Promoting genotype-independent plant transformation by manipulating developmental regulatory genes and/or using nanoparticles
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Published:2023-06-14
Issue:9
Volume:42
Page:1395-1417
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ISSN:0721-7714
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Container-title:Plant Cell Reports
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language:en
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Short-container-title:Plant Cell Rep
Author:
Yan Tingwei, Hou Quancan, Wei Xun, Qi Yuchen, Pu Aqing, Wu Suowei, An Xueli, Wan XiangyuanORCID
Abstract
AbstractKey messageThis review summarizes the molecular basis and emerging applications of developmental regulatory genes and nanoparticles in plant transformation and discusses strategies to overcome the obstacles of genotype dependency in plant transformation.AbstractPlant transformation is an important tool for plant research and biotechnology-based crop breeding. However, Plant transformation and regeneration are highly dependent on species and genotype. Plant regeneration is a process of generating a complete individual plant from a single somatic cell, which involves somatic embryogenesis, root and shoot organogeneses. Over the past 40 years, significant advances have been made in understanding molecular mechanisms of embryogenesis and organogenesis, revealing many developmental regulatory genes critical for plant regeneration. Recent studies showed that manipulating some developmental regulatory genes promotes the genotype-independent transformation of several plant species. Besides, nanoparticles penetrate plant cell wall without external forces and protect cargoes from degradation, making them promising materials for exogenous biomolecule delivery. In addition, manipulation of developmental regulatory genes or application of nanoparticles could also bypass the tissue culture process, paving the way for efficient plant transformation. Applications of developmental regulatory genes and nanoparticles are emerging in the genetic transformation of different plant species. In this article, we review the molecular basis and applications of developmental regulatory genes and nanoparticles in plant transformation and discuss how to further promote genotype-independent plant transformation.
Funder
National Key Research and Development Program of China National Natural Science Foundation of China Beijing Nova Program
Publisher
Springer Science and Business Media LLC
Subject
Plant Science,Agronomy and Crop Science,General Medicine
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