AI Article Synopsis

  • KHZ1 and KHZ2 are novel proteins in Arabidopsis that regulate flowering and leaf senescence, functioning redundantly within the CCCH zinc-finger and KH domain protein family.
  • Mutant analysis showed that while single khz1 or khz2 mutants had minor effects on flowering, the double mutant exhibited significant delays, confirming their roles in flowering regulation and linking them to the expression of specific flowering genes.
  • Overexpression of KHZ1 and KHZ2 led to early flowering and accelerated leaf senescence, further indicating their involvement in plant developmental processes.

Article Abstract

The two novel CCCH zinc-finger and K-homolog (KH) proteins, KHZ1 and KHZ2, play important roles in regulating flowering and senescence redundantly in Arabidopsis. The CCCH zinc-finger proteins and K-homolog (KH) proteins play important roles in plant development and stress responses. However, the biological functions of many CCCH zinc-finger proteins and KH proteins remain uncharacterized. In Arabidopsis, KHZ1 and KHZ2 are characterized as two novel CCCH zinc-finger and KH domain proteins which belong to subfamily VII in CCCH family. We obtained khz1, khz2 mutants and khz1 khz2 double mutants, as well as overexpression (OE) lines of KHZ1 and KHZ2. Compared with the wild type (WT), the khz2 mutants displayed no defects in growth and development, and the khz1 mutants were slightly late flowering, whereas the khz1 khz2 double mutants showed a pronounced late flowering phenotype. In contrast, artificially overexpressing KHZ1 and KHZ2 led to the early flowering. Consistent with the late flowering phenotype, the expression of flowering repressor gene FLC was up-regulated, while the expression of flowering integrator and floral meristem identity (FMI) genes were down-regulated significantly in khz1 khz2. In addition, we also observed that the OE plants of KHZ1 and KHZ2 showed early leaf senescence significantly, whereas the khz1 khz2 double mutants showed delayed senescence of leaf and the whole plant. Both KHZ1 and KHZ2 were ubiquitously expressed throughout the tissues of Arabidopsis. KHZ1 and KHZ2 were localized to the nucleus, and possessed both transactivation activities and RNA-binding abilities. Taken together, we conclude that KHZ1 and KHZ2 have redundant roles in the regulation of flowering and senescence in Arabidopsis.

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http://dx.doi.org/10.1007/s11103-017-0667-8DOI Listing

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Article Synopsis
  • KHZ1 and KHZ2 are novel proteins in Arabidopsis that regulate flowering and leaf senescence, functioning redundantly within the CCCH zinc-finger and KH domain protein family.
  • Mutant analysis showed that while single khz1 or khz2 mutants had minor effects on flowering, the double mutant exhibited significant delays, confirming their roles in flowering regulation and linking them to the expression of specific flowering genes.
  • Overexpression of KHZ1 and KHZ2 led to early flowering and accelerated leaf senescence, further indicating their involvement in plant developmental processes.
View Article and Find Full Text PDF

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