Changing stroke rehab and research worldwide now.Time is Brain! trillions and trillions of neurons that DIE each day because there are NO effective hyperacute therapies besides tPA(only 12% effective). I have 523 posts on hyperacute therapy, enough for researchers to spend decades proving them out. These are my personal ideas and blog on stroke rehabilitation and stroke research. Do not attempt any of these without checking with your medical provider. Unless you join me in agitating, when you need these therapies they won't be there.

What this blog is for:

My blog is not to help survivors recover, it is to have the 10 million yearly stroke survivors light fires underneath their doctors, stroke hospitals and stroke researchers to get stroke solved. 100% recovery. The stroke medical world is completely failing at that goal, they don't even have it as a goal. Shortly after getting out of the hospital and getting NO information on the process or protocols of stroke rehabilitation and recovery I started searching on the internet and found that no other survivor received useful information. This is an attempt to cover all stroke rehabilitation information that should be readily available to survivors so they can talk with informed knowledge to their medical staff. It lays out what needs to be done to get stroke survivors closer to 100% recovery. It's quite disgusting that this information is not available from every stroke association and doctors group.

Monday, December 29, 2025

Audiovisual gamma stimulation restores hippocampal neurogenesis and neural circuit plasticity in aging mice

 Ask your competent? doctor how to EXACTLY do this even before human testing occurs! No ability to extrapolate; PURE INCOMPETENCE!

  • 40Hz sensory stimulation (3 posts to March 2021)
  • Audiovisual gamma stimulation restores hippocampal neurogenesis and neural circuit plasticity in aging mice


    Abstract

    Aging is the primary risk factor for cognitive decline and neurodegenerative disorders, characterized by impaired circuit plasticity and disrupted gamma oscillations. Non-invasive 40 Hz audiovisual stimulation (AuViS) has emerged as a promising strategy to restore cognition in models of Alzheimer’s disease and stroke. Yet, the mechanisms underlying these effects remain unclear. We found that AuViS increased gamma oscillations in the dentate gyrus of middle-aged mice. Control animals displayed scarce neurogenesis, and newborn neurons exhibited limited growth and remained functionally immature. Notably, AuViS triggered the proliferation of neural progenitor cells and shifted the balance from astrocytic towards neuronal differentiation. It also promoted neuronal maturation, leading to the development of complex dendritic trees and axons with large mossy terminals bearing filopodial extensions. These structural modifications were accompanied by increased spiking capacity and spontaneous synaptic activity, indicative of effective circuit integration. These effects were dependent on TrkB signaling, implicating neurotrophin pathways. Our findings demonstrate that AuViS reestablishes neurogenesis and promotes network remodeling in the healthy aging brain, which might aid to ameliorate neurological conditions.

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    The Top 10 Longevity Articles That Defined 2025 by Super Age

     I'm going to get there.

    The Top 10 Longevity Articles That Defined 2025

    Breaking the learned helplessness paradigm in chronic stroke: an intensive neuroplasticity framework bridging European technology and African innovation

    Is your doctor preparing you to be helpless in your stroke recovery? Is she using the comment 'All strokes are different, all stroke recoveries are different'? I can easily see that comment shutting down all hope of ever recovering. Along with no EXACT stroke rehab protocols you are basically screwed. I somehow managed to figure out that whatever recovery I wanted I would have to do all the work. This was probably helped by my ex-wife saying to me 'you are on your own'. She was a PT and even though my PT's tried to involve her in helping do some exercises it quickly became obvious that there would be nothing forthcoming there.  I really should thank her for setting the stage for my recovery through my own hard work.

     Breaking the learned helplessness paradigm in chronic stroke: an intensive neuroplasticity framework bridging European technology and African innovation

    Introduction: Most chronic stroke survivors develop learned helplessness regarding motor recovery prospects, accepting permanent disability despite evidence that neuroplasticity windows remain accessible years post-stroke(Well, you goddamn fucking idiots DON'T HAVE EXACT RECOVERY PROTOCOLS! So quit blaming the survivors for not recovering! THAT FAILURE IS ALL ON YOU!) This review examines how intensive protocols targeting learned helplessness can achieve meaningful recovery across diverse healthcare settings.

    Methods: Comprehensive literature review using PubMed, Scopus, and specialized databases . Analysis included constraint-induced movement therapy protocols, progressive muscle lengthening techniques, and neuroplasticity principles across European hightechnology centers and African human-intensive programs. Search incorporated systematic analysis of therapeutic intensity parameters, cultural adaptation protocols, and crosscontinental implementation strategies.

    Results:

    Literature synthesis reveals meaningful functional recovery 2-5 years post-stroke when intensive protocols directly challenge learned helplessness through forced-use approaches, training intensities exceeding traditional therapy doses (3-6 hours daily versus 30-45 minutes), and systematic addressing of secondary muscle adaptations. Crosscontinental validation demonstrates equivalent outcomes between European technology dependent and African human-intensive approaches when therapeutic intensity and neuroplasticity targeting remain consistent. Neuroplasticity-driven intensive rehabilitation can overcome learned helplessness and achieve meaningful motor recovery years after(You're really trying hard to blame the patient, INSTEAD OF LOOKING IN THE MIRROR AND REALIZING
    YOU ARE THE FUCKING PROBLEM!) stroke without requiring expensive technology. Success depends on abandoning traditional recovery timelines, implementing culturally-adapted intensive protocols, and recognizing human expertise as the most powerful rehabilitation tool when properly applied. 

    Admission monocyte-to-albumin ratio predicts 3-month functional outcomes after acute ischemic stroke: a retrospective cohort study

    So what? YOU'RE PREDICTING FAILURE TO RECOVER! How does that help survivors? Are you that blitheringly stupid you think this does ANY GOOD AT ALL? Yes, I guess you are that stupid!

     Admission monocyte-to-albumin ratio predicts 3-month functional outcomes after acute ischemic stroke: a retrospective cohort study


    • 1Department of Neurology, The Quzhou Affiliated Hospital of Wenzhou Medical University (Quzhou People’s Hospital), Quzhou, Zhejiang, China
    • 2Department of Neurology, The First Affiliated Hospital of Wenzhou Medical University, Wenzhou, China
    • 3Department of Gerontology, The Quzhou Affiliated Hospital of Wenzhou Medical University, Quzhou People's Hospital, Quzhou, China

    Background: The monocyte-to-albumin ratio (MAR) integrates systemic inflammation and nutritional status derived from routine laboratory data. We assessed whether the admission MAR is associated with 3-month functional outcomes following acute ischemic stroke (AIS).

    Methods: We conducted a single-center, retrospective cohort study of consecutive adults with AIS admitted within 3 days of symptom onset (October 2023–March 2024). MAR was calculated from the admission monocyte counts and serum albumin levels. The primary outcome was poor 3-month functional status, defined as a modified Rankin Scale (mRS) score ≥3. Associations between MAR and outcomes were examined using multivariable logistic regression (with and without adjustment), smooth curve fitting, and prespecified subgroup analyses (sex, age, smoking status, drinking status, hypertension, diabetes status, eGFR, and TOAST subtype).

    Results: Among 395 patients (mean age 66.2 years; 34.7% female), 59 (14.9%) had poor outcomes. A higher admission MAR independently predicted poor outcomes: per 1-unit increase, the adjusted odds ratio (OR) was 1.13 (95% CI 1.07–1.20; p < 0.001). Compared with the low tertile, patients with the high tertile had significantly greater odds (OR 3.21; 95% CI 1.25–8.20) with a linear trend (P for trend = 0.006). Smooth curve fitting demonstrated a largely monotonic increase in risk across the observed MAR range. Associations were consistent across subgroups with no significant interactions (all interactions p > 0.05). With respect to the TOAST subtype, the MAR remained significant for large-artery atherosclerosis (OR 1.10; 95% CI 1.02–1.20) and small-artery occlusion (OR 1.23; 95% CI 1.07–1.42), but not for cardioembolism.

    Conclusion: The admission MAR is independently and positively associated with poor 3-month functional outcomes after AIS. MAR is a promising tool for early risk assessment when it is integrated with established predictors.

    New study sheds light on a beneficial compound found in coffee and chocolate

     Ask your fuckingly incompetent? doctor and hospital to do the research that answers EXACTLY HOW MUCH TO CONSUME! Oh, they are SO INCOMPETENT they can't even manage that simple task?

    New study sheds light on a beneficial compound found in coffee and chocolate

     Theobromine, an alkaloid found in dark chocolate and coffee, is associated with slower cellular aging, a study suggests. December 26, 2025 By Christa Sgobba If you enjoy dark chocolate or coffee, or both, you may be benefiting from a substance found in these products that is linked to a reduction in cellular aging. A study published this month in the journal Aging found that people with higher blood levels of an alkaloid called theobromine seemed to have slower cellular aging as measured by “epigenetic clocks,” models that estimate aging based on molecular biomarkers. Most abundant in cocoa, theobromine is also found in smaller amounts in coffee and tea. But before you start eating more dark chocolate and drinking more cups of coffee, know that the study found an association, not a causal link, and that it didn’t suggest how much you would have to eat or drink to potentially derive an aging-related benefit.

    Can Relative Fat Replace Mass BMI in Assessing Obesity?

     My various calculations are: 

    My RFM is 24.

    BMI of 28.2

    All because my doctor COMPLETELY FAILED AT GETTING ME 100% RECOVERED!

    I'm not worried at all about this stuff.

    Can Relative Fat Replace Mass BMI in Assessing Obesity?

    Earlier this year, the Lancet Commission on the Definition and Diagnostic Criteria of Clinical Obesity concluded that BMI alone is inadequate for assessing excess body adipose tissue, which is both harmful to health and key to diagnosing clinical obesity. The Commission instead recommended that obesity status include additional anthropometric confirmation plus evidence of reduced organ function and/or limitations in daily activities. 

    This marks an important and necessary advance, as relying solely on BMI risks misdirecting obesity treatments and inflating already substantial healthcare costs. 

    Developing a more accurate tool for identifying clinical obesity is also essential given the persistent stigma surrounding this disease. Obesity as a standalone disease remains controversial both inside and outside the medical community. A clearer, more reliable tool could reduce stigma and expand access to appropriate care. 

    Although the Lancet Commission’s recommendations improve diagnostic precision, they may be onerous to implement in busy clinical practices. Therefore, the search for a simple, practical tool that matches BMI’s ease of use while improving its accuracy in identifying excess deleterious body fat remains a priority. 

    Searching for Better Measures

    Efforts to measure risk from excess adipose tissue began decades ago. In 1998, the National Institutes of Health published the first obesity treatment guidelines, recommending using BMI plus waist circumference in those with BMI 25-35 to better estimate visceral adipose tissue and identify those at an increased risk of complications. It provided a helpful illustration for practitioners. At the time, supporting evidence was limited (graded “C”). 

    Twenty years later, stronger evidence supports a more accurate tool, the Relative Fat Mass (RFM) index. Given the Lancet Commission’s call for a better measure than BMI, we believe RFM deserves renewed attention. We also believe that clinical inertia fueled by the stigma surrounding obesity has clouded progress in developing this tool over the past 7 years. 

    A Closer Look at RFM

    Developed and validated in 2018 using data from the National Health and Nutrition Examination Survey (NHANES), RFM is a sex-specific anthropometric measure of obesity that estimates body fat percentage based on height and waist circumference using the following formula:

    • RFM = 64 − (20 × height/waist circumference) + (12 x sex [0 for males and 1 for females])

    This simple calculation incorporates waist circumference as a proxy of visceral body fat while accounting for sex-based differences in fat mass. Multiple studies have shown RFM to be a superior and more consistent predictor of cardiometabolic risk and mortality. 

    Obesity cutoffs were derived from NHANES (1999-2014) data linking RFM with all-cause mortality. After adjusting for age, BMI category, ethnicity, education, and smoking status, this analysis suggested that higher RFM was associated with substantially increased mortality risk. Women with an RFM of ≥ 40% (40% body fat) and men with an RFM of ≥ 30% (30% body fat) had a 50% higher risk of death compared with women with an RFM of ≤ 35% and men with an RFM of ≤ 25%. Additionally, women with an RFM of ≥ 45% had nearly double the risk of death, whereas men with an RFM of ≥ 35% had more than 2.5 times the risk of death.

    RFM has also outperformed BMI in estimating body fat percentage in children and adolescents, measured using DEXA. For children and adolescents aged 8-14 years, a modified RFM for pediatric populations was successfully tested against BMI for age percentiles. Additionally, RFM has been reported as the strongest anthropometric risk predictor of heart failure and type 2 diabetes in prospective cohort studies of community dwelling adults in the Netherlands. 

    Putting RFM Into Practice 

    The next steps towards replacing BMI with RFM in clinical practice include validating RFM against the Lancet Commission’s protocol for assessing obesity. If validated, widespread clinical adoption will depend upon national and international training in accurate waist circumference measurement, standardizing waist circumference as a vital sign alongside height and other anthropometrics and incorporating RFM into routine obesity evaluations. 

    The greatest limitation of RFM compared with BMI is the potential for inconsistent measurement of waist circumference. Counteracting this requires consistent and accurate landmark identification. If RFM more accurately identifies excess adiposity and predicts mortality, it could fulfill one of the Commission’s core criteria by providing two anthropometric measures that correlate with disease. 

    Adoption of RFM will require the collaboration of all societies invested in obesity assessment and treatment. 

    Why This Matters Now

    The past several years has seen the rise of nutrient-stimulated hormonal (NuSH) therapies, better known as GLP-1s. Yet clinical assessment of obesity remains rooted in outdated and stigma-fueled practices, limiting access to these life-saving medicines. BMI alone cannot reliably assess risk and identify those most likely to benefit from treatment. 

    With wider adoption of NuSH therapies, rare but serious adverse effects beyond those identified in clinical trials have been reported in broader populations. Improving diagnostic accuracy may be the first step toward ensuring a favorable risk-benefit ratio for NuSH therapies. 

    We urgently need a better tool for identifying clinically significant excess adiposity, and RFM is a promising option. The field of obesity medicine and the health of our patient population depends on it. 

    Sunday, December 28, 2025

    Frailty Plus Depression Equals Greater Dementia Risk

     How is your competent? doctor ensuring frailty and depression don't occur? Oh, NO PLAN AT ALL?

    Post stroke depression(33% chance)

  • frailty (30 posts to January 2018)
  • Frailty Plus Depression Equals Greater Dementia Risk

    A combination of physical frailty and depression is associated with a substantially increased risk for subsequent dementia, exceeding the risk linked to either condition alone.

    In a cohort study of nearly 221,000 participants, frailty was associated with roughly a 2.5-fold higher risk for dementia compared with healthy individuals, while depression alone was linked to a 60% increased risk.

    Those with both frailty and depression faced the highest risk, with a more than threefold increased risk for dementia.

    Overall, 17% of dementia risk was attributable to the combined effects of frailty and depression.

    “These results underscore the complex relationship between frailty, depression, and cognitive function,” Yihong Ding, Zhejiang University School of Medicine, Hangzhou, China, and colleagues wrote.“Given that physical frailty and depression are modifiable, concurrent interventions targeting these conditions could significantly reduce dementia risk,” they added.

    The findings were published online on December 16 in General Psychiatry.

    Novel Research

    Previous research has focused primarily on associations between dementia risk and either frailty or depression. The investigators noted that this study is the first to investigate the combined effect of both conditions on dementia risk, the investigators noted.

    The investigators assessed data for 220,947 participants aged 60 years or older (mean age, 64.5 years; 53% women) from the English Longitudinal Study of Ageing, the UK Biobank, and the Health and Retirement Study.

    Measures included modified versions of the Fried frailty phenotype, mental health questionnaires, and hospital admission records. The primary outcome was incident all-cause dementia, which occurred in 9088 participants over 2,832,696 person-years of follow-up.

    Results showed that frailty and depression did not multiply each other’s effects on dementia risk, but together they increased risk more than would be expected from either condition alone.

    However, individuals with physical frailty alone had a 155% higher risk for dementia compared with healthy individuals (pooled hazard ratio [HR], 2.55; 95% CI, 2.36-2.76), while depression alone was associated with a 59% increased risk (pooled HR, 1.59; 95% CI, 1.50-1.69).Those with both frailty and depression had an even higher pooled HR of 3.23 for risk for dementia (95% CI, 2.86-3.65).

    The interaction between frailty and depression accounted for 17.1% of dementia risk (95% CI, 6.0%-28.3%).

    “These two factors interact in an additive manner, further amplifying dementia risk,” the researchers wrote.

    When both factors were added to traditional dementia risk models across all three cohorts, prediction accuracy improved significantly (all area under the curve P values < .05).

    The investigators noted the findings underscore the need to integrate assessments of frailty and depression into clinical practice, potentially enabling earlier identification of high-risk individuals and the implementation of targeted interventions.

    This study was funded by the National Key Research and Development Program of China. The investigators reported no relevant financial relationships.

    Stroke Rehabilitation: Which is the Main Functional Outcome to Reach?

     

    You're that blitheringly stupid you can't see the only outcome measure is 100% recovery?

    Oops, I'm not playing by the polite rules of Dale Carnegie,  'How to Win Friends and Influence People'. 

    Telling your supposedly smart stroke medical 'professionals' they know nothing about stroke is a no-no even if it is true. 

    Politeness will never solve anything in stroke. Yes, I'm a bomb thrower and proud of it. Someday a stroke 'leader' will try to ream me out for making them look bad by being truthful, I look forward to that day.

    Stroke Rehabilitation: Which is the Main Functional Outcome to Reach?

    ? Loredana Cavalli*, Andrea Guazzini, Bruno Rossi and Carmelo Chisari University of Florence, Italy 

    Abstract 


    Background: 

    Stroke rehabilitation targets range from treatment of spasticity to pain reduction, gait speed gain, or autonomy amelioration. A correct evaluation of individual residual capabilities is essential to select the most appropriate rehabilitative programme; furthermore the observation of rehabilitative outcomes can provide information about gait training effects and possible compensation mechanisms. 

    Aim: 

    To investigate the main outcome to reach in stroke rehabilitation. 

    Methods: 

    We examined retrospectively a heterogeneous sample of 119 subjects recovered for the treatment of stroke outcomes. Functional parameters were assessed before and after rehabilitative treatment, such as upper limbs motility impairment, lower limb sensitiveness, muscle trophism or tone, necessity of auxilium, Berg and Fugl-Meyer scale. 

     Results: 

    A consistent improvement of standing equilibrium was reported, regardless of gender, stroke nature, hemiparetic side, type of rehabilitation performed, botulin toxin use and initial conditions, with an average increase of Berg and Fugl-Meyer scales score of 14% and 21%, respectively. The variation of equilibrium and motility across treatment resulted directly proportional and negatively correlated to lower limbs sensitivity impairment. On the contrary, initial equilibrium resulted inversely correlated with the variation of motility and vice versa. Interestingly, older subjects seem to better increase equilibrium and sensitivity as measured by Fugl-Meyer scale. 

    Conclusion: 

    In stroke subjects any type of rehabilitation leads to a consistent improvement of standing balance. While proportional to motility and sensitivity increase, this result is inversely correlated to initial motility score, suggesting that an appropriate evaluation of the stroke patient’s functional parameters at admission contributes to select the main rehabilitation targets and the best therapeutic strategy. 

    Engineered Protein Reveals Hidden Incoming Signals Between Neurons

     

     Haven't our competent? stroke researchers already put together various methods of listening in on neuron signals? How else are we going to make neuroplasticity repeatable unless we know the signals sent between neurons?

    But the stroke leaders would already have ensured that listening to brain signals using one of these already occurs. Add sarcasm tag here.

    1. Use nanowires to listen in on single neurons

    2. Or lay a grid across the cortex to listen in.

    3. Electronic tattoo decodes brainwaves January 2025

    But we have NO stroke leaders, nothing will get done until we get survivors in charge.

    Leaders solve problems, they don't run away from them.

    The latest here:

    Engineered Protein Reveals Hidden Incoming Signals Between Neurons

    Summary: Researchers have engineered a next-generation glutamate sensor, iGluSnFR4, capable of detecting the faintest incoming synaptic signals between neurons—signals that, until now, have been nearly impossible to record in living brain tissue. By capturing these whisper-quiet inputs, scientists can finally observe how neurons weigh thousands of glutamate messages and transform them into an electrical output, the core computation behind memory, learning, and emotion.

    This breakthrough opens new paths for studying disorders marked by disrupted glutamate signaling and gives researchers a powerful tool to test how potential therapies actually affect synaptic communication. The work represents a major step toward decoding the brain’s internal language and mapping how neural circuits truly operate.

    Key Facts

    • New Input Detection: iGluSnFR4 is the first protein sensor sensitive enough to reliably record incoming glutamate signals at single synapses in real time.
    • Decoding Computation: The sensor reveals how neurons integrate thousands of chemical inputs to generate electrical output, illuminating core neural computations.
    • Disease Impact: Disorders such as Alzheimer’s, autism, schizophrenia, and epilepsy involve disrupted glutamate signaling; this tool provides a way to pinpoint those disruptions directly in neural circuits.

    Source: Allen Institute

    Scientists have engineered a protein able to record the incoming chemical signals of brain cells (as opposed to just their outgoing signals).

    These whisper-quiet incoming messages are the release of the neurotransmitter glutamate, which plays a critical role in how brain cells communicate with one another but until now has been extremely difficult to capture.

    Why it matters

    • Understanding the brain’s code: Scientists can now study how neurons compute—how they take thousands of input signals and—based off those—produce an output signal that could underlie decision, thought, or memory, decoding long-held mysteries about the brain.
    • New avenues for disease research: Disrupted glutamate signaling is linked to Alzheimer’s, schizophrenia, autism, epilepsy, and more. These sensors could help uncover the root causes of these conditions.
    • Smarter drug development: Drug companies can test how new treatments affect actual synaptic activity—speeding up the search for better therapies.

    The special protein that researchers at the Allen Institute and HHMI’s Janelia Research Campus have engineered is a molecular “glutamate indicator” called iGluSnFR4 (pronounced ‘glue sniffer’).

    It’s sensitive enough to detect the faintest incoming signals between neurons in the brain, offering a new way to decipher and interpret their complex cascade of electrical activity that underpins learning, memory, and emotion.

    iGluSnFR4 could help decode the hidden language of the brain and deepen our understanding of how its complex circuitry works. This discovery allows researchers to watch neurons in the brain communicate in real time. 

    The findings have just been published in Nature Methods and could transform how neuroscience research is done as it pertains to measuring and analyzing neural activity.

    The brain’s hidden language uncovered

    To understand the significance of this discovery, it helps to understand how the brain works: billions of neurons “talk” to each other by sending pulses of electricity down their branch-like axons.

    When the electrical signals reach the end of the axons, they can’t jump the gap to the next brain cell, known as a synapse. Instead, they trigger the release of chemical messengers called neurotransmitters (glutamate being the most common and critical for memory, learning, and emotion) into the synapse that causes the next brain cell to fire in sequence.

    It’s like a row of falling dominos, but vastly more complex: Each neuron receives inputs from thousands of other neurons, and specific patterns and combinations of those input neurons firing is what makes the next (receiving) neuron fire. With this new discovery, scientists can now identify the critical patterns and combinations of input neuron activity that cause the next neurons to fire. 

    Until now, detecting these incoming signals in living brain tissue was nearly impossible. Older technologies were either too slow or not sensitive enough to pick up the action at the single-synapse level. Now researchers can hear the entire conversation rather than fragments of it.

    “It’s like reading a book with all the words scrambled and not understanding the order of the words or how they’re arranged,” said Kaspar Podgorski, Ph.D., a lead author on the study and senior scientist at the Allen Institute.

    “I feel like what we’re doing here is adding the connections between those neurons and by doing that, we now understand the order of the words on the pages, and what they mean.”

    Before these protein sensors existed, researchers could only record the outgoing signals from brain cells, leaving half of the communications equation (the cells’ inputs) a mystery. The incoming signals were always too faint and fast to capture, until now.

    “Neuroscientists have pretty good ways of measuring structural connections between neurons, and in separate experiments, we can measure what some of the neurons in the brain are saying, but we haven’t been good at combining these two kinds of information. It’s hard to measure what neurons are saying to which other neurons,” said Podgorski.

    “What we have invented here is a way of measuring information that comes into neurons from different sources, and that’s been a critical part missing from neuroscience research.”

    “The success of iGluSnFR4 stems from our close collaboration started at HHMI’s Janelia Research Campus between the GENIE Project team and Kaspar’s lab. That research has extended to the phenomenal in vivo characterization work done by the Allen Institute’s Neural Dynamics group,” said Jeremy Hasseman, Ph.D., a scientist with HHMI’s Janelia Research Campus.

    “This was a great example of collaboration across labs and institutes to enable new discoveries in neuroscience.”

    This discovery removes a significant barrier in modern neuroscience: the inability to clearly monitor and make sense of how brain cells receive information. With this powerful new tool available to researchers through Addgene, some of the brain’s deepest mysteries may soon be revealed.

    Key Questions Answered:

    Q: What breakthrough did scientists achieve with iGluSnFR4?

    A: They engineered a protein sensor sensitive enough to record neurons’ incoming glutamate signals in real time, something previously impossible in living brain tissue.

    Q: Why does capturing incoming signals matter for understanding the brain?

    A: Incoming synaptic inputs determine how neurons compute and decide whether to fire, giving researchers access to the patterns that underlie learning, memory, emotion, and decision-making.

    Q: How could this change disease research and drug development?

    A: Because disrupted glutamate signaling is implicated in disorders like Alzheimer’s, autism, schizophrenia, and epilepsy, this sensor lets scientists directly observe synaptic dysfunction and test how treatments alter real neural communication.

    Editorial Notes:

    • This article was edited by a Neuroscience News editor.
    • Journal paper reviewed in full.
    • Additional context added by our staff.

    About this neurotech and neuroscience research news

    Author: Peter Kim
    Source: Allen Institute
    Contact: Peter Kim – Allen Institute
    Image: The image is credited to Neuroscience News

    Original Research: Open access.
    Glutamate indicators with increased sensitivity and tailored deactivation rates” by Kaspar Podgorski et al. Nature Methods


    Study Finds Way to Reverse Alzheimer’s

     

    Did your incompetent? doctor DO NOTHING with this earlier research?
  • NAD (4 posts to May 2014)
  • Has your incompetent board of directors not fired your doctor yet? Is 10+ years of incompetence not enough to prove incompetence?

    Study Finds Way to Reverse Alzheimer’s

    Summary: A new study challenges the long-held belief that Alzheimer’s disease cannot be reversed. Researchers showed that a severe drop in NAD+—a core energy molecule—drives Alzheimer’s pathology in both human brains and mouse models.

    Restoring proper NAD+ balance with the drug P7C3-A20 not only prevented disease in at-risk mice but also reversed advanced pathology, repairing brain damage and fully restoring cognitive function. The findings point to a major shift in how Alzheimer’s may be treated, suggesting that recovery—not just slowing decline—could one day be achievable.

    Key Facts

    • Central NAD+ Failure: Human and mouse Alzheimer’s brains showed a dramatic loss of NAD+, impairing essential cellular functions.
    • Reversal Achieved: Restoring NAD+ balance repaired pathology and fully recovered cognition even in mice with advanced disease.
    • New Treatment Pathway: The targeted drug P7C3-A20 restored healthy NAD+ levels without the dangers linked to over-the-counter NAD+ boosters.

    Source: University Hospital Cleveland Medical Center

    For over a century, Alzheimer’s disease (AD) has been considered irreversible. Consequently, research has focused on disease prevention or slowing, rather than recovery.

    Despite billions of dollars spent on decades of research, there has never been a clinical trial of a drug for AD with an outcome goal of reversing disease and recovering function.

    Now, a research team from University Hospitals, Case Western Reserve University, and the Louis Stokes Cleveland VA Medical Center has challenged this long-held dogma in the field. They tested whether brains already badly afflicted with advanced AD could recover.

    The study, led by Kalyani Chaubey, PhD, from the Pieper Laboratory, published today in Cell Reports Medicine.

    Through studying diverse preclinical mouse models and human AD brains, the team showed that the brain’s failure to maintain normal levels of a central cellular energy molecule, NAD+, is a major driver of AD, and that maintaining proper NAD+ balance can prevent and even reverse the disease.

    NAD+ levels decline naturally across the body, including the brain, as people age. Without proper NAD+ balance, cells eventually become unable to execute critical processes required for proper functioning and survival.

    In this study, the team showed that the decline in NAD+ is even more severe in the brains of people with AD, and that this also occurs in mouse models of the disease.

    While AD is a uniquely human condition, it can be studied in the laboratory with mice that have been engineered to express genetic mutations that cause AD in people. The researchers used two of these models.

    One line of mice carried multiple human mutations in amyloid processing, and the other mouse line carried a human mutation in the tau protein.

    Amyloid and tau pathology are two of the major early events in AD, and both lines of mice develop brain pathology resembling AD, including blood-brain barrier deterioration, axonal degeneration, neuroinflammation, impaired hippocampal neurogenesis, reduced synaptic transmission, and widespread accumulation of oxidative damage.

    These mice also develop severe cognitive impairments that resemble what is seen in people with AD.

    After finding that NAD+ levels in the brain declined precipitously in both human and mouse AD, the research team tested whether preventing the loss of brain NAD+ balance before disease onset, or restoring brain NAD+ balance after significant disease progression, could prevent or reverse AD, respectively.

    The study was based on their previous work, published in Proceeding of the National Academy of Sciences USA, showing that restoring the brain’s NAD+ balance achieved pathological and functional recovery after severe, long-lasting traumatic brain injury.

    They restored NAD+ balance by administering a now well-characterized pharmacologic agent known as P7C3-A20, developed in the Pieper lab.

    Remarkably, not only did preserving NAD+ balance protect mice from developing AD, but delayed treatment in mice with advanced disease also enabled the brain to fix the major pathological events caused by the genetic mutations. Moreover, both lines of mice fully recovered cognitive function.

    This was accompanied by normalized blood levels of phosphorylated tau 217, a recently approved clinical biomarker of AD in people, providing confirmation of disease reversal and highlighting a potential biomarker for future clinical trials.

    “We were very excited and encouraged by our results,” said Andrew A. Pieper, MD, PhD, senior author of the study and Director of the Brain Health Medicines Center, Harrington Discovery Institute at UH.

    “Restoring the brain’s energy balance achieved pathological and functional recovery in both lines of mice with advanced Alzheimer’s. Seeing this effect in two very different animal models, each driven by different genetic causes, strengthens the idea that restoring the brain’s NAD+ balance might help patients recover from Alzheimer’s.”

    Dr. Pieper also holds the Morley-Mather Chair in Neuropsychiatry at UH and the CWRU Rebecca E. Barchas, MD, DLFAPA, University Professorship in Translational Psychiatry. He serves as Psychiatrist and Investigator in the Louis Stokes VA Geriatric Research Education and Clinical Center (GRECC).

    The results prompt a paradigm shift in how researchers, clinicians, and patients can think about treating AD in the future.

    “The key takeaway is a message of hope – the effects of Alzheimer’s disease may not be inevitably permanent,” said Dr. Pieper. “The damaged brain can, under some conditions, repair itself and regain function.”

    Dr. Chaubey further explained, “Through our study, we demonstrated one drug-based way to accomplish this in animal models, and also identified candidate proteins in the human AD brain that may relate to the ability to reverse AD.”

    Dr. Pieper emphasized that currently available over the counter NAD+-precursors have been shown in animal models to raise cellular NAD+ to dangerously high levels that promote cancer.

    The approach in this study, however, uses a pharmacologic agent (P7C3-A20) that enables cells to maintain their proper balance of NAD+ under conditions of otherwise overwhelming stress, without elevating NAD+ to supraphysiologic levels.

    “This is important when considering patient care, and clinicians should consider the possibility that therapeutic strategies aimed at restoring brain energy balance might offer a path to disease recovery,” said Dr. Pieper.

    This work also encourages new research into complementary approaches and eventual testing in patients, and the technology is being commercialized by Cleveland-based company Glengary Brain Health, co-founded by Dr. Pieper.

    “This new therapeutic approach to recovery needs to be moved into carefully designed human clinical trials to determine whether the efficacy seen in animal models translates to human patients,” Dr. Pieper explained.

    “Additional next steps for the laboratory research include pinpointing which aspects of brain energy balance are most important for recovery, identifying and evaluating complementary approaches to Alzheimer’s reversal, and investigating whether this recovery approach is also effective in other forms of chronic, age-related neurodegenerative disease.” 

    Key Questions Answered:

    Q: What did researchers discover about NAD+ in Alzheimer’s disease?

    A: They found that a severe decline in NAD+ is a major driver of Alzheimer’s pathology, disrupting energy balance and damaging key brain systems.

    Q: Can restoring NAD+ actually reverse advanced Alzheimer’s effects?

    A: Yes. In two distinct Alzheimer’s mouse models, restoring NAD+ balance repaired structural and functional brain damage and fully restored cognitive performance.

    Q: Why is P7C3-A20 different from common NAD+ supplements?

    A: Over-the-counter NAD+ precursors can push NAD+ to unsafe levels, but P7C3-A20 helps the brain maintain proper NAD+ balance under stress without causing harmful elevations.

    Editorial Notes:

    • This article was edited by a Neuroscience News editor.
    • Journal paper reviewed in full.
    • Additional context added by our staff.

    About this Alzheimer’s disease research news

    Author: Ansley Kelm
    Source: University Hospitals Cleveland Medical Center
    Contact: Ansley Kelm – University Hospitals Cleveland Medical Center
    Image: The image is credited to Neuroscience News

    Original Research: Open access.
    Pharmacologic reversal of Alzheimer’s disease in mice reveals potential therapeutic nodes in human brain” by Kalyani Chaubey et al. Cell Reports Medicine