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  • 1
    Keywords: Forschungsbericht ; Wale
    Type of Medium: Online Resource
    Pages: Online-Ressource (PDF-Datei: 26 S., 1.902 KB) , Ill., graph. Darst.
    Language: German
    Note: Unterschiede zwischen dem gedruckten Dokument und der elektronischen Ressource können nicht ausgeschlossen werden , Förderkennzeichen BMBF 03F0479I , Systemvoraussetzungen: Acrobat reader. , Zsfassungen in dt. u. engl. Sprache
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  • 2
    Publication Date: 2014-04-15
    Description: Important processes of living cells, including intracellular transport, cell crawling, contraction, division, and mechanochemical signal transduction, are controlled by cytoskeletal (CSK) dynamics. CSK dynamics can be measured by tracking the motion of CSK-bound particles. Particle motion has been reported to follow a superdiffusive behavior that is believed to arise from ATP-driven intracellular stress fluctuations generated by polymerization processes and motor proteins. The power spectrum of intracellular stress fluctuations has been suggested to decay with 1/2 (Lau et al, Phys Rev Lett 91:198101). Here we report direct measurements of cellular force fluctuations that are transmitted to the extracellular matrix, and compared them with the spontaneous motion of CSK-bound beads. Fibronectin coated fluorescent beads (Ø 1 m) were bound to the CSK of confluent human vascular endothelial cells. Forces transmitted to the extracellular matrix (ECM) were quantified by plating these cells onto a collagen coated elastic polyacrylamide hydrogel, and measuring the gel deformation from the displacement of embedded fluorescent beads (Ø 0.5 m). Bead motion of both CSK-bound and ECM-bound beads were measured with nanometer-resolution and expressed as mean square displacement (MSD). The MSD of both CSK-bound and ECM-bound beads displayed a superdiffusive behavior that was well described by a power law: MSD = a*t^b. Surprisingly, we found an identical power law exponent for both CSK-bound and ECM-bound beads of b = 1.6. This finding suggests that the spontaneous motion of CSK-bound beads is driven by stress fluctuations with a 1/ b+1 power spectrum. This result is consistent with the notion that CSK dynamics and CSK stress fluctuations are closely coupled.
    Repository Name: EPIC Alfred Wegener Institut
    Type: Book , peerRev
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  • 3
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    ACOUSTICAL SOC AMER AMER INST PHYSICS
    In:  EPIC3Journal of the Acoustical Society of America, ACOUSTICAL SOC AMER AMER INST PHYSICS, 138(1), pp. 267-278, ISSN: 0001-4966
    Publication Date: 2015-07-22
    Description: Passive acoustic monitoring is an important tool in marine mammal studies. However, logistics and finances frequently constrain the number and servicing schedules of acoustic recorders, requiring a trade-off between deployment periods and sampling continuity, i.e., the implementation of a subsampling scheme. Optimizing such schemes to each project's specific research questions is desirable. This study investigates the impact of subsampling on the accuracy of two common metrics, acoustic presence and call rate, for different vocalization patterns (regimes) of baleen whales: (1) variable vocal activity, (2) vocalizations organized in song bouts, and (3) vocal activity with diel patterns. To this end, above metrics are compared for continuous and subsampled data subject to different sampling strategies, covering duty cycles between 50% and 2%. The results show that a reduction of the duty cycle impacts negatively on the accuracy of both acoustic presence and call rate estimates. For a given duty cycle, frequent short listening periods improve accuracy of daily acoustic presence estimates over few long listening periods. Overall, subsampling effects are most pronounced for low and/or temporally clustered vocal activity. These findings illustrate the importance of informed decisions when applying subsampling strategies to passive acoustic recordings or analyses for a given target species.
    Repository Name: EPIC Alfred Wegener Institut
    Type: Article , isiRev
    Format: application/pdf
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  • 4
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    ACOUSTICAL SOC AMER AMER INST PHYSICS
    In:  EPIC3Journal of the Acoustical Society of America, ACOUSTICAL SOC AMER AMER INST PHYSICS, 146, pp. 4699, ISSN: 0001-4966
    Publication Date: 2020-07-07
    Description: The sound energy from marine mammal populations vocalizing over extended periods of time adds up to quasi-continuous “choruses” which create characteristic peaks in marine sound spectra. We present an approach to estimate animal distribution that uses chorus recordings from very sparse unsynchronized arrays in ocean areas that are too large or remote to survey with traditional methods. To solve this underdetermined inverse problem, we use simulated annealing to estimate the distribution of vocalizing animals on a geodesic grid. This includes calculating a transmission loss matrix, which connects all grid nodes and recorders. Geometrical spreading and the ray trace model BELLHOP were implemented. The robustness of the proposed method was tested with simulated marine mammal distributions in the Atlantic sector of Southern Ocean using both drifting acoustic recorders (Argo floats) and a moored array as acoustic receivers. The results show that inversion accuracy mainly depends on the number and location of the recorders and can be predicted using the entropy and range of the estimated source distribution. Tests with different transmission loss models indicated that inversion accuracy is affected only slightly by inevitable inaccuracies in transmission loss models. The presented method could also be applied to bird, crustacean and insect choruses.
    Repository Name: EPIC Alfred Wegener Institut
    Type: Article , peerRev
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