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dc.contributor.authorKaito, Chikara
dc.contributor.authorMiyata, Makoto
dc.contributor.authorRobinson, Robert C.
dc.contributor.authorUyeda, Taro Q. P.
dc.contributor.authorFukumori, Yoshihiro
dc.contributor.authorFukushima, Shun-ichi
dc.contributor.authorHaruta, Shin
dc.contributor.authorHomma, Michio
dc.contributor.authorInaba, Kazuo
dc.contributor.authorIto, Masahiro
dc.contributor.authorKato, Kentaro
dc.contributor.authorKenri, Tsuyoshi
dc.contributor.authorKinosita, Yoshiaki
dc.contributor.authorKojima, Seiji
dc.contributor.authorMinamino, Tohru
dc.contributor.authorMori, Hiroyuki
dc.contributor.authorNakamura, Shuichi
dc.contributor.authorNakane, Daisuke
dc.contributor.authorWakabayashi, Ken-ichi
dc.contributor.authorTulum, Isil
dc.contributor.authorNakayama, Koji
dc.contributor.authorNishiyama, Masayoshi
dc.contributor.authorShibata, Satoshi
dc.contributor.authorShimabukuro, Katsuya
dc.contributor.authorTamakoshi, Masatada
dc.contributor.authorTaoka, Azuma
dc.contributor.authorTashiro, Yosuke
dc.contributor.authorWada, Hirofumi
dc.date.accessioned2021-03-06T10:22:03Z
dc.date.available2021-03-06T10:22:03Z
dc.date.issued2020
dc.identifier.citationMiyata M., Robinson R. C. , Uyeda T. Q. P. , Fukumori Y., Fukushima S., Haruta S., Homma M., Inaba K., Ito M., Kaito C., et al., "Tree of motility - A proposed history of motility systems in the tree of life", GENES TO CELLS, cilt.25, ss.6-21, 2020
dc.identifier.issn1356-9597
dc.identifier.otherav_e9fc8e30-7d0e-4444-93c1-5f92d90a6342
dc.identifier.othervv_1032021
dc.identifier.urihttp://hdl.handle.net/20.500.12627/153710
dc.identifier.urihttps://doi.org/10.1111/gtc.12737
dc.description.abstractMotility often plays a decisive role in the survival of species. Five systems of motility have been studied in depth: those propelled by bacterial flagella, eukaryotic actin polymerization and the eukaryotic motor proteins myosin, kinesin and dynein. However, many organisms exhibit surprisingly diverse motilities, and advances in genomics, molecular biology and imaging have showed that those motilities have inherently independent mechanisms. This makes defining the breadth of motility nontrivial, because novel motilities may be driven by unknown mechanisms. Here, we classify the known motilities based on the unique classes of movement-producing protein architectures. Based on this criterion, the current total of independent motility systems stands at 18 types. In this perspective, we discuss these modes of motility relative to the latest phylogenetic Tree of Life and propose a history of motility. During the ~4 billion years since the emergence of life, motility arose in Bacteria with flagella and pili, and in Archaea with archaella. Newer modes of motility became possible in Eukarya with changes to the cell envelope. Presence or absence of a peptidoglycan layer, the acquisition of robust membrane dynamics, the enlargement of cells and environmental opportunities likely provided the context for the (co)evolution of novel types of motility.
dc.language.isoeng
dc.subjectGENETİK VE HAYAT
dc.subjectTıp
dc.subjectSağlık Bilimleri
dc.subjectTemel Tıp Bilimleri
dc.subjectHistoloji-Embriyoloji
dc.subjectDahili Tıp Bilimleri
dc.subjectTıbbi Genetik
dc.subjectYaşam Bilimleri
dc.subjectMoleküler Biyoloji ve Genetik
dc.subjectTemel Bilimler
dc.subjectHÜCRE BİYOLOJİSİ
dc.subjectMoleküler Biyoloji ve Genetik
dc.subjectYaşam Bilimleri (LIFE)
dc.titleTree of motility - A proposed history of motility systems in the tree of life
dc.typeMakale
dc.relation.journalGENES TO CELLS
dc.contributor.departmentOsaka City University , ,
dc.identifier.volume25
dc.identifier.issue1
dc.identifier.startpage6
dc.identifier.endpage21
dc.contributor.firstauthorID272920


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