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Umatani, C.

Publications and source records attributed to Umatani, C..

2 recordsLinked to original sources

In vitro and in vivo gene introduction in the cloudy catshark (Scyliorhinus torazame), a cartilaginous fish

Cartilaginous fishes have various unique physiological features such as cartilaginous skeletons and a urea-based osmoregulation strategy for adaptation to their marine environment. Also, because they are considered a sister group of bony vertebrates, understanding their unique features is important from an evolutionary perspective. However, experimental approaches are limited in cartilaginous fishes. Particularly, genetic engineering, which can analyze gene functions as well as cellular behavior, has not been effectively utilized in cartilaginous fishes. This is partly because their reproductive strategy involves internal fertilization, which results in difficulty in microinjection into fertilized eggs at the early developmental stage. Trials of gene transfer have also been limited both in in vitro cultured cells and in vivo. Here, to identify efficient gene transfer methods in cartilaginous fishes, we examined the effects of various methods both in vitro and in vivo using the cloudy catshark, a candidate model cartilaginous fish species. In all methods, green fluorescent protein (GFP) expression was used to evaluate exogenous gene introduction. First, we established a primary cell culture containing fibroblast-like and epithelial-like cells from cloudy catshark embryos. Using these primary cultured cells, we attempted gene transfection by lipofection, polyethylenimine (PEI), adenovirus, baculovirus and electroporation. Among the methods tested, lipofection, electroporation and baculovirus infection enabled the successful introduction of exogenous genes into primary cultured cells, allowing us to study physiological mechanisms at a single-cell level in culture conditions close to those in a living cartilaginous fish. We also attempted in vivo transfection into cloudy catshark embryos by electroporation and baculovirus infection. Although baculovirus-injected groups did not show GFP fluorescence, electroporation successfully introduced GFP into various tissues including muscle cells. Furthermore, we succeeded in GFP introduction into adult testis by electroporation. The in vitro and in vivo gene introduction methods that worked in this study may identify paths for future genetic manipulation including knockout experiments and cellular linage analysis in cartilaginous fishes.

molecular biology↗

Balanced release of neuropeptide FF and gonadotropin-releasing hormone 3 modulates male sexual behavior

Animals properly perform sexual behaviors by using multiple sensory cues. However, neural mechanisms integrating multiple sensory cues and regulating motivation for sexual behaviors remain unclear. Here, we focused on peptidergic neurons, terminal nerve gonadotropin-releasing hormone (TN-GnRH) neurons, which receive inputs from various sensory systems and co-express neuropeptide FF (NPFF) in addition to GnRH. Our behavioral analyses using knockout medaka of GnRH (gnrh3) and/or NPFF (npff) demonstrated that some sexual behavioral repertories were delayed, not disrupted, in gnrh3-/- and npff-/- males, while the double knockout showed normal behaviors. We also found anatomical evidence to show that both neuropeptides modulate the sexual behavior-controlling brain areas. Furthermore, we demonstrated that NPFF activates neurons in the preoptic area via indirect pathway, which is considered to induce the increase in the motivation for male sexual behaviors. Considering these results, we propose a novel mechanism by which balanced release of co-existing peptides is important for the neuromodulatory function of TN-GnRH neurons in the control of behavioral motivation. Our results may go a long way toward understanding the functional significance of peptidergic neuromodulation in response to external environments.

neuroscience↗