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Figure 9 from: Minghetti E, Montemayor SI, Dellapé PM (2024) Two new genera and four new species of Neotropical Eccritotarsini (Heteroptera, Miridae, Bryocorinae). Deutsche Entomologische Zeitschrift 71(1): 1-15. https://doi.org/10.3897/dez.71.104130
Figure 9 Egerocoris gen. nov. new species, right paramere. A, B.E. dimorphus sp. nov.; C, D.E. ecuatorianus sp. nov.; E, F.E. chaparensis sp. nov.; A, C, E. Interior view; B, D, F. Dorsal view.
Figure 11 from: Minghetti E, Montemayor SI, Dellapé PM (2024) Two new genera and four new species of Neotropical Eccritotarsini (Heteroptera, Miridae, Bryocorinae). Deutsche Entomologische Zeitschrift 71(1): 1-15. https://doi.org/10.3897/dez.71.104130
Figure 11 Distributional map of the species included in the genera Thomasomiris gen. nov. and Egerocoris gen. nov. Blue dot represents occurrence of Thomasomiris setosus sp. nov.; yellow dots represent occurrences of Egerocoris dimorphus sp. nov.; orange dot represents ocurrence of E. ecuatorianus sp. nov.; in grey the province Chapare (Bolivia) where E. chaparensis sp. nov. occurs.
Figure 8 from: Minghetti E, Montemayor SI, Dellapé PM (2024) Two new genera and four new species of Neotropical Eccritotarsini (Heteroptera, Miridae, Bryocorinae). Deutsche Entomologische Zeitschrift 71(1): 1-15. https://doi.org/10.3897/dez.71.104130
Figure 8 Egerocoris gen. nov. new species, left paramere. A, B.E. dimorphus sp. nov.; C, D.E. ecuatorianus sp. nov.; E, F.E. chaparensis sp. nov.; A, C, E. Interior view; B, D, F. Posterior view.
Data and SI movies of pore-scale CO2-brine interfacial mass transfer during imbibition
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Progettare il domani. La città che si osserva, immagina e trasforma. Quadro d'insieme teorico.
<p>L’immagine rappresenta il quadro d’insieme teorico che sostiene il progetto <strong>Progettare il domani. La città che si osserva, immagina e trasforma</strong>.</p> <p>Al centro del diagramma si trova il concetto di <em>Benessere Ecosistemico della Città</em>, ossia l’insieme proprietà emergenti generate dalle dinamiche interattive tra i domini urbani.</p> <p>I sei <em>Domini Urbani</em> principali, le strutture invisibili che sostengono la società, disposti attorno al concetto centrale di benessere, sono:</p> <ul> <li> <p>Ambiente Costruito</p> </li> <li> <p>Terra e Natura</p> </li> <li> <p>Terra e Comunità</p> </li> <li> <p>Cultura ed Educazione</p> </li> <li> <p>Economia e Finanza</p> </li> <li> <p>Strumenti e Tecnologia</p> </li> </ul> <p>L’interazione continua tra i sei domini genera la <em>Complessità Urbana</em>, oggetto di <em>Osservazione</em>, <em>Ricerca delle Interazioni</em> e <em>Mappatura</em>.</p> <p>Il livello esterno che racchiude l'intero sistema dei domini è denominato <em>Cultura</em>, e funge da struttura portante. La cultura rappresenta l’ambiente in cui si osservano gli aspetti visibili e si costruiscono i comportamenti, gli stili di vita e i modelli profondi. Lo scambio tra queste quattro componenti è mutuale e continuo e porta alla costituzione di una tetrade. L’insieme della cultura è lo spazio essenziale di confronto e trasformazione che influenza il sistema dei domini, determinandone l’evoluzione Il punto di accesso privilegiato in quest’ultimo è individuato nel dominio Cultura ed Educazione.</p> <p>L'anello più esterno è quello della <em>Progettazione</em>, intesa come forma fondamentale di intelligenza umana. La progettazione esprime la funzione di perturbazione verso il sistema culturale urbano. Attraverso azioni <em>Rigenerative</em>, <em>Eque</em> ed <em>Inclusive</em>, con alla base il concetto di <em>Cura</em> verso la <em>Terra</em>, le <em>Persone</em> e il <em>Futuro</em> si entra nel sistema cultura e conseguentemente nel sistema urbano, generando cambiamento.</p> <p>I processi sono sempre, in tutto il quadro, multi direzionali, dal sistema dei domini a quello progettuale, passando per quello culturale: gli attori sono tutti connessi e i cambiamenti che hanno atto, come anche quelli in definizione, condizionano il tutto.</p> <p>È per questo che parliamo di <em>Ecosistema Città</em>, come l'insieme degli organismi viventi e non viventi che interagiscono nell’ambiente costituendo un sistema in equilibrio dinamico.</p> <p> </p> <p><em>English Description.</em></p> <p>The image represents the theoretical framework supporting the project <strong>Designing Tomorrow. The observing, imagining and transforming city</strong>.</p> <p>At the centre of the diagram is the concept of <em>Ecosystemic Well-Being of the City</em>, that is to say the set of emergent properties generated by the interactive dynamics between urban domains.</p> <p>The six main <em>Urban Domains</em>, the invisible structures that sustain society, arranged around the central concept of well-being, are:</p> <p>- Built Environment</p> <p>- Land and Nature</p> <p>- Land and Community</p> <p>- Culture and Education</p> <p>- Economy and Finance</p> <p>- Instruments and Technology</p> <p>The continuous interaction between the six domains generates <em>Urban Complexity</em>, the object of <em>Observation</em>, <em>Research of Interactions</em> and <em>Mapping</em>.</p> <p>The outer layer that encompasses the entire system of domains is called <em>Culture</em>, and serves as the backbone for it. Culture represents the environment in which visible aspects are observed and behaviour patterns, lifestyles and deep models are constructed. The exchange between these four components is mutual and continuous and leads to the constitution of a tetrad. The whole of culture is the essential space of discussion and transformation that influences the domain system, determining its evolution The privileged access point in the latter is identified in the domain Culture and Education.</p> <p>The most external layer is <em>Design</em>, understood as a fundamental manifestation of human intelligence. Design expresses the function of perturbation towards the urban cultural system. Through <em>Regenerative</em>, <em>Equitable</em> and <em>Inclusive</em> actions, underpinned by the concept of <em>Care for the Earth</em>, <em>People</em> and the <em>Future</em> we enter the cultural system and consequently the urban system, generating change.</p> <p>The processes are always, in the whole framework, multi-directional, from the domain system to the design system, passing through the cultural system: the actors are all connected and the changes they have in place, as well as those being defined, condition the whole.</p> <p>This is why we speak of the <em>City Ecosystem</em>, as the set of living and non-living organisms that interact in the environment constituting a system in dynamic equilibrium.</p>
Figure 1 from: Tseplik ND, Maltsev YI, Glushchenko AM, Kuznetsova IV, Genkal SI, Gusev ES, Kulikovskiy MS (2021) Achnanthidium gladius sp. nov. (Bacillariophyceae) – a new monoraphid diatom species from Indonesia. PhytoKeys 187: 129-140. https://doi.org/10.3897/phytokeys.187.73913
Figure 1 Phylogenetic position of Achnanthidium gladius Ind391 (indicated in bold) based on Bayesian inference for the partial 18S rDNA gene. Total length of the alignment is 441 characters. Bootstrap supports from ML (constructed by RaxML) are presented above the horizontal lines (slash). Posterior probabilities from BI (constructed by Beast) are presented below the horizontal lines (slash). Only BS and PP above 50 and 0.9 are shown. All sequences have strain numbers (if available) and GenBank numbers.
Figure 3 from: Tseplik ND, Maltsev YI, Glushchenko AM, Kuznetsova IV, Genkal SI, Gusev ES, Kulikovskiy MS (2021) Achnanthidium gladius sp. nov. (Bacillariophyceae) – a new monoraphid diatom species from Indonesia. PhytoKeys 187: 129-140. https://doi.org/10.3897/phytokeys.187.73913
Figure 3 A–HAchnanthidium gladius Tseplik, Kulikovskiy, Glushchenko & Genkal, sp. nov. SEM. Sample no 04123. A–F raphe valves G, H rapheless valves A–C, G, H external views D–F, H internal views. Scale bars: 2 μm (A, D, G, H), 1 μm (C, F), 0.5 μm (B, E).
Figure 2 from: Tseplik ND, Maltsev YI, Glushchenko AM, Kuznetsova IV, Genkal SI, Gusev ES, Kulikovskiy MS (2021) Achnanthidium gladius sp. nov. (Bacillariophyceae) – a new monoraphid diatom species from Indonesia. PhytoKeys 187: 129-140. https://doi.org/10.3897/phytokeys.187.73913
Figure 2 A–XAchnanthidium gladius Tseplik, Kulikovskiy, Glushchenko & Genkal, sp. nov. LM, DIC, size diminution series. Slide no 04123. A–L raphe valves M–X rapheless valves. Holotype (G). Scale bar: 10 μm.
Figure 5 from: Likhitrakarn N, Golovatch SI, Panha S (2022) The Oriental millipede genus Nepalella Shear, 1979, with the description of a new species from Thailand and an updated key (Diplopoda, Chordeumatida, Megalotylidae). ZooKeys 1084: 183-199. https://doi.org/10.3897/zookeys.1084.78744
Figure 5 Nepalella siamensis sp. nov., SEM ♂ holotype (CUMZ) A, B anterior gonopods, caudal and superior views, respectively C, E posterior gonopods, front and caudal views, respectively D, F left gonopod, front and caudal views, respectively. Abbreviations: c colpocoxite, cl lateral lobe, cxi coxites, ll lateral lobules, ml median lobe, r rounded bulge, t1 telopoditomere 1, t2 telopoditomere 2. Scale bars: 0.2 mm.
Figure 4 from: Likhitrakarn N, Golovatch SI, Panha S (2022) The Oriental millipede genus Nepalella Shear, 1979, with the description of a new species from Thailand and an updated key (Diplopoda, Chordeumatida, Megalotylidae). ZooKeys 1084: 183-199. https://doi.org/10.3897/zookeys.1084.78744
Figure 4 Nepalella siamensis sp. nov., ♂ holotype (CUMZ) A, B anterior gonopods, front and caudal views, respectively C, D posterior gonopods, caudal and front views, respectively. Abbreviations: c colpocoxite, cl lateral lobe, cxi coxites, ll lateral lobules, ml median lobe, r rounded bulge, t1 telopoditomere 1, t2 telopoditomere 2. Scale bars: 0.2 mm.
Figure 3 from: Likhitrakarn N, Golovatch SI, Panha S (2022) The Oriental millipede genus Nepalella Shear, 1979, with the description of a new species from Thailand and an updated key (Diplopoda, Chordeumatida, Megalotylidae). ZooKeys 1084: 183-199. https://doi.org/10.3897/zookeys.1084.78744
Figure 3 Nepalella siamensis sp. nov., ♂ holotype (CUMZ) A gnathochilarium, ventral view B antenna C leg 4, caudal view D leg 7, caudal view E leg 10, front view F coxa 10, subcaudal view G leg 11, front view H coxa 11, caudal view I leg 12, caudal view. Abbreviations: b basal process, cg coxal gland, m medial process, mp mushroom-shaped protuberance, p parabasal process, h horn-shaped process. Scale bars: 0.25 mm.
Figure 2 from: Likhitrakarn N, Golovatch SI, Panha S (2022) The Oriental millipede genus Nepalella Shear, 1979, with the description of a new species from Thailand and an updated key (Diplopoda, Chordeumatida, Megalotylidae). ZooKeys 1084: 183-199. https://doi.org/10.3897/zookeys.1084.78744
Figure 2 Nepalella siamensis sp. nov., ♂ holotype (CUMZ) A–C anterior part of body, lateral, dorsal and ventral views, respectively D–F body segments 8–10, sublateral, dorsal and ventral views, respectively G–I posterior part of body, lateral, dorsal and ventral views, respectively.
Figure 1 from: Likhitrakarn N, Golovatch SI, Panha S (2022) The Oriental millipede genus Nepalella Shear, 1979, with the description of a new species from Thailand and an updated key (Diplopoda, Chordeumatida, Megalotylidae). ZooKeys 1084: 183-199. https://doi.org/10.3897/zookeys.1084.78744
Figure 1 Distributions of Nepalella species (28 species), arranged from northwest to southeast 1N. phulcokia Mauriès, 1988 2N. gairiensis Mauriès, 1988 3N. thodunga Shear, 1979 4N. deharvengi Mauriès, 1988 5N. ringmoensis Mauriès, 1988 6N. tragsindola Mauriès, 1988 7N. khumbua Shear, 1979 8N. jaljalae Mauriès, 1988 9N. taplejunga Shear, 1987 10N. gunsa Shear, 1987 11N. marmorata Golovatch, Geoffroy & Mauriès, 2006 12N. grandoides Golovatch, Geoffroy & Mauriès, 2006 13N. lobata Liu, in Liu et al. 2017 14N. jinfoshan Liu, in Liu et al. 2017 15N. wangi Liu, in Liu et al. 2017 16N. grandis Golovatch, Geoffroy & Mauriès, 2006 17N. troglodytes Liu, in Liu et al. 2017 18N. caeca Shear, 1999 19N. kavanaughi Shear, 2002 20N. pianma Shear, 2002 21N. pallida Mauriès, 1988 22N. birmanica Mauriès, 1988 23N. magna Shear, 2002 24N. griswoldi Shear, 2002 25N. vietnamica Golovatch, 1983 26N. taiensis Mauriès, 1988 27N. inthanonae Mauriès, 1988 28N. siamensis sp. nov.
SI Reduction of phosphoribulokinase amount and re-routing me-tabolism in Chlamydomonas reinhardtii CP12 mutants.
<p>Supplementary material associated with the manuscript<strong>: </strong>Reduction of phosphoribulokinase amount and re-routing me-tabolism in Chlamydomonas reinhardtii CP12 mutants</p>
Thermal Simulation and Experimental Analysis of Optically Pumped InP-on-Si Micro- and Nanocavity Lasers
<p>The source data of article on ArXiv: https://arxiv.org/abs/2112.06257</p>
SI DATA for Shin et al. (2022)
<p>SI DATA for Shin et al. (2022)</p>
Si /Pb(111)
<p>Silicon clusters on the Pb(111) surface.</p>
FIGURE 1 in A new species of stream toad of the genus Ansonia Stoliczka, 1870 (Anura: Bufonidae) from Nakhon Si Thammarat Range in southern Thailand
FIGURE 1. Distribution of the species of the Thai-Burmese clade of Ansonia.
Si, Ommatidium measurement
<p>Measuring the size of Ommatidium with foldscope and ImageMeter.</p>
Supplementary material 1 from: Zhao Y, Guo W-R, Golovatch SI, Liu W-X (2022) Revision of the javanicus species group of the millipede genus Glyphiulus Gervais, 1847, with descriptions of five new species from China (Diplopoda, Spirostreptida, Cambalopsidae). ZooKeys 1108: 89-118. https://doi.org/10.3897/zookeys.1108.85156
Table S1
ScienceDex guides
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Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.