<![CDATA[Clinicians outline ways to boost schizophrenia outcomes: team-and-family collaboration, early detection, medication access, measurement-based care.]]>

Comprehensive Human Vagus Nerve Map Unveiled

Scientists at Northwell Health’s Feinstein Institutes for Medical Research said they have released the world’s first comprehensive human vagus nerve anatomical map. The achievement could change our understanding of the autonomic nervous system and accelerate the development of bioelectronic medicine and neuromodulation therapies, according to the researchers.

The first dataset release, collected over three years from 30 human donors encompassing 60 vagus nerves, is now available to the global scientific community via SPARC Science.

The vagus nerve is the longest cranial nerve and a critical “information superhighway,” consisting of two main bundles (one on the left side of the neck and the other on the right side of the neck) containing more than 200,000 individual nerve fibers stretching from the brainstem to all major organs.

Stavros Zanos, MD, PhD [Feinstein Institutes]
Stavros Zanos, MD, PhD [Feinstein Institutes]

The nerve manages automatic functions such as heart rate, breathing and digestion, and serves as the body’s “on/off switch” for immune response and inflammation. To better understand the function of each vagal fiber, this new dataset resource offers a 3D view into the intricate anatomy of the human vagus nerve, utilizing techniques such as microCT imaging, immunohistochemistry, and ultrasound.

By mapping the organization of fascicles and fibers, investigators expect to gain critical insights into how the vagus nerve communicates with various organs and influences human health and disease.

“This dataset represents a major step forward in bioelectronic medicine, offering the most detailed anatomical reconstruction of the human vagus nerve to date,” said Stavros Zanos, MD, PhD, associate professor in the Institute of Bioelectronic Medicine at the Feinstein Institutes and co-leader of the project. “For the first time, we can visualize the vagus nerve’s complex architecture that will allow us to design more precise, effective and safe neuromodulation therapies and devices.”

The accomplishment marks a milestone that began with a $6.7 million National Institutes of Health (NIH) grant awarded to the Feinstein Institutes in October 2022 for its Reconstructing Vagal Anatomy (REVA) project, part of the NIH Common Fund’s SPARC program. The successful delivery of the map was supported by Peter J. Pappas, Jr., whose donation provided philanthropic support towards the goals of this project.

Kevin J. Tracey, MD [[Feinstein Institutes]
Kevin J. Tracey, MD [Feinstein Institutes]

“Decoding the vagus nerve’s intricate language is an important advance for science and medicine,” said Kevin J. Tracey, MD, president and CEO of the Feinstein Institutes, Karches Family Distinguished Chair in Medical Research and author of the book The Great Nerve: The New Science of the Vagus Nerve and How to Harness Its Healing Reflexes“This knowledge will further empower researchers to re-engineer human biology and unlock novel therapies for future patients.”

The Feinstein Institutes for Medical Research is a global scientific leader in bioelectronic medicine and vagus nerve stimulation, where medical researchers use modern technology to develop new device-based therapies to treat disease and injury, according to a Feinstein spokesperson, who points out that the field of bioelectronic medicine integrates insights from neuroscience, molecular medicine and biomedical engineering, and researchers at the Feinstein Institutes leverage the connection between the brain and the immune system to develop bioelectronic medicine interventions.

The vagus nerve helps regulate blood pressure, heart rate, sleep, mood, breathing, bladder function, digestion, and the immune system. [Feinstein Institutes]
The vagus nerve helps regulate blood pressure, heart rate, sleep, mood, breathing, bladder function, digestion, and the immune system. [Feinstein Institutes]

The discovery that initiated the field of bioelectronic medicine—called the “inflammatory reflex”—was made more than 30 years ago by Tracey, continues the Feinstein official. This discovery emerged from studies on vagus nerve signaling and showed that the brain and body communicate to regulate inflammation and, if uncontrolled, inflammation could lead to disease, said Tracey.

It was the first FDA-approved vagus nerve stimulation device in July 2025 to treat rheumatoid arthritis. Northwell Health was the first in the nation to implant the newly approved treatment in patients in August 2025.

Today, engineers, computer scientists, immunologists, neuroscientists and clinicians develop cutting-edge medicine, including neuroimmune modulation, miniature implants for stimulating and recording the vagus nerve, noninvasive ultrasound neuromodulation to suppress inflammation, and novel brain-computer interfaces to overcome injuries of the nervous system, according to a Feinstein Institutes statement. These collaborative efforts are focused on converging to create personalized, precise treatments that hold promise in treating acute and chronic diseases, often with fewer side effects compared to current therapies.

Scientists believe these treatments have the potential to enhance or replace existing treatments across a range of conditions such as arthritis, heart disease, inflammatory bowel diseases, diabetes, cancer, and autoimmune disorders. By producing bioelectronic medicine knowledge, disease and injury could one day be treated by our own nerves without costly and potentially harmful pharmaceuticals, predict a number of researchers.

 

 

 

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Parkinson’s Disease Medication Monitored with Fingertip Sweat Patch

Engineers and neuroscientists at the University of California (UC) San Diego have developed a soft, wearable fingertip patch that continuously tracks a Parkinson’s disease (PD) patient’s levodopa medication levels by measuring chemicals in their sweat, with no batteries required. Tests in healthy volunteers and in Parkinson’s disease patients showed that measurements generated using the device were comparable to those obtained by standard laboratory blood tests.

The wearable device offers a way to continuously track real-time concentrations of levodopa in the body and could enable doctors to precisely customize daily medication schedules for patients at home.

The research was led by Tamoghna Saha, PhD, a postdoctoral researcher in the lab of Joseph Wang, DSc, professor in the Aiiso Yufeng Li Family Department of Chemical and Nano Engineering at the UC San Diego Jacobs School of Engineering. Saha is co-first author of the team’s published paper in PNAS titled “A wearable patch for continuous levodopa monitoring in sweat: Towards exertion and power-free pharmacodynamic assessment in Parkinson’s disease.” In their paper the authors wrote in summary, “Overall, our easy-to-use, energy-efficient wearable supports real-time, stimulation-free monitoring, potentially enabling at-home dosage adjustments and paving the way for future autonomous closed-loop L-dopa therapeutic system development.”

Parkinson’s disease is the second most common and fastest-growing neurodegener­ative disorder worldwide, the author wrote. “While no cure for PD exists, levodopa (L-dopa) is the most effective symptomatic treatment, which is typically administered via oral tablets or capsules, and in advanced cases, through inhaled powder or continuous intrajejunal or subcutaneous infusions.” Prescribing the right dose is challenging: reducing levodopa leaves patients unable to move, while too much triggers severe, uncontrollable jerking movements. Initially, the drug’s effects can last several hours.

But as the disease progresses, the therapeutic window narrows down to two hours. Currently, clinicians must rely on subjective patient diaries to adjust treatment. Unfortunately, these methods fail to catch dangerous dosing gaps. “Precision management of Parkinson’s disease (PD) requires frequent levodopa (L-dopa) dose adjustments, yet current monitoring relies on subjective symptom reporting and infrequent blood testing,” the team continued.

Levodopa monitoring patch showing the assembly of the hydrogel and levodopa sensor with the paper fluidic channel on the fingertip. [Tamoghna Saha.]
Levodopa monitoring patch showing the assembly of the hydrogel and levodopa sensor with the paper fluidic channel on the fingertip. [Tamoghna Saha.]

Saha and the engineering team developed the new finger patch technology in joint collaboration with the lab of Irene Litvan, MD, MPhil, professor in the department of neurosciences at UC San Diego School of Medicine. The project is part of a longstanding collaboration between the Wang and Litvan teams to develop wearable levodopa monitors that can improve personalized care for people living with PD.

 

Worn on the fingertip, which is packed with a high density of sweat glands, the patch is equipped with a specially engineered absorbent gel that acts like a sweat sponge. The gel contains a highly-concentrated mixture of salts and benign solvents—and that draws sweat out of the pores, since water naturally flows toward areas with higher salt concentrations. Collected sweat is drawn into a serpentine fluidic channel with a self-powered levodopa biosensor connected to a wireless transmitter.

When levodopa in the patient’s sweat comes into contact with enzymes embedded in the patch it triggers a chemical reaction, which in turn generates a small, measurable voltage. This chemical reaction is what powers the patch. The amount of voltage generated also serves as an indicator of the patient’s levodopa level, such that lower voltage signals low levels, while higher voltage signals high levels.

Unassembled integrated levodopa monitoring patch. [David Baillot (University of California, San Diego, San Diego, CA).]
Unassembled integrated levodopa monitoring patch. [David Baillot (University of California, San Diego, San Diego, CA).]

Experimental results from three to five healthy participants and four individuals with PD indicated that levodopa concentrations in sweat measured by the patch are strongly correlated with blood concentrations measured by high-performance liquid chromatography. The patches captured pharmacodynamic responses and patient-specific levodopa clearance trends that could be used to calibrate dosage estimates for individuals.

The data revealed that individuals with Parkinson’s clear levodopa from their systems significantly faster than healthy individuals. This result explains why a patient’s Parkinson’s symptoms can deteriorate so suddenly, the researchers noted.

This technology could lay the groundwork for a closed-loop system, where a levodopa monitoring patch could communicate with a pump to automatically deliver the precise doses of the drug right when the body needs it, the authors suggested. “This approach establishes a foundation for real-time, at-home therapeutic optimization and advances the development of future closed-loop treatment systems for PD.”

The post Parkinson’s Disease Medication Monitored with Fingertip Sweat Patch appeared first on GEN – Genetic Engineering and Biotechnology News.

Solving the Mystery of Why Blocking and Stimulating a Brain Receptor Helps Weight Loss

Researchers headed by a team at the Institute of Metabolic Science, University of Cambridge, have solved the mystery of why both stimulating and blocking a particular receptor, or switch, in the brain can help people lose weight. Their study in mice indicated that the answer lies in where the receptor, called GIPR, is located. The results showed that stimulating this switch in the brainstem suppresses appetite, while the same effect can be achieved by blocking it in the hypothalamus. The researchers say their findings could help in the development of more effectiveness therapeutic strategies.

Jo Lewis, PhD, at the Institute of Metabolic Science at the University of Cambridge, said, “Understanding which brain circuits respond to these medications—and how they do so—could help us design better drugs that produce more weight loss with fewer side effects, and which might work in combination with other obesity medicines to even greater effect.” Lewis is first author of the team’s published paper in Nature Metabolism, titled “Distinct brain regions mediate regulation of food intake in response to GIPR agonism or antagonism.”

More than a billion people worldwide are living with obesity, which increases the risk of diseases such as type 2 diabetes (T2D), cardiovascular disease (CVD) and cancer. Weight loss can help mitigate these complications, but losing weight through diet and exercise alone can prove challenging.

In the past few years, a new generation of weight loss drugs has emerged that target particular receptors in the brain, reducing appetite and leading to weight loss, as well as helping to control blood sugar levels. Several of these drugs, such as Wegovy and Ozempic, work by stimulating the glucagon-like peptide 1 receptor (GLP-1R).

Other weight loss drugs act on both this receptor and on GIPR. “The development of dual agonists for the glucagon-like peptide-1 receptor (GLP-1R) and glucose-dependent insulinotropic polypeptide receptor (GIPR) has been a landmark moment in the treatment of type 2 diabetes and obesity,” the authors wrote.

However, some drugs, such as Mounjaro and Zepbound, stimulate GIPR, while others, such as the Phase III-stage MariTide, block it. Why these opposite actions have the same result has puzzled scientists. “… for reasons that are incompletely understood, in preclinical and clinical studies, adding either a GIPR agonist or GIPR antagonist to GLP-1R agonism causes additional weight loss,” the team continued. “There is emerging evidence that GIPR agonism and antagonism exert their paradoxically similar effects on weight loss via distinct neuronal populations.”

The investigators’ newly reported preclinical research has now shown that the two different types of GIPR drugs act on distinct regions of the brain, but also that they can boost weight loss when combined with certain GLP-1-based weight-loss drugs. For their reported study the team turned to genetically engineered mice and selectively removed GIPR from different parts of the brain to see which regions were responsible for the effects of the obesity drugs.

One group of mice lacked GIPR in the brainstem—the area at the base of the brain, just above the spinal cord, involved in appetite and nausea. A second group lacked GIPR in the hypothalamus, a major center controlling hunger and body weight. A third, control group included normal, unmodified mice. The researchers treated the mice with various combinations of a GIPR agonist (which activates the receptor), a GIPR antagonist (which blocks the receptor) and a GLP-1 drug, and measured food intake, body weight, fat mass, glucose control and brain activity.

“We knock out Gipr in either the area postrema (AP) or hypothalamus of mice (GiprAP-KO  and Giprhypo-KO, respectively) and compare body weight and food intake responses to GIPR agonists and antagonists, alone and in combination with the GLP-1R agonist liraglutide,” they wrote in summary.

By comparing the responses of normal mice with mice lacking GIPR in different brain areas the investigators showed that GIPR agonists act on the brainstem to suppress appetite and reduce weight. They then showed that GIPR antagonists help weight loss by acting on this receptor in the hypothalamus, where they release a “brake” that otherwise limits the brainstem’s ability to respond to signals telling us we are full. Blocking GIPR also appeared to boost the effect of emerging new drugs targeting the amylin receptor—such as cagrilintide (Cagri)—suggesting that GIPR antagonists could potentially be used to strengthen several types of anti-obesity medicines.

“Overall, our results suggest that the AP is responsible for the appetite-suppressing effects of GIPR agonism but that GIP receptors in the hypothalamus underlie the ability of GIPR antagonism to enhance the weight loss effects of GLP-1R and amylin receptor agonists,” they stated. “GIPR antagonism and Giprhypo-KO also sensitize to cagrilintide-induced weight loss.

The findings explain why drugs such as MariTide, which combines GIPR antagonism with GLP-1 receptor agonism, are effective, and suggests how to design even better combination therapies. And as the authors noted, “Future work is still, however, required to identify the neuronal networks underlying GIPR interactions in the AP and hypothalamus and their crosstalk with other appetite-regulating circuitry.”

Lewis said the work strengthens the idea that the brain is central to obesity treatment, commenting, “Obesity drugs are not acting simply on the gut or pancreas. Instead, they have important effects on specific, identifiable brain circuits that regulate appetite and food intake.”

The post Solving the Mystery of Why Blocking and Stimulating a Brain Receptor Helps Weight Loss appeared first on GEN – Genetic Engineering and Biotechnology News.

MapLight’s Schizophrenia Candidate Has Mixed Results at Phase II

MapLight Therapeutics announced this week that its candidate drug for treatment of schizophrenia had achieved its primary endpoint in a Phase II trial, but only at the twice daily dose tested in the trial.

As reported by the California-based company, while participants of the trial who were given the candidate drug, ML-007C-MA, once a day did show some signs of improvement it was not statistically significant.

ML-007C-MA is a combined muscarinic agonist (betovumeline) and peripherally acting anticholinergic (fesoterodine). It acts by turning on two receptors in the brain, M1 and M4.

M1 is the main receptor the drug is trying to stimulate in the brain cortex and hippocampus, where it is linked to cognition, attention, and possibly some aspects of psychosis. Turning on M4 also helps by acting like a brake on the overactive signaling that contributes to hallucinations and delusions. Betovumeline activates both M1 and M4 centrally, while fesoterodine is there mainly to block unwanted side effects outside the brain, like gastrointestinal issues.

In this study, MapLight randomized 307 adults with an acute exacerbation of schizophrenia to treatment with either a twice daily or once daily treatment with ML-007C-MA or placebo for five weeks.

At five weeks, patients given the twice daily dose had a statistically significant and clinically meaningful reduction in Positive and Negative Syndrome Scale (PANSS) total score of 4.5 points compared to placebo. Cognitive scores were also better in the twice daily group versus placebo.

While this result is positive overall, the non-statistically significant result for the once daily dose proved unpopular with investors and company shares on the Nasdaq fell 40% after the announcement.

In September 2024, Cobenfy, the first muscarinic M1/M4 agonist drug for treatment of schizophrenia was approved by the FDA. Now owned by BMS, Cobenfy will be the main competitor for ML-007C-MA if approved.

Cobenfy was groundbreaking because it was the first new mechanism of action for schizophrenia in decades, moving beyond dopamine blockade to a muscarinic approach and targeting both hallucinations and delusions as well as the more cognitive aspects of the disease, which are not well treated with other drugs.

Despite the approval of Cobenfy, a number of other competitors developing treatments for schizophrenia have failed in recent years. Whether MapLight can succeed at Phase III with ML-007C-MA—which is also being tested as a treatment for psychosis linked to Alzheimer’s disease—and compete with Cobenfy, remains to be seen.

The post MapLight’s Schizophrenia Candidate Has Mixed Results at Phase II appeared first on Inside Precision Medicine.

STAT+: Pharma’s drug spending deflection

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PhRMA doesn’t want you to look at drug spending

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