4.7 Article

HsfA1a confers pollen thermotolerance through upregulating antioxidant capacity, protein repair, and degradation in Solanum lycopersicum L.

Journal

HORTICULTURE RESEARCH
Volume 9, Issue -, Pages -

Publisher

OXFORD UNIV PRESS INC
DOI: 10.1093/hr/uhac163

Keywords

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Funding

  1. National Key Research and Development Program of China [2018YFD1000800]
  2. National Natural Science Foundation of China [31922078, 31872089]
  3. Fundamental Research Funds for the Central Universities [226-2022-00122]
  4. Starry Night Science Fund of Zhejiang University Shanghai Institute for Advanced Study [SN-ZJUSIAS-0011]

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This study demonstrates that HsfA1a plays a crucial role in tomato pollen thermotolerance by regulating genes related to antioxidant capacity, protein repair, and degradation. It maintains pollen thermotolerance and cellular homeostasis, ultimately improving pollen viability and fertility.
The heat shock transcription factors (Hsfs) play critical roles in plant responses to abiotic stresses. However, the mechanism of Hsfs in the regulation of pollen thermotolerance and their specific biological functions and signaling remain unclear. Herein, we demonstrate that HsfA1a played a key role in tomato pollen thermotolerance. Pollen thermotolerance was reduced in hsfA1a mutants but was increased by hsfA1a overexpression, based on pollen viability and germination. Analyzing the whole transcriptome by RNA-seq data, we found that HsfA1a mainly regulated the genes involved in oxidative stress protection, protein homeostasis regulation and protein modification, as well as the response to biological stress in anthers under heat stress. The accumulation of reactive oxygen species in anthers was enhanced in hsfA1a mutants but decreased in HsfA1a-overexpressing lines. Furthermore, HsfA1a bound to the promoter region of genes involved in redox regulation (Cu/Zn-SOD, GST8, and MDAR1), protein repair (HSP17.6A, HSP70-2, HSP90-2, and HSP101) and degradation (UBP5, UBP18, RPN10a, and ATG10) and regulated the expression of these genes in tomato anthers under heat stress. Our findings suggest that HsfA1a maintains pollen thermotolerance and cellular homeostasis by enhancing antioxidant capacity and protein repair and degradation, ultimately improving pollen viability and fertility.

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