7.2.2.12 65Zn2+ transport by lobster hepatopancreatic lysosomal membrane vesicles Homarus americanus 7.2.2.12 A native Zn/Cd pumping P1B ATPase from natural overexpression in a hyperaccumulator plant Noccaea caerulescens 7.2.2.12 A novel regulatory metal binding domain is present in the C terminus of Arabidopsis Zn2+-ATPase HMA2 Arabidopsis thaliana 7.2.2.12 A tetrahedral coordination of zinc during transmembrane transport by P-type Zn2+-ATPases Escherichia coli 7.2.2.12 A Zn(II)-translocating P-type ATPase from Proteus mirabilis Proteus mirabilis 7.2.2.12 Arabidopsis HMA2, a divalent heavy metal-transporting PIB-type ATPase, is involved in cytoplasmic Zn2+ homeostasis Arabidopsis thaliana 7.2.2.12 AtHMA1 contributes to the detoxification of excess Zn(II) in Arabidopsis Arabidopsis thaliana 7.2.2.12 Behind the shield of Czc ZntR controls expression of the gene for the zinc-exporting P-type ATPase ZntA in cupriavidus metallidurans Cupriavidus metallidurans 7.2.2.12 Behind the shield of Czc ZntR controls expression of the gene for the zinc-exporting P-type ATPase ZntA in cupriavidus metallidurans Cupriavidus metallidurans ATCC 43123 7.2.2.12 Biochemical and biophysical characterisation yields insights into the mechanism of a Cd/Zn transporting ATPase purified from the hyperaccumulator plant Thlaspi caerulescens Noccaea caerulescens 7.2.2.12 Characterization of the PIB-type ATPases present in Thermus thermophilus Thermus thermophilus 7.2.2.12 Characterization of the PIB-type ATPases present in Thermus thermophilus Thermus thermophilus HB27 / ATCC BAA-163 / DSM 7039 7.2.2.12 Conservative and nonconservative mutations of the transmembrane CPC motif in ZntA: effect on metal selectivity and activity Escherichia coli 7.2.2.12 Conserved aspartic acid 714 in transmembrane segment 8 of the ZntA Subgroup of P1B-type ATPases is as metal-binding residue Escherichia coli 7.2.2.12 Exogenous citrate and malate alleviate cadmium stress in Oryza sativa L. Probing role of cadmium localization and iron nutrition Oryza sativa 7.2.2.12 Exogenous citrate and malate alleviate cadmium stress in Oryza sativa L. Probing role of cadmium localization and iron nutrition Oryza sativa MTU 7029 7.2.2.12 Expression and mutagenesis of ZntA, a zinc-transporting P-type ATPase from Escherichia coli Escherichia coli 7.2.2.12 Expression of the P1B-type ATPase AtHMA4 in tobacco modifies Zn and Cd root to shoot partitioning and metal tolerance Arabidopsis thaliana 7.2.2.12 Expression of ZntA, a zinc-transporting P1-type ATPase, is specifically regulated by zinc and cadmium Escherichia coli 7.2.2.12 Geobacillus stearothermophilus LV cadA gene mediates resistance to cadmium, lead and zinc in zntA mutants of Salmonella enterica serovar Typhimurium Salmonella enterica subsp. enterica serovar Typhimurium 7.2.2.12 Geobacillus stearothermophilus LV cadA gene mediates resistance to cadmium, lead and zinc in zntA mutants of Salmonella enterica serovar Typhimurium Geobacillus stearothermophilus 7.2.2.12 HMA P-type ATPases are the major mechanism for root-to-shoot Cd translocation in Arabidopsis thaliana Arabidopsis thaliana 7.2.2.12 Homology modeling and in vivo functional characterization of the zinc permeation pathway in a heavy metal P-type ATPase Arabidopsis thaliana 7.2.2.12 Identification and characterization of a Streptococcus pyogenes ABC transporter with multiple specificity for metal cations Streptococcus pyogenes 7.2.2.12 Interplay of the Czc system and two P-type ATPases in conferring metal resistance to Ralstonia metallidurans Cupriavidus metallidurans 7.2.2.12 Isolation and characterization of nanobodies against a zinc-transporting P-type ATPase Shigella sonnei 7.2.2.12 Isolation and characterization of nanobodies against a zinc-transporting P-type ATPase Shigella sonnei Ss046 7.2.2.12 Kinetic analysis of metal binding to the amino-terminal domain of ZntA by monitoring metal-thiolate charge-transfer complexes Escherichia coli 7.2.2.12 Localization of all four ZnT zinc transporters in Dictyostelium and impact of ZntA and ZntB knockout on bacteria killing Dictyostelium discoideum 7.2.2.12 Mechanism of zinc resistance in Pseudomonas putida strain S4 Pseudomonas putida 7.2.2.12 Metal response of transgenic tomato plants expressing P1B-ATPase Arabidopsis halleri 7.2.2.12 Metal-binding affinity of the transmembrane site in ZntA: implications for metal selectivity Escherichia coli 7.2.2.12 Metal-binding characteristics of the aino-terminal domain of ZntA: binding of lead is different compared to cadmium and zinc Escherichia coli 7.2.2.12 Mutations in rice (Oryza sativa) heavy metal ATPase 2 (OsHMA2) restrict the translocation of zinc and cadmium Oryza sativa 7.2.2.12 Novel Zn2+ coordination by the regulatory N-terminus metal binding domain of Arabidopsis thaliana Zn(2+)-ATPase HMA2 Arabidopsis thaliana 7.2.2.12 Overexpression of AtHMA4 enhances root-to-shoot translocation of zinc and cadmium and plant metal tolerance Arabidopsis thaliana 7.2.2.12 P-type ATPase heavy metal transporters with roles in essential zinc homeostasis in Arabidopsis Arabidopsis thaliana 7.2.2.12 Pb(II)-translocating P-type ATPase Escherichia coli 7.2.2.12 Phospholipid requirement and pH optimum for the in vitro enzymatic activity of the E. coli P-type ATPase ZntA Escherichia coli 7.2.2.12 Probing the activity of a recombinant Zn2+-transporting P-type ATPase Shigella sonnei 7.2.2.12 Probing the activity of a recombinant Zn2+-transporting P-type ATPase Shigella sonnei Ss046 7.2.2.12 Protein biochemistry and expression regulation of cadmium/zinc pumping ATPases in the hyperaccumulator plants Arabidopsis halleri and Noccaea caerulescens Noccaea caerulescens 7.2.2.12 Protein biochemistry and expression regulation of cadmium/zinc pumping ATPases in the hyperaccumulator plants Arabidopsis halleri and Noccaea caerulescens Arabidopsis halleri 7.2.2.12 Roles of Agrobacterium tumefaciens C58 ZntA and ZntB and the transcriptional regulator ZntR in controlling Cd2+/Zn2+/Co2+ resistance and the peroxide stress response Agrobacterium tumefaciens 7.2.2.12 Roles of Agrobacterium tumefaciens C58 ZntA and ZntB and the transcriptional regulator ZntR in controlling Cd2+/Zn2+/Co2+ resistance and the peroxide stress response Agrobacterium tumefaciens C58 / ATCC 33970 7.2.2.12 Structural role of the first four transmembrane helices in ZntA, a P1B-Type ATPase from Escherichia coli Escherichia coli 7.2.2.12 Structural role of the first four transmembrane helices in ZntA, a P1B-Type ATPase from Escherichia coli Escherichia coli K12 7.2.2.12 The ATP hydrolytic activity of purified ZntA, a Pb(II)/Cd(II)/Zn(II)-translocating ATPase from Escherichia coli Escherichia coli 7.2.2.12 The cysteine-rich amino-terminal domain of ZntA, a Pb(II)/Zn(II)/Cd(II)-translocating ATPase from Escherichia coli, is not essential for its function Escherichia coli 7.2.2.12 The metal specificity and selectivity of ZntA from Escherichia coli using the acylphosphate intermediate Escherichia coli 7.2.2.12 The metal-binding domain of wheat heavy metal ATPase 2 (TaHMA2) is involved in zinc/cadmium tolerance and translocation in Arabidopsis Triticum aestivum 7.2.2.12 The metal-binding sites of the zinc-transporting P-type ATPase of Escherichia coli. Lys693 and Asp714 in the seventh and eighth transmembrane segments of ZntA contribute to the coupling of metal binding and ATPase activity Escherichia coli 7.2.2.12 The nucleotide-binding domain of the Zn2+-transporting P-type ATPase from Escherichia coli carries a glycine motif that may be involved in binding of ATP Escherichia coli 7.2.2.12 The plant P1B-type ATPase AtHMA4 transports Zn and Cd and plays a role in detoxification of transition metals supplied at elevated levels Arabidopsis thaliana 7.2.2.12 The role of ZntA in Klebsiella pneumoniae zinc homeostasis Klebsiella pneumoniae 7.2.2.12 The role of ZntA in Klebsiella pneumoniae zinc homeostasis Klebsiella pneumoniae AJ218 7.2.2.12 The ZntA-like NpunR4017 plays a key role in maintaining homeostatic levels of zinc in Nostoc punctiforme Nostoc punctiforme 7.2.2.12 Zinc transporter 2 interacts with vacuolar ATPase and is required for polarization, vesicle acidification, and secretion in mammary epithelial cells Mus musculus 7.2.2.12 Zinc uptake by basolateral membrane vesicles from rat small intestine Rattus norvegicus 7.2.2.12 Zinc(II) tolerance in Escherichia coli K-12: evidence that the zntA gene (o732) encodes a cation transport ATPase Escherichia coli 7.2.2.12 ZntR is a Zn(II)-responsive MerR-like transcriptional regulator of zntA in Escherichia coli Escherichia coli 7.2.2.12 ZntR-mediated transcription of zntA responds to nanomolar intracellular free zinc Escherichia coli 7.2.2.12 ZntR-mediated transcription of zntA responds to nanomolar intracellular free zinc Escherichia coli BW25113