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32 results for “Lateral line system”

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zenodo32/100

FIG. 12 in Organization and Ontogeny of a Complex Lateral Line System in a Goby (Elacatinus lori), with a Consideration of Function and Ecology

FIG. 12. Neuromast morphology in species of Tigrigobius (lateral views; rostral to left). (A) T. multifasciatus (AMNH 23621)—radiating superficial lines on the cheek (3, 4, 5, b, d; see Fig. 3B). (B) Lines 5 and b (see box in A), which have a tip-to-tip arrangement. (C) T. gemmatus (AMNH 26076)— preopercular canal (PO) pores (e, c) and opercular series (lines ot, os, oi, forming the ''F'' on the operculum). (D) T. gemmatus (AMNH 26076)— superficial neuromast line on trunk just caudal to tip of pectoral fin when against body. (E) T. dilepis (AMNH 250269)—diamond-shaped superficial neuromasts in line os (ventral horizontal line in ''F'' on operculum) with ''tip-to-tip'' arrangement and hair cell orientation (double-headed arrows) perpendicular to line. (F) T. gemmatus (AMNH 26076)—first two diamond-shaped superficial neuromasts in line b (see box in B) with ''tip-to-tip'' arrangement and hair cell orientation (double-headed arrows) perpendicular to line. Scale bars: A, C, 200 lm; B, D, 100 lm; E–F, 20 lm.

opennotspecifiedDec 2020View details →
zenodo32/100

FIG. 8 in Organization and Ontogeny of a Complex Lateral Line System in a Goby (Elacatinus lori), with a Consideration of Function and Ecology

FIG. 8. Neuromast arrangements within lines in E. lori and other goby species examined. (A) Canal neuromasts, aligned ''side-by-side'' with axis of best physiological sensitivity parallel to the length of the canal and line of neuromasts (black lines represent canal walls). (B) Canal neuromast homologs or caudal fin superficial neuromasts, arranged ''side-by-side'' with axis of best physiological sensitivity parallel to line of neuromasts. On the caudal fin, each neuromast line is located on the membrane between adjacent fin rays. Dashed lines represent location of canal walls (in an ancestral canal) on the head or the fin rays on the tail. (C) Superficial neuromasts aligned ''tip-to-tip'' with axis of best physiological sensitivity perpendicular to line. Gray area ¼ sensory strip. Double-headed arrow ¼ axis of best physiological sensitivity (hair cell orientation).

opennotspecifiedDec 2020View details →
zenodo32/100

FIG. 11 in Organization and Ontogeny of a Complex Lateral Line System in a Goby (Elacatinus lori), with a Consideration of Function and Ecology

FIG. 11. Ontogeny of neuromast number on one side of head in E. lori larvae and post-settlement juveniles (0–44 dph and wild-caught settler) based on histological material. Black circles ¼ canal neuromasts, open circles ¼ canal neuromast homologs þ superficial neuromasts. Canal neuromast number increases to a constant (n ¼ 8), which is reached at ~6 mm SL (~15 dph), while canal neuromast homologs and superficial neuromast number increase in number with fish size (R2 ¼ 0.982).

opennotspecifiedDec 2020View details →
zenodo32/100

FIG. 7 in Organization and Ontogeny of a Complex Lateral Line System in a Goby (Elacatinus lori), with a Consideration of Function and Ecology

FIG. 7. Superficial neuromasts and canal neuromast homologs on the head and trunk in E. lori (rostral to left in all images). (A) Radiating lines of superficial neuromasts (lines 2, 3, 4, 5, b, and d) on cheek (lateral view). (B) Superficial neuromast series (lines ot, os, and oi) form an ''F'' on operculum (lateral view); preopercular canal pores (e, c) visible. (C) Post-otic region of head (caudal to post-otic canal pore); upper pair of SNs are aligned tip-to-tip and lower group of neuromasts extending caudally from the canal pore are aligned side-by-side (interpreted as canal neuromast homologs). (D) Portion of the double line of neuromasts on mandible (in ventral view), in which the neuromasts in the upper (more lateral) line have a tip-to-tip arrangement (line e; superficial neuromasts) and those in the lower (more median) line have a side-to-side arrangement (line i; canal neuromast homologs). (E) On the trunk, a line of three superficial neuromasts at the horizontal septum arranged tip-to-tip. (F) Middle row of superficial neuromasts on caudal fin (line lc1) aligned side-to-side. Double-headed arrows indicate axis of best physiological activity of hair cells in all images. Scale bars: A–B, 200 lm; C, 100 lm; D–E, 10 lm; F, 20 lm.

opennotspecifiedDec 2020View details →
ClinicalTrials.gov32/100

Migration and Functional Outcome of DELTA Xtend Reverse Shoulder Lateralized Glenosphere Line Extension System

ClinicalTrials.gov study NCT05447819. IPD Sharing: UNDECIDED. Countries: 1. Publications: 43.

restrictedIPD-UNDECIDEDFeb 2026View details →
zenodo28/100

Figure 2 from: Ito T, Fukuda T, Morimune T, Hosoya K (2017) Evolution of the connection patterns of the cephalic lateral line canal system and its use to diagnose opsariichthyin cyprinid fishes (Teleostei, Cyprinidae). ZooKeys 718: 115-131. https://doi.org/10.3897/zookeys.718.13574

Figure 2 - Diagram of the cephalic lateral line canal systems in the opsariichthyin fishes. A Candidia barbata, FKUN 34180, 94.8 mm SL B C. pingtungensis, FKUN 35215, 72.9 mm SL C Nipponocypris koreanus, FKUN 40587, 94.1 mm SL. Scale bar 5 mm. D N. sieboldii, FKUN 40571, 90.5 mm SL E N. temminckii, FKUN 40575, 94.5 mm SL F Opsariichthys bidens, LBM 8852, 94.8 mm SL. Scale bar 5 mm. G O. evolans, FKUN 35199, 81.1 mm SL H O. kaopingensis, KUN-P40545, 80.0 mm SL I O. pachycephalus, FKUN 35181, 69.4 mm SL. Scale bar 5 mm. J O. uncirostris, FKUN 16487, 219.0 mm SL K Parazacco spilurus, KUN-P45852, 57.5 mm SL L Zacco platypus, FKUN 40558, 93.0 mm SL. Scale bar 5 mm.

opencc-by-4.0Dec 2017View details →
zenodo28/100

Figure 3 from: Ito T, Fukuda T, Morimune T, Hosoya K (2017) Evolution of the connection patterns of the cephalic lateral line canal system and its use to diagnose opsariichthyin cyprinid fishes (Teleostei, Cyprinidae). ZooKeys 718: 115-131. https://doi.org/10.3897/zookeys.718.13574

Figure 3 - Parsimonious ancestral state reconstruction of the connecting states of the cephalic lateral line canal systems of the opsariichthyin fishes and their out-groups from the maximum likelihood tree inferred from cytochrome b sequences (InL = 12054.39). A The connecting states between the supraorbital (SO) and infraorbital (IO) canals B the connecting states between the temporal (TC) and preoperculomandibular (POM) canals C the connecting states between the left and right sides of the supratemporal canals (ST). The color of each node indicates the connecting states of the cephalic lateral line canal system: black, continuity; white, discontinuity; gray, both sides of the ST connected and extending anteriorly.

opencc-by-4.0Dec 2017View details →
zenodo28/100

Figure 1 from: Ito T, Fukuda T, Morimune T, Hosoya K (2017) Evolution of the connection patterns of the cephalic lateral line canal system and its use to diagnose opsariichthyin cyprinid fishes (Teleostei, Cyprinidae). ZooKeys 718: 115-131. https://doi.org/10.3897/zookeys.718.13574

Figure 1 - Terminology used for cephalic lateral line canal systems: SO supraorbital canal IO infraorbital canal TC temporal canal POM preoperculomandibular canal ST supratemporal canal frb frontal bridge cpb centroparietal bridge itb infratemporal bridge apj anteropteroitic joint.

opencc-by-4.0Dec 2017View details →
zenodo28/100

Figures 1-6 in The cephalic lateral line system of temperate perches (Perciformes: Percichthyidae) from Argentinean Patagonia

Figures 1-6. Cephalic lateral line canal system of juvenile perches. Diagram of dorsal and ventral view based on one specimen of Percichthys trucha, 43 mm SL (10380 MACN-Ict): (1) dorsal view showing the supraorbital canal (SOC) and the supraorbital commissure (SOCom); (2) ventral view showing the anterior part of the preopercular-mandibular canal (PMC); (3) lateral view based on a composite of specimens, showing the infraorbital canal (IOC), the preopercular section of the PMC, the temporal canal (TC), and the supratemporal canal (STC). (4-6) Photograph of the cephalic lateral line canal system of a P. trucha juvenile (43 mm SL) stained with hematoxylin: (4) dorsal view; (5) ventral view; (6) lateral view. Scale bars: 4 mm.

opencc-by-4.0Nov 2016View details →
geo24/100

Transcriptome profiling reveals of a new cell line based model system of Amyotrophic Lateral Sclerosis model

GEO Series GSE150397. Mus musculus. 20 samples. Type: Expression profiling by high throughput sequencing.

openGEO-OpenDec 2022View details →
zenodo20/100

FIG. 13 in Organization and Ontogeny of a Complex Lateral Line System in a Goby (Elacatinus lori), with a Consideration of Function and Ecology

FIG. 13. Multidimensional scaling (MDS) plot showing similarities in neuromast number (in 15 superficial neuromast lines on the head) among species of Elacatinus and Tigrigobius that occupy different microhabitats (see Table 2 and text for additional details). Points were plotted using Euclidean distances (2-D stress value ¼ 0.14) in relation to their similarity/ dissimilarity to each other, not with respect to specific values on an axis. This plot indicates that species positioned closer to each other have more similar numbers of superficial neuromasts (or canal neuromast homologs, line u; see Table 2) than those more distant from one another. Green triangle ¼ ''coral,'' dark blue inverted triangle ¼ ''other,'' and light blue square ¼ ''sponge.'' Multiple individuals of the same species are numbered.

opennotspecifiedDec 2020View details →
zenodo20/100

FIG. 3 in Organization and Ontogeny of a Complex Lateral Line System in a Goby (Elacatinus lori), with a Consideration of Function and Ecology

FIG. 3. Diagrammatic representation of cranial canals (solid black lines with open pores) and neuromasts (black circles) in E. lori based on fluorescent images (see Figure 2) of an adult female (44 mm SL). (A) Dorsal, (B) lateral, and (C) ventral views. A total of 7 series of superficial neuromasts (as defined by Sanzo, 1911) are color coded: red ¼ preorbital, green ¼ suborbital, yellow ¼ preoperculo-mandibular, orange ¼ opercular, blue ¼ oculoscapular, purple ¼ anterior dorsal, and pink ¼ body. The body and caudal series are illustrated in Figure 4. Neuromast lines within series (labeled) are named following Sanzo (1911) and Wongrat and Miller (1991). Position of canals and canal pores based on histological material and labeled following Sanzo (1911).

opennotspecifiedDec 2020View details →

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