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Rapid Communication

Complete mitochondrial genome sequences of two ground crickets, Dianemobius fascipes nigrofasciatus and Polionemobius taprobanensis (Orthoptera: Grylloidea: trigonidiidae)

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Pages 1311-1315 | Received 07 Jun 2023, Accepted 11 Nov 2023, Published online: 11 Dec 2023

References

  • Adachi J, Hasegawa M. 1996. Model of amino acid substitution in proteins encoded by mitochondrial DNA. J Mol Evol. 42(4):459–468. doi: 10.1007/BF02498640.
  • Benediktov AA, Storozhenko SY. 2018. Confirmation of the subspecies status of Dianemobius fascipes nigrofasciatus (Orthoptera, Gryllidae) based on bioacoustic and morphological data, with the description of the male sounds from Southern Siberia. Entmol Rev. 98(8):1038–1044. doi: 10.1134/S0013873818080109.
  • Bernt M, Donath A, Jühling F, Externbrink F, Florentz C, Fritzsch G, Pütz J, Middendorf M, Stadler PF. 2013. MITOS: improved de novo metazoan mitochondrial genome annotation. Mol Phylogenet Evol. 69(2):313–319. doi: 10.1016/j.ympev.2012.08.023.
  • Capella-Gutiérrez S, Silla-Martínez JM, Gabaldón T. 2009. trimAl: a tool for automated alignment trimming in large-scale phylogenetic analyses. Bioinformatics. 25(15):1972–1973. doi: 10.1093/bioinformatics/btp348.
  • Donath A, Jühling F, Al-Arab M, Bernhart SH, Reinhardt F, Stadler PF, Middendorf M, Bernt M. 2019. Improved annotation of protein-coding genes boundaries in metazoan mitochondrial genomes. Nucleic Acids Res. 47(20):10543–10552. doi: 10.1093/nar/gkz833.
  • Dong J, Vicente N, Chintauan-Marquier IC, Ramadi C, Dettai A, Robillard T. 2017. Complete mitochondrial genome and taxonomic revision of Cardiodactylus muiri Otte, 2007 (Gryllidae: eneopterinae: lebinthini). Zootaxa. 4268(1):101–116. doi: 10.11646/zootaxa.4268.1.6.
  • Felsenstein J. 1981. Evolutionary trees from DNA sequences: a maximum likelihood approach. J Mol Evol. 17(6):368–376. doi: 10.1007/BF01734359.
  • Felsenstein J. 1985. Confidence limits on phylogenies: an approach using the bootstrap. Evolution. 39(4):783–791. doi: 10.1111/j.1558-5646.1985.tb00420.x.
  • He ZQ. 2018. A checklist of Chinese crickets (Orthoptera: gryllidea). Zootaxa. 4369(4):515–535. doi: 10.11646/zootaxa.4369.4.4.
  • Jin J-J, Yu W-B, Yang J-B, Song Y, dePamphilis CW, Yi T-S, Li D-Z. 2020. GetOrganelle: a fast and versatile toolkit for accurate de novo assembly of organelle genomes. Genome Biol. 21(1):241. doi: 10.1186/s13059-020-02154-5.
  • Jones DT, Taylor WR, Thornton JM. 1992. The rapid generation of mutation data matrices from protein sequences. Comput Appl Biosci. 8(3):275–282. doi: 10.1093/bioinformatics/8.3.275.
  • Kataoka K, Minei R, Ide K, Ogura A, Takeyama H, Takeda M, Suzuki T, Yura K, Asahi T. 2020. The draft genome dataset of the Asian cricket teleogryllus occipitalis for molecular research toward entomophagy. Front Genet. 11:470. doi: 10.3389/fgene.2020.00470.
  • Kataoka K, Togawa Y, Sanno R, Asahi T, Yura K. 2022. Dissecting cricket genomes for the advancement of entomology and entomophagy. Biophys Rev. 14(1):75–97. doi: 10.1007/s12551-021-00924-4.
  • Kumar S, Stecher G, Li M, Knyaz C, Tamura K. 2018. MEGA X: molecular evolutionary genetics analysis across computing platforms. Mol Biol Evol. 35(6):1547–1549. doi: 10.1093/molbev/msy096.
  • Li J, Chen Q, Wen M, Wang J, Wang Y, Ren B. 2019. Phylogeny and acoustic signal evolution of a pure tone song katydid Pseudophyllus titan (Orthoptera: tettigoniidae) based on the complete mitogenome. Mitochondrial DNA A DNA Mapp Seq Anal. 30(3):385–396. doi: 10.1080/24701394.2018.1502280.
  • Ma C, Li J. 2018. Comparative analysis of mitochondrial genomes of the superfamily Grylloidea (Insecta, Orthoptera) reveals phylogenetic distribution of gene rearrangements. Int J Biol Macromol. 120(Pt A):1048–1054. doi: 10.1016/j.ijbiomac.2018.08.181.
  • Ma C, Wang Y, Zhang L, Li J. 2019b. Mitochondrial genome characterization of the family Trigonidiidae (Orthoptera) reveals novel structural features and nad1 transcript ends. Sci Rep. 9(1):19092. doi: 10.1038/s41598-019-55740-4.
  • Ma C, Zhang L, Li J. 2019a. Characterization of the complete mitochondrial genome of a bush cricket Xenogryllus marmoratus (Insecta: Orthoptera). Mitochondrial DNA Part B: resources. 4(1):172–173. doi: 10.1080/23802359.2018.1544870.
  • Masaki S. 1979a. Climatic adaptation and species status in the lawn ground cricket: I. Photoperiodic response. 47(l):48–65. https://hirosaki.repo.nii.ac.jp/?action=pages_view_main&active_action=repository_view_main_item_detail&item_id=4391&item_no=1&page_id=13&block_id=33.
  • Masaki S. 1979b. Climatic adaptation and species status in the lawn ground cricket: II. Body size. Oecologia. 35(3):343–356. doi: 10.1007/BF00345141.
  • Masaki S. 1979c. Climatic adaptation and species status in the lawn ground cricket: III. Ovipositor length. Oecologia. 43(2):207–219. http://www.jstor.org/stable/4215955. doi: 10.1007/BF00344771.
  • Masaki S. 1983. Climatic speciation in Japanese ground crickets. GeoJournal. 7(6):483–490. http://www.jstor.org/stable/41143194. doi: 10.1007/BF00218520.
  • Matsuda N, Numata H. 2019. Altitudinal variation in life-history traits in the lawn ground cricket, Polionemobius mikado. Entomol Sci. 22(2):198–204. doi: 10.1111/ens.12359.
  • Matsuda N, Tanaka K, Watari Y, Shintani Y, Goto SG, Nisimura T, Izumi Y, Numata H. 2018. Northward expansion of the bivoltine life cycle of the cricket over the last four decades. Glob Chang Biol. 24(12):5622–5628. doi: 10.1111/gcb.14436.
  • Saitou N, Nei M. 1987. The neighbor-joining method: a new method for reconstructing phylogenetic trees. Mol Biol Evol. 4(4):406–425. doi: 10.1093/oxfordjournals.molbev.a040454.
  • Sanno R, Kataoka K, Hayakawa S, Ide K, Nguyen CN, Nguyen TP, Le BTN, Kim OTP, Mineta K, Takeyama H, et al. 2021. Comparative analysis of mitochondrial genomes in Gryllidea (Insecta: orthoptera): implications for adaptive evolution in ant-loving crickets. Genome Biol Evol. 13(10):1–8. doi: 10.1093/gbe/evab222.
  • Schneider CA, Rasband WS, Eliceiri KW. 2012. NIH Image to ImageJ: 25 years of image analysis. Nat Method. 9(7):671–675. doi: 10.1038/nmeth.2089.
  • Sheffield NC, Hiatt KD, Valentine MC, Song H, Whiting MF. 2010. Mitochondrial genomics in orthoptera using MOSAS. Mitochondrial DNA. 21(3–4):87–104. doi: 10.3109/19401736.2010.500812.
  • Shiga S, Numata H. 1997. Seasonal changes in the incidence of embryonic diapause in the band-legged ground cricket, Dianemobius nigrofasciatus. Zoological Sci. 14(6):1015–1018. doi: 10.2108/zsj.14.1015.
  • Song N, Li H, Song F, Cai W. 2016. Molecular phylogeny of Polyneoptera (Insecta) inferred from expanded mitogenomic data. Sci Rep. 6(1):36175. doi: 10.1038/srep36175.
  • Storozhenko SY, Kim T-W, Jeon MJ. 2015. Monograph of Korean Orthoptera. National Institute of Biological Resources: Incheon, Korea. https://www.researchgate.net/publication/316662596_Monograph_of_Korean_Orthoptera.
  • Yang J, Ren Q, Huang Y. 2016. Complete mitochondrial genomes of three crickets (Orthoptera: Gryllidae) and comparative analyses within Ensifera mitogenomes. Zootaxa. 4092(4):529–547. doi: 10.11646/zootaxa.4092.4.4.