Differentiation of selectively labeled peptides using solid-state nanopores

被引:23
作者
Yu, Jae-Seok [1 ]
Hong, Seong Cheol [2 ]
Wu, Sangwook [3 ]
Kim, Hyun-Mi [1 ]
Lee, Cheolju [4 ,5 ,6 ]
Lee, Jun-Seok [2 ]
Lee, Ji Eun [4 ]
Kim, Ki-Bum [1 ,7 ]
机构
[1] Seoul Natl Univ, Dept Mat Sci & Engn, Seoul 08826, South Korea
[2] KIST, Mol Recognit Res Ctr, Seoul 02792, South Korea
[3] Pukyong Natl Univ, Dept Phys, Pusan 48513, South Korea
[4] KIST, Biomed Res Inst, Ctr Theragnosis, Seoul 02792, South Korea
[5] Kyung Hee Univ, KHU KIST Dept Converging Sci & Technol, Seoul 02447, South Korea
[6] Korea Univ Sci & Technol UST, KIST Sch, Div Biomed Sci & Technol, Seoul 02792, South Korea
[7] Seoul Natl Univ, Res Inst Adv Mat, Seoul 08826, South Korea
基金
新加坡国家研究基金会;
关键词
PROTEIN TRANSLOCATION; SINGLE PROTEIN; DNA TRANSPORT; RESOLUTION; DYNAMICS; SIZE;
D O I
10.1039/c8nr09315f
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Determination of the amino acid sequence of a protein is critical for understanding various biological processes. Mass spectrometry has mainly been used for protein identification; however, there are limitations to its sensitivity when detecting low abundance proteins. In this study, we attempted to distinguish between three similar peptide sequences (approximate to 40 amino acids, approximate to 5 kDa) that differed only by the location or number of cysteine residues with solid-state nanopores. The cysteine residues are located at one end, one at the center, and at both ends for each of the three peptides. We found that differentiation of the three types of peptides by nanopore signals was difficult. However, when the cysteine residue was labeled with a negatively charged molecule, Flamma (R) 496, the labeled peptides showed distinct signals for each peptide. Comparing the relative current blockades of labeled peptides with applied voltages, we found that the label was able to change peptide conformations and the resulting ionic current signals from the three labeled peptides were distinguished based on the relative current blockade, full width at half-maximum of the current blockade distribution, and single-molecule level peak shape analysis. Our results suggest that solid-state nanopores combined with a targeted labeling strategy could be used to obtain characteristic peptide signatures that could ultimately be used for protein identification.
引用
收藏
页码:2510 / 2520
页数:11
相关论文
共 50 条
  • [1] High-Bandwidth Protein Analysis Using Solid-State Nanopores
    Larkin, Joseph
    Henley, Robert Y.
    Muthukumar, Murugappan
    Rosenstein, Jacob K.
    Wanunu, Meni
    BIOPHYSICAL JOURNAL, 2014, 106 (03) : 696 - 704
  • [2] Detection of Nucleosomal Substructures using Solid-State Nanopores
    Soni, Gautam V.
    Dekker, Cees
    NANO LETTERS, 2012, 12 (06) : 3180 - 3186
  • [3] Analysis of the effect of cations on protein conformational stability using solid-state nanopores
    Zhu, Libo
    Wu, Hongwen
    Xu, Zhengyuan
    Guo, Lanying
    Zhao, Jinsong
    ANALYST, 2024, 149 (11) : 3186 - 3194
  • [4] Detection and Quantification of Methylation in DNA using Solid-State Nanopores
    Shim, Jiwook
    Humphreys, Gwendolyn I.
    Venkatesan, Bala Murali
    Munz, Jan Marie
    Zou, Xueqing
    Sathe, Chaitanya
    Schulten, Klaus
    Kosari, Farhad
    Nardulli, Ann M.
    Vasmatzis, George
    Bashir, Rashid
    SCIENTIFIC REPORTS, 2013, 3
  • [5] Differential Enzyme Flexibility Probed Using Solid-State Nanopores
    Hu, Rui
    Rodrigues, Joao V.
    Waduge, Pradeep
    Yamazaki, Hirohito
    Cressiot, Benjamin
    Chishti, Yasmin
    Makowski, Lee
    Yu, Dapeng
    Shakhnovich, Eugene
    Zhao, Qing
    Wanunu, Meni
    ACS NANO, 2018, 12 (05) : 4494 - 4502
  • [6] Estimating RNA Polymerase Protein Binding Sites on λ DNA Using Solid-State Nanopores
    Kaur, Harpreet
    Nandivada, Santoshi
    Acharjee, Mitu C.
    McNabb, David S.
    Li, Jiali
    ACS SENSORS, 2019, 4 (01) : 100 - 109
  • [7] Bidirectional Peptide Translocation through Ultrasmall Solid-State Nanopores
    Wei, Guanghao
    Hu, Rui
    Lu, Wenlong
    Wang, Zhan
    Zhao, Qing
    LANGMUIR, 2024, 40 (39) : 20831 - 20839
  • [8] Mechanism and Kinetics of Lipid Bilayer Formation in Solid-State Nanopores
    Zeng, Shuangshuang
    Li, Shiyu
    Utterstrom, Johanna
    Wen, Chenyu
    Selegard, Robert
    Zhang, Shi-Li
    Aili, Daniel
    Zhang, Zhen
    LANGMUIR, 2020, 36 (06) : 1446 - 1453
  • [9] Dynamics of Colloids in Single Solid-State Nanopores
    Bacri, L.
    Oukhaled, A. G.
    Schiedt, B.
    Patriarche, G.
    Bourhis, E.
    Gierak, J.
    Pelta, J.
    Auvray, L.
    JOURNAL OF PHYSICAL CHEMISTRY B, 2011, 115 (12) : 2890 - 2898
  • [10] Fabrication of solid-state nanopores and its perspectives
    Kudr, Jiri
    Skalickova, Sylvie
    Nejdl, Lukas
    Moulick, Amitava
    Ruttkay-Nedecky, Branislav
    Adam, Vojtech
    Kizek, Rene
    ELECTROPHORESIS, 2015, 36 (19) : 2367 - 2379