Sunday, 8 March 2015

Sensing skin' quickly detects cracks, damage in concrete structures

Date: March 08, 2015

Source: North Carolina State University

Summary: Researchers have developed new 'sensing skin' technology designed to serve as an early warning system for concrete structures, allowing authorities to respond quickly to damage in everything from nuclear facilities to bridges.


The “sensing skin” technology detects cracks in concrete (as in top image) and reports when and where the damage took place.


Researchers from North Carolina State University and the University of Eastern Finland have developed new "sensing skin" technology designed to serve as an early warning system for concrete structures, allowing authorities to respond quickly to damage in everything from nuclear facilities to bridges.

"The sensing skin could be used for a wide range of structures, but the impetus for the work was to help ensure the integrity of critical infrastructure such as nuclear waste storage facilities," says Dr. Mohammad Pour-Ghaz, an assistant professor of civil, construction and environmental engineering at NC State and co-author of a paper describing the work.
"The idea is to identify problems quickly so that they can be addressed before they become big problems and -- in the case of some critical infrastructure -- so that public safety measures can be implemented," Pour-Ghaz says.
The skin is an electrically conductive coat of paint that can be applied to new or existing structures. The paint can incorporate any number of conductive materials, such as copper, making it relatively inexpensive.
Electrodes are applied around the perimeter of a structure. The sensing skin is then painted onto the structure, over the electrodes. A computer program then runs a small current between two of the electrodes at a time, cycling through a number of possible electrode combinations.
Every time the current runs between two electrodes, a computer monitors and records the electrical potential at all of the electrodes on the structure. This data is then used to calculate the sensing skin's spatially distributed electrical conductivity. If the skin's conductivity decreases, that means the structure has cracked or been otherwise damaged.
The researchers have developed a suite of algorithms that allow them to both register damage and to determine where the damage has taken place.
"Determining the location of the damage based on the measured electrode potentials is a challenging mathematical problem," says Dr. Aku Seppänen, an Academy Research Fellow in the Department of Applied Physics at the University of Eastern Finland and co-author of the paper. "We had to develop new computational methods to more reliably determine where the damage is. Ultimately, I think our work represents an advance over previous algorithms in terms of accuracy."
The researchers have demonstrated the effectiveness and accuracy of the sensing skin on a small scale, using concrete beams less than a meter wide.
"Our next step is to extend this to large geometries," Pour-Ghaz says. "We want to show that this will work on real-world structures."
The paper, "Electrical impedance tomography-based sensing skin for quantitative imaging of damage in concrete," was published online June 18 in the journal Smart Materials and Structures. The research was supported in part by the Academy of Finland.

Cement converted into an electrical conductor

Date: March 8, 2015

Source: Association RUVID

Summary: Researchers have developed a cementitious material incorporating carbon nano-fibers in its composition, turning cement into an excellent conductor of electricity capable of performing functions beyond its usual structural function.

Researchers at the University of Alicante have developed a cementitious material incorporating carbon nano-fibers in its composition, turning cement into an excellent conductor of electricity capable of performing functions beyond its usual structural function.

This new technology, developed and patented by the UA Civil Engineering Department's Research Group in Multifunctional Concrete Conductors, allows, among other functions, the material to heat up due to the passage of current.
"The technology allows buildings' premises to heat or prevents the formation of ice on infrastructure, such as highways, railways, roads, airstrips and other elements," lecturer Pedro Garcés, head of research, explains.
"To obtain a cementitious compound effective as the heating element, this should have a low resistivity. This is not achieved in conventional concrete because they are poor conductors of electricity. However, this can be achieved by the addition of conductive materials such as, for example, carbonaceous materials," Pedro Garcés adds.
In this way, a new conductive compound with much more interesting properties is achieved since it keeps the structural properties of concrete and does not compromise the durability of the structures themselves.
This new product has a great versatility, since any existing structure or surface can be coated with it, keeping thermal control in it by applying continuous electric current.
At present, the research group has developed trials to test the technology in plasters with carbonaceous materials. These tests have given very satisfactory results, obtaining optimal properties of heating the material with minimum energy consumption.

Electrically conductive concrete to clear snow and ice from runways

 Date: March 8, 2015

Source: Iowa State University

Summary: Researchers are developing technologies -- including heated pavements, electrically conductive concrete and nanostructured superhydrophobic coatings -- to quickly and economically clear snow and ice from airport runways.


AMES, Iowa – Alireza Sassani turned a switch and sent 60 volts of electricity into a small block of concrete. A few minutes later the Iowa State University doctoral student took some measurements and found the block’s surface temperature had risen from 64 degrees Fahrenheit to 189 degrees.
Next, Therin Young stepped up to the demonstration table and carefully squeezed drops of green-colored water on top of another set of small concrete blocks. The drops beaded on the concrete and, with the help of a little tilting by the master’s student, rolled right off the edge.
And then Halil Ceylan opened a walk-in freezer and showed off a pile of snow from one of Iowa’s winter storms. Behind the snow was a 2½-foot by 3½-foot concrete slab that was wet, but drying. Some 45 minutes earlier, that slab was buried in the snow.
All three technologies – electrically conductive concrete, nano-structured superhydrophobic coatings and hydronic heated pavements – are designed to quickly, economically and sustainably clear snow and ice from airport runways.
“These new technologies could prevent flight delays and keep airports accessible,” said Ceylan, an Iowa State associate professor of civil, construction and environmental engineering and director of the Program for Sustainable Pavement Engineering and Research at Iowa State’s Institute for Transportation.
“This provides a safe working platform for airport personnel and passengers,” he said. “And it’s environmentally friendly – airports don’t have to use tons of de-icing salts. This also translates into reduced emissions and costs because airports don’t have to treat the wastewater associated with de-icing of airport pavements, wich is otherwise mandatory.”
The pavement research is part of the Federal Aviation Administration’s Center of Excellence Partnership to Enhance General Aviation Safety, Accessibility and Sustainability, or PEGASAS. The partnership was established in 2012 and is led by researchers at Purdue University. Other core members of the partnership are Iowa State, The Ohio State University, Georgia Institute of Technology, Florida Institute of Technology and Texas A&M University.
The FAA’s centers of excellence establish cost-sharing research partnerships with the federal government, universities and industry. PEGASAS researchers are studying a variety of general aviation issues including airport technology, flight safety and adverse weather operations.
The program is providing about $750,000 for Iowa State’s studies of snow- and ice-free runway pavements. The university is matching those funds.
Ceylan has assembled a team of 19 faculty, staff and students to develop the pavement technologies and analyze their costs and benefits. He said Iowa State, as home of the National Concrete Pavement Technology Center, is the perfect place to research and develop new ways to keep runways clear of snow and ice.
And so back in the Town Engineering Building’s pavements lab:
● Researchers have been adding various mixes of electrically conductive carbon fibers and powders into pavement materials. Put an electrical charge through the resulting pavements and they’re quickly hot enough to melt snow and ice.
The researchers are looking for just the right mix of pavement conductivity, workability, durability, economics and safety.
● Researchers have been spraying various nano-materials (including PTFE, DuPont’s Teflon®) onto pavement test samples. The idea is to produce pavements that repel water. That would prevent snow and ice from sticking and make it easier for plows to clean up after a storm.
“This would be like a lotus leaf,” Ceylan said. “The water doesn’t stick to the surface.”
● Researchers have been pouring concrete around copper pipes to create test slabs for hydronic systems. The systems circulate heated liquid through the pipes, warming the pavement and melting any snow and ice from the surface.
Ceylan said one of the biggest challenges with the heated pavement technology is developing the advanced construction techniques to build large, reliable and economical systems.
So far, Ceylan said studies of all three technologies are moving ahead, showing promise and looking feasible. But larger-scale, outdoor tests are still needed. He’s hoping to install outdoor test panels – perhaps on campus – within the next year or so.
And while several major airports have expressed interest in testing the snow- and ice-clearing technologies, Ceylan said the real target is small, general aviation airports.
“General aviation airports don’t have the personnel and the equipment that the big airports have,” he said. “And so sometimes in the winter they just shut down. General aviation airports aren’t just concerned about cutting snow-removal costs, it’s a matter of keeping the airports open.

System to turn wastewater into fresh water developed

A Missouri University of Science and Technology professor has shown that improving wastewater treatment and saving energy are not only essential, but they're also compatible.
Dr. Jianmin Wang, professor of civil, architectural and environmental engineering at Missouri S&T, has developed multiple wastewater treatment technologies that produce freshwater that is not only cleaner than wastewater treated using traditional methods, but also requires less maintenance and energy. Additionally, his inventions can be used to retrofit existing wastewater treatment plants.
On Feb. 6, Missouri Gov. Jay Nixon announced nearly $1.1 million in grants for the Small Community Engineering Assistance Program, implemented through the Department of Natural Resources to help communities with wastewater engineering costs, whether it's commissioning a report or making repairs and upgrades.
Although his technology is too new, in regulatory terms, to be of use in the grant recipient communities, Wang says his technology is superior to existing ones in terms of cost and treatment efficiency.
Wang will discuss his treatment systems during a presentation titled, "Harnessing Energy and Freshwater from Wastewater: Reversing the Environmental Footprint" on Feb. 27 at the Missouri S&T campus. Part of his talk will focus on comparing how much energy existing systems use and how much his can save.
Wang says 0.8 percent of America's energy use is spent on wastewater treatment. Much of that energy is used to aerate the tanks where wastewater is treated. The energy is used to feed oxygen to the microorganisms that consume the waste, and traditionally wastewater treatment plants maintain an oxygen concentration of 2 milligrams per liter to feed the bugs in the tanks, "which makes them happy," Wang says.
The prevailing thought has been that providing less than 2 milligrams per liter of oxygen would make the microorganisms "unhappy." But Wang does not believe that is an issue, saying that if you feed them at a lower concentration, such as 0.5 milligram per liter, it makes them a little less happy, but the microorganisms will live longer and enrich more -- plus you use 30 percent less energy during oxygen infusion to produce the same results.
"You can make them a little unhappy," Wang says, "because bugs do not have a union." He has also developed another treatment system called an Alternating Anaerobic-Anoxic-Oxic (A3O) process that "can achieve superior effluent quality since it can remove organic pollutants plus nitrogen and phosphorus nutrients," Wang says. It does this without chemicals, and its effluent contains only 5 milligrams per liter of total nitrogen and 0.5 milligram per liter of total phosphorus. It also saves more than 10 percent of energy compared to the conventional pre-anoxic process, which has significantly less total nitrogen and total phosphorus removal.
With its high performance, high energy efficiency and low operational costs, on a large scale the technology could help curb global surface water eutrophication, which is one of the National Academy of Engineering's Grand Challenges -- the accessibility of freshwater.
Eutrophication is the enrichment of an ecosystem with chemical nutrients, typically nitrogen, phosphorus or both. When excessive nitrogen and phosphorus levels are present, undesirable side effects such as algae blooms can occur. When algae die, they decompose. The decomposition consumes oxygen, and with less oxygen, naturally occurring aquatic plants, fish, crustaceans and other organisms can die. Algae blooms also produce algal toxins that directly pollute the source of drinking water intake. "It is happening in Lake Erie, many other places in the nation and throughout the world," Wang says.
Wang has also developed a self-mixing anaerobic digester, which can effectively convert wastewater sludge and other organic waste to biogas energy. It improves environmental quality by removing the sludge, and it also recovers a useful resource during the process. Additionally, his high-rate digester operates itself, without an external energy hookup.
Based on his calculations, Wang says a combination of his technologies can produce a net 10 percent energy gain in contrast to the 27 percent net energy use the wastewater industry currently operates on.
Although the water his systems produce is suitable for irrigation, making it potable is also possible. "People are dying for the technology that turns wastewater into freshwater," Wang says.
Sometimes, literally dying.
In military battlefield camps, water must be hauled in by convoy, resulting in casualties along the known convoy routes. That's where Wang's small-scale deployable baffled bioreactor (dBBR) could make a difference, and that's why it is being tested at the Naval Surface Warfare Center in Carderock, Maryland. The unit has been 88 percent more energy efficient than military guidelines when tested with municipal wastewater, and it produces high effluent quality with both low biochemical oxygen demand and suspended solids. In addition, it achieves tertiary treatment quality instead of the required secondary treatment guidelines with minimal operator attention.
Wang, who also co-funded Frontier Environmental Technology for technology demonstration and promotion, says he has received a military request to develop an operator training course for the dBBR.
"Advances such as these demonstrated by Professor Wang represent the next wave of wastewater management," says Dr. Glen Daigger, past president of the International Water Association, a recognized authority in wastewater technology and a member of the National Academy of Engineering, "Given growing water and resource constraints on the planet, we must turn to sources such as used water -- to both supplement our water supply and to do this with a reduced environment footprint."

Engineering the Perfect Baby

Engineering the Perfect Baby
Scientists are developing ways to edit the DNA of tomorrow’s children. Should they stop before it’s too late?
WHY IT MATTERS
New gene editing techniques make it possible to precisely modify human DNA.
If anyone had devised a way to create a genetically engineered baby, I figured George Church would know about it.
At his labyrinthine laboratory on the Harvard Medical School campus, you can find researchers giving E. Coli a novel genetic code never seen in nature. Around another bend, others are carrying out a plan to use DNA engineering to resurrect the woolly mammoth. His lab, Church likes to say, is the center of a new technological genesis—one in which man rebuilds creation to suit himself.
When I visited the lab last June, Church proposed that I speak to a young postdoctoral scientist named Luhan Yang, a Harvard recruit from Beijing who’d been a key player in developing a new, powerful technology for editing DNA called CRISPR-Cas9. With Church, Yang had founded a small company to engineer the genomes of pigs and cattle, sliding in beneficial genes and editing away bad ones.
As I listened to Yang, I waited for a chance to ask my real questions: Can any of this be done to human beings? Can we improve the human gene pool? The position of much of mainstream science has been that such meddling would be unsafe, irresponsible, and even impossible. But Yang didn’t hesitate. Yes, of course, she said. In fact, the Harvard laboratory had a project to determine how it could be achieved. She flipped open her laptop to a PowerPoint slide titled “Germline Editing Meeting.” 
Here it was: a technical proposal to alter human heredity.
“Germ line” is biologists’ jargon for the egg and sperm, which combine to form an embryo. By editing the DNA of these cells or the embryo itself, it could be possible to eliminate disease genes and to pass those genetic fixes on to future generations. Such a technology could be used to rid families of scourges like cystic fibrosis. It might also be possible to install genes that offer lifelong protection against infection, Alzheimer’s, and, Yang told me, maybe the effects of aging. These would be history-making medical advances that could be as important to this century as vaccines were to the last.
The fear is that germ line engineering is a path toward a dystopia of super people and designer babies for those who can afford it.
That’s the promise. The fear is that germ line engineering is a path toward a dystopia of super people and designer babies for those who can afford it. Want a child with blue eyes and blond hair? Why not design a highly intelligent group of people who could be tomorrow’s leaders and scientists?
Just three years after its initial development, CRISPR technology is already widely used by biologists as a kind of search-and-replace tool to alter DNA, even down to the level of a single letter. It’s so precise that it’s widely expected to turn into a promising new approach for gene therapy treatment in people with devastating illnesses. The idea is that physicians could directly correct a faulty gene, say, in the blood cells of a patient with sickle-cell anemia (see “Genome Surgery”). But that kind of gene therapy wouldn’t affect germ cells, and the changes in the DNA wouldn’t get passed to future generations.
In contrast, the genetic changes created by germ line engineering would be passed on, and that’s what has always made the idea seem so objectionable. So far, caution and ethical concerns have had the upper hand. A dozen countries, not including the United States, have banned germ line engineering, and scientific societies have unanimously concluded that it would be too risky to do. The European Union’s convention on human rights and biomedicine says tampering with the gene pool would be a crime against “human dignity” and human rights.
But all these declarations were made before it was actually feasible to precisely engineer the germ line. Now, with CRISPR, it is possible.
The experiment Yang described, though not simple, would go like this: The researchers hoped to obtain, from a hospital in New York, the ovaries of a woman undergoing surgery for ovarian cancer, caused by a mutation in a gene called BRCA1. Working with another Harvard laboratory, that of antiaging specialist David Sinclair, they would extract immature egg cells that could be coaxed to grow and divide in the laboratory. Yang would use CRISPR in these cells to correct the DNA of the BRCA1 gene. The objective is to create a viable egg without the genetic error that caused the woman’s cancer.
As with several other scientists whom I’d asked about human germ line engineering, Yang stopped replying to my questions, so it’s hard to know if the experiment she described is occurring, canceled, or pending publication. Church, in a phone call, termed it a “non-project,” at least until it has generated a publishable result, though Sinclair said a collaboration between the labs is ongoing. (After this story was published, Yang called to say she had not worked on the experiment for several months.) Regardless of the fate of that particular experiment, human germ line engineering has become a burgeoning research concept. At least one other center in Boston is working on it, as are scientists in China, in the U.K., and at a biotechnology company called OvaScience, based in Cambridge, Massachusetts, that boasts some of the world’s leading fertility doctors on its advisory board.
The objective of these groups is to demonstrate that it’s possible to produce children free of specific genes that cause inherited disease. If it’s possible to correct the DNA in a woman’s egg, or a man’s sperm, those cells could be used in an in vitro fertilization (IVF) clinic to produce an embryo and then a child. It might also be possible to directly edit the DNA of an early-stage IVF embryo using CRISPR. Several people interviewed by MIT Technology Review said that such experiments had already been carried out in China and that results describing edited embryos were pending publication. These people didn’t wish to comment publicly because the papers are under review.
All this means that germ line engineering is much farther along than anyone imagined. “What you are talking about is a major issue for all humanity,” says Merle Berger, one of the founders of Boston IVF, a network of fertility clinics that is among the largest in the world and helps more than a thousand women get pregnant each year. “It would be the biggest thing that ever happened in our field,” he says. Berger predicts that repairing genes for serious inherited disease will win wide public acceptance, but beyond that, the technology would cause a public uproar because “everyone would want the perfect child” and it could lead to picking and choosing eye color and eventually intelligence. “These are things we talk about all the time. But we have never had the opportunity to do it.”
Editing Embryos
How easy would it be to edit a human embryo using CRISPR? Very easy, experts say. “Any scientist with molecular biology skills and knowledge of how to work with [embryos] is going to be able to do this,” says Jennifer Doudna, a University of California, Berkeley, biologist who in 2012 codiscovered how to use CRISPR to edit genes.
To find out how it could be done, I visited the lab of Guoping Feng, a neurobiologist at MIT’s McGovern Institute for Brain Research, where a colony of marmoset monkeys is being established with the aim of using CRISPR to create accurate models of human brain diseases. To create the models, Feng will edit the DNA of embryos and then transfer them into female marmosets to produce live monkeys. One gene Feng hopes to alter is SHANK3. The gene is involved in how neurons communicate and, when it’s damaged in children, is known to cause autism.
“You can do it. But there really isn’t a medical reason. People say, well, we don’t want children born with this, or born with that—but it’s a completely false argument and a slippery slope toward much more unacceptable uses.”
Feng said that before CRISPR, it was not possible to introduce precise changes into a primate’s DNA, but last year the first gene-edited monkeys were born in Kunming, China (see “Monkeys Modified with Genome Editing”). The CRISPR system includes a gene-snipping enzyme and a guide molecule that can be programmed to target unique combinations of the DNA letters, A, G, C, and T; get these ingredients into a cell and they will cut and modify the targeted letters.
But CRISPR is not perfect—and it would be a very haphazard way to edit human embryos, as Feng’s efforts to create gene-edited marmosets show. To employ the CRISPR system in the monkeys, his students simply inject the chemicals into a fertilized egg, which is known as a zygote—the stage just before it starts dividing.
Feng said the efficiency with which CRISPR can delete or disable a gene in a zygote is about 40 percent, whereas making specific edits, or swapping DNA letters, should work less frequently—more like 20 percent of the time. Like a person, a monkey has two copies of most genes, one from each parent. Sometimes both copies get edited, but sometimes just one does, or neither. Only about half the embryos will lead to live birth, and of those that do, many could contain a mixture of cells with edited DNA and cells without. If you add up the odds, you find you’d need to edit about 20 embryos to get a live monkey with the edit you want. That’s not an insurmountable problem for Feng, since the MIT breeding colony will give him access to many monkey eggs and he’ll be able to generate many embryos.
However, it presents obvious problems for using the same process on humans. Putting the ingredients of CRISPR into a human embryo would be scientifically trivial. But it wouldn’t be practical for much just yet. This is one reason that many scientists view such an experiment—whether or not it has really occurred in China—with scorn, and see it more as a provocative bid to grab attention than real science. Rudolf Jaenisch, an MIT biologist who works across the street from Feng, and who in the 1970s created the first gene-modified mice, called attempts to edit human embryos “totally premature.” He said he hoped these papers would be rejected and never published. “It’s just a sensational thing that will stir things up. We know it’s possible, but is it of practical use? I kind of doubt it,” said Jaenisch.
But Feng told me he approves of the idea of germ line engineering. Isn’t the goal of medicine to reduce suffering? Considering the state of the technology, however, he thinks actual gene-edited humans are “10 to 20 years away.” Among other problems, CRISPR can introduce off-target effects or change bits of the genome far from where scientists had intended. Any human embryo altered with CRISPR today would carry the risk that its genome had been changed in unexpected ways. But, Feng said, such problems may eventually be ironed out and edited people will be born. “To me, it’s possible in the long run to dramatically improve health, lower costs. It’s a kind of prevention,” he said. “It’s hard to predict the future, but correcting disease risks is definitely a possibility and should be supported. I think it will be a reality.”
Editing Eggs
Elsewhere in Boston, scientists are exploring a different approach to engineering the germ line that is technically more demanding but likely more powerful. This strategy combines CRISPR with unfolding discoveries related to stem cells. Scientists at several centers, including Church’s, think they will soon be able to use stem cells to produce eggs and sperm in the laboratory. Unlike an embryo, stem cells can be grown and multiplied. Thus they could offer a vastly improved way to create edited offspring with CRISPR. The recipe goes like this: First, edit the genes of the stem cells. Second, turn them into an egg or sperm. Third, produce an offspring.
Some investors got an early view of the technique on December 17 at the Benjamin Hotel in Manhattan during commercial presentations by OvaScience, a company that was founded four years ago to commercialize the scientific work of Harvard’s Sinclair and Jonathan Tilly, an expert on egg stem cells and the chairman of the biology department at Northeastern University. “10 Breakthrough Technologies 2012: Egg Stem Cells” The company’s presentations were part of its successful effort to raise $132 million in new capital during January.
During the meeting, Sinclair, a velvet-voiced Australian whom Time last year named one of the “100 Most Influential People in the World,” took the podium and provided Wall Street with a peek at what he called “truly world-changing” developments. These, he said, would cause people to look back at this moment in time and recognize it as a new chapter in “how humans control their bodies,” because it would let parents determine “when and how they have children and how healthy those children are actually going to be.”
Ovascience has been collecting, and studying, what it believes are egg stem cells from the outer layer of women’s ovaries. The company has not yet perfected its stem cell technology—it has not reported that the eggs it grows in the lab are viable—but Sinclair predicted that functional eggs were “a when, and not an if.” Once the technology works, he said, infertile women will be able to produce hundreds of eggs, and maybe hundreds of embryos. Using DNA sequencing to analyze their genes, they could pick among them for the healthiest ones.
Genetically improved children may also be possible. Sinclair told the investors that he was trying to alter the DNA of these egg stem cells using gene editing, work he later told me he was doing with Church’s lab. “We think the new technologies with genome editing will allow it to be used on individuals who aren’t just interested in using IVF to have children but have healthier children as well, if there is a genetic disease in their family,” Sinclair told the investors. He gave the example of Huntington’s disease, caused by a gene that will trigger a fatal brain condition even in someone who inherits only one copy of it. Sinclair said gene editing could be used to remove the lethal gene defect from an egg cell. He described his goal, and that of OvaScience, as being to “correct those mutations before we generate your child. It’s still experimental, but there is no reason to expect it won’t be possible in coming years.” 


Sinclair spoke to me briefly on the phone as he travelled across snowed-in Boston in a cab, but later referred my questions to OvaScience. When I contacted OvaScience, Cara Mayfield, a spokeswoman, said its executives could not comment because of their travel schedules but confirmed that the company was working on treating inherited disorders with gene editing. What was surprising to me is that OvaScience’s research in “crossing the germ line,” as critics of human engineering sometimes put it, has generated scarcely any notice. In December 2013, OvaScience even announced it was putting $1.5 million into a joint venture with a synthetic biology company called Intrexon, whose R&D objectives include gene-editing egg stem cells to “prevent the propagation” of human disease “in future generations.”
When I reached Tilly at Northeastern, he laughed when I told him what I was calling about. “It’s going to be a hot-button issue,” he said. Tilly also said his lab was trying to edit egg cells with CRISPR “right now” to rid them of an inherited genetic disease that he didn’t want to name. Tilly emphasized that there are “two pieces of the puzzle”—one being stem cells and the other gene editing. The ability to create large numbers of egg stem cells is critical, because only with sizable quantities can genetic changes, using CRISPR, be stably introduced, characterized using DNA sequencing, and carefully studied to check for mistakes before producing an egg.
Tilly predicted that the whole end-to-end technology—cells to stem cells, stem cells to sperm or egg and then to offspring—would end up being worked out first in animals, such as cattle, either by his lab or by companies such as eGenesis, the spin-off from the Church lab working on livestock. But he isn’t sure what the next step should be with edited human eggs. You wouldn’t “willy nilly” want to fertilize one, he said. You’d be making a potential human being. And doing that would raise questions he’s not sure he can answer. He told me, “‘Can you do it?’ is one thing. If you can, then the most important questions come up. ‘Would you do it? Why would you want to do it? What is the purpose?’ As scientists we want to know if it’s feasible, but then we get into the bigger questions, and it’s not a science question, it’s a society question.”
Improving Humans
If germ line engineering becomes part of medical practice, it could lead to transformative changes in human well-being, with consequences to people’s life span, identity, and economic output. But it would create ethical dilemmas and social challenges. What if these improvements were available only to the richest societies, or the richest people? An in vitro fertility procedure costs about $20,000 in the United States. Add genetic testing and egg donation or a surrogate mother and the price soars towards $100,000.
Others believe the idea’s downfall is that medical reasons to follow through on it are lacking. Hank Greely, a law professor and ethicist at Stanford University, says proponents “can’t really say what it is good for.” The problem, says Greely, is that it’s already possible to test the DNA of IVF embryos and pick healthy ones, a process that adds about $4,000 to the cost of a fertility procedure. A man with Huntington’s, for instance, could have his sperm used to fertilize a dozen of his partner’s eggs. Half those embryos would not have the Huntington’s gene, and those could be used to begin a pregnancy.
Indeed, some people are adamant that germ line engineering is being pushed ahead with “false arguments.” That is the view of Edward Lanphier, CEO of Sangamo Biosciences, a California biotechnology company that is using another gene editing technique, called zinc finger nucleases, to try to treat HIV in adults by altering their blood cells. “We’ve looked at [germ line engineering] for a disease rationale, and there is none,” he says. “You can do it. But there really isn’t a medical reason. People say, well, we don’t want children born with this, or born with that—but it’s a completely false argument and a slippery slope toward much more unacceptable uses.”
Critics cite a host of fears. Children would be the subject of experiments. Parents would be influenced by genetic advertising from IVF clinics. Germ line engineering would lead to “positive eugenics,” encouraging the spread of allegedly superior genes. And it would affect people not yet born, without their being able to agree to it. The American Medical Association, for instance, holds the position that germ line engineering shouldn’t be done “at this time” because it “affects the welfare of future generations” and could cause “unpredictable and irreversible results.” But like a lot of official statements against germ line engineering, the AMA’s, which was last updated in 1996, predates today’s technology. “A lot of people just agreed to these statements. It wasn’t hard to renounce something that you couldn’t do,” says Greely.
Others predict that hard-to-oppose medical uses will be identified. A couple might have several genetic diseases at once, and not find a suitable embryo. Treating infertility is another possibility. Some men don’t produce any sperm, a condition called azoospermia. One cause is a genetic defect in which a region of about one to six million DNA letters is missing from their Y chromosome. It might be possible, says Werner Neuhausser, a young Austrian doctor who splits his time between Boston IVF, the fertility-clinic network, and Harvard’s Stem Cell Institute, to take a skin cell from such a man, turn it into a stem cell, repair the DNA, and then make sperm. “That will change medicine forever, right? You could cure infertility, that is for sure,” says Neuhausser.
I spoke with Church several times by telephone over the last few months, and he told me what’s driving everything is the “incredible specificity” of CRISPR. Although not all the details have been worked out, he thinks the technology could replace DNA letters essentially without side effects. He says this is what makes it “tempting to use.” Church says his laboratory is focused mostly on experiments in engineering animals. He added that his lab would not make or edit human embryos, calling such a step “not our style.”
To some scientists, the explosive advance of genetics and biotech means germ line engineering is inevitable. Ultimately, if the benefits seem to outweigh the risks, medicine would take the chance.
What is Church’s style is human enhancement. And he’s been making a broad case that CRISPR can do more than eliminate disease genes. It can lead to augmentation. At meetings of groups of people known as “transhumanists,” who are interested in next steps for human evolution, Church likes to show a slide on which he lists naturally occurring variants of around 10 genes that, when people are born with them, give them extraordinary qualities or resistance to disease. One makes your bones so hard they’ll break a surgical drill. Another drastically cuts the risk of heart attacks. And a variant of the gene for the amyloid precursor protein, or APP, was found by Icelandic researchers to protect against Alzheimer’s. People with it never get dementia and remain sharp into old age.
Church thinks CRISPR could be used to provide people with favorable versions of genes, making DNA edits that would act as vaccines—not against viruses but against some of the most common diseases we face today. Although Church told me anything “edgy” should only be done to adults who can agree to it, it’s obvious to him that the earlier such interventions occur, the better.
Church tends to dodge questions about genetically modified babies. The idea of improving the human species, he wrote in the introduction to Regenesis, his 2012 book on synthetic biology—whose cover was a painting by Eustache Le Sueur of a bearded God creating the world—has always had “enormously bad press.” But that’s ultimately what he’s suggesting: enhancements in the form of protective genes. “An argument will be made that the ultimate prevention is that the earlier you go, the better the prevention,” he told an audience at MIT’s Media Lab last spring. “I do think it’s the ultimate preventive, if we get to the point where it’s very inexpensive, extremely safe, and very predictable.” Church, who has a less cautious side, proceeded to tell the audience that he thought changing genes “is going to get to the point where it’s like you are doing the equivalent of cosmetic surgery.” 
Some thinkers have concluded that we should not pass up the chance to make improvements to our species. “The human genome is not perfect,” says John Harris, a bioethicist at Manchester University, in the U.K. “It’s ethically imperative to positively support this technology.” By some measures, public opinion in the U.S. is not particularly negative toward the idea. A Pew Research survey carried out last August found that 46 percent of adults approved of genetic modification of babies to reduce the risk of serious diseases. (The same survey found that 83 percent said doing so to make a baby smarter would be “taking medical advances too far.”)
Other observers say higher IQ is exactly what we should be considering. Nick Bostrom, a philosopher at Oxford University best known for his 2014 book Superintelligence, which raised alarms about the risks of artificial intelligence in computers, has also looked at whether humans could use reproductive technology to improve human intellect. Although the ways in which genes affect intelligence aren’t well understood and there are far too many relevant genes to permit easy engineering, such realities don’t dim speculation on the possibilities of high-tech eugenics.
What if everyone could be a little bit smarter? Or a few people could be a lot smarter? Even a small number of “super-enhanced” individuals, Bostrom wrote in a 2013 paper, could change the world through their creativity and discoveries, and through innovations that everyone else would use. In his view, genetic enhancement is as important an issue as climate change or long-range financial planning by nations, “since human problem-solving ability is a factor in every challenge we face.”
To some scientists, the explosive advance of genetics and biotech means germ line engineering is inevitable. Of course, safety questions would be paramount. Before there’s a genetically edited baby saying “Mama,” there would have to be tests in rats, rabbits, and probably monkeys, to make sure they are normal. But ultimately, if the benefits seem to outweigh the risks, medicine would take the chance. “It was the same with IVF when it first happened,” says Neuhausser. “We never really knew if that baby was going to be healthy at 40 or 50 years. But someone had to take the plunge.”
Wine Country
In January, on Saturday the 24th, around 20 scientists, ethicists, and legal experts traveled to Napa Valley, California, for a retreat among the vineyards at the Carneros Inn. They had been convened by Doudna, the Berkeley scientist who codiscovered how to edit genes with CRISPR. She had become aware, and concerned, that scientists were intent on crossing the germ line. Now she wanted to know: could they be stopped?
“We as scientists have come to appreciate that [CRISPR] is incredibly powerful. But that swings both ways. We need to make sure that it’s applied carefully,” Doudna told me. “The issue is especially human germ line editing and the appreciation that this is now a capability in everyone’s hands.”
At the meeting, along with ethicists like Greely, was Paul Berg, a Stanford biochemist known for having organized the Asilomar Conference in 1975, a historic forum at which biologists reached an agreement on how to safely proceed with recombinant DNA, the then newly discovered method of splicing DNA into bacteria.
Should there be an Asilomar for germ line engineering? Doudna thinks so, but the prospects for reaching such a consensus these days seem unlikely. Biotechnology research is now global, employing millions of people. There’s no single authority that speaks for science and no easy way to put the genie back in the bottle. Doudna told me that she hoped at least American scientists might come to a consensus that germ line research should be paused. Some people at the meeting said they would be signing a statement they would publish in a high-profile scientific journal, outlining their concerns. Doudna says she hopes that if U.S. scientists make a joint statement, it might influence researchers elsewhere in the world to cease their work.
Doudna believes a self-imposed pause should apply not only to altering embryos but also to using CRISPR to alter human eggs or sperm—as researchers at Harvard, Northeastern, and OvaScience are doing. “I don’t feel that those experiments are appropriate to do right now in human cells that could turn into a person,” she told me. “I feel that the research that needs to be done right now is to understand safety, efficacy, and delivery. And I think those experiments can be done in nonhuman systems. I would like to see a lot more work done before it’s done for germ line editing. I would favor a very cautious approach.”
Not everyone agrees germ line engineering is such a big worry, or that experiments should be padlocked. Greely notes that in the United States, there are piles of regulations to stand in the way of lab science morphing into a genetically modified baby anytime soon. “I would not want to use safety as an excuse for a non-safety-based ban,” says Greely, who says he pushed back against talk of a moratorium. But Greely also says he agreed to sign Doudna’s letter, which now reflects the consensus of the group. “Although I don’t view this as a crisis moment, I think it’s probably about time for us to have this discussion,” he says.
As news has spread of germ line experiments, some biotechnology companies working on CRISPR have realized they will have to take a stand. Nessan Bermingham is CEO of Intellia Therapeutics, a Boston startup, which raised $15 million last year to develop CRISPR into gene therapy treatments for adults or children. He says germ line engineering “is not on our commercial radar,” and he suggests that his company could use its patents to prevent anyone from commercializing it. “The technology is in its infancy,” he says. “It is not appropriate for people to even be contemplating germ line applications.”
Bermingham told me he never imagined he’d have to be taking a position on genetically modified babies so soon. Rewriting human heredity has always been a theoretical possibility. Suddenly it’s a real one. But wasn’t the point always to understand and control our own biology—to become masters over the processes that created us?
Doudna says she is also thinking about these issues. “It cuts to the core of who we are as people, and it makes you ask if humans should be exercising that kind of power. There are moral and ethical issues, but one of the profound questions is just the appreciation that if germ line editing is conducted in humans, that is changing human evolution,” Doudna told me. One reason she feels the research should stop is to give scientists a chance to spend more time explaining what their next steps could be. “Most of the public,” she says, “does not appreciate what is coming.”
19

Students launch desktop recycler that turns pop bottles into 3D printerplastic

Three engineering physics students at the University of British Columbia have developed a desktop plastic recycler and extruder that turns plastic waste into the material needed for 3D printing.

Called ProtoCycler, the machine can grind plastic, such as pop bottles and Lego, and melt it into a filament that can be fed into 3D printers.
ProtoCycler began as a fourth-year engineering project for inventors Dennon Oosterman, Alex Kay and David Joyce.
"We were concerned about the amount of plastic waste generated in our engineering projects, so we looked for a way to recycle that plastic back into usable filament," Oosterman said.
While there are other desktop filament extruders and plastic grinders on the market, ProtoCycler combines the two and is faster and easier to use. It can produce 10 feet of filament per minute – the fastest extruder on the market, says Oosterman.
A kilogram spool of filament created by ProtoCycler costs $5 if produced with plastic pellets available for purchase, or is free if produced from used plastic. The cheapest store-bought spool starts at $30.