7 research outputs found

    SystÚme électro-optique pour l'optogénétique cardiaque et l'enregistrement d'ECG

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    Depuis quelques temps, l'optogĂ©nĂ©tique est utilisĂ©e en recherche pour remplacer la stimulation Ă©lectrique de neurones par la photo-stimulation. Des scientifiques cherchent dĂ©sormais Ă  Ă©tendre l'optogĂ©nĂ©tique Ă  la recherche sur le coeur. Plusieurs ont prouvĂ©s la possibilitĂ© de contrĂŽler les battements cardiaques Ă  l'aide de lumiĂšre en laboratoire sur des rongeurs. Les expĂ©rimentations effectuĂ©es sur le coeur jusqu'Ă  maintenant reposent sur des systĂšmes filaires et encombrants qui permettent la mesure de l'Ă©lectrocardiogramme (ECG) Ă  l'aide d'Ă©lectrode et la photo-stimulation Ă  l'aide d'une fibre optique. Ces systĂšmes augmentent le stress chez les animaux de laboratoire ce qui peut induire des erreurs dans les mesures. Ce mĂ©moire dĂ©crit la conception d'un systĂšme rĂ©pondant Ă  cette problĂ©matique. Le systĂšme dĂ©veloppĂ© permet la photo-stimulation cardiaque et l'enregistrement d'ECG sans-fil Ă  l'aide d'un implant et d'un circuit basse consommation, le tout alimentĂ© par batterie. Étant donnĂ© la prĂ©sence d'artefact de mouvement dans les ECG mesurĂ©s lors de tests prĂ©liminaires, le systĂšme comporte aussi un algorithme de filtrage des artefacts en temps rĂ©el. Finalement, le fonctionnement du prototype est dĂ©montrĂ© par diffĂ©rents tests in-vivo.In the past few years, optogenetics was used in research to replace electrical stimulation of neurons by photo-stimulation. Scientists now search a way to extend optogenetics to cardiac research. Many were able to control the heartbeat of rodents using light. These experiments were conducted using wired and cumbersome equiments with electrocardiogram (ECG) recording using electrodes and photo-stimulation using optical fibers. These systems increase tests subjects stress which can induce measurements errors. This master's thesis describes the design of a device answering this problem. The developed system enables cardiac photostimulation and ECG recording wirelessly with an implant and a low power electronic circuit. The device also includes a real-time algorithm to reduce motion artifacts shown in preliminary testing. Finally, the operation of the prototype is demonstrated during in-vivo experiments

    A wireless electro-optic platform for multimodal electrophysiology and optogenetics in freely moving rodents

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    This paper presents the design and the utilization of a wireless electro-optic platform to perform simultaneous multimodal electrophysiological recordings and optogenetic stimulation in freely moving rodents. The developed system can capture neural action potentials (AP), local field potentials (LFP) and electromyography (EMG) signals with up to 32 channels in parallel while providing four optical stimulation channels. The platform is using commercial off-the-shelf components (COTS) and a low-power digital field-programmable gate array (FPGA), to perform digital signal processing to digitally separate in real time the AP, LFP and EMG while performing signal detection and compression for mitigating wireless bandwidth and power consumption limitations. The different signal modalities collected on the 32 channels are time-multiplexed into a single data stream to decrease power consumption and optimize resource utilization. The data reduction strategy is based on signal processing and real-time data compression. Digital filtering, signal detection, and wavelet data compression are used inside the platform to separate the different electrophysiological signal modalities, namely the local field potentials (1–500 Hz), EMG (30–500 Hz), and the action potentials (300–5,000 Hz) and perform data reduction before transmitting the data. The platform achieves a measured data reduction ratio of 7.77 (for a firing rate of 50 AP/second) and weights 4.7 g with a 100-mAh battery, an on/off switch and a protective plastic enclosure. To validate the performance of the platform, we measured distinct electrophysiology signals and performed optogenetics stimulation in vivo in freely moving rondents. We recorded AP and LFP signals with the platform using a 16-microelectrode array implanted in the primary motor cortex of a Long Evans rat, both in anesthetized and freely moving conditions. EMG responses to optogenetic Channelrhodopsin-2 induced activation of motor cortex via optical fiber were also recorded in freely moving rodents

    Globally invariant metabolism but density-diversity mismatch in springtails.

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    Soil life supports the functioning and biodiversity of terrestrial ecosystems. Springtails (Collembola) are among the most abundant soil arthropods regulating soil fertility and flow of energy through above- and belowground food webs. However, the global distribution of springtail diversity and density, and how these relate to energy fluxes remains unknown. Here, using a global dataset representing 2470 sites, we estimate the total soil springtail biomass at 27.5 megatons carbon, which is threefold higher than wild terrestrial vertebrates, and record peak densities up to 2 million individuals per square meter in the tundra. Despite a 20-fold biomass difference between the tundra and the tropics, springtail energy use (community metabolism) remains similar across the latitudinal gradient, owing to the changes in temperature with latitude. Neither springtail density nor community metabolism is predicted by local species richness, which is high in the tropics, but comparably high in some temperate forests and even tundra. Changes in springtail activity may emerge from latitudinal gradients in temperature, predation and resource limitation in soil communities. Contrasting relationships of biomass, diversity and activity of springtail communities with temperature suggest that climate warming will alter fundamental soil biodiversity metrics in different directions, potentially restructuring terrestrial food webs and affecting soil functioning

    Globally invariant metabolism but density-diversity mismatch in springtails

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    Soil life supports the functioning and biodiversity of terrestrial ecosystems. Springtails (Collembola) are among the most abundant soil arthropods regulating soil fertility and flow of energy through above- and belowground food webs. However, the global distribution of springtail diversity and density, and how these relate to energy fluxes remains unknown. Here, using a global dataset representing 2470 sites, we estimate the total soil springtail biomass at 27.5 megatons carbon, which is threefold higher than wild terrestrial vertebrates, and record peak densities up to 2 million individuals per square meter in the tundra. Despite a 20-fold biomass difference between the tundra and the tropics, springtail energy use (community metabolism) remains similar across the latitudinal gradient, owing to the changes in temperature with latitude. Neither springtail density nor community metabolism is predicted by local species richness, which is high in the tropics, but comparably high in some temperate forests and even tundra. Changes in springtail activity may emerge from latitudinal gradients in temperature, predation and resource limitation in soil communities. Contrasting relationships of biomass, diversity and activity of springtail communities with temperature suggest that climate warming will alter fundamental soil biodiversity metrics in different directions, potentially restructuring terrestrial food webs and affecting soil functioning

    Globally invariant metabolism but density-diversity mismatch in springtails

    No full text
    Soil life supports the functioning and biodiversity of terrestrial ecosystems. Springtails (Collembola) are among the most abundant soil arthropods regulating soil fertility and flow of energy through above- and belowground food webs. However, the global distribution of springtail diversity and density, and how these relate to energy fluxes remains unknown. Here, using a global dataset representing 2470 sites, we estimate the total soil springtail biomass at 27.5 megatons carbon, which is threefold higher than wild terrestrial vertebrates, and record peak densities up to 2 million individuals per square meter in the tundra. Despite a 20-fold biomass difference between the tundra and the tropics, springtail energy use (community metabolism) remains similar across the latitudinal gradient, owing to the changes in temperature with latitude. Neither springtail density nor community metabolism is predicted by local species richness, which is high in the tropics, but comparably high in some temperate forests and even tundra. Changes in springtail activity may emerge from latitudinal gradients in temperature, predation and resource limitation in soil communities. Contrasting relationships of biomass, diversity and activity of springtail communities with temperature suggest that climate warming will alter fundamental soil biodiversity metrics in different directions, potentially restructuring terrestrial food webs and affecting soil functioning.The article is an outcome of the #GlobalCollembola community initiative that is voluntarily supported by researchers around the world.</p

    Global fine-resolution data on springtail abundance and community structure

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    International audienceSpringtails (Collembola) inhabit soils from the Arctic to the Antarctic and comprise an estimated ~32% of all terrestrial arthropods on Earth. Here, we present a global, spatially-explicit database on springtail communities that includes 249,912 occurrences from 44,999 samples and 2,990 sites. These data are mainly raw sample-level records at the species level collected predominantly from private archives of the authors that were quality-controlled and taxonomically-standardised. Despite covering all continents, most of the sample-level data come from the European continent (82.5% of all samples) and represent four habitats: woodlands (57.4%), grasslands (14.0%), agrosystems (13.7%) and scrublands (9.0%). We included sampling by soil layers, and across seasons and years, representing temporal and spatial within-site variation in springtail communities. We also provided data use and sharing guidelines and R code to facilitate the use of the database by other researchers. This data paper describes a static version of the database at the publication date, but the database will be further expanded to include underrepresented regions and linked with trait data

    Global fine-resolution data on springtail abundance and community structure

    No full text
    Springtails (Collembola) inhabit soils from the Arctic to the Antarctic and comprise an estimated ~32% of all terrestrial arthropods on Earth. Here, we present a global, spatially-explicit database on springtail communities that includes 249,912 occurrences from 44,999 samples and 2,990 sites. These data are mainly raw sample-level records at the species level collected predominantly from private archives of the authors that were quality-controlled and taxonomically-standardised. Despite covering all continents, most of the sample-level data come from the European continent (82.5% of all samples) and represent four habitats: woodlands (57.4%), grasslands (14.0%), agrosystems (13.7%) and scrublands (9.0%). We included sampling by soil layers, and across seasons and years, representing temporal and spatial within-site variation in springtail communities. We also provided data use and sharing guidelines and R code to facilitate the use of the database by other researchers. This data paper describes a static version of the database at the publication date, but the database will be further expanded to include underrepresented regions and linked with trait data
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