Mostrando entradas con la etiqueta Discovery. Mostrar todas las entradas
Mostrando entradas con la etiqueta Discovery. Mostrar todas las entradas

jueves, 23 de agosto de 2018

Descubren nueva especie animal en la Sierra Nevada de Santa Marta

Son los microorganismos más resistentes en el planeta por sus cualidades físicas y anatómicas

Expertos investigadores señalan que los Tardígrados o también denominados ‘Ositos de Agua’, podrían ayudar a descifrar los mecanismos que utilizan estos organismos para preservar intacto su estructura celular y su ADN cuando están en estado seco, buscando crear nuevas alternativas para conservar, por ejemplo, órganos humanos.
Esta es la representación de un tardígrado a gran escala. Estos animales tienen una talla media de 5 milímetros.
Foto: Roger Urieles

El Grupo de Investigación en Manejo y Conservación de Fauna y Flora y Ecosistemas Estratégicos Neotropicales MIKU, dirigido por el doctor Sigmer Quiroga Cárdenas y conformado por docentes y estudiantes de la Universidad del Magdalena, realizó el hallazgo de seis nuevas especies de Tardígrados provenientes de la Sierra Nevada de Santa Marta

El descubrimiento parte de las investigaciones relacionadas con el estudio de la biodiversidad en el ecosistema estratégico. En salidas de campo realizadas en el marco de varios proyectos de investigación, se recolectaron muestras de musgos y líquenes en donde fueron hallados los tardígrados, con los que posteriormente se realizaron micropreparados para ser analizados por el grupo de expertos y estudiantes de MIKU. 

“Estamos colocando a disposición del país y el mundo científico, especies con las que podemos investigar los mecanismos de tolerancia que serán de gran utilidad para la ciencia”, indicó Sigmer Quiroga, director del grupo de Investigación MIKU.

Las nuevas especies (Bryodelphax kristenseni, Doryphoribius rosanae, Itaquascon pilatoi, Milnesium kogui, Minibiotus pentannulatus, Paramacrobiotus sagani), hacen parte de los cerca de siete mil ejemplares de Tardígrados de diferentes géneros depositados en el Centro de Colecciones Biológicas de la Universidad del Magdalena, constituyéndose en la colección más grande de estos organismos en Colombia.

El docente de la Alma Mater asegura que el estudio de la capacidad de resistencia de estos animales microscópicos puede ser en diferentes campos de interés humano como la medicina, farmacéutica e ingeniería de alimentos, entre otros. “Estos organismos acuáticos cuando el agua escasea, poseen la capacidad de entrar en un estado de anhidrobiosis en el cual pueden resistir a condiciones muy extremas de temperaturas o niveles de radiación que serían letales para otros organismos.” señaló. 

Agrega que “si se descifran los mecanismos que utilizan estos organismos para preservar intacto su estructura celular y su ADN cuando están en estado seco, podrían crearse nuevas alternativas para conservar, por ejemplo, órganos humanos”. 

Los tardígrados: un animal ‘indestructible’
Reconocidos por ser el animal más resistente en el planeta por sus cualidades físicas y anatómicas, los tardígrados o también llamados 'ositos de agua' son el centro de estudio de este grupo de investigación adscrito a la Vicerrectoría de Investigación de la Alma Mater.

Su nombre hace referencia al movimiento particular de estos animales, son caminantes lentos que alcanzan a medir entre 1 y 2 milímetros pero lo más importante es su capacidad para sobrevivir a las condiciones más adversas

El estudio de los tardígrados ha sido esporádico en el país, siendo la Universidad del Magdalena, por intermedio del Grupo de Investigación MIKU, pionero y líder en la investigación de estas especies en la Sierra Nevada de Santa Marta por más de una década.

Este colectivo investigador está conformado por los biólogos egresados de la Alma Mater: Rosana Londoño, Anisbeth Daza y Martin Caicedo, al igual que los estudiantes: Natalia Cantillo (UNIMAGDALENA) y Dayanna Venencia (Uniatlantico), acompañados por el doctor Oscar Lisi de la Universidad de Catania, Italia.

Los tardígrados se encuentran actualmente representados por más de 1200 especies, clasificadas en dos clases: Heterotardigrada y Eutardigrada. A través de campañas informativas, el Grupo de Investigación MIKU busca dar a conocer la importancia de estos animales en los ecosistemas y su uso como modelos biológicos para el estudio de los mecanismos de extremotolerancia.

ORIGINAL: UniMagdalena
21/08/2018 04:56 PM por Dirección de Comunicaciones

miércoles, 7 de septiembre de 2016

New genus of bacteria found living inside hydraulic fracturing wells

'Frackibacter' one of dozens of microbes forming sustainable ecosystems there, study finds

OHIO STATE UNIVERSITY

Ohio State University researchers and their colleagues have identified a new genus of bacteria living inside hydraulic fracturing wells. These jars contain samples of "produced water fluids" -- the fluid that is collected at the surface of a hydraulic fracturing well after fracturing -- from wells in Marcellus and Utica shale formations. The fluids are orange because they contain large amounts of iron that oxidizes when the fluids are brought to the surface. By analyzing the genomes of microbes in the water, the researchers are piecing together the existence of microbial communities inside the wells. 
CREDIT: Photo by Rebecca Daly, courtesy of The Ohio State University.


COLUMBUS, Ohio--Researchers analyzing the genomes of microorganisms living in shale oil and gas wells have found evidence of sustainable ecosystems taking hold there--populated in part by a never-before-seen genus of bacteria they have dubbed "Frackibacter."

The new genus is one of the 31 microbial members found living inside two separate fracturing wells, Ohio State University researchers and their colleagues report in the Sept. 5 online edition of the journal Nature Microbiology.

Even though the wells were hundreds of miles apart and drilled in different kinds of shale formations, the microbial communities inside them were nearly identical, the researchers discovered.

Almost all the microbes they found had been seen elsewhere before, and many likely came from the surface ponds that energy companies draw on to fill the wells. But that's not the case with the newly identified Candidatus Frackibacter, which may be unique to hydraulic fracturing sites, said Kelly Wrighton, assistant professor of microbiology and biophysics at Ohio State.

In biological nomenclature, "Candidatus" indicates that a new organism is being studied for the first time using a genomic approach, not an isolated organism in a lab culture. The researchers chose to name the genus "Frackibacter" as a play on the word "fracking," shorthand for "hydraulic fracturing."

Candidatus Frackibacter prospered alongside the microbes that came from the surface, forming communities in both wells which so far have lasted for nearly a year.

"We think that the microbes in each well may form a self-sustaining ecosystem where they provide their own food sources," Wrighton explained. "Drilling the well and pumping in fracturing fluid creates the ecosystem, but the microbes adapt to their new environment in a way to sustain the system over long periods."

By sampling fluids taken from the two wells over 328 days, the researchers reconstructed the genomes of bacteria and archaea living in the shale. To the researchers' surprise, both wells--one drilled in Utica shale and the other drilled in Marcellus shale--developed nearly identical microbial communities.

In addition, the two wells are each owned by different energy companies that utilized different fracturing techniques. The two types of shale exist more than a mile and a half below ground, were formed millions of years apart, and contained different forms of fossil fuel. Yet one bacterium, Halanaerobium, emerged to dominate communities in both wells.

"We thought we might get some of the same types of bacteria, but the level of similarity was so high it was striking. That suggests that whatever's happening in these ecosystems is more influenced by the fracturing than the inherent differences in the shale," Wrighton said.

Wrighton and her team are still not 100 percent sure of the microbes' origins. Some almost undoubtedly came from the ponds that provide water to the wells, she said. But other bacteria and archaea could have been living in the rock before drilling began, Candidatus Frackibacter among them.

Shale energy companies typically formulate their own proprietary recipes for the fluid they pump into wells to break up the rock and release oil or gas, explained Rebecca Daly, research associate in microbiology at Ohio State and lead author of the Nature Microbiology paper. They all start with water and add other chemicals. Once the fluid is inside a well, salt within the shale leaches into it, making it briny.

The microorganisms living in the shale must tolerate high temperature, pressure and salinity, but this study suggests that salinity is likely the most important stressor on the microbes' survival. Salinity forces the microbes to synthesize organic compounds called osmoprotectants to keep themselves from bursting. When the cells die, the osmoprotectants are released into the water, where other microbes can use them for protection themselves or eat them as food. In that way, salinity forced the microbes to generate a sustainable food source.

In addition to the physical constraints in the environment, the microbes also must protect themselves from viruses. The researchers reconstructed the genomes of viruses living inside the wells, and found genetic evidence that some bacteria were indeed falling prey to viruses, dying, and releasing osmoprotectants into the water.

By examining the genomes of the different microbes, the researchers found that the osmoprotectants were being eaten by Halanaerobium and Candidatus Frackibacter. In turn, these bacteria provided food for other microbes called methanogens, which ultimately produced methane.

To validate their findings from the field, the researchers grew the same microbes in the lab under similar conditions. The lab-grown microbes also produced osmoprotectants that were converted into methane--a confirmation that the researchers are on the right track to understanding what's happening inside the wells.

One implication of the study is that methane produced by microbes living in shale wells could possibly supplement the wells' energy output.

Wrighton and Daly described the amount of methane produced by the microbes as likely minuscule compared to the amount of oil and gas harvested from the shale even a year after initial fracturing. But, they point out, there is a precedent in a related industry, that of coal-bed methane, to use microbes to greater advantage.

"In coal-bed systems they've shown that they can facilitate microbial life and increase methane yields," Wrighton said. "As the system shifts over time to being less productive, the contribution of biogenic methane could become significantly higher in shale wells. We haven't gotten to that point yet, but it's a possibility."

In the meantime, research led by co-author Michael Wilkins, assistant professor of earth sciences and microbiology, has used genomics information to grow Candidatus Frackibacter in the lab and is further testing its ability to handle high pressure and salinity.

###

This work is funded by the National Science Foundation's Dimensions of Biodiversity program, the Department of Energy and the Deep Carbon Observatory.

Among the study's co-authors from Ohio State is Paula Mouser, principal investigator on the Dimensions of Biodiversity grant. Other co-principal investigators and co-authors include Wrighton; Michael Wilkins, assistant professor of earth sciences and microbiology; and David Cole, professor of earth sciences and Ohio Research Scholar. Co-author David Hoyt of the Environmental Molecular Sciences Laboratory at the Pacific Northwest National Laboratory analyzed the compounds in the fluids that provided evidence of microbial metabolism.

Contact: Kelly Wrighton, 614-688-2189; Wrighton.1@osu.edu

Written by Pam Frost Gorder, 614-292-9475; Gorder.1@osu.edu

Disclaimer: AAAS and EurekAlert! are not responsible for the accuracy of news releases posted to EurekAlert! by contributing institutions or for the use of any information through the EurekAlert system.

ORIGINAL: EurekAlert
by Pam Frost Gorder
 5-SEP-2016

sábado, 18 de junio de 2016

Nepal’s Extinct Bird Spotted After Disappearing for 178 Years

A team of bird-watchers stumbled upon a bird that hasn’t been seen in eastern Nepal for almost 200 years.

The red-faced liocichla (Liocichla phoenicea) hasn’t been spotted for 178 years and was thought to be locally extinct, according to Australian Geographic. A group of ornithologists spotted the bird on a 10-day bird watching tour.
Photo credit: Paulo Coteriano, Flickr
We were excited when we first spotted a pair of red-faced liocichla in the forest,Hem Sagar Baral, of the Zoological Society London and leader of the tour, told the Kathmandu Post. “The sighting of the bird after more than a century and a half has raised hopes of finding more such species that have not been sighted for a very long time.
The bird-watching group originally saw just two red-faced liocichlas, but when they returned to the spot the next day, they saw eight birds, including a male-female pair, Australian Geographic reported.

When we confirmed it was the red-faced liocichla we all felt so happy—we were so excited,Tikaram Giri, a senior field ornithologist, said. “We never thought and never expected to see it so easily.
Photo credit: Jason Thompson, Flickr
The red-faced liocichla is widely distributed throughout Vietnam, Bhutan, Laos, Myanmar and Bangladesh.

Discoveries of species previously thought to be extinct are not uncommon, Australian Geographic said. Several species of birds, mammals, insects, reptiles and plants have been rediscovered after years of no sightings.

Diana Fisher, University of Queensland fellow, said about a third of all mammals ever feared to be extinct have been rediscovered.

There are large numbers of poorly known species around the world only known from a single museum specimen as well,” Fisher told Australia Geographic. “So it is hard to know anything much about them or where they exist.
Photo credit: Bob Du, Flickr
But there is still reason for the bird-watching group in Nepal to celebrate.

Nepal is home to 878 species of birds, 8 percent of the world’s known birds. Even with the abundance, a lot of the species are close to being labeled as threatened.

Nearly 20 percent of Nepal’s birds (167 species) are threatened with extinction in the country including 37 species which are threatened on a global scale,” the Zoological Society London wrote.

Another 62 species are closing in on having a threatened status, the Weather Channel reported. Nine species are believed to be extinct in Nepal because they have not been spotted since the 19th century.

ORIGINAL: Ecowatch
Katie Pohlman
June 15, 2016

domingo, 22 de noviembre de 2015

Ancient Seeds Yield Once Extinct Squash

Most foods, with the exception of honey and Twinkies, have expiration dates. Natural foods, like fruits and vegetables, slowly rot away over time, but what about their seeds? Surely those have an expiration date, right? 

Students from Winnipeg, Canada recently discovered a stash of 800-year-old seeds while on an archaeological dig. The mysterious seeds, once planted, grew into a rare species of squash that has been extinct for hundreds of years. While we don't know if the seeds themselves were safe to eat, the squash that they harvested was absolutely delicious. Check out the images below to see the rare gourd for yourself and learn more about this discovery.
Students discovered the seeds buried in a clay pot on Wisconsin's Menemonee Reservation.

When they opened it up, they were met with a pile of strange seeds that they determined were over 800 years old. Is it just me, or do these seeds look like tiny, oval-shaped pancakes?

While not all of the seeds produced fruit, some grew this once-extinct squash.

Imagine seeing these at your local farmer's market. The students named the squash "gete-okosomin," or "really cool old squash."

There won't be any shortage of seeds moving forward.

Each squash appears to be roughly the size of a Chipotle burrito.


These students put in a lot of hard work, and it's finally time for them to enjoy the fruits of their labor. After all, it isn't often that archaeologists get to eat their discoveries.


ORIGINAL: Wimp
NOV 21, 2015