98%
921
2 minutes
20
Insect silk is a naturally occurring protein that forms semicrystalline threads when exposed to air. The Asian weaver ant, Oecophylla smaragdina (Formicidae: Hymenoptera), frequently uses silks for leaf weaving in nest construction to maintain its integrity and durability. The silk imparts resilience and durability to the nests, preventing fracturing or breaking during many natural disasters, particularly heavy rainfall and strong winds. Therefore, understanding the strength and stability of these silk threads necessitates an examination of their structural components and physicochemical properties. Silk samples aged 30 days, 180 days, and 365 days are analysed to assess the temporal differences in silk durability and hardness. According to infrared Fourier transform studies, the silk mostly consists of alkanes, alkenes, amides, and alcohols, while energy-dispersive X-ray analysis identifies carbon, nitrogen, and oxygen as the principal elements, with minor quantities of magnesium, aluminium, silicon, and potassium. As per X-ray powder diffraction, the silk exhibits a crystalline sheet structure. Its mass, thickness, density, and tensile strength increase as the silk becomes older. The 'contact angle' of the silk also increases with age, indicating its hydrophobic nature. The thermogravimetric curve shows the fibre's long-term endurance and thermal stability. The physicochemical properties of Oecophylla silk highlight its unique strength and endurance, explaining why they utilise its advantages to protect their nests from severe environmental conditions.
Download full-text PDF |
Source |
---|---|
http://dx.doi.org/10.1007/s00114-025-02019-6 | DOI Listing |
iScience
September 2025
Department of Geriatric Dentistry, NMPA Key Laboratory for Dental Materials, National Engineering Laboratory for Digital and Material Technology of Stomatology, Beijing Key Laboratory of Biomaterials for Oral Disease, Peking University School and Hospital of Stomatology, Beijing 100081, P.R. China.
This study highlights the biomedical relevance of injectable TS (tannic acid-silk fibroin)-Mg/Sr hydrogels in alveolar bone repair, particularly their prospective role as carriers for stem cells from the apical papilla (SCAPs) in tissue regeneration. By utilizing self-assembling silk material, noted for its favorable handling properties, we present a useful approach for single-wall bone defects, such as bone fenestration and fractures in the oral cavity. Furthermore, our findings regarding the involvement of the TRPM7 ion channel indicate a possible regulatory pathway for improving alveolar bone defect repair.
View Article and Find Full Text PDFAdv Healthc Mater
September 2025
National Engineering Laboratory for Modern Silk, College of Textile and Clothing Engineering, Soochow University, Suzhou, 215123, China.
Melasma is a facial hyperpigmentation disease that significantly impacts patients' quality of life. Clinical treatment is limited by the short half-lives and hydrophilicity of drugs, necessitating release curve optimization to maintain a stable therapeutic concentration for an extended period. This article utilizes natural biomaterials to design a core-shell structured microneedle, combining the "immediate release" and "delayed release" module to achieve programmed drug release.
View Article and Find Full Text PDFJ Mol Histol
September 2025
Department of Urology, Yantai Yuhuangding Hospital, Qingdao University, No. 20 East Yuhuangding Road, Yantai, 264000, Shandong, China.
The stress urinary incontinence (SUI) is a difficulty in urology and current sub-urethral sling treatments are associated with inflamation and recurrence. In this study, we developed a novel tissue-engineered sling with myogenic induced adiposederived stem cells (MI-ADSCs) sheets induced by 5-Aza and combined with electrospun scaffolds of silk fibroin and poly(lactide-co-glycolide) (SF/PLGA) for the treatment of stress urinary incontinence. MI-ADSCs increased α-SMA, MyoD and Desmin the mRNA and protein expression.
View Article and Find Full Text PDFACS Nano
September 2025
Department of Biomedical Engineering, Tufts University, Medford, Massachusetts 02155, United States.
Achieving high performance nanoscale photonic functionalities remains extraordinarily challenging when using naturally derived biomaterials. The ability to manipulate ultrathin films of structural proteins─combined with photolithographic control of their polymorphism─unlocks a compelling route toward engineering biopolymer-based photonic crystals with precisely defined photonic bandgaps and reconfigurable structural colors. In this work, we describe a robust, water-based fabrication process for silk/inorganic hybrid one-dimensional (1D) photonic crystals that overcomes many of the conventional difficulties in ensuring reproducibility, uniformity, and reliability at the nanoscale.
View Article and Find Full Text PDFSci Bull (Beijing)
August 2025
Group of Alpine Paleoecology and Human Adaptation (ALPHA), Institute of Tibetan Plateau Research, Chinese Academy of Sciences, Beijing 100101, China.