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Biomedical subjects

Jinping Wang

Publications and source records attributed to Jinping Wang.

2 recordsLinked to original sources

Herbicide Resistance Genes in Crops: Mechanisms, Progress, and Future Perspectives.

While previous reviews have largely focused on individual crops or single target-site mechanisms, the full-chain comparative landscape across major cereal crops remains unexplored. Here, we fill this critical gap by providing the first systematic, cross-crop comparative review that spans herbicide targets, resistance mechanisms, and breeding applications across four major cereals-rice, maize, wheat, and sorghum. Weed infestation is a serious constraint on crop production. Chemical weed control faces challenges such as herbicide resistance evolution and ecological risks. Developing herbicide-resistant varieties is a fundamental approach to achieve green and sustainable weed management. This review systematically summarizes research progress on herbicide resistance genes from three aspects: herbicide classification, resistance mechanisms, and crop breeding applications. It highlights key differences among four major cereal crops (rice, maize, wheat, and sorghum) in resistance-gene discovery and translational progress. Rice has the richest target-site resistance-gene resources. Maize leads in commercialization of transgenic herbicide resistance. Wheat focuses on endogenous precise editing due to genome complexity and regulatory constraints. Sorghum relies on specific mutations to serve cereal-legume intercropping systems. Based on this comparison, this review identifies the core trends in resistance breeding: from single-gene to multi-gene stacking, and from exogenous gene introduction to endogenous gene editing. It also points out common bottlenecks, including insufficient systematic mining of resistance-gene resources, lagging elucidation of non-target-site resistance regulatory networks, and strong genotype dependence in genetic transformation. Future efforts should focus on exploring broad-spectrum resistance genes, optimizing precise editing technologies, and developing sustainable resistance management strategies. This review provides a theoretical framework and practical references for molecular breeding of herbicide-resistant crops.

crop breeding

Therapeutic potential of a novel virulent bacteriophage XQ-1 against avian pathogenic Escherichia coli infection in broiler chickens.

Avian Pathogenic Escherichia coli (APEC) represents a significant subgroup within extraintestinal pathogenic Escherichia coli strains and constitutes a substantial threat to the global poultry industry. Although the negative impacts of APEC have been mitigated considerably through antibiotic use, this practice has concurrently facilitated the widespread emergence and dissemination of antibiotic-resistant APEC strains worldwide. Consequently, bacteriophage has emerged as a promising alternative to antibiotics. In the current study, a novel virulent bacteriophage, designated XQ-1, was isolated from a sewage sample collected at a broiler chickens farm in Hubei Province, China. Notably, this bacteriophage exhibited the capability to lyse multiple APEC strains, including O1, O2, and O78 serotypes. The optimal multiplicity of infection (MOI) for bacteriophage XQ-1 was determined to be 0.001, yielding a maximum viral titer of 4.73 ± 0.31 × 1011 plaque-forming units (PFU) per milliliter. This bacteriophage displayed a latent period of 30 min, and a burst period of 80 minutes, corresponding to a burst size of 348 PFU per infected cell. Additionally, bacteriophage XQ-1 retained high lytic activity across a temperature range of 4-50 °C and maintained tolerance with a pH range of 3-11. Further in vitro studies demonstrated that bacteriophage XQ-1 holds potential as an effective disinfectant capable of directly lysing APEC strain JZ-1. In chick models subjected to intraperitoneal injection, exposure to APEC resulted in 100% mortality in chicks. However, treatment with bacteriophage XQ-1 significantly improved the survival rates of infected broiler chickens, reduced organ indexes, decreased bacterial loads in the liver and heart organs, and mitigated intestinal damage caused by APEC infection. Collectively, these findings suggest that bacteriophage XQ-1 represents a promising candidate for the prevention and treatment of APEC infections in poultry.

APEC