Eukaryotic tRNA splicing – one goal, two strategies, many players
Author:
Affiliation:
1. Biochemistry Center (BZH), Heidelberg University , D-69120 Heidelberg , Germany
Abstract
Publisher
Walter de Gruyter GmbH
Subject
Clinical Biochemistry,Molecular Biology,Biochemistry
Link
https://www.degruyter.com/document/doi/10.1515/hsz-2021-0402/pdf
Reference112 articles.
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2. Argyrou, A. and Blanchard, J.S. (2004). Flavoprotein disulfide reductases: advances in chemistry and function. Prog. Nucleic Acid Res. Mol. Biol. 78: 89–142, https://doi.org/10.1016/s0079-6603(04)78003-4.
3. Asanović, I., Strandback, E., Kroupova, A., Pasajlic, D., Meinhart, A., Tsung-Pin, P., Djokovic, N., Anrather, D., Schuetz, T., Suskiewicz, M.J., et al. (2021). The oxidoreductase PYROXD1 uses NAD(P)+ as an antioxidant to sustain tRNA ligase activity in pre-tRNA splicing and unfolded protein response. Mol. Cell 81: 2520–2532.e16, https://doi.org/10.1016/j.molcel.2021.04.007.
4. Baldi, M., Mattoccia, E., Bufardeci, E., Fabbri, S., and Tocchini-Valentini, G. (1992). Participation of the intron in the reaction catalyzed by the Xenopus tRNA splicing endonuclease. Science 255: 1404–1408, https://doi.org/10.1126/science.1542788.
5. Banerjee, A., Ghosh, S., Goldgur, Y., and Shuman, S. (2019a). Structure and two-metal mechanism of fungal tRNA ligase. Nucleic Acids Res. 47: 1428–1439, https://doi.org/10.1093/nar/gky1275.
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