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1.
Acc Chem Res ; 57(13): 1790-1802, 2024 Jul 02.
Artículo en Inglés | MEDLINE | ID: mdl-38875523

RESUMEN

ConspectusTransmembrane pores are currently at the forefront of nanobiotechnology, nanopore chemistry, and synthetic chemical biology research. Over the past few decades, significant studies in protein engineering have paved the way for redesigning membrane protein pores tailored for specific applications in nanobiotechnology. Most previous efforts predominantly centered on natural ß-barrel pores designed with atomic precision for nucleic acid sequencing and sensing of biomacromolecules, including protein fragments. The requirement for a more efficient single-molecule detection system has driven the development of synthetic nanopores. For example, engineering channels to conduct ions and biomolecules selectively could lead to sophisticated nanopore sensors. Also, there has been an increased interest in synthetic pores, which can be fabricated to provide more control in designing architecture and diameter for single-molecule sensing of complex biomacromolecules. There have been impressive advancements in developing synthetic DNA-based pores, although their application in nanopore technology is limited. This has prompted a significant shift toward building synthetic transmembrane α-helical pores, a relatively underexplored field offering novel opportunities. Recently, computational tools have been employed to design and construct α-helical barrels of defined structure and functionality.We focus on building synthetic α-helical pores using naturally occurring transmembrane motifs of membrane protein pores. Our laboratory has developed synthetic α-helical transmembrane pores based on the natural porin PorACj (Porin A derived from Corynebacterium jeikeium) that function as nanopore sensors for single-molecule sensing of cationic cyclodextrins and polypeptides. Our breakthrough lies in being the first to create a functional and large stable synthetic transmembrane pore composed of short synthetic α-helical peptides. The key highlight of our work is that these pores can be synthesized using easy chemical synthesis, which permits its easy modification to include a variety of functional groups to build charge-selective sophisticated pores. Additionally, we have demonstrated that stable functional pores can be constructed from D-amino acid peptides. The analysis of pores composed of D- and L-amino acids in the presence of protease showed that only the D pores are highly functional and stable. The structural models of these pores revealed distinct surface charge conformation and geometry. These new classes of synthetic α-helical pores are highly original systems of general interest due to their unique architecture, functionality, and potential applications in nanopore technology and chemical biology. We emphasize that these simplified transmembrane pores have the potential to be components of functional nanodevices and therapeutic tools. We also suggest that such designed peptides might be valuable as antimicrobial agents and can be targeted to cancer cells. This article will focus on the evolutions in assembling α-helical transmembrane pores and highlight their advantages, including structural and functional versatility.


Asunto(s)
Nanoporos , Conformación Proteica en Hélice alfa , ADN/química
2.
Chem Asian J ; 17(24): e202200891, 2022 Dec 14.
Artículo en Inglés | MEDLINE | ID: mdl-36325993

RESUMEN

Naturally-occurring membrane proteins have been engineered as nanopore sensors for the single-molecule detection of various biochemical molecules. Here, we present a natural bacterial porin, CymA containing a dynamic component and densely packed charged residues in the pore, shaping a unique structural conformation and charge feature. Using single-channel recordings, we investigated the translocation of charged polypeptides through native CymA and truncated CymA lacking the dynamic element. Cationic polypeptides bind to the pore with high affinity, specifically at low salt conditions indicating an electrostatic charge and voltage-dependent translocation. Anionic peptides did not bind to the pore, confirming the selective binding of polypeptides with the pore due to their specific charge distribution. Further, the distinct peptide translocation kinetics between native and truncated indicated the role of the dynamic segment in molecular transport. We suggest that these natural membrane pores that permit the selective translocation of cationic polypeptides are advantageous for nanopore proteomics applications.


Asunto(s)
Proteínas de la Membrana , Nanoporos , Electricidad Estática , Péptidos/química , Cinética , Cationes
3.
Nat Commun ; 13(1): 5377, 2022 09 14.
Artículo en Inglés | MEDLINE | ID: mdl-36104348

RESUMEN

Tailored transmembrane alpha-helical pores with desired structural and functional versatility have promising applications in nanobiotechnology. Herein, we present a transmembrane pore DpPorA, based on the natural pore PorACj, built from D-amino acid α-helical peptides. Using single-channel current recordings, we show that DpPorA peptides self-assemble into uniform cation-selective pores in lipid membranes and exhibit properties distinct from their L-amino acid counterparts. DpPorA shows resistance to protease and acts as a functional nanopore sensor to detect cyclic sugars, polypeptides, and polymers. Fluorescence imaging reveals that DpPorA forms well-defined pores in giant unilamellar vesicles facilitating the transport of hydrophilic molecules. A second D-amino acid peptide based on the polysaccharide transporter Wza forms transient pores confirming sequence specificity in stable, functional pore formation. Finally, molecular dynamics simulations reveal the specific alpha-helical packing and surface charge conformation of the D-pores consistent with experimental observations. Our findings will aid the design of sophisticated pores for single-molecule sensing related technologies.


Asunto(s)
Membrana Dobles de Lípidos , Péptidos , Aminoácidos , Membrana Dobles de Lípidos/química , Simulación de Dinámica Molecular , Péptidos/química , Conformación Proteica en Hélice alfa
4.
Nanoscale ; 14(17): 6507-6517, 2022 May 05.
Artículo en Inglés | MEDLINE | ID: mdl-35420118

RESUMEN

Pore-forming alpha-helical proteins are well known for their dynamic assembly mechanism and it has been challenging to delineate the pore-forming structures in membranes. Previously, attempts have been made to elucidate their assembly mechanism and there is a large gap due to complex pathways by which these membrane-active pores impart their effect. Here we demonstrate a multi-step structural assembly pathway of alpha-helical peptide pores formed by a 37 amino acid synthetic peptide, pPorU, based on the natural porin from Corynebacterium urealyticum using single-channel electrical recordings. More specifically, we report detectable intermediate states during the membrane insertion and pore formation of pPorU. The fully assembled pore exhibited unusually large stable conductance, voltage-dependent gating, and functional blockage by cyclic sugars generally applicable to a range of transmembrane pores. Furthermore, we used rationally designed mutants to understand the role of specific amino acids in the assembly of these peptide pores. Mutant peptides that differ from wild-type peptides produced noisy and unstable intermediate states and low conductance pores, demonstrating sequence specificity in the pore-formation process supported by molecular dynamics simulations. We suggest that our study contributes to understanding the mechanism of action of naturally occurring alpha-helical pore-forming proteins and should be of broad interest to build peptide-based nanopore sensors.


Asunto(s)
Nanoporos , Porinas , Membrana Dobles de Lípidos/metabolismo , Simulación de Dinámica Molecular , Péptidos/química , Porinas/química
5.
J Am Chem Soc ; 141(7): 2949-2959, 2019 02 20.
Artículo en Inglés | MEDLINE | ID: mdl-30702873

RESUMEN

The porinACj is an α-helical porin that spans the mycolic acid outer membrane of Gram-positive mycolate, Corynebacterium jeikeium. Here, we report that a 40-amino acid, synthetic peptide, pPorA corresponding to porin PorACj, inserts into the lipid bilayers and forms well-defined pores. By electrical recordings, we measured the single-channel properties that revealed the autonomous assembly of large conductance ion-selective synthetic pores. Further, we characterized the functional properties by blocking the peptide pores by cyclodextrins of different charge and symmetry. We deduced the subunit stoichiometry and putative structure of the pore by site-specific chemical modification in single-channel electrical recordings and gel electrophoresis. On the basis of these findings, we suggest that this is a large functional uniform transmembrane pore built entirely from short synthetic α-helical peptides. Accordingly, we propose a model demonstrating structural assembly of large α-helix-based peptide pores for understanding the action of antimicrobial peptides and for the design of pores with applications in biotechnology.


Asunto(s)
Péptidos/química , Porinas/química , Secuencia de Aminoácidos , Corynebacterium/química , Ciclodextrinas/metabolismo , Cisteína/química , Membrana Dobles de Lípidos/metabolismo , Modelos Moleculares , Péptidos/metabolismo , Porinas/metabolismo , Unión Proteica , Conformación Proteica en Hélice alfa , Estructura Cuaternaria de Proteína
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