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1,074 results for “invasive species”
Supplementary material 1 from: Šmejkal M, Thomas K, Kořen V, Kubečka J (2024) The 50-year history of anglers' record catches of genus Carassius: circumstantial evidence of wiping out the native species by invasive conspecific. NeoBiota 92: 111-128. https://doi.org/10.3897/neobiota.92.121288
Individual data points
Supplementary material 1 from: González-Sargas E, Shafroth PB, Baró F (2024) Integrating social-ecological outcomes into invasive species management: the Tamarix case. NeoBiota 92: 173-192. https://doi.org/10.3897/neobiota.92.118502
Supplementary data
Supplementary material 1 from: Hoffmann BD, Brewington L, Andreozzi P, Boudjelas S, Day MD, Ero M, Jackson T, Martin C, Montgomery M (2024) Three new strategies for improving biosecurity and invasive species management to build resilience in Pacific Islands. NeoBiota 92: 193-210. https://doi.org/10.3897/neobiota.92.122103
Supplementary data
Supplementary material 1 from: Foster R, Peeler E, Bojko J, Clark PF, Morritt D, Roy HE, Stebbing P, Tidbury HJ, Wood LE, Bass D (2021) Pathogens co-transported with invasive non-native aquatic species: implications for risk analysis and legislation. NeoBiota 69: 79-102. https://doi.org/10.3897/neobiota.69.71358
Table S1
Supplementary material 2 from: Foster R, Peeler E, Bojko J, Clark PF, Morritt D, Roy HE, Stebbing P, Tidbury HJ, Wood LE, Bass D (2021) Pathogens co-transported with invasive non-native aquatic species: implications for risk analysis and legislation. NeoBiota 69: 79-102. https://doi.org/10.3897/neobiota.69.71358
Table S2
Supplementary material 3 from: Foster R, Peeler E, Bojko J, Clark PF, Morritt D, Roy HE, Stebbing P, Tidbury HJ, Wood LE, Bass D (2021) Pathogens co-transported with invasive non-native aquatic species: implications for risk analysis and legislation. NeoBiota 69: 79-102. https://doi.org/10.3897/neobiota.69.71358
Table S3
Carcasses attract invasive species and increase artificial nest predation in a desert environment
<p><span><span>In addition to feeding on animal remains, many scavengers also function as predators. Carcasses may therefore affect local animal communities by attracting facultative scavengers and increasing predation risk for other species in the vicinity of the carcasses. This risk may be elevated in low productivity environments, especially where humans increase carcass production and where facultative scavengers include </span>invasive species. In June and October 2018, we monitored experimentally placed red kangaroo (</span><em>Osphranter rufus</em>) carcasses and artificial bird nests in two different habitats in the Simpson Desert, Australia, to identify the nest predators attracted to the carcasses, and to determine how carcasses affect overall and predator-specific nest predation. We modelled our nests to approximate those of the ground nesting little buttonquail (<em>Turnix velox</em>) and the endangered night parrot (<em>Pezoporus occidentalis</em>). Native <em>Corvus</em> spp. and then invasive red foxes (<span><em>Vulpes vulpes</em></span>) were the top carcass visitors and nest egg predators. Carcass presence and open habitat increased overall nest predation and fewer artificial parrot nest eggs were depredated compared to those of quail. Open habitat and carcass presence only increased predator-specific nest predation by foxes, but corvid nest predation was highest in June 2018, and for the artificial quail nest types. Foxes were the main predator of eggs from night parrot nests. Our study shows that carcass provisioning by humans may have indirect, deleterious effects on ground nesting birds, and indicates that foxes might pose a greater threat to night parrot populations than previously recognised.</p>
Biomass allocation in response to salinity and competition in native and invasive species
<p>Biomass allocation to different plant parts affects the subsequent capture rate of resources and reproduction. Thus, many studies have been conducted on the biomass allocation to learn growth, reproduction and competitive ability of plants. However, few researches have explored how biomass allocation responses to non-resource factor and interspecific competition over time. We experimentally investigated the effects of soil salinity and competition on root:shoot ratio (RS), reproductive effort (RE; seed biomass:total biomass ratio), the relationship between belowground and aboveground biomass, the relationship between reproductive and vegetative biomass, growth, and reproduction of invasive Spartina alterniflora and native Phragmites australis. The biomass of P. australis decreased with increasing salinity, whereas that of S. alterniflora did not significantly change. The reproduction of P. australis decreased with increasing salinity under competitive conditions, and that of S. alterniflora increased. Therefore, P. australis was less-tolerant, and S. alterniflora was more-tolerant. The RS of P. australis increased over time under competitive conditions and with increasing salinity, and that of S. alterniflora did not significantly change. The RE of P. australis decreased to zero with decreasing total biomass, and that of S. alterniflora did not significantly correlate with total biomass. Both species exhibited a linear relationship between belowground and aboveground biomass. The relationship between reproductive and vegetative biomass in P. australis was linear, and the reproductive biomass of S. alterniflora did not significantly correlate with the vegetative biomass. Competitive dominance shifted from P. australis to S. alterniflora with increasing salinity. The findings demonstrated that the plastic biomass allocation of less-tolerant species facilitates performance of less-tolerant species in favorable environments, while the fixed biomass allocation of more-tolerant species facilitates performance of more-tolerant species in stressful environments, suggesting that S. alterniflora invasion driven by competitive exclusion probably occur in high salinity zones, and reproductive ability of invasive species should be relatively stronger during exclusion. More broadly, linking level of environmental stresses with tolerance of plants is crucial to understanding and predicting the biomass allocation and its effects on plant performance, which is an expansion of predictions from optimal theory and allometric theory and therefore illustrates the conditionality of these predictions.</p>
Supplementary material 7 from: Frem M, Fucilli V, Nigro F, El Moujabber M, Abou Kubaa R, La Notte P, Bozzo F, Choueiri E (2021) The potential direct economic impact and private management costs of an invasive alien species: Xylella fastidiosa on Lebanese wine grapes. NeoBiota 70: 43-67. https://doi.org/10.3897/neobiota.70.72280
Table S7
Supplementary material 6 from: Frem M, Fucilli V, Nigro F, El Moujabber M, Abou Kubaa R, La Notte P, Bozzo F, Choueiri E (2021) The potential direct economic impact and private management costs of an invasive alien species: Xylella fastidiosa on Lebanese wine grapes. NeoBiota 70: 43-67. https://doi.org/10.3897/neobiota.70.72280
Table S6
Supplementary material 4 from: Frem M, Fucilli V, Nigro F, El Moujabber M, Abou Kubaa R, La Notte P, Bozzo F, Choueiri E (2021) The potential direct economic impact and private management costs of an invasive alien species: Xylella fastidiosa on Lebanese wine grapes. NeoBiota 70: 43-67. https://doi.org/10.3897/neobiota.70.72280
Table S4
Supplementary material 5 from: Frem M, Fucilli V, Nigro F, El Moujabber M, Abou Kubaa R, La Notte P, Bozzo F, Choueiri E (2021) The potential direct economic impact and private management costs of an invasive alien species: Xylella fastidiosa on Lebanese wine grapes. NeoBiota 70: 43-67. https://doi.org/10.3897/neobiota.70.72280
Table S5
Supplementary material 8 from: Frem M, Fucilli V, Nigro F, El Moujabber M, Abou Kubaa R, La Notte P, Bozzo F, Choueiri E (2021) The potential direct economic impact and private management costs of an invasive alien species: Xylella fastidiosa on Lebanese wine grapes. NeoBiota 70: 43-67. https://doi.org/10.3897/neobiota.70.72280
Table S8
Supplementary material 2 from: Frem M, Fucilli V, Nigro F, El Moujabber M, Abou Kubaa R, La Notte P, Bozzo F, Choueiri E (2021) The potential direct economic impact and private management costs of an invasive alien species: Xylella fastidiosa on Lebanese wine grapes. NeoBiota 70: 43-67. https://doi.org/10.3897/neobiota.70.72280
Table S2
Supplementary material 3 from: Frem M, Fucilli V, Nigro F, El Moujabber M, Abou Kubaa R, La Notte P, Bozzo F, Choueiri E (2021) The potential direct economic impact and private management costs of an invasive alien species: Xylella fastidiosa on Lebanese wine grapes. NeoBiota 70: 43-67. https://doi.org/10.3897/neobiota.70.72280
Table S3
Supplementary material 1 from: Frem M, Fucilli V, Nigro F, El Moujabber M, Abou Kubaa R, La Notte P, Bozzo F, Choueiri E (2021) The potential direct economic impact and private management costs of an invasive alien species: Xylella fastidiosa on Lebanese wine grapes. NeoBiota 70: 43-67. https://doi.org/10.3897/neobiota.70.72280
Table S1
Supplementary material 9 from: Frem M, Fucilli V, Nigro F, El Moujabber M, Abou Kubaa R, La Notte P, Bozzo F, Choueiri E (2021) The potential direct economic impact and private management costs of an invasive alien species: Xylella fastidiosa on Lebanese wine grapes. NeoBiota 70: 43-67. https://doi.org/10.3897/neobiota.70.72280
Field survey questionnaire
Supplementary material 1 from: Huisman SN, Jesse WAM, Ellers J, van Beukering PJH (2021) Mapping the economic loss of ecosystem services caused by the invasive plant species Antigonon leptopus on the Dutch Caribbean Island of St. Eustatius. One Ecosystem 6: e72881. https://doi.org/10.3897/oneeco.6.e72881
Tree cover map St. Eustatius
Supplementary material 3 from: Huisman SN, Jesse WAM, Ellers J, van Beukering PJH (2021) Mapping the economic loss of ecosystem services caused by the invasive plant species Antigonon leptopus on the Dutch Caribbean Island of St. Eustatius. One Ecosystem 6: e72881. https://doi.org/10.3897/oneeco.6.e72881
Important birding areas St. Eustatius
Supplementary material 2 from: Huisman SN, Jesse WAM, Ellers J, van Beukering PJH (2021) Mapping the economic loss of ecosystem services caused by the invasive plant species Antigonon leptopus on the Dutch Caribbean Island of St. Eustatius. One Ecosystem 6: e72881. https://doi.org/10.3897/oneeco.6.e72881
Iguana sightings map St. Eustatius
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Allen Brain Atlas
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.