Showing posts with label SCIENCE. Show all posts
Showing posts with label SCIENCE. Show all posts

Monday, April 6, 2015

Cosmos is filled with extraordinary photos of the universe and tales of missions to explore it. To coincide with the show's launch, NASA released a slew of their own amazing images of missions or phenomena that are mentioned on the show, the best of which we've compiled below.
An ultraviolet photo of the Andromeda Galaxy.
The remnants of a supernova explosion float through space.
Titan, Saturn's orange moon, hovers behind the planet's rings.
Solar material bursts from the Sun.
A map displaying Earth and a few of its neighbors.
Earth's closest neighbor, the moon.
This picture is a collection of visible radio and X-ray data that show the remnants of another supernova.
Visible data and infrared images combine to provide this photo of the Ring Nebula.
The mother planet.
An aurora, seen from space.
Source:mashable.com

Eye Candy for Space Geeks: 10 Stunning Photos From 'Cosmos'

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Thursday, April 2, 2015

How Much Do We Really Know About The Universe?

Stephen Hawking, the British physicist who is the topic of a 2014 biopic, makes a surprising statement in his 1992 book, Black Holes and Baby Universes, about the extent to which physics is almost complete. He says: “Although we have not found the exact form of all [the physical laws], we already know enough to determine what happens in all but the most extreme situations.” Hawking adds that he gives it a 50-50 chance that we will find the exact laws in the next twenty years.

We know already that his second statement hasn’t come to pass: 2012 passed and we’re not very close to a complete theory of everything. I’m not trying to pick on Hawking’s predictions, armed with the benefit of hindsight. Rather, what I want to highlight is how little we really do know about the universe, even at the fundamental physical level, and how little we can predict with any certainty, despite Hawking’s statements to the contrary.

We can obviously point to every social science, such as sociology, psychology, or economics, and recognize immediately that predicting the future is a futile task. Experts distinguish themselves by being able to talk intelligently about theory and the future but few are foolish enough to make firm predictions because these experts know that such predictions are impossible given our present state of knowledge, and perhaps impossible in principle.

But the problem of prediction—the sine qua non of science because it allows for testability of theories and thus their possible falsification—goes far beyond the “soft” social sciences. It’s also inherent to physics, the model of firmness in science.

Let me highlight a well-known problem to illustrate my point. Isaac Newton, the British physicist and mathematician who almost singlehandedly developed classical physics, included at the heart of his system the basic equation of what we now call Newtonian gravity. This simple equation shows that gravity declines between two bodies with the inverse square of their distance. So if we’re traveling in a spacecraft away from Earth the farther we go the smaller the gravitational attraction between the spacecraft and the planet, and it drops off pretty quickly but never disappears entirely. Newton’s famous equation, which showed that gravity was a universal force that applied in the realm of falling apples as equally in the realm of planets orbiting a star, only works for two bodies. In my example, it was the spacecraft and our planet.

What happens when we try to solve the equation for three bodies? Well, it gets exponentially more difficult. In fact, Henri Poincaré famously showed in a 1902 paper that the “three-body problem” couldn’t be solved at all. Huh? Why not?

Well, it turns out that even introducing one extra body to the gravitational situation trying to be analyzed introduces such sensitivity to initial conditions that it becomes impossible to make accurate predictions over the long-term. (A nerdy aside: some solutions are possible to this problem and it is now recognized that there are 16 families of solutions; however, these are very limited cases and the general problem is recognized as having no solution, in principle).

Hawking’s point about knowing the physical laws of our universe seems to ignore even this obvious example of the limits to our knowledge. Hawking surely knows about this example because he has, after all, for many decades now occupied the Lucasian chair at Cambridge that Newton himself occupied in the 17th Century.

So was Hawking referring to, rather than our ability to make firm predictions, our ability to instead deduce the relevant equations that govern the universe (even if those equations can’t be solved in many cases)? Even if we interpret his statement in this manner it seems clear that he is also more optimistic than the facts warrant. In fact, it seems far more clear that we know very little about the laws that govern our universe.

General relativity leads to similar problems as we just saw in Newtonian gravity because solving Einstein’s gravity equations, a set of eight inter-linked equations, is fiendishly difficult in real-world situations. This is why Newtonian gravity is usually used in practice rather than general relativity. Many solutions to the relativistic equations have been found but solving the equations for three or more bodies is actually even more difficult than in Newton’s equation. Again, it’s impossible, in principle, to solve the “n-body problem” for general relativity in a general sense: only certain limited solutions are possible.

The Big Problems In Physics

Lee Smolin discussed in his excellent 2006 book, The Trouble With Physics, five major problems that modern physics faces. There are, of course, far more than these problems facing modern physics, but Smolin was highlighting the big ones, which include:

1.Combine general relativity and quantum theory into a single theory that can claim to be the complete theory of nature (“quantum gravity,” “grand unified theory,” or the “theory of everything”).
2.Resolve the problems in the foundations of quantum mechanics, either by making sense of the theory as it stands or by inventing a new theory that does make sense.
3.Determine whether or not the various particles and forces can be unified in a theory that explains them all as manifestations of a single, fundamental entity.
4.Explain how the values of the free constants in the standard model of particle physics are chosen in nature.
5.Explain dark matter and dark energy. Or, if they don’t exist, determine how and why gravity is modified on large scales. More generally, explain why the constants of the standard model of cosmology, including the dark energy, have the values they do.

We are, unfortunately, far from solving any of these problems. Smolin’s book discusses in depth the problems with string theory, which attempts to resolve the first question by reconciling quantum theory and general relativity under a single framework. That these very large problems remain unsolved weighs heavily against Hawking’s optimism.

Marcelo Gleiser, a physicist at Dartmouth University in Vermont, supports my point in his 2014 book, Island of Knowledge: The Limits of Science and the Search for Meaning, stating in the prologue to his book:
From our past successes we are confident that, in time, part of what is currently hidden will be incorporated into the scientific narrative, unknowns that will become knowns. But as I will argue in this book, other parts will remain hidden, unknowables that are unavoidable, even if what is unknowable in one age may not be in the next one. We strive toward knowledge, always more knowledge, but must understand that we are, and will remain, surrounded by mystery.
Taking an even deeper look at the nature of knowledge in our modern world, Nancy Cartwright examines in her 1999 book, The Dappled World: A Study of the Boundaries of Science, how little we know about the universe. The dappled world she refers to is the patchwork of physical laws and theories that work pretty well in some limited situations. But her point is that there are vast gaps in our understanding that remain and our ability to predict outcomes is terrible in all but the most simple of situations.

Are There Even Bigger Problems Remaining In Physics?

A major problem that Smolin alludes to but doesn’t include in his top five list is this: there is another important integration and reconciliation of different physical theories that has yet to happen. Going one step beyond reconciling quantum mechanics and general relativity, we need to reconcile thermodynamics with these two other pillars of modern physics. The nature of time is at the heart of this reconciliation. The problem is that most modern physical theories include a reversible concept of time. This means that the equations can be used to look backwards or forwards in time and there’s no basic difference between these two temporal directions. This is a problem because when we look at the world around us, near or far, we see irreversible processes everywhere, including the stubborn fact that eggs don’t unbreak themselves spontaneously, cream doesn’t unmix itself from your coffee when you stir the spoon the other way, and stars don’t unform gradually as gas drifts away slowly. All of these processes are irreversible despite the fact that our equations are often reversible.

By recognizing that irreversible processes are common in nature we should also recognize that time itself is fundamentally asymmetrical and irreversible. This notion of time allows us to make progress with the big problem of reconciling the concept of irreversible time in thermodynamics with the concepts of time in quantum mechanics and general relativity.

The Belgian-Russian physicist Ilya Prigogine made this point in a series of books and articles over a long career that ended with his death in 2003. He won the 1977 Nobel Prize in chemistry for his work on non-equilibrium thermodynamics, which is all about irreversible processes. Prigogine has this to say on the nature of time in his most readable book, The End of Certainty: Time, Chaos, and the New Laws of Nature (p. 19):
[A]ccording to the fundamental laws of physics, there should be no irreversible processes. We therefore see that we have inherited two conflicting views of nature from the nineteenth century: the time-reversible view based on the laws of dynamics and the evolutionary view based on entropy. How can these conflicting views be reconciled? After so many yeas, this problem is still with us.
Prigogine’s many decades of work is all directed at resolving this problem and his solution is to call for a comprehensive re-working of modern physical theories to incorporate an irreversible/asymmetrical concept of time. In other words, modern physics has yet to incorporate the concept of evolutionary time and an evolving universe. This is a big job, to be sure, but it has to be done if we are going to make real progress on the Theory of Everything that Hawking and many others wish to see happen.

Evolving Time, Evolving Views

Things change and maybe Hawking now agrees with me anyway. He stated in a 2004 talk: “Up to now, most people have implicitly assumed that there is an ultimate theory that we will eventually discover. Indeed, I myself have suggested we might find it quite soon. However, [new developments in quantum gravity have] made me wonder if this is true. Maybe it is not possible to formulate the theory of the universe in a finite number of statements.” Hawking is here recognizing that perhaps his dream of a simple equation or set of equations that can explain and predict the entire universe is an impossible dream.

He adds at the end of this interesting talk:
Some people will be very disappointed if there is not an ultimate theory that can be formulated as a finite number of principles. I used to belong to that camp, but I have changed my mind. I’m now glad that our search for understanding will never come to an end, and that we will always have the challenge of new discovery.
Hear hear, and kudos to Mr. Hawking for allowing his views to change and acknowledging that process of evolutionary change.

Is Physics Almost Complete?

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So far, life as we know it has needed one ingredient to survive: water. This primordial and basic compound is essential for life on this planet, and a new study shows it is most likely very abundant in the Universe.

Ilse Cleeves and Ted Bergin at the University of Michigan wanted to understand the true origin of water on our planet. There are two different theories on this topic:

1.) Molecules on ice comets collided into the Earth and volcanoes on the (then barren) planet Earth all added to one another to give rise to new terrestrial oceans.

or

2.) Water originated before the solar system which then inherited it.

The Experiment

Cleeves’ and Bergin’s experiment (actually a simulation) shows that the origin of perhaps 50 percent of our water is a result of something that predates not only the solar system , but the sun as well. The duo were attempting to find the ratio of “common” water and “heavy” water in our present day solar system, compared to before the solar system even formed. Heavy water comes from a very cold source, apparently a few degrees above absolute zero, and stars (like our own) eliminate the residuals of this primeval water.

The simulation started by “winding the clock back” on the solar system to before there even was a solar system. They then allowed the simulation to play itself out for “millions of years,” or the typical lifetime of a planetary disk. Planetary disks are rotating “rings” full of debris and are thought to be the origin of planetary systems.

After the millions of years had passed, they found that the chemical processes in the disk were inefficient at making heavy water throughout the solar system. What this implies is that if the planetary disk didn’t create the water, then some of it had to have been inherited. Astronomer Ted Bergin was quoted as saying:
Based on our simulations and our growing astronomical understanding, the formation of water from hydrogen and oxygen atoms is a ubiquitous component of the early stages of stellar birth. It is this water, which we know from astronomical observations forms at only 10 degrees above absolute zero before the birth of the star, that is provided to nascent stellar systems everywhere.
Cleeves added:
“The implications of these findings are pretty exciting, if water formation had been a local process that occurs in individual stellar systems, the amount of water and other important chemical ingredients necessary for the formation of life might vary from system to system. But because some of the chemically rich ices from the molecular cloud are directly inherited, young planetary systems have access to these important ingredients.”
So what do you make of these findings? Does this mean that the life-giving nature of water is an abundant substance throughout our Universe  and has spawned life? Whatever the case may be, this is a very exciting revelation!

New Study Shows That Life Is Likely Abundant In Universe

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Saturday, March 28, 2015

Crazy stuff happens all around the world, you just might not know about it (or at least not right away). Take last July for example. Large, mysterious craters began forming in Siberia, and recent satellite imagery suggests that there may be more up there than we originally thought.

This has, understandably, got scientists all jacked up. However, it also raises a lot of questions by concerned locals regarding the nature of these craters and how they are formed. Could it pose a danger to the people living in the area?

Scientists are currently aware of 4 large craters (and 12 smaller ones) in the wilderness of Northern Russia. Most people believe, though, that there could be 15+ more.
The biggest problem isn't even finding the existing craters, it's predicting when the next one is going to occur. So far, there's been very little study of the craters. We don't know how they are formed or where they could form next.
The craters pose a danger to people living in Siberia. One of these holes could form underneath a school or a town's water supply.
More study is needed, but one theory suggested by scientists is that due to natural gas trapped in the ground by permafrost, pressure builds underground. That pressure builds until it eventually breaks open the Earth's surface.
Kind of like when you hold in a fart. It's gonna be bigger when you finally let 'er rip!

If the tundra-like temperatures and snow tigers didn't give you enough reason not to go to Siberia, maybe the giant, random holes in the planet will?

Source:viralnova.com

Even More Huge Craters Formed Russia And Scientists Still Don't Know Why

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Sunday, March 15, 2015

Our planet has come a long way in scientific breakthroughs and discoveries. Mainstream science is beginning to discover new concepts of reality that have the potential to change our perception about our planet and the extraterrestrial environment that surrounds it forever. Star gates, wormholes, and portals have been the subject of conspiracy theories and theoretical physics for decades, but that is all coming to an end as we continue to grow in our understanding about the true nature of our reality.

In physics, a wormhole was a hypothetical feature of space time that would be a shortcut through space-time. We often wonder how extraterrestrials could travel so far and this could be one of many explanations. Although scientists still don’t really understand what they have found, it does open the mind to many possibilities.

Turning science fiction into science fact seems to happen quite often these days and NASA did it by announcing the discovery of hidden portals in Earth’s magnetic field.  NASA calls them X-points or electron diffusion regions. They are places where the magnetic field of Earth connects to the magnetic field of the Sun, which in turn creates an uninterrupted path leading from our own planet to the sun’s atmosphere which is 93 million miles away.

NASA used its THEMIS spacecraft, as well as a European Cluster probe, to examine this phenomenon. They found that these portals open and close dozens of times each day. It’s funny, because there is a lot of evidence that points toward the sun being a giant star gate for the ‘gods’ to pass back and forth from other dimensions and universes. The portals that NASA has discovered are usually located tens of thousands of kilometres from Earth and most of them are short-lived; others are giant, vast and sustained.

As far as scientists can determine, these portals aid in the transfer of tons of magnetically charged particles that flow from the Sun causing the northern and southerns lights and geomagnetic storms. They aid in the transfer of the magnetic field from the Sun to the Earth. In 2014, the U.S. space agency will launch a new mission called Magnetospheric Multi scale Mission (MMS) which will include four spacecraft that will circle the Earth to locate and then study these portals. They are located where the Earth and the Sun’s magnetic fields connect and where the unexplained portals are formed.

NASA funded the University of Iowa for this study, and they are still unclear as to what these portals are. All they have done is observed charged particles flowing through them that cause electro-magnetic phenomenon in Earth’s atmosphere.
Magnetic portals are invisible, unstable and elusive. they open and close without warming and there are no signposts to guide is in – Dr Scudder, University of Iowa
Mainstream science continues to grow further, but I often get confused between mainstream science, and science that is formed in the black budget world. It seems that information and discovery isn’t information and discovery without the type of ‘proof’ that the human race requires. Given that the human race requires, and has a certain criteria for ‘proof’, which has been taught to us by the academic world, information can easily be suppressed by concealing that ‘proof’. It’s no secret that the department of defence receives trillions of dollars that go unaccounted for and everything developed within the United States Air Force Space Agency remains classified. They are able to classify information for the sake of ‘national security’. Within the past few years, proof has been emerging for a number of phenomenon that would suggest a whole other scientific world that operates separately from mainstream science.
We have the technology to take ET home, anything you can imagine we already have the technology to do, but these technologies are locked up in black budget projects. It would take an act of God to ever get them out to benefit humanity – Ben Rich, Fmr CEO of LockHeed Skunk Works
I use this video a lot in many of my posts, but it is just a profound statement, I love to use it over and over. He is x NASA personnel so it kind of fits in with the article.

Source : collective-evolution.com

NASA Discovers Hidden Portals In Earth’s Magnetic Field

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Wednesday, March 11, 2015

A CT scan of a Buddhist statue from the 11th or 12th century has revealed an extraordinary secret – it houses the mummy of an ancient Chinese Buddhist monk whose organs have been replaced by ancient Chinese scrolls.

Scientists knew that there was a mummy inside the statue, but the CT scan, carried out at the Meander Medical Centre at the request of the Drents museum in the Netherlands, gave them their first close-up look at the skeleton inside. That’s when they discovered the hidden paper scrolls and figured out that the mummy was the body of Liuquan, an ancient Buddhist master from the Chinese Meditation School. The discovery comes on the heels of news of another mummified monk in Mongolia, who some believe is simply in an advanced meditative state.




Source : boredpanda.com

CT Scans Reveal 1,000-Year-Old Mummy Of Chinese Monk Hidden Inside Ancient Buddhist Statue

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Saturday, March 7, 2015

An Armenian physics teacher Suren Manvelyan used his friends, colleagues and pupils as models to make these amazing ocular portraits. He never thought he would see anything like that – when viewed really close up our eyes look like some dramatic surfaces of far and unknown planets.

“It is quite natural when you shoot macro shots of insects and plants, but to try to make a picture of the eye? I did not expect these results,” says Suren.

“I was not aware they are of such complicated appearance. Everyday we see hundreds of eyes but do not even suspect they have such beautiful structure, like surfaces of unknown planets.”

Check out Close-Ups of the Human Eye






Now, check out Extreme Close-Ups of Animal Eyes

Blue-Yellow Macaw Parrot

Husky Dog

Llama

Nile Crocodile

Horse

Source : boredpanda.com

Extreme Close-Ups Of The Human Eye

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Thursday, February 19, 2015


The artificial womb exists. In Tokyo, researchers have developed a technique called EUFI — extrauterine fetal incubation. They have taken goat fetuses, threaded catheters through the large vessels in the umbilical cord and supplied the fetuses with oxygenated blood while suspending them in incubators that contain artificial amniotic fluid heated to body temperature.

For a moment, as you contemplate those fetal goats, it may seem a short hop to the Central Hatchery of Aldous Huxley’s imagination. In fact, in recent decades, as medicine has focused on the beginning and end stages of pregnancy, the essential time inside the woman’s body has been reduced. We are, however, still a long way from connecting those two points, from creating a completely artificial gestation. But we are at a moment when the fetus, during its obligatory time in the womb, is no longer inaccessible, no longer locked away from medical interventions.

The future of human reproductive medicine lies along the speeding trajectories of several different technologies. There is neonatology, accomplishing its miracles at the too-abrupt end of gestation. There is fetal surgery, intervening dramatically during pregnancy to avert the anomalies that kill and cripple newborns. There is the technology of assisted reproduction, the in-vitro fertilization and gamete retrieval-and-transfer fireworks of the last 20 years. And then, inevitably, there is genetics. All these technologies are essentially new, and with them come ethical questions so potent that the very inventors of these miracles seem half-afraid of where we may be heading.

Between Womb and Air

Modern neonatology is a relatively short story: a few decades of phenomenal advances and doctors who resuscitate infants born 16 or 17 weeks early, babies weighing less than a pound. These very low-birthweight babies have a survival rate of about 10 percent. Experienced neonatologists are extremely hesitant about pushing the boundaries back any further; much research is aimed now at reducing the severe morbidity of these extreme preemies who do survive.

”Liquid preserves the lung structure and function,” says Thomas Shaffer, professor of physiology and pediatrics at the School of Medicine at Temple University. He has been working on liquid ventilation for almost 30 years. Back in the late 1960′s, he looked for a way to use liquid ventilation to prevent decompression sickness in deep-sea divers. His technology was featured in the book ”The Abyss,” and for the movie of that name, Hollywood built models of the devices Shaffer had envisioned. As a postdoctoral student in physiology, he began working with premature infants. Throughout gestation, the lungs are filled with the appropriately named fetal lung fluid. Perhaps, he thought, ventilating these babies with a liquid that held a lot of oxygen would offer a gentler, safer way to take these immature lungs over the threshold toward the necessary goal of breathing air. Barotrauma, which is damage done to the lungs by the forced air banging out of the ventilator, would thus be reduced or eliminated.

Today, in Shaffer’s somewhat labyrinthine laboratories in Philadelphia, you can come across a ventilator with pressure settings that seem astoundingly low; this machine is set at pressures that could never force air into stiff newborn lungs. And then there is the long bubbling cylinder where a special fluorocarbon liquid can be passed through oxygen, picking up and absorbing quantities of oxygen molecules. This machine fills the lungs with fluid that flows into the tiny passageways and air sacs of a premature human lung.

Shaffer remembers, not long ago, when many people thought the whole idea was crazy, when his was the only team working on filling human lungs with liquid. Now, liquid ventilation is cited by many neonatologists as the next large step in treating premature infants. In 1989, the first human studies were done, offering liquid ventilation to infants who were not thought to have any chance of survival through conventional therapy. The results were promising, and bigger trials are now under way. A pharmaceutical company has developed a fluorocarbon liquid that has the capacity to carry a great deal of dissolved oxygen and carbon dioxide — every 100 milliliters holds 50 milliliters of oxygen. By putting liquid into the lung, Shaffer and his colleagues argue, the lung sacs can be expanded at a much lower pressure.

”I wouldn’t want to push back the gestational age limit,” Shaffer says. ”I want to eliminate the damage.” He says he believes that this technology may become the standard. By the year 2000, these techniques may be available in large centers. Pressed to speculate about the more distant future, he imagines a premature baby in a liquid-dwelling and a liquid-breathing intermediate stage between womb and air: Immersed in fluid that would eliminate insensible water loss you would need a sophisticated temperature-control unit, a ventilator to take care of the respiratory exchange part, better thermal control and skin care.

The Fetus as Patient

The notion that you could perform surgery on a fetus was pioneered by Michael Harrison at the University of California in San Francisco. Guided by an improved ultrasound technology, it was he who reported, in 1981, that surgical intervention to relieve a urinary tract obstruction in a fetus was possible.

”I was frustrated taking care of newborns,” says N. Scott Adzick, who trained with Harrison and is surgeon in chief at the Children’s Hospital of Philadelphia.

When children are born with malformations, damage is often done to the organ systems before birth; obstructive valves in the urinary system cause fluid to back up and destroy the kidneys, or an opening in the diaphragm allows loops of intestine to move up into the chest and crowd out the lungs. ”It’s like a lot of things in medicine,” Adzick says, ”if you’d only gotten there earlier on, you could have prevented the damage. I felt it might make sense to treat certain life-threatening malformations before birth.”

Adzick and his team see themselves as having two patients, the mother and the fetus. They are fully aware that once the fetus has attained the status of a patient, all kinds of complex dilemmas result. Their job, says Lori Howell, coordinator of Children’s Hospital’s Center for Fetal Diagnosis and Treatment, is to help families make choices in difficult situations. Terminate a pregnancy, sometimes very late? Continue a pregnancy, knowing the fetus will almost certainly die? Continue a pregnancy, expecting a baby who will be born needing very major surgery? Or risk fixing the problem in utero and allow time for normal growth and development?

The first fetal surgery at Children’s Hospital took place seven months ago. Felicia Rodriguez, from West Palm Beach, Fla., was 22 weeks pregnant. Through ultrasound, her fetus had been diagnosed as having a congenital cystic adenomatoid malformation a mass growing in the chest, which would compress the fetal heart, backing up the circulation, killing the fetus and possibly putting the mother into congestive heart failure.


When the fetal circulation started to back up, Rodriguez flew to Philadelphia. The surgeons made a Caesarean-type incision. They performed a hysterotomy by opening the uterus quickly and bloodlessly, and then opened the amniotic sac and brought out the fetus’s arm, exposing the relevant part of the chest. The mass was removed, the fetal chest was closed, the amniotic membranes sealed with absorbable staples and glue, the uterus was closed and the abdomen was sutured. And the pregnancy continued — with special monitoring and continued use of drugs to prevent premature labor. The uterus, no longer anesthetized, is prone to contractions. Rodriguez gave birth at 35 weeks’ gestation, 13 weeks after surgery, only 5 weeks before her due date. During those 13 weeks, the fetal heart pumped normally with no fluid backup, and the fetal lung tissue developed properly. Roberto Rodriguez 3d was born this May, a healthy baby born to a healthy mother.

This is a new and remarkable technology. Children’s Hospital of Philadelphia and the University of California at San Francisco are the only centers that do these operations, and fewer than a hundred have been done. The research fellows, residents working in these labs and training as the next generation of fetal surgeons, convey their enthusiasm for their field and their mentors in everything they say. When you sit with them, it is impossible not to be dazzled by the idea of what they can already do and by what they will be able to do. ”When I dare to dream,” says Theresa Quinn, a fellow at Children’s Hospital, ”I think of intervening before the immune system has time to mature, allowing for advances that could be used in organ transplantation to replacement of genetic deficiencies.”

But What Do We Want?

Eighteen years ago, in-vitro fertilization was tabloid news: test-tube babies! Now IVF is a standard therapy, an insurance wrangle, another medical term instantly understood by most lay people. Enormous advertisements in daily newspapers offer IVF, egg-donation programs, even the newer technique of ICSI intracytoplasmic sperm injection as consumer alternatives. It used to be, for women at least, that genetic and gestational motherhood were one and the same. It is now possible to have your own fertilized egg carried by a surrogate or, much more commonly, to go through a pregnancy carrying an embryo formed from someone else’s egg.

Given the strong desire to be pregnant, which drives many women to request donor eggs and go through biological motherhood without a genetic connection to the fetus, is it really very likely that any significant proportion of women would take advantage of an artificial womb? Could we ever reach a point where the desire to carry your own fetus in your own womb will seem a willful rejection of modern health and hygiene, an affected earth-motherism that flies in the face of common sense — the way I feel about mothers in Cambridge who ostentatiously breast-feed their children until they are 4 years old?

I would argue that God in her wisdom created pregnancy so Moms and babies could develop a relationship before birth, says Alan Fleischman, professor of pediatrics at Albert Einstein College of Medicine in New York, who directed the neonatal program at Montefiore Medical Center for 20 years.

Mary Mahowald, a professor at the MacLean Center for Clinical Medical Ethics at the University of Chicago, and one of her medical students surveyed women about whether they would rather be related to a child gestationally or genetically, if they couldn’t choose both. A slight majority opted for the gestational relationship, caring more about carrying the pregnancy, giving birth and nursing than about the genetic tie. ”Pregnancy is important to women,” Mahowald says. ”Some women might prefer to be done with all this — we hire our surrogates, we hire our maids, we hire our nannies — but I think these things are going to have very limited interest.”


Susan Cooper, a psychologist who counsels people going through infertility workups, isn’t so sure. Yes, she agrees, many of the patients she sees have ”an intense desire to be pregnant but it’s hard to know whether that’s a biological urge or a cultural urge.”

And Arthur L. Caplan, director of the Center for Bioethics at the University of Pennsylvania, takes it a step further. Thirty years from now, he speculates, we will have solved the problem of lung development; neonatology will be capable of saving 15- and 16-week-old fetuses. There will be many genetic tests available, easy to do, predicting the risks of acquiring late-onset diseases, but also predicting aptitudes, behavior traits and aspects of personality. There won’t be an artificial womb available, but there will be lots of prototypes, and women who can’t carry a pregnancy will sign up to use the prototypes in experimental protocols. Caplan also predicts that ”there will be a movement afoot which says all this is unnecessary and unnatural, and that the way to have babies is sex and the random lottery of nature a movement with the appeal of the environmental movement today.” Sixty years down the line, he adds, the total artificial womb will be here. ”It’s technologically inevitable. Demand is hard to predict, but I’ll say significant.”

It all used to happen in the dark — if it happened at all. It occurred well beyond our seeing or our intervening, in the wet, lightless spaces of the female body. So what changes when something as fundamental as human reproduction comes out of the closet, so to speak? Are we, in fact, different if we take hands-on control over this most basic aspect of our biology? Should we change our genetic trajectory and thus our evolutionary path? Eliminate defects or eliminate differences or are they one and the same? Save every fetus, make every baby a wanted baby, help every wanted child to be born healthy — are these the same? What are our goals as a society, what are our goals as a medical profession, what are our goals as individual parents — and where do these goals diverge?

”The future is rosy for bioethicists,” Caplan says.
Perri Klass’s most recent book is ”Baby Doctor.” She is a pediatrician at Boston Medical Center.

Source:earthweareone.com

The Artificial Womb Is Born: Welcome To The WORLD Of The MATRIX

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Tuesday, February 10, 2015

NASA's fleet of satellites and its astronauts aboard the International Space Station took a slew of incredibly beautiful images of Earth this year. From erupting volcanoes and wildfire scars to idyllic islands and surreal cloud formations, here are our favorites.


Above, Pavlof volcano in the Aleutian arc erupts in this image captured by astronauts on the International Space Station on May 18, 2013. Below, the eruption plume extends over the Pacific ocean.

#2

A mix of harvested and ripening agricultural fields in eastern Kazakhstan was captured Sept. 9, 2013 by the Landsat 8 satellite, launched this year by NASA and operated by the USGS. (USGS/NASA)

#3

Supertyphoon Haiyan the day before it made landfall in the Philippines. The coast of the Philippines can be seen outlined on the far left of the image. Captured by NASA's Aqua satellite on Nov. 7 2013.

#4

Running left to right through the center of this image is the scar from the EF-5 tornado that ran through Moore, Oklahoma on May 20, 2013 killing at least 24, injuring 377 and likely topping $2 billion in damages. Captured by NASA's Terra satellite on June 2, 2013. (NASA).

#5

The Torres del Paine National Park in Chilean Patagonia as captured on Jan. 21, 2013 by NASA’s Earth Observing-1 (EO-1) satellite. (NASA).

#6

Guadalupe Island, located 150 miles off the tip of Baja California is trailed by von Karman vortices in this image captured on by an astronaut on the International Space Station on Aug. 4, 2013. Gravity waves appear in the upper right of the image. (NASA).

#7

This image of Princess Charlotte Bay in Australia was captured by the NASA/USGS satellite Landsat 8 on April 20, 2013. (USGS/NASA).

#8

This image sand dunes in Australia's Great Sandy Desert was taken by an astronaut on the International Space Station on Mar. 25, 2013. (NASA).

#9

This image of Korangi in coastal Pakistan was taken by an astronaut on the International Space Station on Apr. 20, 2013. (NASA).

#10

This image is a precise recreation of the famous 1968 "Earthrise" photo taken by astronaut William Anders on the Apollo 8 mission. In the new image, the Moon's surface is based on data from the Lunar Reconaissance Mission, the clouds on Earth are based on the Environmental Science Services Administration 7 satellite from December 24, 1968, and the land surface comes from the Earth Observatory’s Terra MODIS Blue Marble. (NASA)

Source: wired.com

The Most Amazing Images NASA Took of Earth From Space

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On the night of January 22nd, the shores of Hong Kong glowed blue with wave upon wave of beautiful bioluminescent water in a phenomenon commonly known as Sea Sparkle. However, this magical display, caused by blooms of a microscopic dinoflagellate called Noctiluca scintillans, was brought on by something less-than-inspiring: environmental pollution.

Noctiluca glow when they’re disturbed, which is why the blooms are primarily visible on the shores, where they’re tossed by waves. This recent bloom was caused by agricultural runoff – fertilizers and other chemicals washed from farmland into the sea by rain. The Noctiluca that feed on these chemicals are not toxic in and of themselves, but other similar organisms are, and the ammonia they excrete as waste can help make the toxins released by other blooming microorganisms even worse.

For the time being, however, photographers willing to spend the night on some long-exposure photography are being treated to a truly special opportunity!





Source: boredpanda.com

Bioluminescent Plankton Glow In Bloom On The Shores Of Hong Kong

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