Showing posts with label seagrasses. Show all posts
Showing posts with label seagrasses. Show all posts

Thailand: Marine experts push to plan to protect dugongs

The Phuket News 18 Jul 19;

KRABI: Calling on local fishermen to preserve dugong sea grass grazing areas and establishing a dugong protection zone are just two strategies to be rolled out under a plan to try to stem the rising number of dugongs found dead along the Andaman coast.

The proposals were put forward at a meeting in Krabi on Tuesday (July16) headed by Marine and Coastal Resources Department Director-General Jatuporn Buruspat. Also present were Rear Admiral Nunthapon Mararat of the Royal Thai Navy Third Area Command and Krabi Vice Governors Somkuan Kunngen and Sompot Chotichuchuang.

So far this year 15 dead dugongs have washed ashore or been found in the sea off the coast of the southern provinces, much higher than the yearly average, the meeting was told.

Mr Jatuporn unveiled a plan comprising short-term, mid-term and long-term phases.


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Thailand: Mums with babies among dugongs sighted in Trang sea

The Nation 5 Mar 19;

The sighting of more dugongs in the Andaman sea off the coast of southern province of Trang is a good sign that the population has increased, the director of Phuket Marine Biological Centre said on Tuesday.

Dr Kongkiart Kittiwatanawong, said the centre was conducting a dugong sighting survey in the Andaman Sea around Koh Libong and Koh Muk from February 28 through to this Tuesday.


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Ocean heatwaves devastate wildlife, worse to come

Marlowe HOOD, AFP Yahoo News 5 Mar 19;

Paris (AFP) - Invisible to people but deadly to marine life, ocean heatwaves have damaged ecosystems across the globe and are poised to become even more destructive, according to the first study to measure worldwide impacts with a single yardstick.

The number of marine heatwave days has increased by more than 50 percent since the mid-20th century, researchers reported in the journal Nature Climate Change.

"Globally, marine heatwaves are becoming more frequent and prolonged, and record-breaking events have been observed in most ocean basins in the past decade," said lead author Dan Smale, a researcher at the Marine Biological Association in Plymouth, Britain.

Above the ocean watermark, on Earth's surface, 18 of the last 19 years have been the warmest on record, leading to more severe storms, droughts, heatwaves and flooding.

"Just as atmospheric heatwaves can destroy crops, forests and animal populations, marine heatwaves can devastate ocean ecosystems," Smale told AFP.


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Malaysia: Nicky, the friendly dugong

Avila Geraldine New Straits Times 18 Feb 19;

KOTA KINABALU: Nowadays, one needs luck to spot dugongs in the wild, let alone play and swim with them. Their sightings are rarely, if at all, reported.

But two years ago, a group of tourists had Lady Luck on their side when they came across a dugong swimming beside their boat.

The tourists, who were guests of the Try Scuba Sdn Bhd dive company, were headed towards Pulau Kalampunian Damit and Pulau Besar Kalampunian when the dugong made a surprise appearance.

“I’ve not seen a dugong for a long time after my first encounter with one at Pulau Mantanani between 2005 and 2007. So, to see it after over 10 years and in an area you least expect it, is remarkable,” said company owner Rudy Mattahari, 51.


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NUS study: Mangroves can help countries mitigate their carbon emissions

National University of Singapore NewsWise 9 Nov 18;

After examining 14 of the world’s most common ecosystems, coastal environments were found to be the most effective at capturing carbon

Geographers from the National University of Singapore (NUS) have found that coastal vegetation such as mangroves, seagrasses, and salt marshes may be the most effective habitats to mitigate carbon emissions.

The study, which was conducted by researchers from the Department of Geography at the NUS Faculty of Arts and Social Sciences, indicates that nations with large coastlines could expand these ecosystems to further counteract their fossil fuel emissions. These findings were published in the Royal Society journal Biology Letters on 24 October 2018. With the recent Paris Agreement setting a target for all nations to become carbon neutral in the future, utilising these natural ecosystems could help to achieve this goal.


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We desperately need to store more carbon – seagrass could be the answer

Marianne Holmer The Conversation 31 Oct 18;

According to the UN’s Intergovernmental Panel on Climate Change, urgent and unprecedented changes are needed to avoid a climate change catastrophe. Although efforts are already being made to reduce the production of greenhouse gasses, they are by most estimations not enough.

It is therefore critical that we find ways to drastically reduce the amount of pollutants in the atmosphere. Ecosystems capable of absorbing and storing large amounts of carbon dioxide know as “carbon sinks” are ideal for this.

In principle, all living organisms – all animals, plants, algae and bacteria – consist of carbon and so function as a carbon sink. For example, as long as a tree lives it will absorb and store carbon. Given the sheer volume of all the trees contained in tropical forests, it’s no wonder most people imagine such forests when they think of a carbon sink.

However, once chopped down and turned into firewood, the carbon in those trees will be released and emitted back into the atmosphere as CO₂. So while a forest is a moderately efficient carbon sink, its capacity to retain carbon in the forest floor is limited.

In fact, new research by colleagues and I has found that such forests are actually only the fifth most efficient ecosystem in the carbon storage cycle behind salt marshes, mangrove forests, seagrass meadows and, best of all, tundra.


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Climate change: Five cheap ways to remove CO2 from the atmosphere

Matt McGrath BBC 25 Oct 18;

As well as rapidly reducing the carbon dioxide that we humans are pumping into the atmosphere in huge amounts, recent scientific assessments of climate change have all suggested that cutting emissions alone will not be enough to keep global temperatures from rising more than 1.5 or 2 degrees C.

The Intergovernmental Panel on Climate Change and others have all stated that extracting CO2 from the air will be needed if we are to bend the rising temperature curve before the end of this century.

These ideas are controversial with some seeing them as a distraction from the pressing business of limiting emissions of CO2.

But a new assessment from the US National Academies of Sciences, Engineering and Medicine says that some of these "negative emissions technologies" are ready to be deployed, on a large scale, right now.

The authors point to the fact that the US Congress has recently passed the 45Q tax rule, which gives a $50 tax credit for every tonne of CO2 that's captured and stored. So their study highlights some technologies that are available at between $20 and $100 per tonne.

1- Coastal blue carbon


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Malaysia: Threat to marine powerhouse - doom and gloom for seagrass

Nadiah Rosli New Straits Times 11 Aug 18;

YOU don’t need to be whisked away to an endless field of flowers or a garden to watch flowering plants bloom.

Remarkably, the same wonder of nature occurs underwater in seagrass gardens or meadows.

Dubbed “Flowers of the Ocean”, seagrasses have been around since the time of the dinosaurs, and are unique flowering plants that have evolved to live in marine habitats.

Growing in shallow sheltered areas along coastal regions around the world, they can flower, pollinate and even produce edible fruits.

But unlike terrestrial flowers which inspire swathes of romantic poetry and art, seagrass ecosystems remain marginalised and misunderstood.

Not as visually attractive as coral reefs or as visible as mangroves, they are reported to be one of the least charismatic of coastal ecosystems.

Yet seagrass is a marine powerhouse. It’s the world’s third most valuable ecosystem (after estuaries and wetlands).

While seagrasses account for less than 0.2 per cent of the world’s oceans, they’re responsible for 10 per cent of the carbon stored in the oceans annually, and they are up to 35 times for more efficient at sequestering carbon than rainforests.

Alarmingly, close to 30 per cent of the world’s seagrass meadows have already been lost, with an estimated 110 square kilometres of seagrass lost annually.

The region with the highest proportion of sites declining? Southeast Asia. At the same time, this region has the highest diversity of seagrass species and habitat types found anywhere else in the world.

UNSUNG ECOLOGICAL HEROES

The richest coastal marine resources in Southeast Asia are found in Indonesia, the Philippines and Malaysia.

The Power of the Three — coral reefs, mangroves and seagrass — make up the rich biodiversity in this region. However, it’s widely considered that coral reefs are the most popular, mangroves the most disturbed and seagrass the least studied.

“The knowledge about seagrass is low amongst the public and decision makers, and this ecosystem remains ignored on conservation agendas,” according to Benjamin Jones, director and co-founder of Project Seagrass, a UK-based environmental charity dedicated to advancing the conservation of seagrass through education, influence, research and action.

There are common misconceptions about seagrasses, he says, mainly the confusion between seagrass and seaweed.

The former belongs to a group of plants known as angiosperms (flowering plants).

“It (seagrass) has flowers, it has seeds, it has roots and it hatches through sand, not a rock. So a seagrass is a true plant; a seaweed is not.”

Seagrasses grow when completely submerged and pollination is aided by water. They’re able to withstand the forces of wave action and tidal currents, and have adapted to survive in salty waters in mostly sand or mud sediments. Seagrass roots pump oxygen into the sediment, and they rely on light to convert carbon dioxide and water into oxygen and water.

There is a bit of a debate as to how many species of seagrass there are, but studies point to around 60-70 species all over the world and there are clear trends of seagrass loss in all areas of the world.

Not only are seagrasses crucial to food security and alleviating poverty, they serve as nursery grounds for many species of commercially important fish and shellfishes, protect shorelines, are an essential food source for dugongs, green turtles and manatees, and provide natural protection against climate change.

Moreover, seagrass meadows offer non-consumptive services such as educational, recreational and tourism benefits and opportunities. This ecosystem is also inextricably linked to many cultural traditions of coastal communities.

Basic information seagrass distribution in Southeast Asia is still lacking, with 18 of the world’s 60 seagrass species and 33 per cent of all seagrass areas have been identified in this region where millions depend upon marine resources for their livelihoods and diets.

Jones contends that while Southeast Asia is a global biodiversity hotspot for seagrass, to what extent they’re declining is still unclear.

“We know what their threats are and we know they’re in a bad state, but how much of them are we losing?”

But it’s not all doom and gloom for seagrass meadows in the region. ‘Hope spots’, Jones mentions, are

RALLYING FOR SEAGRASS RECOVERY

One such ‘hope spot’ is located in Indonesia, a country that has experienced 30 to 40 per cent loss of seagrass beds in the last 50 years, with as much as 60 per cent around Java.

While natural variabilities such as storms and tsunamis contribute to seagrass decline, another study indicates that up to 90 per cent of seagrass in Indonesia has been extensively damaged and degraded over the past five years due largely to human activities such as coastal development, land reclamation and deforestation as well as seaweed farming, overfishing, poor water quality/sedimentation and garbage dumping.

On the island of Kaledupa in Wakatobi National Park, Sulawesi, researchers have worked together with locals to bring about change for the seagrass beds. Started in 2012, the Wakatobi Seagrass Programme is a collaborative research initiative led by scientists Leanne Cullen-Unsworth and Richard Unsworth, and supported by Cardiff University and Swansea University.

Jones is part of the team that have that been working on addressing threats through a bottom-up approach of community-level and action.

“Communities there are pioneering methods that Western and conservation scientists can only dream of,” he enthuses, referring to the integration of local ecological knowledge which helped identify sedimentation as a focal threat that needed to be dealt with.

Local non-governmental organisation, FORKANI, the project’s community partner, is pivotal in inspiring this change. It proposed the idea to provide fruit trees to land owners living adjacent to river beds. Because of mangrove destruction and terrestrial run-off, the trees serve to repopulate the riverine systems, increase water retention and reduce impact on seagrass.

To date, they have planted 6,000 trees along seven river beds. Moreover, once awareness was raised on the importance of seagrass to their livelihoods and nutrition, seagrass education was later incorporated into local school curriculums.

Jones adds: “Women go out on seagrass beds during low tide to collect invertebrates to feed their families and to sell on a daily basis. Fishermen understand that the substantial decline of seagrass affects their catch and food source. They’re the voices that need to be heard in the fight to preserve seagrass ecosystems.”

SAVING DUGONGS AND THEIR SPECIALISED DIETS

Humans are not the only ones reliant on seagrass ecosystems for food. Dugongs (Dugong dugon) are the world’s only vegetarian marine mammal and can consume up to 40kg of seagrass a day.

Also known as “sea cows” because of their tendency to “graze” on seagrass, dugongs can only survive in specific areas with healthy seagrass ecosystems.

Therefore, dugong and seagrass conservation should go hand in hand, as well as the mainstreaming policies and planning for this endangered species with their habitats needing to be national and regional priorities.

Endangered in Malaysia, it is estimated that there are only 40 to 50 dugongs left in Johor, mainly around Sibu and Tinggi islands and their adjacent waters.

Dugongs are also found in Sabah, where around 20 to 30 dugongs were recorded around Mantanani, Bangi and Mengalum islands, and in Sarawak, in the waters of Brunei Bay, Lawas.

Dr Leela Rajamani, a marine conservation biologist from Universiti Sains Malaysia, has been researching on community understanding and management of dugong and seagrass resources in Johor and Sabah.

She cites her studies as using interdisciplinary methods such as marine biology, ecology, anthropology and sociology in looking at conservation problems.

She stresses on community involvement in protecting dugongs and their seagrass habitats, and that education is key in transforming their involvement into conservation action.

Says Leela: “The older males and females seem to know about the dugong from seeing it themselves or the seeing the animals stranded on the shore. The younger people do not know much about these animals because they’ve never seen it. Using the local knowledge and anecdotes, communities on these islands are aware that the presence of dugongs on seagrass beds which they call Rumput Setu (Enhalus acoroides) and Rumput Ketam (Halophila sp.) make these plants healthier.”

Leela states that the main threats on Malaysia’s seagrasses are mainly coastal development and sedimentation.

She created focus groups to engage and educate members of the community, fishermen and resort operators on the loss of seagrass along the coastline and how this will have a negative impact on marine animals, especially dugongs.

She also met with the oldest residents in the village to collect oral histories on dugong origin stories and myths, and to use these stories to link cultural values of locals with this charismatic species.

“In most of the stories about dugongs, they’re ‘originated’ from humans — consequently the communities regard this animal with respect. They also recognise that when dugongs are around, it’s easier to get fish and other catch as the environment is thriving with sea life. For this reason, they don’t disturb dugongs or other animals like turtles as a sign of respect.”

Dugongs are protected under the Fisheries Act 1985 and the Fisheries Regulations 1999 (Control of Endangered Species of Fish) for Peninsular Malaysia and Federal Territories of Labuan, Wildlife Protection Ordinance 1998 and the Wildlife Conservation Enactment 1997 for Sarawak and Sabah.

The Johor state government is in the process of gazetting the area between three islands off Mersing as a Dugong Sanctuary but Leela argues for the 
creation of Seagrass Marine Protected Areas (MPA). Seagrasses are usually included in MPA management plans for the sake of inclusion without any real thought on why it should be included.

“There are no reasons not to have seagrass protected areas. I can still remember the first time I went to a seagrass meadow and saw the flowers, and thought, wow! They’re not well-understood and there’s still a lot more to discover about seagrasses and its inhabitants like the dugongs, turtles and seahorses,” says Leela.

SEAGRASS OPTIMISM

It is this same fascination with seagrasses that are driving efforts around the region to save these habitats.

Since more than 30 years ago, scientists have reported the need to stop the degradation of seagrasses and to step up protection and management of this vulnerable ecosystem.

In spite of the ample evidence accumulated on their threats, benefits and biology, the urgency hasn’t reverberated enough.

“The biggest challenge is that we simply don’t know where they are, how much they are and how much we’re losing. People do get behind initiatives that want to change things, and it’s really about education, education and education,” remarks Jones. But a little bit of technology also can’t hurt.

Project Seagrass launched the ‘Seagrass Spotter’ this year ­— a free database which allows for citizen scientists around the world to participate in the conservation effort instead of a handful of researchers.

Accessible with a mobile phone, anyone can upload a photo of seagrass and key in basic information such as the shape of the leaves, the location, etc. There have been 27 species uploaded within the app from 54 countries so far.

Jones explains that there’s no other global citizen science programme like Seagrass Spotter, and showcases how science can be translated into what communities and marine natural resource managers and decision-makers can use.

“It’s entry-level, anybody can use it and anybody can get involved. It was designed initially as a tool to get people to visit seagrass meadows and learn about these sites. But now it’s evolved to mapping them through pictures globally and serves as a free database for management agencies and a tool to streamline data collection for seagrasses.”

With less than 500 scientists studying seagrasses around the world, there’s a need to increase the local capacity of researchers, teams and managers. Seagrasses has never been on the big players’ table.

Getting seagrasses acknowledged on the main stage is central to efforts for the protection and conservation of seagrasses in this region and worldwide.

A petition by the international seagrass research and conservation community is underway to call on the United Nations to declare a World Seagrass Day.

Exposed only at low tide, the loss of seagrass meadows have gone largely unnoticed, but this doesn’t mean we need to submerge our appreciation for these amazing marine habitats.

Benjamin Jones and Dr Leela Rajamani were interviewed at the recent 5th International Marine Conservation Congress in Kuching, Sarawak, Malaysia.


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Seagrass can provide localized protection against ocean acidification

Brooks Hays UPI 31 Jul 18;

July 31 (UPI) -- Seagrass could serve as a local buffer against ocean acidification, protecting vulnerable species against rising levels of carbonic acid.

In addition to providing food and shelter to a variety of marine organisms, seagrass also absorbs carbon dioxide as it performs photosynthesis. Researchers with the Carnegie Institution for Science designed to models to measure whether a seagrass meadow's carbon uptake abilities could lower pH levels.

The models accounted for grass density, photosynthetic activity, water depth, currents and a variety of other factors. The results, detailed in the journal Ecological Applications, suggests seagrass can have a small, local effect on ocean acidity.

"Local stakeholders, such as California's shellfish industry, want to know whether seagrass meadows may help to counteract ocean acidification," Carnegie researcher David Koweek said in a news release. "Our results suggest that seagrass meadows along the California coast will likely offer only limited ability to counteract ocean acidification over long periods of time."

Though scientists found seagrass was unlikely to offer longterm protection, they did show seagrass meadows can offer stronger, short-term benefits during low tide and during the day when photosynthetic activity peaks.

Carbonic acid is corrosive and prevents shellfish from forming their shells out of calcium carbonate. The latest research suggests shellfish could potentially take advantage of the short-term protections offered by sea grass.

"We are starting to understand that some marine organisms, such as blue mussels, are actually able to shift the time of day in which they do most of their calcification," Koweek said. "If other organisms are able to do the same, then even brief windows of significant ocean acidification buffering by seagrass meadows may bring substantial benefits to the organisms that live in them."

RELATED How ocean acidification weakens coral skeletons
The best way to fight ocean acidification, scientists insist, is to drastically curb the amount of carbon dioxide being released into the atmosphere. But conserving sea grass could help, too.

"Although our results indicate that seagrass meadows along the California coast are not likely to offer long-term buffering to fight ocean acidification, their enduring role as habitat for marine organisms, protectors against sea level rise, and magnets of biodiversity should be more than enough reason to restore and protect these iconic ecosystems," Koweek said.


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Thailand: Dead dugong found off Phang Nga

The Thaiger The Nation 31 Jul 18;

A 250-kilogram dugong, found dead off Phang Nga over the weekend, has been brought to Phuket for further examination.

Officials from the Phuket Marine Biological Centre (PMBC) were notified on Sunday that the body of the dugong had been found by local fishermen in Phang Nga.

The dugong, which was brought back to Phuket for a full autopsy, was a mature male measuring 2.46 metres long and weighing 250 kilograms.

Its body had already started to decompose.

However, it is believed that the dugong died quite suddenly, as food was still found in its digestive system.

A large bruise, measuring 25 centimetres, was found on its skin.

The dugong’s DNA is yet to be tested.



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Malaysia: ‘Move to gazette Kuala Lawas as national park right decision’

Borneo Post 5 Jul 18;

LIMBANG: Sarawak government’s move to gazette Kuala Lawas as a national park last year is a step in the right direction to rehabilitate, preserve and protect marine resources, forest habitat and the environment from becoming endangered and extinct.

Limbang Division Forest Officer Michael Ngelai said Lawas National Park which covers 13,981 hectares including the Gulf of Brunei occupies 60 per cent of the 20-kilometre coastal estuary, mostly covered by mangrove forest.

“Kuala Lawas National Park boasts rich biodiversity in marine resources like sea grass which is a major food source for dugongs and turtles, both totally protected species in Sarawak.

“By gazetting Kuala Lawas as a marine resources national park, forest and marine habitats and the environment can be protected,” he said at a briefing session on the establishment of Lawas National Park to stakeholders in Limbang District here yesterday.

Also present were Fisheries Department’s head of resources protection unit, Dokanaer Kasto Muning and Aswari Rakawi who represented the Limbang Resident.

Besides the sea grass, Kuala Lawas National Park has many other totally protected and endangered species like the Pacific reef igret, black shoulder eagle and kingfisher, he said.

“In fact, the area too has 60 fish species from 35 economically important families,” he said

adding that Kuala Lawas has potential to be marine tourism destination for activities like diving, snorkeling and bird watching.

Earlier, Dokanaer said marine resources and forest habitat in the park should be preserved so that future generation too can enjoy the rich biodiversity there.

“It is also the responsibility of the public to take care of the area based on relevant laws,” he said.


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Dispersion of seagrasses via vegetative fragments

National University of Singapore Phys.Org 2 Jul 18;

NUS marine biologists have developed a model describing the dispersal of seagrass via vegetative fragments for the ecological engineering of coastlines.

Seagrasses form vast meadows that are home to a great diversity of marine species. They are also one of the most valuable coastal habitats in the world, and provide a multitude of ecosystem services including coastal protection, nutrient cycling, carbon sequestration, and providing nurseries for fish and shellfish. Seagrass dispersal (i.e. how seagrasses spread to new areas) is critical to their long-term survival. However, knowledge on long-distance dispersal mechanisms is mostly related to sexual propagules, i.e. fruits. Dispersal via vegetative fragments has mostly been overlooked. Vegetative fragments are pieces of the seagrass plant that include rhizomes, roots and shoots. Following detachment from the parent plant, these can re-establish elsewhere to create a new independent plant. While there is evidence that such a process might be important for dispersal, little is known about the mechanisms involved. A better understanding of these dispersal mechanisms can eventually help researchers model how seagrass meadows remain connected, which is crucial for prioritising areas for conservation.

A research team led by Prof Peter TODD from the Department of Biological Sciences, NUS, partnered with scientists from DHI Singapore and the Royal Netherlands Institute for Sea Research to develop a conceptual model for seagrass dispersal via vegetative fragments which involves several distinct fundamental steps. Researchers are able to piece them together in a model to predict where seagrasses are able to disperse and take root.

The research team found that both settlement (the fragment remains on the substrate) and establishment (the fragment takes root in the substrate) rates increased with fragment age before these rates decrease due to decay. This suggests there may be a window of opportunity during which settlement and establishment are optimal, i.e. when the fragment has enough time to float away from the parent meadow, but not too long that it decays, loses viability and is no longer able to establish. Different species were also found to have different settlement and establishment rates. Out of the four seagrass species tested, the species Halophila ovalis was found to settle and establish quicker and more successfully than others. While the mechanisms that enable it to settle and establish more quickly are not apparent, this trait could contribute to its success as a pioneering species, especially in areas of newly accumulated sediment.

Prof Todd said, "The findings help determine the dispersal potential of different seagrass species and the kind of conditions needed for successful dispersal. This research represents significant progress in our understanding of how seagrasses can disperse without sexual propagules and has important implications for their conservation and management."

More information: Samantha Lai et al. Unlikely Nomads: Settlement, Establishment, and Dislodgement Processes of Vegetative Seagrass Fragments, Frontiers in Plant Science (2018). DOI: 10.3389/fpls.2018.00160


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Seagrasses can offset climate change

Plants can store 35 times more carbon than rainforests; S-E Asian varieties more resilient
Luke Anthony Tan Straits Times 13 Jun 18;

The verdant meadows of the sea are up to 35 times better than rainforests at storing carbon and are nurseries for all manner of marine creatures. Yet, about 40 per cent of the world's seagrass may have been lost due to human activity.

Found in coastal waters all over the world, apart from at the poles, seagrasses play a part in mitigating climate change by burying carbon under the seabed for up to thousands of years.

Such carbon, stored in coastal ecosystems like seagrass meadows, is often referred to as blue carbon.

And this potent ability to mitigate climate change is helping to drive conservation efforts for seagrass, said Dr Siti Yaakub, a marine ecologist at the environmental consultant company DHI Water & Environment.

Ms Samantha Lai, a PhD student at the National University of Singapore (NUS) who is studying the resilience and restoration of seagrass in Singapore, said: "At the global level, seagrass conservation efforts consist of monitoring seagrass meadows by student scientists or researchers... restoring areas of degrading meadows by planting seagrass seeds or shoots... and by protecting areas from impact or destruction."

While much of the world's seagrass has been lost, there is a silver lining. Recent research done by local scientists, including Dr Siti, and Australian collaborators found seagrasses in parts of South-east Asia - including Malaysia, Thailand, Indonesia and Singapore - to be resilient to natural and man-made stressors.

Dr Siti said: "We found that the meadows in this region are very genetically diverse. This means they are resilient to stressors like climate change, disease and all kinds of anthropogenic stressors (such as land reclamation, which destroys the habitat for seagrasses)."

Their genetic diversity is also good news for the marine life that depends on it, noted Ms Lai.

Were seagrasses to disappear, coastal sediments could erode and this erosion would not only negatively affect environments upland such as mangroves, but also environments further down, such as corals, she pointed out.

If the plants lack such diversity, then people run the risk of a "massive die-out", Dr Siti added.

One question that marine ecologists cannot answer for sure is how much seagrass there is overall, especially in South-east Asia. "There are pockets (of research done) in South-east Asia, where there's a lot of information, but for the vast region, it's a big data gap, a big black hole of no information," Dr Siti said.

To help plug this, more than 200 seagrass researchers, students and managers from non-profit organisations have gathered in Singapore for the World Seagrass Conference and the 13th International Seagrass Biology Workshop (ISBW) to share their research and engage the public. The meetings, which began on Monday and will end on Sunday, are organised by the DHI Group, the National Parks Board and NUS.

In line with the theme of translating science into action, there will be a two-hour public talk today at UTown at NUS at 7pm, featuring seagrass researchers from Australia, Malaysia and Sweden.

Members of the public can register for the talk for free at the ISBW website (www.isbw13.org).

Environmental and economic benefits

SEAGRASS ECOSYSTEMS

Despite their name, seagrasses are flowering plants that can be found all over the world in shallow coastlines, except for the poles.

They form extensive beds or meadows, which can consist of only one species of seagrass or multiple species in mixed beds. There are about 60 known seagrass species, with the highest number found in the tropics.

Seagrass meadows can reduce the amount of bacteria that can cause disease in humans and marine life such as corals. A 2003 study found that chemicals from seagrass tissue can kill or stop the growth of bacterial pathogens that affect humans, fish and invertebrates.

Seagrasses also provide shelter and food for a wide range of animals, including fish, crabs, sea turtles, dugongs, birds and tiny invertebrates.

BLUE CARBON STORAGE

Seagrasses can bury organic carbon, often referred to as blue carbon, into the seabed.

Although seagrass meadows occupy less than 0.2 per cent of the area of the world's oceans, scientists estimate that these meadows bury roughly 10 per cent of organic carbon in the oceans each year.

While tropical rainforests can store carbon for decades, seagrass ecosystems are capable of storing carbon for millennia, and at a rate 35 times faster than rainforests can.

SUPPORT OF GLOBAL FISHERIES

Seagrass meadows support fisheries and so are important for seafood supply.

In the Indo-Pacific, 746 species of fish are known to depend on seagrass meadows. The species of fish associated with seagrass contribute to both industrial and small-scale fisheries.


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Dugong and sea turtle poo sheds new light on the Great Barrier Reef’s seagrass meadows

James Cook University The Conversation AU 25 May 18;

Just like birds and mammals carrying seeds through a rainforest, green sea turtles and dugong spread the seeds of seagrass plants as they feed. Our team at James Cook University’s TropWATER Centre has uncovered a unique relationship in the seagrass meadows of the Great Barrier Reef.

We followed feeding sea turtle and dugong, collecting samples of their floating faecal matter. Samantha then had the unenviable job of sifting through hundreds of smelly samples to find any seagrass seeds. These seeds range in size from a few centimetres to a few millimetres, and therefore can require the assistance of a microscope to be found. Once any seeds were found, they were stained with a chemical dye (Tetrazolium) to see if they were still viable (capable of growing).

Why is this important for turtles and dugong?

Green sea turtles and dugong are iconic animals on the reef, and seagrass is their food. Dugong can eat as much as 35 kilograms of wet seagrass a day, while sea turtles can eat up to 2.5% of their body weight per day. Without productive seagrass meadows, they would not survive.

This relationship was highlighted in 2010-11 when heavy flooding and the impact of tropical cyclone Yasi led to drastic seagrass declines in north Queensland. In the year following this seagrass decline there was a spike in the number of starving and stranded sea turtles and dugong along the entire Queensland coast.

The seagrass team at James Cook University has been mapping, monitoring and researching the health of the Great Barrier Reef seagrasses for more than 30 years. While coral reefs are more attractive for tourists, the Great Barrier Reef World Heritage Area actually contains a greater area of seagrass than coral, encompassing around 20% of the world’s seagrass species. Seagrass ecosystems also maintain vibrant marine life, with many fish, crustaceans, sea stars, sea cucumbers, urchins and many more marine animals calling these meadows their home.

These underwater flowering plants are a vital component of the reef ecosystem. Seagrasses stabilise the sediment, sequester large amounts of carbon from the atmosphere and filter the water before it reaches the coral reefs. Further, the seagrass meadows in the Great Barrier Reef support one of the largest populations of sea turtles and dugong in the world.

Seagrass meadows are more connected than we thought

Samantha’s research was worth the effort. There were seeds of at least three seagrass species in the poo of both sea turtles and dugong. And lots of them – as many as two seeds per gram of poo. About one in ten were viable, meaning they could grow into new plants.

Based on estimates of the number of animals in the coastal waters, the time it takes for food to pass through their gut, and movement data collected from animals fitted with satellite tags, there are potentially as many as 500,000 viable seeds on the move each day in the Great Barrier Reef. These seeds can be transported distances of up to 650km in total.

This means turtles and dugong are connecting distant seagrass meadows by transporting seeds. Those seeds improve the genetic diversity of the meadows and may help meadows recover when they are damaged or lost after cyclones. These animals help to protect and nurture their own food supply, and in doing so make the reef ecosystem around them more resilient.

Understanding recovery after climate events

Seagrass meadows have been under stress in recent years. A series of floods and cyclones has left meadows in poor condition, and recovery has been patchy and site-dependent.

This research shows that these ecosystems have pathways for recovery. Provided we take care with the environment, seagrasses may yet recover without direct human intervention.

This work emphasises how much we still have to learn about how the reef systems interconnect and work together – and how much we need to protect every part of our marvellous and amazing reef environment.

Disclosure statement
Samantha Tol receives funding from various research grants and income from coastal projects and consultancies.

Paul York receives funding from various research grants and income from coastal projects and consultancies.

Rob Coles receives funding from various research grants and income from coastal projects and consultancies.

Alana Grech does not work for, consult, own shares in or receive funding from any company or organisation that would benefit from this article, and has disclosed no relevant affiliations beyond their academic appointment.


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World's biggest fisheries supported by seagrass meadows

Seagrass meadows help to support world fisheries productivity
SWANSEA UNIVERSITY EurekAlert 21 May 18;

The study entitled 'Seagrass meadows support global fisheries production' published in Conservation Letters, provides evidence that a fifth of the world's biggest fisheries, such as Atlantic Cod and Walleye Pollock are reliant on healthy seagrass meadows. The study also demonstrates the prevalence of seagrass associated fishing globally.

The study, carried out in partnership with Dr Leanne Cullen-Unsworth at Cardiff University and Dr Lina Mtwana Nordlund at Stockholm University, demonstrates for the first time that seagrasses should be recognised and managed to maintain and maximise their role in global fisheries production.

Dr Cullen-Unsworth said: "The chasm that exists between coastal habitat conservation and fisheries management needs to be filled to maximise the chances of seagrass meadows supporting fisheries, so that they can continue to support human wellbeing".

Seagrasses are marine flowering plants that form extensive meadows in shallow seas on all continents except Antarctica. The distribution of seagrass, from the intertidal to about 60m depth in clear waters, makes seagrass meadows an easily exploitable fishing habitat.

Dr Unsworth said: "Seagrass meadows support global fisheries productivity by providing nursery habitat for commercial fish stocks such as tiger prawns, conch, Atlantic cod and white spotted spinefoot".

The authors also explain how seagrasses support fisheries in adjacent and deep water habitats, by creating expansive fishery habitat rich in fauna, and by providing trophic support to adjacent fisheries. Seagrasses are also described to support fisheries by promoting the health of connected habitats (e.g. Coral reefs).

The research article examined the links between seagrass and fisheries and the need for an integrated approach to their management governed at local, regional and international levels. The research presents a series of policy-relevant observations and recommendations that recognise the role of seagrass in global fisheries.

Seagrass nursery habitats for fish stocks. This research highlights the need to expand research into nursery habitat links to mature exploited fish stocks. Large-scale international strategies such as the European Union Fisheries Policy need to formally acknowledge the significance of seagrass meadows (and other habitats) as nursery grounds from which off-shore fisheries are stocked, says Dr Unsworth.

Seagrass as key fishing grounds. Seagrass meadows provide a fishery resource that is directly exploited by small scale subsistence and artisanal fisheries as well as large scale commercial enterprises but in many parts of the world, seagrass situated fisheries are often unreported and unregulated and more needs to be done to record this vital resource, says co-author Dr Nordlund.

Seagrass provides shallow water habitat for harvesting invertebrates. Gleaning, fishing in water shallow enough to walk in, occurs around the globe. Seagrass invertebrate fisheries provide a source of essential protein for some of the most vulnerable people in tropical coastal communities., says Dr Nordlund. Invertebrate gleaning activity is expanding globally and although it's a significant global activity, often conducted by women and children, it is not usually included in fishery statistics and rarely considered in resource management strategies are commonly unreported, unregulated or poorly enforced. This substantial and widespread fishery needs to be considered with regional and local management planning.

Seagrass trophic support for fisheries. Seagrass meadows export vast quantities of living material, organic matter and associated animal biomass. This can benefit a range of near and far shore fisheries. Seagrass can also subsidise whole food webs in the deep sea benefiting larger fisheries productivity.

The potential value of seagrass meadows for food security. The potential value of seagrass meadows in supporting food security remains largely underappreciated, says co-author Dr Cullen-Unsworth. In particular there is disparity between the significant economic benefits supplied by the seagrass nurseries and the poor levels of funding and management afforded to prevent seagrass degradation. Fisheries modelling and management approaches tend not to consider the functional role of shallow coastal seagrass in supporting fish stocks.

Dr Unsworth said: "The coastal distribution of seagrass means it is vulnerable to a multitude of both land and sea based threats, such as land runoff, coastal development, boat damage and trawling. There is a global rapid decline of seagrass and when seagrass is lost there is strong evidence globally that fisheries and their stocks often become compromised with profound negative economic consequences. To make a change, awareness of seagrasses role in global fisheries production must pervade the policy sphere. We urge that seagrass requires targeted management to maintain and maximise their role in global fisheries production."


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Indonesia: WWF Partners with Ministry of Marine Affairs and Fisheries to Protect Dugongs

Netral News 11 Apr 18;

PANGKALAN BUN, NNC – WWF Indonesia with the Ministry of Marine Affairs and Fisheries (KKP) involves the community to protect dugong (dugong dugon) and seagrasses in West Kotawaringin Barat, Central Kalimantan (Kalteng), through Dugong and Seagrass Conservation Program Projec/DSCP) Indonesia.

WWF Indonesia Marine Species Officer Cassandra Tania, said the effort to involve the community in the conservation of dugong and seagras is done by providing incentives for new livelihoods.

Together with two other implementing partners of DSCP Indonesia, namely LIPI and ITB, people in Bogam Bay village are invited to develop new economic resources and abandon the habits of dugong hunting.

Communities in coastal West Kotawaringin are invited to try to cultivate seaweed, crabs, shrimp ponds, make salted fish, develop tourism, develop spirulina to ecotourism.

"Of all these options, it will be selected which is the most potential to be developed there," said Tania, in a press release on Wednesday (4/11/2018).

Dugongs or sea cows are among the vulnerable species in the International Union for Conservation of Nature Red List (IUCN) in Indonesia which have been protected under Government Regulation No. 7/1999.

However, although sanctions from the exploitation of dugongs are clearly described in Law No. 5 of 1990 and Law No. 31 of 2014, there are still practices of hunting dugongs and the use of their body parts in this district.

Based on the results of the survey in 2018, the awareness of the community about dugongs in the area is still lacking. The majority (70 percent) of respondents do not know the appearance of the mamals, although some of them and many other residents (92 percent) already know the appearance of their food, the seagrass.


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Extensive seagrass meadows discovered in Indian Ocean through satellite tracking of green turtles

SWANSEA UNIVERSITY EurekAlert 11 Apr 18;

Research led by Swansea University's Bioscience department has discovered for the first time extensive deep-water seagrass meadows in the middle of the vast Indian Ocean through satellite tracking the movement of green sea turtles.

A new study by Swansea University and Deakin University academics, published in the recent Marine Pollution Bulletin, reported how the monitoring of the turtles -- which forage on seagrasses - tracked the species to the Great Chagos Bank, the world's largest contiguous atoll structure in the Western Indian Ocean.

This area lies in the heart of one of the world's largest Marine Protected Areas (MPAs) and the study involved the use of in-situ SCUBA and baited video surveys to investigate the day-time sites occupied by the turtles, resulting in the discovery of extensive monospecific seagrass meadows of Thalassondendron ciliatum.

These habitats are critically important for storing huge amounts of carbon in their sediments and for supporting fish populations.

At three sites that extended over 128?km of the Great Chagos Bank, there was a high seagrass cover (average of 74%) at depths to 29 metres.

The mean species richness of fish in the seagrass meadows was 11 species per site, with a mean average of 8-14 species across the aforementioned three sites.

Results showed a high fish abundance as well as a large predatory shark recorded at all sites and given that the Great Chagos Bank extends over approximately 12,500?km and many other large deep submerged banks exist across the world's oceans, the results suggest that deep-water seagrass may be far more abundant than previously suspected.

Reports of seagrass meadows at these depths with high fish diversity, dominated by large top predators, are relatively limited.

Dr Nicole Esteban, a Research Fellow at Swansea University's Biosciences department, said: "Our study demonstrates how tracking marine megafauna can play a useful role to help identify previously unknown seagrass habitat.

"We hope to identify further areas of critical seagrass habitat in the Indian Ocean with forthcoming turtle satellite tracking research."

Dr Richard Unsworth, from Swansea University's Biosciences department, said: "Seagrasses struggle to live in deep waters due to their need for high light, but in these crystal clear waters of Chagos these habitats are booming.

"Given how these habitats are threatened around the world it's great to come across a pristine example of what seagrass meadows should look like."

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This research was led by the Bioscience department at Swansea University, alongside the involvement of researchers at Deakin University.


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Indonesia: Center of world's marine biodiversity is in danger

Swansea University Science Daily 10 Apr 18;

Research led by Swansea University's Bioscience department have found that the world's centre of biodiversity is under widespread threat of losing a key marine resource.

Writing about the findings in the recent Science of the Total Environment journal, researchers examined the risks to seagrass meadows throughout the vast Indonesian archipelago that makes up a key part of the famed Coral Triangle -- a marine area located in the western Pacific Ocean.

This area is widely known as the centre of the world's biodiversity and the meadows are the 'Prairies of the Sea'.

They are highly productive shallow water marine and coastal habitats comprised of marine plants, and these threatened areas provide important food and shelter for animals in the sea.

The research led by Dr Richard Unsworth indicates that up to 90% of the seagrass meadows that they examined in Indonesia have been extensively damaged and degraded over the past five years.

In the findings, researchers also discuss solutions to the problems these productive ecosystems face, including the importance of community-led conservation action. In the study they also discuss examples where seagrass conservation has been.

For example, in a series of small islands in Eastern Indonesia, seagrasses were threatened by sediment and nutrient run-off from the land due to the degradation of riverbanks.

As a result, replanting of riparian vegetation along the rivers as an incentive scheme with local farmers has reduced the flow of these pollutants into the sea.

Dr Richard Unsworth, from Swansea University's Biosciences department, led the study and said: "Our research is for the first time recording how an area of the world so critically important for its biodiversity is rapidly losing a key marine resource.

"This loss of seagrass is a terrible problem as the habitats in Indonesia have a major significance for daily food supply and general livelihoods. Without seagrass as a fishery habitat many people in Indonesia would not be able to feed their families on a daily basis."

Dr Leanne Cullen-Unsworth from Cardiff University added: "The ecological value of seagrass meadows is irrefutable, yet the loss of these systems in Indonesia is accelerating. Seagrass meadows in Indonesia are mostly ignored in the conservation arena.

"As a result, they're often not monitored, poorly researched and largely and unmanaged, leading to a tragedy of the seagrass commons."

Professor Rohani Ambo-Rappe of Hasanuddin University, Indonesia, a collaborator on the research stated: "Declining seagrass health is the result of shifting environmental conditions due largely to coastal development, land reclamation, and deforestation, as well as seaweed farming, overfishing and garbage dumping.

"The poor state of Indonesia's seagrasses will compromise their resilience to climate change and result in a loss of their ability to lock away carbon dioxide and provide important fisheries habitats."

Journal Reference:

Richard K.F. Unsworth, Rohani Ambo-Rappe, Benjamin L. Jones, Yayu A. La Nafie, A. Irawan, Udhi E. Hernawan, Abigail M. Moore, Leanne C. Cullen-Unsworth. Indonesia's globally significant seagrass meadows are under widespread threat. Science of The Total Environment, 2018; 634: 279 DOI: 10.1016/j.scitotenv.2018.03.315


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Climate change threatens world's largest seagrass carbon stores

King Abdullah University of Science and Technology Phys.Org 19 Mar 18;

In the summer of 2010-2011, Western Australia experienced an unprecedented marine heat wave that elevated water temperatures two to four degrees Celsius above average for more than two months. Researchers from the Institute for Environmental Science and Technology at the Universitat Autònoma de Barcelona (ICTA-UAB) in collaboration with scientists from Australia, Spain, Malaysia, the United States and the Kingdom of Saudi Arabia became alert to major carbon dioxide (CO2) emissions resulting from the loss of seagrass meadows at Shark Bay—an internationally recognized World Heritage Area and one of the largest remaining seagrass ecosystems on Earth.

The loss of seagrass at Shark Bay after the 2010-2011 marine heatwave released up to 9 million metric tons of CO2 into the atmosphere over the three years following the event. This amount is roughly the equivalent to the annual CO2 output of 800,000 homes, two average coal-fired power plants or 1,600,000 cars driven for 12 months. It also potentially raised Australia's annual estimate of national land-use change for CO2 emissions by up to 21 percent.

ICTA-UAB and Edith Cowan University (ECU)-led international research has estimated that Shark Bay has the largest carbon stores reported for a seagrass ecosystem, containing up to 1.3 percent of the total carbon stored in seagrass soils worldwide.

Researchers initially mapped 70 percent of this UNESCO World Heritage Site in 2014 and found a 22 percent loss of seagrass habitat as compared with the 2002 baseline, equivalent to a 1,100 km2 loss of meadows. "The widespread losses in the summer of 2010-2011 were unprecedented. The net loss of seagrass extent was accompanied by a dramatic shift in seagrass cover. What remained was sparser with 'dense' seagrass areas that had declined from 72 percent in 2002 to 46 percent in 2014," explains Ariane Arias-Ortiz, Ph.D. candidate at ICTA-UAB and first author of the work.

"This decrease is significant because seagrass meadows rank among the most intense CO2 sinks in the biosphere, giving them the name 'blue carbon ecosystems.' They take up and store CO2 in their soils and biomass through biosequestration. The carbon that is locked in the soils may remain there for millennia if seagrass ecosystems, which offer physical protection to these stocks, remain intact," says Professor Carlos M. Duarte, professor at King Abdullah University of Science and Technology and co-advisor to the Ph.D. thesis of the lead author.

Dr. Oscar Serrano, ECU researcher and also a co-author adds "When you have an event such as the losses at Shark Bay, not only do you lose the benefits of CO2 uptake by seagrasses but also any carbon sequestered by the seagrasses is released back into the atmosphere as CO2 when the seagrasses decompose."

"Although seagrass meadows are amenable to restoration, more importantly, we should be looking at avoiding the loss of the seagrass carbon stores because CO2 emissions from degraded seagrass ecosystems greatly surpass the annual sequestration capacity of healthy meadows" concludes Arias-Ortiz.

"With climate change forecasted to increase the frequency of extreme weather events, the permanence of these carbon stores becomes compromised, further stressing the importance of reducing greenhouse gas emissions and implementing management actions to avoid adverse feedback on the climate system."

To conduct the study, researchers used satellite imagery processed by the Department of Biodiversity, Conservation and Attractions of Western Australia, in situ sampling from 50 sites and soil modelling to make their calculations of potential CO2 release.

While the Shark Bay Marine Reserves Management Plan 1996-2006 offers protections against local threats such as overfishing and nutrient inputs from industry, agriculture and tourism, there is currently nothing in place to deal with global threats, such as heat waves."We need to advance our understanding of how seagrass ecosystems, especially those living close to their thermal tolerance limit, will respond to threats from global change, both those from direct pressures and those from interactions with local pressures," said Prof. Paul Lavery ECU researcher and co-author.

"We have seen how quickly losses can occur, and once destroyed, the capacity of seagrass meadows to recover is limited and slow, and largely depends on the arrival of seeds or seedlings."

Plans for future catastrophes might include removing seagrass detritus to prevent phytoplancton blooms and growth of algae, which consume oxygen in the water column and attenuate light. If seagrasses are lost, impacted areas could be restored through reseeding and repopulation with genetically more resilient types of seagrass.

More information: A marine heatwave drives massive losses from the world's largest seagrass carbon stocks, Nature Climate Change, nature.com/articles/doi:10.1038/s41558-018-0096-y


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Thailand: Dugong population at 20-year high

APINYA WIPATAYOTIN Bangkok Post 17 Feb 18;

The dugong population in the South has risen at the highest rate in more than two decades, says Kongkiat Kittiwatthanawong, director of the Phuket Marine Biological Centre.

Citing preliminary results of data collected in an aerial survey conducted from Monday until yesterday, Mr Kongkiat said 210 dugongs were found and the largest herd of the mammals observed consisted of 30 members including 10 mothers and their offspring.

At least 42 couples of mother and offspring dugongs were found and counted in the survey, he said.

The survey was conducted in Trang province, the largest habitat for dugongs in the country, using a small plane flown by foreign pilots, he said, adding that the locations included in the survey were Hat Chao Mai National Park and Mu Ko Libong Non-Hunting Area.

The number of dugongs found in the Trang survey will later be analysed and used to calculate the average population of the mammals, he said.

Also found in the survey were 19 dolphins and 57 sea turtles, he said.

In last year's survey, only 169 dugongs were found, he said, adding that the latest survey reflected a rise in density of the dugong population.

A key factor contributing to the population growth in the South is believed to be successful attempts to initiate cooperation in the fishery communities in avoiding using fishing equipment that may hurt dugongs and other rare marine species.

The number of dugongs found dead on beaches last year was six, he said.

Based on this year's figures, he said the number of dugongs found next year should probably rise to between 240 and 250.

Sitakan Thawisuwan, who specialises in rare marine species, said final figures from this year's survey will be released soon.

Dugongs, commonly known as sea cows, are often found in shallow coastal waters in the Indian and western Pacific Oceans.


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