8 resultados para neuromasts
Resumo:
Elasmobranchs have hundreds of tiny sensory organs, called pit organs, scattered over the skin surface. The pit organs were noted in many early studies of the lateral line, but their exact nature has long remained a mystery. Although pit organs were known to be innervated by the lateral line nerves, and light micrographs suggested that they were free neuromasts, speculation that they may be external taste buds or chemoreceptors has persisted until recently Electron micrographs have now revealed that the pit organs are indeed free neuromasts. Their functional and behavioural role(s), however, are yet to be investigated.
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Examination of the lateral line canals in the Epaulette Shark reveals a much more differentiated sensory system than previously reported from any elasmobranch. Two main types of lateral line canals are found. In one type rounded patches of sensory epithelia are separated by elevations of the canal floor. The other type is a straight canal without restrictions and with an almost continuous sensory epithelium. In addition, we found epithelia (type A) with very long apical microvilli on the supporting cells. These microvilli reach beyond the stereovilli of the hair cells. Another type (B) of sensory epithelium has short microvilli on the supporting cells. In this latter type of epithelium the stereovilli of the hair cells are comparatively tall and reach out beyond the supporting cell microvilli. New hair cells are found widely in both types of sensory epithelia. These always occur as single cells, unlike those described in teleost lateral line canal sensory epithelia where new hair cells seem to form in pairs. Dying hair cells are also widespread, indicating a continuous turnover of hair cells.
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La neuropathie humaine sensitive et autonome de type 2 (NHSA 2) est une pathologie héréditaire rare caractérisée par une apparition précoce des symptômes et une absence d’affectation motrice. Cette pathologie entraîne la perte de perception de la douleur, de la chaleur et du froid ainsi que de la pression (toucher) dans les membres supérieurs et inférieurs et est due à des mutations autosomales récessives confinées à l’exon HSN2 de la protéine kinase à sérine/thréonine WNK1 (with-no-lysine protein kinase 1). Cet exon spécifique permettrait de conférer une spécificité au système nerveux à l’isoforme protéique WNK1/HSN2. La kinase WNK1 est étudiée en détails, en particulier au niveau du rein, mais son rôle au sein du système nerveux demeure inconnu. Considérant le début précoce de la neuropathie et le manque d’innervation sensorielle révélé par des biopsies chez les patients NHSA2, notre hypothèse de recherche est que les mutations tronquantes menant à la NHSA de type 2 causent une perte de fonction de l’isoforme WNK1/HSN2 spécifique au système nerveux entraînant un défaut dans le développement du système nerveux sensoriel périphérique. Chez l’embryon du poisson zèbre, WNK1/HSN2 est exprimé au niveau des neuromastes de la ligne latérale postérieure, un système mécanosensoriel périphérique. Nous avons obtenu des embryons knockdown pour WNK1/HSN2 par usage d’oligonucléotides morpholino antisens (AMO). Nos trois approches AMO ont révélé des embryons présentant des défauts d’établissement au niveau de la ligne latérale postérieure. Afin de déterminer la voie pathogène impliquant l’isoforme WNK1/HSN2, nous nous sommes intéressés à l’interaction rapportée entre la kinase WNK1 et le co-transporteur neuronal KCC2. Ce dernier est une cible de phosphorylation de WNK1 et son rôle dans la promotion de la neurogenèse est bien connu. Nous avons détecté l’expression de KCC2 au niveau de neuromastes de la ligne latérale postérieure et observé une expression accrue de KCC2 chez les embryons knockdown pour WNK1/HSN2 à l’aide de RT-PCR semi-quantitative. De plus, une sur-expression d’ARN humain de KCC2 chez des embryons a produit des défauts dans la ligne latérale postérieure, phénocopiant le knockdown de WNK1/HSN2. Ces résultats furent validés par un double knockdown, produisant des embryons n’exprimant ni KCC2, ni WNK1/HSN2, dont le phénotype fut atténué. Ces résultats nous mènent à suggérer une voie de signalisation où WNK1/HSN2 est en amont de KCC2, régulant son activation, et possiblement son expression. Nous proposons donc que la perte de fonction de l’isoforme spécifique cause un débalancement dans les niveaux de KCC2 activée, menant à une prolifération et une différenciation réduites des progéniteurs neuronaux du système nerveux périphérique. Les défauts associés à la NHSA de type 2 seraient donc de nature développementale et non neurodégénérative.
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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)
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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)
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Uma espécie nova de Ituglanis é descrita da bacia do rio Tocantins, Pará, Brasil. Ituglanis ina, espécie nova, é facilmente diferenciada das congêneres por apresentar uma barra vertical escura sobre a base dos raios da nadadeira caudal (vs. sem barras na base da nadadeira caudal); e por apresentar linha lateral seguida por uma linha de diminutos neuromastos até a região do flanco, abaixo da nadadeira dorsal, ou até o pedúnculo caudal (vs. sem neuromastos após a linha lateral). Ituglanis ina distingue-se, também, por uma combinação de caracteres relacionados ao padrão de coloração e morfologia. Comentários sobre o relacionamento das espécies e grupos de espécies de Ituglanis são apresentados.
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Estrogens are known to play a role in both reproductive and non-reproductive functions in mammals. Estrogens and their receptors are involved in the development of the central nervous system (brain development, neuronal survival and differentiation) as well as in the development of the peripheral nervous system (sensory-motor behaviors). In order to decipher possible functions of estrogens in early development of the zebrafish sensory system, we investigated the role of estrogen receptor beta(2) (ERbeta(2)) by using a morpholino (MO) approach blocking erbeta(2) RNA translation. We further investigated the development of lateral line organs by cell-specific labeling, which revealed a disrupted development of neuromasts in morphants. The supporting cells developed and migrated normally. Sensory hair cells, however, were absent in morphants' neuromasts. Microarray analysis and subsequent in situ hybridizations indicated an aberrant activation of the Notch signaling pathway in ERbeta(2) morphants. We conclude that signaling via ERbeta(2) is essential for hair cell development and may involve an interaction with the Notch signaling pathway during cell fate decision in the neuromast maturation process.
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Aquatic toxicology is facing the challenge to assess the impact of complex mixtures of compounds on diverse biological endpoints. So far, ecotoxicology focuses mainly on apical endpoints such as growth, lethality and reproduction, but does not consider sublethal toxic effects that may indirectly cause ecological effects. One such sublethal effect is toxicant-induced impairment of neurosensory functions which will affect important behavioural traits of exposed organisms. Here, we critically review the mechanosensory lateral line (LL) system of zebrafish as a model to screen for chemical effects on neurosensory function of fish in particular and vertebrates in general. The LL system consists of so-called neuromasts, composed of centrally located sensory hair cells, and surrounding supporting cells. The function of neuromasts is the detection of water movements that is essential for the fish's ability to detect prey, to escape predator, to socially interact or to show rheotactic behaviour. Recent advances in the study of these organs provided researchers with a broad area of molecular tools for easy and rapid detection of neuromasts dysfunction and/or disturbed development. Further, genes involved in neuromasts differentiation have been identified using auditory/mechanosensory mutants and morphants. A number of environmental toxicants including metals and pharmaceuticals have been shown to affect neuromasts development and/or function. The use of the LL organ for toxicological studies offers the advantage to integrate the available profound knowledge on developmental biology of the neuromasts with the study of chemical toxicity. This combination may provide a powerful tool in environmental risk assessment.