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Showing posts with label Plastisphere. Show all posts
Showing posts with label Plastisphere. Show all posts

Friday, January 24, 2014

The plastisphere menace

A new world: Plastic debris in the ocean has spawned a ‘plastisphere’ of organisms that scientists fear may send ripples through the marine ecosystem.

An ecosystem of mankind’s own making could pose an ecological threat.
Elizabeth Lopez manoeuvred a massive steel claw over the side of a 45m sailboat and guided its descent through swaying kelp and schools of fish 16km off the coast of San Diego, California.

She was hoping to catch pieces of a mysterious marine ecosystem that scientists are calling the “plastisphere”.

It starts with particles of degraded plastic no bigger than grains of salt. Bacteria take up residence on those tiny pieces of trash. Then single-celled animals feed on the bacteria, and larger predators feed on them.

“We’ve created a new man-made ecosystem of plastic debris,” said Lopez, a graduate student at the University of San Diego, during the recent expedition.

The plastisphere was six decades in the making. It’s a product of the discarded plastic – shopping bags, flipflops, margarine tubs, toys, toothbrushes – that gets swept from urban sewer systems and river channels into the sea.

Degraded plastic bags that have been washed ashore in Sekincan, Selangor. A new man-made ecosystem of plastic debris is taking shape in the sea.
Degraded plastic bags that have washed ashore in Sekincan, Selangor. A new man-made ecosystem of plastic debris is taking shape in the sea.

When that debris washes into the ocean, it breaks down into bits that are colonised by microscopic organisms that scientists are just beginning to understand.

Researchers suspect that some of the denizens may be pathogens hitching long-distance rides on floating junk. Scientists also fear that creatures in the plastisphere break down chunks of polyethylene and polypropylene so completely that dangerous chemicals percolate into the environment.

“This is an issue of great concern,” said Tracy Mincer, a marine geochemist at the Woods Hole Oceanographic Institution in Massachusetts.

“Microbes may be greatly accelerating the weathering of plastic debris into finer bits. If so, we aren’t sure how zooplankton and other small creatures are responding to that, or whether harmful additives, pigments, plasticisers, flame retardants and other toxic compounds are leaching into the water.”


Planet Plastic
About 245 million tonnes of plastic is produced annually around the world, according to industry estimates. That represents 31.5kg of plastic annually for each of the 7.1 billion people on the planet, scientists say.

The waste gathers in vast oval-shaped ocean “garbage patches” formed by converging currents and winds. Once trapped in these cyclonic dead zones, plastic particles may persist for centuries.

The physiological effects of visible plastic debris on the fish, birds, turtles and marine mammals that ingest it are well-documented: clogged intestines, suffocation, loss of vital nutrients, starvation. The effects of the minuscule pieces that make up the plastisphere are only beginning to be understood.

Edward Carpenter, a professor of microbial ecology at San Francisco State University, first reported that microbes could attach themselves to plastic particles adrift at sea in 1972.

He observed that these particles enabled the growth of algae and probably bacteria and speculated that hazardous chemicals showing up in ocean animals may have leached out of bits of plastic.

Carpenter’s discovery went largely unnoticed for decades. But now, the scientific effort to understand how the plastisphere influences the ocean environment has become a vibrant and growing field of study.

From Woods Hole to the University of Hawaii, scientists are collecting seawater and marine life so they can analyse the types, sizes and chemical compositions of the plastic fragments they contain. Their findings are shedding new light on the ramifications of humanity’s addiction to plastic.

A fine mesh net called a ¿neuston net¿ collects samples of animal and plant life at the sea surface as it is towed,
A fine mesh net called a neuston net collects samples of animal and plant life at the sea surface as it is towed.

“We’re changing the basic rhythms of life in the world’s oceans, and we need to understand the consequences of that,” said marine biologist Miriam Goldstein, who earned her doctorate at University of California San Diego’s Scripps Institution of Oceanography by studying plastic debris in the Great Pacific Garbage Patch between Hawaii and California.

In October, Goldstein and oceanographer Deb Goodwin of the Sea Education Association in Woods Hole reported that one-third of the gooseneck barnacles they collected from the garbage patch had plastic particles in their guts. The typical fragment measured 1.4mm across, not much bigger than a piece of glitter, according to their report in the journal PeerJ.

Some of the barnacles had bits of plastic in their faecal pellets too. That finding led Goldstein to speculate that some of the 256 barnacles that were plastic-free when they were captured by researchers had probably eaten plastic at some point in their lives but cleared it from their systems. Since crabs prey on barnacles, the plastic the barnacles eat may be spreading through the food web, Goldstein and Goodwin reported.

Fish that ingest plastic debris tend to accumulate hazardous substances in their bodies and suffer from liver toxicity, according to a study published in the journal Scientific Reports. Not only was the plastic itself dangerous, so too were the toxic chemicals the plastic had absorbed.

The plastisphere isn’t limited to oceans. In 2012, a team of researchers discovered microplastic pollution in the Great Lakes – including high volumes of polyethylene and polypropylene “microbeads” used in facial cleansers.

Other scientists, including Mincer of the Woods Hole institution and microbial ecologist Erik Zettler of the Sea Education Association, spent three years coming up with the first comprehensive description of microbial communities that colonise plastic marine debris.

The researchers used fine-scale nets to skim plastic particles from more than 100 locations in the Atlantic Ocean, from Massachusetts to the Caribbean Sea. Using scanning electron microscopes and gene-sequencing techniques, they identified more than 1,000 different types of bacteria and algae attached to seaborne plastic, according to their report in June in the journal Environmental Science & Technology.

Of particular concern was a sample of polypropylene not much larger than the head of a pin. Its surface was dominated by members of the genus Vibrio, which includes the bacteria that cause cholera and other gastrointestinal ailments.

In a research on the effects of plastic waste, students from the University of San Diego use tweezers and a spoon to gather specimens of weathered plastic retrieved from the sea.
In a research on the effects of plastic waste, students from the University of San Diego use tweezers and a spoon to gather specimens of weathered plastic retrieved from the sea.
These potential pathogens could travel long distances by attaching themselves to plastic debris that persists in the ocean much longer than biodegradable flotsam like feathers and wood.

The team is now comparing microbial communities on plastic debris collected in the North Pacific and North Atlantic oceans, trying to understand the bacteria that feed on their waste products, and predators that feed on all of them.

“Each one of these plastic bits is a circle of life – one microbe’s waste is another microbe’s dinner,” Mincer said. “We want to know more about how some microbes may be hanging out on plastic trash, just waiting to be eaten by fish so they can get into that environment.”

Meanwhile, in San Diego, Lopez and her colleagues are examining the samples they collected under powerful microscopes and removing tiny bits of plastic for classification and chemical analysis.

Their findings will be shared with the Southern California Coastal Water Research Project, a public research institute that monitors urban pollution.

“These microplastic worlds right under our noses are the next ocean frontier,” said Drew Talley, a marine scientist at the University of San Diego.

“It would be a crime not to investigate the damage they might be doing to the oceans and to humans. – Los Angeles Times/McClatchy Tribube Information Services

Friday, November 15, 2013

Plastic Debris in Oceans has Spawned a 'Plastisphere' of Organisms

Published in Environment 360, November 13th, 2013

The plastic debris that litters the world's oceans has developed its own unique and diverse microbial ecosystem, which scientists have dubbed the "plastisphere." READ MORE 




















Members of the rich microbial ecosystem living on plastic debris are shown in these scanning electron microscope images: a) a diatom and bacterial filaments; b) filamentous cyanobacteria; c) a predatory ciliate in foreground covered with symbiotic bacteria (inset), along with diatoms, bacteria, and filamentous cells; d) microbial cells that have pitted the surface of a piece of plastic debris. All scale bars are 10 micrometers. (Image credit: Zettler, et al., Environmental Science & Technology)

The plastic debris that litters the world's oceans has developed its own unique and diverse microbial ecosystem, researchers report. The microscopic community, which scientists dubbed the "plastisphere," includes more than 1,000 species of algae, bacteria, microscopic plants, symbiotic microbes, and possibly even pathogens, the researchers say in Environmental Science & Technology

Some of the plastisphere microbes, many of which had never before been documented, contain genes that could help break down hydrocarbons, indicating the microbes may play a role in degrading the debris, the research shows. Plastic trash is the most abundant type of debris in the ocean, inflicting harm on fish, birds, and marine mammals that are entangled by it or ingest it. 

Until now, researchers hadn't looked at microbes living on the debris, which make up a sort of artificial "microbial reef," one of the scientists said. The organisms on the plastic debris were different from the microbial communities living on driftwood, feathers, and other natural items floating in the ocean, and also different from the assemblage of microbes living in open water, the researchers report.

Friday, August 2, 2013

Scientists find microbes thriving on plastic marine debris

Microbes on marine debris
A scanning electron microscope image shows microbes on a piece of plastic marine debris. (Erik Zettler / Sea Education Assn. / August 1, 2013)

A team of researchers in Woods Hole, Mass., has discovered a novel ecological habitat flourishing in one of the fastest growing segments of civilization's toxic waste stream: plastic marine debris.

Welcome to the Plastisphere, a biological wilderness on microbial reefs of polyethylene and polypropylene in the open ocean teeming with single-celled animals, fungi and bacteria, many of them newly discovered. Some may be pathogens hitching rides on floating junk.

The effects of plastic debris on fish, birds, turtles and marine mammals that ingest it are well documented. But little is known about the effects of these diverse, relatively new and evolving microbial communities on the surrounding marine environment.

“We were surprised to find microbes in such high numbers on these plastics,” said Tracy Mincer,  an associate scientist in marine chemistry and geochemistry at Woods Hole Oceanographic Institution and coauthor of a report on the findings published online in June in Environmental Science and Technology. “Another surprise was that they are distinct from their surrounding marine counterparts.”

Using scanning electron microscopes and gene sequencing techniques, the team found at least 1,000 different types of bacteria, diatoms and algae attached to seaborne rubbish. They also discovered microbes embedded in cracks and pits on plastic surfaces indicating they may be capable of degrading hydrocarbons.

These unique menageries, which arose on plastic debris introduced to the world’s ocean over the last six decades, make up extensive food chains of bacteria and single-celled animals that produce their own food, bacteria that feed on their waste products and predators that feed on all of them.

"Each one of these plastic bits is a circle of life -- one microbe’s waste is another microbe’s dinner,” Mincer said. “We want to know more about how some microbes may be hanging out on plastic trash, just waiting to be eaten by fish so they can get into that environment.”

Of particular concern was a sample of polypropylene -- about the size of the head of a pin -- dominated by members of the genus vibrio, which includes bacteria that cause cholera and gastrointestinal ailments.

Since plastic debris persists far longer than biodegradable flotsam such as feathers and wood, dangerous pathogens could travel long distances by attaching themselves to plastic rafts of debris tinier than salt grains.

Another surprise: Some microbes seem to have acquired a taste for polypropylene. Others, however, prefer polyethylene.

“We still don’t know what they may be getting out of it,” Mincer said. “Not much nutrition there.”

It’s all grist for continuing research in what Mincer described as “a whole new field of study that is unfolding in countless fascinating themes.”

The analyses of marine debris skimmed with fine-scale nets at several locations in the North Atlantic was led by microbial ecologist Erik Zettler of the Sea Education Assn., biologist Linda Amaral-Zettler of the Marine Biological Laboratory, and Mincer -- all in Woods Hole, Mass.

“We’ve only just begun in what I see as a long-term project in our laboratory,” Mincer said.

An estimated 46,000 pieces of plastic trash float in every square mile of ocean. The waste gathers in vast "garbage patches" in ocean gyres --  cyclonic dead spots formed by currents and winds.

The Eastern Garbage Patch, midway between Hawaii and California, is roughly twice the size of Texas.
 louis.sahagun@latimes.com

Monday, July 1, 2013

Microbes Make Cozy Homes in Ocean's Garbage

published by Wynne Parry, LiveScience Contributor June 27, 2013 in LiveScience
 
For about four decades, it's been known that plastic is collecting in the open ocean. Now, scientists have found this debris harbors unique communities of microbes, and the tiny residents of this so-called plastisphere may help break down the marine garbage.

 Inhabitants of the plastisphere include members of a group of bacteria, the vibrios, known to cause disease, and microbes known to break down the hydrocarbon bonds within plastics, genetic analysis revealed. But most important, the communities of microbes on the plastic pieces were quite different from those found in samples of surrounding seawater.

"It's not a piece of fly paper out there with things just sticking to it randomly," said study researcher Tracy Mincer, an associate scientist at the Woods Hole Oceanographic Institution, referring to the plastic. "There are specific groups of microbes that are attracted to that environment and are adhering to it and living on it."

Potential pathogens & plastic degraders 

Vibrios accounted for nearly 24 percent of the residents on one of the six small pieces of plastic used in the study. samples of plastic debris collected in the ocean. "Because most plastic originates from land it begs the question how far these vibrios are coming from. … And are they potential pathogens, not just of humans, but for animals, such as fish," said study researcher Linda Amaral-Zettler, an associate scientist at the Marine Biological Laboratory.

 
Using net tows, the students collected samples of plastic debris (shown here) in the ocean.
CREDIT: E. Zettler, Sea Education Association
 
Some species in the genus Vibrio cause disease, but it’s not clear what species were within the samples, since the analysis for this study did not identify individual species of bacteria.

Burrowed in 

 Meanwhile, microscope images revealed microbestucked into pits that conformed to the shape of their single-celled bodies. The pits suggest the microbes are perforating the plastic and accelerating the natural weathering process, breaking it down, Mincer said. (The researchers aren’t certain which bacteria are in the pits; most bacteria cannot be identified through microscope images.)

"Either the cells have to settle into the perfectly shaped pits or they have something to do with creating the pits," said study researcher Erik Zettler, associate dean and professor of oceanography at the Sea Education Association in Woods Hole, Mass. If the microbes are indeed burrowing into the plastic, they may be doing so mechanically or they could be metabolizing, otherwise known as "eating," the plastic, Zettler said.

The presence of hydrocarbon-degrading bacteria, related to those that bloomed after the Deep Horizon oil spill, indicates that bacteria may indeed be responsible for the pits.

Good or bad for ocean life? 

The scientists aren't sure if bacteria-aided breakdown of plastics is good or bad for ocean ecosystems. Whereas smaller pieces may accelerate the removal of plastics from the oceans, they may also have negative consequences.

Smaller trash bits have a larger surface area (and more contact with the surrounding water) relative to volume so they can release more of the pollutants that plastics can absorb. These itsy bits of plastic are also morelikely to enter the bottom of food chains when animals such as tiny, floating creatures called zooplankton consume them,and accumulate in the predatorsat the top, Zettler said.

 Much of the plastic debris in the ocean has been broken down into confetti-size pieces. During voyages in the North Atlantic, researchers and students onboard a Sea Education vessel collected bits of plastic for this study, which was published online by the journal Environmental Science & Technology on June 7.


Undergraduate students on the SEA Semester vessel SSV Corwith Cramer collect plastic samples of ocean debris using a neuston net.
CREDIT: E. Zettler, Sea Education Association 
This research is part of a National Science Foundation-funded project to study microbes living on marine plastic. Going forward, Mincer is interested in finding the genetic mechanism that has enabled the plastic colonizers to attach to it so quickly and effectively. "We think it may lead to a story of microbes adapting to a changing world," he said, pointing out that plastics are quite different from any surface upon which open ocean microbes would naturally settle.

Follow LiveScience @livescience, Facebook & Google+. Original article on LiveScience.com.