Saturday, September 05, 2026

 

Bacteria can make testosterone. What could that mean for prostate cancer?


Auburn physicists help reveal how a urinary microbe carries out hormone chemistry, one atom at a time.



Auburn University Department of Physics

From the urinary microbiome to the molecular machine 

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A bacterium isolated from the human urinary tract can convert DHEA into testosterone. Molecular simulations helped researchers explain how differences in the shape and motion of two bacterial enzymes determine which steroid reactions they can perform.

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Credit: Auburn University Physics.




AUBURN, AL. Many prostate cancers depend on androgen hormones, including testosterone, to grow. That is why treatments for advanced disease often try to reduce testosterone production or block its effects. Now, scientists have identified an unexpected participant in androgen chemistry: a bacterium from the human urinary tract that can convert the steroid precursor DHEA into testosterone under laboratory conditions.

The finding does not mean that the bacterium causes prostate cancer, nor does it show that testosterone produced by bacteria reaches tumors or changes the course of disease. It does, however, reveal a previously unknown microbial route to a hormone that is central to prostate biology, raising new questions about whether the microorganisms living near the prostate could help shape its chemical environment.

Published in Nature Communications, the study brought together experts in microbiology, cancer biology, chemistry, genomics and computational physics. Researchers in Auburn University’s Department of Physics contributed computational structural biology that helped explain, at the atomic level, how the newly discovered bacterial machinery works.

“We are not saying that these bacteria cause cancer,” said Rafael Bernardi, associate professor in Auburn University’s Department of Physics and a co-author of the study. “What we now know is that they possess the molecular machinery to produce testosterone. Because prostate cancer is so closely connected to androgen signaling, that is something worth understanding.”

An unexpected ability in the urinary microbiome

For decades, urine was commonly assumed to be sterile, and the urinary tract was not included in the original Human Microbiome Project. Scientists now know that it contains its own community of microorganisms, often called the urinary microbiome or urobiome. Much of the research in this young field has focused on determining which microbes are present and whether those communities differ between healthy people and people with disease. The new study asked a more difficult question: What are those microbes actually doing?

The research team examined bacteria isolated from urine samples collected from men before prostate biopsy. To find organisms capable of transforming steroids, the researchers developed a rapid screening method called the Human Sterolbiome Discovery High-throughput assay, or HSDH assay. Among the organisms they identified was Actinobaculum massiliense. When supplied with DHEA, the bacterium produced intermediate steroid molecules and ultimately testosterone.

DHEA, or dehydroepiandrosterone, is a steroid naturally produced by the human body. Human tissues can use it as a starting material to make more potent hormones, including testosterone. The new work shows that a bacterium living in the urinary tract can carry out similar chemistry using its own enzymes.

“The urinary microbiome has often been studied by asking which organisms are there,” said Jason M. Ridlon, who conceptualized and supervised the study. “We wanted to understand what those organisms are capable of doing. The discovery of this androgen-producing pathway gives us specific genes and enzymes that can now be investigated in the context of urinary health and disease.”

After confirming the bacterium’s testosterone-producing ability, the researchers searched its genome for the genes responsible. They identified two candidates, which they named dirA and dirB, for DHEA isomerase reductase. Laboratory experiments showed that DirA was unusually versatile, performing several different steroid transformations and allowing the bacterium to reach testosterone through more than one route. DirB could perform only part of that chemistry.

That difference presented a puzzle. The two enzymes appeared broadly similar and contained many of the same chemical components, yet one behaved like a multipurpose steroid-processing machine while the other had much narrower abilities. Solving that puzzle required looking beyond the genes and watching the molecules move.

Watching the chemistry in motion

At Auburn, Bernardi’s group generated three-dimensional models of DirA and DirB and used molecular simulations to follow what happened when steroid molecules entered each enzyme. Rather than treating the proteins as frozen structures, the researchers created atom-by-atom movies showing the enzymes flexing, the steroids rotating and the surrounding molecules shifting over time.

That motion is essential to understanding how enzymes work. A molecule does not react simply because it fits inside a protein. The correct part of the molecule must also face the correct part of the enzyme at the right distance and angle. A steroid can remain tightly bound inside an enzyme and still be chemically useless if it is pointing the wrong way.

The Auburn simulations revealed that DirA has a broad, open pocket that gives the steroid room to move and reposition itself. This flexibility allows different parts of the steroid to approach the enzyme’s catalytic machinery during different stages of the pathway from DHEA to testosterone. DirB, by contrast, has a much narrower internal tunnel. The steroid can enter and remain inside, but the restricted space frequently leaves it flipped or misaligned, with the portion that needs to react facing away from the catalytic machinery.

“At this scale, chemistry depends on choreography,” Bernardi said. “The steroid has to be in the right place, facing the right way, at the right moment. One enzyme gives it room to do that. The other does not.”

That relatively simple difference in molecular architecture explained the experimental results. DirA could support a broad range of reactions because the steroid had enough room to turn and present different parts of itself to the enzyme. DirB could perform only those reactions compatible with its more confined pocket.

Raissa Rosa, a doctoral candidate in Bernardi’s group, performed the computational studies and developed the catalytic models in collaboration with Bernardi. The Auburn researchers combined AI-based protein modeling with atom-by-atom simulations, using software that Bernardi’s group has helped develop.

“A static structure can show us that a molecule fits inside a protein,” Rosa said. “The simulations tell us whether it can reach the precise orientation needed for the reaction and whether that arrangement remains stable. In this case, those movements helped explain why the two enzymes behave so differently.”

A new question for prostate cancer research

Testosterone and other androgens are essential for normal prostate development and function, but they can also promote the growth of many prostate cancers by activating the androgen receptor. For that reason, therapies for advanced prostate cancer frequently aim to suppress androgen production or block androgen signaling.

The discovery that a urinary bacterium can generate testosterone introduces a new question: Could microbial metabolism contribute to the androgen environment near the prostate? The present study does not answer that question. It demonstrates that the bacterium has the biochemical ability to produce testosterone under laboratory conditions. Researchers still need to determine whether the pathway is active inside the human body, how much androgen the bacteria could produce there, whether those molecules reach nearby tissue and whether they have any measurable effect on prostate biology.

Still, the discovery provides scientists with specific genes and enzymes to investigate. Researchers can now search urinary microbiome datasets for dirA and dirB, determine how common they are and examine whether their presence is associated with differences in urinary hormones, prostate conditions or responses to treatment.

“The next step is to move from molecular capability to physiological relevance,” Bernardi said. “We now understand how the bacterial enzymes can perform the chemistry. The larger question is whether that chemistry has a meaningful effect in the complex environment of the human body.”

The work may also have implications beyond prostate research. Steroids found in urine are measured in medical research and diagnostics, as well as in testing for performance-enhancing drugs. If microorganisms can transform those compounds within the urinary tract, microbial metabolism may eventually become another factor scientists need to consider when interpreting urinary steroid profiles.

The study brought together patient-derived samples, bacterial culturing, genomic sequencing, analytical chemistry, protein biochemistry and computational biophysics. The experimental work established that the bacterium could produce testosterone and identified the genes involved. The computational work then revealed why the enzymes encoded by those genes had different capabilities.

“No single technique could have provided the complete story,” Bernardi said. “The experiments established the biological pathway, while the simulations revealed the physical basis for the enzyme activities. Together, they allowed us to move from observing testosterone production to understanding how it happens.”

The study brought together researchers from the University of Illinois Urbana-Champaign, Auburn University, Virginia Commonwealth University and Carle Foundation Hospital. Bernardi led Auburn’s computational structural biology contribution, while Rosa carried out the computational studies and developed the catalytic models. Bernardi leads Auburn’s Computational Biophysics Group, and both researchers are affiliated with the university’s Department of Physics and Department of Chemistry and Biochemistry.

 

Slow pyrolysis could turn heavy metal contaminated crops into useful carbon materials


Review highlights how controlled heating can reduce environmental risks while recovering materials, metals and energy from contaminated agricultural biomass



Shenyang Agricultural University Collaborative Journals

Slow pyrolysis and product utilization of heavy metal-contaminated biomass from agricultural systems 

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Slow pyrolysis and product utilization of heavy metal-contaminated biomass from agricultural systems

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Credit: Zhengjun Wang, Qifeng Min, Kailin He, Ruigang Wang, Gaoyuan Shang, Dasong Lin & Yajun Wang




Heavy metal pollution in farmland creates a problem that does not end when contaminated plants are harvested. Crop residues and plants used to remove metals from polluted soils can themselves contain substantial amounts of mercury, cadmium, lead, nickel and other potentially hazardous elements. If these materials are burned, landfilled or returned directly to farmland, the metals may be released again into the environment.

A new review published in Sustainable Carbon Materials suggests that slow pyrolysis could provide a more sustainable way to manage this contaminated biomass while also turning it into useful carbon materials, energy products and even recoverable metals.

Heavy metal contaminated biomass should not simply be viewed as waste that needs to be disposed of. With appropriate thermal treatment and careful control of metal behavior, it may become a resource for producing functional carbon materials, recovering metals and generating energy,” said corresponding author Yajun Wang.

Slow pyrolysis heats biomass in an oxygen limited environment, producing biochar, bio-oil and gases. The review emphasizes that different metals behave very differently as temperatures rise. Mercury begins to volatilize at relatively low temperatures, followed by cadmium, arsenic, lead and zinc, while metals such as nickel and copper tend to remain more strongly associated with the solid residue.

For example, experiments reviewed by the authors showed that at 550 °C, mercury removal from wheat straw and corn stalk biochar reached 94.0% and 93.2%, respectively. However, much of the released mercury entered the gas phase, highlighting the need for effective gas capture systems rather than assuming that thermal treatment alone eliminates the environmental risk.

The review also examines hydrothermal, or wet pyrolysis, which processes biomass in a heated water based environment. In these systems, metals can be redistributed between hydrochar and the liquid phase rather than simply volatilized. In one reported example, more than 96% of arsenic moved into the aqueous phase, demonstrating the potential for controlled metal separation and recovery.

Importantly, the products left after treatment may have applications far beyond waste disposal. The authors identify potential uses for pyrolysis derived carbon materials in soil amendment, water treatment adsorbents, catalysts, supercapacitor electrodes, metal recovery and energy production. Under controlled conditions, metals already present in contaminated plants may even serve as useful catalytic or electrochemical components rather than unwanted impurities.

The team also analyzed research published from 2001 to 2025 and found rapid growth in the field since 2017. Emerging themes include circular economy strategies, life cycle assessment, carbon capture, multifunctional materials and machine learning, suggesting that research is shifting from basic waste treatment toward integrated resource recovery and sustainable process design.

Despite its promise, the authors caution that pyrolysis is not automatically risk free. Future studies must better determine metal speciation, leaching behavior and long term stability, particularly for less studied contaminants such as arsenic and chromium. Large scale deployment will also require techno-economic analysis, lifecycle assessment, reliable control of metal emissions and clear safety standards for the resulting products.

The review ultimately presents slow pyrolysis as more than a disposal technology. It could become part of a circular strategy that connects contaminated land remediation with carbon material production, metal recovery and renewable energy generation.

 

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Journal reference: Wang Z, Min Q, He K, Wang R, Shang G, et al. 2026. Slow pyrolysis and product utilization of heavy metal-contaminated biomass from agricultural systems. Sustainable Carbon Materials 2: e028 doi: 10.48130/scm-0026-0024  

https://www.maxapress.com/article/doi/10.48130/scm-0026-0024  

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About Sustainable Carbon Materials:

Sustainable Carbon Materials (e-ISSN 3070-3557) is a multidisciplinary platform for communicating advances in fundamental and applied research on carbon-based materials. It is dedicated to serving as an innovative, efficient and professional platform for researchers in the field of carbon materials around the world to deliver findings from this rapidly expanding field of science. It is a peer-reviewed, open-access journal that publishes review, original research, invited review, rapid report, perspective, commentary and correspondence papers.

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New method predicts where massive earthquakes will strike


Scientists pinpoint locations, not timing



University of California - Riverside





UC Riverside scientists have developed a way to identify where Earth’s biggest earthquakes are most likely to occur, offering a powerful new tool for improving disaster preparations in some of the most dangerous seismic regions.

Rather than predicting the timing of an earthquake, the method identifies where stress has been building along major faults, so scientists can determine where a rupture will take place.

In a recent test detailed in a Geophysical Research Letters paper, the researchers found that their model highlighted the exact section of the Kamchatka subduction zone in eastern Russia where a massive earthquake later occurred.

The study was led by UCR geophysicists Gareth Funning and Axel Periollat, who study how Earth’s surface slowly deforms as tectonic plates lock together before rupturing.

“Earthquakes capture headlines when they happen, but for years beforehand the fault is quietly accumulating strain,” Funning said. “This strain can be measured.”

The team’s approach focuses on subduction zones, where one tectonic plate slides beneath another. These regions generate Earth’s largest earthquakes, including those exceeding magnitude 8.5, and often produce devastating tsunamis.

Using GPS measurements of subtle ground movement, the researchers developed a new algorithm that identifies portions of faults that are locked and storing energy. These locked regions, known as asperities, act like patches of friction that resist motion until enough stress builds to trigger a major earthquake.

The researchers had identified one such locked region beneath Russia’s Kamchatka Peninsula before a large earthquake struck there. While the timing of the event was beyond the scope of their method, the rupture occurred exactly where their model indicated strain had accumulated.

“We had an idea where the strain was accumulating based on a relatively limited data set,” Periollat said. “Seeing it work so well confirmed that this approach has real potential.”

The findings also revealed that earthquakes occurring in the same region can behave differently. Although Kamchatka experienced giant earthquakes in both 1952 and 2025, the more recent event generated a much smaller tsunami, suggesting the shallowest portion of the fault slipped less than during the earlier rupture.

The researchers emphasize that their method cannot predict tsunami size or earthquake timing. However, narrowing down where the greatest hazards exist could improve long-term planning and preparedness.

The team is now applying their approach to other major subduction zones in Japan, Mexico, New Zealand, and the Pacific Northwest. Each presents additional complexities, such as events that release energy gradually rather than in sudden earthquakes.

They are also exploring whether similar techniques can improve understanding of California faults.

“In the Bay Area, the Hayward Fault has both creeping and locked sections, much like subduction zones,” Funning said. “We’re investigating whether we can identify the parts most likely to generate future earthquakes.”

Applying the method more broadly will require better observations. While GPS stations on land provide valuable information, scientists have far fewer measurements offshore, where many of the world’s most dangerous faults lie beneath the ocean.

Researchers in Japan have begun using acoustic instruments placed on the seafloor to measure slow deformation over many years, and similar efforts are being proposed elsewhere, including Chile and the Pacific Northwest. A recently launched satellite could eventually provide additional measurements in regions that currently lack GPS coverage.

The work also highlights major gaps in global earthquake monitoring, particularly in parts of the Pacific where limited data make it difficult to assess tsunami hazards.

The researchers stress that improved forecasting of earthquake locations should complement, not replace, public preparedness.

“Your peace of mind shouldn’t come from believing we can forecast the exact earthquake,” Funning said. “Especially where we live in Southern California, it’s not a matter of if, but when. There is no substitute for preparation.”

The team believes their algorithm could eventually help scientists evaluate seismic hazards in many of the world’s most active plate boundaries, provided sufficient data become available.

“We can identify where large earthquakes are likely to occur, even if we can’t predict exactly when,” Periollat said. “With better observations and continued monitoring, we can learn much more about Earth’s most dangerous faults.”

 

Boosting the power of plasma for industry


Moderate pressure helps plasma stick around longer



Tokyo Metropolitan University

Boosting the availability of atomic oxygen for plasma treatments. 

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Boosting the availability of atomic oxygen for plasma treatments. The team discovered that reduced pressure plasma generation led to an extension of lifetime without sacrificing the amount of radical production, giving more available radicals when treating a target.

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Credit: Tokyo Metropolitan University





Tokyo, Japan – Scientists from Tokyo Metropolitan University have found a way to make plasma more effective for its wide-ranging uses, from anti-microbial applications to surface conditioning in the semiconductor industry. They mapped the production of atomic oxygen, a key ingredient of oxygen plasma, while a high voltage was put across oxygen gas. They discovered that the amount of atomic oxygen available for reactions was boosted at pressures moderately lower than atmospheric conditions. Their findings promise more energy-efficient, higher performance plasma technologies.

 

Plasma is often called the fourth state of matter alongside the gas, liquid, and solid states. Made of charged atoms and electrons, some estimates say that plasma makes up 99.9% of all matter in the universe. While rarely encountered on Earth except during lightning storms, artificial plasmas can be generated by applying high electrical voltages across gases, making so-called nonthermal plasmas. This is where only the electrons in a material are driven to a high temperature, leaving the atoms in a highly reactive “radical” state.

Nonthermal plasmas are widely used to kill microorganisms, chemically modify materials, and break down contaminants; ways to make them more effective would have a major impact on industry and society. Oxygen plasma is particularly popular for the powerful oxidizing ability of atomic oxygen, the key radical species generated when oxygen gas is broken down. While widely used, a key challenge has been the short lifetime of the plasma at atmospheric pressure; frequent collisions with gas molecules mean that less oxygen radicals react with the intended target.

A team led by Associate Professor Yusuke Nakagawa from Tokyo Metropolitan University has shown how reducing pressure helps make oxygen plasma treatments more effective. They studied pulsed electrical discharges across oxygen gas at slightly lower pressures than atmospheric conditions. Using lasers to make atomic oxygen fluoresce at a specific wavelength of light, they could map how much atomic oxygen is made at different locations around the positive and negative electrodes either side of the gap. While the radical lifetime was extended by the reduced pressure, the team discovered that the amount of radicals remained at a level comparable to that at atmospheric pressure, contrary to expectations. Further analysis showed that this led to several times more radicals available for reactions with a target. Their observations also showed that atomic oxygen was not produced exclusively in parts of the plasma that exhibited a visible glow, but in dark regions close to the electrodes. This means that electrons with moderate energy are also involved in radical production, helping to explain why more radicals are available at moderately lower pressure as well as illuminating a new way by which radicals are made.

The team’s findings highlight a practical way to make oxygen plasma treatments more effective, a core innovation for industries ranging from biomedical sectors and agriculture to semiconductor manufacture.

This work was supported by JSPS KAKENHI Grant Numbers JP23K22746, JP24H02248, and JP25K01220.

Some hair loss in men is linked to use of weight loss drugs

NEW WARNING LABEL FOR SIDE EFFECTS NEEDED


NYU Langone Health / NYU Grossman School of Medicine






Men already at risk genetically for the most common form of hair loss have a 7 percent added risk of losing their hair if they use drugs like Ozempic, Wegovy, and Zepbound for type 2 diabetes and obesity, a new study shows.

Led by researchers at NYU Langone Health, the study focused on the GLP1R gene, which naturally increases the body’s levels of glucagon-like peptide-1 (GLP-1) receptor proteins, and used it as an indicator of GLP-1 agonist activity. More GLP1R activity means there are more GLP-1 receptor proteins. The researchers compared the presence of GLP1R genes with the presence of genes found in men with androgenetic alopecia, an inherited form of hair loss that follows a pattern along the top and front of the scalp. Male hair loss conditions are well studied, unlike hair loss in women, which is why the researchers could only analyze any causal link to hair loss in men.

Many GLP-1 users, both men and women, have reported thinning hair as a side effect, with researchers so far attributing the shedding to the rapid weight loss driven by the medications, which work to regulate blood sugar and suppress appetite. Often, GLP-1 users have found that hair growth resumes several months after their weight stabilizes. Until now, researchers have only suspected a genetic connection between GLP-1 use and hair loss.

Publishing in the Journal of Investigative Dermatology online Sept. 3, the study showed that the GLP1R genes that naturally cause higher levels of GLP-1 receptor proteins are more likely to be present in men who have androgenetic alopecia. The researchers then adjusted their analysis to discount for known risks of hair loss from hypertension, which is thought to reduce blood flow to the scalp, harming hair follicle growth. The 7 percent added risk remained the same.

Researchers also checked their risk analysis against other potential drivers of hair loss, including insulin resistance (a cause of type 2 diabetes) and lowered testosterone levels. Still, the increased risk of hair loss from GLP-1 use remained at 7 percent.

Because the study involved genes active in both GLP-1 users and men with hair loss, any overlapping risk, the researchers noted, suggests that the two are biologically linked.

“Our study provides the first genetic link between GLP-1 use and an increased risk of male- pattern hair loss from androgenetic alopecia, an association long suspected but until now not shown scientifically,” said study senior investigator Lynn Petukhova, PhD, an assistant professor in the Ronald O. Perelman Department of Dermatology and the Department of Population Health at NYU Grossman School of Medicine.

“Our findings suggest that, if future experiments prove successful, some men, and possibly women too, could be screened and benchmarked for their risk of hair loss before being prescribed GLP-1 medications,” said Dr. Petukhova. “We could also envision these findings leading to some GLP-1 users being prescribed combination treatments to prevent hair loss, such as minoxidil or some other drug.”

Dr. Petukhova said further research is needed to understand the biological mechanisms that cause GLP-1 use to weaken hair follicle growth. She also has plans to investigate whether the links seen in men apply to women.

For the study, researchers accessed large, publicly available genetic databases, including the eQTLGen database of 31,684 mostly White men and women, and the Complex Traits Genetics group database of 205,327 mostly White men.

Androgenetic alopecia is estimated to affect half of White American males over age 50, and almost the same number of White American females over age 50, predominantly those who are postmenopause.

An estimated 12 percent of Americans have used GLP-1 drugs for no other reason than weight loss, including one-fifth of women ages 50 to 64, according to surveys. Since the first GLP-1 drug (Ozempic) was approved by the Food and Drug Administration in 2020, prescriptions for the medication have more than tripled.

Funding support for this study was provided by National Institutes of Health grants R01AR080796 and K01AR075111.

Besides Dr. Petukhova, NYU Langone researchers involved in the study were co-investigators Jerry Shapiro, MD, and Kristen Lo Sicco, MD. Other study co-investigators were Derek Mass, MBA; Mary Casagrande, MPH; and Poppy Gould, PhD; and co-lead investigator Archie Spindler.

Drs. Shapiro and Lo Sicco have in the past served as study investigators for hair loss drugs and devices manufactured by Pfizer and Regen Labs. Dr. Lo Sicco is a paid consultant for Pfizer, Lilly, Ro, Priovant, Veradermics, and Aquis. The terms and conditions of all these relationships are being managed in accordance with the policies of NYU Langone.

Additional study authors are co-lead investigator Ravi Ramesur, MD, PhD, at the University of Pennsylvania and King’s College London, and co-investigator Atlas Khan, PhD, at Columbia University.

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About NYU Langone Health

NYU Langone Health is a fully integrated health system that consistently achieves the best patient outcomes through a rigorous focus on quality that has resulted in some of the lowest mortality rates in the nation. Vizient Inc. has ranked NYU Langone No. 1 out of 118 comprehensive academic medical centers across the nation four years in a row, and it continues to have the most No. 1– and top 10–ranked specialties among medical centers in the United States, according to U.S. News & World Report. NYU Langone offers a comprehensive range of medical services with one high standard of care across seven inpatient locations, its Perlmutter Cancer Center, and more than 330 outpatient locations in the New York City area and Florida. The system also includes two tuition-free medical schools, in Manhattan and on Long Island, and a vast research enterprise.

Media Contact:

David March

212-404-3528

David.March@NYULangone.org

STUDY DOI

10.1016/j.jid.2026.07.024