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PMID: 25093911 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, N.I.H., Intramural Research Support, Non-U.S. Gov't

Structure and regulatory interactions of the cytoplasmic terminal domains of serotonin transporter.

Biochemistry ·Vol. 53 ·No. 33 ·2014-08-26 ·Pages 5444-60

Fenollar-Ferrer C, Stockner T, Schwarz TC, Pal A, Gotovina J, Hofmaier T, Jayaraman K, Adhikary S, Kudlacek O, Mehdipour AR, Tavoulari S, Rudnick G, Singh SK, Konrat R, Sitte HH, Forrest LR

Abstract

Uptake of neurotransmitters by sodium-coupled monoamine transporters of the NSS family is required for termination of synaptic transmission. Transport is tightly regulated by protein-protein interactions involving the small cytoplasmic segments at the amino- and carboxy-terminal ends of the transporter. Although structures of homologues provide information about the transmembrane regions of these transporters, the structural arrangement of the terminal domains remains largely unknown. Here, we combined molecular modeling, biochemical, and biophysical approaches in an iterative manner to investigate the structure of the 82-residue N-terminal and 30-residue C-terminal domains of human serotonin transporter (SERT). Several secondary structures were predicted in these domains, and structural models were built using the Rosetta fragment-based methodology. One-dimensional (1)H nuclear magnetic resonance and circular dichroism spectroscopy supported the presence of helical elements in the isolated SERT N-terminal domain. Moreover, introducing helix-breaking residues within those elements altered the fluorescence resonance energy transfer signal between terminal cyan fluorescent protein and yellow fluorescent protein tags attached to full-length SERT, consistent with the notion that the fold of the terminal domains is relatively well-defined. Full-length models of SERT that are consistent with these and published experimental data were generated. The resultant models predict confined loci for the terminal domains and predict that they move apart during the transport-related conformational cycle, as predicted by structures of homologues and by the "rocking bundle" hypothesis, which is consistent with spectroscopic measurements. The models also suggest the nature of binding to regulatory interaction partners. This study provides a structural context for functional and regulatory mechanisms involving SERT terminal domains.

MeSH Terms
Amino Acid Sequence Circular Dichroism Cytoplasm/chemistry Fluorescence Resonance Energy Transfer Humans Magnetic Resonance Spectroscopy Models, Molecular Molecular Sequence Data Protein Conformation Protein Folding Protein Structure, Secondary Protein Structure, Tertiary Serotonin Plasma Membrane Transport Proteins/chemistry,genetics,metabolism
Chemicals
SLC6A4 protein, human Serotonin Plasma Membrane Transport Proteins
Authors & Affiliations
16 authors, click to expand affiliations / ORCID
Fenollar-Ferrer Cristina
Computational Structural Biology Group, Max Planck Institute of Biophysics , 60438 Frankfurt am Main, Germany.
Stockner Thomas
Schwarz Thomas C
Pal Aritra
Gotovina Jelena
Hofmaier Tina
Jayaraman Kumaresan
Adhikary Suraj
Kudlacek Oliver
Mehdipour Ahmad Reza
Tavoulari Sotiria
Rudnick Gary
Singh Satinder K
Konrat Robert
Sitte Harald H
Forrest Lucy R
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Article Info
Journal
Biochemistry
Abbr.
Biochemistry
ISSN
1520-4995
Published
2014-08-26
Epub
2014-00-15
Pages
5444-60
Language
English
Region
United States
NLM ID
0370623
PMCID
PMC4147951
Subset
IM
Grants
NIDA NIH HHS · R01 DA008213 · United States
NIMH NIH HHS · R21MH098180 · United States
NIMH NIH HHS · R00MH083050 · United States
Intramural NIH HHS · United States
NIDA NIH HHS · R01 DA007259 · United States
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