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1.
Nature ; 2024 May 01.
Artículo en Inglés | MEDLINE | ID: mdl-38693257

RESUMEN

Choline is an essential nutrient that the human body needs in vast quantities for cell membrane synthesis, epigenetic modification and neurotransmission. The brain has a particularly high demand for choline, but how it enters the brain remains unknown1-3. The major facilitator superfamily transporter FLVCR1 (also known as MFSD7B or SLC49A1) was recently determined to be a choline transporter but is not highly expressed at the blood-brain barrier, whereas the related protein FLVCR2 (also known as MFSD7C or SLC49A2) is expressed in endothelial cells at the blood-brain barrier4-7. Previous studies have shown that mutations in human Flvcr2 cause cerebral vascular abnormalities, hydrocephalus and embryonic lethality, but the physiological role of FLVCR2 is unknown4,5. Here we demonstrate both in vivo and in vitro that FLVCR2 is a BBB choline transporter and is responsible for the majority of choline uptake into the brain. We also determine the structures of choline-bound FLVCR2 in both inward-facing and outward-facing states using cryo-electron microscopy. These results reveal how the brain obtains choline and provide molecular-level insights into how FLVCR2 binds choline in an aromatic cage and mediates its uptake. Our work could provide a novel framework for the targeted delivery of therapeutic agents into the brain.

2.
bioRxiv ; 2023 Oct 05.
Artículo en Inglés | MEDLINE | ID: mdl-37873173

RESUMEN

Choline is an essential nutrient that the human body needs in vast quantities for cell membrane synthesis, epigenetic modification, and neurotransmission. The brain has a particularly high demand for choline, but how it enters the brain has eluded the field for over fifty years. The MFS transporter FLVCR1 was recently determined to be a choline transporter, and while this protein is not highly expressed at the blood-brain barrier (BBB), its relative FLVCR2 is. Previous studies have shown that mutations in human Flvcr2 cause cerebral vascular abnormalities, hydrocephalus, and embryonic lethality, but the physiological role of FLVCR2 is unknown. Here, we demonstrate both in vivo and in vitro that FLVCR2 is a BBB choline transporter and is responsible for the majority of choline uptake into the brain. We also determine the structures of choline-bound FLVCR2 in the inward- and outward-facing states using cryo-electron microscopy to 2.49 and 2.77 Å resolution, respectively. These results reveal how the brain obtains choline and provide molecular-level insights into how FLVCR2 binds choline in an aromatic cage and mediates its uptake. Our work could provide a novel framework for the targeted delivery of neurotherapeutics into the brain.

3.
Nat Commun ; 14(1): 3391, 2023 06 09.
Artículo en Inglés | MEDLINE | ID: mdl-37296098

RESUMEN

Major Facilitator Superfamily Domain containing 2 A (MFSD2A) is a transporter that is highly enriched at the blood-brain and blood-retinal barriers, where it mediates Na+-dependent uptake of ω-3 fatty acids in the form of lysolipids into the brain and eyes, respectively. Despite recent structural insights, it remains unclear how this process is initiated, and driven by Na+. Here, we perform Molecular Dynamics simulations which demonstrate that substrates enter outward facing MFSD2A from the outer leaflet of the membrane via lateral openings between transmembrane helices 5/8 and 2/11. The substrate headgroup enters first and engages in Na+ -bridged interactions with a conserved glutamic acid, while the tail is surrounded by hydrophobic residues. This binding mode is consistent with a "trap-and-flip" mechanism and triggers transition to an occluded conformation. Furthermore, using machine learning analysis, we identify key elements that enable these transitions. These results advance our molecular understanding of the MFSD2A transport cycle.


Asunto(s)
Ácidos Grasos Omega-3 , Simportadores , Ácidos Grasos Omega-3/metabolismo , Simportadores/metabolismo , Proteínas de Transporte de Membrana/metabolismo , Encéfalo/metabolismo , Transporte Biológico , Simulación de Dinámica Molecular
4.
Nature ; 595(7866): 315-319, 2021 07.
Artículo en Inglés | MEDLINE | ID: mdl-34135507

RESUMEN

Docosahexaenoic acid is an omega-3 fatty acid that is essential for neurological development and function, and it is supplied to the brain and eyes predominantly from dietary sources1-6. This nutrient is transported across the blood-brain and blood-retina barriers in the form of lysophosphatidylcholine by major facilitator superfamily domain containing 2A (MFSD2A) in a Na+-dependent manner7,8. Here we present the structure of MFSD2A determined using single-particle cryo-electron microscopy, which reveals twelve transmembrane helices that are separated into two pseudosymmetric domains. The transporter is in an inward-facing conformation and features a large amphipathic cavity that contains the Na+-binding site and a bound lysolipid substrate, which we confirmed using native mass spectrometry. Together with our functional analyses and molecular dynamics simulations, this structure reveals details of how MFSD2A interacts with substrates and how Na+-dependent conformational changes allow for the release of these substrates into the membrane through a lateral gate. Our work provides insights into the molecular mechanism by which this atypical major facility superfamily transporter mediates the uptake of lysolipids into the brain, and has the potential to aid in the delivery of neurotherapeutic agents.


Asunto(s)
Transporte Biológico , Barrera Hematoencefálica/metabolismo , Microscopía por Crioelectrón , Ácidos Grasos Omega-3/metabolismo , Simportadores/química , Simportadores/metabolismo , Animales , Sitios de Unión , Pollos , Ácidos Grasos Omega-3/química , Espectrometría de Masas , Modelos Moleculares , Simulación de Dinámica Molecular , Dominios Proteicos , Sodio/metabolismo , Simportadores/ultraestructura
5.
J Mol Biol ; 433(16): 167005, 2021 08 06.
Artículo en Inglés | MEDLINE | ID: mdl-33891902

RESUMEN

Infectious diseases present a major threat to public health globally. Pathogens can acquire resistance to anti-infectious agents via several means including transporter-mediated efflux. Typically, multidrug transporters feature spacious, dynamic, and chemically malleable binding sites to aid in the recognition and transport of chemically diverse substrates across cell membranes. Here, we discuss recent structural investigations of multidrug transporters involved in resistance to infectious diseases that belong to the ATP-binding cassette (ABC) superfamily, the major facilitator superfamily (MFS), the drug/metabolite transporter (DMT) superfamily, the multidrug and toxic compound extrusion (MATE) family, the small multidrug resistance (SMR) family, and the resistance-nodulation-division (RND) superfamily. These structural insights provide invaluable information for understanding and combatting multidrug resistance.


Asunto(s)
Antiinfecciosos/química , Antiinfecciosos/farmacología , Farmacorresistencia Microbiana , Proteínas de Transporte de Membrana/química , Proteínas de Transporte de Membrana/metabolismo , Transportadoras de Casetes de Unión a ATP/genética , Transportadoras de Casetes de Unión a ATP/metabolismo , Antiinfecciosos/uso terapéutico , Farmacorresistencia Microbiana/genética , Resistencia a Múltiples Medicamentos , Humanos , Proteínas de Transporte de Membrana/genética , Relación Estructura-Actividad
6.
Nature ; 591(7849): 327-331, 2021 03.
Artículo en Inglés | MEDLINE | ID: mdl-33597752

RESUMEN

Glutamate is the most abundant excitatory neurotransmitter in the central nervous system, and its precise control is vital to maintain normal brain function and to prevent excitotoxicity1. The removal of extracellular glutamate is achieved by plasma-membrane-bound transporters, which couple glutamate transport to sodium, potassium and pH gradients using an elevator mechanism2-5. Glutamate transporters also conduct chloride ions by means of a channel-like process that is thermodynamically uncoupled from transport6-8. However, the molecular mechanisms that enable these dual-function transporters to carry out two seemingly contradictory roles are unknown. Here we report the cryo-electron microscopy structure of a glutamate transporter homologue in an open-channel state, which reveals an aqueous cavity that is formed during the glutamate transport cycle. The functional properties of this cavity, combined with molecular dynamics simulations, reveal it to be an aqueous-accessible chloride permeation pathway that is gated by two hydrophobic regions and is conserved across mammalian and archaeal glutamate transporters. Our findings provide insight into the mechanism by which glutamate transporters support their dual function, and add information that will assist in mapping the complete transport cycle shared by the solute carrier 1A transporter family.


Asunto(s)
Sistema de Transporte de Aminoácidos X-AG/química , Sistema de Transporte de Aminoácidos X-AG/metabolismo , Canales de Cloruro/química , Canales de Cloruro/metabolismo , Interacciones Hidrofóbicas e Hidrofílicas , Sistema de Transporte de Aminoácidos X-AG/genética , Sistema de Transporte de Aminoácidos X-AG/ultraestructura , Animales , Encéfalo/metabolismo , Canales de Cloruro/genética , Canales de Cloruro/ultraestructura , Cloruros/metabolismo , Microscopía por Crioelectrón , Cristalografía por Rayos X , Transportador 1 de Aminoácidos Excitadores/química , Transportador 1 de Aminoácidos Excitadores/genética , Transportador 1 de Aminoácidos Excitadores/metabolismo , Transportador 1 de Aminoácidos Excitadores/ultraestructura , Femenino , Ácido Glutámico/metabolismo , Humanos , Modelos Moleculares , Mutación , Oocitos , Conformación Proteica , Xenopus laevis
7.
Biochim Biophys Acta Biomembr ; 1863(3): 183533, 2021 03 01.
Artículo en Inglés | MEDLINE | ID: mdl-33340490

RESUMEN

Structure determination of membrane proteins is critical to the molecular understanding of many life processes, yet it has historically been a technically challenging endeavor. This past decade has given rise to a number of technological advancements, techniques, and reagents, which have facilitated membrane protein structural biology, resulting in an ever-growing number of membrane protein structures determined. To collate these advances, we have mined available literature to analyze the purification and structure determination specifics for all uniquely solved membrane protein structures from 2010 to 2019. Our analyses demonstrate the strong impact of single-particle cryo-electron microscopy on the field and illustrate how this technique has affected detergent and membrane mimetic usage. Furthermore, we detail how different structure determination methods, taxonomic domains and protein classes have unique detergent/membrane mimetic profiles, highlighting the importance of tailoring their selection. Our analyses provide a quantitative overview of where the field of membrane protein structural biology stands and how it has developed over time. We anticipate that these will serve as a useful tool to streamline future membrane protein structure determination by guiding the choice of detergent/membrane mimetic.


Asunto(s)
Materiales Biomiméticos/química , Detergentes/química , Membrana Dobles de Lípidos/química , Proteínas de la Membrana/química , Microscopía por Crioelectrón , Proteínas de la Membrana/ultraestructura
8.
FEBS Lett ; 591(2): 322-330, 2017 01.
Artículo en Inglés | MEDLINE | ID: mdl-28032905

RESUMEN

The hormone insulin coordinates the catabolism of nutrients by protein phosphorylation. Phosphoproteomic analysis identified insulin-responsive phosphorylation of the Glu/Asp transporter SLC1A3/EAAT1 in adipocytes. The role of SLC1A3 in adipocytes is not well-understood. We show that SLC1A3 is localised to the plasma membrane and the major regulator of acidic amino acid uptake in adipocytes. However, its localisation and activity were unaffected by insulin or mutation of the insulin-regulated phosphosite. The latter was also observed using a heterologous expression system in Xenopus laevis oocytes. Thus, SLC1A3 maintains a constant import of acidic amino acids independently of nutritional status in adipocytes.


Asunto(s)
Adipocitos/metabolismo , Membrana Celular/metabolismo , Transportador 1 de Aminoácidos Excitadores/metabolismo , Insulina/farmacología , Células 3T3-L1 , Adipocitos/efectos de los fármacos , Secuencia de Aminoácidos , Animales , Transportador 1 de Aminoácidos Excitadores/química , Células HEK293 , Humanos , Ratones , Oocitos/efectos de los fármacos , Oocitos/metabolismo , Fosforilación/efectos de los fármacos , Xenopus laevis
9.
J Gen Physiol ; 148(1): 13-24, 2016 07.
Artículo en Inglés | MEDLINE | ID: mdl-27296367

RESUMEN

The concentration of glutamate within a glutamatergic synapse is tightly regulated by excitatory amino acid transporters (EAATs). In addition to their primary role in clearing extracellular glutamate, the EAATs also possess a thermodynamically uncoupled Cl(-) conductance. This conductance is activated by the binding of substrate and Na(+), but the direction of Cl(-) flux is independent of the rate or direction of substrate transport; thus, the two processes are thermodynamically uncoupled. A recent molecular dynamics study of the archaeal EAAT homologue GltPh (an aspartate transporter from Pyrococcus horikoshii) identified an aqueous pore at the interface of the transport and trimerization domains, through which anions could permeate, and it was suggested that an arginine residue at the most restricted part of this pathway might play a role in determining anion selectivity. In this study, we mutate this arginine to a histidine in the human glutamate transporter EAAT1 and investigate the role of the protonation state of this residue on anion selectivity and transporter function. Our results demonstrate that a positive charge at this position is crucial for determining anion versus cation selectivity of the uncoupled conductance of EAAT1. In addition, because the nature of this residue influences the turnover rate of EAAT1, we reveal an intrinsic link between the elevator movement of the transport domain and the Cl(-) channel.


Asunto(s)
Transportador 1 de Aminoácidos Excitadores/metabolismo , Ácido Glutámico/metabolismo , Transporte Iónico/fisiología , Animales , Transportador 1 de Aminoácidos Excitadores/genética , Humanos , Simulación de Dinámica Molecular , Xenopus laevis
10.
Neurochem Res ; 41(3): 593-9, 2016 Mar.
Artículo en Inglés | MEDLINE | ID: mdl-26303507

RESUMEN

Transporters and ion channels are conventionally categorised into distinct classes of membrane proteins. However, some membrane proteins have a split personality and can function as both transporters and ion channels. The excitatory amino acid transporters (EAATs) in particular, function as both glutamate transporters and chloride (Cl(-)) channels. The EAATs couple the transport of glutamate to the co-transport of three Na(+) ions and one H(+) ion into the cell, and the counter-transport of one K(+) ion out of the cell. The EAAT Cl(-) channel is activated by the binding of glutamate and Na(+), but is thermodynamically uncoupled from glutamate transport and involves molecular determinants distinct from those responsible for glutamate transport. Several crystal structures of an EAAT archaeal homologue, GltPh, at different stages of the transport cycle, alongside numerous functional studies and molecular dynamics simulations, have provided extensive insights into the mechanism of substrate transport via these transporters. However, the molecular determinants involved in Cl(-) permeation, and the mechanism by which this channel is activated are not entirely understood. Here we will discuss what is currently known about the molecular determinants involved in EAAT-mediated Cl(-) permeation and the mechanisms that underlie their split personality.


Asunto(s)
Sistema de Transporte de Aminoácidos X-AG/metabolismo , Canales de Cloruro/metabolismo , Sistema de Transporte de Aminoácidos X-AG/química , Animales , Proteínas Arqueales/química , Proteínas Arqueales/metabolismo , Canales de Cloruro/química , Simulación de Dinámica Molecular , Isoformas de Proteínas/química , Isoformas de Proteínas/metabolismo , Estructura Terciaria de Proteína
11.
Biophys J ; 107(3): 621-629, 2014 Aug 05.
Artículo en Inglés | MEDLINE | ID: mdl-25099801

RESUMEN

The concentration of glutamate within the glutamatergic synapse is tightly regulated by the excitatory amino-acid transporters (EAATs). In addition to their primary role of clearing extracellular glutamate, the EAATs also possess a thermodynamically uncoupled Cl(-) conductance. Several crystal structures of an archaeal EAAT homolog, GltPh, at different stages of the transport cycle have been solved. In a recent structure, an aqueous cavity located at the interface of the transport and trimerization domains has been identified. This cavity is lined by polar residues, several of which have been implicated in Cl(-) permeation. We hypothesize that this cavity opens during the transport cycle to form the Cl(-) channel. Residues lining this cavity in EAAT1, including Ser-366, Leu-369, Phe-373, Arg-388, Pro-392, and Thr-396, were mutated to small hydrophobic residues. Wild-type and mutant transporters were expressed in Xenopus laevis oocytes and two-electrode voltage-clamp electrophysiology, and radiolabeled substrate uptake was used to investigate function. Significant alterations in substrate-activated Cl(-) conductance were observed for several mutant transporters. These alterations support the hypothesis that this aqueous cavity at the interface of the transport and trimerization domains is a partially formed Cl(-) channel, which opens to form a pore through which Cl(-) ions pass. This study enhances our understanding as to how glutamate transporters function as both amino-acid transporters and Cl(-) channels.


Asunto(s)
Cloruros/metabolismo , Transportador 1 de Aminoácidos Excitadores/química , Secuencia de Aminoácidos , Animales , Transportador 1 de Aminoácidos Excitadores/metabolismo , Humanos , Transporte Iónico , Datos de Secuencia Molecular , Estructura Terciaria de Proteína , Xenopus
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