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asl
Inventing disruptive technologies for nanoelectronic devices and creating new paradigms for life-machine symbiosis
Life with AI | Designing the future of smart systems to improve the human experience
Future Worlds | Design and action for the future we want to live in
Connected Mind + Body | Revolutionizing the future of mental and physical wellbeing
Engineering at the limits of complexity with molecular-scale parts
Since its 2015 debut by an MIT team, expansion microscopy has advanced research on kidneys, seeds, Alzheimer’s, viruses, and more.
The technology, which achieves single-cell resolution, could help in continuous, noninvasive patient assessment to guide medical treatments.
The devices could help scientists probe subcellular regions of the brain and possibly treat disease.
As part of a biosensing device without wires, the antennas could help researchers decode intricate electrical signals sent by cells.
For details and recent updates visit: https://web.mit.edu/deblina-sarkar/Nanoelectronics has the potential to enable radical too…
These devices could help scientists probe subcellular regions of the brain, and might even help restore some brain function.
In addition to a large number of membrane proteins that comprise most alpha-helix transmembrane segments, there are also many transmembrane…
Researchers created a water-soluble version of an important bacterial enzyme, which can be used in drug screens to identify new antibiotics.
A modular, membrane protein design based biomimetic sensing system named RESENSA (Receptor S-layer Electrical Nano Sens…
The device detects the same molecules that cell receptors do, and may enable routine early screening for cancers and other diseases.
Complex biological systems such as brain circuits are extended 3-D structures made out of nanoscale building blocks such as proteins, RNAs,…