De novo assembly of the complete mitochondrial genome of sweet potato (Ipomoea batatas [L.] Lam) revealed the existence of homologous conformations generated by the repeat-mediated recombination

被引:0
作者
Zhijian Yang
Yang Ni
Zebin Lin
Liubin Yang
Guotai Chen
Nuerla Nijiati
Yunzhuo Hu
Xuanyang Chen
机构
[1] Fujian Agriculture and Forestry University,Key Laboratory of Crop Biotechnology
[2] Fujian Province Universities,College of Agriculture
[3] Fujian Agriculture and Forestry University,undefined
[4] Fujian Provincial Key Laboratory of Crop Breeding by Design,undefined
来源
BMC Plant Biology | / 22卷
关键词
Mitochondrial genome; De novo assembly; Repeat-mediated recombination; RNA editing events;
D O I
暂无
中图分类号
学科分类号
摘要
Sweet potato (Ipomoea batatas [L.] Lam) is an important food crop, an excellent fodder crop, and a new type of industrial raw material crop. The lack of genomic resources could affect the process of industrialization of sweet potato. Few detailed reports have been completed on the mitochondrial genome of sweet potato. In this research, we sequenced and assembled the mitochondrial genome of sweet potato and investigated its substructure. The mitochondrial genome of sweet potato is 270,304 bp with 23 unique core genes and 12 variable genes. We detected 279 pairs of repeat sequences and found that three pairs of direct repeats could mediate the homologous recombination into four independent circular molecules. We identified 70 SSRs in the whole mitochondrial genome of sweet potato. The longest dispersed repeat in mitochondrial genome was a palindromic repeat with a length of 915 bp. The homologous fragments between the chloroplast and mitochondrial genome account for 7.35% of the mitochondrial genome. We also predicted 597 RNA editing sites and found that the rps3 gene was edited 54 times, which occurred most frequently. This study further demonstrates the existence of multiple conformations in sweet potato mitochondrial genomes and provides a theoretical basis for the evolution of higher plants and cytoplasmic male sterility breeding.
引用
收藏
相关论文
共 267 条
[21]  
Zhang L(1997)tRNAscan-SE: a program for improved detection of transfer RNA genes in genomic sequence Nucleic Acids Res 25 955-9.5. 28
[22]  
Nawaz G(2019)OrganellarGenomeDRAW (OGDRAW) version 1.3.1: expanded toolkit for the graphical visualization of organellar genomes Nuclc Acids Research W1 W59-2585
[23]  
Zhao C(2002)Apollo: a sequence annotation editor Genome Biol 3 1-12
[24]  
Zhang J(2005)Using Apollo to browse and edit genome annotations Curr Protoc Bioinformatics 12 9.5. 1-355
[25]  
Cao Q(2017)MISA-web: a web server for microsatellite prediction Bioinformatics 33 2583-780
[26]  
Dong T(2018)The complete mitochondrial genome of the early flowering plant Nymphaea colorata is highly repetitive with low recombination BMC Genomics 19 1-755
[27]  
Xu T(2020)PhyloSuite: an integrated and scalable desktop platform for streamlined molecular sequence data management and evolutionary phylogenetics studies Mol Ecol Resour 20 348-W259
[28]  
Hahn S(2013)MAFFT multiple sequence alignment software version 7: improvements in performance and usability Mol Biol Evol 30 772-595
[29]  
Isoba JC(2001)MRBAYES: Bayesian inference of phylogenetic trees Bioinformatics 17 754-2079
[30]  
Ikotun T(2019)Interactive tree of life (iTOL) v4: recent updates and new developments Nucleic Acids Res 47 W256-200