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FIGURE 1 in A new goniopholidid crocodylomorph from the Late Jurassic of Portugal
FIGURE 1. Skull of ML2776 Ophiussasuchus paimogonectes gen. et sp. nov., in dorsal view. Anatomical abbreviations: f, frontal; itf, infratemporal fenestra; j, jugal; lac, lacrimal; mx, maxilla; mx.dp, maxillary depressions; n, nasal; o, orbit; pa, parietal; pal, palpebral; pf, prefrontal; pmx, premaxilla; po, postorbital; q, quadrate; qj, quadratojugal; sq, squamosal; stf, supratemporal fenestra; t, tooth. Scale represents 10 cm. Image by C. Pineda.
FIGURE 3 in A new goniopholidid crocodylomorph from the Late Jurassic of Portugal
FIGURE 3. Skull of ML2776 Ophiussasuchus paimogonectes gen. et sp. nov., in lateral view. Anatomical abbreviations: ec, ectopterygoid; j, jugal; mx, maxilla; mx.dp, maxillary depressions; n, nasal; pal, palpebral; pf, prefrontal; pmx, premaxilla; po, postorbital; pt, pterygoid; q, quadrate; qj, quadratojugal; sq, squamosal; t, tooth. Scale represents 10 cm. Image by C. Pineda.
FIGURE 5 in A new goniopholidid crocodylomorph from the Late Jurassic of Portugal
FIGURE 5. Palatal region of some of the goniopholidids, with a simplified cladistic relationship tree between them. The colored areas in the illustrations are the palatines (yellow), the choanae (red), and the pterygoids (green).
FIGURE 2 in A new goniopholidid crocodylomorph from the Late Jurassic of Portugal
FIGURE 2. Skull of ML2776 Ophiussasuchus paimogonectes gen. et sp. nov., in ventral view. Anatomical abbreviations: ec, ectopterygoid; j, jugal; mx, maxilla; pmx, premaxilla; pl, palatine; pt, pterygoid; q, quadrate; sof, suborbital fenestra; t, tooth; v, vomer. Scale represents 10 cm. Image by C. Pineda.
FIGURE 4 in A new goniopholidid crocodylomorph from the Late Jurassic of Portugal
FIGURE 4. Phylogenetic analyses, with the Bootstraps and Bremer supports in each node. A. Simplified strict consensus cladogram, result from the two most parsimonious trees of 2381 steps following Arribas et al. (2019); B. Strict consensus of the Goniopholididae clade. Ophiussasuchus paimogonectes gen. et sp. nov. is recovered as the sister taxa of the clade Hulkepholis + Anteophthalmosuchus.
Results from the monitoring of veterinary medicinal product residues and other substances in live animals and animal products - Portugal
<p>This dataset contains the monitoring results of veterinary medicinal product residues and other substances measured in live animals and animal products analysed by the national competent authority of Portugal. The presence of unauthorised substances, residues of veterinary medicinal products in food may pose a risk factor for public health.</p> <p>For this reason and in order to ensure a high level of consumer protection, a comprehensive legislative framework has been established in the European Union (EU) which defines maximum limits permitted in food and monitoring programmes for the control of the presence of these substances in the food chain. Regulation (EU) No 37/2010 establishes maximum limits for residues of veterinary medicinal products in food-producing animals and animal products. Maximum residue levels for pesticides in or on food and feed of plant and animal origin are laid down in Regulation (EC) No 396/2005. Commission Implementing Regulation (EU) 2022/1646 lays down practical arrangements for and specific content of official controls of the use of veterinary medicinal products in live animals and products of animal origin through three different official national control plans: a national risk-based control plan for production in the Member States, a national randomised surveillance plan for production in the Member States and a national risk-based control plan for third-country imports. Additionally, Commission Delegated Regulation (EU) 2022/1644 lays down the range of samples and stage of production, processing and distribution at which the samples are to be taken.</p> <p>Since 2018 until 2022, the data on the national residue monitoring plan were reported to EFSA in accordance with Council Directive 96/23/EC.</p> <p>The dataset contains the results of laboratory tests from samples taken from bovines, pigs, sheep, goats, horses, poultry, rabbits, farmed game, wild game aquaculture, milk, eggs and honey, and from 2023 also samples from casings, insects and reptiles.</p> <p>Targeted samples are taken with the aim of detecting illegal treatment or controlling compliance with the maximum levels laid down in the relevant legislation. This means that, in their national plans Member States target the groups of animals (species, gender, age) where the probability of finding residues is the highest. Conversely, the objective of random sampling is to collect significant data to evaluate, for example, consumer exposure to a specific substance.</p> <p>Suspect samples are taken as a consequence of i) non-compliant results on samples taken in accordance with the control plans, ii) possession or presence of prohibited substances at any point during manufacture, storage, distribution or sale through the food and feed production chain, or iii) suspicion or evidence of illegal treatment or non-compliance with the withdrawal period for an authorised medicinal veterinary product.</p> <p>Residues of pharmacologically active substances mean active substances, excipients or degradation products and their metabolites, which remain in food.</p> <p>Unauthorised substances mean substances that are not authorised as veterinary medicinal products or as a feed additive under European Union legislation.</p> <p>Prohibited substances mean substances which are prohibited for use in food producing animals according to the European Union legislation.</p> <p>Non-compliant sample is a sample that has been analysed for the presence of one or more substances and failed to comply with the legal provisions for at least one substance. Thus, a sample can be non-compliant for one or more substances.</p> <p><strong>REPORTING AUTHORITIES CONTRIBUTING TO EACH DATA COLLECTION:</strong></p> <p>VMPR_2023 – Directorate-General for Food and Veterinary</p> <p>VMPR_2022 – Directorate-General for Food and Veterinary; National Institute of Health Dr. Ricardo Jorge</p> <p>VMPR_2021 – Directorate-General for Food and Veterinary; National Institute of Health Dr. Ricardo Jorge</p> <p>VMPR_2020 – Directorate-General for Food and Veterinary; National Institute of Health Dr. Ricardo Jorge</p> <p>VMPR_2019 – Directorate-General for Food and Veterinary; National Institute of Health Dr. Ricardo Jorge</p> <p>VMPR_2018 – Directorate-General for Food and Veterinary; National Institute of Health Dr. Ricardo Jorge</p> <p>VMPR_2017 – Directorate-General for Food and Veterinary</p>
Caracterização do Edificado da Baixa de Coimbra, Portugal: levantamento de informação para análise do estado de conservação e avaliação da vulnerabilidade sísmica
<p>Base de dados resultado do processo de caracterização do edificado antigo da Baixa de Coimbra, Portugal, realizado no âmbito da Dissertação de Mestrado entitulada "<strong>Estudo Comparativo do Estado de Conservação, Processos de Descaracterização e da Análise da Vulnerabilidade Sísmica da Baixa de Coimbra</strong>".</p> <p>A área de estudo abrange uma área de 42.054 m² e um perímetro de cerca de 849 m, envolvendo um universo de 284 edifícios (342 fachadas). A presente Base de Dados é composta por um total de 1,660 fichas de levantamento e 7,023 registros fotográficos resultantes do trabalho de levantamento realizado "in situ".</p> <p>Os ficheiros encontram-se organizados de acordo com a seguinte hierarquia:</p> <ul> <li><strong>Planta_Baixa_do_Perímetro.dwg</strong>: Cartografia com indicação a chave primária utilizada; </li> <li><strong>Levantamentos_Baixa_de_Coimbra.zip</strong>:<strong> </strong>Arquivo com toda documentação fotográfica, organizada por ruas, e subdividida em subpastas individuais, por edifícios, identificados através das respetivas chaves primárias;</li> <li><strong>Fichas_de_Inspeção_Baixa_de_Coimbra.zip</strong>:<strong> </strong>Arquivo com todas as fichas de levantamento, também elas organizadas por ruas, e subdivididas em subpastas individuais, por edifício, com as respetivas chaves primárias.</li> </ul> <p> </p>
Figure 12 of paper: It's not only the sea: a history of human intervention in the beach-dune ecosystem of Costa da Caparica (Portugal)
<p>Figure 12 of research paper with DOI: 10.5894/rgci-n432</p>
FIG. 3 in The d'Orbigny Palaeontological Collection of the National Museum of Natural History and Science, Lisbon, Portugal: Historical perspective and revision of Cretaceous Cephalopoda
FIG. 3. — Cretaceous ammonites of the d'Orbigny Collection of the National Museum of Natural History and Science (Museu Nacional de História Natural e da Ciência): A-D, Neolissoceras grasianum (d'Orbigny, 1840) in ventral (A), lateral (B) and oral (C) views, and original label (D): Nº 357/Ammonites grasanus (d'Orb), Andar 17º Neocomiense, Terreno Cretaceo, Localidade S.t Julien (Hautes Alpes); E-G, Pleurohoplites (Pleurohoplites) renauxianus (d'Orbigny, 1840) in lateral (E) and ventral (F) views, and original label (G): Nº 464/Ammonites Renauxianus (d'Orb), Andar 20º Cenomaniense, Terreno Cretaceo, Localidade Mont-Blainville (Meuse); H-K, Acanthoceras rhotomagense (Brongniart, 1822) in oral (H), lateral (I) and ventral (J) views, and original label (K): Nº 463/Ammonites rhotomagensis (Lamarck), Andar 20º Cenomaniense, Terreno Cretaceo, Localidade Rouen (Seine inf.re). Scale bar: 2 cm.
FIG. 2 in The d'Orbigny Palaeontological Collection of the National Museum of Natural History and Science, Lisbon, Portugal: Historical perspective and revision of Cretaceous Cephalopoda
FIG. 2. — Cretaceous nautiloid and ammonites of the d'Orbigny Collection of the National Museum of Natural History and Science (Museu Nacional de História Natural e da Ciência): A-C, Angulithes triangularis de Montfort, 1808 in oral (A) and lateral (B) views, and original label (C): Nº 459/Nautilus triangularis (Montf), Andar 20º Cenomaniense, Terreno Cretaceo, Localidade Fouras (Charente inf.re); D-G, Phylloceras (Hypophylloceras) tethys (d'Orbigny, 1840) in ventral (D), lateral (E) and oral (F) views, and original label (G): Nº 360/Ammonites Tethys (d'Orb), Andar 17º Neocomiense, Terreno Cretaceo, Localidade Arredores de [environs of] Sisteron (Basses Alpes); H-K, Ptychophylloceras (Semisulcatoceras) semisulcatum (d'Orbigny, 1840) in ventral (H), lateral (I) and oral (J) views, and original label (K): Nº 359/Ammonites semisulcatus (d'Orb), Andar 17º Neocomiense, Terreno Cretaceo, Localidade Sisteron (Basses Alpes). Scale bar: 2 cm.
Dataset produced by Sagremarisco at Sagres (SW Portugal) pilot site as part of the GAIN project
<p>The dataset includes insitu data collected at the Sagres pilot site, data from Hobo Sensors, data from the moored bouy, remote sensing data correspondent to the pixel of the study site. Includes phytoplankton counts, spectrophotometric chlorophyll as well as HPLC phytoplankton pigments.</p>
Fig. 1. A in Setaphyes algarvensis sp. nov., the first description of an allomalorhagid mud dragon (Kinorhyncha: Allomalorhagida) from Portugal (Eastern Atlantic Ocean)
Fig. 1. A. Map showing the sampling area of Alvor (Faro, Portugal). B. Close-up of the sampling area. Green point marks the sampling site.
Fig. 5 in Setaphyes algarvensis sp. nov., the first description of an allomalorhagid mud dragon (Kinorhyncha: Allomalorhagida) from Portugal (Eastern Atlantic Ocean)
Fig. 5. Boxplots represent the ranges of different body measurements of Setaphyes algarvensis sp. nov., and S. kielensis (Zelinka, 1928). A. Total trunk length. B. Relationship between total trunk length and lateral terminal spine length; arrow points out the female of S. algarvensis sp. nov. C. Relationship between total trunk length and lateral terminal spine length among males and females of S. kielensis. D. Relationship between total trunk length and lateral terminal spine length among the males of both
Fig. 4 in Setaphyes algarvensis sp. nov., the first description of an allomalorhagid mud dragon (Kinorhyncha: Allomalorhagida) from Portugal (Eastern Atlantic Ocean)
Fig. 4. Scanning electron micrographs showing general overview and details of the cuticular trunk morphology of three adult males, additional specimens of Setaphyes algarvensis sp. nov. (UCM Meiofauna Collection) A. Dorsal overview. B. Ventral view of left half segment 1. C. Lateral view of segments 1–4. D. Ventral view of segments 5–6. E. Middorsal elevation of segment 5. F. Detail of dorsal sensory spots on segment 1. G. Ventral overview. H. Detail of pectinate fringe and glandular cell outlets of segment 8. I. Dorsal view of segments 8–11. J. Detail of ventral seta and sensory spot on segment 8. Abbreviations: gco = glandular cell outlet; ldse = laterodorsal seta; lts = lateral terminal spine; lvse = lateroventral seta; mde = middorsal elevation; mdp = middorsal process; pdse = paradorsal seta; plse = paralateral seta; ppf = primary pectinate fringe; spf = secondary pectinate fringe; vmse = ventromedial seta; vmtu = ventromedial tube; numbers after abbreviations indicate corresponding segment; sensory spots are marked as dashed circles. Scale bars: A, G = 100 µm; B–F, H–J = 10 µm.
Fig. 3 in Setaphyes algarvensis sp. nov., the first description of an allomalorhagid mud dragon (Kinorhyncha: Allomalorhagida) from Portugal (Eastern Atlantic Ocean)
Fig. 3. Light micrographs of holotype, ♂ (NHMD-921475) (A–D, H–I, K–L), paratypes, ♂ (F–G, M) (F: NHMD-921479, G: NHMD-921489, M: NHMD-921484), and paratype, ♀ (E, J) (NHMD-921485), showing trunk overviews and details of cuticular trunk characters of adult Setaphyes algarvensis sp. nov. A. Dorsal overview. B. Dorsal view of left half of segment 1. C. Detail of paralateral seta of segment 1. D. Ventral view of right half of segment 1. E. Ventral view of right half of segments 1–3. F. Dorsal view of left half of segments 2–3. G. Ventral view of right half of segments 2–3. H. Dorsal view of left half of segment 5. I. Ventral view of right half of segment 5. J. Ventral view of left half of segment 10. K. Dorsal view of segment 11. L. Dorsal view of left half of segment 8. M. Ventral view of right half of segment 8. Abbreviations: cr = cuticular ridge; ldse = laterodorsal seta; lts = lateral terminal spine; lvse = lateroventral seta; mde = middorsal elevation; mdp = middorsal process; pdse = paradorsal seta; plse = paralateral seta; ppf = primary pectinate fringe; spf = secondary pectinate fringe; vlse = ventrolateral seta; vmse = ventromedial seta; vmtu = ventromedial tube; numbers after abbreviations indicate corresponding segment; sensory spots are marked as dashed circles and glandular
Fig. 2 in Setaphyes algarvensis sp. nov., the first description of an allomalorhagid mud dragon (Kinorhyncha: Allomalorhagida) from Portugal (Eastern Atlantic Ocean)
Fig. 2 (preceding page). Line illustrations of adult Setaphyes algarvensis sp. nov. A. ♂, ventral overview. B. ♂, dorsal overview. C. ♀, segments 1–3, ventral view. D. ♀, segments 9–11, ventral view. Abbreviations: ap = apodeme; bsj = ball-and-socket joint; cr = cuticular ridge; dpl = dorsal placid; gco = glandular cell outlet; ldse = laterodorsal seta; ldss = laterodorsal sensory spot; lts = lateral terminal spine; lvse = lateroventral seta; mde = middorsal elevation; mdp = middorsal process; ms = muscular scar; pdse = paradorsal seta; pdss = paradorsal sensory spot; plse = paralateral seta; ps = penil spine; sdss = subdorsal sensory spot; vlse = ventrolateral seta; vlss = ventrolateral sensory spot; vmse = ventromedial seta; vmss = ventromedial sensory spot; vmtu = ventromedial tube; vpl = ventral placid. Scale bar: 100 µm.
Fig. 5 in Setaphyes algarvensis sp. nov., the first description of an allomalorhagid mud dragon (Kinorhyncha: Allomalorhagida) from Portugal (Eastern Atlantic Ocean)
Fig. 5. Boxplots represent the ranges of different body measurements of Setaphyes algarvensis sp. nov., and S. kielensis (Zelinka, 1928). A. Total trunk length. B. Relationship between total trunk length and lateral terminal spine length; arrow points out the female of S. algarvensis sp. nov. C. Relationship between total trunk length and lateral terminal spine length among males and females of S. kielensis. D. Relationship between total trunk length and lateral terminal spine length among the males of both species.
Fig. 3 in Setaphyes algarvensis sp. nov., the first description of an allomalorhagid mud dragon (Kinorhyncha: Allomalorhagida) from Portugal (Eastern Atlantic Ocean)
Fig. 3. Light micrographs of holotype, ♂ (NHMD-921475) (A–D, H–I, K–L), paratypes, ♂ (F–G, M) (F: NHMD-921479, G: NHMD-921489, M: NHMD-921484), and paratype, ♀ (E, J) (NHMD-921485), showing trunk overviews and details of cuticular trunk characters of adult Setaphyes algarvensis sp. nov. A. Dorsal overview. B. Dorsal view of left half of segment 1. C. Detail of paralateral seta of segment 1. D. Ventral view of right half of segment 1. E. Ventral view of right half of segments 1–3. F. Dorsal view of left half of segments 2–3. G. Ventral view of right half of segments 2–3. H. Dorsal view of left half of segment 5. I. Ventral view of right half of segment 5. J. Ventral view of left half of segment 10. K. Dorsal view of segment 11. L. Dorsal view of left half of segment 8. M. Ventral view of right half of segment 8. Abbreviations: cr = cuticular ridge; ldse = laterodorsal seta; lts = lateral terminal spine; lvse = lateroventral seta; mde = middorsal elevation; mdp = middorsal process; pdse = paradorsal seta; plse = paralateral seta; ppf = primary pectinate fringe; spf = secondary pectinate fringe; vlse = ventrolateral seta; vmse = ventromedial seta; vmtu = ventromedial tube; numbers after abbreviations indicate corresponding segment; sensory spots are marked as dashed circles and glandular cell outlets as continuous circles. Scale bars: A = 100 µm; B–M = 20 µm.
Gesport_Women on sports boards in NSFs of five countries: Italy, Portugal, Spain, Turkey and the United Kingdom
<p>This database has been built by the authors with the support of the Erasmus+ programme of the European Union under Grant number 590521-EPP-1-2017-1-ES-SPO-SC.</p> <p>The data has been collected from the websites of the national federations of Italy, Portugal, Turkey, Spain, and the United Kingdom in 2018 and in 2022.</p>
Blank predetermination in the Iberian Acheulean: fact or fiction? Insight from the cleaver on flake assemblage from Casal do Azemel site (Leiria, Portugal) by a Geometric Morphometric approach
<p>The increase of data available for the study of the Middle Pleistocene in the Iberian Peninsula has favoured the understanding of the technological trends of the regional Acheulean techno-complex. This has features of Large Flake Acheulean -LFA- with a significant presence of cleavers on flake, a specific tool type that is of great cultural and technological value. Moreover, these tools are privileged to discuss the importance of predetermination in Acheulean assemblages. Following this reason, besides the traditional techno-typological approach, we perform 2D Geometric Morphometric Analysis (GMA) to explore this topic on the cleaver on flake assemblage from Casal do Azemel (Leiria, Portugal), a paradigmatic Iberian Acheulean site with a large number of cleavers on flake (more than 100 pieces), one of the largest collections of this type of tools in Western Europe.</p> <p>The results obtained note a strong degree of shape homogeneity and suggest that the different technological solutions underlying the definition of the distal cutting edge, or the intensity of secondary reshaping, do not produce major differences in the overall shape of the tool. Therefore, this homogeneity is a consequence of the existence of a specific pattern of support selection and/or is the outcome of the already predetermined nature of the chosen blank. These observations allowed to discuss the significance of blank predetermination in the Acheulean, highlighting the existence of highly structured technological and cognitive prerequisites.</p>
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