The beauty and diversity of cell shapes have always fascinated both biologists and physicists. In the early 1950, J. Holtfreter coined the term "tissue affinities" to describe the forces behind the spontaneous shaping of groups of cells. These tissue affinites were later on related to adhesive properties of cell membranes. In the 1960, Malcom Steinberg proposed the differential adhesion hypothesis (DAH) as a physical explanation of the liquid-like behaviour of tissues and cells during morphogenesis. However, the link between the cellular properties of adhesion molecules, such as the cadherins, and the physical rules that shape the body, has remained unclear. Recent in vitro studies have now shown that surface tensions, which drive the spontaneous liquid-like behaviour of cell rearrangements, are a direct and linear function of cadherin expression levels. Tissue surface tensions thus arise from differences in intercellular adhesiveness, which validates the DAH in vitro. The DAH was also vindicated in vivo by stunning experiments in Drosophila. The powerful genetic tools available in Drosophila allow to manipulate the levels and patterns of expression of several cadherins and to create artificially differences in intercellular adhesiveness. The results showed that simple laws of thermodynamics, as well as quantitative and qualitative differences in cadherins expression were sufficient to explain processes as complex as the establishment of the anterior-posterior axis and the formation of the compound eye in Drosophila.
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http://dx.doi.org/10.1051/medsci/2007233285 | DOI Listing |
Langmuir
January 2025
R&D - Analytical Science Research, Kao Corporation, 1334 minato, Wakayama, Wakayama 640-8580, Japan.
The adsorption behavior of an anionic surfactant, hydroxy alkane sulfonate with an alkyl chain length of 18 (C18HAS), from its hard water solution onto a mica surface and resulting lubrication properties were investigated. Because of the double chain-like chemical structure and aggregation behavior, C18HAS formed vesicles in hard water, which adsorbed onto a negatively charged mica surface via cation (Ca) bridging and then transformed into a bilayer film. The number of bilayers formed on the surface was evaluated by force curve measurements using an atomic force microscope (AFM), and the results showed a time-dependent increase of the number of adsorbed bilayers.
View Article and Find Full Text PDFCurr Res Food Sci
December 2024
School of Pharmacy, Queen's University Belfast, 97 Lisburn Road, Belfast, BT9 7BL, UK.
Chem Sci
December 2024
Sino-German Joint Research Lab for Space Biomaterials and Translational Technology, Synergetic Innovation Centre of Biological Optoelectronics and Healthcare Engineering, School of Life Sciences, Northwestern Polytechnical University Xi'an Shaanxi 710072 P. R. China
Here, we report a water-induced supramolecular polymer adhesive formed from confined water and an intrinsically amphiphilic macrocyclic self-assembly in a nanophase-separated structure. The selenium-containing crown ether macrocycle, featuring a strong hydrophilic hydrogen-bond receptor (selenoxide) and a synergistic hydrophobic selenium-substituted crown core, confines water within a segregated, interdigitated architecture. While water molecules typically freeze around 0 °C, the confined water in this supramolecular polymer remains in a liquid-like state down to -80 °C.
View Article and Find Full Text PDFSmall
January 2025
College of Chemical and Biological Engineering, Zhejiang University, Hangzhou, 310058, China.
Phys Rev Lett
December 2024
RIKEN Cluster for Pioneering Research, Wako, Saitama 351-0198, Japan.
The molecular triangular lattice system, β^{'}-EtMe_{3}Sb[Pd(dmit)_{2}]_{2}, is considered as a candidate material for the quantum spin liquid state, although ongoing debates arise from recent controversial results. Here, the results of electron spin resonance and muon-spin relaxation measurements on β^{'}-EtMe_{3}Sb[Pd(dmit)_{2}]_{2} are presented. Both results indicate characteristic behaviors related to quasi-one-dimensional spin dynamics, whereas the direction of anisotropy found in electron spin resonance is in contradiction with previous theories.
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