Flavonols improve tomato pollen thermotolerance during germination and tube elongation by maintaining reactive oxygen species homeostasis

Author:

Postiglione Anthony E1ORCID,Delange Allison M1ORCID,Ali Mohammad Foteh1ORCID,Wang Eric Y1ORCID,Houben Maarten1ORCID,Hahn Stacy L1ORCID,Khoury Maleana G1ORCID,Roark Colleen M1ORCID,Davis Molly2ORCID,Reid Robert W2ORCID,Pease James B1ORCID,Loraine Ann E2ORCID,Muday Gloria K1ORCID

Affiliation:

1. Department of Biology and Center for Molecular Signaling, Wake Forest University , Winston-Salem, NC 27109, USA

2. Department of Bioinformatics and Genomics, University of North Carolina , Charlotte, NC 28223, USA

Abstract

Abstract Elevated temperatures impair pollen performance and reproductive success, resulting in lower crop yields. The tomato (Solanum lycopersicum) anthocyanin reduced (are) mutant harbors a mutation in FLAVANONE 3-HYDROXYLASE (F3H), resulting in impaired flavonol antioxidant biosynthesis. The are mutant has reduced pollen performance and seed set relative to the VF36 parental line, phenotypes that are accentuated at elevated temperatures. Transformation of are with the wild-type F3H gene, or chemical complementation with flavonols, prevented temperature-dependent reactive oxygen species (ROS) accumulation in pollen and restored the reduced viability, germination, and tube elongation of are to VF36 levels. Overexpression of F3H in VF36 prevented temperature-driven ROS increases and impaired pollen performance, revealing that flavonol biosynthesis promotes thermotolerance. Although stigmas of are had reduced flavonol and elevated ROS levels, the growth of are pollen tubes was similarly impaired in both are and VF36 pistils. RNA-seq was performed at optimal and stress temperatures in are, VF36, and the F3H overexpression line at multiple timepoints across pollen tube elongation. The number of differentially expressed genes increased over time under elevated temperatures in all genotypes, with the greatest number in are. These findings suggest potential agricultural interventions to combat the negative effects of heat-induced ROS in pollen that lead to reproductive failure.

Funder

USDA-NIFA

NSF PGRP

NIH NIGMS

Center for Molecular Signaling Summer Research Fellowship

Publisher

Oxford University Press (OUP)

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