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1.
Vet Microbiol ; 222: 69-74, 2018 Aug.
Artículo en Inglés | MEDLINE | ID: mdl-30080675

RESUMEN

Bartonella spp. have been identified in many bat species worldwide, including the zoonotic species, Candidatus Bartonella mayotimonensis. The common vampire bat (Desmodus rotundus) preys preferentially on livestock in Latin America and is frequently infected with Bartonella spp. To determine the potential role of D. rotundus in transmitting Bartonella to livestock, common vampire bats and bat-bitten domestic ruminants from Mexico were tested for Bartonella infection by blood culture or conventional PCR. Furthermore, to explore the possibility of bite transmission during blood feeding, saliva swabs from 35 D. rotundus known to be either Bartonella bacteremic (N = 17) or blood culture negative (N = 18) were tested by PCR to detect the presence of Bartonella DNA. Twenty (17.1%) of 117 sheep and 16 (34.8%) of 46 cattle were Bartonella bacteremic by PCR testing. However, none of them were infected with Bartonella strains previously isolated from vampire bats and none of the 35 D. rotundus saliva swabs tested were PCR positive for Bartonella. All but two animals among those which were Bartonella culture and/or PCR positive, were infected with either B. bovis (cattle) or B. melophagi (sheep). Two sheep were infected by a possible new species, Candidatus Bartonella ovis, being phylogenetically closer to B. bovis than B. melophagi. This study does not support the role of D. rotundus as a reservoir of Bartonella species infecting livestock, which could be transmitted via bite and blood feeding and therefore suggest limited risk of zoonotic transmission of Bartonella from common vampire bats to humans.


Asunto(s)
Infecciones por Bartonella/veterinaria , Bartonella/aislamiento & purificación , Bovinos/microbiología , Quirópteros/microbiología , ADN Bacteriano/análisis , Reservorios de Enfermedades/veterinaria , Saliva/microbiología , Ovinos/microbiología , Animales , Animales Domésticos/microbiología , Bartonella/genética , Infecciones por Bartonella/epidemiología , Infecciones por Bartonella/transmisión , Mordeduras y Picaduras/microbiología , Enfermedades de los Bovinos/epidemiología , Enfermedades de los Bovinos/microbiología , Enfermedades de los Bovinos/transmisión , Quirópteros/fisiología , ADN Bacteriano/aislamiento & purificación , Reservorios de Enfermedades/microbiología , Variación Genética , México/epidemiología , Filogenia , Reacción en Cadena de la Polimerasa , Enfermedades de las Ovejas/epidemiología , Enfermedades de las Ovejas/microbiología , Enfermedades de las Ovejas/transmisión
2.
Astrobiology ; 14(4): 352-5, 2014 Apr.
Artículo en Inglés | MEDLINE | ID: mdl-24684187

RESUMEN

The astrobiological exploration of other worlds in our Solar System is moving from initial exploration to more focused astrobiology missions. In this context, we present the case that the plume of Enceladus currently represents the best astrobiology target in the Solar System. Analysis of the plume by the Cassini mission indicates that the steady plume derives from a subsurface liquid water reservoir that contains organic carbon, biologically available nitrogen, redox energy sources, and inorganic salts. Furthermore, samples from the plume jetting out into space are accessible to a low-cost flyby mission. No other world has such well-studied indications of habitable conditions. Thus, the science goals that would motivate an Enceladus mission are more advanced than for any other Solar System body. The goals of such a mission must go beyond further geophysical characterization, extending to the search for biomolecular evidence of life in the organic-rich plume. This will require improved in situ investigations and a sample return.


Asunto(s)
Exobiología , Origen de la Vida , Saturno
3.
Astrobiology ; 12(8): 730-42, 2012 Aug.
Artículo en Inglés | MEDLINE | ID: mdl-22970863

RESUMEN

Life Investigation For Enceladus (LIFE) presents a low-cost sample return mission to Enceladus, a body with high astrobiological potential. There is ample evidence that liquid water exists under ice coverage in the form of active geysers in the "tiger stripes" area of the southern Enceladus hemisphere. This active plume consists of gas and ice particles and enables the sampling of fresh materials from the interior that may originate from a liquid water source. The particles consist mostly of water ice and are 1-10 µ in diameter. The plume composition shows H(2)O, CO(2), CH(4), NH(3), Ar, and evidence that more complex organic species might be present. Since life on Earth exists whenever liquid water, organics, and energy coexist, understanding the chemical components of the emanating ice particles could indicate whether life is potentially present on Enceladus. The icy worlds of the outer planets are testing grounds for some of the theories for the origin of life on Earth. The LIFE mission concept is envisioned in two parts: first, to orbit Saturn (in order to achieve lower sampling speeds, approaching 2 km/s, and thus enable a softer sample collection impact than Stardust, and to make possible multiple flybys of Enceladus); second, to sample Enceladus' plume, the E ring of Saturn, and the Titan upper atmosphere. With new findings from these samples, NASA could provide detailed chemical and isotopic and, potentially, biological compositional context of the plume. Since the duration of the Enceladus plume is unpredictable, it is imperative that these samples are captured at the earliest flight opportunity. If LIFE is launched before 2019, it could take advantage of a Jupiter gravity assist, which would thus reduce mission lifetimes and launch vehicle costs. The LIFE concept offers science returns comparable to those of a Flagship mission but at the measurably lower sample return costs of a Discovery-class mission.


Asunto(s)
Exobiología/métodos , Medio Ambiente Extraterrestre/química , Atmósfera , Gases/química , Planetas , Estados Unidos , United States National Aeronautics and Space Administration , Agua/química
4.
Science ; 314(5806): 1728-31, 2006 Dec 15.
Artículo en Inglés | MEDLINE | ID: mdl-17170293

RESUMEN

Infrared spectra of material captured from comet 81P/Wild 2 by the Stardust spacecraft reveal indigenous aliphatic hydrocarbons similar to those in interplanetary dust particles thought to be derived from comets, but with longer chain lengths than those observed in the diffuse interstellar medium. Similarly, the Stardust samples contain abundant amorphous silicates in addition to crystalline silicates such as olivine and pyroxene. The presence of crystalline silicates in Wild 2 is consistent with mixing of solar system and interstellar matter. No hydrous silicates or carbonate minerals were detected, which suggests a lack of aqueous processing of Wild 2 dust.


Asunto(s)
Hidrocarburos/análisis , Meteoroides , Silicatos/análisis , Polvo Cósmico/análisis , Nave Espacial , Espectroscopía Infrarroja por Transformada de Fourier
5.
Science ; 314(5806): 1716-9, 2006 Dec 15.
Artículo en Inglés | MEDLINE | ID: mdl-17170290

RESUMEN

Particles emanating from comet 81P/Wild 2 collided with the Stardust spacecraft at 6.1 kilometers per second, producing hypervelocity impact features on the collector surfaces that were returned to Earth. The morphologies of these surprisingly diverse features were created by particles varying from dense mineral grains to loosely bound, polymineralic aggregates ranging from tens of nanometers to hundreds of micrometers in size. The cumulative size distribution of Wild 2 dust is shallower than that of comet Halley, yet steeper than that of comet Grigg-Skjellerup.

6.
Science ; 314(5806): 1724-8, 2006 Dec 15.
Artículo en Inglés | MEDLINE | ID: mdl-17170292

RESUMEN

Hydrogen, carbon, nitrogen, and oxygen isotopic compositions are heterogeneous among comet 81P/Wild 2 particle fragments; however, extreme isotopic anomalies are rare, indicating that the comet is not a pristine aggregate of presolar materials. Nonterrestrial nitrogen and neon isotope ratios suggest that indigenous organic matter and highly volatile materials were successfully collected. Except for a single (17)O-enriched circumstellar stardust grain, silicate and oxide minerals have oxygen isotopic compositions consistent with solar system origin. One refractory grain is (16)O-enriched, like refractory inclusions in meteorites, suggesting that Wild 2 contains material formed at high temperature in the inner solar system and transported to the Kuiper belt before comet accretion.


Asunto(s)
Isótopos de Carbono/análisis , Deuterio/análisis , Isótopos/análisis , Meteoroides , Isótopos de Nitrógeno/análisis , Isótopos de Oxígeno/análisis , Hidrógeno/análisis , Neón/análisis , Gases Nobles/análisis , Nave Espacial
7.
Science ; 314(5806): 1711-6, 2006 Dec 15.
Artículo en Inglés | MEDLINE | ID: mdl-17170289

RESUMEN

The Stardust spacecraft collected thousands of particles from comet 81P/Wild 2 and returned them to Earth for laboratory study. The preliminary examination of these samples shows that the nonvolatile portion of the comet is an unequilibrated assortment of materials that have both presolar and solar system origin. The comet contains an abundance of silicate grains that are much larger than predictions of interstellar grain models, and many of these are high-temperature minerals that appear to have formed in the inner regions of the solar nebula. Their presence in a comet proves that the formation of the solar system included mixing on the grandest scales.

8.
Science ; 314(5806): 1720-4, 2006 Dec 15.
Artículo en Inglés | MEDLINE | ID: mdl-17170291

RESUMEN

Organics found in comet 81P/Wild 2 samples show a heterogeneous and unequilibrated distribution in abundance and composition. Some organics are similar, but not identical, to those in interplanetary dust particles and carbonaceous meteorites. A class of aromatic-poor organic material is also present. The organics are rich in oxygen and nitrogen compared with meteoritic organics. Aromatic compounds are present, but the samples tend to be relatively poorer in aromatics than are meteorites and interplanetary dust particles. The presence of deuterium and nitrogen-15 excesses suggest that some organics have an interstellar/protostellar heritage. Although the variable extent of modification of these materials by impact capture is not yet fully constrained, a diverse suite of organic compounds is present and identifiable within the returned samples.


Asunto(s)
Meteoroides , Compuestos Orgánicos/análisis , Carbono/análisis , Polvo Cósmico/análisis , Deuterio/análisis , Nitrógeno/análisis , Isótopos de Nitrógeno/análisis , Oxígeno/análisis , Hidrocarburos Policíclicos Aromáticos/análisis , Nave Espacial
9.
Science ; 314(5806): 1735-9, 2006 Dec 15.
Artículo en Inglés | MEDLINE | ID: mdl-17170295

RESUMEN

The bulk of the comet 81P/Wild 2 (hereafter Wild 2) samples returned to Earth by the Stardust spacecraft appear to be weakly constructed mixtures of nanometer-scale grains, with occasional much larger (over 1 micrometer) ferromagnesian silicates, Fe-Ni sulfides, Fe-Ni metal, and accessory phases. The very wide range of olivine and low-Ca pyroxene compositions in comet Wild 2 requires a wide range of formation conditions, probably reflecting very different formation locations in the protoplanetary disk. The restricted compositional ranges of Fe-Ni sulfides, the wide range for silicates, and the absence of hydrous phases indicate that comet Wild 2 experienced little or no aqueous alteration. Less abundant Wild 2 materials include a refractory particle, whose presence appears to require radial transport in the early protoplanetary disk.

10.
Science ; 304(5678): 1764-9, 2004 Jun 18.
Artículo en Inglés | MEDLINE | ID: mdl-15205524

RESUMEN

Images taken by the Stardust mission during its flyby of 81P/Wild 2 show the comet to be a 5-kilometer oblate body covered with remarkable topographic features, including unusual circular features that appear to be impact craters. The presence of high-angle slopes shows that the surface is cohesive and self-supporting. The comet does not appear to be a rubble pile, and its rounded shape is not directly consistent with the comet being a fragment of a larger body. The surface is active and yet it retains ancient terrain. Wild 2 appears to be in the early stages of its degradation phase as a small volatile-rich body in the inner solar system.


Asunto(s)
Meteoroides , Polvo Cósmico , Gases , Nave Espacial , Agua
11.
Science ; 304(5678): 1776-80, 2004 Jun 18.
Artículo en Inglés | MEDLINE | ID: mdl-15205527

RESUMEN

We present measurements of the dust particle flux and mass distribution from the Stardust Dust Flux Monitor Instrument (DFMI) throughout the flyby of comet 81P/Wild 2. In the particle mass regime from 10(-14) to 10(-7) kilograms, the spacecraft encountered regions of intense swarms of particles, together with bursts of activity corresponding to clouds of particles only a few hundred meters across. This fine-scale structure can be explained by particle fragmentation. We estimate that 2800 +/- 500 particles of diameter 15 micrometers or larger impacted the aerogel collectors, the largest being approximately 6 x 10(-7) kilograms, which dominates the total collected mass.


Asunto(s)
Polvo Cósmico , Meteoroides , Gases , Nave Espacial
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