The Landscape of Fusion Transcripts in Plants: A New Insight into Genome Complexity

Author:

Chitkara Pragya1,Singh Ajeet1,Gangwar Rashmi1,Bhardwaj Rohan1,Zahra Shafaque1,Arora Simran1,Hamid Fiza1,Arya Ajay1,Sahu Namrata1,Chakraborty Srija1,Ramesh Madhulika1,Kumar Shailesh1

Affiliation:

1. National Institute of Plant Genome Research, Aruna Asaf Ali Marg

Abstract

Abstract

Background Fusion transcripts (FTs), generated by the fusion of genes at the DNA level or RNA-level splicing events significantly contribute to transcriptome diversity. FTs are usually considered unique features of neoplasia and serve as biomarkers and therapeutic targets for multiple cancers. The latest findings show the presence of FTs in normal human physiology. Several discreet reports mentioned the presence of fusion transcripts in planta, has important roles in stress responses, morphological alterations, or traits (e.g. seed size, etc.). Results In this study, we identified 169197 fusion transcripts in 2795 transcriptome datasets of Arabidopsis thaliana, Cicer arietinum, and Oryza sativa by using a combination of tools, and confirmed the translational activity of 150 fusion transcripts through proteomic datasets. Analysis of the FT junction sequences and their association with epigenetic factors, as revealed by ChIP-Seq datasets, demonstrated an organised process of fusion formation at the DNA level. We investigated the possible impact of three-dimensional chromatin conformation on intra-chromosomal fusion events by leveraging the Hi-C datasets with the incidence of fusion transcripts. We further utilised the long-read RNA-Seq datasets to validate the most reoccurring fusion transcripts in each plant species followed by further authentication through RT-PCR and Sanger sequencing. Conclusions Our findings suggests that a significant portion of fusion events may be attributed to alternative splicing during transcription, accounting for numerous fusion events without a proportional increase in the number of RNA pairs. Even non-nuclear DNA transcripts from mitochondria and chloroplasts can participate in intra- and inter-chromosomal fusion formation. Genes in close spatial proximity are more prone to undergoing fusion formation, especially in intra-chromosomal FTs. Most of the fusion transcripts may not undergo translation and served as long non-coding RNAs. Low validation rate of FTs in plants indicated that the fusions transcripts are expressed at very low levels, like in case of human. FTs often originate from parental genes involved in essential biological processes, suggesting their relevance across diverse tissues and stress conditions. This study presents a comprehensive repository of fusion transcripts, offering valuable insights into their roles in vital physiological processes and stress responses.

Publisher

Research Square Platform LLC

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