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Featured researches published by Akihito Yasuoka.


Mechanisms of Development | 2004

A systematic genome-wide screen for mutations affecting organogenesis in Medaka, Oryzias latipes.

Makoto Furutani-Seiki; Takao Sasado; Chikako Morinaga; Hiroshi Suwa; Katsutoshi Niwa; Hiroki Yoda; Tomonori Deguchi; Yukihiro Hirose; Akihito Yasuoka; Thorsten Henrich; Tomomi Watanabe; Norimasa Iwanami; Daiju Kitagawa; Kota Saito; Masakazu Osakada; Sanae Kunimatsu; Akihiro Momoi; Harun Elmasri; Christoph Winkler; Mirana Ramialison; Felix Loosli; Rebecca Quiring; Matthias Carl; Clemens Grabher; Sylke Winkler; Filippo Del Bene; Ai Shinomiya; Yasuko Kota; Toshiyuki Yamanaka; Yasuko Okamoto

A large-scale mutagenesis screen was performed in Medaka to identify genes acting in diverse developmental processes. Mutations were identified in homozygous F3 progeny derived from ENU-treated founder males. In addition to the morphological inspection of live embryos, other approaches were used to detect abnormalities in organogenesis and in specific cellular processes, including germ cell migration, nerve tract formation, sensory organ differentiation and DNA repair. Among 2031 embryonic lethal mutations identified, 312 causing defects in organogenesis were selected for further analyses. From these, 126 mutations were characterized genetically and assigned to 105 genes. The similarity of the development of Medaka and zebrafish facilitated the comparison of mutant phenotypes, which indicated that many mutations in Medaka cause unique phenotypes so far unrecorded in zebrafish. Even when mutations of the two fish species cause a similar phenotype such as one-eyed-pinhead or parachute, more genes were found in Medaka than in zebrafish that produced the same phenotype when mutated. These observations suggest that many Medaka mutants represent new genes and, therefore, are important complements to the collection of zebrafish mutants that have proven so valuable for exploring genomic function in development.


Mechanisms of Development | 2005

Two families of candidate taste receptors in fishes.

Yoshiro Ishimaru; Shinji Okada; Hiroko Naito; Toshitada Nagai; Akihito Yasuoka; Ichiro Matsumoto; Keiko Abe

Vertebrates receive tastants, such as sugars, amino acids, and nucleotides, via taste bud cells in epithelial tissues. In mammals, two families of G protein-coupled receptors for tastants are expressed in taste bud cells-T1Rs for sweet tastants and umami tastants (l-amino acids) and T2Rs for bitter tastants. Here, we report two families of candidate taste receptors in fish species, fish T1Rs and T2Rs, which show significant identity to mammalian T1Rs and T2Rs, respectively. Fish T1Rs consist of three types: fish T1R1 and T1R3 that show the highest degrees of identity to mammalian T1R1 and T1R3, respectively, and fish T1R2 that shows almost equivalent identity to both mammalian T1R1 and T1R2. Unlike mammalian T1R2, fish T1R2 consists of two or three members in each species. We also identified two fish T2Rs that show low degrees of identity to mammalian T2Rs. In situ hybridization experiments revealed that fish T1R and T2R genes were expressed specifically in taste bud cells, but not in olfactory receptor cells. Fish T1R1 and T1R2 genes were expressed in different subsets of taste bud cells, and fish T1R3 gene was co-expressed with either fish T1R1 or T1R2 gene as in the case of mammals. There were also a significant number of cells expressing fish T1R2 genes only. Fish T2R genes were expressed in different cells from those expressing fish T1R genes. These results suggest that vertebrates commonly have two kinds of taste signaling pathways that are defined by the types of taste receptors expressed in taste receptor cells.


Molecular and Cellular Neuroscience | 2008

Genetic tracing of the gustatory and trigeminal neural pathways originating from T1R3-expressing taste receptor cells and solitary chemoreceptor cells

Makoto Ohmoto; Ichiro Matsumoto; Akihito Yasuoka; Yoshihiro Yoshihara; Keiko Abe

We established transgenic mouse lines expressing a transneuronal tracer, wheat germ agglutinin (WGA), under the control of mouse T1R3 gene promoter/enhancer. In the taste buds, WGA transgene was faithfully expressed in T1R3-positive sweet/umami taste receptor cells. WGA protein was transferred not laterally to the synapse-bearing, sour-responsive type III cells in the taste buds but directly to a subset of neurons in the geniculate and nodose/petrosal ganglia, and further conveyed to a rostro-central region of the nucleus of solitary tract. In addition, WGA was expressed in solitary chemoreceptor cells in the nasal epithelium and transferred along the trigeminal sensory pathway to the brainstem neurons. The solitary chemoreceptor cells endogenously expressed T1R3 together with bitter taste receptors T2Rs. This result shows an exceptional signature of receptor expression. Thus, the t1r3-WGA transgenic mice revealed the sweet/umami gustatory pathways from taste receptor cells and the trigeminal neural pathway from solitary chemoreceptor cells.


Mechanisms of Development | 2004

Mutations affecting liver development and function in Medaka, Oryzias latipes, screened by multiple criteria

Tomomi Watanabe; Daiju Kitagawa; Kota Saito; Ryumei Kurashige; Takao Sasado; Chikako Morinaga; Hiroshi Suwa; Katsutoshi Niwa; Thorsten Henrich; Yukihiro Hirose; Akihito Yasuoka; Hiroki Yoda; Tomonori Deguchi; Norimasa Iwanami; Sanae Kunimatsu; Masakazu Osakada; Felix Loosli; Rebecca Quiring; Matthias Carl; Clemens Grabher; Sylke Winkler; Filippo Del Bene; Joachim Wittbrodt; Keiko Abe; Yousuke Takahama; Katsuhito Takahashi; Toshiaki Katada; Hiroshi Nishina; Hisato Kondoh; Makoto Furutani-Seiki

We report here mutations affecting various aspects of liver development and function identified by multiple assays in a systematic mutagenesis screen in Medaka. The 22 identified recessive mutations assigned to 19 complementation groups fell into five phenotypic groups. Group 1, showing defective liver morphogenesis, comprises mutations in four genes, which may be involved in the regulation of growth or patterning of the gut endoderm. Group 2 comprises mutations in three genes that affect the laterality of the liver; in kendama mutants of this group, the laterality of the heart and liver is uncoupled and randomized. Group 3 includes mutations in three genes altering bile color, indicative of defects in hemoglobin-bilirubin metabolism and globin synthesis. Group 4 consists of mutations in three genes, characterized by a decrease in the accumulation of fluorescent metabolite of a phospholipase A(2) substrate, PED6, in the gall bladder. Lipid metabolism or the transport of lipid metabolites may be affected by these mutations. Mutations in Groups 3 and 4 may provide animal models for relevant human diseases. Group 5 mutations in six genes affect the formation of endoderm, endodermal rods and hepatic bud from which the liver develops. These Medaka mutations, identified by morphological and metabolite marker screens, should provide clues to understanding molecular mechanisms underlying formation of a functional liver.


Mechanisms of Development | 2004

Mutations affecting the formation of posterior lateral line system in Medaka, Oryzias latipes

Akihito Yasuoka; Yukihiro Hirose; Hiroki Yoda; Yoshiko Aihara; Hiroshi Suwa; Katsutoshi Niwa; Takao Sasado; Chikako Morinaga; Tomonori Deguchi; Thorsten Henrich; Norimasa Iwanami; Sanae Kunimatsu; Keiko Abe; Hisato Kondoh; Makoto Furutani-Seiki

We performed a systematic screen for mutations affecting the trajectory of axons visualized by immunohistochemical staining of Medaka embryos with anti-acetylated tubulin antibody. Among the mutations identified, yanagi (yan) and kazura (kaz) mutations caused specific defects in projection of the posterior lateral line (PLL) nerve. In yan and kaz mutant embryos, the PLL nerve main bundle was misrouted ventrally and dorsally or anteriorly. Medaka semaphorin3A, sdf1, and cxcr4 cDNA fragments were cloned to allow analysis of these mutants. There were no changes in semaphorin3A or sdf1 expression in mutant embryos, suggesting that the tissues expressing semaphorin3A or sdf1 that are involved in PLL nerve guidance are present in these mutant embryos. Double staining revealed that the mislocated PLL primordium and growth cone of the ectopically projected PLL nerve were always colocalized in both yan and kaz mutant embryos, suggesting that migration of PLL primordia and PLL nerve growth cones are not uncoupled in these mutants. Although homozygous yan larvae showed incomplete migration of the PLL primordium along the anteroposterior axis, ventral proneuromast migration was complete, suggesting that ventral migration of the proneuromast does not require the signaling affected in yan mutants. In addition to the PLL system, the distribution of primordial germ cells (PGCs) was also affected in both yan and kaz mutant embryos, indicating that yan and kaz genes are required for the migration of both PLL primordia and PGCs. Genetic linkage analysis indicated that kaz is linked to cxcr4, but yan is not linked to sdf1 or cxcr4. These mutations will provide genetic clues to investigate the molecular mechanism underlying formation of the PLL system.


Mechanisms of Development | 2004

Mutations affecting gonadal development in Medaka, Oryzias latipes

Chikako Morinaga; Takeshi Tomonaga; Takao Sasado; Hiroshi Suwa; Katsutoshi Niwa; Akihito Yasuoka; Thorsten Henrich; Tomomi Watanabe; Tomonori Deguchi; Hiroki Yoda; Yukihiro Hirose; Norimasa Iwanami; Sanae Kunimatsu; Yasuko Okamoto; Toshiyuki Yamanaka; Ai Shinomiya; Minoru Tanaka; Hisato Kondoh; Makoto Furutani-Seiki

A gonad is formed from germ cells and somatic mesodermal cells through their interactions. Its development is coupled with the determination and differentiation of the sex and sex-associated traits. We carried out a large-scale screening of Medaka mutants in which gonadal development is affected. Screening was performed on larvae at 8 days posthatching for abnormal abundance and/or distribution of germ cells detected by the in situ hybridization for olvas (Medaka vasa). We describe here 16 mutants of 13 genes, which are classified into four groups. Group 1, consisting of four mutants of three genes kon, tot) characterised by an increase in germ cell number. An adult tot homozygote fish has the characteristic feature of possessing hypertrophic gonads filled with immature oocytes. Group 2, represented by a single gene (zen) mutant characterized by a gradual loss of germ cells. Group 3, consisting of four mutants of distinct genes (eko, eki, sht, ano) showing irregular clustering of germ cells. Group 4, consisting of seven mutants of five genes (arr, hyo, mzr, hdr, fbk) showing fragmented clusters of germ cells. In some mutants belonging to Groups 1, 3 and 4, the expression level of ftz-f1 (sf-1/Ad4BP) in gonadal somatic cells significantly decreased, suggesting that interaction between somatic and germ cells is affected.


Mechanisms of Development | 2004

Mutations affecting thymus organogenesis in Medaka, Oryzias latipes

Norimasa Iwanami; Yousuke Takahama; Sanae Kunimatsu; Jie Li; Rie Takei; Yuko Ishikura; Hiroshi Suwa; Katsutoshi Niwa; Takao Sasado; Chikako Morinaga; Akihito Yasuoka; Tomonori Deguchi; Yukihiro Hirose; Hiroki Yoda; Thorsten Henrich; Osamu Ohara; Hisato Kondoh; Makoto Furutani-Seiki

The thymus is an organ for T lymphocyte maturation and is indispensable for the establishment of a highly developed immune system in vertebrates. In order to genetically dissect thymus organogenesis, we carried out a large-scale mutagenesis screening for Medaka mutations affecting recombination activating gene 1 (rag1) expression in the developing thymus. We identified 24 mutations, defining at least 13 genes, which led to a marked reduction of rag1 expression in the thymus. As thymus development depends on pharyngeal arches, we classified those mutations into three classes according to the defects in the pharyngeal arches. Class 1 mutants had no or slight morphological abnormalities in the pharyngeal arches, implying that the mutations may include defects in such thymus-specific events as lymphocyte development and thymic epithelial cell maturation. Class 2 mutants had abnormally shaped pharyngeal arches. Class 3 mutants showed severely attenuated pharyngeal arch development. In Class 2 and Class 3 mutants, the defects in thymus development may be due to abnormal pharyngeal arch development. Those mutations are expected to be useful for identifying the molecular mechanisms underlying thymus organogenesis.


Journal of Agricultural and Food Chemistry | 2010

Dietary Flavonoids Activate the Constitutive Androstane Receptor (CAR)

Ruiquing Yao; Akihito Yasuoka; Asuka Kamei; Yoshinori Kitagawa; Norifumi Tateishi; Nobuo Tsuruoka; Yoshionobu Kiso; Tatsuya Sueyoshi; Masahiko Negishi; Takumi Misaka; Keiko Abe

The constitutive androstane receptor (CAR) is known as a xeno-sensor that regulates genes involved in xenobiotic excretion and energy metabolism. This study tested a variety of polyphenols for their ability to modulate CAR activity. HepG2 cells were transfected with a CAR expression plasmid and a reporter plasmid containing the human CYP2B6 regulatory region and then treated with flavonoids, catechins, and other bioactive polyphenols. Luciferase assays revealed that baicalein (5,6,7-OH flavone) was a potent activator of both human and mouse CAR. Catechin gallates also activated human and mouse CAR. Wild-type and CAR knockout mice were treated with baicalein and chrysin (5,7-OH flavone), and their liver mRNA was analyzed by real-time polymerase chain reaction (PCR). A significant increase in cyp2b10 mRNA content was observed only in wild-type mice fed chrysin. These results suggest that dietary flavonoids regulate CAR activity and thereby accelerate both detoxification and energy metabolism.


Mechanisms of Development | 2004

Mutations affecting early distribution of primordial germ cells in Medaka (Oryzias latipes) embryo

Takao Sasado; Chikako Morinaga; Katsutoshi Niwa; Ai Shinomiya; Akihito Yasuoka; Hiroshi Suwa; Yukihiro Hirose; Hiroki Yoda; Thorsten Henrich; Tomonori Deguchi; Norimasa Iwanami; Tomomi Watanabe; Sanae Kunimatsu; Masakazu Osakada; Yasuko Okamoto; Yasuko Kota; Toshiyuki Yamanaka; Minoru Tanaka; Hisato Kondoh; Makoto Furutani-Seiki

The development of germ cells has been intensively studied in Medaka (Oryzias latipes). We have undertaken a large-scale screen to identify mutations affecting the development of primordial germ cells (PGCs) in Medaka. Embryos derived from mutagenized founder fish were screened for an abnormal distribution or number of PGCs at embryonic stage 27 by RNA in situ hybridization for the Medaka vasa homologue (olvas). At this stage, PGCs coalesce into two bilateral vasa-expressing foci in the ventrolateral regions of the trunk after their migration and group organization. Nineteen mutations were identified from a screen corresponding to 450 mutagenized haploid genomes. Eleven of the mutations caused altered PGC distribution. Most of these alterations were associated with morphological abnormalities and could be grouped into four phenotypic classes: Class 1, PGCs dispersed into bilateral lines; Class 2, PGCs dispersed in a region more medial than that in Class 1; Class 3, PGCs scattered laterally and over the yolk sac area; and Class 4, PGCs clustered in a single median focus. Eight mutations caused a decrease in the number of PGCs. This decrease was observed in the offspring of heterozygous mothers, indicating the contribution of a maternal factor in determining PGC abundance. Taken together, these mutations should prove useful in identifying molecular mechanisms underlying the early PGC development and migration.


Mechanisms of Development | 2004

Mutations affecting retina development in Medaka

Felix Loosli; Filippo Del Bene; Rebecca Quiring; Martina Rembold; Juan Ramón Martínez-Morales; Matthias Carl; Clemens Grabher; Caroline Iquel; Annette Krone; Beate Wittbrodt; Sylke Winkler; Takao Sasado; Chikako Morinaga; Hiroshi Suwa; Katsutoshi Niwa; Thorsten Henrich; Tomonori Deguchi; Yukihiro Hirose; Norimasa Iwanami; Sanae Kunimatsu; Masakazu Osakada; Tomomi Watanabe; Akihito Yasuoka; Hiroki Yoda; Christoph Winkler; Harun Elmasri; Hisato Kondoh; Makoto Furutani-Seiki; Joachim Wittbrodt

In a large scale mutagenesis screen of Medaka we identified 60 recessive zygotic mutations that affect retina development. Based on the onset and type of phenotypic abnormalities, the mutants were grouped into five categories: the first includes 11 mutants that are affected in neural plate and optic vesicle formation. The second group comprises 15 mutants that are impaired in optic vesicle growth. The third group includes 18 mutants that are affected in optic cup development. The fourth group contains 13 mutants with defects in retinal differentiation. 12 of these have smaller eyes, whereas one mutation results in enlarged eyes. The fifth group consists of three mutants with defects in retinal pigmentation. The collection of mutants will be used to address the molecular genetic mechanisms underlying vertebrate eye formation.

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Thorsten Henrich

European Bioinformatics Institute

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