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Yasuji Oshima

Yasuji Oshima

D-Index & Metrics

Genetics

D-Index
54
Citations
8570
World Ranking
3666
National Ranking
161

Overview

Yasuji Oshima is a researcher affiliated with Osaka University in Japan, with a focus primarily on Environmental Science. Their scholarly work spans several interconnected subfields, including Ecology, Sensory Systems, Social Psychology, and Oceanography.

The scientific contributions of Oshima are reflected in publications within specialized research venues. These include:

  • Animals
  • Zoo Biology

Their research topics encompass multiple areas related to marine life and sensory perception. Main topics covered in their work are:

  • Marine animal studies overview
  • Olfactory and Sensory Function Studies
  • Color perception and design
  • Underwater Acoustics Research

Oshima has co-authored papers with several researchers, frequently collaborating with:

  • Koji Kanda
  • Ayumu Santa
  • Yohei Fukumoto
  • Tomoya Kako
  • Momoko Miyajima

Among Oshima's recent scientific papers are two contributions published in 2025. The first paper, authored by Ayumu Santa, is titled Luminance Contrast Perception in Killer Whales (Orcinus orca) and appeared in the journal Animals. The second, where Oshima is the lead author, is Increasing Intermammary Distance During Estrus in Bottlenose Dolphins (Tursiops truncatus), published in Zoo Biology.

These publications illustrate Oshima's engagement with physiological and sensory research related to marine mammals. Their work on bottlenose dolphins investigates behavioral and anatomical changes associated with reproductive phases, while their involvement in studies on killer whales addresses aspects of visual perception under aquatic conditions.

Best Publications

  • The PHO84 gene of Saccharomyces cerevisiae encodes an inorganic phosphate transporter.

    M Bun-Ya;M Nishimura;S Harashima;Y Oshima

  • Isolation and characterization of yeast mutants deficient in adenylate cyclase and cAMP-dependent protein kinase.

    Kunihiro Matsumoto;Isao Uno;Yasuji Oshima;Tatsuo Ishikawa

  • MKK1 and MKK2, which encode Saccharomyces cerevisiae mitogen-activated protein kinase-kinase homologs, function in the pathway mediated by protein kinase C.

    K Irie;M Takase;K S Lee;D E Levin

  • Isolation and characterization of acid phosphatase mutants in Saccharomyces cerevisiae.

    Akio Toh-e;Yoshinami Ueda;Sei-Ichiro Kakimoto;Yasuji Oshima

  • Crystal structure of PHO4 bHLH domain-DNA complex: flanking base recognition.

    Toshiyuki Shimizu;Atsuki Toumoto;Kentaro Ihara;Masato Shimizu

  • Two new genes, PHO86 and PHO87, involved in inorganic phosphate uptake in Saccharomyces cerevisiae

    Masanori Bun-ya;Koh Shikata;Shinji Nakade;Chulee Yompakdee

  • Molecular and functional organization of yeast plasmid pSR1

    Hiroyuki Araki;Amornrat Jearnpipatkul;Hiroki Tatsumi;Tohru Sakurai

  • Operation of an efficient site-specific recombination system of Zygosaccharomyces rouxii in tobacco cells.

    Hitoshi Onouchi;Kumi Yokoi;Chiyoko Machida;Hiroaki Matsuzaki

  • Regulation of phosphatase synthesis in Saccharomyces cerevisiae — a review ☆

    Yasuji Oshima;Nobuo Ogawa;Satoshi Harashima

  • Genes in PHT plasmid encoding the initial degradation pathway of phthalate in Pseudomonas putida

    Yasutoshi Nomura;Mariko Nakagawa;Nobuo Ogawa;Satoshi Harashima

  • Chromosome engineering in Saccharomyces cerevisiae by using a site-specific recombination system of a yeast plasmid.

    H Matsuzaki;R Nakajima;J Nishiyama;H Araki

  • Deoxyribonucleic Acid Homology and Taxonomy of the Genus Bacillus

    Tatsuji Seki;Chi-Kwan Chung;Hidetada Mikami;Yasuji Oshima

  • Functional domains of a positive regulatory protein, PHO4, for transcriptional control of the phosphatase regulon in Saccharomyces cerevisiae.

    N Ogawa;Y Oshima

  • Function of the PHO regulatory genes for repressible acid phosphatase synthesis in Saccharomyces cerevisiae.

    Kazuva Yoshida;Nobuo Ogawa;Yasuji Oshima

  • Putative GTP-binding protein, Gtr1, associated with the function of the Pho84 inorganic phosphate transporter in Saccharomyces cerevisiae.

    Masanori Bun-Ya;Satoshi Harashima;Yasuji Oshima

  • Interaction of super-repressible and dominant constitutive mutations for the synthesis of galactose pathway enzymes in Saccharomyces cerevisiae.

    Y. Nogi;K. Matsumoto;A. Toh-e;Y. Oshima

  • Functional domains of Pho81p, an inhibitor of Pho85p protein kinase, in the transduction pathway of Pi signals in Saccharomyces cerevisiae.

    N. Ogawa;K.-I. Noguchi;H. Sawai;Y. Yamashita

  • Characterization of a Dominant, Constitutive Mutation, PHOO, for the Repressible Acid Phosphatase Synthesis in Saccharomyces cerevisiae

    Akio Toh-E;Yasuji Oshima

  • AAR1/TUP1 protein, with a structure similar to that of the beta subunit of G proteins, is required for a1-alpha 2 and alpha 2 repression in cell type control of Saccharomyces cerevisiae.

    Y Mukai;S Harashima;Y Oshima

  • Structural characteristics of the PHO8 gene encoding repressible alkaline phosphatase in Saccharomyces cerevisiae

    Kaneko Y;Hayashi N;Toh-e A;Banno I

Frequent Co-Authors

Satoshi Harashima
Satoshi Harashima Sojo University
Hiroyuki Araki
Hiroyuki Araki National Institute of Genetics
Kenji Irie
Kenji Irie University of Tsukuba
Makkuni Jayaram
Makkuni Jayaram The University of Texas at Austin
Pramod K. Srivastava
Pramod K. Srivastava University of Connecticut
Akio Toh-e
Akio Toh-e Chiba University
Yoshimasa Kyogoku
Yoshimasa Kyogoku Osaka University
Kiyoji Tanaka
Kiyoji Tanaka University of Tsukuba
Toshio Hakoshima
Toshio Hakoshima Nara Institute of Science and Technology
Kenzo Nakamura
Kenzo Nakamura Nagoya University

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