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Famous fossil is not an Archaeopteryx feather after all
Lasers solve the mystery of the missing quill.
- The famous fossilized feather found in the 1860s is from some unknown animal.
- The fossil's missing quill has long kept its identity unknown.
- We're just at the beginning of our awareness of feathered dinosaurs.
Some time in the early 1860s, at the Solnhofen Community Quarry located about halfway between Munich and Nuremburg in Germany, a fossilized feather was discovered in shale deposits. The first mention of it appeared in 1861, in letters from paleontologist Christian Erich Hermann von Meyer — who described its appearance on two facing slabs of stone — to the editor of the German journal "Jahrbuch für Mineralogie". von Meyer proposed the feather be named Archaeopteryx lithographica. Six weeks later, von Meyer again wrote to announce a second discovery: A nearly complete skeleton of a feathered dinosaur found in the same deposits. The closeness of the timing and location caused the two finds to be linked together, with the feather considered the singular piece of evidence — the holotype — of a bird-like dinosaur to be called Archaeopteryx. Now, a new analysis of the fossil using Laser-Stimulated Fluorescence (LSF) has revealed, nearly 160 years later, that the two actually had nothing to do with each other other than proximity. Nature's Scientific Reports published the surprising result.
The case of the missing quill
One of the obstacles to a thorough understanding of the fossil has been that the feather it depicts has no quill, or calamus. Analysis of the calamus would have allowed scientists to ascertain the source of the feather on the animal from which it came. Was it a large primary wing feather, a secondary feather from the smaller secondary wing, or a tail feather called a primary covert?
When the discovery of the feather became public in 1862, the feather was described as having a calamus, and von Meyer drew it with one. However, there's nothing there to the naked eye or when the fossil is viewed under x-ray fluorescence or with UV imaging.
Original drawing by von Meyer, top. Fossil under white light today, bottom
(Kaye, et al)
Enter Laser-Stimulated Fluorescence
A microscopic examination of the fossil revealed to the authors of the new paper, led by Thomas G. Kaye, that there had originally been a quill present, but that "past preparation had engraved around the outline of the feather and inadvertently prepared away the calamus at some unknown point in the past."
The LSF uses a high-powered laser to expose geochemical differences between the fossil and the stone background. The chemicals fluoresce with different colors. In the end, LSF was able to recover the geochemical halo left behind by the missing materials. The halo perfectly matched von Meyer's drawing, as well, providing even more confidence of its accuracy.
The feather is, in fact, a primary covert. But there's something else.
LSF image of feather fossil with calamus halo
(Kaye, et al)
The Archaeopteryx lithographica is not from an Archaeopteryx
In the years since the 1860s, other specimens of feathered dinosaurs have been found, including 11 or 12 specimens of Archaeopteryx, notably one residing in a Berlin museum. While the newly identified primary covert somewhat resembles the Berlin specimen's secondary feathering — its closest match among all existing Archaeopteryx specimens — they're clearly not the same.
Drawing of the 1860s feather superimposed over its closest match from the Berlin specimen
(Kay, et al)
So, whose feather is it?
While it could be that the fossil is of an Archaeopteryx feather not yet catalogued, the greater likelihood is that it belonged to some other, thus far undiscovered feathered dinosaur. The inevitable implication? There were more bird-like dinosaurs in the Jurassic than we realized.
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How can we promote the creation of new neurons - and why is it so important?
- Neurogenesis, the birth of neurons from stem cells, happens mostly before we are born - as we are formed in the womb, we are generating most of what we need after birth.
- After birth, neurogenesis is still possible in two parts of the brain: the olfactory bulb (which is responsible for our sense of smell) and the hippocampus (which is responsible for memory, spatial navigation, and emotional processing).
- Research from the 1960s proves creating new neurons as adults is possible, and modern-day research explains how (and why) we should promote new neuron growth.
Two parts of the brain can continue growing through neurogenesis<img type="lazy-image" data-runner-src="https://assets.rebelmouse.io/eyJhbGciOiJIUzI1NiIsInR5cCI6IkpXVCJ9.eyJpbWFnZSI6Imh0dHBzOi8vYXNzZXRzLnJibC5tcy8yMjkyMzk2NS9vcmlnaW4uanBnIiwiZXhwaXJlc19hdCI6MTYwOTAwODc1MH0.4GDLlZmkwuD0-pJ0s0UWcUoYXMy95a-AM61a_QAlAeA/img.jpg?width=980" id="2e77e" class="rm-shortcode" data-rm-shortcode-id="4e23499fdf3b2185533979083fd02db7" data-rm-shortcode-name="rebelmouse-image" alt="brain made of twigs and plants concept of neurogenesis" />
Neurogenesis is still possible well into adulthood in two very important parts of the human brain.
Image by EtiAmmos on Shutterstock<p>Although most people are aware that aging or bad habits such as heavy alcohol use can contribute to the deterioration of our brains, not many of us give thought to how we can generate new brain cells.</p><p>Neurogenesis, the birth of neurons from stem cells, happens mostly before we are born - as we are formed in the womb, we are generating most of what we need after birth. </p><p><strong>After birth, however, neurogenesis is still possible in two parts of the brain:</strong></p><ul><li>The olfactory bulb, which is a structure of the forebrain that's responsible for our sense of smell. </li><li>The hippocampus, which is a structure of the brain located within the temporal lobe (just above your ears) - this area is important for learning, memory, regulation, of emotions and spatial navigation. </li></ul><p>Of course, when this information first came to light <a href="https://www.ncbi.nlm.nih.gov/pubmed/13860748" target="_blank">back in the 1960s</a>, the next natural question was: How do we promote neurogenesis in those areas where it's still possible? </p><p>Researchers today believe there are activities you can do (some of them may be things you already do on a daily basis) that can promote neurogenesis in your brain. </p><p><strong>Why is it important to promote the growth of new neurons in adulthood?</strong></p><p>We produce an estimated 700 million neurons per day in the hippocampus - this means by the time we reach the age of 50, we will have exchanged the neurons we were born within that area of the brain with new (adult-generated) neurons. </p><p>If we don't promote this exchange with the growth of new neurons, we may block certain abilities these new neurons help us with (such as keeping our memory sharp, for example). </p>
4 ways to promote neurogenesis in your brain<img type="lazy-image" data-runner-src="https://assets.rebelmouse.io/eyJhbGciOiJIUzI1NiIsInR5cCI6IkpXVCJ9.eyJpbWFnZSI6Imh0dHBzOi8vYXNzZXRzLnJibC5tcy8yMjkyMzk2Ni9vcmlnaW4uanBnIiwiZXhwaXJlc19hdCI6MTYyNTE3NjczNH0.qyzh_AIUPKfaQIa1QEq4yTNCAAK9nYkH3HFV9vWXwww/img.jpg?width=1245&coordinates=0%2C0%2C0%2C104&height=700" id="64a68" class="rm-shortcode" data-rm-shortcode-id="ee1307fe2dd61ae425552da56db3c5ff" data-rm-shortcode-name="rebelmouse-image" alt="child playing trumpet concept of learning a new instrument neurogenesis" />
Learning a new instrument helps promote neurogenesis.
Photo by DenisProduction.com on Shutterstock<p><strong>Intermittent fasting</strong></p><p><a href="https://law.stanford.edu/2015/01/09/lawandbiosciences-2015-01-09-intermittent-fasting-try-this-at-home-for-brain-health/" target="_blank">A 2015 Stanford study</a> examined the link between <a href="https://www.healthline.com/nutrition/6-ways-to-do-intermittent-fasting#section1" target="_blank">intermittent fasting</a> and neurogenesis. Calorie restriction and fasting can not only increase synaptic plasticity and promote neuron growth but it can also decrease your risk of developing neurodegenerative diseases and boost cognitive function. </p><p><u>Two of the most common ways you can intermittently fast are: </u></p><ul><li>16 hours per day every day - this is a method where you are able to eat for an 8 hour period of the day and fast for 16 hours of the day. Many people begin their "fast" after dinner, pushing their morning meal far enough towards lunch that most of their "off" eating time happens while they are asleep anyways. </li></ul><ul><li>24 hours every week - this is a method where once a week you fast for an entire day. Some people prefer this method because the rest of the week can resume as normal - but for many, this is a difficult way to fast. </li></ul><p><strong>Traveling to new places</strong></p><p>While traveling is something many of us enjoy — scenic routes and new fun experiences — these things also promote neurogenesis while we're on vacation. <a href="https://www.chicagotribune.com/travel/ct-xpm-2014-01-28-sc-trav-0128-travel-mechanic-20140128-story.html" target="_blank">Paul Nussbaum</a>, a clinical neuropsychologist at the University of Pittsburgh, explains that the mental benefits of traveling are very clear.<br></p><p><em>"When you expose your brain to an environment that's novel and complex or new and difficult, the brain literally reacts. Those new and challenging situations cause the brain to sprout dendrites (dangling extensions) which grow the brain's capacity." </em></p><p><strong>Learning a new instrument</strong></p><p>The mental health benefits of music have long been studied, but did you know that learning a new instrument can promote new neuron growth? </p><p>According to <a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2996135/" target="_blank">this 2010 study</a>, learning to play a new musical instrument is an intense, multisensory motor experience that requires that acquisition and maintenance of skills over your entire lifetime - which of course, promotes the new formation of new neural networks. </p><p>When is the best time to begin learning a new instrument? Childhood, of course. </p><p><em>"Learning to play a new musical instrument in childhood can result in long-lasting changes in brain organization," </em>according to the study mentioned above. </p><p>While learning an instrument in adulthood will also promote neurogenesis, children who began training with a musical instrument before the age of 7 have shown that they have a significantly larger corpus callosum (the area of the brain the allows communication between the two hemispheres of the brain) than many adults. </p><p><strong>Reading novels</strong></p><p>A study from <a href="http://esciencecommons.blogspot.com/2013/12/a-novel-look-at-how-stories-may-change.html" target="_blank">Emory University</a> showed there was an increase in ongoing connectivity in the brains of participants after reading the same (fiction) novel. </p><p>In this study, enhanced brain activity was observed in the region that control physical sensations and movement. Reading a novel, according to lead researcher Gregory Berns, can transport you into the body of the protagonist. </p><p>This ability to shift into another mental state is a vital skill that promotes healthy neurogenesis in those areas of the brain. </p>
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