2026-04-02
"This is not just about building robots, but also about treating diseases," Xu Chun reveals. His team is using such digital models to compare differences between diseased and healthy brain connections, precisely locating neural circuit abnormalities.
2026-03-24
The advent of the CAMP platform means that in the future, we may be able to "retrieve" pre-prepared cell-laden bioinks from cell banks as easily as taking out an ice cube, revive them, and immediately use them for 3D printing to construct tissue engineering scaffolds or even organ chips. This breakthrough technology offers a highly promising "ready-to-use" solution for the urgent repair of large tissue defects and the rapid fabrication of personalized implants in clinical settings, with the potential to completely bridge the critical gap from laboratory to operating room.
2026-03-24
"Reviving" Life on a Computer: The First Complete 4D Full-Cycle Simulation of a Minimal Genome Cell
Nonetheless, this newly opened window not only allows us to understand how the simplest form of life operates but also paves the way for simulating more complex human cells in the future.
2026-03-16
Unlocking the Heart's Code: Scientists Discover the Regenerative Seeds to Rejuvenate the Adult Heart
Professor Wang Wei emphasized that this study clarifies the mechanism of the decline in cardiac regeneration at the cellular subpopulation level, providing a brand-new target for myocardial regenerative therapy after MI. Although clinical application still needs to bridge the gap from basic research to translational medicine, this beam of scientific light has illuminated the path to recovery for tens of millions of MI patients.
2026-03-16
In science fiction, human cryopreservation and resuscitation are often regarded as a "time capsule" to the future. Now, this concept has achieved a milestone breakthrough in the laboratory—scientists have for the first time successfully cryopreserved adult mouse brain slices in liquid nitrogen at -196°C and restored multiple key neural functions, including learning and memory mechanisms, after rewarming. This achievement blazes a brand-new trail for basic neuroscience research and organ preservation technology.
2026-03-04
The team successfully developed the CryoSIM platform, an intelligent microfluidics and deep learning-integrated system. This platform deeply integrates core technologies of deep learning and microfluidics to enable high-throughput, high-precision automated analysis of oocyte membrane permeability. It provides a novel technological tool for optimizing and advancing the clinical translation of oocyte cryopreservation techniques. Additionally, it offers an innovative practical paradigm for the application of artificial intelligence in low-temperature biomedicine and reproductive medicine.