среда, 4 января 2017 г.

Human brain and teeth evolution not linked — Surprise!

Researchers long thought the human brain (blue) got bigger as our teeth (eccru) got smaller, but a new study tells a different story. Image courtesy of: Aida Gómez-Robles.





Sure, the human brain is a big deal, literally. But if you put the average human in a primate family reunion photo op that included our nearest living relatives, such as chimpanzees, bonobos and gorillas, and told all of them to smile wide for the camera, one thing would be very apparent: when it comes to teeth, man, we puny humans are total lightweights.
For a long time, it’s been assumed that as our brains got bigger and more bodacious, our teeth shrank proportionately. Who needs a giant set of chompers when you’re such a smartypants that you can make tools to slice and dice your food and then cook it over a fire? But a new study says hang on, now — looks like our big brains and tiny teeth aren’t linked after all.
Published today in Proceedings of the National Academy of Sciences, the study compared brain size evolution with reduced tooth size rates in eight hominin species: two australopiths (A. africanus and A. afarensis, roughly 1.9-2.9 million years old), two members of Paranthropus (P. robustus and P. boisei, 900,000-1.2 million years old) and four examples from our own genus Homo (H. habilisH. erectusH. neanderthalensis, from the last 1.7 million years, and modern humans).
Although conventional wisdom has pointed to co-evolution of the big human brain, little human teeth traits, the study showed the rate of brain size evolution varied from one species to the next with occasional bouts of rapid development.
Brain shape evolution, which is also linked to higher cognitive function, seemed to have a generally more stable rate of change. Meanwhile, the reduction in size of teeth, particularly the molars and other chewing (rather than biting) teeth, occurred at a steadier rate that did not appear linked to brain size or shape development.
The fastest “spurt” in brain size increase occurred between H. habilis and H. erectus; overall the trend towards bigger brains is, perhaps no surprise, speediest along the Homo line, leaving Australopithecus and Paranthropus in the dust.
Fun fact: we used to think big brains were needed to fashion stone tools, too, but the world’s oldest known stone tools, described in 2015, date from the age of australopiths, well before our brainiac genus. As we find more hominin fossils and create ever more sophisticated techniques to analyze and understand them, expect more old school ideas to go extinct.
The team concluded that different environmental and behavioral influences were at work in human brain and teeth evolution rates, though speculating on what those influences might have been went beyond the scope of their research.

The Human Body Has Another Organ: The Mesentery

(Credit: J Calvin Coffey/D Peter O’Leary/Henry Vandyke Carter)



To the 78 organs that make up the human body, we can add one more: the mesentery.
Located in our abdominal cavity, the mesentery is a belt of tissue that holds our intestines in place. While anatomists knew it was there, it was always thought to be composed of several different segments, as opposed to being one single structure. This knocked it out of contention for organ status, as our bodily organs must be continuous, as well as provide some vital function to our anatomy.
A new study from researchers at the University Hospital Limerick reveals that the mesentery is actually one single band of tissue, beginning at the pancreas and continuing down through the small intestine and colon, wrapping around these vital organs to hold them tight and help them maintain their structure. It is made of a folded-over ribbon of peritoneum, a type of tissue usually found lining the abdominal cavity.
“Without it you can’t live,” says J. Calvin Coffey, a Limerick University Hospital researcher and colorectal surgeon. “There are no reported instances of a Homo sapien living without a mesentery.”
It was by peeling away the peritoneum and repeated observations that Coffey built his case for the mesentery. In 2012, Coffey’s team determined the mesentery was indeed a single, connected structure. In this most recent study, published in The Lancet, Coffey’s team outlines evidence collected over four years that affirms the mesentery’s organ status. The mesentery is highly integrated with the intestine, he says, and is located in an area of the human body that has not been fully explored — we still, apparently, contain new frontiers.
And, according to The Independent, the seminal medical textbook Gray’s Anatomy was updated in 2015 to include the new definition of the mesentery. However, Coffey isn’t exactly sure when an organ is officially an organ.
“That’s a fascinating question. I actually don’t know who the final arbiter of that is,” says Coffey.
In apes and other creatures that walk on all fours, he says that the structure of the mesentery, and the organs it supports, is slightly different, which affects the layout of their guts. Understanding how and why our digestive system is arranged the way it is could be crucial to our understanding of diseases like Crohn’s and irritable bowel syndrome.
“There are a lot of disease that we are stalled on, and we need to refresh our approach to these diseases,” Coffey says. “Now that we’ve clarified its structure, we can systematically examine it. We’re at a very exciting place right now.”
The era of mesenteric science has begun.

вторник, 3 января 2017 г.

FAVORITE IMAGES OF THE WEEK - 2

NASA
Hurricane Tracker
A NASA mission called the Cyclone Global Navigation Satellite System (CYGNSS), which includes eight small satellites, launched this week. Its goal is to better understand how hurricanes form in order to more accurately predict how and when they will occur. One advantage of this system is that it will focus only on areas around the tropics, where most hurricanes form.

XPRIZE
Patient, Diagnose Thyself
In many ways, the tricorder in Star Trek is the ultimate piece of medical technology: A handheld device that can diagnose any disease in the body. In 2012, tech company Qualcomm created an XPRIZE competition to challenge engineers and doctors to create a device similar to the fictional tool. We took a first look at the two finalists' prototypes, which show us that our future doctor might simply be a tiny, high-tech medical box.

Joshua Stevens/NASA Earth Observatory
Snow Light
The weather these past two weeks has been rough for communities around the Great Lakes. Last week, the region was smothered with several feet of snow, and this week, an arctic air mass piled a few more feet on top. The Visible Infrared Imaging Radiometer Suite (VIIRS) on the Suomi NPP satellite, which can detect even extremely dim light sources, took this image above. The white areas show where the full moon is reflecting off of large piles of snow.

Department of Transportation
Talking Cars
Behind the wheel, humans make mistakes and cause accidents. That's mostly because we have bad communication skills (among other reasons). To make roads safer, the U.S. Department of Transportation wants cars to "talk" to each other. New technology that forces cars to broadcast their surroundings to other vehicles might prevent many accidents in the future.

NASA/JPL-Caltech/Univ. of Arizona
Dry Ice Bubbles
These crazy land formations, which look more like human intestines, can only be found on the south pole of Mars. They form when dry ice (carbon dioxide), which makes up the pole, is punctuated with holes. Over time, air slowly leaks in and puffs up the surface.

T.H. Prettyman and N. Yamashita, Planetary Science Institute
Ceres On Ice
Scientists are pretty sure that Ceres, the dwarf planet between Mars and Jupiter, holds water. But a new paper out this week suggests that it might contain more than liquid H2O: A portion of its surface, particularly near the poles, could be coated in a thin layer of ice. Studying how it built up there will help researchers understand how ice forms all over our solar system.







Особенности восприятия звуков и музыки генетически детерминированы



Резюме. Характер влияния музыки и шума на эмоциональные реакции и физиологическую активность головного мозга обусловлен генетически детерминированной функциональностью рецепторов дофамина



Окружающие нас звуки оказывают индивидуальное воздействие на настроение и эмоции каждого отдельного человека. Предполагают, что музыкальные звуки и шумы обладают способностью влиять на эмоциональное состоя­ние личности, вероятно, при посредничестве дофамина — нейромедиатора, принимающего активное участие в регуляции эмоционального поведения и настроения. Однако взаимосвязь между звуковым окружением и настроением и/или эмоциями достаточно вариабельна у разных индивидуумов. Вероятной основой такой вариабельности считается генетический фон.
В связи с этим результаты нового визуализированного генетического исследования под руководством профессора Эльвиры Браттико (Elvira Brattico) из Орхусского университета (Aarhus University), Дания, проведенного в двух итальянских госпиталях при сотрудничестве с Университетом Хельсинки (University of Helsinki), Финляндия, впервые подтвердили гипотезу о том, что влияние музыки и шумов на аффективное поведение и физиологию головного мозга связано с генетически обусловленной функциональной активностью дофамина.
В частности, в данной работе, опубликованной в издании «Neuroscience», продемонстрировано, что функциональные изменения гена рецепторов дофамина D2 (DRD2 rs1076560) изменяют восприятие и влияние музыки, в отличие от шума на настроение и активность префронтальной и стриарной зон головного мозга, регулирующих эмоциональные процессы, что свидетельствует о дифференциальной восприимчивости аффективно-­модуляторных воздействий музыки и шума генотипами GG и GT. Более детальные результаты показали улучшение настроения после музыкального воздействия у лиц с генотипом GG и противоположный эффект после воздействия шума на индивидуумов с генотипом GT. Кроме того, музыка, в отличие от шумового воздействия, понижала активность стриарной зоны головного мозга у лиц с генотипом GT, равно как и активность префронтальных участков коры больших полушарий у индивидуумов с генотипом GG при обработке эмоциональных реакций.
Такие результаты получены впервые при определении биологической основы вариабельности эффекта звуковой среды на эмоциональный отклик. Ведущий автор исследования Тициана Кварто (Tiziana Quarto), аспирант Университета Хельсинки, комментируя работу, отметила, что данный подход позволил наблюдать взаимосвязь между генами и фенотипами, основываясь на истинно биологическом методе, исходящем из функциональных генетических вариаций (тех, для которых известны эффекты молекулярной функциональности на физиологию мозга, опосредующую поведенческие реакции). Применение такого подхода особенно значимо, когда исследуемое поведение отличается сложностью и субъективным разнообразием, что означает вовлеченность множества биологических факторов.
Профессор Э. Браттико подчеркнула, что данное исследование является первым опытом применения визуализированного генетического подхода в области музыки и звуков в целом. Значимость результатов, по мнению авторов работы, определяется именно биологическим подтверждением гипотезы о том, что даже нефармакологические вмешательства, такие как музыка, могут регулировать настроение и эмоциональные реакции на поведенческом и нейрональном уровне. И что еще более важно, полученные новые данные смогут оправданно стимулировать научный поиск в области персонализированного музыкального воздействия для лечения пациентов с заболеваниями головного мозга, обусловленными нарушениями дофаминергической нейротрансмиссии, а также связанных с этим эмоциональных нарушений и аффективных расстройств.
Наталья Савельева-Кулик

понедельник, 2 января 2017 г.

This is your brain on drugs



Advanced neuroimaging techniques—such as Functional MRI (fMRI), PET scans, and structural MRI—reveal that drugs disrupt the brain by physically remodeling its reward pathways, emotional centers, and decision-making logic. Rather than a simple lack of willpower, addiction functions as a chronic brain disease that forces the organ to prioritize a substance over basic survival needs. 
1. Short-Circuiting the Reward Center
The human brain is naturally wired to reward survival-essential behaviors (like eating or socializing) by releasing small bursts of dopamine. Addictive substances exploit this evolutionary pathway: 
  • The Dopamine Flood: While a good meal increases dopamine levels by roughly 100%, drugs like cocaine, methamphetamine, or opioids can trigger surges exceeding 1,000%. 
  • System Downregulation: To survive this toxic chemical tidal wave, the brain adapts by pruning away dopamine receptors and producing less of the chemical naturally. 
  • The Consequence: Everyday life stops registering as pleasurable. The individual requires increasingly larger doses of the substance just to achieve a baseline level of normalcy and stave off severe withdrawal. 
2. Remodeling Three Critical Brain Circuits
Brain scans consistently pinpoint structural deterioration and metabolic decline across three tightly linked neurological regions: 
  • The Basal Ganglia (The Reward Hub): This zone manages habit formation. Under the influence of chronic drug use, it undergoes molecular remodeling—specifically boosting genetic transcription factors like ΔFosB. This builds a hyper-efficient neural "shortcut" that triggers compulsive, unconscious drug-seeking habits. 
  • The Amygdala (The Stress & Emotion Center): As a drug leaves the body, this area becomes hyperactive. It drives intense emotional pain, anxiety, and stress. The user's primary motivation shifts from chasing a high to escaping the psychological agony orchestrated by a stressed amygdala. 
  • The Prefrontal Cortex (The Executive Decision Maker): This region dictates impulse control, future planning, and logical choices. MRI studies show that prolonged drug use visibly reduces gray matter volume here. With this circuit damaged, the brain loses its biological brakes, making it incredibly difficult to override a compulsive urge, even when the person recognizes the severe consequences. 
3. The Biological "Vulnerability" Factor
Longitudinal imaging studies have upended long-held assumptions about how addiction develops.
  • Pre-existing Differences: Massive scanning projects following children into adulthood have revealed that subtle structural anomalies in the brain's fronto-striatal regions are frequently present before the individual ever tries their first drug. 
  • Built-in Susceptibility: When exposed to occasional drug use, individuals with these pre-existing variations experience rapid gray matter shrinkage. Their brains transition into compulsive addiction far faster than those with structural "immunity". 
Ultimately, imaging proves that addiction is a profound structural and chemical rewriting of the brain's core operating system. Because these neural pathways require significant time to heal and rebuild, treating substance use disorders requires medical structure, behavioral therapies, and patience rather than moral judgment. 

Addiction is a disease that affects millions of Americans. It is extremely widespread, with an estimated 8 percent to 10 percent of individuals in the United States 12 years of age or older (between 20 to 22 million people) addicted to at least one substance. The human costs of this problem are incalculable. The annual financial costs, meanwhile, are estimated to be close to $700 billion due to losses in productivity, crime, and additional health care costs associated with addiction.

Назван возможный источник таинственных звуков в Марианской впадине

В исследовании, опубликованном в Journal of the Acoustical Society of America, американские специалисты предположили, что может быть источником довольно странного звука с «металлическими» нотками, который чем-то напоминает звуковые эффекты из «Звездных войн».



Странный шум, зафиксированный в Марианской впадине в 2014–2015 годах с помощью глубоководной акустической системы, могут издавать киты вида малый полосатик. Сигнал длится до 3,5 секунды с промежутками в несколько минут, его частота — от 38 до 8000 герц.
Как отмечают ученые, низкочастотные звуки, похожие на стоны, характерны для усатых китов. Однако записанные в Марианской впадине «песни» отличаются довольно звонкими для китов звуками, что делает этот шум уникальным.
В районе исследований существует несколько видов полосатиков, однако об их поведении и «музыкальном репертуаре» известно немногое. Записанные в Марианской впадине звуки оказались похожи на вокализацию малых полосатиков, записанных у северо-восточного побережья Австралии.
Большинство усатых китов используют определенные «песни» во время брачного периода, но звуки из Марианской впадины были зафиксированы в разное время года. Это ставит ученых перед новым вопросом: если это брачный зов, почему он длится круглый год?
Ранее стало известно, что в проливе Фьюри-энд-Хекла в канадском регионе Кикиктани слышен странный гул, природу которого специалисты пока не могут объяснить.
Анна Хотеева