形成层
木质部
钙
细胞生物学
胞浆
钙信号传导
化学
活性氧
谷氨酸受体
转录组
生物化学
下调和上调
生物物理学
超氧化物
植物
信号转导
生物
细胞
拟南芥
氧气张力
电池类型
细胞信号
杨柳科
环己酰亚胺
细胞壁
拟南芥
基因剔除小鼠
作者
Yi An,Mei‐Qiao Qu,Ya Geng,Xue Jiao,Xue‐Qin Song,Shu‐Tang Zhao,Xiao Han,Li‐Chao Huang,Jin Zhang,Jie‐Hua Wang,Suzanne Gerttula,Andrew Groover,Meng‐Zhu Lu
摘要
ABSTRACT Tension wood (TW), a type of reaction wood that develops in angiosperm trees in response to gravistimulation, serves as an ideal model for investigating the regulatory mechanisms underlying xylem cell differentiation and cell wall deposition. The initial biological signals that induce the formation of reaction wood in response to gravitational stimuli remain poorly understood. In this study, we utilized pharmacological and genetic approaches to modulate Ca 2+ levels in hybrid white poplar ( Populus alba × P . glandulosa ) and examine the role of calcium signaling during the early stages of gravitropic responses. Our findings revealed differential cytosolic Ca 2+ signal distribution in gravistimulated stems during the early phase of gravity induction, characterized by lower Ca 2+ levels on the upper side (where TW forms) and higher Ca 2+ levels on the lower side (where opposite wood forms). Consistent with this hypothesis, plants treated with LaCl 3 and those with genetically disrupted calcium channels ( PagGLR3.3 knockout using the CRISPR/Cas9 system) showed reduced Ca 2+ signals and developed characteristic TW features. These results suggest that decreased Ca 2+ levels induce the formation of TW. Furthermore, PagGLR3.3 knockout plants with TW‐like stems displayed diminished sensitivity to gravistimulation. Transcriptomic analysis revealed that the knockout of PagGLR3.3 resulted in the upregulation of genes associated with TW formation and reactive oxygen species (ROS) production. Notably, superoxide anion (O 2 ·− ) levels were significantly elevated in the cambium zone of stems subjected to gravistimulation, LaCl 3 treatment, or PagGLR3.3 knockout, indicating that reduced Ca 2+ levels promote TW formation through increased O 2 ·− accumulation. This study offers novel insights into the critical role of Ca 2+ in gravitropism and TW induction in poplar.
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