Long Non-Coding RNA Lacuna Regulates Neuronal Differentiation of Neural Stem Cells During Brain Development

被引:3
作者
Ninou, Elpinickie [1 ,2 ]
Michail, Artemis [1 ,3 ]
Politis, Panagiotis K. [1 ]
机构
[1] Acad Athens, Biomed Res Fdn, Ctr Basic Res, Athens, Greece
[2] Natl & Kapodistrian Univ Athens, Dept Biol, Athens, Greece
[3] Univ Patras, Dept Biol, Patras, Greece
关键词
Tbr2; Eomes; NONMMUT071331; non-coding genome; lncRNAs; KRAB; CRISPR; dCas9; PROGENITOR CELLS; GENE-EXPRESSION; TRANSCRIPTION; MOUSE; TBR2; OLIG2; NEUROGENESIS; PLURIPOTENCY; DISEASE; EOMESODERMIN;
D O I
10.3389/fcell.2021.726857
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Although long non-coding RNAs (lncRNAs) is one of the most abundant classes of RNAs encoded within the mammalian genome and are highly expressed in the adult brain, they remain poorly characterized and their roles in the brain development are not well understood. Here we identify the lncRNA Lacuna (also catalogued as NONMMUT071331.2 in NONCODE database) as a negative regulator of neuronal differentiation in the neural stem/progenitor cells (NSCs) during mouse brain development. In particular, we show that Lacuna is transcribed from a genomic locus near to the Tbr2/Eomes gene, a key player in the transition of intermediate progenitor cells towards the induction of neuronal differentiation. Lacuna RNA expression peaks at the developmental time window between E14.5 and E16.5, consistent with a role in neural differentiation. Overexpression experiments in ex vivo cultured NSCs from murine cortex suggest that Lacuna is sufficient to inhibit neuronal differentiation, induce the number of Nestin+ and Olig2+ cells, without affecting proliferation or apoptosis of NSCs. CRISPR/dCas9-KRAB mediated knockdown of Lacuna gene expression leads to the opposite phenotype by inducing neuronal differentiation and suppressing Nestin+ and Olig2+ cells, again without any effect on proliferation or apoptosis of NSCs. Interestingly, despite the negative action of Lacuna on neurogenesis, its knockdown inhibits Eomes transcription, implying a simultaneous, but opposite, role in facilitating the Eomes gene expression. Collectively, our observations indicate a critical function of Lacuna in the gene regulation networks that fine tune the neuronal differentiation in the mammalian NSCs.
引用
收藏
页数:17
相关论文
共 73 条
[1]   An efficient KRAB domain for CRISPRi applications in human cells [J].
Alerasool, Nader ;
Segal, Dmitri ;
Lee, Hunsang ;
Taipale, Mikko .
NATURE METHODS, 2020, 17 (11) :1093-+
[2]   Forging our understanding of lncRNAs in the brain [J].
Andersen, Rebecca E. ;
Lim, Daniel A. .
CELL AND TISSUE RESEARCH, 2018, 371 (01) :55-71
[3]   Recent advances in the involvement of long non-coding RNAs in neural stem cell biology and brain pathophysiology [J].
Antoniou, Daphne ;
Stergiopoulos, Athanasios ;
Politis, Panagiotis K. .
FRONTIERS IN PHYSIOLOGY, 2014, 5
[4]   The T-box transcription factor Eomes/Tbr2 regulates neurogenesis in the cortical subventricular zone [J].
Arnold, Sebastian J. ;
Huang, Guo-Jen ;
Cheung, Amanda F. P. ;
Era, Takumi ;
Nishikawa, Shin-Ichi ;
Bikoff, Elizabeth K. ;
Molnar, Zoltan ;
Robertson, Elizabeth J. ;
Groszer, Matthias .
GENES & DEVELOPMENT, 2008, 22 (18) :2479-2484
[5]   Pivotal roles for eomesodermin during axis formation, epithelium-to-mesenchyme transition and endoderm specification in the mouse [J].
Arnold, Sebastian J. ;
Hofmann, Ulf K. ;
Bikoff, Elizabeth K. ;
Robertson, Elizabeth J. .
DEVELOPMENT, 2008, 135 (03) :501-511
[6]   Telomeric repeat-containing RNA and RNA surveillance factors at mammalian chromosome ends [J].
Azzalin, Claus M. ;
Reichenbach, Patrick ;
Khoriauli, Lela ;
Giulotto, Elena ;
Lingner, Joachim .
SCIENCE, 2007, 318 (5851) :798-801
[7]   The long non-coding RNA Gomafu is acutely regulated in response to neuronal activation and involved in schizophrenia-associated alternative splicing [J].
Barry, G. ;
Briggs, J. A. ;
Vanichkina, D. P. ;
Poth, E. M. ;
Beveridge, N. J. ;
Ratnu, V. S. ;
Nayler, S. P. ;
Nones, K. ;
Hu, J. ;
Bredy, T. W. ;
Nakagawa, S. ;
Rigo, F. ;
Taft, R. J. ;
Cairns, M. J. ;
Blackshaw, S. ;
Wolvetang, E. J. ;
Mattick, J. S. .
MOLECULAR PSYCHIATRY, 2014, 19 (04) :486-494
[8]   Identification and analysis of functional elements in 1% of the human genome by the ENCODE pilot project [J].
Birney, Ewan ;
Stamatoyannopoulos, John A. ;
Dutta, Anindya ;
Guigo, Roderic ;
Gingeras, Thomas R. ;
Margulies, Elliott H. ;
Weng, Zhiping ;
Snyder, Michael ;
Dermitzakis, Emmanouil T. ;
Stamatoyannopoulos, John A. ;
Thurman, Robert E. ;
Kuehn, Michael S. ;
Taylor, Christopher M. ;
Neph, Shane ;
Koch, Christoph M. ;
Asthana, Saurabh ;
Malhotra, Ankit ;
Adzhubei, Ivan ;
Greenbaum, Jason A. ;
Andrews, Robert M. ;
Flicek, Paul ;
Boyle, Patrick J. ;
Cao, Hua ;
Carter, Nigel P. ;
Clelland, Gayle K. ;
Davis, Sean ;
Day, Nathan ;
Dhami, Pawandeep ;
Dillon, Shane C. ;
Dorschner, Michael O. ;
Fiegler, Heike ;
Giresi, Paul G. ;
Goldy, Jeff ;
Hawrylycz, Michael ;
Haydock, Andrew ;
Humbert, Richard ;
James, Keith D. ;
Johnson, Brett E. ;
Johnson, Ericka M. ;
Frum, Tristan T. ;
Rosenzweig, Elizabeth R. ;
Karnani, Neerja ;
Lee, Kirsten ;
Lefebvre, Gregory C. ;
Navas, Patrick A. ;
Neri, Fidencio ;
Parker, Stephen C. J. ;
Sabo, Peter J. ;
Sandstrom, Richard ;
Shafer, Anthony .
NATURE, 2007, 447 (7146) :799-816
[9]   Balanced gene regulation by an embryonic brain ncRNA is critical for adult hippocampal GABA circuitry [J].
Bond, Allison M. ;
VanGompel, Michael J. W. ;
Sametsky, Evgeny A. ;
Clark, Mary F. ;
Savage, Julie C. ;
Disterhoft, John F. ;
Kohtz, Jhumku D. .
NATURE NEUROSCIENCE, 2009, 12 (08) :1020-U91
[10]   Nestin in immature embryonic neurons affects axon growth cone morphology and Semaphorin3a sensitivity [J].
Bott, C. J. ;
Johnson, C. G. ;
Yap, C. C. ;
Dwyer, N. D. ;
Litwa, K. A. ;
Winckler, B. .
MOLECULAR BIOLOGY OF THE CELL, 2019, 30 (10) :1214-1229