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Only a handful of researchers manage to publish one or more papers per year
First, do no harm.
Hippocrates (via medicalschool)
This is the line that has gotten me through life.
One of the answers to the topic: Visually stunning math concepts which are easy to explain at Mathematics Stack Exchange.
I think if you look at this animation and think about it long enough, you’ll understand:
Why circles and right-angle triangles and angles are all related
Why sine is opposite over hypotenuse and so on
Why cosine is simply sine but offset by pi/2 radians
Peter Joseph on structural violence, from this video.
Who is Peter Joseph? Browse my archive of related posts for a proper introduction.
What is space?
Three contenders for the theory of everything converge on one mindblowing idea - our universe was born in a split second when nothing and nowhere was connected
Full story: http://www.newscientist.com/article/mg22229731.800-goodbye-big-bang-hello-big-silence.html
via New Scientist.
The amygdala is a key “fear center” in the brain. Alterations in the development of the amygdala during childhood may have an important influence on the development of anxiety problems, reports a new study in the current issue of Biological Psychiatry.
Researchers at the Stanford...
With all the hype surrounding the untapped abounding resources of cannabis - medicinally, agriculturally, or otherwise undetermined knowns as of yet - the pictures above provide you with a glimpse into the beauty of the plant, unfettered from government or political divides or opinion.
Sativa and Indica strains of cannabis get their close up through a scanning electron microscope in Ford McCann’s book “Cannabis Under The Microscope: A Visual Exploration of Medicinal Sativa and C. Indica.”
Source reference: LeafScience
Want more SEM photography? Wander over to Rose-Lynn Fisher’s site and indulge in her gorgeous book’s ‘BEE’ and ‘The Topography of Tears’
The other side of the Moon, this giant rock, four football fields long, just silently tumbled past us. Glad it missed.
The original Jurassic Park
When it first screened in 1925, The Lost World caused a sensation. Legendary magician Harry Houdini said that the images were “conjured from the ether.” The New York Times proclaimed that if the dinosaur stars were fake, they were masterpieces.
The film features the pioneering stop motion effects of Willis O’Brien. After his initial experiments with clay figures, he progressed to building puppets with articulated metal skeletons and rubber skin. The models even contained a bladder inside the skeleton that could be inflated and deflated to give the illusion of breathing. As Graham Edwards writes:
"I find it incredible that, in an era when just getting the damn things to move at all was magic of the highest order, O’Brien understood exactly what he needed to do to make them move convincingly – and cared enough to make sure it was done.”
The Lost World’s success led not only to other dinosaur-centric films such as Jurassic Park, but was also a significant predecessor to our modern day special effect-filled action films.
Watch: Into the Archives of Animation →
Section showing the left kidney in situ from the front.
Max Brödel, from Diseases of the kidneys, ureters and bladder, by Howard Atwood Kelly, New York, London, 1922.
Exoskeleton of a soil mite. Source: http://www.the-scientist.com/?articles.view/articleNo/40155/title/Image-of-the-Day--Elaborate-Exoskeleton/
We have destroyed the forests, eroded the topsoil, changed the composition of the atmosphere, depleted the protective ozone layer, tampered with the climate, poisoned the air and the waters. We have become predators on the biosphere – full of arrogant entitlement, always taking and never giving back. And so, we are now a danger to ourselves and the other beings with whom we share the planet.
Carl Sagan, Billions and Billions (1997) There is an opportunity to save what is left, I really wonder if it will be used. (via sci-universe)
Sleep After Learning Strengthens Connections Between Brain Cells and Enhances Memory
In study published today in Science, researchers at NYU Langone Medical Center show for the first time that sleep after learning encourages the growth of dendritic spines, the tiny protrusions from brain cells that connect to other brain cells and facilitate the passage of information across synapses, the junctions at which brain cells meet. Moreover, the activity of brain cells during deep sleep, or slow-wave sleep, after learning is critical for such growth.
The findings, in mice, provide important physical evidence in support of the hypothesis that sleep helps consolidate and strengthen new memories, and show for the first time how learning and sleep cause physical changes in the motor cortex, a brain region responsible for voluntary movements.
“We’ve known for a long time that sleep plays an important role in learning and memory. If you don’t sleep well you won’t learn well,” says senior investigator Wen-Biao Gan, PhD, professor of neuroscience and physiology and a member of the Skirball Institute of Biomolecular Medicine at NYU Langone Medical Center. “But what’s the underlying physical mechanism responsible for this phenomenon? Here we’ve shown how sleep helps neurons form very specific connections on dendritic branches that may facilitate long-term memory. We also show how different types of learning form synapses on different branches of the same neurons, suggesting that learning causes very specific structural changes in the brain.”
On the cellular level, sleep is anything but restful: Brain cells that spark as we digest new information during waking hours replay during deep sleep, also known as slow-wave sleep, when brain waves slow down and rapid-eye movement, as well as dreaming, stops. Scientists have long believed that this nocturnal replay helps us form and recall new memories, yet the structural changes underpinning this process have remained poorly understood.
To shed light on this process, Dr. Gan and colleagues employed mice genetically engineered to express a fluorescent protein in neurons. Using a special laser-scanning microscope that illuminates the glowing fluorescent proteins in the motor cortex, the scientists were then able to track and image the growth of dendritic spines along individual branches of dendrites before and after mice learned to balance on a spin rod. Over time mice learned how to balance on the rod as it gradually spun faster. “It’s like learning to ride a bike,” says Dr. Gan. “Once you learn it, you never forget.”
After documenting that mice, in fact, sprout new spines along dendritic branches, within six hours after training on the spinning rod, the researchers set out to understand how sleep would impact this physical growth. They trained two sets of mice: one trained on the spinning rod for an hour and then slept for 7 hours; the second trained for the same period of time on the rod but stayed awake for 7 hours. The scientists found that the sleep-deprived mice experienced significantly less dendritic spine growth than the well-rested mice. Furthermore, they found that the type of task learned determined which dendritic branches spines would grow.
Running forward on the spinning rod, for instance, produced spine growth on different dendritic branches than running backward on the rod, suggesting that learning specific tasks causes specific structural changes in the brain.
“Now we know that when we learn something new, a neuron will grow new connections on a specific branch,” says Dr. Gan. “Imagine a tree that grows leaves (spines) on one branch but not another branch. When we learn something new, it’s like we’re sprouting leaves on a specific branch.”
Finally, the scientists showed that brain cells in the motor cortex that activate when mice learn a task reactivate during slow-wave deep sleep. Disrupting this process, they found, prevents dendritic spine growth. Their findings offer an important insight into the functional role of neuronal replay—the process by which the sleeping brain rehearses tasks learned during the day—observed in the motor cortex.
“Our data suggest that neuronal reactivation during sleep is quite important for growing specific connections within the motor cortex,” Dr. Gan adds.
(Image: Shutterstock)
“I am a reasonably emotional person, and I see no reason why that’s incompatible with being a scientist. Even if we learn about how everything works, that doesn’t mean anything at all. You can reduce how an impala leaps to a bunch of biomechanical equations. You can turn Bach into contrapuntal equations, and that doesn’t reduce in the slightest our capacity to be moved by a gazelle leaping or Bach thundering. There is no reason to be less moved by nature around us simply because it’s revealed to have more layers of complexity than we first observed.”
— Robert Sapolsky (via quotablescientists)
CAPSAICIN - 8-Methyl-N-vanillyl-trans-6-nonenamide.
Mol. weight: 305.41 g/mol
CAS#: 404-86-4
White/off-white crystalline powder
Melt. P: 65 *C, Boil. P: 210-220 *C @ 0.01 mm Hg
Toxicity: LD50 (mice) oral 47.2 mg/kg, dermal 512 mg/kg
Mutagenic for bacteria/yeast
3x more soluble in oil than water, considered hydrophobic
Capsaicin is a naturally occurring alkaloid commonly found in the fruit of the capsicum genus, it is one of the major compounds that give some chilli peppers a pungent flavour. Chilli peppers also contain a mixture of the lesser-known capsaicinoids such as dihydrocapsaicin: (credit to wikipedia for table) Capsaicin has many clinical uses, it can deplete the sensory neuropeptides produced by the TRPV1 receptor (in response to pain) and provides analgesia by causing a chain of events which defunctionalizes the nociceptive fibres. This essentially means that TRPV1 receptors which are activated by capsaicin become resistant to stimuli including pressure and pain until they exit the long refractory state. The capsaicin TRPV1 activation also results in increases in catecholamine, therefore increased lipid-oxidation, and one particular study (Ludy and Mattes, 2011) also noted a decrease in appetite. The pure compound capsaicin also cause vasodilation and inhibits platelet aggregation. A large quantity of research has recently been conducted to establish any anti-cancerous qualities of capsaicin, however the results and conclusions have been highly variable and thus will not be summarised here. References/Further Reading:
Cassileth, B. “Capsaicin.” Oncology 15 Apr. 2010: p375.
Surinder Kumar Sharma, Amarjit Singh Vij, Mohit Sharma, Mechanisms and clinical uses of capsaicin, Eu Journ Pharmacology, Vol. 720, 2013, p55-62
Baskaran Thyagarajan, Natalia Krivitskaya, Joseph G. Potian, Kormakur Hognason, Carmen C. Garcia, and Joseph J. McArdle. Capsaicin Protects Mouse Neuromuscular Junctions from the Neuroparalytic Effects of Botulinum Neurotoxin A. J Pharmacol Exp Ther. 2009. 331. p361-371.
C. Maihofner, M.L. Heskamp. Prospective, non-interventional study on the tolerability and analgesic effectiveness over 12 weeks after a single application of capsaicin 8% cutaneous patch in 1044 patients with peripheral neuropathic pain: first results of the QUEPP study. Curr. Med. Res. Opin., 29 (2013), pp. 673–683