The Australian Institute of Marine Science reports a slight increase in coral cover across all three regions of the Great Barrier Reef, indicating limited impacts from recent climate-induced disturbances. However, the reef still faces threats from flooding and crown-of-thorns starfish outbreaks, limiting its capacity to recover.
A comprehensive survey of the Great Barrier Reef's microbiome reveals over 800,000 microbial genomes, identifying 500 new bacterial species and 300,000 distinct viruses. The study provides insights into the impact of human activities on the reef's health.
By 2100, coral reefs will be slow to recover, less complex, and dominated by fleshy algae as a result of high carbon dioxide changes in ocean chemistry. The study uses unique coral reefs in Papua New Guinea to determine the impact of ocean acidification on coral reefs.
The Great Barrier Reef has experienced a significant decline in coral cover, with hard coral cover sitting near the long-term average in each region. Climate change-induced heat stress and cyclones have been major contributors to this decline, particularly among corals dominated by the Acropora species.
New research reveals that adult coral can handle more heat and keep growing thanks to heat-evolved symbionts. The study found that these symbionts enhanced coral recovery from bleaching and improved heat tolerance without compromising growth.
Researchers discovered that whale sharks eat a significant amount of plant material, including Sargassum seaweed. This challenges previous assumptions about their diet, revealing they are not just filter feeders on krill.
A new study from Australian Institute of Marine Science reveals that reef fish such as emperors, tropical snappers, and rockcods play a crucial role in controlling crown-of-thorns starfish numbers on the Great Barrier Reef. By removing these fish species, the abundance of coral-eating starfish increases.
New research has found that seismic surveys used in oil and gas exploration do not impact the abundance or behavior of commercially valuable fish species in north-western Australia. The eight-month experiment measured the effects of seismic airguns on the community of commercially important species, such as red emperor fish.
Researchers found that table corals can recover habitats on the Great Barrier Reef at a rate 14 times higher when abundant, compared to reefs without them. The study highlights the importance of protecting table corals to promote reef recovery and biodiversity.
Marine scientists have mapped previously unknown foraging grounds and migratory routes of Western Australia's green turtles to support conservation. The study tracked 20 female turtles with satellites, combining their data with previous studies to identify key areas.
An 81-year-old midnight snapper caught off the coast of Western Australia has become the oldest recorded tropical reef fish, surpassing the previous record by two decades. The study found that long-lived fish are generally considered vulnerable to fishing pressure, highlighting the need for sustainable management of commercial fisheries.
A recent study using CRISPR-Cas technology identified a key gene responsible for heat tolerance in corals, providing insights into their response to climate change. The research found that modifying this gene made coral larvae more susceptible to heat stress.
A new study reveals ocean acidification is a present-day reality on the Great Barrier Reef, with CO2 levels rising 6% over 10 years. This accelerated trend confirms atmospheric CO2's influence on seawater CO2 levels, posing significant threats to coral growth and health.
Researchers developed a dipstick test that detects crown-of-thorns starfish by measuring specific DNA in seawater, allowing for early detection of coral-eating pests. The test can detect very low numbers of the pest, supporting an early warning and intervention system.
Effective solutions to climate change threaten coral reefs require prioritization challenges, weighing quality versus quantity, and species selection. Coordinated interventions combined with best-practice management are necessary to sustain the reef's resilience.
Research reveals that cyclones can cause significant damage to coral reefs as far as 1000 kilometres away from their paths. The study found that Scott Reef lost 50% of its Porites corals and virtually all its Acropora coral species due to Cyclone Lua's high seas.
A study using fish poo and gut contents found that 18 coral reef fish species consume young or adult crown-of-thorns starfish on the reef. This discovery could help control destructive pest populations and shed light on why some reef areas have fewer starfish than others.
Researchers from Australian Institute of Marine Science suggest adding cameras, audio recorders, and sample collectors to remotely operated vehicles to increase scientific data gathering. This could lead to better understanding of marine infrastructure impact on ecosystems and improve ecological management and regulatory compliance.
Scientists have correctly determined the age of whale sharks using radioactive legacy of Cold War nuclear bomb tests. The discovery will help ensure the survival of the endangered species by accurately estimating its growth rate.
Researchers at the Australian Institute of Marine Science found that nearly one-fifth of Ningaloo whale sharks show major scarring or fin amputations. The number of injured animals has increased in recent years, with distinct scar patterns suggesting boat collisions as a primary cause.
Researchers found parrotfish populations surge in damaged reefs, consuming microalgae and cyanobacteria that provide food for the fish. This 'feedback loop' helps coral recover as reef health improves, with parrotfish numbers declining once ecosystems stabilize.
A long-term study found that green zones have more than doubled coral trout biomass since the 1980s, while fished reefs experienced stable numbers and increases in large, reproductively-mature fish. Effective protection networks help reef fishes cope with stresses and maintain populations.
Scientists have discovered that coral offspring can break up into smaller, genetically identical individuals, called 'clones', which then settle and develop into adult corals. This unique reproductive strategy allows corals to maximize their chances of finding suitable habitats.