» Articles » PMID: 28873399

Systematic Analysis of Transcription Start Sites in Avian Development

Abstract

Cap Analysis of Gene Expression (CAGE) in combination with single-molecule sequencing technology allows precision mapping of transcription start sites (TSSs) and genome-wide capture of promoter activities in differentiated and steady state cell populations. Much less is known about whether TSS profiling can characterize diverse and non-steady state cell populations, such as the approximately 400 transitory and heterogeneous cell types that arise during ontogeny of vertebrate animals. To gain such insight, we used the chick model and performed CAGE-based TSS analysis on embryonic samples covering the full 3-week developmental period. In total, 31,863 robust TSS peaks (>1 tag per million [TPM]) were mapped to the latest chicken genome assembly, of which 34% to 46% were active in any given developmental stage. ZENBU, a web-based, open-source platform, was used for interactive data exploration. TSSs of genes critical for lineage differentiation could be precisely mapped and their activities tracked throughout development, suggesting that non-steady state and heterogeneous cell populations are amenable to CAGE-based transcriptional analysis. Our study also uncovered a large set of extremely stable housekeeping TSSs and many novel stage-specific ones. We furthermore demonstrated that TSS mapping could expedite motif-based promoter analysis for regulatory modules associated with stage-specific and housekeeping genes. Finally, using Brachyury as an example, we provide evidence that precise TSS mapping in combination with Clustered Regularly Interspaced Short Palindromic Repeat (CRISPR)-on technology enables us, for the first time, to efficiently target endogenous avian genes for transcriptional activation. Taken together, our results represent the first report of genome-wide TSS mapping in birds and the first systematic developmental TSS analysis in any amniote species (birds and mammals). By facilitating promoter-based molecular analysis and genetic manipulation, our work also underscores the value of avian models in unravelling the complex regulatory mechanism of cell lineage specification during amniote development.

Citing Articles

GEGA (Gallus Enriched Gene Annotation): an online tool providing genomics and functional information across 47 tissues for a chicken gene-enriched atlas gathering Ensembl and Refseq genome annotations.

Degalez F, Bardou P, Lagarrigue S NAR Genom Bioinform. 2024; 6(3):lqae101.

PMID: 39157583 PMC: 11327871. DOI: 10.1093/nargab/lqae101.


Cis-regulatory interfaces reveal the molecular mechanisms underlying the notochord gene regulatory network of Ciona.

Negron-Pineiro L, Wu Y, Popsuj S, Jose-Edwards D, Stolfi A, Di Gregorio A Nat Commun. 2024; 15(1):3025.

PMID: 38589372 PMC: 11001920. DOI: 10.1038/s41467-024-46850-3.


ETV2 induces endothelial, but not hematopoietic, lineage specification in birds.

Weng W, Deng Y, Deviatiiarov R, Hamidi S, Kajikawa E, Gusev O Life Sci Alliance. 2024; 7(6).

PMID: 38570190 PMC: 10992995. DOI: 10.26508/lsa.202402694.


Enriched atlas of lncRNA and protein-coding genes for the GRCg7b chicken assembly and its functional annotation across 47 tissues.

Degalez F, Charles M, Foissac S, Zhou H, Guan D, Fang L Sci Rep. 2024; 14(1):6588.

PMID: 38504112 PMC: 10951430. DOI: 10.1038/s41598-024-56705-y.


Mapping and Functional Dissection of the Rumpless Trait in Piao Chicken Identifies a Causal Loss of Function Mutation in the Novel Gene Rum.

Guo Y, Tian J, Song C, Han W, Zhu C, Li H Mol Biol Evol. 2023; 40(12).

PMID: 38069902 PMC: 10735294. DOI: 10.1093/molbev/msad273.


References
1.
Warren W, Hillier L, Tomlinson C, Minx P, Kremitzki M, Graves T . A New Chicken Genome Assembly Provides Insight into Avian Genome Structure. G3 (Bethesda). 2016; 7(1):109-117. PMC: 5217101. DOI: 10.1534/g3.116.035923. View

2.
Batut P, Dobin A, Plessy C, Carninci P, Gingeras T . High-fidelity promoter profiling reveals widespread alternative promoter usage and transposon-driven developmental gene expression. Genome Res. 2012; 23(1):169-80. PMC: 3530677. DOI: 10.1101/gr.139618.112. View

3.
Burt D . Chicken genome: current status and future opportunities. Genome Res. 2005; 15(12):1692-8. DOI: 10.1101/gr.4141805. View

4.
Li A, Zhang J, Zhou Z, Wang L, Liu Y, Liu Y . ALDB: a domestic-animal long noncoding RNA database. PLoS One. 2015; 10(4):e0124003. PMC: 4390226. DOI: 10.1371/journal.pone.0124003. View

5.
Schmid M, Smith J, Burt D, Aken B, Antin P, Archibald A . Third Report on Chicken Genes and Chromosomes 2015. Cytogenet Genome Res. 2015; 145(2):78-179. PMC: 5120589. DOI: 10.1159/000430927. View