The women of NASA
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The women of NASA
Very important to see and share…
Trees are sanctuaries. Whoever knows how to speak to them, whoever knows how to listen to them, can learn the truth. They do not preach learning and precepts, they preach, undeterred by particulars, the ancient law of life.
Hermann Hesse (via currentsinbiology)
It is possible that many of our current neurological disorders have a compromised blood brain barrier component, substances are reaching the brain that don’t belong there, inflammation… How ironic that the “importance” of this research is touted as possible insight into manipulating the blood brain barrier to deliver “therapeutics” for those very neurological disorders. Why not just work on using the information to prevent the barrier from being breached in the first place?
Unlocking the barrier: Surprising role of omega-3 fatty acids in keeping the blood-brain barrier closed
Already extolled for their health benefits as a food compound, omega-3 fatty acids now appear to also play a critical role in preserving the integrity of the blood-brain barrier, which protects the central nervous system from blood-borne bacteria, toxins and other pathogens, according to new research from Harvard Medical School.
Reporting in the May 3 issue of Neuron, a team led by Chenghua Gu, associate professor of neurobiology at Harvard Medical School, describes the first molecular explanation for how the barrier remains closed by suppressing transcytosis – a process for transporting molecules across cells in vesicles, or small bubbles. They found that the formation of these vesicles is inhibited by the lipid composition of blood vessel cells in the central nervous system, which involves a balance between omega-3 fatty acids and other lipids maintained by the lipid transport protein Mfsd2a.
While the blood-brain barrier is a critical evolutionary mechanism that protects the central nervous system from harm, it also represents a major hurdle for delivering therapeutic compounds into the brain.
Benjamin J. Andreone, Brian Wai Chow, Aleksandra Tata, Baptiste Lacoste, Ayal Ben-Zvi, Kevin Bullock, Amy A. Deik, David D. Ginty, Clary B. Clish, Chenghua Gu. Blood-Brain Barrier Permeability Is Regulated by Lipid Transport-Dependent Suppression of Caveolae-Mediated Transcytosis. Neuron, 2017; 94 (3): 581 DOI: 10.1016/j.neuron.2017.03.043
Normal brain blood vessels completely contain a fluorescent dye (left). Vessels without the lipid transport protein Mfsd2a show a leaky blood-brain barrier. Credit: Gu Lab/Harvard Medical School
#1976 #gophillies #tbt #veteransstadium (at Veterans Stadium)
So nice to have the windows open this beautiful evening! #paperwhites #grapehyacinths #fullmoon #pinkmoon (at Wyndmoor, Pennsylvania)
(Image caption: Mitochondria are membrane-bound organelles present in eukaryotic cells. Their essential role is to supply cells with energy in the form of ATP. Mitochondrial dysfunction is implicated in a range of diseases, including Alzheimer’s)
Power outage in the brain may be source of Alzheimer’s
On Nov. 25, 1901, a 51-year-old woman is admitted to a hospital in Frankfurt, Germany, displaying a bizarre constellation of symptoms. Her behavior is erratic. She shows signs of paranoia as well as auditory hallucinations, disorientation and severe memory impairment. Asked to write her own name, she manages “Mrs.,” then lingers over the page, unable to remember the rest. “I have lost myself,” she tells the attending physician.
Over time, she will withdraw into her own inscrutable universe, before dying on April 9, 1906.
The tragic case of Auguste Deter might have vanished into the recesses of medical history, but for the following fact: Her doctor, Alois Alzheimer, made a thorough examination of her medical condition, including her excised brain, discovering the telltale amyloid plaques and neurofibrillary tangles characteristic of her illness. Auguste Deter was the first person diagnosed with Alzheimer’s disease.
Today, society faces an epidemic of Alzheimer’s, with some 5 million afflicted in the U.S. alone. The number is projected to swell to 14 million by midcentury, according to the Centers for Disease Control and Prevention. Of the top 10 leading fatal illnesses, Alzheimer’s remains the only one that cannot be prevented, treated or cured.
In new research appearing in the journal Alzheimer’s and Dementia, Diego Mastroeni, Paul Coleman and their colleagues at the ASU-Banner Neurodegenerative Disease Research Center (NDRC) and the Biodesign Center for Bioenergetics investigate the role of mitochondria in Alzheimer’s disease pathology. Mitochondria act as energy centers for cells and are of central importance in health and disease.
The study builds on earlier work suggesting gene mutations affecting mitochondrial function may be critical in the development — and pitiless progression — of the disease.
“Age-related neurodegenerative diseases, like Alzheimer’s, progress over a long period of time before they become clinically apparent. The earliest physiological and molecular events are largely unknown,” said Mastroeni. “Findings from our laboratory have uncovered early expression changes in nuclear-encoded, but not mitochondrial-encoded mRNAs occurring in one’s early 30s, giving us a glimpse into what we suspect are some of the earliest cellular changes in the progression of Alzheimer’s disease.”
Results of the new study show that specific classes of genes associated with mitochondrial cell respiration display reduced expression levels in patients with Alzheimer’s disease, compared with normal patients.
The study also examines gene expression in subjects whose brains show an intermediate level of illness known as mild cognitive impairment. Here, the opposite effect is observed, with relevant genes exhibiting increased levels of expression. The authors suggest this observation may point to some kind of compensatory mechanism in the brain attempting to stave off the disease in its earlier stages.
Further, the study proposes that restoring a specific set of damaged genes linked to mitochondrial function and located in the nuclear DNA of cells may offer a promising strategy for halting the disease’s advance.
Assault on identity
Alzheimer’s — the most common form of dementia — is a progressive, degenerative disease of the brain. While commonly associated with elderly individuals, this devastating illness is now believed to have its origins much earlier, infiltrating the nervous system decades before the onset of clinical symptoms. Indeed, the greatest obstacle to successful treatment of Alzheimer’s is the fact that the disease is typically not recognized until its progress has irreparably ravaged the brain.
The disease often begins with mild memory loss, which may interfere with normal conversation. While advancing age remains the leading risk factor for Alzheimer’s, some individuals are also genetically predisposed. Other risk factors include high cholesterol, heart disease, stroke and high blood pressure. Today, Alzheimer’s is the fifth-leading cause of death in adults 65-85 years old.
Despite the increasingly pronounced effects of dementia, a definitive diagnosis of Alzheimer’s disease usually requires the post-mortem examination of brain tissue and identification of two stereotypic symptoms, known as plaques and tangles. More recently, new imaging technology has enabled researchers to detect these symptoms in living brains, though Coleman is cautious about their interpretation:
“Although plaques and tangles remain as the definitive neuropathological hallmark of the disease, plaques do not correlate at all with degree of cognitive impairment in [Alzheimer’s] and tangles correlate only slightly,” he said. “We further know that plaques and tangles are late comers in the cascade of events that cause the dementia of [Alzheimer’s].”
Alzheimer’s is believed to account for 60-70 percent of dementia cases. As the disease progresses, symptoms become more severe, including erosion of language ability, physical disorientation and behavioral transformations, often involving the withdrawal from family and society. Over time, bodily functions are lost, ultimately leading to death. Life expectancy for Alzheimer’s patients varies, but three to nine years following diagnosis is typical.
Quick energy
Mitochondria — membrane-bound organelles found in all eukaryotic organisms — are often called the powerhouses of the cell. Through a process known as oxidative phosphorylation, they produce most of the cell’s chemical energy in the form of adenosine triphosphate or ATP.
In addition to supplying cellular energy, mitochondria are involved in cell signaling, cellular differentiation and cell death, as well as in cellular growth and the maintenance of the cell cycle.
Because mitochondria play such an important role in the cell, mitochondrial dysfunction has been implicated in a broad range of illness, including cardiovascular disease, autism, schizophrenia, bipolar disorder, epilepsy, stroke, Lou Gehrig’s disease and diabetes along with forms of dementia including Alzheimer’s.
Unsurprisingly, defects in mitochondrial function more severely affect energy-hungry organ systems in the body, particularly muscles, the GI tract and the brain — an organ making up just 2 percent of a person’s weight while consuming 20 percent of the body’s total energy budget.
Mitochondria are unique among the cell’s organelles, as they possess their own DNA, distinct from the DNA contained within the cell’s nucleus. This strange state of affairs is due to mitochondrial evolution. Mitochondria are descended from free-living bacteria that colonized other cells some 2 billion years ago. After being incorporated into nucleated cells, these endosymbionts, as they are known, lost much of their original machinery, yet retained their own complement of DNA.
In addition to the role of mitochondrial dysfunction in disease, the gradual degradation of mitochondrial integrity is believed to play a central role in the normal process of aging.
Broken genes
The current study examines tissue from the hippocampus, a structure critical for memory and one severely impacted by the advance of Alzheimer’s. Using microarray technology, the authors examined hippocampal tissue from an aging cohort-44 normal brains from 29-99 years of age, 10 with mild cognitive impairment and 18 with Alzheimer’s disease.
Gene expression was examined for two sets of genes, 1 encoding mitochondrial DNA and the other, in the nuclear DNA. The two sets of genes both coded for proteins associated with a mitochondrial complex essential for oxidative phosphorylation (OXPHOS), producing energy in the form of ATP for the cell.
Intriguingly, while the mitochondrial genes themselves were largely unaffected, the nuclear genes associated with the OXPHOS complex underwent significant modification, depending on the tissues examined. The microarray data revealed substantial down-regulation of nuclear-encoded OXPHOS genes in Alzheimer’s tissue, a finding also found in normally aging brains.
The same genes, however, were up-regulated in the case of mild cognitive impairment, a precursor to Alzheimer’s disease. The authors suggest this effect may be due to a compensatory mechanism in the brain in response to early pathology.
The findings are consistent with earlier work establishing that accumulations of amyloid beta (Aβ) in neurons, a hallmark of Alzheimer’s, are directly implicated in mitochondrial dysfunction. The pronounced effect on nuclear-encoded but not mitochondrial-encoded OXPHOS genes may point to dysfunctions in the transport of molecules from the cell nucleus to the mitochondria.
“Our work on mitochondria offers the promise of a reliable marker appearing earlier in the course of the disease — one which more closely correlates with the degree of dementia than the current diagnostic of plaques and tangles,“ Coleman said.
Precise mechanisms of mitochondrial decline in aging and Alzheimer’s have yet to be teased out and will be the focus of continuing research. The study suggests that therapies aimed at restoring function in nuclear-encoded OXPHOS genes may provide an exciting new avenue for treatment of Alzheimer’s.
A throwback in celebration of Barbara Kruger’s birthday! In fall 2010, the artist designed a site-specific installation at the corner of Washington and Gansevoort Streets, where the new Whitney now stands.
A throwback in celebration of Barbara Kruger’s birthday! In fall 2010, the artist designed a site-specific installation at the corner of Washington and Gansevoort Streets, where the new Whitney now stands.
A beautiful celebration of #mlk day with the #philadelphiaorchestra & #choirs from #CAPA at #girardcollege. Really a magnificent program! #yannicknezetseguin! #letfreedomring #bachmagnificat (at Girard College (Chapel))
Protein linked to high risk of Alzheimer’s can be removed from brain without hindering learning, memory
A protein linked to higher risk of Alzheimer’s can be removed from the brains of mice without hindering memory and learning, according to a study that addresses whether potential therapeutics targeting this protein would have detrimental side effects.
The study from the Peter O’Donnell Jr. Brain Institute also showed, however, that the protein’s absence in other parts of the body hinders brain function as blood cholesterol levels rise. This result substantiates previous research that indicated cardiovascular health affects the brain.
Researchers focused on the removal of apolipoprotein E (ApoE), which in a certain form can support the buildup of toxic plaques in the brains of Alzheimer’s patients. Studies elsewhere have sought to determine whether reducing ApoE could be an effective treatment in preventing the disease, but a lingering question has been whether the protein is necessary for healthy brain function.
The study found that mice can maintain their learning and memory when virtually all ApoE is removed from the brain but kept present in the liver to filter cholesterol. Mice that lacked ApoE in both the brain and liver experienced unhealthy cholesterol levels and lost cognitive function.
More research is needed to determine what causes the cardiovascular issues to affect the brain, said Dr. Joachim Herz, the study’s Principal Investigator and Professor of Molecular Genetics, Neuroscience, Neurology and Neurotherapeutics at the O’Donnell Brain Institute at UT Southwestern Medical Center.
But the findings, published in The Journal of Neuroscience, add support to the belief that reducing ApoE in the brain could eventually be a viable therapeutic option for treating Alzheimer’s.
“This approach still holds potential,” said Dr. Herz, holder of the Thomas O. and Cinda Hicks Family Distinguished Chair in Alzheimer’s Disease Research and Director of the Center for Translational Neurodegeneration Research.
ApoE has several roles in the body, including transporting cholesterol and related molecules such as b-amyloid that form plaques in the brains of Alzheimer’s patients if not properly filtered or removed.
The type of ApoE produced by the ApoE gene determines how effectively the amyloid is removed from the brain. ApoE2 is the most effective, ApoE3 is in the middle and ApoE4 is the most likely to allow for the buildup of amyloid plaques. People whose genes produce ApoE4 are at high risk of developing Alzheimer’s.
Studies are ongoing at UT Southwestern and elsewhere to further understand the various effects that ApoE4 removal has on brain and body function.
Dementia: Catching the memory thief
It’s over a hundred years since the first case of Alzheimer’s disease was diagnosed. Since then we’ve learned a great deal about the protein ‘tangles’ and ‘plaques’ that cause the disease. How close are we to having effective treatments – and could we even prevent dementia from occurring in the first place?
You may have heard of the ‘dementia tsunami’. It’s heading our way. As our population ages, the number of cases of dementia is set to rocket, overwhelming our health services and placing an enormous burden on our society.
Only, it’s not quite so simple. A study published last year by Professor Carol Brayne from the Cambridge Institute of Public Health suggested that better education and living standards meant people were at a lower risk of developing the disease than previously thought and so, despite our ageing population, numbers were likely to stabilise – and could even perhaps fall slightly.
Of course, even this more optimistic outlook does not hide the fact that millions of people worldwide will be diagnosed with dementia each year and millions are already living with the condition. An effective treatment for the ‘memory thief’ still seems like a distant prospect.
“Dementia isn’t one disease: it’s a constellation of changes in an individual’s brain, with many underlying causes,” says Brayne. “Most people, by the time they’re in their eighties or nineties, have some of these changes in their brains, regardless of whether or not they ever develop dementia.”
For this reason, Brayne believes we need a radical approach to tackling brain health throughout the course of our lifetime, with a greater emphasis on reduction in the risk of dementia achieved through measures in society that are related to better health in general, such as social and lifestyle changes, in addition to the focus on early therapeutic approaches to preventing or treating the disease through a pharmaceutical approach.
By far the most common and well-known form of dementia is Alzheimer’s disease. Symptoms include memory problems, changes in behaviour and progressive loss of independence.
At a biological level, the disease sees a build-up of two particular types of proteins in the brain: fragments of beta-amyloid clump together in ‘plaques’ between nerve cells, and twisted strands of tau form ‘tangles’ within the nerve cells. These plaques and tangles lead to the death of nerve cells, causing the brain to shrink.
Clinical trials of Alzheimer’s drugs are always going to be difficult, in part because trial participants are patients with advanced stage disease, who have already lost a significant number of nerve cells. But Professor Chris Dobson, who recently helped secure £17 million from the Higher Education Funding Council for England for a new Chemistry of Health Building, including the Centre for Misfolding Diseases, believes that most of the trials to date were destined to fail from the start because of a fundamental lack of understanding of the mechanisms that lead to Alzheimer’s.
Understandably, most of the researchers tackling Alzheimer’s approach the disease as a clinical – or at least a biological – problem. Dobson instead sees it as also being about chemistry and physics. He argues that the protein tangles and plaques – collectively known as aggregates – are demonstrating a physical property similar to the way in which crystals precipitate out of, say, salty water: all they need is a ‘seed’ to kick off the precipitation and the process runs away with itself. “In essence,” he says, “biology is trying to suppress molecules behaving in a physical way.” For his contributions, Dobson has been awarded the 2014 Heineken Prize for Biochemistry and Biophysics.
In 2009, Dobson, together with colleagues Professors Tuomas Knowles and Michele Vendruscolo, published a study that broke down the aggregation process into a combination of smaller steps, each of which could be tested experimentally. It became apparent to the team that drugs were failing in trials because they were targeting the wrong steps. “And this is still happening,” says Vendruscolo. “Companies are still putting small molecules into clinical trials that, when we test them using our methods, we find stand no chance.”
They believe there may be a role to play for ‘neurostatins’, which could do for Alzheimer’s what statins already do to reduce cholesterol levels and prevent heart attacks and strokes. In fact, they may have already identified compounds that might fit the bill.
Professor Michel Goedert from the Medical Research Council Laboratory of Molecular Biology admits that there is a gap between our understanding of Alzheimer’s and our ability to turn this into effective therapies.
“We know much about the causes of inherited forms of Alzheimer’s disease, but this knowledge has so far not led to any therapies,” he says. “It’s clear now that abnormal protein aggregation is central to Alzheimer’s disease, but we don’t know the mechanisms by which this aggregation leads to neurodegeneration.” Goedert himself played an instrumental part in studies that implicated the aggregation of tau protein in Alzheimer’s disease and other neurodegenerative diseases, work that led to him being awarded the 2014 European Grand Prix from the Paris-based Foundation for Research on Alzheimer’s Disease.
“I don’t think we should talk of a cure,” says Goedert. “At best, we will be able to halt the disease. Prevention will be much more important.” Part of the problem, he says, lies in the fact that there is no absolute way of identifying those at risk of developing Alzheimer’s disease.
The market for an Alzheimer’s drug is massive, which is why pharmaceutical companies are racing to develop new drugs. Goedert doesn’t believe we will ever find a single ‘magic bullet’, but will need to use combination therapies – in the same way that we treat other diseases, such as HIV – with each drug targeting a particular aspect of the disease.
Professor David Rubinsztein from the Cambridge Institute for Medical Research agrees with Goedert that we need to look at preventing Alzheimer’s rather than just focusing on treating the disease. He, too, believes in the concept of neurostatins. “These compounds would be safe, well tolerated by most people and generally good for you; you could take them for many years before the onset of disease,” he says. “Then we wouldn’t need to worry about identifying people at highest risk of the disease – everyone could take them.”
23 science facts we didn't know at the start of 2016
1. Gravitational waves are real. More than 100 years after Einstein first predicted them, researchers finally detected the elusive ripples in space time this year. We’ve now seen three gravitational wave events in total.
2. Sloths almost die every time they poop, and it looks agonising.
3. It’s possible to live for more than a year without a heart in your body.
4. It’s also possible to live a normal life without 90 percent of your brain.
5. There are strange, metallic sounds coming from the Mariana trench, the deepest point on Earth’s surface. Scientists currently think the noise is a new kind of baleen whale call.
6. A revolutionary new type of nuclear fusion machine being trialled in Germany really works, and could be the key to clean, unlimited energy.
7. There’s an Earth-like planet just 4.2 light-years away in the Alpha Centauri star system - and scientists are already planning a mission to visit it.
8. Earth has a second mini-moon orbiting it, known as a ‘quasi-satellite’. It’s called 2016 HO3.
9. There might be a ninth planet in our Solar System (no, Pluto doesn’t count).
10. The first written record demonstrating the laws of friction has been hiding inside Leonardo da Vinci’s “irrelevant scribbles” for the past 500 years.
11. Zika virus can be spread sexually, and it really does cause microcephaly in babies.
12. Crows have big ears, and they’re kinda terrifying.
13. The largest known prime number is 274,207,281– 1, which is a ridiculous 22 million digits in length. It’s 5 million digits longer than the second largest prime.
14. The North Pole is slowly moving towards London, due to the planet’s shifting water content.
15. Earth lost enough sea ice this year to cover the entire land mass of India.
16. Artificial intelligence can beat humans at Go.
17. Tardigrades are so indestructible because they have an in-built toolkit to protect their DNA from damage. These tiny creatures can survive being frozen for decades, can bounce back from total desiccation, and can even handle the harsh radiation of space.
18. There are two liquid states of water.
19. Pear-shaped atomic nuclei exist, and they make time travel seem pretty damn impossible.
20. Dinosaurs had glorious tail feathers, and they were floppy.
21. One third of the planet can no longer see the Milky Way from where they live.
22. There’s a giant, 1.5-billion-cubic-metre (54-billion-cubic-foot) field of precious helium gas in Tanzania.
23. The ‘impossible’ EM Drive is the propulsion system that just won’t quit. NASA says it really does seem to produce thrust - but they still have no idea how. We’ll save that mystery for 2017.
Some good (and interesting!) news from this shitfuck year
The Nuclear Pore Complex
infographics by The Scientist
Tomi Lahren is a terrible person.
Not misunderstood. Or just a conservative. Or capital letter White. Or even very problematic. No, she is an abjectly awful person. She says abhorrent and hateful things, and has leveraged this abhorrence and hate to give herself a larger platform to infect more people with it and make more money off of it. She is willfully and dangerously ignorant, is either unaware of or unconcerned with historical context, and also seems to have no problem inciting violence against people protesting and brutalized by it. If Heaven exists — and I believe it does — and what we believe to be true about Heaven is actually true, if she died today she would not be there tomorrow.
She is also young, petite, and very blonde; characteristics that, in tandem, are considered by very many people to be the three most desirable things a woman can be. If she appeared on screen and the TV happened to be on mute and you happened to not be paying much attention to it, you could easily mistake her for Kristen Bell or Emilia Clarke.
This — her appearance and youth and physical presence — seems to be incongruent with who she actually is. It’s not at all, of course. She is, again, a terrible fucking person. (Do not forget this.) But everything America encourages us to believe about how terrible and dangerous people are supposed to look and sound (not like Tomi Lahren) and the type of people people who look like Tomi Lahren are supposed to be (not terrible and dangerous) suggests otherwise.
This particular strain of socialization also ignores history. Tomi Lahrens are directly responsible for false arrests, beatings, whippings, lynchings, and even executions. If you watch the footage of Ruby Bridges desegregating William Frantz Elementary, or Ernest Green, Elizabeth Eckford, Jefferson Thomas, Terrence Roberts, Carlotta Walls LaNier Minnijean Brown, Gloria Ray Karlmark, Thelma Mothershed, and Melba Pattillo Beals desegregating Little Rock Central High, you’ll see dozens of Tomi Lahrens on the front lines, clutching signs, hurling stones, and spewing hate; their pretty little blonde fucking faces twisted, evil, and cruel.
Honeybee Memories Could Unlock Another Piece of Alzheimer’s Puzzle
Researchers show a molecular mechanism that regulates memory specificity over time, and point to how understanding memory in honeybees could help us combat degenerative brain diseases.
The research is in Frontiers in Molecular Neuroscience. (full open access)
A microRNA plays role in major depression
A tiny RNA appears to play a role in producing major depression, the mental disorder that affects as many as 250 million people a year worldwide.
Major depression, formally known as major depressive disorder, or MDD, brings increased risk of suicide and is reported to cause the second-most years of disability after low-back pain.
University of Alabama at Birmingham researchers have found that amounts of this microRNA are significantly elevated in the brains of experimental rats with induced depression from corticosterone treatment, in the post-death brains of humans diagnosed with MDD and in peripheral blood serum from living patients with MDD, according to a study by led by Yogesh Dwivedi, Ph.D., the Elesabeth Ridgely Shook Endowed Professor and director of Translational Research, UAB Mood Disorders Program, Department of Psychiatry.
This microRNA — miR-124-3p — is thus a potential therapeutic target for novel drug development, and it can serve as a putative biomarker for MDD pathogenesis.
Micro RNAs, or miRNAs, interact with messenger RNA after the miRNA is exported from the cell nucleus and processed by a team of enzymes. MiRNAs are robust players of gene regulation in cells, and there are more than 1,300 different miRNAs at work in the brain.
In previous work, Dwivedi and colleagues had seen that a set of miRNAs were coordinately regulated in the prefrontal cortex of the brains of MDD subjects. The prefrontal cortex, known for controlling the executive function of the brain, is critically involved in the response to stress, by regulating the endocrine glands known as the hypothalamic-pituitary-adrenal axis. The adrenal gland produces the stress hormone cortisol in humans and corticosterone in rodents.
To see if stress plays a role in the coordinated regulation of prefrontal cortex miRNAs, the UAB researchers then turned to a rat depression model. They found that rats treated with corticosterone to induce depression-like behavior showed coordinated dysregulation of miRNAs in the prefrontal cortex, and the most significantly affected miRNA was miR-124-3p.
Their current paper, previewed in the journal Neuropsychopharmacology, examined the relevance of miR-124-3p in MDD pathogenesis.
Using computer analysis of genome sequences, the researchers:
Identified eight highly potential target genes for binding by miR-124-3p, genes whose function is also reported to be critical in brain physiology during stress and MDD pathogenesis. Four of these potential target genes were significantly down-regulated in the prefrontal cortex of corticosterone-treated rats, and this down-regulation inversely correlated with miR-124-3p levels.
Showed that the four genes that were significantly down-regulated have evolutionarily conserved miR-124-3p binding sites across a wide range of higher vertebrate species.
In neuroblastoma cells grown in culture:
Overexpression of miR-124-3p caused significant down-regulation for two of the potential target genes.
In prefrontal cortex neurons from depression-model rats treated with corticosterone:
Significant binding by miR-124-3p to two of the potential target genes was seen, as measured from immunoprecipitated RNA-induced silencing complexes.
The locus-specific origin of for mature miR-124-3p was identified at a site on chromosome 3, out of three possible chromosomal sites, and two CpG “islands” that can act as sites from epigenetic modification by DNA methylation were identified near the miR-124 gene promoter on chromosome 3.
This miR-124-3 promoter was found to be hypo-methylated in the corticosterone-treated rats, and the gene expression of one DNA methyltransferase — Dnmt3a — was significantly repressed.
For humans:
In post-mortem brains of 15 controls and 15 MDD subjects, the MDD group showed significant increase in the expression of miR-124-3p, and expression of three of the potential target genes was significantly lower.
The level of miR-124-3p was significantly higher in the serum of 18 antidepressant-free MDD patients, as compared with 17 healthy controls.
“Altogether,” the UAB researchers conclude, “this is the first comprehensive and mechanistic study at in-vitro and in-vivo levels which demonstrates that, not only are there consistent depression-associated changes in the expression of miR-124-3p across different species, but also the genes that are targets of this miRNA are highly dysregulated, showing altered response at functional level.”
The Cooper town neighborhood gang #1976 #tbt @nomadvintage