树木植物转型:当前状况,挑战和未来前景
Bal Krishna Maharjan1, Md Torikul Islam1,2, Adnan Muzaffar1,2
1Oak Ridge National Laboratory, Biosciences Division, Oak Ridge, TN 37831, USA.
Plants (Basel, Switzerland)
|November 27, 2025
概括
基因转换通过克服长代的时间,加速了木质植物的改善. 诸如in planta系统和无DNA基因组编辑等进步使可预测的工程能够为可持续的未来提供支持.
科学领域:
- 植物生物技术 植物生物技术
- 林业和园艺 林业和园艺
- 分子遗传学 分子遗传学
背景情况:
- 木质植物 (森林和果树) 提供了重要的生态和经济效益.
- 长代间隔和高异构性阻碍了遗传改进.
- 基因转换提供了一种加速化和改进的方法.
研究的目的:
- 批判性地分析当前的木质植物转化技术.
- 评估已建立的平台与新兴技术的整合.
- 为突出可预测基因工程的进步.
主要方法:
- 审查已建立的DNA传递方法 (Agrobacterium,Rhizobium,粒子轰炸).
- 对再生途径的分析 (器官生殖,体质胚胎生殖,毛发根).
- 检查颠覆性技术 (发育调节器,植物系统,无DNA基因组编辑).
主要成果:
- 传统方法在效率,基因型依赖性和组织培养依赖性方面面临挑战.
- 发育调节器增强再生.
- 在植物系统中减少对组织培养的依赖.
- 无DNA基因组编辑解决了监管和公众的担忧.
结论:
- 木质植物转型正在从经验优化转向理性工程.
- 像Populus,Malus,Citrus和Pinus这样的品种的突破表明了这种范式的转变.
- 这些进展对于开发可持续的木质植物资源至关重要.
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