PIWI-Directed DNA Elimination for Tetrahymena Genetics.


Journal

Methods in molecular biology (Clifton, N.J.)
ISSN: 1940-6029
Titre abrégé: Methods Mol Biol
Pays: United States
ID NLM: 9214969

Informations de publication

Date de publication:
2022
Historique:
entrez: 7 7 2022
pubmed: 8 7 2022
medline: 12 7 2022
Statut: ppublish

Résumé

Piwi-bound small RNAs induce programmed DNA elimination in the ciliated protozoan Tetrahymena. Using the phenomenon called codeletion, this process can be reprogrammed to induce ectopic DNA elimination at basically any given genomic location. Here, we describe the usage of codeletion for genetic studies in Tetrahymena and for investigations of the molecular mechanism of Piwi-directed programmed DNA elimination.

Identifiants

pubmed: 35796956
doi: 10.1007/978-1-0716-2380-0_3
doi:

Substances chimiques

DNA, Protozoan 0
RNA, Protozoan 0
RNA 63231-63-0

Types de publication

Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

53-68

Informations de copyright

© 2022. The Author(s), under exclusive license to Springer Science+Business Media, LLC, part of Springer Nature.

Références

Mochizuki K, Fine NA, Fujisawa T, Gorovsky MA (2002) Analysis of a piwi-related gene implicates small RNAs in genome rearrangement in tetrahymena. Cell 110:689–699
doi: 10.1016/S0092-8674(02)00909-1 pubmed: 12297043
Fang W, Wang X, Bracht JR et al (2012) Piwi-interacting RNAs protect DNA against loss during Oxytricha genome rearrangement. Cell 151:1243–1255
doi: 10.1016/j.cell.2012.10.045 pubmed: 23217708 pmcid: 3678556
Bouhouche K, Gout J-F, Kapusta A et al (2011) Functional specialization of Piwi proteins in paramecium tetraurelia from post-transcriptional gene silencing to genome remodelling. Nucleic Acids Res 39:4249–4264
doi: 10.1093/nar/gkq1283 pubmed: 21216825 pmcid: 3105430
Couvillion MT, Sachidanandam R, Collins K (2010) A growth-essential Tetrahymena Piwi protein carries tRNA fragment cargo. Genes Dev 24:2742–2747
doi: 10.1101/gad.1996210 pubmed: 21106669 pmcid: 3003190
Couvillion MT, Lee SR, Hogstad B et al (2009) Sequence, biogenesis, and function of diverse small RNA classes bound to the Piwi family proteins of Tetrahymena thermophila. Genes Dev 23:2016–2032
doi: 10.1101/gad.1821209 pubmed: 19656801 pmcid: 2751968
Furrer DI, Swart EC, Kraft MF et al (2017) Two sets of Piwi proteins are involved in distinct sRNA pathways leading to elimination of germline-specific DNA. Cell Rep 20:505–520
doi: 10.1016/j.celrep.2017.06.050 pubmed: 28700949 pmcid: 5522536
Hamilton EP, Kapusta A, Huvos PE et al (2016) Structure of the germline genome of Tetrahymena thermophila and relationship to the massively rearranged somatic genome. Elife 5:e19090. https://doi.org/10.7554/eLife.19090
doi: 10.7554/eLife.19090 pubmed: 27892853 pmcid: 5182062
Schoeberl UE, Kurth HM, Noto T, Mochizuki K (2012) Biased transcription and selective degradation of small RNAs shape the pattern of DNA elimination in Tetrahymena. Genes Dev 26:1729–1742
doi: 10.1101/gad.196493.112 pubmed: 22855833 pmcid: 3418590
Noto T, Kurth HM, Kataoka K et al (2010) The Tetrahymena argonaute-binding protein Giw1p directs a mature argonaute-siRNA complex to the nucleus. Cell 140:692–703
doi: 10.1016/j.cell.2010.02.010 pubmed: 20211138 pmcid: 2845462
Mochizuki K, Gorovsky MA (2005) A dicer-like protein in Tetrahymena has distinct functions in genome rearrangement, chromosome segregation, and meiotic prophase. Genes Dev 19:77–89
doi: 10.1101/gad.1265105 pubmed: 15598983 pmcid: 540227
Malone CD, Anderson AM, Motl JA et al (2005) Germ line transcripts are processed by a dicer-like protein that is essential for developmentally programmed genome rearrangements of Tetrahymena thermophila. Mol Cell Biol 25:9151–9164
doi: 10.1128/MCB.25.20.9151-9164.2005 pubmed: 16199890 pmcid: 1265777
Noto T, Kataoka K, Suhren JH et al (2015) Small-RNA-mediated genome-wide trans-recognition network in Tetrahymena DNA elimination. Mol Cell 59:229–242
doi: 10.1016/j.molcel.2015.05.024 pubmed: 26095658 pmcid: 4518040
Hayashi A, Mochizuki K (2015) Targeted gene disruption by ectopic induction of DNA elimination in tetrahymena. Genetics 201:55–64
doi: 10.1534/genetics.115.178525 pubmed: 26205990 pmcid: 4566276
Tian M, Loidl J (2018) A chromatin-associated protein required for inducing and limiting meiotic DNA double-strand break formation. Nucleic Acids Res 46:11822–11834
pubmed: 30357385 pmcid: 6294514
Akematsu T, Fukuda Y, Garg J et al (2017) Post-meiotic DNA double-strand breaks occur in Tetrahymena, and require topoisomerase II and Spo11. Elife 6:e26176. https://doi.org/10.7554/eLife.26176
doi: 10.7554/eLife.26176 pubmed: 28621664 pmcid: 5482572
Urbanska P, Joachimiak E, Bazan R et al (2018) Ciliary proteins Fap43 and Fap44 interact with each other and are essential for proper cilia and flagella beating. Cell Mol Life Sci 75:4479–4493
doi: 10.1007/s00018-018-2819-7 pubmed: 29687140 pmcid: 6208767
Soh AWJ, van Dam TJP, Stemm-Wolf AJ et al (2020) Ciliary force-responsive striated fibers promote basal body connections and cortical interactions. J Cell Biol 219(1):e201904091. https://doi.org/10.1083/jcb.201904091
doi: 10.1083/jcb.201904091 pubmed: 31740506
Bazan R, Schröfel A, Joachimiak E et al (2021) Ccdc113/Ccdc96 complex, a novel regulator of ciliary beating that connects radial spoke 3 to dynein g and the nexin link. PLoS Genet 17:e1009388
doi: 10.1371/journal.pgen.1009388 pubmed: 33661892 pmcid: 7987202
Tian M, Agreiter C, Loidl J (2020) Spatial constraints on chromosomes are instrumental to meiotic pairing. J Cell Sci 133(22):jcs253724. https://doi.org/10.1242/jcs.253724
doi: 10.1242/jcs.253724 pubmed: 33172984 pmcid: 7725606
Noto T, Mochizuki K (2018) Small RNA-mediated trans-nuclear and trans-element Communications in Tetrahymena DNA elimination. Curr Biol 28:1938–1949.e5
doi: 10.1016/j.cub.2018.04.071 pubmed: 29887308
Cassidy-Hanley DM (2012) Tetrahymena in the laboratory: strain resources, methods for culture, maintenance, and storage. Methods Cell Biol 109:237–276
doi: 10.1016/B978-0-12-385967-9.00008-6 pubmed: 22444147 pmcid: 3608402
Bruns PJ, Cassidy-Hanley D (2000) Biolistic transformation of macro- and micronuclei. Methods Cell Biol 62:501–512
doi: 10.1016/S0091-679X(08)61553-8 pubmed: 10503214
Yao MC, Yao CH (1991) Transformation of Tetrahymena to cycloheximide resistance with a ribosomal protein gene through sequence replacement. Proc Natl Acad Sci U S A 88:9493–9497
doi: 10.1073/pnas.88.21.9493 pubmed: 1946363 pmcid: 52744
Gaertig J, Gorovsky MA (1992) Efficient mass transformation of Tetrahymena thermophila by electroporation of conjugants. Proc Natl Acad Sci U S A 89:9196–9200
doi: 10.1073/pnas.89.19.9196 pubmed: 1409625 pmcid: 50092
Chalker DL (2012) Transformation and strain engineering of Tetrahymena. Methods Cell Biol 109:327–345
doi: 10.1016/B978-0-12-385967-9.00011-6 pubmed: 22444150
Noto T, Mochizuki K (2017) Whats, hows and whys of programmed DNA elimination in Tetrahymena. Open Biol 7:170172
doi: 10.1098/rsob.170172 pubmed: 29021213 pmcid: 5666084

Auteurs

Salman Shehzada (S)

Institute of Human Genetics (IGH), CNRS and University of Montpellier, Montpellier, France.

Kazufumi Mochizuki (K)

Institute of Human Genetics (IGH), CNRS and University of Montpellier, Montpellier, France. kazufumi.mochizuki@igh.cnrs.fr.

Articles similaires

Humans RNA, Circular Exosomes Cell Proliferation Epithelial-Mesenchymal Transition
Nucleic Acid Amplification Techniques Humans Point-of-Care Testing Sensitivity and Specificity Malaria
DNA Methylation Humans DNA Animals Machine Learning
Cryoelectron Microscopy Models, Molecular RNA DNA Nucleic Acid Conformation

Classifications MeSH