Nearly Everyone in the World Breathes Bad Air. This Is What You Can Do to Lower Your Risk 

A view shows the city amid air pollution in Hanoi, Vietnam, February 12, 2025. (Reuters)
A view shows the city amid air pollution in Hanoi, Vietnam, February 12, 2025. (Reuters)
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Nearly Everyone in the World Breathes Bad Air. This Is What You Can Do to Lower Your Risk 

A view shows the city amid air pollution in Hanoi, Vietnam, February 12, 2025. (Reuters)
A view shows the city amid air pollution in Hanoi, Vietnam, February 12, 2025. (Reuters)

Everyone loves a breath of fresh air. Unfortunately, too often our air is anything but fresh.

While air quality varies dramatically from place to place and day to day, nearly the entire world — about 99% of the global population — is exposed to air at some point that doesn't meet the strict standards set by the World Health Organization, the agency has reported. Polluted air, laden noxious gasses or tiny, invisible particles that burrow into human bodies, kills 7 million people prematurely every year, the UN health agency estimates.

And for the millions living in some of the world’s smoggiest cities — many of them in Asia like New Delhi; Dhaka, Bangladesh; Bangkok and Jakarta, Indonesia — bad air might seem inescapable.

But there are things that people can do, starting with understanding that the air isn’t only polluted when it looks smoggy, said Tanushree Ganguly of the Energy Policy Institute of Chicago in India.

"Blue skies can’t guarantee you clean air," she said.

What are the most dangerous kinds of air pollutants and their sources?

Air pollutants often come from people burning things: Fuels such as coal, natural gas, diesel and gasoline for electricity and transportation; crops or trees for agricultural purposes or as a result of wildfires.

Fine, inhalable particles, known as particulate matter, are among the most dangerous. The tiniest of these — known as PM 2.5 because they are less than 2.5 microns in diameter — can get deep into human lungs and are mostly created by burning fuels. Coarser particles, known as PM 10, are linked to agriculture, roadways, mining or the wind blowing eroded dust, according to the WHO.

Other dangerous pollutants include gases like nitrogen dioxide or sulfur dioxide, which are also produced from burning fuels, said Anumita Roychowdhury, an air pollution expert at the Center for Science and Environment in New Delhi.

The sources and intensity of air pollution varies in different cities and seasons. For instance, old motorbikes and industrial boilers are major contributors to bad air in Indonesian capital Jakarta while burning of agricultural waste is a major reason for air pollution spikes in cities in Thailand and India. Brick kilns that burn coal adds to pollution in Dhaka, Bangladesh's capital. And seasonal forest fires cause problems in Brazil and North America.

What health problems can air pollution cause?

Air pollution is the second-largest risk factor for early death globally, behind high blood pressure, according to a recent report by the Health Effects Institute.

Short-term exposure can trigger asthma attacks and increase the risk of heart attacks and stroke, especially in the elderly or people with medical problems. Long-term exposure can cause serious heart and lung problems that can lead to death, including heart disease, chronic obstructive pulmonary disease and lung infections.

A recent analysis by the UN children’s agency found that more than 500 million children in East Asia and Pacific countries breathe unhealthy air and the pollution is linked to the deaths of 100 children under 5 every day. June Kunugi, UNICEF Regional Director for East Asia, said the polluted air compromises growth, harms lungs and impacts their cognitive abilities.

"Every breath matters, but for too many children every breath can bring harm," she said.

What’s the best way to tell if air is safe?

Over 6,000 cities in 117 countries now monitor air quality, and many weather mobile apps include air quality information. But trying to gauge how bad the air is by looking at these numbers can be confusing.

To help people understand air quality levels more easily, many countries have adopted an air quality index or AQI — a numerical scale where larger numbers mean worse air. They are also often assigned different colors to show whether the air is clean or not.

But different countries have different air quality standards. For instance, India’s daily PM 2.5 limit is more than 1.5-times higher than Thailand’s limit and 4-times higher than WHO standards.

This means that countries calculate AQIs differently and the numbers aren’t comparable with each other. This is also why sometimes AQI scores by private companies using stricter standards may be different from those calculated by national regulators.

What are the best ways to protect yourself from air pollution?

The goal, of course, is to limit exposure when air quality is bad, by staying inside or wearing a mask.

Staying inside however, isn't always possible, especially for people who must live or work outside, noted Danny Djarum, an air quality researcher at World Resources Institute, an environmental advocacy group. "They can’t really afford not going out," he said.

Pakaphol Asavakomolnant, an office worker in Bangkok, said that he wears a mask every day and avoids riding to work on a motorbike. "I get a sore throat when I come to work in the morning and I forget to wear a mask," he said.

People also need to be aware of indoor air pollution which can often be caused by common household activities like cooking or even burning an incense stick.

What are the benefits — and limitations — of air purifiers?

Air purifiers can help reduce indoor air pollution, but they have their limitations. They work by pulling air from a room, pushing it through a filter that traps pollutants before circulating it back.

But they’re most effective when used in small spaces and when people are nearby. Air purifiers can only clean a certain amount of air, said Rajasekhar Balasubramanian, who studies urban air quality at the National University of Singapore. "If we have a tiny air purifier in a large room it won’t be effective," he said.

Air purifiers are also too expensive for people in many developing countries.

"The majority of people who are affected by air pollution can’t really afford air purifiers," said WRI's Djarum.



Rocket Re-entry Pollution Measured in Atmosphere for 1st Time

A SpaceX Falcon 9 rocket with the company's Dragon spacecraft on top launches from Space Launch Complex 40 for the Crew-12 mission at Cape Canaveral Space Force Station in Florida on February 13, 2026. (Photo by Jim WATSON / AFP)
A SpaceX Falcon 9 rocket with the company's Dragon spacecraft on top launches from Space Launch Complex 40 for the Crew-12 mission at Cape Canaveral Space Force Station in Florida on February 13, 2026. (Photo by Jim WATSON / AFP)
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Rocket Re-entry Pollution Measured in Atmosphere for 1st Time

A SpaceX Falcon 9 rocket with the company's Dragon spacecraft on top launches from Space Launch Complex 40 for the Crew-12 mission at Cape Canaveral Space Force Station in Florida on February 13, 2026. (Photo by Jim WATSON / AFP)
A SpaceX Falcon 9 rocket with the company's Dragon spacecraft on top launches from Space Launch Complex 40 for the Crew-12 mission at Cape Canaveral Space Force Station in Florida on February 13, 2026. (Photo by Jim WATSON / AFP)

When part of a SpaceX rocket re-entered Earth's atmosphere exactly a year ago, it created a spectacular fireball that streaked across Europe's skies, delighting stargazers and sending a team of scientists rushing towards their instruments.

The German team managed to measure the pollution the rocket's upper stage emitted in our planet's difficult-to-study upper atmosphere -- the first time this has been achieved, according to a study published on Thursday.

It is vital to learn more about this little-understood form of pollution because of the huge number of satellites that are planned to be launched in the coming years, the scientists emphasized.

In the early hours of February 19, 2025, the upper stage of a Falcon 9 rocket was tumbling back to Earth when it exploded into a fireball that made headlines from the UK to Poland.

"We were excited to try and test our equipment and hopefully measure the debris trail," the team led by Robin Wing and Gerd Baumgarten of the Leibniz Institute of Atmospheric Physics in Germany told AFP via email.

In particular, the scientists wanted to measure how the rocket polluted what they call the "ignorosphere" -- because it is so difficult to study.

This region between 50 to 100 kilometers (31 to 62 miles) above Earth includes the mesosphere and part of the lower thermosphere.

- 'Harbinger' -

The team used technology called LIDAR, which measures pollution in the atmosphere by shooting out lots of laser pulses and seeing which bounce back off something.

They detected a sudden spike in the metal lithium in an area nearly 100 kilometers above Earth. This plume had 10 times more lithium than is normal in this part of the atmosphere.

The team then traced the plume back to where the rocket re-entered the atmosphere, west of Ireland.

For the first time, this proves it is possible to study pollution from re-entering rockets at such heights before it disperses, the scientists said.

But the impact from this rocket pollution remains unknown.

"What we do know is that one ton of emissions at 75 kilometers (altitude) is equivalent to 100,000 tons at the surface," they said.

The study warned the case was a "harbinger" of the pollution to come, given how many rockets will be needed to launch all the satellites that Earth is planning to blast into space.

Currently, there are around 14,000 active satellites orbiting our planet.
In the middle of last month, China applied for permission to launch around 200,000 satellites into orbit.

Then at the end of January, billionaire Elon Musk's SpaceX applied for permission to launch one million more.

Eloise Marais, a professor of atmospheric chemistry at University College London not involved in the new study, told AFP the research was "really important".

"There is currently no suitable regulation targeting pollution input into the upper layers of the atmosphere," she explained.

"Even though these portions of the atmosphere are far from us, they have potentially consequential impacts to life on Earth if the pollutants produced are able to affect Earth's climate and deplete ozone in the layer protecting us from harmful UV radiation."

The study was published in the journal Communications Earth & Environment.


Deep-sea Fish Break the Mold with Novel Visual System

A close-up showing the shiny silver-green photophores (light organs) on the lower head of the deep-sea fish Maurolicus muelleri from the Red Sea, seen in this photograph released on February 11, 2026. Dr. Wen-Sung Chung/Handout via REUTERS
A close-up showing the shiny silver-green photophores (light organs) on the lower head of the deep-sea fish Maurolicus muelleri from the Red Sea, seen in this photograph released on February 11, 2026. Dr. Wen-Sung Chung/Handout via REUTERS
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Deep-sea Fish Break the Mold with Novel Visual System

A close-up showing the shiny silver-green photophores (light organs) on the lower head of the deep-sea fish Maurolicus muelleri from the Red Sea, seen in this photograph released on February 11, 2026. Dr. Wen-Sung Chung/Handout via REUTERS
A close-up showing the shiny silver-green photophores (light organs) on the lower head of the deep-sea fish Maurolicus muelleri from the Red Sea, seen in this photograph released on February 11, 2026. Dr. Wen-Sung Chung/Handout via REUTERS

For more than a century, biology textbooks have stated that vision among vertebrates - people included - is built from two clearly defined cell types: rods for processing dim light and cones for bright light and color. New research involving deep-sea fish shows this tidy division is, in reality, not so tidy.

Scientists have identified a new type of visual cell in deep-sea fish that blends the shape and form of rods with the molecular machinery and genes of cones. This hybrid type of cell, adapted for sight in gloomy light conditions, was found in larvae of three deep-sea fish species in the Red Sea, Reuters reported.

The species studied were: a hatchetfish, with the scientific name Maurolicus mucronatus; a lightfish, named Vinciguerria mabahiss; and a lanternfish, named Benthosema pterotum. The hatchetfish retained the hybrid cells throughout its life. The other two shifted to the usual rod-cone dichotomy in adulthood.

All three are small, with adults measuring roughly 1-3 inches (3-7 cm) long and the larvae much littler. They inhabit a marine realm of twilight conditions, with sunlight struggling to penetrate into the watery depths.

The vertebrate retina, a sensory membrane at the back of the eye that detects light and converts it into signals to the brain, possesses two main types of light-sensitive visual cells, called photoreceptors. They are named for their shape: rods and cones.

"The rods and cones slowly change position inside the retina when moving between dim and bright conditions, which is why our eyes take time to adjust when we flick on the light switch on our way to the restroom at night," said Lily Fogg, a postdoctoral researcher in marine biology at the University of Helsinki in Finland and lead author of the research published in the journal Science Advances.

"We found that, as larvae, these deep-sea fish mostly use a mix-and-match type of hybrid photoreceptor. These cells look like rods - long, cylindrical and optimized to catch as many light particles - photons - as possible. But they use the molecular machinery of cones, switching on genes usually found only in cones," Fogg said.

The researchers examined the retinas of fish larvae caught at depths from 65 to 650 feet (20 to 200 meters). In the type of dim environment they inhabit, rod and cone cells both are usually engaged in the vertebrate retina, but neither works very well. These fish display an evolutionary remedy.

"Our results challenge the longstanding idea that rods and cones are two fixed, clearly separated cell types. Instead, we show that photoreceptors can blend structural and molecular features in unexpected ways. This suggests that vertebrate visual systems are more flexible and evolutionarily adaptable than previously thought," Fogg said.

"It is a very cool finding that shows that biology does not fit neatly into boxes," said study senior author Fabio Cortesi, a marine biologist and neuroscientist at the University of Queensland in Australia. "I wouldn't be surprised if we find these cells are much more common across all vertebrates, including terrestrial species."

All three species emit bioluminescence using small light-emitting organs on their bodies, mostly located on the belly. They produce blue-green light that blends with the faint background light from the sun above. This strategy, called counterillumination, is a common form of camouflage in the deep sea to avoid predators.

"Small fish like these fuel the open ocean. They are plentiful and serve as food for many larger predatory fishes, including tuna and marlin, marine mammals such as dolphins and whales, and marine birds," Cortesi said.

These kinds of fish also engage in one of the biggest daily migrations in the animal kingdom. They swim near the surface at night to feed in plankton-rich waters, then return to the depths - 650 to 3,280 feet (200 to 1,000 meters) - during daytime to avoid predation.

"The deep sea remains a frontier for human exploration, a mystery box with the potential for significant discoveries," Cortesi said. "We should look after this habitat with the utmost care to make sure future generations can continue to marvel at its wonders."


Japan City Gets $3.6 Mn Donation in Gold to Fix Water System

FILE PHOTO: Factories line the port of Osaka, western Japan October 23, 2017. REUTERS/Thomas White/File Photo
FILE PHOTO: Factories line the port of Osaka, western Japan October 23, 2017. REUTERS/Thomas White/File Photo
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Japan City Gets $3.6 Mn Donation in Gold to Fix Water System

FILE PHOTO: Factories line the port of Osaka, western Japan October 23, 2017. REUTERS/Thomas White/File Photo
FILE PHOTO: Factories line the port of Osaka, western Japan October 23, 2017. REUTERS/Thomas White/File Photo

Osaka has received an unusual donation -- 21 kilograms of gold -- to pay for the maintenance of its ageing water system, the Japanese commercial hub announced Thursday.

The donation worth $3.6 million was made in November by a person who a month earlier had already given $3,300 in cash for the municipal waterworks, Osaka Mayor Hideyuki Yokoyama told a press conference.

"It's an absolutely staggering amount," said Yokoyama, adding that he was lost for words to express his gratitude.

"I was shocked."

The donor wished to remain anonymous, AFP quoted the mayor as saying.

Work to replace water pipes in Osaka, a city of 2.8 million residents, has hit a snag as the actual cost exceeded the planned budget, according to local media.