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A new link between stress response and nucleolar function during pollen development in Arabidopsis mediated by AtREN1 protein
D. Reňák, A. Gibalová, K. Solcová, D. Honys,
Jazyk angličtina Země Spojené státy americké
Typ dokumentu časopisecké články, práce podpořená grantem
NLK
Free Medical Journals
od 1997 do Před 3 lety
Wiley Free Content
od 1997 do Před 3 lety
PubMed
23961845
DOI
10.1111/pce.12186
Knihovny.cz E-zdroje
- MeSH
- alely MeSH
- Arabidopsis cytologie růst a vývoj metabolismus MeSH
- buněčné jadérko metabolismus MeSH
- DNA bakterií genetika MeSH
- DNA vazebné proteiny genetika metabolismus MeSH
- exony genetika MeSH
- fenotyp MeSH
- klíčení MeSH
- mutace genetika MeSH
- penetrance MeSH
- proteiny huseníčku genetika metabolismus MeSH
- pyl cytologie genetika růst a vývoj MeSH
- pylová láčka cytologie genetika růst a vývoj MeSH
- reakce na tepelný šok * genetika MeSH
- regulace genové exprese u rostlin MeSH
- segregace chromozomů genetika MeSH
- testy genetické komplementace MeSH
- transport proteinů MeSH
- vývojová regulace genové exprese MeSH
- zelené fluorescenční proteiny metabolismus MeSH
- Publikační typ
- časopisecké články MeSH
- práce podpořená grantem MeSH
Heat shock transcription factors (Hsfs) are involved in multiple aspects of stress response and plant growth. However, their role during male gametophyte development is largely unknown, although the generative phase is the most sensitive and critical period in the plant life cycle. Based on a wide screen of T-DNA mutant lines, we identified the atren1 mutation (restricted to nucleolus1) in early male gametophytic gene At1g77570, which has the closest homology to HSFA5 gene, the member of a heat shock transcription factor (HSF) gene family. The mutation causes multiple defects in male gametophyte development in both structure and function. Because the mutation disrupts an early acting (AtREN1) gene, these pollen phenotype abnormalities appear from bicellular pollen stage to pollen maturation. Moreover, the consequent progamic phase is compromised as well as documented by pollen germination defects and limited transmission via male gametophyte. In addition, atren1/- plants are defective in heat stress (HS) response and produce notably higher proportion of aberrant pollen grains. AtREN1 protein is targeted specifically to the nucleolus that, together with the increased size of the nucleolus in atren1 pollen, suggests that it is likely to be involved in ribosomal RNA biogenesis or other nucleolar functions.
Citace poskytuje Crossref.org
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- $a Heat shock transcription factors (Hsfs) are involved in multiple aspects of stress response and plant growth. However, their role during male gametophyte development is largely unknown, although the generative phase is the most sensitive and critical period in the plant life cycle. Based on a wide screen of T-DNA mutant lines, we identified the atren1 mutation (restricted to nucleolus1) in early male gametophytic gene At1g77570, which has the closest homology to HSFA5 gene, the member of a heat shock transcription factor (HSF) gene family. The mutation causes multiple defects in male gametophyte development in both structure and function. Because the mutation disrupts an early acting (AtREN1) gene, these pollen phenotype abnormalities appear from bicellular pollen stage to pollen maturation. Moreover, the consequent progamic phase is compromised as well as documented by pollen germination defects and limited transmission via male gametophyte. In addition, atren1/- plants are defective in heat stress (HS) response and produce notably higher proportion of aberrant pollen grains. AtREN1 protein is targeted specifically to the nucleolus that, together with the increased size of the nucleolus in atren1 pollen, suggests that it is likely to be involved in ribosomal RNA biogenesis or other nucleolar functions.
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