Genetic variability of aquaporin expression in maize: From eQTLs to a MITE insertion regulating PIP2;5 expression

Author:

Maistriaux Laurie C1ORCID,Laurent Maxime J1ORCID,Jeanguenin Linda1ORCID,Prado Santiago Alvarez2ORCID,Nader Joseph1ORCID,Welcker Claude2ORCID,Charcosset Alain3ORCID,Tardieu François2ORCID,Nicolas Stéphane D3ORCID,Chaumont François1ORCID

Affiliation:

1. Louvain Institute of Biomolecular Science and Technology, UCLouvain , 1348 Louvain-la-Neuve , Belgium

2. INRAE, LEPSE , Université de Montpellier, 34060 Montpellier , France

3. INRAE, CNRS, AgroParisTech, GQE-Le Moulon, Université Paris-Saclay , 91190 Gif-sur-Yvette , France

Abstract

Abstract Plant aquaporins are involved in numerous physiological processes, such as cellular homeostasis, tissue hydraulics, transpiration, and nutrient supply, and are key players of the response to environmental cues. While varying expression patterns of aquaporin genes have been described across organs, developmental stages, and stress conditions, the underlying regulation mechanisms remain elusive. Hence, this work aimed to shed light on the expression variability of 4 plasma membrane intrinsic protein (PIP) genes in maize (Zea mays) leaves, and its genetic causes, through expression quantitative trait locus (eQTL) mapping across a 252-hybrid diversity panel. Significant genetic variability in PIP transcript abundance was observed to different extents depending on the isoforms. The genome-wide association study mapped numerous eQTLs, both local and distant, thus emphasizing the existing natural diversity of PIP gene expression across the studied panel and the potential to reveal regulatory actors and mechanisms. One eQTL associated with PIP2;5 expression variation was characterized. Genomic sequence comparison and in vivo reporter assay attributed, at least partly, the local eQTL to a transposon-containing polymorphism in the PIP2;5 promoter. This work paves the way to the molecular understanding of PIP gene regulation and its possible integration into larger networks regulating physiological and stress adaptation processes.

Funder

European Union

Belgian Funds for Scientific Research FRS-FNRS

Communauté française de Belgique-Actions de Recherches Concertées

FNRS

Fonds de Formation à la Recherche dans l’Industrie et l’Agriculture

Publisher

Oxford University Press (OUP)

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