Abstract Both genomic mutations and RNA editing contribute to functional complexity and drive adaptive evolution. Single-cell profiling offers deep insight into the cis-regulatory mechanisms underlying these variations. Using 13 025 single-cell Smart-Seq libraries from whole-body Drosophila melanogaster, we unexpectedly found that 94.0% of adenosine-to-inosine RNA editing sites and 92.8% of heterozygous single nucleotide polymorphismss (SNPs) with sufficient “unique fragment support” exhibit binary expression (0 or 1) in a single cell. The genotypes of representative heterozygous SNPs were validated by Sanger sequencing. Meanwhile, binary RNA editing itself is logically questionable due to elusive mechanism, compromised condition specificity, and untenable heterozygote advantage. This fact that for most cases in Smart-Seq, only a single allele (out of the various haplotypes) is finally maintained per cell, raises the following concern. Regardless of the biological or technical explanations like monoallelic transcriptional burst, dropout, or amplification bias that might account for this binary expression pattern, our findings conservatively indicate that Smart-Seq may not be good at analyzing molecular diversity and that the results need to be interpreted with caution.
Y. Duan, Jiyao Liu, Shiwen Xu et al.· Nucleic Acids Research· 0 citations
Abstract
The thread-legged bug genus
Chinemesa
Wygodzinsky, 1966 (Hemiptera: Heteroptera: Reduviidae: Emesinae: Emesini) is a small group of five species endemic to the Oriental Region. However, the species diversity of this genus is still far from completely explored, especially in the mainland of Asia. Here we describe three new species,
C. ornata
sp. n
.,
C. pulchella
sp. n
. and
C. weilingfengi
sp. n
., from southern China. Based on the newly sequenced mitochondrial genomes of four
Chinemesa
species, we detected two gene rearrangement patterns in the genus: a translocation of
trnI
and
trnQ
in all four species, and a loss of
trnW
in
C. pulchella
sp. n
. Both gene rearrangements are novel within Reduviidae as well as Heteroptera, and can be explained by the tandem duplication-random loss (TDRL) model. Phylogenetic analyses based on mitogenomic datasets recovered the monophyly of
Chinemesa
, with the translocation of
trnI
-
trnQ
as a potential molecular synapomorphy for the genus.