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      An electrochemical biosensor based on AuNPs/Ti3C2 MXene three-dimensional nanocomposite for microRNA-155 detection by exonuclease III-aided cascade target recycling

      , , , ,
      Journal of Electroanalytical Chemistry
      Elsevier BV

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          Two-dimensional nanocrystals produced by exfoliation of Ti3 AlC2.

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            Regulation of microRNA biogenesis.

            Minju Ha, V Kim (2014)
            MicroRNAs (miRNAs) are small non-coding RNAs that function as guide molecules in RNA silencing. Targeting most protein-coding transcripts, miRNAs are involved in nearly all developmental and pathological processes in animals. The biogenesis of miRNAs is under tight temporal and spatial control, and their dysregulation is associated with many human diseases, particularly cancer. In animals, miRNAs are ∼22 nucleotides in length, and they are produced by two RNase III proteins--Drosha and Dicer. miRNA biogenesis is regulated at multiple levels, including at the level of miRNA transcription; its processing by Drosha and Dicer in the nucleus and cytoplasm, respectively; its modification by RNA editing, RNA methylation, uridylation and adenylation; Argonaute loading; and RNA decay. Non-canonical pathways for miRNA biogenesis, including those that are independent of Drosha or Dicer, are also emerging.
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              Cation Intercalation and High Volumetric Capacitance of Two-Dimensional Titanium Carbide

              The intercalation of ions into layered compounds has long been exploited in energy storage devices such as batteries and electrochemical capacitors. However, few host materials are known for ions much larger than lithium. We demonstrate the spontaneous intercalation of cations from aqueous salt solutions between two-dimensional (2D) Ti3C2 MXene layers. MXenes combine 2D conductive carbide layers with a hydrophilic, primarily hydroxyl-terminated surface. A variety of cations, including Na(+), K(+), NH4(+), Mg(2+), and Al(3+), can also be intercalated electrochemically, offering capacitance in excess of 300 farads per cubic centimeter (much higher than that of porous carbons). This study provides a basis for exploring a large family of 2D carbides and carbonitrides in electrochemical energy storage applications using single- and multivalent ions.
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                Author and article information

                Journal
                Journal of Electroanalytical Chemistry
                Journal of Electroanalytical Chemistry
                Elsevier BV
                15726657
                December 2020
                December 2020
                : 878
                : 114669
                Article
                10.1016/j.jelechem.2020.114669
                116f248f-8f64-4b6c-9dbf-7e6c2efc4ffc
                © 2020

                https://www.elsevier.com/tdm/userlicense/1.0/

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