Competition between translation initiation factor elF5 and its mimic protein 5MP determines non-AUG initiation rate genome-wide
NUCLEIC ACIDS RESEARCH
Authors: Tang, Leiming; Morris, Jacob; Wan, Ji; Moore, Chelsea; Fujita, Yoshihiko; Gillaspie, Sarah; Aube, Eric; Nanda, Jagpreet; Marques, Maud; Jangal, Maika; Anderson, Abbey; Cox, Christian; Hiraishi, Hiroyuki; Dong, Leiming; Saito, Hirohide; Singh, Chingakham Ranjit; Witcher, Michael; Topisirovic, Ivan; Qian, Shu-Bing; Asano, Katsura
Abstract
In the human genome, translation initiation from non-AUG codons plays an important role in various gene regulation programs. However, mechanisms regulating the non-AUG initiation rate remain poorly understood. Here, we show that the non-AUG initiation rate is nearly consistent under a fixed nucleotide context in various human and insect cells. Yet, it ranges from <1% to nearly 100% compared to AUG translation, depending on surrounding sequences, including Kozak, and possibly additional nucleotide contexts. Mechanistically, this range of non-AUG initiation is controlled in part, by the elF5-mimic protein (5MP). 5MP represses non-AUG translation by competing with elF5 for the Met-tRNAi-binding factor elF2. Consistently, elF5 increases, whereas 5MP decreases translation of NAT1/EIF4G2/DAP5, whose sole start codon is GUG. By modulating elF5 and 5MP1 expression in combination with ribosome profiling we identified a handful of previously unknown non-AUG initiation sites, some of which serve as the exclusive start codons. If the initiation rate for these codons is low, then an AUG-initiated downstream ORF prevents the generation of shorter, AUG- initiated isoforms. We propose that the homeostasis of the non-AUG translatome is maintained through balanced expression of elF5 and 5MP.
Transcriptome analysis of developing lens reveals abundance of novel transcripts and extensive splicing alterations
SCIENTIFIC REPORTS
Authors: Srivastava, Rajneesh; Budak, Gungor; Dash, Soma; Lachke, Salil A.; Janga, Sarath Chandra
Abstract
Lens development involves a complex and highly orchestrated regulatory program. Here, we investigate the transcriptomic alterations and splicing events during mouse lens formation using RNA-seq data from multiple developmental stages, and construct a molecular portrait of known and novel transcripts. We show that the extent of novelty of expressed transcripts decreases significantly in post-natal lens compared to embryonic stages. Characterization of novel transcripts into partially novel transcripts (PNTs) and completely novel transcripts (CNTs) (novelty score >= 70%) revealed that the PNTs are both highly conserved across vertebrates and highly expressed across multiple stages. Functional analysis of PNTs revealed their widespread role in lens developmental processes while hundreds of CNTs were found to be widely expressed and predicted to encode for proteins. We verified the expression of four CNTs across stages. Examination of splice isoforms revealed skipped exon and retained intron to be the most abundant alternative splicing events during lens development. We validated by RT-PCR and Sanger sequencing, the predicted splice isoforms of several genes Banf1, Cdk4, Cryaa, Eif4g2, Pax6, and Rbm5. Finally, we present a splicing browser Eye Splicer (http://www.iupui.edu/similar to sysbio/eye-splicer/), to facilitate exploration of developmentally altered splicing events and to improve understanding of post-transcriptional regulatory networks during mouse lens development.