Tuesday, August 25, 2026

NASA Data Feeds River Forecasts as Snow Drought Effects Linger - EARTH

This map, derived from NASA’s GEOS (Goddard Earth Observing System), shows an atmospheric river reaching Washington state in December 2025, during a winter marked by extreme rainfall and too little mountain snow.

NASA's Scientific Visualization Studio

As the effects of the 2026 snow drought in the western United States carry into summer, NASA Earth data is feeding machine-learning forecasts that inform decisions about water, power, and public safety in Washington state.  

Tacoma Power, a Washington public utility, is using a U.S. technology company’s river-flow forecasts during a year of water extremes on the Cowlitz River. The utility’s largest hydroelectric project uses water stored behind Mayfield and Mossyrock dams to generate enough electricity to serve more than 151,000 homes each year.

Upstream Tech’s HydroForecast combines weather forecasts and river measurements with NASA-produced satellite data on snow cover and vegetation conditions to predict river flow from hours to days ahead. Updated every two hours, the forecasts are used by reservoir managers, hydropower producers, water utilities, and government agencies to prepare for storms, plan reservoir water releases, and navigate dry periods.

“Part of NASA’s mission is to make the view from space useful on the ground,” said Erin Urquhart, manager for NASA’s Water Resources program at the agency’s headquarters in Washington, D.C. “When an American company incorporates NASA’s freely available data into forecasts that help water managers prepare for floods, generate power, and steward water supplies, that’s NASA delivering practical value to the nation.”

Year of water extremes

During the winter of 2025-26, unusual warmth meant a larger share of precipitation fell as rain instead of snow across much of the West, while below-normal precipitation deepened deficits in some areas. January, February, and March each had the lowest Western snow cover for that month in the NASA MODIS (Moderate Resolution Imaging Spectroradiometer) satellite record since 2001.

On the Cowlitz, those conditions produced a season of extremes. In December 2025, a powerful atmospheric river brought a long, narrow band of Pacific moisture into the region, causing one of the largest one-day inflow surges ever recorded at Tacoma Power’s hydroelectric project. Across the season, that rain-heavy pattern sent water downstream quickly instead of building mountain snowpack that would melt and release water steadily into summer. Snowpack remained at just 20% to 50% of normal levels.

As winter became spring, the rain tapered off, and on April 8, Washington state placed every watershed, including the Cowlitz, under a drought emergency. From April through June, peak daily inflow into the project was among the lowest on record, leaving Tacoma Power with less incoming water to replenish its reservoirs ahead of summer demand, said Saul Villarreal, Tacoma Power’s senior hydro operations manager. 

Tacoma Power’s Mayfield Dam and powerhouse sit on the Cowlitz River in southwest Washington, where forecasts using NASA data support reservoir operations and hydropower generation.

Tacoma Power, used with permission

Turning satellite data into river forecasts

NASA turns observations collected by the VIIRS (Visible Infrared Imaging Radiometer Suite) instrument on the Suomi-NPP (Suomi National Polar-orbiting Partnership) satellite into data products that provide information about snow cover and vegetation greenness across entire watersheds, including where ground monitors are sparse.

To train HydroForecast, Upstream Tech collects and archives years of those NASA products alongside weather forecast data and actual river-flow measurements. Using records from hundreds of watersheds, the models learn common patterns in how water moves through the landscape and apply them in new locations.

Tests across multiple basins found that including snow and vegetation observations increased forecast skill, said Dr. Laura Read, director of technical and federal partnerships for HydroForecast at Upstream Tech. “NASA’s data gives us the reliability, global coverage, and consistency we need,” said Read. “Our short-term models run every two hours, so those inputs have to show up when we need them. Though we have stopgaps in place, any interruption to our operational pipeline is a huge deal.”

Tacoma Power uses HydroForecast alongside stream gauges, snow stations, and operator judgment. During the December storm, the NASA-informed, short-term forecast helped the utility anticipate how much water would reach the project and prepare for dynamic river conditions, while meeting operating requirements and keeping public safety at the forefront, Villarreal said.

NASA’s GEOS (Goddard Earth Observing System) maps an atmospheric river, a ribbon of water vapor, before Washington’s January-April 2026 snow cover is compared with a historical median.

NASA's Scientific Visualization Studio

As spring approached, the operational challenge reversed. Tacoma Power used HydroForecast’s seasonal model to track the growing risk of weak runoff and began keeping its reservoirs higher than usual to preserve water for summer. That left less space to contain another large storm, so operators continued checking the short-term forecast “to play defense,” and remained ready to adjust operations if another atmospheric river developed.

“The earlier we understand how conditions might change, the more effective planning we can do to manage our reservoir and balance the many demands of our system throughout the season,” said Villarreal.

Tacoma Power entered summer 2026 with reservoir levels near average despite the dry spring. The stored water supports reliable hydropower, required river flows to support fish and aquatic habitat, and public recreation. It also gives the utility more flexibility to meet electricity demand during heat waves or unexpected outages and, when possible, support the wider regional power system.

From forecasts to drought assessments

Tacoma Public Utilities’ Cowlitz Hydro Project is just one example of NASA science supporting water decisions across the West.

NASA also has partnered with the U.S. Department of Agriculture’s Natural Resources Conservation Service to bring satellite-based snow and groundwater information into machine-learning water-supply forecasts.

The National Oceanic and Atmospheric Administration’s Colorado Basin River Forecast Center uses MODIS and VIIRS data to adjust snowmelt rates in its model. The Bureau of Reclamation uses NASA and NASA-derived snow data, alongside other sources, for reservoir operations in California’s San Joaquin Basin.

NASA data and research have long informed the U.S. Drought Monitor, the weekly assessment used by farmers, water managers, and public agencies. NASA became a formal partner in 2026, expanding its role from providing information to helping produce the assessment. The agency took its first turn authoring the Drought Monitor during the week of Aug. 17. 

Emily DeMarco

Writer/Editor (IV), Earth Science Division

Source: NASA Data Feeds River Forecasts as Snow Drought Effects Linger - NASA Science

The Secret Life of Cheese: What British Artisan Varieties Reveal About Gut Health

Cheese has always felt like a bit of alchemy: milk, a handful of cultures, patience, and suddenly you have something with texture, aroma, and a personality of its own. A new study from the University of Reading, published in ACS Food Science & Technology, pulls back the curtain on that transformation, tracking exactly which microbes are doing the work inside three artisan British cheeses, and what they leave behind that might matter for our gut.

Three Cheeses, One Question

Researchers Sabrina Longley, Glenn Gibson, and Anisha Wijeyesekera studied cheeses made by Nettlebed Creamery in Oxfordshire: a soft, bloomy-rind cheese matured for just over a week, a semisoft washed-rind cheese aged over several weeks, and a semihard cheese matured in hay for around nine months. At several points during ripening, they sampled each cheese and ran two parallel analyses: 16S amplicon sequencing to map which bacteria were present, and 1H NMR spectroscopy to track the chemical changes happening alongside them.

The goal wasn’t just cataloguing microbes for the sake of it. Cheese has long been associated with potential gut health benefits, and the team wanted a mechanistic look at why: which bacteria survive the maturation process, what byproducts they generate, and whether any of that could plausibly carry through to the digestive tract.

An Army of Helpful Bacteria

Each cheese turned out to host bacteria with recognized probiotic potential. Streptococcus thermophilus, the same organism used to start yogurt fermentation, stayed dominant in the semisoft and hard cheeses right through to maturity. Lactococcus lactis showed up in all three cheeses throughout the entire process.

The washed-rind and hay-aged cheeses also carried Propionibacterium freudenreichii, an organism known for producing propionic acid, a short-chain fatty acid linked to anti-inflammatory effects, lower cholesterol synthesis, and appetite regulation. And the white mould responsible for the soft cheese’s bloomy rind, Penicillium candidum, produces chitin, a dietary fibre that may act as a prebiotic, feeding the beneficial bacteria already living in the gut.

As lead author Sabrina Longley, who is also a cheesemaker at Nettlebed Creamery, put it: the fat and protein matrix in cheese may help shield these bacteria as they travel through the digestive tract, making cheese a genuinely useful vehicle for delivering live cultures to the gut.

Hay Aging and a Lactose Disappearing Act

One of the more striking findings involved the hay-aged, semihard cheese. As it matured, its microbial diversity climbed sharply, ending up with nearly four times as many bacterial species as it had earlier in the process, suggesting the hay environment itself seeds and supports a richer community over the long aging window.

The NMR data told its own story: lactose, the sugar in cow’s milk that many adults struggle to digest, was almost completely gone from all three cheeses by the time they reached maturity. Lactic acid bacteria had broken it down over the course of fermentation, which helps explain why well-aged cheeses are often easier on lactose-sensitive stomachs than fresh milk or young cheese.

What This Doesn’t Prove Yet

It’s worth being precise about what this study shows and what it doesn’t. It maps, in detail, which microbes and metabolites are present in the cheese itself at the point of consumption. It does not test what happens once that cheese is actually eaten. The authors are upfront that dietary intervention trials are still needed to see how these bacteria behave once they reach the gut, whether they survive digestion in meaningful numbers, and what measurable effect they have on the wider gut microbiota. So this is a solid piece of mechanistic groundwork, not a green light to treat cheese as a supplement.

Still, it’s a nice reminder that fermentation is a genuinely active, living process, and that the rind you might be tempted to trim off could be pulling its own nutritional weight.

Original paper: Longley, S., Gibson, G., & Wijeyesekera, A. (2026). Microbial and Biochemical Characterization of Three Artisan British Cheeses throughout the Maturation Process. ACS Food Science & Technology, 6(5), 1314–1324. 

Source: The Secret Life of Cheese: What British Artisan Varieties Reveal About Gut Health