Tag: epilepsy

  • A Brain Protein Tied to Epilepsy Sat Unphotographed for Years, and Its Ion Grip Turned Out to Be Unlike Any Relative

    A Brain Protein Tied to Epilepsy Sat Unphotographed for Years, and Its Ion Grip Turned Out to Be Unlike Any Relative

    Genetic variants in a protein called NBCn2 have been tied to epilepsy and autism spectrum disorder for years. Until three weeks ago, nobody had seen what the protein looked like, and nobody had a compound that could switch it off.

    Researchers at the Icahn School of Medicine at Mount Sinai now have both, and their first inhibitors of the protein are already reducing neuronal activity in the dish. Their work, published in Nature Communications on July 22, reports the first high-resolution structure of NBCn2, along with a series of compounds that inhibit it.

    The structure came with a surprise that may matter more than the compounds do.

    The Transporter That Kept the Brain’s pH and Nobody’s Attention

    NBCn2, cataloged as SLC4A10 and a member of the SLC4 solute carrier family, is a sodium-dependent bicarbonate transporter. Its job is acid extrusion: moving sodium and carbonate ions across membranes to regulate acidity inside brain cells.

    That sounds like housekeeping, but intracellular pH directly influences how readily neurons fire. Mutations in NBCn2 cause severe neurodevelopmental disorders in humans, and knockout studies have suggested that its role in regulating neuronal excitability could hold therapeutic potential for seizure disorders.

    The obstacle was practical. As the authors put it, NBCn2’s molecular mechanisms remained largely unknown, and few tool compounds were available to probe its role in health and disease. Without knowing a protein’s shape or what it binds to and where it moves, designing a molecule to block it is guesswork.

    Cryo-EM, Computation and a Compound Series

    The team used cryo-electron microscopy to capture detailed structural images of the transporter, revealing how it binds and moves the ions that shape neuronal excitability, as the Mount Sinai announcement describes.

    They then paired that structural data with computational docking and molecular simulation to run structure-based drug discovery, narrowing a large chemical space to candidates worth synthesizing and testing.

    The screen produced a compound series that inhibits NBCn2-mediated transport. In primary neuronal culture and in brain slices, the compounds reduced neuronal activity, which is the direction you would want from a candidate for disorders of excessive firing. The team then went back to cryo-EM to characterize the mechanism of inhibition.

    The Binding Surprise That Matters for Drug Design

    The structural detail with the longest reach is not the compound but the mechanism.

    NBCn2 binds sodium and carbonate in an arrangement that differs from related proteins in the same transporter family. Closely related transporters, in other words, may operate in distinct ways.

    “One surprising finding was that NBCn2 uses a substrate binding mechanism we had not seen before in related proteins,” said Shifan Yang, first author and a senior scientist in the Department of Genetics and Genomic Sciences. “That difference may ultimately help all scientists design more selective drugs in the future.”

    Selectivity is the central problem in drug design for transporter families. Compounds that hit the intended target plus three of its cousins tend to produce side effects that kill development programs. A genuinely different binding site is an opening for molecules that engage NBCn2 and leave its relatives alone.

    Why “Not Drugs” Is the Operative Phrase

    The team is unusually blunt about how early this is.

    “These compounds are not drugs,” co-corresponding author Avner Schlessinger, professor of pharmacological sciences and director of the Small Molecule AI Drug Discovery Center at Icahn Mount Sinai, said in the release. The authors characterize them as early-stage research tools not ready for use in patients.

    Several gaps are worth naming. Reducing neuronal activity in cultured cells and brain slices is not equivalent to reducing seizures in a living animal, and no seizure model results are reported. The compounds have not been reported to cross the blood-brain barrier, nor have they been assessed for toxicity or behavior in a whole organism. And blocking a pH regulator across the brain raises obvious questions about what else it would affect.

    Roughly a third of people with epilepsy do not achieve seizure control on existing medications, which is why new mechanisms attract interest. But this is the first step of a process that typically runs a decade and usually fails. As one clinical neurology outlet framed it, the value here is a framework for studying the protein, not a therapy. Anyone currently managing epilepsy should stay on their prescribed regimen and discuss changes only with their neurologist.

    Key Questions Answered

    What is NBCn2?

    A sodium-dependent bicarbonate transporter, also called SLC4A10, that regulates acid-base balance inside brain cells and influences how readily neurons fire.

    What did the researchers accomplish?

    They produced the first high-resolution structure of the protein using cryo-electron microscopy and used it to design the first compounds that inhibit its activity.

    Did the compounds work?

    They reduced neuronal activity in primary culture and brain slices. No seizure model results were reported.

    Why is the binding mechanism significant?

    NBCn2 binds sodium and carbonate differently from related transporters, suggesting that drugs could be designed to target it specifically without affecting its relatives.

    Are these compounds close to becoming medicines?

    No. The researchers explicitly describe them as early-stage research tools not yet ready for use in patients.

    Who could eventually benefit?

    Potentially, people with epilepsy and other conditions involving excessive neuronal activity, though no therapeutic claim is supported by this study.

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  • Vietnam Reaches Medical Milestone With First Robotic Brain Surgery on Child with Drug-Resistant Epilepsy

    Vietnam Reaches Medical Milestone With First Robotic Brain Surgery on Child with Drug-Resistant Epilepsy

    The global medical robotics market is undergoing exponential growth. According to Frontiers, the sector was valued at approximately US$27.7 billion in 2023, with projections reaching US$127 billion by 2033, expanding at a CAGR of 16.5%.

    Adoption is most prominent in North America and Europe. In 2023, Europe alone had over 3,500 surgical robotic systems and performed more than 280,000 robotic surgeries, according to MarketGrowthReports.

    That future has now reached Southeast Asia. In July, 2025, Vinmec Central Park International Hospital in Ho Chi Minh City performed Vietnam’s first robotic-guided brain surgery on a pediatric patient with drug-resistant epilepsy, signaling a breakthrough for the region’s neurosurgical capabilities.

    A Precision-Based Intervention in Pediatric Epilepsy

    The patient, B.Q.K., a 9-year-old boy from Hanoi, had suffered from epilepsy since 2021. Despite undergoing multiple treatment regimens across Vietnam and abroad, his condition remained refractory, sometimes experiencing dozens of seizures per day. For five years, his family had been searching for a definitive treatment.

    That breakthrough came in 2025. On June 17, 2025, under the leadership of Dr. Truong Van Tri, with support from Japanese epilepsy specialist Assoc. Prof. Dr. Shunsuke Nakae, the surgical team successfully applied stereo-electroencephalography (SEEG) using the AutoGuide™ robotic guidance system. This marks the first-ever use of robotic SEEG for a pediatric patient in Vietnam.

    Vinmec made the life-changing breakthrough possible for the young boy.

    The AutoGuide™ robot enabled precise electrode implantation into high-risk brain areas. These included the orbitofrontal cortex and inferior frontal gyrus—regions dense with blood vessels and neural pathways. Using 3.0 Tesla MRI and multi-channel EEG, doctors visualized brain activity, mapped the seizure focus, and performed a minimally invasive resection.

    “For the first time, we achieved a near-perfect outcome in pediatric epilepsy surgery thanks to AutoGuide™. This is a critical milestone, especially for young patients who are highly vulnerable to major brain surgery,”said Dr. Tri.

    The patient reported no neurological deficits post-surgery and has since resumed normal activities. His seizure frequency decreased by over 95%, reflecting both the efficacy and safety of the procedure.

    Technology-Driven Medical Excellence

    According to the World Health Organization (WHO), 30% of epilepsy patients are drug-resistant, with surgery often being their best option. Yet in children, localizing the seizure-causing brain zone is especially difficult, as conventional EEG, PET, or MRI frequently yield inconclusive results.

    Robotic SEEG addresses these limitations by offering real-time, sub-millimeter accuracy, reduced invasiveness, and faster recovery times. With this breakthrough, Vinmec Central Park becomes one of the few hospitals in Asia capable of performing robotic pediatric SEEG. Recognized as Vietnam’s leading private hospital system for international patients, the robotic epilepsy surgery also reflects Vinmec’s broader strategy of developing centers of excellence.

    Vietnam’s neurological care is progressing, bringing national standards closer to global benchmarks.

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