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Targeted immune intervention and stopping ART in model of SIV infection leads to control of viral replication and reservoirs
Emory researchers are the first to show unprecedented control of SIV replication and decay of viral reservoirs by combining a stringent model of infection with the interruption of antiretroviral therapy (ART). The success of this immune-based approach follows the research team’s identification of the mechanisms of action for PD1 and IL-10, molecules known to regulate HIV persistence and immune dysfunction.
“This is a major advancement in the fight to reach an HIV cure, which will improve life for the 39 million people who live with the disease,” says Rafick Sekaly, PhD, lead investigator of the R37 grant that funded this study and co-director of a Martin Delaney Collaboratory for HIV Cure Research, “Reversing Immune Dysfunction for HIV-1 Eradication” (the RID HIV Collaboratory). “Our work on PD1 and IL-10 that started more than 15 years ago led us to develop this in vivo intervention in nonhuman primates (NHPs). Having this increased understanding of PD1 and IL-10 will facilitate our team developing improved approaches to restore a deficient immune system, bolster immune interventions to improve control of chronic infections and even offer hope to better treat certain cancers,” he continues. Sekaly is also professor and vice-chair of translational medicine in the Department of Pathology at the Emory School of Medicine, a Georgia Research Alliance eminent scholar and a member of the Cancer Immunology Research Program at Winship Cancer Institute.
Critical to better understanding PD1 and IL-10 was the NHP component of this study, which included 28 ART-treated, SIV-infected rhesus macaques, an animal model highly characterized for SIV infection. Mirko Paiardini, PhD, and Zachary Strongin led the research to develop the stringent model of HIV/SIV infection, ART-treatment and immune-based intervention of anti-IL-10, a combination of anti-IL-10 plus anti-PD-1 or a placebo. After 14 months of ART, the researchers started the animals on immunotherapy treatment. Twelve weeks later, the researchers continued the immunotherapy, but stopped ART. Nine of the ten monkeys that received the combination treatment showed durable control of viral rebound that lasted for six months.
Paiardini also co-leads and serves as contact principal investigator for a Martin Delaney Collaboratory, the “Enterprise for Research & Advocacy to Stop & Eradicate HIV” (the ERASE HIV Collaboratory), which is the only one researchers at a National Primate Research Center (NPRC) are leading. In addition, Paiardini is Microbiology and Immunology division chief at the Emory NPRC, a professor of Pathology and Laboratory Medicine at the Emory School of Medicine and co-director of the Next Generation Therapeutics Scientific Working Group at the Emory Center for AIDS Research.
Strongin is senior scientist, Discovery Immunology at Merck and a former graduate student in the Paiardini lab. Merck, the industry partner for both the RID HIV and the ERASE HIV Collaboratories, developed reagents specifically designed to target PD1 and IL10 molecules in nonhuman primate models.
Bonnie Howell, PhD, vice president and global head of quantitative biosciences & nonclinical pharmacology at Merck & Co., Inc. says, “Merck remains committed to supporting HIV research and translating concepts into lifesaving products, including those with the potential to prevent, treat and cure HIV.”
Sekaly credits the research collaboration between academia and industry, and the expertise of each team member, as the cornerstones of this study: “The scientific collaboration among RID HIV, ERASE HIV and Merck colleagues that led to the unmatched results of this study exemplifies the goal of the Martin Delaney Collaboratories — to expedite HIV cure research by bringing together researchers to share resources, data and methodologies.”
First author Susan Ribeiro, PhD, and her bioinformatics team, including Khader Ghneim, MS, and Felipe ten Caten, PhD, used their methodology expertise to develop a unique systems biology platform that enabled the research team to mine all facets and cells of the immune response. That comprehensive approach facilitated the team’s identification of novel immune based mechanisms that underlie the unprecedented level of viral control the researchers discovered. Ribeiro is assistant professor in the Pathology Advanced Translational Research Unit (PATRU) in the Emory School of Medicine Department of Pathology & Laboratory Medicine, Ghneim is director of projects for PATRU, and ten Caten is a bioinformatician at PATRU.
According to Sekaly and Paiardini, most studies that have tested immune-based approaches toward an HIV cure have been descriptive without providing mechanisms that can explain the success or failure of interventions. With the depth of expertise on the team, the researchers were able to approach this study differently, taking time to identify molecular mechanisms of action, which will be foundational information the team can apply toward more cure studies and immune interventions.
The research team is already making plans for future studies, including further understanding several pathways the researchers identified in this study. These include innate immune, metabolic and epigenetic pathways and combinations thereof that are associated with controlling the virus after ending treatment. The team intends to develop and test interventions to induce an immune response capable of intercepting rebounding virus and providing long-term control of HIV and SIV when ART is discontinued.
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Early dark energy could resolve cosmology’s two biggest puzzles
A new study by MIT physicists proposes that a mysterious force known as early dark energy could solve two of the biggest puzzles in cosmology and fill in some major gaps in our understanding of how the early universe evolved.
Now, the MIT team has found that both puzzles could be resolved if the early universe had one extra, fleeting ingredient: early dark energy. Dark energy is an unknown form of energy that physicists suspect is driving the expansion of the universe today. Early dark energy is a similar, hypothetical phenomenon that may have made only a brief appearance, influencing the expansion of the universe in its first moments before disappearing entirely.
Some physicists have suspected that early dark energy could be the key to solving the Hubble tension, as the mysterious force could accelerate the early expansion of the universe by an amount that would resolve the measurement mismatch.
The MIT researchers have now found that early dark energy could also explain the baffling number of bright galaxies that astronomers have observed in the early universe. In their new study, reported in the Monthly Notices of the Royal Astronomical Society, the team modeled the formation of galaxies in the universe’s first few hundred million years. When they incorporated a dark energy component only in that earliest sliver of time, they found the number of galaxies that arose from the primordial environment bloomed to fit astronomers’ observations.
“You have these two looming open-ended puzzles,” says study co-author Rohan Naidu, a postdoc in MIT’s Kavli Institute for Astrophysics and Space Research. “We find that in fact, early dark energy is a very elegant and sparse solution to two of the most pressing problems in cosmology.”
The study’s co-authors include lead author and Kavli postdoc Xuejian (Jacob) Shen, and MIT professor of physics Mark Vogelsberger, along with Michael Boylan-Kolchin at the University of Texas at Austin, and Sandro Tacchella at the University of Cambridge.
Big city lights
Based on standard cosmological and galaxy formation models, the universe should have taken its time spinning up the first galaxies. It would have taken billions of years for primordial gas to coalesce into galaxies as large and bright as the Milky Way.
But in 2023, NASA’s James Webb Space Telescope (JWST) made a startling observation. With an ability to peer farther back in time than any observatory to date, the telescope uncovered a surprising number of bright galaxies as large as the modern Milky Way within the first 500 million years, when the universe was just 3 percent of its current age.
“The bright galaxies that JWST saw would be like seeing a clustering of lights around big cities, whereas theory predicts something like the light around more rural settings like Yellowstone National Park,” Shen says. “And we don’t expect that clustering of light so early on.”
For physicists, the observations imply that there is either something fundamentally wrong with the physics underlying the models or a missing ingredient in the early universe that scientists have not accounted for. The MIT team explored the possibility of the latter, and whether the missing ingredient might be early dark energy.
Physicists have proposed that early dark energy is a sort of antigravitational force that is turned on only at very early times. This force would counteract gravity’s inward pull and accelerate the early expansion of the universe, in a way that would resolve the mismatch in measurements. Early dark energy, therefore, is considered the most likely solution to the Hubble tension.
Galaxy skeleton
The MIT team explored whether early dark energy could also be the key to explaining the unexpected population of large, bright galaxies detected by JWST. In their new study, the physicists considered how early dark energy might affect the early structure of the universe that gave rise to the first galaxies. They focused on the formation of dark matter halos — regions of space where gravity happens to be stronger, and where matter begins to accumulate.
“We believe that dark matter halos are the invisible skeleton of the universe,” Shen explains. “Dark matter structures form first, and then galaxies form within these structures. So, we expect the number of bright galaxies should be proportional to the number of big dark matter halos.”
The team developed an empirical framework for early galaxy formation, which predicts the number, luminosity, and size of galaxies that should form in the early universe, given some measures of “cosmological parameters.” Cosmological parameters are the basic ingredients, or mathematical terms, that describe the evolution of the universe.
Physicists have determined that there are at least six main cosmological parameters, one of which is the Hubble constant — a term that describes the universe’s rate of expansion. Other parameters describe density fluctuations in the primordial soup, immediately after the Big Bang, from which dark matter halos eventually form.
The MIT team reasoned that if early dark energy affects the universe’s early expansion rate, in a way that resolves the Hubble tension, then it could affect the balance of the other cosmological parameters, in a way that might increase the number of bright galaxies that appear at early times. To test their theory, they incorporated a model of early dark energy (the same one that happens to resolve the Hubble tension) into an empirical galaxy formation framework to see how the earliest dark matter structures evolve and give rise to the first galaxies.
“What we show is, the skeletal structure of the early universe is altered in a subtle way where the amplitude of fluctuations goes up, and you get bigger halos, and brighter galaxies that are in place at earlier times, more so than in our more vanilla models,” Naidu says. “It means things were more abundant, and more clustered in the early universe.”
“A priori, I would not have expected the abundance of JWST’s early bright galaxies to have anything to do with early dark energy, but their observation that EDE pushes cosmological parameters in a direction that boosts the early-galaxy abundance is interesting,” says Marc Kamionkowski, professor of theoretical physics at Johns Hopkins University, who was not involved with the study. “I think more work will need to be done to establish a link between early galaxies and EDE, but regardless of how things turn out, it’s a clever — and hopefully ultimately fruitful — thing to try.”
“We demonstrated the potential of early dark energy as a unified solution to the two major issues faced by cosmology. This might be an evidence for its existence if the observational findings of JWST get further consolidated,” Vogelsberger concludes. “In the future, we can incorporate this into large cosmological simulations to see what detailed predictions we get.”
This research was supported, in part, by NASA and the National Science Foundation.
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Plant-derived secondary organic aerosols can act as mediators of plant-plant interactions
A new study published in Science reveals that plant-derived secondary organic aerosols (SOAs) can act as mediators of plant-plant interactions. This research was conducted through the cooperation of chemical ecologists, plant ecophysiologists and atmospheric physicists at the University of Eastern Finland.
The study showed that Scots pine seedlings, when damaged by large pine weevils, release VOCs that activate defences in nearby plants of the same species. Interestingly, the biological activity persisted after VOCs were oxidized to form SOAs. The results indicated that the elemental composition and quantity of SOAs likely determines their biological functions.
“A key novelty of the study is the finding that plants adopt subtly different defence strategies when receiving signals as VOCs or as SOAs, yet they exhibit similar degrees of resistance to herbivore feeding,” said Professor James Blande, head of the Environmental Ecology Research Group. This observation opens up the possibility that plants have sophisticated sensing systems that enable them to tailor their defences to information derived from different types of chemical cue.
“Considering the formation rate of SOAs from their precursor VOCs, their longer lifetime compared to VOCs, and the atmospheric air mass transport, we expect that the ecologically effective distance for interactions mediated by SOAs is longer than that for plant interactions mediated by VOCs,” said Professor Annele Virtanen, head of the Aerosol Physics Research Group. This could be interpreted as plants being able to detect cues representing close versus distant threats from herbivores.
The study is expected to open up a whole new complex research area to environmental ecologists and their collaborators, which could lead to new insights on the chemical cues structuring interactions between plants.
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Folded or cut, this lithium-sulfur battery keeps going
Most rechargeable batteries that power portable devices, such as toys, handheld vacuums and e-bikes, use lithium-ion technology. But these batteries can have short lifetimes and may catch fire when damaged. To address stability and safety issues, researchers reporting in ACS Energy Letters have designed a lithium-sulfur (Li-S) battery that features an improved iron sulfide cathode. One prototype remains highly stable over 300 charge-discharge cycles, and another provides power even after being folded or cut.
The team coated iron sulfide cathodes in different polymers and found in initial electrochemical performance tests that polyacrylic acid (PAA) performed best, retaining the electrode’s discharge capacity after 300 charge-discharge cycles. Next, the researchers incorporated a PAA-coated iron sulfide cathode into a prototype battery design, which also included a carbonate-based electrolyte, a lithium metal foil as an ion source, and a graphite-based anode. They produced and then tested both pouch cell and coin cell battery prototypes.
After more than 100 charge-discharge cycles, Wang and colleagues observed no substantial capacity decay in the pouch cell. Additional experiments showed that the pouch cell still worked after being folded and cut in half. The coin cell retained 72% of its capacity after 300 charge-discharge cycles. They next applied the polymer coating to cathodes made from other metals, creating lithium-molybdenum and lithium-vanadium batteries. These cells also had stable capacity over 300 charge-discharge cycles. Overall, the results indicate that coated cathodes could produce not only safer Li-S batteries with long lifespans, but also efficient batteries with other metal sulfides, according to Wang’s team.
The authors acknowledge funding from the National Natural Science Foundation of China; the Natural Science Foundation of Sichuan, China; and the Beijing National Laboratory for Condensed Matter Physics.
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