Academic literature on the topic 'Lateral line neuromast'

Create a spot-on reference in APA, MLA, Chicago, Harvard, and other styles

Select a source type:

Consult the lists of relevant articles, books, theses, conference reports, and other scholarly sources on the topic 'Lateral line neuromast.'

Next to every source in the list of references, there is an 'Add to bibliography' button. Press on it, and we will generate automatically the bibliographic reference to the chosen work in the citation style you need: APA, MLA, Harvard, Chicago, Vancouver, etc.

You can also download the full text of the academic publication as pdf and read online its abstract whenever available in the metadata.

Journal articles on the topic "Lateral line neuromast"

1

Haehnel-Taguchi, Melanie, Otar Akanyeti, and James C. Liao. "Afferent and motoneuron activity in response to single neuromast stimulation in the posterior lateral line of larval zebrafish." Journal of Neurophysiology 112, no. 6 (2014): 1329–39. http://dx.doi.org/10.1152/jn.00274.2014.

Full text
Abstract:
The lateral line system of fishes contains mechanosensory receptors along the body surface called neuromasts, which can detect water motion relative to the body. The ability to sense flow informs many behaviors, such as schooling, predator avoidance, and rheotaxis. Here, we developed a new approach to stimulate individual neuromasts while either recording primary sensory afferent neuron activity or swimming motoneuron activity in larval zebrafish ( Danio rerio). Our results allowed us to characterize the transfer functions between a controlled lateral line stimulus, its representation by prima
APA, Harvard, Vancouver, ISO, and other styles
2

Kröther, Sophia, Joachim Mogdans, and Horst Bleckmann. "Brainstem lateral line responses to sinusoidal wave stimuli in still and running water." Journal of Experimental Biology 205, no. 10 (2002): 1471–84. http://dx.doi.org/10.1242/jeb.205.10.1471.

Full text
Abstract:
SUMMARYThe fish lateral line consists of superficial and canal neuromasts. In still water, afferent fibers from both types of neuromast respond equally well to a sinusoidally vibrating sphere. In running water, responses to a vibrating sphere of fibers innervating superficial neuromasts are masked. In contrast,responses of fibers innervating canal neuromasts are barely altered. It is not known whether this functional subdivision of the peripheral lateral line is maintained in the brain. We studied the effect of running water on the responses to a 50 Hz vibrating sphere of single units in the m
APA, Harvard, Vancouver, ISO, and other styles
3

Yang, Zhang, Liang, and Lu. "Research on an Artificial Lateral Line System Based on a Bionic Hair Sensor with Resonant Readout." Micromachines 10, no. 11 (2019): 736. http://dx.doi.org/10.3390/mi10110736.

Full text
Abstract:
Inspired by the lateral line system of fish, an artificial lateral line system based on bionic hair sensor with resonant readout is presented in this paper. An artificial lateral line system, which possesses great application potential in the field of gas flow visualization, includes two different sensors: a superficial neuromast and a canal neuromast flow velocity sensor, which are used to measure the constant and oscillatory air flow velocity, respectively. The sensitive mechanism of two artificial lateral line sensors is analyzed, and a finite element simulation is implemented to verify the
APA, Harvard, Vancouver, ISO, and other styles
4

Jung, Julie, Shirley J. Serrano-Rojas, and Karen M. Warkentin. "Multimodal mechanosensing enables treefrog embryos to escape egg-predators." Journal of Experimental Biology 223, no. 24 (2020): jeb236141. http://dx.doi.org/10.1242/jeb.236141.

Full text
Abstract:
ABSTRACTMechanosensory-cued hatching (MCH) is widespread, diverse and important for survival in many animals. From flatworms and insects to frogs and turtles, embryos use mechanosensory cues and signals to inform hatching timing, yet mechanisms mediating mechanosensing in ovo are largely unknown. The arboreal embryos of red-eyed treefrogs, Agalychnis callidryas, hatch prematurely to escape predation, cued by physical disturbance in snake attacks. When otoconial organs in the developing vestibular system become functional, this response strengthens, but its earlier occurrence indicates another
APA, Harvard, Vancouver, ISO, and other styles
5

Sapède, Dora, Nicolas Gompel, Christine Dambly-Chaudière, and Alain Ghysen. "Cell migration in the postembryonic development of the fish lateral line." Development 129, no. 3 (2002): 605–15. http://dx.doi.org/10.1242/dev.129.3.605.

Full text
Abstract:
We examine at the cellular level the postembryonic development of the posterior lateral line in the zebrafish. We show that the first wave of secondary neuromasts is laid down by a migrating primordium, primII. This primordium originates from a cephalic region much like the primordium that formed the primary line during embryogenesis. PrimII contributes to both the lateral and the dorsal branches of the posterior lateral line. Once they are deposited by the primordium, the differentiating neuromasts induce the specialisation of overlying epidermal cells into a pore-forming annulus, and the ent
APA, Harvard, Vancouver, ISO, and other styles
6

Marshall, N. J. "Structure and general distribution of free neuromasts in the black goby, Gobius niger." Journal of the Marine Biological Association of the United Kingdom 66, no. 2 (1986): 323–33. http://dx.doi.org/10.1017/s0025315400042971.

Full text
Abstract:
INTRODUCTIONThis paper on Gobius niger describes the ultrastructure of free neuromast papillae of both standard and mandibular types, emphasizing the polarity of the hair cells in each row or column. Evidence to suggest a functional difference between mandibular and standard neuromasts is reviewed, together with an hypothesis concerning the developmental origin of the mandibular row, relevant to the evolution of lateral line organs in general.
APA, Harvard, Vancouver, ISO, and other styles
7

Liao, James C., and Melanie Haehnel. "Physiology of afferent neurons in larval zebrafish provides a functional framework for lateral line somatotopy." Journal of Neurophysiology 107, no. 10 (2012): 2615–23. http://dx.doi.org/10.1152/jn.01108.2011.

Full text
Abstract:
Fishes rely on the neuromasts of their lateral line system to detect water flow during behaviors such as predator avoidance and prey localization. Although the pattern of neuromast development has been a topic of detailed research, we still do not understand the functional consequences of its organization. Previous work has demonstrated somatotopy in the posterior lateral line, whereby afferent neurons that contact more caudal neuromasts project more dorsally in the hindbrain than those that contact more rostral neuromasts (Gompel N, Dambly-Chaudiere C, Ghysen A. Development 128: 387–393, 2001
APA, Harvard, Vancouver, ISO, and other styles
8

Janssen, John, Neville W. Pankhurst, and G. Richard Harbison. "Swimming and body orientation of Notolepis rissoi in relation to lateral line and visual function." Journal of the Marine Biological Association of the United Kingdom 72, no. 4 (1992): 877–86. http://dx.doi.org/10.1017/s0025315400060112.

Full text
Abstract:
When observed from a submersible, the mesopelagic paralepidid Notolepis rissoi (Pisces: Paralepididae) will hover head up with the body at about 45°. The fish's swimming motion is restricted to the extreme caudal region with most of the body rigid. The trunk lateral-line canal ends at about the position that caudal motion becomes noticeable and there is a great decrease in neuromast size near the posterior end of the canal. The size of the neuromasts is also inversely related to the percentage of red muscle at the same body level. The eyes have an aphakic space oriented dorso-anteriorly at abo
APA, Harvard, Vancouver, ISO, and other styles
9

Gompel, N., C. Dambly-Chaudiere, and A. Ghysen. "Neuronal differences prefigure somatotopy in the zebrafish lateral line." Development 128, no. 3 (2001): 387–93. http://dx.doi.org/10.1242/dev.128.3.387.

Full text
Abstract:
The central projection of the fish lateral line displays somatotopic ordering. In order to know when and how this ordering is established, we have labelled single sensory neurones and followed the growth of their neurites. We show that the neuromast cells and the corresponding neurones are not related by a fixed lineage, and also that somatotopic differences between anterior and posterior line neurones, and among neurones of the posterior line, are present before innervation of the sense organs. We propose that the position of the central projection defines the peripheral position that the neu
APA, Harvard, Vancouver, ISO, and other styles
10

Harvey, R., J. H. S. Blaxter, and R. D. Hoyt. "Development of superficial and lateral line neuromasts in larvae and juveniles of plaice (Pleuronectes platessa) and sole (Solea solea)." Journal of the Marine Biological Association of the United Kingdom 72, no. 3 (1992): 651–68. http://dx.doi.org/10.1017/s0025315400059427.

Full text
Abstract:
The distribution, morphology and sensory cell polarity of neuromasts were followed in developing larvae and recently settled juveniles of Dover sole (Solea soled) and plaice (Pleuronectes platessa) using scanning electron microscopy. In plaice the number of neuromasts increased at a similar rate on both sides of the fish throughout development, and most head neuromasts became incorporated into canals. On the trunk presumptive canal neuromasts were outnumbered by accessory superficial neuromasts in early juveniles. In sole the number of neuromasts increased at a similar rate on both sides until
APA, Harvard, Vancouver, ISO, and other styles

Dissertations / Theses on the topic "Lateral line neuromast"

1

Pastana, Murilo Nogueira de Lima. "Canais e poros do sistema látero-sensorial cefálico de Characiformes (Ostariophysi): anatomia e seu significado filogenético." Universidade de São Paulo, 2014. http://www.teses.usp.br/teses/disponiveis/59/59139/tde-06012015-123252/.

Full text
Abstract:
O sistema látero-sensorial dos peixes é responsável, dentre outras funções, pela percepção de vibrações e de movimentos na água. A unidade funcional desse sistema é denominada neuromasto, o qual pode estar presente na superfície ou em ranhuras da pele, ou também em canais que percorrem ossos dérmicos, alcançando a superfície externa da pele por intermédio de poros. O padrão de ossificação dos canais sensoriais cefálicos é conservado em diversas linhagens de peixes de tal forma que esse complexo morfológico representa uma rica fonte de informações filogenéticas, sendo amplamente utilizado em an
APA, Harvard, Vancouver, ISO, and other styles
2

Zamora, Lilliann Y. "Alcohol-Induced Morphological Deficits in the Devlopment of Octavolateral Organs of the Zebrafish (Danio rerio)." Scholarly Repository, 2011. http://scholarlyrepository.miami.edu/oa_theses/279.

Full text
Abstract:
Prenatal alcohol exposure is known to have many profound detrimental effects on human fetal development (fetal alcohol spectrum disorders), which may manifest into lifelong disabilities. Although hearing deficiency is a recognized effect, how alcohol affects the auditory/vestibular systems has not been well studied. This is the first study that used the zebrafish, Danio rerio, as a model organism to investigate morphological effects of alcohol on the developing octavolateral system (auditory, vestibular and lateral line). Zebrafish embryos of two hours post fertilization (hpf) were treated
APA, Harvard, Vancouver, ISO, and other styles
3

Kindig, Kayla Jeanne. "Characterization of the Inherent Electrophysiology of Zebrafish Hair Cells and the Effect of Mutations in MET Channel Candidate Genes." Case Western Reserve University School of Graduate Studies / OhioLINK, 2019. http://rave.ohiolink.edu/etdc/view?acc_num=case1554295609519668.

Full text
APA, Harvard, Vancouver, ISO, and other styles
4

Han, Hao-Wei, and 韓皓偉. "Roles of zebrafish Nogo coreceptors in lateral line neuromast formation during zebrafish development." Thesis, 2007. http://ndltd.ncl.edu.tw/handle/24890188177461292176.

Full text
Abstract:
碩士<br>國立臺灣海洋大學<br>生物科技研究所<br>95<br>The lateral line system of zebrafish is composed of several sense organs called neuromasts. It has been shown that the neuromast formation is controlled by lateral line nervous system in zebrafish. On the other hand, two sets of Nogo ternary receptor complexes, NgR1/LINGO-1/p75NTR and NgR1/LINGO-1/TROY, could affect the neurite outgrowth or regeneration. In this study, we investigated the roles of three Nogo coreceptors, p75NTR, LINGO-1 and TROY, in neuromast formation in zebrafish. We performed whole-mount in situ hybridization to analyze temporal and spatia
APA, Harvard, Vancouver, ISO, and other styles

Book chapters on the topic "Lateral line neuromast"

1

Kottapalli, Ajay Giri Prakash, and Mohsen Asadnia. "Lateral-Line Inspired MEMS Neuromast Sensors." In Biomimetic Microsensors Inspired by Marine Life. Springer International Publishing, 2016. http://dx.doi.org/10.1007/978-3-319-47500-4_1.

Full text
APA, Harvard, Vancouver, ISO, and other styles
2

Blaxter, John H. S., and Lee A. Fuiman. "Function of the Free Neuromasts of Marine Teleost Larvae." In The Mechanosensory Lateral Line. Springer New York, 1989. http://dx.doi.org/10.1007/978-1-4612-3560-6_24.

Full text
APA, Harvard, Vancouver, ISO, and other styles
3

Denton, E. J., and J. A. B. Gray. "Some Observations on the Forces Acting on Neuromasts in Fish Lateral Line Canals." In The Mechanosensory Lateral Line. Springer New York, 1989. http://dx.doi.org/10.1007/978-1-4612-3560-6_11.

Full text
APA, Harvard, Vancouver, ISO, and other styles
4

"Th e Lateral Line System in Lungfi shes: Mechanoreceptive Neuromasts and Electroreceptive Ampullary Organs." In The Biology of Lungfishes. CRC Press, 2016. http://dx.doi.org/10.1201/b10357-22.

Full text
APA, Harvard, Vancouver, ISO, and other styles

Conference papers on the topic "Lateral line neuromast"

1

Sharif, Montassar Aidi, Matthew J. McHenry, and Xiaobo Tan. "Modeling of a Bio-Inspired Canal-Type Lateral Line System." In ASME 2017 Conference on Smart Materials, Adaptive Structures and Intelligent Systems. American Society of Mechanical Engineers, 2017. http://dx.doi.org/10.1115/smasis2017-3756.

Full text
Abstract:
It is of interest to exploit the insight from the lateral line system of fish for flow sensing applications. The lateral line consists of arrays of flow sensors, known as neuromasts, with hair cells encased within a gel-like structure called cupula. There are two types of neuromasts, superficial neuromasts, which reside on the surface, and canal neuromasts, which are recessed within a channel with its ends open at the body’s surface. In this work we investigate the modeling of a canal-type artificial lateral line system. The canal is filled with viscous fluid to emulate its biological counterp
APA, Harvard, Vancouver, ISO, and other styles
2

Barbier, Charlotte, and Joseph A. C. Humphrey. "Numerical Calculation of the Flow in the Fish Lateral Line Canal: Applications to Predators Tracking Prey." In ASME 2006 International Mechanical Engineering Congress and Exposition. ASMEDC, 2006. http://dx.doi.org/10.1115/imece2006-14165.

Full text
Abstract:
Fish use sensors inside the lateral line trunk canal (LLTC) to detect the motion of water in their surroundings. The LLTC is a complex sensory organ consisting of a long tube no more than a few millimeters in diameter embedded immediately under the skin of the fish on each side of its body. In most fish, pore-like openings are regularly distributed along the LLTC, and a minute sensor enveloped in a gelatinous cupula, referred to as a neuromast, is located between each pair of pores. Drag forces resulting from fluid motions induced inside the LLTC by pressure fluctuations in the external flow s
APA, Harvard, Vancouver, ISO, and other styles
3

Tamaddoni, Nima, and Andy Sarles. "Fabrication and Characterization of a Membrane Based Hair Cell Sensor That Features Soft Hydrogel Materials." In ASME 2012 Conference on Smart Materials, Adaptive Structures and Intelligent Systems. American Society of Mechanical Engineers, 2012. http://dx.doi.org/10.1115/smasis2012-8067.

Full text
Abstract:
One of the most common sensory structures in nature is the hair cell. Examples of hair cells include the inner and outer hair cells in the inner ears of vertebrates, external sensory hairs on the legs of spiders, and neuromasts found along the lateral lines of fish. Recent work by Sarles and Leo demonstrated that self-assembly methods could be used to construct a membrane-based hair cell that responds to a physical disturbance of the hair. An artificial cell membrane (or lipid bilayer) formed at the interface of two lipid-encased hydrogel volumes, serves as the transduction element in the devi
APA, Harvard, Vancouver, ISO, and other styles
We offer discounts on all premium plans for authors whose works are included in thematic literature selections. Contact us to get a unique promo code!