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A Conserved Motif in Intracellular Loop 1 Stabilizes the Outward-Facing Conformation of TmrAB
Institution:1. School of Computational and Integrative Sciences, Jawaharlal Nehru University, New Delhi, India;2. Department of Biochemistry, Maharshi Dayanand University, Rohtak, Haryana, India;3. School of Life Sciences, Jawaharlal Nehru University, New Delhi, India;4. Amity Institute of Integrative Sciences and Health and Amity Institute of Biotechnology, Amity University Haryana, Gurgaon, India
Abstract:The ATP binding cassette (ABC) family of transporters moves small molecules (lipids, sugars, peptides, drugs, nutrients) across membranes in nearly all organisms. Transport activity requires conformational switching between inward-facing and outward-facing states driven by ATP-dependent dimerization of two nucleotide binding domains (NBDs). The mechanism that connects ATP binding and hydrolysis in the NBDs to conformational changes in a substrate binding site in the transmembrane domains (TMDs) is currently an outstanding question. Here we use sequence coevolution analyses together with biochemical characterization to investigate the role of a highly conserved region in intracellular loop 1 we define as the GRD motif in coordinating domain rearrangements in the heterodimeric peptide exporter from Thermus thermophilus, TmrAB. Mutations in the GRD motif alter ATPase activity as well as transport. Disulfide crosslinking, evolutionary trace, and evolutionary coupling analysis reveal that these effects are likely due to the destabilization of a network in which the GRD motif in TmrA bridges residues of the Q-loop, X-loop, and ABC motif in the NBDs to residues in the TmrAB peptide substrate binding site, thus providing an avenue for conformational coupling. We further find that disruption of this network in TmrA versus TmrB has different functional consequences, hinting at an intrinsic asymmetry in heterodimeric ABC transporters extending beyond that of the NBDs. These results support a mechanism in which the GRD motifs help coordinate a transition to an outward open conformation, and each half of the transporter likely plays a different role in the conformational cycle of TmrAB.
Keywords:ABC transporter  Exporter  ATPase  Transport cycle  Conformational coupling  ABC transporter"}  {"#name":"keyword"  "$":{"id":"k0035"}  "$$":[{"#name":"text"  "_":"ATP-binding Cassette transporter  ATP"}  {"#name":"keyword"  "$":{"id":"k0045"}  "$$":[{"#name":"text"  "_":"adenosine 5′-triphosphate  maximum ligand binding  C4F"}  {"#name":"keyword"  "$":{"id":"k0065"}  "$$":[{"#name":"text"  "$$":[{"#name":"__text__"  "_":"RRY(C"}  {"#name":"sup"  "$":{"loc":"post"}  "_":"Fluorescein"}  {"#name":"__text__"  "_":")KSTEL  CH1"}  {"#name":"keyword"  "$":{"id":"k0075"}  "$$":[{"#name":"text"  "_":"coupling helix 1  CH2"}  {"#name":"keyword"  "$":{"id":"k0085"}  "$$":[{"#name":"text"  "_":"coupling helix 2  Cryo-EM"}  {"#name":"keyword"  "$":{"id":"k0095"}  "$$":[{"#name":"text"  "_":"cryogenic electron microscopy  DTT"}  {"#name":"keyword"  "$":{"id":"k0105"}  "$$":[{"#name":"text"  "_":"dithiothreitol  EM"}  {"#name":"keyword"  "$":{"id":"k0115"}  "$$":[{"#name":"text"  "_":"electron microscopy  half maximal inhibitory concentration  ICL-1"}  {"#name":"keyword"  "$":{"id":"k0135"}  "$$":[{"#name":"text"  "_":"intracellular loop 1  ICL-2"}  {"#name":"keyword"  "$":{"id":"k0145"}  "$$":[{"#name":"text"  "_":"intracellular loop 2  ICL"}  {"#name":"keyword"  "$":{"id":"k0155"}  "$$":[{"#name":"text"  "_":"intracellular loop  IF"}  {"#name":"keyword"  "$":{"id":"k0165"}  "$$":[{"#name":"text"  "_":"inward-facing  IF-to-OF"}  {"#name":"keyword"  "$":{"id":"k0175"}  "$$":[{"#name":"text"  "_":"inward-facing to outward-facing  IFopen"}  {"#name":"keyword"  "$":{"id":"k0185"}  "$$":[{"#name":"text"  "_":"inward-facing open  IMAC"}  {"#name":"keyword"  "$":{"id":"k0195"}  "$$":[{"#name":"text"  "_":"immobilized metal affinity chromatography  turnover number  apparent dissociation constant  inhibitory constant  Michaelis constant  NBD"}  {"#name":"keyword"  "$":{"id":"k0245"}  "$$":[{"#name":"text"  "_":"nucleotide binding domain  NS-EM"}  {"#name":"keyword"  "$":{"id":"k0255"}  "$$":[{"#name":"text"  "_":"negative-stain electron microscopy  OF"}  {"#name":"keyword"  "$":{"id":"k0265"}  "$$":[{"#name":"text"  "_":"outward-facing  OFocc"}  {"#name":"keyword"  "$":{"id":"k0275"}  "$$":[{"#name":"text"  "_":"outward-facing occluded  OFopen"}  {"#name":"keyword"  "$":{"id":"k0285"}  "$$":[{"#name":"text"  "_":"outward-facing open  SEC"}  {"#name":"keyword"  "$":{"id":"k0295"}  "$$":[{"#name":"text"  "_":"size exclusion chromatography  β-DDM"}  {"#name":"keyword"  "$":{"id":"k0305"}  "$$":[{"#name":"text"  "_":"n-Dodecyl-ß-D-Maltoside  TM"}  {"#name":"keyword"  "$":{"id":"k0315"}  "$$":[{"#name":"text"  "_":"transmembrane  TMD"}  {"#name":"keyword"  "$":{"id":"k0325"}  "$$":[{"#name":"text"  "_":"transmembrane domain  TNP-ATP"}  {"#name":"keyword"  "$":{"id":"k0335"}  "$$":[{"#name":"text"  "_":"2′  3′-O-(2  4  6-Trinitrophenyl) adenosine 5′-triphosphate  Tris-HCl"}  {"#name":"keyword"  "$":{"id":"k0345"}  "$$":[{"#name":"text"  "_":"Tris(hydroxymethyl)aminomethane hydrochloride  WT"}  {"#name":"keyword"  "$":{"id":"k0355"}  "$$":[{"#name":"text"  "_":"wild type
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