On a per weight basis, humans pack in more neurons than any other species. That’s what makes us so smart!
From the TED-Ed Lesson What percentage of your brain do you use? - Richard E. Cytowic
Animation by TOGETHER
The Bright Sessions

PR's Tumblrdome

blake kathryn
Cosmic Funnies
untitled
Cosimo Galluzzi
almost home
🪼
noise dept.

shark vs the universe
RMH
art blog(derogatory)
EXPECTATIONS

ellievsbear
Cookie Run:Kingdom Official!
Phantogram Three
hello vonnie

No title available
Show & Tell
PUT YOUR BEARD IN MY MOUTH
seen from Brazil

seen from United States

seen from Iraq

seen from United States

seen from Australia

seen from South Africa

seen from Türkiye
seen from Indonesia

seen from Vietnam
seen from India

seen from Australia

seen from United States
seen from United States

seen from France

seen from Australia
seen from Germany
seen from China

seen from United Kingdom

seen from Australia
seen from Venezuela
@medicine1930473
On a per weight basis, humans pack in more neurons than any other species. That’s what makes us so smart!
From the TED-Ed Lesson What percentage of your brain do you use? - Richard E. Cytowic
Animation by TOGETHER
From the TED-Ed Lesson Poison vs. venom: What’s the difference? - Rose Eveleth
Animation by TED-Ed
neurons tangled in a sea of glia
colored SEM
credit: Thomas Deerinck
Unipolar neuronlar ---> otonom ss'e ait bazı ganglionlarda, cranial sinirlerin V,VII,IX ve X. duyu ganglionlarında bulunur. Pseudo-unipolar neuronlar---> arka kök ganglionunda bulunur. Bipolar neuronlar--> ganglion vestibulare gang. cochlare koku yolları retina da bulunur. Multipolar neuronlar--> beyin ve omurilikte bulunur.
Merhaba arkadaşlar Sinir sistemiyle dönüyorum
Sinir sistemi “ektodermden” köken alır. Embriyonun sırtındaki ektodermin kalınlaşmasıyla nöral plak gelişir. 3.haftadan itibaren lamina nöralis, crista nöralis, sulcus nöralis ve nöral tüp gelişir. Nöral tüpün “pars cranialis” dediğimiz ön bölümünden primer beyin kesecikleri gelişir. Bunlar : PROSENCEPHALON MESENCEPHALON RHOMBENCEPHALON dur.
Nöral tüpün “pars spinalis” denen arka kısmından da “Medulla Spinalis” oluşur.
Rebooting the brain
In 1990, Oregon Health & Science University neurosurgeon Kim Burchiel pioneered the use of a technique called Deep Brain Stimulation in the United States as a last chance therapy for patients with Parkinson’s disease. Burchiel implanted a thin electrical wire into the brains of Parkinson’s patients who had lost much of their ability to control their bodies and for whom therapeutic drugs no longer worked.
By hitting just the right spot in the brain with 180 electrical impulses a second sent from a battery pack implanted near the patient’s shoulder, Burchiel was able to help his Parkinson’s patients regain motor control, some for five or more hours a day.
“This is a success story,” Burchiel says. “It’s a rare procedure in surgery that has proved to the highest level of evidence. There are very few procedures that are proven to this level.”
Throughout the world today, more than 100,000 people afflicted with Parkinson’s and similar movement disorders have received brain implants, about one-tenth the number who might benefit, according to Burchiel. But the idea of hitting tiny targets in the brain as a means of overriding misfiring neurological circuits created intriguing possibilities for neurosurgeons everywhere.
As scientists have begun mapping the brain, experiments using brain implants for people suffering from depression, obsessive-compulsive disorder, obesity, addiction and Alzheimer’s disease have begun to proliferate. But for the last 24 years, Burchiel, the pioneer, was forced to watch as scientists in other states and countries pursued new uses for brain implant.
Read more »
Researchers at Northeastern University in Boston have developed a gene therapy approach that may one day stop Parkinson’s disease (PD) in it tracks, preventing disease progression and reversing its symptoms. The novelty of the approach lies in the nasal route of administration and nanoparticles...
Putting the brakes on Parkinson’s
The earliest signs of Parkinson’s disease can be deceptively mild. The first thing that movie star Michael J. Fox noticed was twitching of the little finger of his left hand. For years, he made light of the apparently harmless tic. But such tremors typically spread, while muscles stiffen up and directed movements take longer to carry out. Research groups led by Armin Giese of LMU Munich and Christian Griesinger at the Max Planck Institute for Biophysical Chemistry in Göttingen have developed a chemical compound that slows down the onset and progression of Parkinson’s disease in mice. The scientists hope that this approach will give them a way to treat the cause of Parkinson’s and so arrest its progress.
The disease usually becomes manifest between the ages of 50 and 60, and results from the loss of dopamine-producing nerve cells in the substantia nigra, which is part of the midbrain. Under the microscope, the affected cells are seen to contain insoluble precipitates made up of a protein called alpha-synuclein. As an early step in the pathological cascade, this protein forms so-called oligomers, tiny aggregates consisting of small numbers of alpha-synuclein molecules, which are apparently highly neurotoxic. By the time the first overt symptoms appear in humans, more than half of the vulnerable cells have already been lost. Many researchers therefore focus on developing methods for early diagnosis of the condition. However, current therapies only alleviate symptoms, so the research teams led by Armin Giese and Christian Griesinger set out to address the underlying cause of nerve-cell death.
Together, the scientists have developed a substance which, in mouse models of the disease, reduces the rate of growth of the protein deposits and delays nerve cell degeneration to a yet unprecedented degree. As a consequence, mice treated with this agent remain disease-free for longer than non-medicated controls. “The most striking feature of the new compound is that it is the first that directly targets oligomers and interferes with their formation,” explains Christian Griesinger, head of the Department of NMR-based Structural Biology and Director at the Max Planck Institute for Biophysical Chemistry. The discovery is the result of years of hard work. “Combining skills from a range of disciplines has been the key to our success. Biologists, chemists, clinicians, physicists, and veterinarians have all contributed to the development of the therapeutic compound,” adds Armin Giese, who leads a research group at LMU’s Center for Neuropathology and Prion Research.
Giese and his colleagues systematically tested 20,000 candidate substances for the ability to block formation of the protein deposits that are typical for the disease. The screen made use of an extremely sensitive laser-based assay developed by Giese years ago when he was working together with Nobel Laureate Manfred Eigen at the Max Planck Institute for Biophysical Chemistry in Göttingen. Some interesting lead compounds identified during the very first phase of the screening program served as starting point for further optimization. Ultimately, one substance proved to be particularly active. Andrei Leonov a chemist in Griesinger’s team, finally succeeded in synthesizing a pharmaceutically promising derivative. This is well tolerated at dosage levels with significant therapeutic effects, can be administered with the food, and penetrates the blood-brain barrier, reaching high levels in the brain. The two teams have already applied for a patent on the compound which they called Anle138b – an abbreviation of Andrei Leonov’s first name and surname.
A complex series of experiments has provided encouraging indications that Anle138b could also be of therapeutic use in humans. These tests involved not only biochemical and structural investigations of Anle138b’s mode of action but also employed several animal models of Parkinson’s which are under study in Munich and in laboratories of the Excellence Cluster “Nanoscale Microscopy and Molecular Physiology of the Brain” in Göttingen. Mice exposed to Anle138b were found to display better motor coordination than their untreated siblings. “We use a kind of fitness test to evaluate muscle coordination,” Giese explains. “The mice are placed on a rotating rod and we measure how long the animals can keep their balance.”
Generally speaking, the earlier the onset of treatment, the longer the animals remained disease free. What’s more, the beneficial effects of Anle138b are not restricted to animals with Parkinson’s disease. “Creutzfeldt-Jakob disease is caused by toxic aggregates of the prion protein,” Griesinger points out. “And here too, Anle138b effectively inhibits clumping and significantly increases survival times.” These findings hint that Anle138b might also prevent the formation of insoluble deposits formed by other proteins, such as the tau protein that is associated with Alzheimer’s disease. Further experiments will address this issue. Anle138b will therefore be a useful research tool in medicine, as it will enable scientists to study the process of oligomer formation in the test-tube and to determine how their assembly is inhibited. The researchers hope ultimately to gain new insights into the mechanisms into how neurodegenerative disorders develop.
The drugs so far available for treatment of Parkinson’s disease only control its symptoms by enhancing the function of the surviving nerve cells in the substantia nigra. “With Anle138b, we may have the first representative of a new class of neuroprotective agents allowing to retard or even halt the progression of conditions such as Parkinson’s or Creutzfeldt-Jakob disease,” Griesinger says. However, he warns that the findings in mice cannot immediately be applied to humans. The next step will be to carry out toxicity tests in non-rodent species. Only if these are successful will clinical trials in patients become a realistic possibility. As clinician Giese emphasizes: “To successfully establish a novel therapeutic agent for treatment of real patients is a laborious task that requires a lot of work as well as serendipity.”
Full article
PubMed: Related Articles
Effects of 6-hydroxydopamine exposure on motor activity and biochemical expression in zebrafish (Danio rerio) larvae.
Zebrafish. 2014 Jun;11(3):227-39
Authors: Feng CW, Wen ZH, Huang SY, Hung HC, Chen CH, Yang SN, Chen NF, Wang HM, Hsiao CD, Chen WF
Abstract ...
Tell-tail MRI image diagnosis for Parkinson’s disease
An image similar in shape to a Swallow’s tail has been identified as a new and accurate test for Parkinson’s disease. The image, which depicts the healthy state of a group of cells in the sub-region of the human brain, was singled out using 3T MRI scanning technology – standard equipment in clinical settings today.
The research was led by Dr Stefan Schwarz and Professor Dorothee Auer, experts in neuroradiology in the School of Medicine at The University of Nottingham and was carried out at the Queen’s Medical Centre in collaboration with Dr Nin Bajaj, an expert in Movement Disorder Diseases at the Nottingham University Hospitals NHS Trust.
The findings have been published in the open access academic journal PLOS one.
The work builds on a successful collaboration with Professor Penny Gowland at the Sir Peter Mansfield Magnetic Resonance Centre at The University of Nottingham.
‘The ‘Swallow Tail’ Appearance of the Healthy Nigrosome – A New Accurate Test of Parkinson’s Disease: A Case-Control and Retrospective Cross-Sectional MRI Study at 3T’ – describes how the absence of this imaging sign can help to diagnose Parkinson’s disease using standard clinical Magnetic Resonance Scanners.
Parkinson’s disease is a progressive neurodegenerative disorder which destroys brain cells that control movement. Around 127,000 people in the UK have the disease. Currently there is no cure but drugs and treatments can be taken to manage the symptoms.
The challenges of diagnosing Parkinson’s
Until now diagnosing Parkinson’s in clinically uncertain cases has been limited to expensive nuclear medical techniques. The diagnosis can be challenging early in the course of the condition and in tremor dominant cases. Other non-licensed diagnostic techniques offer a varying range of accuracy, repeatability and reliability but none of them have demonstrated the required accuracy and ease of use to allow translation into standard clinical practice.
Using high resolution, ultra high filed 7T magnetic resonance imaging the Nottingham research team has already pinpointed the characteristic pathology of Parkinson’s with structural change in a small area of the mid brain known as the substantia nigra. The latest study has shown that these changes can also be detected using 3T MRI technology which is accessible in hospitals across the country. They subsequently coined the phrase the ‘swallow tail appearance’ as an easy recognizable sign of the healthy appearing substantia nigra which is lost in Parkinson’s disease. A total of 114 high-resolution scans were reviewed and in 94 per cent of cases the diagnosis was accurately made using this technique.
New findings give new hope
Dr Schwarz said: “This is a breakthrough finding as currently Parkinson’s disease is mostly diagnosed by identifying symptoms like stiffness and tremor. Imaging tests to confirm the diagnosis are limited to expensive nuclear medical techniques which are not widely available and associated with potentially harmful ionizing radiation.
“Using Magnetic Resonance Imaging (no ionizing radiation involved and much cheaper than nuclear medical techniques) we identified a specific imaging feature which has great similarity to a tail of a swallow and therefore decided to call it the ‘swallow tail sign’. This sign is absent in Parkinson’s disease.”
An experimental anti-inflammatory drug can protect vulnerable neurons and reduce motor deficits in a rat model of Parkinson’s disease, researchers at Emory University School of Medicine have shown.
The results were published Thursday, July 24 in the Journal of Parkinson’s Disease.
The...
Parkinson Disease: Nigrostriatal tract: substantia nigra to striatum
Parkinson’s Disease Symptoms and Causes
Parkinson’s disease is a progressive degenerative disease of the part of the brain called substantia nigra, which controls movement. In people with Parkinson’s disease, this part of the brain slowly stops working. Parkinson’s disease generally affects the elderly but it may also affect young people as young as 40 years of age.