4 resultados para Gadiformes


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Spermiogenesis and the ultrastructure of the spermatozoon of the bothriocephalidean cestode Clestobothrium crassiceps (Rudolphi, 1819), a parasite of the teleost fish Merluccius merluccius (Linnaeus, 1758), have been studied by means of transmission electron microscopy. Spermiogenesis involves firstly the formation of a differentiation zone. It is characterized by the presence of two centrioles associated with striated rootlets, an intercentriolar body and an electron-dense material in the apical region of this zone. Later, two flagella develop from the centrioles, growing orthogonally in relation to the median cytoplasmic process. Flagella then undergo a rotation of 90° until they become parallel to the median cytoplasmic process, followed by the proximodistal fusion of the flagella with the median cytoplasmic process. The nucleus elongates and afterwards it migrates along the spermatid body. Spermiogenesis finishes with the appearance of the apical cone surrounded by the single helical crested body at the base of the spermatid. Finally, the narrowing of the ring of arched membranes detaches the fully formed spermatozoon. The mature spermatozoon of C. crassiceps is filiform and contains two axonemes of the 9 + '1' trepaxonematan pattern, a parallel nucleus, parallel cortical microtubules, and electron-dense granules of glycogen. The anterior extremity of the gamete exhibits a short electron-dense apical cone and one crested body, which turns once around the sperm cell. The first axoneme is surrounded by a ring of thick cortical microtubules that persist until the appearance of the second axoneme. Later, these thick cortical microtubules disappear and thus, the mature spermatozoon exhibits two bundles of thin cortical microtubules. The posterior extremity of the male gamete presents only the nucleus. Results are discussed and compared particularly with the available ultrastructural data on the former 'pseudophyllideans'. Two differences can be established between spermatozoa of Bothriocephalidea and Diphyllobothriidea, the type of spermatozoon (II vs I) and the presence/absence of the ring of cortical microtubules.

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Spermiogenesis and the ultrastructure of the spermatozoon of the bothriocephalidean cestode Clestobothrium crassiceps (Rudolphi, 1819), a parasite of the teleost fish Merluccius merluccius (Linnaeus, 1758), have been studied by means of transmission electron microscopy. Spermiogenesis involves firstly the formation of a differentiation zone. It is characterized by the presence of two centrioles associated with striated rootlets, an intercentriolar body and an electron-dense material in the apical region of this zone. Later, two flagella develop from the centrioles, growing orthogonally in relation to the median cytoplasmic process. Flagella then undergo a rotation of 90° until they become parallel to the median cytoplasmic process, followed by the proximodistal fusion of the flagella with the median cytoplasmic process. The nucleus elongates and afterwards it migrates along the spermatid body. Spermiogenesis finishes with the appearance of the apical cone surrounded by the single helical crested body at the base of the spermatid. Finally, the narrowing of the ring of arched membranes detaches the fully formed spermatozoon. The mature spermatozoon of C. crassiceps is filiform and contains two axonemes of the 9 + '1' trepaxonematan pattern, a parallel nucleus, parallel cortical microtubules, and electron-dense granules of glycogen. The anterior extremity of the gamete exhibits a short electron-dense apical cone and one crested body, which turns once around the sperm cell. The first axoneme is surrounded by a ring of thick cortical microtubules that persist until the appearance of the second axoneme. Later, these thick cortical microtubules disappear and thus, the mature spermatozoon exhibits two bundles of thin cortical microtubules. The posterior extremity of the male gamete presents only the nucleus. Results are discussed and compared particularly with the available ultrastructural data on the former 'pseudophyllideans'. Two differences can be established between spermatozoa of Bothriocephalidea and Diphyllobothriidea, the type of spermatozoon (II vs I) and the presence/absence of the ring of cortical microtubules.

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In ecologia della pesca, i fattori o indicatori della “condizione” di un organismo forniscono molte informazioni sulle caratteristiche di adattamento dei pesci all’ambiente e sul loro ruolo nell’ecosistema. La “condizione” include molte caratteristiche strutturali ed energetiche che possono variare in funzione dell’ontogenesi, del ciclo riproduttivo, ma anche in funzione delle caratteristiche dell’ambiente, incluso il grado di stress al quale è sottoposta una specie (es. la pressione di pesca). L’obiettivo del presente studio sperimentale è stato valutare eventuali differenze nell’abbondanza, nei parametri di popolazione, nella struttura demografica e negli indicatori di “condizione” di due specie, Merluccius merluccius (Pisces: Gadiformes) e Galeus melastomus (Pisces: Carcharhiniformes), in due diverse aree: Toscana settentrionale e meridionale, differenti per caratteristiche ambientali e pressione di pesca. Nella prima parte dell’analisi, sono stati confrontati gli indici di densità e biomassa, la struttura di taglia delle due popolazioni, su dati estratti dagli archivi storici delle campagne di pesca sperimentale MEDITS dal 1994 al 2013. Nella seconda parte dell’analisi invece, sono stati analizzati 1000 individui provenienti dalla campagna MEDITS 2014, integrati con campioni provenienti dallo sbarcato commerciale per il biennio 2014-2015. Gli individui di M. merluccius sono stati ripartiti in due classi di taglia (I = individui ≤ 18 cm LT; II = individui > 18 cm LT), quelli di G. melastomus in tre classi di taglia (I = individui ≤ 20 cm LT; II = individui 20 cm< x ≤ 35 cm LT; III= individui > 35 cm LT), suddivisi rispettivamente in 50 maschi e 50 femmine, per ogni classe. E’ stato condotto lo studio della crescita relativa attraverso l’analisi della relazione taglia/peso e lo studio della condizione tramite i seguenti indicatori: il fattore K di Fulton, l’indice epatosomatico (HSI) e l’indice gonadosomatico (GSI). I risultati di questa tesi hanno evidenziato differenze nei popolamenti, riconducibili alle diverse condizioni ambientali e alla pressione di pesca, tra le due aree indagate. L’area sud, interessata da un più intenso sforzo di pesca esercitato sui fondali della piattaforma e della scarpata continentale e da una morfologia del fondale differente, mostra una diversità in termini di crescita relativa e stato della “condizione”, che risulta più elevata in entrambe le specie, rispetto all’area settentrionale, caratterizzata invece da uno sforzo di pesca meno intenso, incentrato sull’ampia piattaforma continentale.

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The corneal structure of three deep-sea species of teleosts (Gadiformes, Teleostei) from different depths (250-4000 m) and photic zones are examined at the level of the light and electron microscopes. Each species shows a similar but complex arrangement of layers with a cornea split into dermal and scleral components. The dermal cornea comprises an epithelium overlying a basement membrane and a dermal stroma with sutures and occasional keratocytes. Nezumia aequalis is the only species to possess a Bowman's layer, although it is not well-developed. The scleral cornea is separated from the dermal cornea by a mucoid layer and, in contrast to shallow-water species, is divided into three main layers; an anterior scleral stroma, a middle or iridescent layer and a posterior scleral stroma. The iridescent layer of collagen and intercalated cells or cellular processes is bounded by a layer of cells and the posterior scleral stroma overlies a Descemet's membrane and an endothelium. In the relatively shallow-water Microgadus proximus, the keratocytes of the dermal stroma, the cells of the iridescent layer and the endothelial cells all contain aligned endoplasmic reticulum, which may elicit an iridescent reflex. No alignment of the endoplasmic reticulum was found in N. aequalis or Coryphanoides (Nematonurus) armatus. The relative differences between shallow-water and deep-sea corneas are discussed in relation to the constraints of light, depth and temperature.