4.8 Article

Causes and consequences of endogenous hypoxia on growth and metabolism of developing maize kernels

Journal

PLANT PHYSIOLOGY
Volume 192, Issue 2, Pages 1268-1288

Publisher

OXFORD UNIV PRESS INC
DOI: 10.1093/plphys/kiad038

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The developing maize endosperm has evolved mechanisms to acclimate to hypoxia, including an interconnected void space that provides superior oxygen supply and high diffusion resistance within the endosperm. Manipulation of oxygen supply induced shifts in gene expression and metabolic pathways, resulting in enhanced kernel development. This study provides evidence for the establishment and acclimation to hypoxia in the maize endosperm.
The developing maize endosperm has evolved elaborate structural, molecular, and biochemical mechanisms for acclimation to hypoxia. Maize (Zea mays) kernels are the largest cereal grains, and their endosperm is severely oxygen deficient during grain fill. The causes, dynamics, and mechanisms of acclimation to hypoxia are minimally understood. Here, we demonstrate that hypoxia develops in the small, growing endosperm, but not the nucellus, and becomes the standard state, regardless of diverse structural and genetic perturbations in modern maize (B73, popcorn, sweet corn), mutants (sweet4c, glossy6, waxy), and non-domesticated wild relatives (teosintes and Tripsacum species). We also uncovered an interconnected void space at the chalazal pericarp, providing superior oxygen supply to the placental tissues and basal endosperm transfer layer. Modeling indicated a very high diffusion resistance inside the endosperm, which, together with internal oxygen consumption, could generate steep oxygen gradients at the endosperm surface. Manipulation of oxygen supply induced reciprocal shifts in gene expression implicated in controlling mitochondrial functions (23.6 kDa Heat-Shock Protein, Voltage-Dependent Anion Channel 2) and multiple signaling pathways (core hypoxia genes, cyclic nucleotide metabolism, ethylene synthesis). Metabolite profiling revealed oxygen-dependent shifts in mitochondrial pathways, ascorbate metabolism, starch synthesis, and auxin degradation. Long-term elevated oxygen supply enhanced the rate of kernel development. Altogether, evidence here supports a mechanistic framework for the establishment of and acclimation to hypoxia in the maize endosperm.

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