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Fig. 1 in Positive association between PTN polymorphisms and schizophrenia in Northeast Chinese Han population.
Fig. 1. Embryonic shell of Trophon geversianus. Landmarks (LM; white) and semilandmarks (grey) configurations are used to capture the embryo's shell shape. These include: 1- the aperture extreme of the starting point of the last whorl, 2- the union of the aperture suture with the first whorl, 3- maximum depression of columella, 4- maximum protuberance of umbilicus shell, 5- outermost tangent to the dashed line point of the lip, 6- maximum internal concavity of the aperture zone tangent with the dashed line, 7- maximum external concavity of aperture zone tangent with the dashed line and 8- maximum upper curvature of the first whorl tangent with to the dashed line, 9-11- semilandmarks slipped between LM 1 and 5, 12-15- semilandmarks slipped between LM 5 and 3, 16- semilandmark slipped between LM 3 and 4, 17-18- slipped semilandmarks between LM 4 and 7, 19-21- slipped semilandmarks between LM 7 and 2, 22-27- slipped semilandmarks between LM 3 and 8, 28-34- slipped semilandmarks between LM 8 and 1. Scale bar = 1 mm.
Fig. 4. A in Positive association between PTN polymorphisms and schizophrenia in Northeast Chinese Han population.
Fig. 4. A-Frequencies of discriminant values predicted by the cross-validation test. B-The image shows the mean of the shape of each treatment overlapped, increasing the variation three times. The 13°C and 18°C shapes are shown in light blue and pink, respectively. Arrows indicate the general direction of the shell shape variation.
Fig. 4 in Positive association between PTN polymorphisms and schizophrenia in Northeast Chinese Han population.
Fig. 4. Batellopsis paula gen. et sp. nov., holotype, ovigerous female (CL 4.0 mm), north of Île des Pins, New Caledonia (MNHN-IU-2018-4937): A, mandible, lateral view; B, maxillule, lateral view; C, maxilla, lateral view; D, first maxilliped, lateral view; E, second maxilliped, lateral view; F, third maxilliped, mesial view; G, same, proximal half, lateral view.
Fig. 4 in Positive association between PTN polymorphisms and schizophrenia in Northeast Chinese Han population.
Fig. 4. Typical examples of absorption spectra of Plakobranchus ocellatus mucus. (A), Spectra with no prominent absorptions in the visible-UVAUVB (black type, solid line; white type, broken line) and a spectrum with a shoulder at around 330 nm (arrowhead). (B) Spectra with a shoulder at around 400 nm.
Fig. 3 in Positive association between PTN polymorphisms and schizophrenia in Northeast Chinese Han population.
Fig. 3. Refractive indices of the body mucus from Plakobranchus ocellatus (black type, gray circles; white type, open diamonds). The dashed line indicates the approximate refractive index of seawater (1.339).
Fig. 3 in Positive association between PTN polymorphisms and schizophrenia in Northeast Chinese Han population.
Fig. 3. Batellopsis paula gen. et sp. nov., holotype, ovigerous female (CL 4.0 mm), north of Île des Pins, New Caledonia (MNHN-IU-2018-4937): A, frontal region (right antennular peduncle broken), lateral view; B, same, dorsal view; C, telson and uropods, lateral view; D, telson, dorsal view.
Fig. 2 in Positive association between PTN polymorphisms and schizophrenia in Northeast Chinese Han population.
Fig. 2. Externae of Korean rhizocephalans in this study. Blue arrow: mantle aperture, scale bar: 2 mm for H and J, 1mm for A-G, I, K, L. A, Peltogasterella gracilis; B, Peltogasterella sp.; C, Peltogaster sp. 1; D, Parasacculina imberbis; E, Parasacculina pilosella; F, Parasacculina yatsui; G, Parasacculina oblonga; H, Parasacculina sp. 1; I, Polyascus cf. gregarius; J, Heterosaccus papillosus; K, Sacculina angulata; L, Sacculina gracilis. Externae of C and H are incomplete, because they were sampled for molecular analysis.
Fig. 5 in Positive association between PTN polymorphisms and schizophrenia in Northeast Chinese Han population.
Fig. 5. Centroid size (CS) means between the treatments. The differences were significant (p = 0.0015).
Fig. 3 in Positive association between PTN polymorphisms and schizophrenia in Northeast Chinese Han population.
Fig. 3. Dispersion plot between the first two principal components (PC1 vs PC2) with the percentage of the variation explained by each axis. The ellipses represent 90% confidence around the mean shape of the treatments. The lower graphs represent the extremes of variation with a scale factor of -0.15 and 0.15 respectively. In both cases, the deformation is shown in color compared to the consensus form of light blue polygon.
Fig. 7 in Positive association between PTN polymorphisms and schizophrenia in Northeast Chinese Han population.
Fig. 7. Trawl haul from EXBODI station CP3841 (depth: 477–503 m), north of Île des Pins, New Caledonia, type locality of Batellopsis paula gen. et sp. nov. Note the presence of several sponges, predominantly Hexactinellida, including the presumed host of Batellopsis paula gen. et sp. nov. and several spongicolid shrimps and galatheids. Photo credit: Laure Corbari et al., MNHN.
Fig. 6 in Positive association between PTN polymorphisms and schizophrenia in Northeast Chinese Han population.
Fig. 6. Batellopsis paula gen. et sp. nov., holotype, ovigerous female (CL 4.0 mm), north of Île des Pins, New Caledonia (MNHN-IU-2018-4937): A, second pereiopod, lateral view; B, same, chela, mesial view; C, same, fingers with some microserrulate setae removed to show details of distal portion of fingers, mesial view; D, third pereiopod, lateral view; E, same, distal portion of propodus and dactylus, lateral view; F, fourth pereiopod, lateral view; G, fifth pereiopod, mesial view; H, same, propodus and dactylus, lateral view.
Fig. 5 in Positive association between PTN polymorphisms and schizophrenia in Northeast Chinese Han population.
Fig. 5. Batellopsis paula gen. et sp. nov., holotype, ovigerous female (CL 4.0 mm), north of Île des Pins, New Caledonia (MNHN-IU-2018-4937): A, major cheliped, lateral view; B, same, chela, dorsolateral view; C, same, fingers, lateral view; D, same, mesial view; E, minor cheliped, lateral view; F, same, carpus and chela, mesial view; G, same, lateral view.
Fig. 2 in Positive association between PTN polymorphisms and schizophrenia in Northeast Chinese Han population.
Fig. 2. Typical examples of absorption spectra of body mucus. (A), Spectrum with no prominent absorptions (thick line, Phyllidia picta), spectrum with one absorption peak (arrow: middle line, Aldisa albatrossae), and spectrum with one shoulder (arrowhead, thin line, Sebadoris fragilis) in the visible-UVA-UVB range (280–800 nm). (B), Spectra with a peak in visible range (large arrow) and/or multiple peaks in the UVA-UVB range (arrows). Thick line, Chelidonura hirundinina; thin line, Asteronotus cespitosus.
Fig. 1 in Positive association between PTN polymorphisms and schizophrenia in Northeast Chinese Han population.
Fig. 1. Phylogenetic tree constructed using Maximum Likelihood (ML) and Bayesian Inference (BI) methods, based on the concatenation of 16S, CO1, and H3 gene sequences. The numbers above or below each branch indicate the Bootstrap support and Bayesian Posterior Probabilities, respectively. The tree represents the relationship among genera within hexactinellid-associated alpheid clades (ingroup, in colours), with two species of Prionalpheus and two species of Alpheopsis as outgroups (black lines). The genera Batella, Batellopsis gen. nov., Vexillipar and Bannereus are highlighted in yellow, blue, red, and green, respectively. Within each genus (coloured boxes), two main characters are illustrated: left, major cheliped fingers (with bulge-groove system or teeth); right, second pereiopod fingers, showing disposition of setae (organised in fan-like patterns or in simple tufts).
Fig. 1 in Positive association between PTN polymorphisms and schizophrenia in Northeast Chinese Han population.
Fig. 1. Refractive indices of the body mucus from 31 species of heterobranch sea slugs. The dashed line indicates the approximate refractive index of seawater (1.339). This plot does not include the data of Plakobranchus ocellatus, which are shown in figure 3.
Fig. 1 in Positive association between PTN polymorphisms and schizophrenia in Northeast Chinese Han population.
Fig. 1. Distribution map of the eight most common Korean rhizocephalans. Blue dotted lines indicate divisions between ecoregions mentioned in Muhammad et al. (2022) and Kim et al. (2020 2022).
Fig. 2 in Positive association between PTN polymorphisms and schizophrenia in Northeast Chinese Han population.
Fig. 2. Batellopsis paula gen. et sp. nov., holotype, ovigerous female (CL 4.0 mm), north of Île des Pins, New Caledonia (MNHN-IU-2018-4937): habitus, left lateral view [right side appendages omitted, except for major cheliped].
Fig. 2 in Positive association between PTN polymorphisms and schizophrenia in Northeast Chinese Han population.
Fig. 2. Non-metric multidimensional scaling (NMDS) ordination for recovered amoebae species in enrichment media based on SØrensen similarity index of species presence (for media abbreviations see Materials and methods). © 2018 Academia Sinica, Taiwan
Fig. 1 in Positive association between PTN polymorphisms and schizophrenia in Northeast Chinese Han population.
Fig. 1. Hierarchical cluster analysis of recovered amoebae species in enrichment media (SØrensen similarity index, complete linkage Method). Vertical axis represents dissimilarity (for media abbreviations see Materials and methods). © 2018 Academia Sinica, Taiwan
Fig. 3 in Positive association between PTN polymorphisms and schizophrenia in Northeast Chinese Han population.
Fig. 3. The numbers of families recovered using different culture media (for media abbreviations see Materials and methods).
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