Li Qiong, Gluch Jürgen, Liao Zhongquan, Clausner André, Dąbek Przemysław, Zschech Ehrenfried
Fraunhofer Institute for Ceramic Technologies and Systems IKTS, Maria-Reiche-Str. 2, 01109, Dresden, Germany.
Institute of Physics, Brandenburg University of Technology Cottbus-Senftenberg, Faculty 1Konrad-Zuse-Str. 1, 03044, Cottbus, Germany.
BMC Biol. 2025 Aug 5;23(1):239. doi: 10.1186/s12915-025-02341-5.
Diatoms are widely studied biological objects because of their large variety of geometric shapes and their unique physical and chemical properties. They survive widely in nature within moisture. Imaging the diatoms three dimensionally in moisture and correlating their mechanical behavior is an interesting and challenging topic.
Here, the morphology and mechanical properties of diatoms were studied in wet state and then in dry state. A customized sample holder was integrated into a laboratory transmission X-ray microscope to image the morphology changes and volume shrinkage of the diatom while transitioning from the wet to the dry state. The measured volume shrinkage of a single diatom cell of Actinocyclus sp. is about 0.16. By performing an in-situ micromechanical experiment in both states, the maximal loading force of a single Actinocyclus sp. was determined until cracking appeared and compared in both states. This value is in the range of several hundred µN in the wet state and single-digit mN in the dry state. The normalized stiffness of the studied diatoms is significantly higher in the dry state than in the wet state. 2D radiograph and 3D tomography imaging of the diatoms reveal the different locations for crack propagation in both states.
Our study supplies the important imaging method, the structure and functional information of the diatoms for future studies on diatoms in moisture but also in dry state. This information can help design bio-inspired materials and even in the development of bio-sustainable materials.
硅藻因其多种多样的几何形状以及独特的物理和化学性质而成为广泛研究的生物对象。它们在自然界中广泛存在于潮湿环境中。对潮湿环境中的硅藻进行三维成像并关联其力学行为是一个有趣且具有挑战性的课题。
在此,研究了硅藻在湿态和干态下的形态和力学性能。将定制的样品架集成到实验室透射X射线显微镜中,以成像硅藻从湿态转变为干态时的形态变化和体积收缩。测得的辐环藻属单个硅藻细胞的体积收缩率约为0.16。通过在两种状态下进行原位微机械实验,确定了单个辐环藻属在出现裂纹之前的最大加载力,并在两种状态下进行了比较。该值在湿态下为几百微牛,在干态下为个位数毫牛。所研究的硅藻的归一化刚度在干态下明显高于湿态。硅藻的二维射线照片和三维断层扫描成像揭示了两种状态下裂纹扩展的不同位置。
我们的研究提供了重要的成像方法、硅藻的结构和功能信息,用于未来对潮湿和干燥状态下的硅藻的研究。这些信息有助于设计仿生材料,甚至有助于生物可持续材料的开发。