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Restrepo Perez, L. (author), Wong, C.H. (author), Maglia, Giovanni (author), Dekker, C. (author), Joo, C. (author)
Post-translational modifications (PTMs) of proteins play key roles in cellular processes. Hence, PTM identification is crucial for elucidating the mechanism of complex cellular processes and disease. Here we present a method for PTM detection at the single-molecule level using FraC biological nanopores. We focus on two major PTMs,...
journal article 2019
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Yang, W.W.W. (author), Restrepo Perez, L. (author), Bengtson, M.L. (author), Heerema, S.J. (author), Birnie, A.T.F. (author), van der Torre, J. (author), Dekker, C. (author)
Solid-state nanopores have emerged as promising platforms for biosensing including diagnostics for disease detection. Here we show nanopore experiments that detect CRISPR-dCas9, a sequence-specific RNA-guided protein system that specifically binds to a target DNA sequence. While CRISPR-Cas9 is acclaimed for its gene editing potential, the...
journal article 2018
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Plesa, C. (author), Verschueren, D.V. (author), Pud, S. (author), van der Torre, J. (author), Ruitenberg, J.W. (author), Witteveen, M.J. (author), Jonsson, P.M. (author), Grosberg, Alexander Y. (author), Rabin, Yitzhak (author), Dekker, C. (author)
Long DNA molecules can self-entangle into knots. Experimental techniques for observing such DNA knots (primarily gel electrophoresis) are limited to bulk methods and circular molecules below 10 kilobase pairs in length. Here, we show that solid-state nanopores can be used to directly observe individual knots in both linear and circular single...
journal article 2016