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Herbaceous peony (Paeonia lactiflora Pall.) is a popular high-end cut flower, but stem bending caused by low stem strength severely decreases its quality. To enhance stem strength, the regulatory effects of exogenous silicon were investigated in P. lactiflora. The results showed that silicon application enhanced stem strength by increasing the thickness of secondary cell walls and the layers of thickened secondary cells. Moreover, more lignin accumulated, particularly G-lignin and S-lignin, and the activities of lignin biosynthetic enzymes increased with silicon application. In addition, based on transcriptome analysis, silicon application induced the expression of genes participating in lignin biosynthesis pathway. Among them, hydroxycinnamoyl-CoA: shikimate hydroxycinnamoyl transferase gene (HCT1) was isolated from P. lactiflora and found to be mainly localized in the cytoplasm of cells. Overexpression of PlHCT1 increased the layers of thickened secondary cells and lignin accumulation in tobacco, resulting in enhanced stem strength and demonstrably straight stems. Finally, silicon content, lignin content and PlHCT1 expression in P. lactiflora cultivars with high stem strengths were totally higher than those in cultivars with low stem strengths. These results indicated that silicon application enhanced stem strength by promoting lignin accumulation in P. lactiflora, which has prospects for stem quality improvement in general.
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http://dx.doi.org/10.1016/j.ijbiomac.2021.09.016 | DOI Listing |
J Cosmet Dermatol
September 2025
Cosmetic Laser Dermatology, San Diego, California, USA.
Background: With the rise of regenerative medicine and geroscience, translational research has shifted focus from lifespan to healthspan-years lived in good health. Applied to aesthetic medicine, the authors introduce the concept of "skinspan," to both describe the period during which skin maintains a youthful, healthy appearance, and additionally to serve as a tool for the cosmetic consult.
Aims: The aim of this comprehensive review is to illuminate "skinspan" as a framework for guiding long-term skin health.
J Integr Plant Biol
September 2025
State Key Laboratory of Crop Genetics & Germplasm Enhancement and Utilization, Zhongshan Biological Breeding Laboratory, National Center for Soybean Improvement, National Innovation Platform for Soybean Breeding and Industry-Education Integration, Key Laboratory for Biology and Genetic Improvement o
Soybean is an important source of oil, protein, and feed. However, its yield is far below that of major cereal crops. The green revolution increased the yield of cereal crops partially through high-density planting of lodging-resistant semi-dwarf varieties, but required more nitrogen fertilizers, posing an environmental threat.
View Article and Find Full Text PDFBiotechnol J
September 2025
College of Medicine, Al-Ayen Iraqi University, An Nasiriyah, Iraq.
Cardiac tissue engineering (CTE) is a rapidly evolving field that combines cells, scaffolds, and biofabrication methods to repair damaged heart tissue. New technologies have made it possible to utilize AI in designing cardiac patches and 4D bioprinting to create biomaterials that respond to time. These procedures are a big step forward from traditional ones since they offer more accuracy, flexibility, and the possibility of therapies that are tailored to each patient.
View Article and Find Full Text PDFCurr Stem Cell Res Ther
August 2025
Department of Pharmaceutics, JSS College of Pharmacy, Mysuru, Karnataka, Pin Code, 570016, India.
Introduction: Stem cell therapies are advancing rapidly, requiring robust regulations to ensure safety and ethics. The UAE, with authorities like MOHAP, DOH, DHA, and DHCR, is actively involved in clinical research but faces regulatory inconsistencies across emirates. In contrast, the U.
View Article and Find Full Text PDFStem Cell Rev Rep
September 2025
Medical Laboratories Techniques Department, College of Health and Medical Techniques, Al-Mustaqbal University, Babylon, 51001, Iraq.
Stem cell-based tissue engineering offers transformative solutions for regenerating damaged tissues, such as bone, cartilage, and neural tissues. Chitosan and cellulose nanoparticles have emerged as promising biomaterials for enhancing stem cell delivery and scaffold performance due to their biocompatibility, biodegradability, and tunable properties. Chitosan, with its antimicrobial and bioadhesive properties, supports stem cell adhesion and differentiation in soft tissue scaffolds.
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