Polyadenylation-related isoform switching in human evolution revealed by full-length transcript structure

Author:

Li Yumei1,Shen Qing Sunny1,Peng Qi12,Ding Wanqiu12,Zhang Jie12,Zhong Xiaoming1,An Ni A12,Ji Mingjun12,Zhou Wei-Zhen3,Li Chuan-Yun12

Affiliation:

1. Laboratory of Bioinformatics and Genomic Medicine, Institute of Molecular Medicine, Peking University, Beijing, China

2. College of Future Technology, Peking University, Beijing, China

3. State Key Laboratory of Cardiovascular Disease, Fuwai Hospital, Beijing, China

Abstract

Abstract Rhesus macaque is a unique nonhuman primate model for human evolutionary and translational study, but the error-prone gene models critically limit its applications. Here, we de novo defined full-length macaque gene models based on single molecule, long-read transcriptome sequencing in four macaque tissues (frontal cortex, cerebellum, heart and testis). Overall, 8 588 227 poly(A)-bearing complementary DNA reads with a mean length of 14 106 nt were generated to compile the backbone of macaque transcripts, with the fine-scale structures further refined by RNA sequencing and cap analysis gene expression sequencing data. In total, 51 605 macaque gene models were accurately defined, covering 89.7% of macaque or 75.7% of human orthologous genes. Based on the full-length gene models, we performed a human–macaque comparative analysis on polyadenylation (PA) regulation. Using macaque and mouse as outgroup species, we identified 79 distal PA events newly originated in humans and found that the strengthening of the distal PA sites, rather than the weakening of the proximal sites, predominantly contributes to the origination of these human-specific isoforms. Notably, these isoforms are selectively constrained in general and contribute to the temporospatially specific reduction of gene expression, through the tinkering of previously existed mechanisms of nuclear retention and microRNA (miRNA) regulation. Overall, the protocol and resource highlight the application of bioinformatics in integrating multilayer genomics data to provide an intact reference for model animal studies, and the isoform switching detected may constitute a hitherto underestimated regulatory layer in shaping the human-specific transcriptome and phenotypic changes.

Funder

Ministry of Science and Technology of China

National Natural Science Foundation of China

Chinese Institute for Brain Research

Publisher

Oxford University Press (OUP)

Subject

Molecular Biology,Information Systems

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