Mostrando entradas con la etiqueta WYSS Institute. Mostrar todas las entradas
Mostrando entradas con la etiqueta WYSS Institute. Mostrar todas las entradas

martes, 23 de junio de 2015

The Best Design of the Year (Maybe Ever?)

Every year, the Design Museum in London picks a single object and names it the best design of the year. It’s pretty bad sometimes! But this year, the museum picked a winner: A chip that replaces animal test subjects with a complex package of human cells.




It’s called a lung-on-a-chip--a name that is very literally true, lest you think this is simply a computer chip programmed to mimic a lung. It comes from Harvard’s Wyss Institute for Biologically Inspired Engineering, which explains in a great video how it works.

This clear, simple-looking brick of plastic actually contains complex human cells, arranged in a simplified version of the way a lung works: Along the central channels, there’s a lining of human lung cells separated from a lining of capillary blood cells by a porous membrane, just like the air sacs in your lung:


On each side, channels create the flexing movement that an air sac does while you breathe.


In other words, it’s all of the biological complexity of your lungs distilled onto a computer chip.

Scientists can, for example, introduce bacteria to the channels to mimic an infection—and white blood cells in the capillary channel will attack. Or, they can introduce the chemicals you breathe in regularly to mimic air pollution and its affect on your lungs. Or test new medications.

Bio-inspired micro-devices that mimic whole human organs, such as the lung on a chip, could potentially replace animal testing and bring new therapies to patients faster and at lower cost in the future,” the design team explains in their video. Other labs are working on organs like the heart and even spleen, and Wyss’ ultimate goal is to build ten different organs and link them to create a whole body.

Who do we have to thank for bringing news of the chip to the design world? That would be Paola Antonelli, MoMA’s Senior Curator of Architecture & Design, as Dezeen points out today in its announcement as the award’s media partner. Antonelli not only nominated the chip, she already added it to MoMA’s permanent collection in March, writing on MoMA’s blog:

Esoteric or specialized, perhaps, but universally remarkable in their balance of form, function, and vision, investigations like the Wyss Institute’s Human Organs-on-Chips demonstrate new, radical intersections of synthetic biology and design.

In the past, the Design Museum’s pick have ranged from anodyne at best—a lightbulb, in 2011—to downright tone-deaf, like the jury’s choice of a Zaha Hadid building in Azerbaijan built by a dictatorial regime and named for a president known for his human rights abuses. This year, the jury really turned it around, selecting an object that is not only a brilliant piece of design, but also has the power to end the barbaric practice of animal testing while helping human patients.

Antonelli deserves a lot of credit for caring what’s happening in science, medicine, and technology, and forcing the rest of the design world to broaden insular, myopic field of view to include objects that aren’t just lightbulbs and billion-dollar museums, great though they are. Design—while it won’t save the world—can certainly change it for good.

Contact the author at kelsey@Gizmodo.com.

ORIGINAL: Gizmodo

viernes, 12 de julio de 2013

Silk Pavillion – CNC Deposited Silk & Silkworm Construction at the MIT Media Lab


Project Video  (HQ)



Silk Pavillion
2013 CNC Deposited Silk & Silkworm Construction
MIT Media Lab

Prof. Neri Oxman, Markus Kayser, Jared Laucks, Carlos David Gonzalez Uribe, Jorge Duro-Royo

The Silk Pavilion explores the relationship between digital and biological fabrication on product and architectural scales.The primary structure was created of 26 polygonal panels made of silk threads laid down by a CNC (Computer-Numerically Controlled) machine. Inspired by the silkworm’s ability to generate a 3D cocoon out of a single multi-property silk thread (1km in length), the overall geometry of the pavilion was created using an algorithm that assigns a single continuous thread across patches providing various degrees of density. Overall density variation was informed by the silkworm itself deployed as a biological printer in the creation of a secondary structure. A swarm of 6,500 silkworms was positioned at the bottom rim of the scaffold spinning flat non-woven silk patches as they locally reinforced the gaps across CNC-deposited silk fibers. Following their pupation stage the silkworms were removed. Resulting moths can produce 1.5 million eggs with the potential of constructing up to 250 additional pavilions. Affected by spatial and environmental conditions including geometrical density as well as variation in natural light and heat, the silkworms were found to migrate to darker and denser areas. Desired light effects informed variations in material organization across the surface area of the structure. A season-specific sun path diagram mapping solar trajectories in space dictated the location, size and density of apertures within the structure in order to lock-in rays of natural light entering the pavilion from South and East elevations. The central oculus is located against the East elevation and may be used as a sun-clock. Parallel basic research explored the use of silkworms as entities that can “compute” material organization based on external performance criteria. Specifically, we explored the formation of non-woven fiber structures generated by the silkworms as a computational schema for determining shape and material optimization of fiber-based surface structures. Research and Design by the Mediated Matter Research Group at the MIT Media Lab in collaboration with Prof. Fiorenzo Omenetto (TUFTS University) and Dr. James Weaver (WYSS Institute, Harvard University).

Selected Press: Creative Applications, DEZEEN, WIRED, FASTCOMPANY, ARCHDAILY, Treehugger, io9, jaxtapoz, CORE77, GIZMODO, Creator's Project, inhabitat, Forbes and more.