KTN (RCK) Domains Regulate K+ Channels and Transporters by Controlling the Dimer-Hinge Conformation

Tarmo P. Roosild; Samantha Castronovo; Samantha Miller; Chan Li; Tim Rasmussen; Wendy Bartlett; Banuri Gunasekera; Senyon Choe; Ian R. Booth

Summary KTN (RCK) domains are nucleotide-binding folds that form the cytoplasmic regulatory complexes of various K+ channels and transporters. The mechanisms these proteins use to control their transmembrane pore-forming counterparts remains unclear despite numerous electrophysiological and structural studies. KTN (RCK) domains consistently crystallize as dimers within the asymmetric unit, forming a pronounced hinge between two Rossmann folds. We have previously proposed that modification of the hinge angle plays an important role in activating the associated membrane-integrated components of the channel or transporter. Here we report the structure of the C-terminal, KTN-bearing domain of the E. coli KefC K+ efflux system in association with the ancillary subunit, KefF, which is known to stabilize the conductive state. The structure of the complex and functional analysis of KefC variants reveal that control of the conformational flexibility inherent in the KTN dimer hinge is modulated by KefF and essential for regulation of KefC ion flux.

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Jess Healy

University of St Andrews

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