TY - JOUR
T1 - Different Families of Retrotransposons and DNA Transposons Are Actively Transcribed and May Have Transposed Recently in Physcomitrium (Physcomitrella) patens
AU - Vendrell-Mir, Pol
AU - Lopez Obando, Mauricio
AU - Nogue, Fabien
AU - Casacuberta, Josep M.
PY - 2020
Y1 - 2020
N2 - Similarly to other plant genomes of similar size, more than half of the genome ofP. patensis covered by Transposable Elements (TEs). However, the composition and distribution ofP. patensTEs is quite peculiar, with Long Terminal Repeat (LTR)-retrotransposons, which form patches of TE-rich regions interleaved with gene-rich regions, accounting for the vast majority of the TE space. We have already shown that RLG1, the most abundant TE inP. patens, is expressed in non-stressed protonema tissue. Here we present a non-targeted analysis of the TE expression based on RNA-Seq data and confirmed by qRT-PCR analyses that shows that, at least four LTR-RTs (RLG1, RLG2, RLC4 and tRLC5) and one DNA transposon (PpTc2) are expressed inP. patens. These TEs are expressed during development or under stresses thatP. patensfrequently faces, such as dehydratation/rehydratation stresses, suggesting that TEs have ample possibilities to transpose duringP. patenslife cycle. Indeed, an analysis of the TE polymorphisms among four differentP. patensaccessions shows that different TE families have recently transposed in this species and have generated genetic variability that may have phenotypic consequences, as a fraction of the TE polymorphisms are within or close to genes. Among the transcribed and mobile TEs, tRLC5 is particularly interesting as it concentrates in a single position per chromosome that could coincide with the centromere, and its expression is specifically induced in young sporophyte, where meiosis takes place.
AB - Similarly to other plant genomes of similar size, more than half of the genome ofP. patensis covered by Transposable Elements (TEs). However, the composition and distribution ofP. patensTEs is quite peculiar, with Long Terminal Repeat (LTR)-retrotransposons, which form patches of TE-rich regions interleaved with gene-rich regions, accounting for the vast majority of the TE space. We have already shown that RLG1, the most abundant TE inP. patens, is expressed in non-stressed protonema tissue. Here we present a non-targeted analysis of the TE expression based on RNA-Seq data and confirmed by qRT-PCR analyses that shows that, at least four LTR-RTs (RLG1, RLG2, RLC4 and tRLC5) and one DNA transposon (PpTc2) are expressed inP. patens. These TEs are expressed during development or under stresses thatP. patensfrequently faces, such as dehydratation/rehydratation stresses, suggesting that TEs have ample possibilities to transpose duringP. patenslife cycle. Indeed, an analysis of the TE polymorphisms among four differentP. patensaccessions shows that different TE families have recently transposed in this species and have generated genetic variability that may have phenotypic consequences, as a fraction of the TE polymorphisms are within or close to genes. Among the transcribed and mobile TEs, tRLC5 is particularly interesting as it concentrates in a single position per chromosome that could coincide with the centromere, and its expression is specifically induced in young sporophyte, where meiosis takes place.
KW - Physcomitrium (Physcomitrella) patens
KW - transposable element
KW - transcription
KW - genetic variability
KW - centromere
KW - Physcomitrium (Physcomitrella) patens
KW - transposable element
KW - transcription
KW - genetic variability
KW - centromere
UR - https://res.slu.se/id/publ/107886
U2 - 10.3389/fpls.2020.01274
DO - 10.3389/fpls.2020.01274
M3 - Journal article
SN - 1664-462X
VL - 11
JO - Frontiers in Plant Science
JF - Frontiers in Plant Science
M1 - 1274
ER -