IQ domain-containing protein ZmIQD27 modulates water transport in maize

Author:

Li Haiyan1ORCID,Xie Jun1,Gao Yongmeng1,Wang Xuemei1,Qin Li2,Ju Wei3,Roberts Jeremy A4ORCID,Cheng Beijiu1,Zhang Xuebin5ORCID,Lu Xiaoduo126ORCID

Affiliation:

1. National Engineering Laboratory of Crop Stress Resistance, School of Life Science, Anhui Agricultural University , Hefei 230036 , China

2. Institute of Advanced Agricultural Technology, Qilu Normal University , Jinan 250200 , China

3. Nanbei Agriculture Technology Co., Ltd. , Harbin 150000 , China

4. Faculty of Science and Engineering, School of Biological & Marine Sciences, University of Plymouth , Plymouth PL4 8AA , UK

5. State Key Laboratory of Crop Stress Adaptation and Improvement, Henan Joint International Laboratory for Crop Multi-Omics Research, School of Life Sciences, Henan University , Kaifeng 475004 , China

6. Lab of Molecular Breeding by Design in Maize Sanya Institute, Hainan Academy of Agricultural Sciences , Sanya 572000 , China

Abstract

Abstract Plant metaxylem vessels provide physical support to promote upright growth and the transport of water and nutrients. A detailed characterization of the molecular network controlling metaxylem development is lacking. However, knowledge of the events that regulate metaxylem development could contribute to the development of germplasm with improved yield. In this paper, we screened an EMS-induced B73 mutant library, which covers 92% of maize (Zea mays) genes, to identify drought-sensitive phenotypes. Three mutants were identified, named iqd27-1, iqd27-2, and iqd27-3, and genetic crosses showed that they were allelic to each other. The causal gene in these 3 mutants encodes the IQ domain-containing protein ZmIQD27. Our study showed that defective metaxylem vessel development likely causes the drought sensitivity and abnormal water transport phenotypes in the iqd27 mutants. ZmIQD27 was expressed in the root meristematic zone where secondary cell wall deposition is initiated, and loss-of-function iqd27 mutants exhibited a microtubular arrangement disorder. We propose that association of functional ZmIQD27 with microtubules is essential for correct targeted deposition of the building blocks for secondary cell wall development in maize.

Funder

National Natural Science Foundation of China

Ministry of Education Key Laboratory of Cell Activities and Stress Adaptations

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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