Faculty of International Social Sciences

Hiroki Takai

  (高井 嘉樹)

Profile Information

Affiliation
Assistant Professor, Department of Life Science, Faculty of Science , Gakushuin University

Researcher number
60898211
J-GLOBAL ID
202501010140321697
researchmap Member ID
R000095037

Papers

 4
  • Yayun Wang, Minoru Moriyama, Ryuichi Koga, Kohei Oguchi, Takahiro Hosokawa, Hiroki Takai, Shuji Shigenobu, Naruo Nikoh, Takema Fukatsu
    Nature Microbiology, Feb 27, 2026  
  • Ryuichi Koga, Minoru Moriyama, Naoko Onodera-Tanifuji, Yoshiko Ishii, Hiroki Takai, Masaki Mizutani, Kohei Oguchi, Reiko Okura, Shingo Suzuki, Yasuhiro Gotoh, Tetsuya Hayashi, Masahide Seki, Yutaka Suzuki, Yudai Nishide, Takahiro Hosokawa, Yuichi Wakamoto, Chikara Furusawa, Takema Fukatsu
    Nature Microbiology, 7(8) 1141-1150, Aug 4, 2022  
    Abstract Microorganisms often live in symbiosis with their hosts, and some are considered mutualists, where all species involved benefit from the interaction. How free-living microorganisms have evolved to become mutualists is unclear. Here we report an experimental system in which non-symbiotic Escherichia coli evolves into an insect mutualist. The stinkbug Plautia stali is typically associated with its essential gut symbiont, Pantoea sp., which colonizes a specialized symbiotic organ. When sterilized newborn nymphs were infected with E. coli rather than Pantoea sp., only a few insects survived, in which E. coli exhibited specific localization to the symbiotic organ and vertical transmission to the offspring. Through transgenerational maintenance with P. stali, several hypermutating E. coli lines independently evolved to support the host’s high adult emergence and improved body colour; these were called ‘mutualistic’ E. coli. These mutants exhibited slower bacterial growth, smaller size, loss of flagellar motility and lack of an extracellular matrix. Transcriptomic and genomic analyses of ‘mutualistic’ E. coli lines revealed independent mutations that disrupted the carbon catabolite repression global transcriptional regulator system. Each mutation reproduced the mutualistic phenotypes when introduced into wild-type E. coli, confirming that single carbon catabolite repression mutations can make E. coli an insect mutualist. These findings provide an experimental system for future work on host–microbe symbioses and may explain why microbial mutualisms are omnipresent in nature.
  • Hiroki Takai, Rika Ozawa, Junji Takabayashi, Saki Fujii, Kiriko Arai, Ryoko T. Ichiki, Takao Koeduka, Hideo Dohra, Toshiyuki Ohnishi, Sakura Taketazu, Jun Kobayashi, Yooichi Kainoh, Satoshi Nakamura, Takeshi Fujii, Yukio Ishikawa, Takashi Kiuchi, Susumu Katsuma, Masayoshi Uefune, Toru Shimada, Kenji Matsui
    Scientific Reports, 8(1), Aug 9, 2018  
    Abstract In response to herbivory, plants emit a blend of volatile organic compounds that includes green leaf volatiles (GLVs) and terpenoids. These volatiles are known to attract natural enemies of herbivores and are therefore considered to function as an indirect defense. Selection should favor herbivores that are able to suppress these volatile emissions, and thereby make themselves less conspicuous to natural enemies. We tested this possibility for silkworms, which were observed to leave secretions from their spinnerets while feeding on mulberry leaves. When we ablated the spinnerets of silkworms, no secretions were observed. Leaves infested by intact silkworms released smaller amounts of GLVs than leaves infested by ablated silkworms, indicating that the spinneret secretion suppressed GLV production. This difference in GLV emissions was also reflected in the behavioral response of Zenillia dolosa (Tachinidae), a parasitoid fly of silkworms. The flies laid fewer eggs when exposed to the volatiles from intact silkworm-infested leaves than when exposed to the volatiles from ablated silkworm-infested leaves. We identified a novel enzyme in the secretion from the spinneret that is responsible for the GLV suppression. The enzyme converted 13(S)-hydroperoxy-(9Z,11E,15Z)-octadecatrienoic acid, an intermediate in the biosynthetic pathway of GLVs, into its keto-derivative in a stereospecific manner. Taken together, this study shows that silkworms are able to feed on mulberry in a stealthy manner by suppressing GLV production with an enzyme in secretions of their spinnerets, which might be a countermeasure against induced indirect defense by mulberry plants.
  • Hiroki Takai, Kiyoshi Asaoka, Fumiko Ishizuna, Takashi Kiuchi, Susumu Katsuma, Toru Shimada
    Arthropod Structure & Development, 47(3) 238-247, May, 2018  

Research Projects

 2