New opportunities and insights into Papaver self-incompatibility by imaging engineered Arabidopsis pollen

Author:

Wang Ludi1,Triviño Marina123,Lin Zongcheng23,Carli José1,Eaves Deborah J4,Van Damme Daniёl23,Nowack Moritz K23ORCID,Franklin-Tong Vernonica E4,Bosch Maurice1ORCID

Affiliation:

1. Institute of Biological, Environmental and Rural Sciences (IBERS), Aberystwyth University, Plas Gogerddan, Aberystwyth, UK

2. Department of Plant Biotechnology and Genetics, Ghent University, Ghent, Belgium

3. VIB Center for Plant Systems Biology, Ghent, Belgium

4. School of Biosciences, College of Life and Environmental Sciences, University of Birmingham, Edgbaston, Birmingham, UK

Abstract

Abstract Pollen tube growth is essential for plant reproduction. Their rapid extension using polarized tip growth provides an exciting system for studying this specialized type of growth. Self-incompatibility (SI) is a genetically controlled mechanism to prevent self-fertilization. Mechanistically, one of the best-studied SI systems is that of Papaver rhoeas (poppy). This utilizes two S-determinants: stigma-expressed PrsS and pollen-expressed PrpS. Interaction of cognate PrpS–PrsS triggers a signalling network, causing rapid growth arrest and programmed cell death (PCD) in incompatible pollen. We previously demonstrated that transgenic Arabidopsis thaliana pollen expressing PrpS–green fluorescent protein (GFP) can respond to Papaver PrsS with remarkably similar responses to those observed in incompatible Papaver pollen. Here we describe recent advances using these transgenic plants combined with genetically encoded fluorescent probes to monitor SI-induced cellular alterations, including cytosolic calcium, pH, the actin cytoskeleton, clathrin-mediated endocytosis (CME), and the vacuole. This approach has allowed us to study the SI response in depth, using multiparameter live-cell imaging approaches that were not possible in Papaver. This lays the foundations for new opportunities to elucidate key mechanisms involved in SI. Here we establish that CME is disrupted in self-incompatible pollen. Moreover, we reveal new detailed information about F-actin remodelling in pollen tubes after SI.

Funder

Biotechnology and Biological Sciences Research Council

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Physiology

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