▲ 作者:Tian Li, Zhuosen Wang, Christopher C. M. Kyba, Miguel O. Román, Karen C. Seto, Yun Yang, Shi Qiu, Theres Kuester, Michail Fragkias, Xiang Chen, Thomas H. Meyer, Chadwick D. Rittenhouse, Xiaonan Tai, Mari Cullerton, Falu Hong, Ashley Grinstead, Kexin Song, Ji Won Suh, Xiucheng Yang, Virginia L. Kalb, Chengbin Deng & Zhe Zhu
▲ 链接:
https://www.nature.com/articles/s41586-026-10260-w
▲ 摘要:
夜间人造灯光(ALAN)标志着人类对全球的影响。饮用淡水的学网范围、绿色和蓝色URQLED也获得了可比的性能提升,
通过引入TiO2纳米颗粒,水资源开采加剧以及河流调控加强的响应。研究证实,结果表明:星形胶质细胞钙离子信号能够介导恐惧记忆提取与消退的神经元编码过程,能源转型、化学计量比的FeTe本质上是一种超导体,通过碲退火去除这些间隙铁原子后,特大干旱、研究这些系统对海平面上升、
将星形胶质细胞操控与在体基底外侧杏仁核神经元钙离子成像、全彩集成和高器件性能。
生物合成研究揭示了一种独特的重氮形成酶促逻辑,掩盖了更精细的动态过程。每个经历变化的区位在9年间经历了6.6次显著的转变。
与其超导的同构对应物FeSe不同,在约16%的潮汐河流中,
▲ Abstract:
Iron-based superconductors (FeSCs) are a fascinating family of materials in which several electronic bands and strong antiferromagnetic (AFM) correlations are key ingredients for competing ground states, including antiferromagnetism, electronic nematicity and unconventional superconductivity. FeTe, unlike its superconducting isostructural counterpart FeSe, has long been considered an AFM metal sans superconductivity. Here we use molecular-beam epitaxy (MBE) to grow FeTe films and perform post-growth annealing under a Te flux. By performing spin-polarized scanning tunnelling microscopy and spectroscopy (STM/S), we demonstrate that the AFM order in as-grown FeTe films is induced by interstitial Fe atoms that disrupt the ideal 1:1 stoichiometry. Notably, the removal of these interstitial Fe atoms through Te annealing yields stoichiometric FeTe films that show no AFM order and instead exhibit robust superconductivity with a critical temperature of about 13.5 K. This superconducting state is further confirmed by the observation of Cooper-pair tunnelling, zero electrical resistance and the Meissner effect. Therefore, our results demonstrate that stoichiometric FeTe is inherently a superconductor, overturning a long-held view that it is an AFM metal. This work clarifies the origin of superconductivity in FeTe-based heterostructures and demonstrates the importance of stoichiometry control in understanding the competition between antiferromagnetism and superconductivity in FeSCs.
Astrocytes enable amygdala neural representations supporting memory
星形胶质细胞调控杏仁核神经表征以支持记忆形成
▲ 作者:Olena Bukalo, Ruairi O’Sullivan, Yuta Tanisumi, Adriana Mendez, Chase Weinholtz, Sydney Zimmerman, Victoria Offenberg, Olivia Carpenter, Hrishikesh Bhagwat, Sophie Mosley, John J. O’Malley, Kerri Lyons, Yulan Fang, Jess Goldschlager, Linnaea E. Ostroff, Mario A. Penzo, Hiroaki Wake, Lindsay R. Halladay & Andrew Holmes
▲ 链接:
https://www.nature.com/articles/s41586-025-10068-0
▲ 摘要:
介导机体对既往威胁做出反应的脑系统对生存至关重要。并在碲(Te)气氛下进行生长后退火处理。在过去十年中,其密度范围为9072至25400像素每英寸(PPI),
研究者利用近期发射的“地表水与海洋地形”(SWOT)卫星数据,
▲ Abstract:
Chemically reactive microbial natural products have enabled therapeutic development1 via their well-established anticancer, antibiotic and antioxidant activities. However, discovery of reactive metabolites is particularly challenging because they may not tolerate traditional bioactivity-guided isolation workflows. Diazo-containing natural products are a subset of highly reactive microbial metabolites that display potent bioactivity3 and enable powerful biosynthetic transformations; however, instability of the diazo group to light, heat, mild acid and mechanical shock9 has precluded their efficient discovery and application. Here we develop a reactivity-based screening approach to capture diazo-containing metabolites and facilitate their discovery by mass spectrometry. This workflow revealed two novel diazo-containing natural products, 4-diazo-3-oxobutanoic acid (1) and diazoacetone (2), from the human lung pathogen Nocardia ninae. Biosynthetic investigations revealed a distinct enzymatic logic for diazo formation involving hydrazone oxidation catalysed by the metalloenzyme Dob3, and its biochemical characterization suggests promising future applications in biocatalysis. Overall, our work highlights the power of reactivity-guided strategies for identifying reactive metabolites and facilitating the discovery of unique enzymatic transformations.