Structural Features Mediating Zinc Binding and Transfer in the AztABCD Zinc Transporter System

Many bacteria require ATP binding cassette (ABC) transporters for the import of the essential metal zinc from limited environments. These systems rely on a periplasmic or cell-surface solute binding protein (SBP) to bind zinc with high affinity and specificity. AztABCD is one such zinc transport sys...

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Main Authors: Anusha Meni, Erik T. Yukl
Format: Article
Language:English
Published: MDPI AG 2020-08-01
Series:Biomolecules
Subjects:
Online Access:https://www.mdpi.com/2218-273X/10/8/1156
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spelling doaj-4282d80c2e61438fa81417286cf528202020-11-25T03:26:28ZengMDPI AGBiomolecules2218-273X2020-08-01101156115610.3390/biom10081156Structural Features Mediating Zinc Binding and Transfer in the AztABCD Zinc Transporter SystemAnusha Meni0Erik T. Yukl1Department of Chemistry and Biochemistry, New Mexico State University, Las Cruces, NM 88003, USADepartment of Chemistry and Biochemistry, New Mexico State University, Las Cruces, NM 88003, USAMany bacteria require ATP binding cassette (ABC) transporters for the import of the essential metal zinc from limited environments. These systems rely on a periplasmic or cell-surface solute binding protein (SBP) to bind zinc with high affinity and specificity. AztABCD is one such zinc transport system recently identified in a large group of diverse bacterial species. In addition to a classical SBP (AztC), the operon also includes a periplasmic metallochaperone (AztD) shown to transfer zinc directly to AztC. Crystal structures of both proteins from <i>Paracoccus denitrificans</i> have been solved and suggest several structural features on each that may be important for zinc binding and transfer. Here we determine zinc binding affinity, dissociation kinetics, and transfer kinetics for several deletion mutants as well as a crystal structure for one of them. The results indicate specific roles for loop structures on AztC and an N-terminal motif on AztD in zinc binding and transfer. These data are consistent with a structural transfer model proposed previously and provide further mechanistic insight into the processes of zinc binding and transfer.https://www.mdpi.com/2218-273X/10/8/1156zincABC transportermetal homeostasischaperone
collection DOAJ
language English
format Article
sources DOAJ
author Anusha Meni
Erik T. Yukl
spellingShingle Anusha Meni
Erik T. Yukl
Structural Features Mediating Zinc Binding and Transfer in the AztABCD Zinc Transporter System
Biomolecules
zinc
ABC transporter
metal homeostasis
chaperone
author_facet Anusha Meni
Erik T. Yukl
author_sort Anusha Meni
title Structural Features Mediating Zinc Binding and Transfer in the AztABCD Zinc Transporter System
title_short Structural Features Mediating Zinc Binding and Transfer in the AztABCD Zinc Transporter System
title_full Structural Features Mediating Zinc Binding and Transfer in the AztABCD Zinc Transporter System
title_fullStr Structural Features Mediating Zinc Binding and Transfer in the AztABCD Zinc Transporter System
title_full_unstemmed Structural Features Mediating Zinc Binding and Transfer in the AztABCD Zinc Transporter System
title_sort structural features mediating zinc binding and transfer in the aztabcd zinc transporter system
publisher MDPI AG
series Biomolecules
issn 2218-273X
publishDate 2020-08-01
description Many bacteria require ATP binding cassette (ABC) transporters for the import of the essential metal zinc from limited environments. These systems rely on a periplasmic or cell-surface solute binding protein (SBP) to bind zinc with high affinity and specificity. AztABCD is one such zinc transport system recently identified in a large group of diverse bacterial species. In addition to a classical SBP (AztC), the operon also includes a periplasmic metallochaperone (AztD) shown to transfer zinc directly to AztC. Crystal structures of both proteins from <i>Paracoccus denitrificans</i> have been solved and suggest several structural features on each that may be important for zinc binding and transfer. Here we determine zinc binding affinity, dissociation kinetics, and transfer kinetics for several deletion mutants as well as a crystal structure for one of them. The results indicate specific roles for loop structures on AztC and an N-terminal motif on AztD in zinc binding and transfer. These data are consistent with a structural transfer model proposed previously and provide further mechanistic insight into the processes of zinc binding and transfer.
topic zinc
ABC transporter
metal homeostasis
chaperone
url https://www.mdpi.com/2218-273X/10/8/1156
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AT eriktyukl structuralfeaturesmediatingzincbindingandtransferintheaztabcdzinctransportersystem
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