domingo, 13 de agosto de 2017

How Humans Evolved Supersize Brains
Scientists have begun to identify the symphony of biological triggers that powered the extraordinary expansion of the human brain.


Descripción: link
Ferris Jabr , Contributing Writer ,  November 10, 2015






There it was, sitting on the mantelpiece, staring at her with hollow eyes and a naked grin. She could not stop staring back. It looked distinctly like the fossilized skull of an extinct baboon. That was the sort of thing Josephine Salmons was likely to know. At the time — 1924 — she was one of the only female students of anatomy attending the University of the Witwatersrand in South Africa. On this particular day she was visiting her friend Pat Izod, whose father managed a quarry company that had been excavating limestone near the town of Taung. Workers had unearthed numerous fossils during the excavation, and the Izods had kept this one as a memento. Salmons brought news of the skull to her professor, Raymond Dart, an anthropologist with a particular interest in the brain. He was incredulous. Very few primate fossils had been uncovered this far south in Africa. If the Taung site really housed such fossils, it would be an invaluable treasure trove. The next morning Salmons brought Dart the skull, and he could see that she was right: The skull was undeniably simian/


Dart promptly arranged to have other primate fossils from the Taung quarry sent to him. Later that year, as he was preparing to attend a close friend’s wedding, he received a large crate. One of the specimens it contained was so mesmerizing that he nearly missed the ceremony. It came in two pieces: a natural endocast — the fossilized mold of the inner cranium, preserving the brain’s topography — and its matching skeletal face, with eye sockets, nose, jaw and teeth all intact. Dart noticed right away that this was the fossil of an extinct ape, not a monkey. The teeth suggested that the individual had died at age 6 or so. The point where the spinal cord had joined the skull was too far forward for a knuckle walker, indicating bipedalism. And the endocast, which was a little too large for a nonhuman ape of that age, had surface features characteristic of a human brain. After further study, Dart reached a bold conclusion: this was the fossil of a previously unknown ancestor of modern humans — Australopithecus africanus, the “Man-Ape of South Africa.”
Raymond Dart with the Taung child.
Raymond Dart with the Taung child.
New York Public Library / Science Source
At first, the greater scientific community lambasted Dart’s proposal. If the Taung child, as the fossil was nicknamed, truly belonged to a hominin, surely it would have a far larger brain. Its cranium was a bit bigger than that of a chimpanzee, but not by much. Besides, it was generally believed that humans had evolved in Asia, not Africa. The “absurdly tiny” illustration accompanying Dart’s 1925 Nature paper, and his initial possessiveness of the specimen, did not help matters. Eventually, though, as prominent experts got to see the Taung child for themselves, and similar fossil discoveries came to light, attitudes began to change. By the 1950s, anthropologists had accepted that Taung was indeed a hominin and that an exceptionally large brain had not always been a distinguishing characteristic of humans. Dean Falk, a professor of anthropology at Florida State University and an expert on brain evolution, has called the Taung child “one of the most (if not the most) important hominin discoveries of the 20th century.”
In subsequent decades, by uncovering and comparing other fossil skulls and endocasts, paleontologists documented one of the most dramatic transitions in human evolution. We might call it the Brain Boom. Humans, chimps and bonobos split from their last common ancestor between 6 and 8 million years ago. For the next few million years, the brains of early hominins did not grow much larger than those of our ape ancestors and cousins. Starting around 3 million years ago, however, the hominin brain began a massive expansion. By the time our species, Homo sapiens, emerged about 200,000 years ago, the human brain had swelled from about 350 grams to more than 1,300 grams. In that 3-million-year sprint, the human brain almost quadrupled the size its predecessors had attained over the previous 60 million years of primate evolution.



Fossils established the Brain Boom as fact. But they tell us next to nothing about how and why the human brain grew so large so quickly. There are plenty of theories, of course, especially regarding why: increasingly complex social networks, a culture built around tool use and collaboration, the challenge of adapting to a mercurial and often harsh climate — any or all of these evolutionary pressures could have selected for bigger brains.
Although these possibilities are fascinating, they are extremely difficult to test. In the last eight years, however, scientists have started to answer the “how” of human brain expansion — that is, the question of how the supersizing happened on a cellular level and how human physiology reconfigured itself to accommodate a dramatically enlarged and energy-guzzling brain. “It was all speculation up until now, but we finally have the tools to really get some traction,” said Gregory Wray, an evolutionary biologist at Duke University. “What kinds of mutations occurred, and what did they do? We’re starting to get answers and a deeper appreciation for just how complicated this process was.”
What Makes the Human Brain Special
One scientist, in particular, has transformed the way researchers size up brains. Rather than fixating on mass or volume as a proxy for brainpower, she has focused on counting a brain’s constituent parts.
In her laboratory at the Institute of Biomedical Sciences at the Federal University of Rio de Janeiro, Suzana Herculano-Houzelroutinely dissolves brains into a soup of nuclei — cells’ genetic control rooms. Each neuron has one nucleus. By tagging the nuclei with fluorescent molecules and measuring the glow, she can get a precise tally of individual brain cells. Using this method on a wide variety of mammalian brains, she has shown that, contrary to long-standing assumptions, larger mammalian brains do not always have more neurons, and the ones they do have are not always distributed in the same way.

When it comes to brains, size isn’t everything. The human brain is much smaller than that of an elephant or whale. But there are far more neurons in a human’s cerebral cortex than in the cortex of any other animal.

Data taken from the following studies: 
Cellular scaling rules for primate brains; Cellular scaling rules for rodent brains; Gorilla and Orangutan Brains Conform to the Primate Cellular Scaling Rules: Implications for Human Evolution; The elephant brain in numbers.
Olena Shmahalo/Quanta Magazine; source: BrainMuseum.org and Herculano-Houzel et al.
The human brain has 86 billion neurons in all: 69 billion in the cerebellum, a dense lump at the back of the brain that helps orchestrate basic bodily functions and movement; 16 billion in the cerebral cortex, the brain’s thick corona and the seat of our most sophisticated mental talents, such as self-awareness, language, problem solving and abstract thought; and 1 billion in the brain stem and its extensions into the core of the brain. In contrast, the elephant brain, which is three times the size of our own, has 251 billion neurons in its cerebellum, which helps manage a giant, versatile trunk, and only 5.6 billion in its cortex. Considering brain mass or volume alone masks these important distinctions.
Based on her studies, Herculano-Houzel has concluded that primates evolved a way to pack far more neurons into the cerebral cortex than other mammals did. The great apes are tiny compared to elephants and whales, yet their cortices are far denser: Orangutans and gorillas have 9 billion cortical neurons, and chimps have 6 billion. Of all the great apes, we have the largest brains, so we come out on top with our 16 billion neurons in the cortex. In fact, humans appear to have the most cortical neurons of any species on Earth. “That’s the clearest difference between human and nonhuman brains,” Herculano-Houzel says. It’s all about the architecture, not just size.

The human brain is also unique in its unsurpassed gluttony. Although it makes up only 2 percent of body weight, the human brain consumes a whopping 20 percent of the body’s total energy at rest. In contrast, the chimpanzee brain needs only half that. Researchers have long wondered how the human body adapted to sustain such a uniquely ravenous organ. In 1995, the anthropologist Leslie Aielloand the evolutionary biologist Peter Wheeler proposed the “expensive tissue hypothesis” as a possible answer. The underlying logic is straightforward: Human brain evolution likely required a metabolic trade-off. In order for the brain to grow, other organs, namely the gut, had to shrink, and energy that would typically have gone to the latter was redirected to the former. For evidence, they pointed to data showing that primates with larger brains have smaller intestines.
A few years later, the anthropologist Richard Wrangham built on this idea, arguing that the invention of cooking was crucial to human brain evolution. Soft, cooked foods are much easier to digest than tough raw ones, yielding more calories for less gastrointestinal work. Perhaps, then, learning to cook permitted a bloating of the human brain at the expense of the gut. Other researchers have proposed that similar trade-offs might have occurred between brain and muscle, given how much stronger chimps are than humans.
Collectively, these hypotheses and observations of modern anatomy are compelling. But they are based on the echoes of biological changes that are thought to have occurred millions of years ago. To be certain of what happened, to pinpoint the physiological adaptations that made the brain’s evolutionary growth spurt possible, we will have to dive deeper than flesh, into our very genome.
How does the number of neurons in the cerebral cortex vary with the size of that part of the brain? Different scaling rules apply. In rodents, a 10-fold increase in the number of cortical neurons leads to a 50-fold increase in the size of the cortex. In primates, by contrast, the same neural increase leads to only a 10-fold increase in cortex size — a far more economical relationship.
Olena Shmahalo/Quanta Magazine; source: Herculano-Houzel et. al. (2014) 
How Genes Build the Brain
About eight years ago, Wray and his colleagues began to investigate a family of genes that influence the movement of glucose into cells to be used as energy. One member of the gene family is especially active in brain tissue, whereas another is most active in muscle. If the size of the human brain required a metabolic trade-off between brain tissue and muscle, then these genes should behave differently in humans and chimpanzees.
Wray and his team collected brain, muscle and liver samples from deceased humans and chimpanzees and attempted to measure gene activity in each sample. When a cell “expresses” a gene, it translates the DNA first into a signature messenger RNA (mRNA) sequence and subsequently into a chain of amino acids that forms a protein. Varying levels of distinct mRNAs can therefore provide a snapshot of gene activity in a particular type of tissue.
Wray’s team extracted mRNA from the tissues and amplified it many times over in the lab in order to measure the relative abundance of different mRNAs. They found that the brain-centric glucose-transporting gene was 3.2 times more active in human brain tissue than in the chimp brain, whereas the muscle-centric gene was 1.6 times more active in chimp muscle than in human muscle. Yet the two genes behaved similarly in the liver of both species.
Given that the human and chimp gene sequences are nearly identical, something else must explain their variable behavior. Wray and his colleagues found some intriguing differences between the genes’ corresponding regulatory sequences — stretches of DNA that stimulate or stifle gene activity. In humans, but not in chimps, the regulatory sequences for the muscle and brain-focused glucose-transporting genes had accumulated more mutations than would be expected by chance alone, indicating that these regions had undergone accelerated evolution. In other words, there was a strong evolutionary pressure to modify the human regulatory regions in a way that sapped energy from muscle and channeled it to the brain. Genes had corroborated the expensive tissue hypothesis in a way fossils never could.
Last year, the computational biologist Kasia Bozek, who now works at the Okinawa Institute for Science and Technology in Japan, published a similar study that examined metabolism from a different angle. In addition to looking at gene expression, Bozek and her colleagues analyzed levels of metabolites, a diverse group of small molecules that includes sugars, nucleic acids and neurotransmitters. Many metabolites are either necessary for metabolism or produced by it. Different organs have distinct metabolite profiles, depending on what they do and how much energy they require. In general, metabolite levels in the organs of closely related species are more in sync than levels between distantly related species. Bozek found that the metabolite profiles of human and chimp kidneys, for example, were pretty similar. But the variation between chimp and human brain metabolite levels was four times higher than would be expected based on a typical rate of evolution; muscle metabolites differed from the expected levels by a factor of seven. “A single gene can probably regulate a lot of metabolites,” Bozek said. “So even if the difference is not huge at the gene level, you could get a big difference in the metabolite levels.”
“It wasn’t just a couple mutations and — bam! — you get a bigger brain.”
Bozek and her colleagues then pitted 42 humans, including college basketball players and professional rock climbers, against chimpanzees and macaques in a test of strength. All of the primates had to pull a sliding shelf saddled with weights toward themselves. Accounting for body size and weight, the chimps and macaques were twice as strong as the humans. It’s not entirely clear why, but it is possible that our primate cousins get more power out of their muscles than we get out of ours because they feed their muscles more energy. “Compared to other primates, we lost muscle power in favor of sparing energy for our brains,” Bozek said. “It doesn’t mean that our muscles are inherently weaker. We might just have a different metabolism.”
Meanwhile, Wray had turned to his Duke colleague Debra Silver, an expert in embryonic brain development, to embark on a pioneering experiment. Not only were they going to identify relevant genetic mutations from our brain’s evolutionary past, they were also going to weave those mutations into the genomes of lab mice and observe the consequences. “This is something no one had attempted before,” Silver said.

The researchers began by scanning a database of human accelerated regions (HARs); these regulatory DNA sequences are common to all vertebrates but have rapidly mutated in humans. They decided to focus on HARE5, which seemed to control genes that orchestrate brain development. The human version of HARE5 differs from its chimp correlate by 16 DNA letters. Silver and Wray introduced the chimpanzee copy of HARE5 into one group of mice and the human edition into a separate group. They then observed how the embryonic mice brains grew.
After nine days of development, mice embryos begin to form a cortex, the outer wrinkly layer of the brain associated with the most sophisticated mental talents. On day 10, the human version of HARE5 was much more active in the budding mice brains than the chimp copy, ultimately producing a brain that was 12 percent larger. Further tests revealed that HARE5 shortened the time required for certain embryonic brain cells to divide and multiply from 12 hours to nine. Mice with the human HARE5 were creating new neurons more rapidly.
“This sort of study would have been impossible to do 10 years ago when we didn’t have the full genome sequences,” Silver said. “It’s really exciting.” But she also stressed that it will take a great deal more research to fully answer how the human brain blew up. “It’s a mistake to think we can explain brain size with just one or two mutations. I think that is dead wrong. We have probably acquired many little changes that are in some ways coopting the developmental rules.”
Wray concurs: “It wasn’t just a couple mutations and — bam! — you get a bigger brain. As we learn more about the changes between human and chimp brains, we realize there will be lots and lots of genes involved, each contributing a piece to that. The door is now open to get in there and really start understanding. The brain is modified in so many subtle and nonobvious ways.”
Brain and Body
Although the mechanics of the human brain’s expansion have long been mysterious, its importance has rarely been questioned. Again and again, researchers have cited the evolutionary surge in human brain size as the key reason for our exceptionally high degree of intelligence compared to other animals. As recent research on whale and elephant brains makes clear, size is not everything, but it certainly counts for something. The reason we have so many more cortical neurons than our great-ape cousins is not that we have denser brains, but rather that we evolved ways to support brains that are large enough to accommodate all those extra cells.
There’s a danger, though, in becoming too enamored with our own big heads. Yes, a large brain packed with neurons is essential to what we consider high intelligence. But it’s not sufficient. Consider, for a moment, what the world would be like if dolphins had hands. Dolphins are impressively brainy. They have demonstrated self-awareness, cooperation, planning and the rudiments of language and grammar. Compared to apes, though, they are severely limited in their ability to manipulate the world’s raw materials. Dolphins will never enter the Stone Age; flippers cannot finesse.
Similarly, we know that chimps and bonobos can understand human language and even form simple sentences with touch-screen keyboards, but their vocal tracts are inadequate for producing the distinct series of sounds required for speech. Conversely, some birds have the right vocal anatomy to flawlessly mimic human speech, but their brains are not large enough or wired in the right way to master complex language.
No matter how large the human brain grew, or how much energy we lavished upon it, it would have been useless without the right body. Three particularly crucial adaptations worked in tandem with our burgeoning brain to dramatically increase our overall intelligence: bipedalism, which freed up our hands for tool making, fire building and hunting; manual dexterity surpassing that of any other animal; and a vocal tract that allowed us to speak and sing. Human intelligence, then, cannot be traced to a single organ, no matter how large; it emerged from a serendipitous confluence of adaptations throughout the body. Despite our ongoing obsession with the size of our noggins, the fact is that our intelligence has always been so much bigger than our brain.
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IN THIS SERIES

Life’s Big Leaps: Critical Moments in Evolution

4.     How Humans Evolved Supersize Brains

SOURCE: https://www.quantamagazine.org/how-humans-evolved-supersize-brains-20151110/?utm_source=Quanta+Magazine&utm_campaign=6e1fed74c2-EMAIL_CAMPAIGN_2017_08_10&utm_medium=email&utm_term=0_f0cb61321c-6e1fed74c2-389390733
DOWNLOAD AS PDF   This article was reprinted on BusinessInsider.com and Wired.com.

miércoles, 19 de julio de 2017


How scientists reacted to the US leaving the Paris climate agreement

What the United States' departure from the historic pact means for efforts to fight global warming.

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Luke Sharrett/Bloomberg/Getty
US President Donald Trump wants to boost the US coal industry.
Nature rounds up reaction from researchers around the world to US President Donald Trump's decision to pull the United States out of the Paris climate agreement.

Jane Lubchenco, marine ecologist at Oregon State University in Corvallis and former administrator of the US National Oceanic and Atmospheric Administration:

Where to start? President Trump’s decision to withdraw from the Paris Agreement shows a blatant disregard for the wishes of most Americans and business leaders, an irresponsible and callous dismissal of the health, safety and economic well-being of Americans, a moral emptiness in ignoring impacts to the poorest people in the US and around the world, and gross ignorance about overwhelming scientific evidence. Far from “protecting America” as the president stated, withdrawing from Paris will make America more vulnerable and diminish its world leadership. It is terrifying that the individual who should be leading the rest of the world is so arrogant and irresponsible.
Our collective future and that of much of the rest of life on Earth depends in part on confronting climate change and ocean acidification. Doing so requires global collective action. It’s hard to imagine anyone consciously choosing to leave a legacy of impoverishment, economic disruption, increasingly bizarre weather, health impacts ranging from heat strokes to spread of diseases, rising sea levels and flooding — but that is just what the president has done. Moreover, the new path and the president’s proposed budget would forego significant economic opportunities.
Fortunately, mayors, governors, faith leaders, scientists and business executives understand what is at risk, respect the scientific evidence, and see the powerful economic potential and moral imperative in shifting to renewable energy, preparing to adapt to changes already under way, and investing in science and monitoring to guide future decisions. There is strong economic momentum to continue these actions, but they would have been accelerated and more effective with strong action and forceful leadership from the president. Alas, he has chosen instead to stick his head in the sand.

Jean-Pascal van Ypersele, climate scientist at the Catholic University of Louvain in Louvain-la-Neuve, Belgium, and former vice-chair of the Intergovernmental Panel on Climate Change (IPCC):

President Trump's decision to introduce a request to leave the Paris agreement in 2020 is regrettable. It negates both the results of (1) serious scientific analyses (many made by US scientists) about the urgency to address the climate change problem; and (2) the rigorous assessment made by the IPCC about the technical and socio-economic aspects of response options, including their significant co-benefits in other areas like air quality, energy security, health or job creation.
President Trump's speech attempting to justify his decision was an amazing concentrate of some of the worst climate confusers' and fossil lobbyists' arguments.
The United States has played a very important role over the years to foster and nurture quality scientific research about the causes and processes of climate change, the potential risks and the response options. It is a shame that this leadership by the US is temporarily lost. Others in Europe, Asia and emerging economies will most likely compensate for this loss, transforming a difficulty into an opportunity.
Almost 150 countries, representing close to 85% of greenhouse-gas emissions, have now ratified the Paris agreement. Removing the US contribution from this total still leaves almost two-thirds of the emissions covered by the remaining countries, which have confirmed their plans to honour the agreement. This means that the transition to a low-carbon economy, now seen as an opportunity by many, will continue unabated, with or without the US.

Susanne Dröge, climate-policy researcher at the German Institute for International and Security Affairs in Berlin:

The US pull-out is bad news for the international climate process. The United Nations negotiations need to focus on implementation. This will become more difficult, also because it is unclear how Trump wants to renegotiate the agreement. Political attention is absorbed due to the US move, attention that is needed for much more important issues such as bringing climate action forward.

Thomas Stocker, former co-chair of climate science for the IPCC, and climate and environmental physicist at the University of Bern, Switzerland:

Trump’s decision to ignore scientific facts of climate disruption and the high risks of climate-change impacts is irresponsible not only towards his own people but to all people and life on this planet. The US administration prefers old technology over innovation and transformation. It is rejecting the enormous benefits and returns that leadership in the next industrial revolution — decarbonization — has to offer.
The United States is the second-biggest emitter of carbon dioxide worldwide (and has contributed, with Europe, 52% of the share of cumulative carbon emissions since industrialization). It is withdrawing from its historical responsibility to reduce greenhouse-gas emissions and lead the way forward. Given the continuous commitment of most countries to reduce emissions, and the firm leadership of Europe, China and Russia in shaping the transformation towards a decarbonized economy, the United States runs the risk of being left behind and missing one of the greatest economic opportunities of our time.

Susan Lozier, oceanographer at Duke University in Durham, North Carolina:

Trump’s decision is as short-sighted as it is disheartening. The oceans already hold about 35% of the carbon dioxide that has been released to the atmosphere since the Industrial Revolution. Nothing good for the ocean and the life it contains comes from this storage. Whether you simply admire marine life or count on it for your livelihood, this decision shouldn’t sit well. An already fragile ocean is further imperilled.

Kevin Anderson, deputy director of the Tyndall Centre for Climate Change Research in Manchester, UK:

Beneath the veil of the low-carbon rhetoric of the Paris agreement, there is no evidence of a mitigation agenda even approaching the scale of our international obligations. Trump’s ostensibly reckless decision can be used either as a further excuse for continued apathy or as a catalyst for transforming our comfortable rhetoric into meaningful and timely action. In that regard, Trump’s ignorant blunderings can inadvertently be a force for good. Channelled positively, it could yet oblige the rest of us to forego our increasing reliance on speculative technologies and incremental carbon prices and begin to shape a mitigation agenda that is fit for purpose.
We need to take Trump at face value. If he is successful in returning the US to a coal-based economy (and that looks unlikely), then the European Union needs to borrow his ‘protectionist’ cloak and put in place carbon standards for imported goods.
Finally, let’s keep Trump in context. US states and cities have considerable devolved powers — and many of their leaders continue to favour climate science.

Joeri Rogelj, energy researcher at the International Institute for Applied Systems Analysis in Laxenburg, Austria:

The US withdrawing from the Paris agreement is damaging for international collaborative efforts to limit climate change, but will likely be most damaging to the US economy itself. The US has decided to sideline itself, internationally, diplomatically and morally — not to prepare itself for the future, but to gaze into the past for a few more years. Many other major economies, including China and the European Union, have indicated their strong commitment to implementing the climate agreement. This signal will spur innovation and business development in these regions. However, the US government refuses to give US businesses such a clear sense of direction and is disregarding the most robust scientific evidence by doing so. By setting research, innovation and business priorities based on misleading short-term political goals, the US will miss the boat and might become a laggard in the global technology and innovation landscape.
The climate issue is a global and a cumulative problem that was not solved in one go with the Paris agreement, but requires incremental updates and adjustments of climate action. To halt climate change, global carbon dioxide emissions need to be capped and annual emissions need to be brought to zero. One country failing on its commitments thus implies that deeper emissions cuts are required in other regions or later in the future. This makes the problem harder and less equitable to solve.

Oliver Geden, visiting research fellow at the Institute for Science, Innovation and Society, University of Oxford, UK:

The United States gave up climate leadership on the day of Trump's inauguration. In March, Trump announced his rollback of Obama-era climate regulations. So it’s been clear for some time that the US federal government is not going to act on climate change in the foreseeable future. Withdrawing from the Paris agreement is just another step, although a highly symbolic one.
For now, it seems that this step reunites the rest of the world, but only on the symbolic level. It is quite easy for a government to declare that it will stick to the Paris agreement. But in a regime of bottom-up climate policy that still aims to achieve top-down temperature targets, other governments would need to step up and declare that they increase their mitigation pledges — and act accordingly. That's obviously the harder thing to do.

Katharine Hayhoe, director of the Climate Science Center at Texas Tech University in Lubbock:

The biggest loser from the decision could be the United States itself. Why? Because although the Paris agreement is a climate treaty, a triumph for evidence-based decision-making, it’s also much more: a trade agreement, an investment blueprint and a strong incentive for innovation in the energy and the economy of the future.
Earlier this week, India broke its own record for the lowest bids for electricity from solar power. Last month, Ernst & Young listed its most attractive markets for renewables: the United States came third, behind China and India. And earlier this year, China announced a US$360-billion investment in clean energy to create 13 million new jobs. The US announcement shows that it will be doing its best to turn back the clock, while the rest of the world accelerates into the future.
It’s true that federal policy is only one piece of the pie, and not even the biggest one. Cities, states and private industry have arguably played an even more important role in shaping US technological innovation, energy mix and carbon emissions over the past ten years, even under proactive federal climate policy. But Trump’s announcement sends a strong message that the US would rather be one of only two nations in the world that is not interested in preventing “dangerous anthropogenic interference with the climate system”. That other nation? War-torn Syria. (Note that Nicaragua is also opting out of the agreement — but in that case it’s because it wants to do more, not less.)

Atte Korhola, climate-policy and environmental-change researcher at the University of Helsinki, Finland:

The US withdrawal from the Paris climate agreement is very disappointing and unfavourable for the United States and the rest of the world. Many climate scientists consider the Paris agreement insufficient for limiting warming to 2 °C, so the task will be all the harder now. However, international climate agreements have not been very effective so far in reducing emissions, so there is still hope that the United States will proceed on other fronts, such as through bilateral agreements, clean-tech development and investing in new ‘negative emissions’ technologies.
But the plans by the Trump administration to cut more than 30% from the Environmental Protection Agency’s budget and about 70% of the funding for renewable-energy research and development unfortunately don’t point in this direction. The situation in all respects is quite depressing. The only hope is that the US states, cities and companies will continue their effective work to cut emissions.

Benjamin Santer, climate scientist at Lawrence Livermore National Laboratory in California:

In Shakespeare's Julius Caesar, Brutus said these famous lines: "There is a tide in the affairs of men. Which, taken at the flood, leads on to fortune; Omitted, all the voyage of their life is bound in shallows and in miseries."
Today, the United States pulled out of the Paris climate agreement and missed the rising tide. Far from "Making America Great Again", this decision condemns the United States to becoming one of the 'has-beens' of history. We will become increasingly irrelevant to the rest of the world. They are going forward; we are going backward.

Hans Joachim Schellnhuber, director of the Potsdam Institute for Climate Impact Research in Potsdam, Germany:

It will not substantially hamper global climate progress if the US really quits the Paris agreement, but it will hurt the American economy and society alike. China and Europe have become world leaders on the path towards green development already and will strengthen their position if the US slips back at the national level. Innovative states such as California, the world's sixth-largest economy, will keep going for climate action, however. The Washington people around Trump hide in the trenches of the past instead of building the future. They fail to recognize that the climate wars are over, while the race for sustainable prosperity is on.

David Victor, climate-policy expert at the University of California, San Diego:

The odds of other countries renegotiating Paris are low to zero. The whole structure of the Paris agreement is to allow countries to set their own commitments. So there is nobody to negotiate with if a country needs to adjust. This claim that the problem with Paris is that the deal wasn’t struck properly is a disingenuous argument that is not informed by how Paris actually works, nor by any reality about how the world actually crafts big complex deals.

Glen Peters, climate-policy expert at the Center for International Climate and Environmental Research in Oslo:

It seems that Trump and his advisers have completely misconceived what the Paris agreement is. All his reasons for pulling out were basically the concessions that forged the path to the creation of the Paris agreement. Paris is the agreement that Trump desires!
The genius of Paris is to allow countries to put forward emission pledges that they feel they can meet (Nationally Determined Contributions). The US pledge was put forward by the US, alone. Countries are already enacting their emissions pledges, and — as could be expected by the design of the Paris agreement — most countries show signs of exceeding their conservative emissions pledges. China looks like it may peak its emissions a decade earlier than pledged. India has slowed down on coal consumption and sped up on solar deployment. Even the US has made great strides in the past decade, and was poised to make more.
The irony is that Paris is working, because it is designed to be flexible to the national circumstances that Trump himself champions!

Myles Allen, climate scientist at the University of Oxford, UK:

The Paris agreement is far from perfect, and one of its problems, as we are seeing now, is the lack of any real penalty for pulling out. Talk of trade sanctions is pure hyperbole and the last thing the world needs right now. But perhaps it is time to think about a simple product label: “Made in and sourced from regions that support the Paris climate agreement.” With California and Oregon insisting they will abide by the terms of the Paris agreement anyway, we could then have an interesting discussion about whether and how this could be stuck on Californian orange juice — or computers containing Intel chips.
Painful though it may be for the agreement’s supporters, acknowledging that it isn’t perfect must also be part of the response to this proposal to renegotiate the US terms of participation. Some, no doubt, will see this as just a distraction tactic. Others would argue that even to begin to negotiate would be to deliver Trump an ill-deserved political “win”. But thinking beyond 2020, we will eventually need to work out how to make the agreement both more effective and more acceptable to nations, companies and individuals that own substantial fossil-fuel reserves — or the US won’t be the last to leave.

Benjamin Sanderson, climate modeller at the National Center for Atmospheric Research in Boulder, Colorado:

Today's announcement that the US will depart from the Paris agreement is unfortunate, but it is no time for fatalism. From this point forward, there are now large uncertainties in global mitigation efforts over the coming years. The long-term evolution of the climate hinges on what other countries, and agents both within and outside of the US, do in response to the US departure from the agreement.
A complete failure of the agreement at this point, with business-as-usual growth for another decade, would almost certainly commit the planet to significantly more warming than the Paris goals, and the human consequences of this would be catastrophic. However, some major remaining signatories have expressed a commitment to increasing mitigation goals, and within the US, many states, cities and some of the country's largest companies are committed to mitigation irrespective of the US participation in the agreement.
Decisions made today are made in the context of confident projections of future warming with continued emissions, but clearly there is more to do to better characterize the human and economic consequences of delaying action on climate change and how to frame these issues in the context of other concerns. The role of the scientific community is more important than ever, both to continue to provide the best possible research to inform decisions, and to communicate any risks associated with further emissions in a publicly accessible fashion.
Nature
 
doi:10.1038/nature.2017.22098

sábado, 15 de julio de 2017

Xi-cc++


LHC Physicists Unveil a Charming New Particle

 The discovery could offer fresh insight into how fundamental forces bind together subatomic particles
A view of CERN's Large Hadron Collider in Geneva, Switzerland. Credit: View Pictures Getty Images
Physicists using the Large Hadron Collider beauty (LHCb) experiment at CERN in Geneva, Switzerland, have discovered a new kind of heavy particle, they announced this week at a conference in Venice.
The particle, known as Xi-cc++ (pronounced “Ksī-CC plus-plus”), is composed of three smaller elementary particles called quarks—specifically, one lighter-weight “up” quark like those found in protons and neutrons as well as two “charm” quarks, which are a heavier and more exotic variety. 
(The designations “up” and “charm” are two of the six “flavors” physicists assigned to quarks based on the particles’ varying masses and charges.) The Standard Model of particle physics predicts Xi-cc++ and many other possible particles with various configurations of the six known flavors of quarks. But until now such “doubly charmed” particles had eluded conclusive detection. 
Further studies of the new particle—and other members of the doubly charmed particle family—could reinforce the Standard Model or lead to new vistas in particle physics. Either way, the new particle could be a tool to unlock a deeper understanding of the fundamental “strong” force that binds quarks together to form protons and neutrons, which in turn form atoms—as well as planets, stars, galaxies and people.
Any particle made of quarks is called a hadron. The world’s largest and most powerful particle accelerator, CERN’s Large Hadron Collider (LHC), slams these particles together in search of new particles and interactions. Hadrons fall into two broad families: mesons, exotic particles with one quark and one antiquark; and baryons, particles composed of three quarks. The new Xi-cc++ particle is a baryon. But due to its doubly charmed nature it is almost four times heavier than more familiar baryons such as protons and neutrons, which are made up entirely of light quarks rather than heavy ones. 
“Finding a doubly heavy quark baryon is of great interest, as it will provide a unique tool to further probe quantum chromodynamics [QCD]—the theory that describes the strong [force], one of the four fundamental forces,” LHCb spokesperson Giovanni Passaleva said in a statement. “Such particles will thus help us improve the predictive power of our theories.”
The featherweight quark triplets within protons and neutrons all uniformly zip around one another at nearly the speed of light, making them very challenging to study. In a Xi-cc++ particle, the sole light quark whips at high speed around the heavier, slower-moving heavy quark pair, creating a situation easier for physicists to investigate. 
The situation, says former LHCb spokesperson and University of Oxford physicist Guy Wilkinson, is roughly analogous to a planetary system in which the light quark is akin to a planet orbiting a binary pair of massive stars.
New Particle
Credit: Amanda Montañez
Led by University of Glasgow physicist Patrick Spradlin, the LHCb team found evidence of more than 300 of the new particles in data collected last year by the experiment, teasing out their signals from a dense forest of more common particles produced by high-energy proton collisions at the LHC. 

Specifically, they looked for a telltale distribution of “daughter” particles, including other baryons as well as kaons and pions—exotic particles produced by the decay of short-lived Xi-cc++ particles. The distributions they observed show not only that the LHC’s collisions are producing Xi-cc++ particles but also hint that other researchers’ previous claims of double-charm particle production may be spurious.
In 2002 researchers using the SELEX experiment at the Fermilab accelerator in Illinois announced they had found a similar particle. That detection, however, was just below the threshold of unassailable statistical significance, and the putative particle’s estimated mass was wildly out of sync with predictions. 
After other facilities failed to confirm the results, many theorists began questioning the claim. By contrast, the signal of the LHCb’s newfound particle “is statistically overwhelming and matches very nicely with the theoretical expectations,” Wilkinson says. “It looks, smells and tastes like a doubly charmed baryon should.” The LHCb team’s findings have been submitted to Physical Review Letters.
With the detection of the new, heavy particle firmly in hand, physicists at the LHC are now producing more of these particles to precisely measure their lifetimes and learn exactly how often they are created in collisions. 
Next, Wilkinson says, the LHCb experiment will seek out other postulated members of the doubly charmed family, such as the Xi-cc+ and Omega-cc particles. “All these results can be compared against predictions to test QCD,” he says. “There are exciting times ahead!”