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Xin Tang

Publications and source records attributed to Xin Tang.

2 recordsLinked to original sources

Establishment of a cBSA-mediated miRNA delivery system in Camellia sinensis and functional validation of the Cs-miR163/CsSK1 module in cold stress response.

Cold stress severely limits tea (Camellia sinensis) yield and quality. MicroRNAs (miRNAs) are key post-transcriptional regulators of plant cold responses; however, in vivo functional validation in tea plants is hindered by the lack of efficient genetic transformation and nucleic acid delivery systems. In this study, a cationized bovine serum albumin (cBSA)-mediated miRNA delivery system was established in tea plants. The cold-responsive miRNA Cs-miR163 and its target gene CsSK1 (a negative regulator of cold tolerance) were used as a model. Direct cleavage of CsSK1 mRNA by Cs-miR163 was confirmed by 5' RLM-RACE and GUS transient expression assays, and enhanced cold tolerance was demonstrated in Arabidopsis overexpression lines. The cBSA preparation protocol was optimized, yielding stable cBSA/miRNA complexes with high protective capacity across temperatures of 15-35 °C and pH 4.5-7.2. Delivery parameters were systematically evaluated; optimal conditions were determined as 2 mg/mL cBSA with 10 nM miRNA and solution uptake into 3-cm cuttings for 5 days, enhancing miRNA delivery efficiency by approximately 48-fold. Transmission electron microscopy provided direct ultrastructural evidence that cBSA/miRNA nanocomplexes are internalized into tea plant cells via adsorptive-mediated endocytosis involving electrostatic membrane adsorption, membrane invagination, and cytoplasmic release. Under optimized conditions, cBSA-mediated delivery of Cs-miR163 silenced CsSK1 expression by approximately 72%, reduced relative electrolyte leakage and ROS accumulation, and markedly enhanced cold tolerance. The regulatory role of the Cs-miR163/CsSK1 module was clarified, and the established system provides a promising strategy for functional genomics in woody plants that warrants further testing in additional species and tissues.

Camellia sinensis

Selective Extraction of Genomic DNA From Animal Tissues Using a Hydrophobic Magnetic Ionic Liquid.

The development of green and efficient methods for genomic DNA extraction from animal tissues is crucial for molecular diagnostics, food traceability, and genetic research. Conventional methods often involve toxic reagents, multiple centrifugation steps, and are time-consuming. In this study, a hydrophobic magnetic ionic liquid (MIL), N-octyl-4-dimethylaminopyridinium hexafluorophosphate MIL ([C8DMAP][PF6]‑Ni MIL), was synthesized and applied for the selective extraction of genomic DNA from various animal tissues. The material exhibited strong paramagnetic behavior, high thermal stability, and excellent hydrophobicity, enabling rapid phase separation under an external magnetic field. A mechanical shaking-assisted extraction method was developed, and key parameters including temperature, time, shaking speed, and [C8DMAP][PF6]-Ni MIL dosage were systematically optimized. The method demonstrated high selectivity for DNA over proteins, RNA, and amino acids, with a maximum recovery rate of 78.06 ± 1.91%. Compared to a commercial DNA extraction kit, the [C8DMAP][PF6]-Ni MIL-based approach provided higher yields from several tissues, including mouse liver, brain, and rabbit lung. Furthermore, the [C8DMAP][PF6]-Ni MIL could be reused for at least six cycles while maintaining extraction efficiency. This work not only provides a high-performance material for DNA extraction, but also demonstrates a sustainable and easily retrievable liquid-phase separation strategy, offering a generalizable platform for complex sample pretreatment.

Animals