Distinct functions of FASCICLIN-LIKE ARABINOGALACTAN PROTEINS relate to domain structure

Author:

Ma Yingxuan12ORCID,Shafee Thomas2ORCID,Mudiyanselage Asha M2ORCID,Ratcliffe Julian2,MacMillan Colleen P3ORCID,Mansfield Shawn D4ORCID,Bacic Antony25ORCID,Johnson Kim L25ORCID

Affiliation:

1. School of BioSciences, University of Melbourne , Parkville, VIC 3052 , Australia

2. La Trobe Institute for Sustainable Agriculture and Food, Department of Animal, Plant and Soil Science, La Trobe University , Bundoora, VIC 3086 , Australia

3. CSIRO, Agriculture and Food, CSIRO Black Mountain Science and Innovation Park , Canberra, ACT 2601 , Australia

4. Department of Wood Science, University of British Columbia , Vancouver, BC V6T 1Z4 , Canada

5. Sino-Australia Plant Cell Wall Research Centre, College of Forestry and Biotechnology, Zhejiang Agriculture and Forestry University , Lin’an, Hangzhou 311300 , China

Abstract

Abstract The role of glycoproteins as key cell surface molecules during development and stress is well established; yet, the relationship between their structural features and functional mechanisms is poorly defined. FASCICLIN-LIKE ARABINOGALACTAN PROTEINs (FLAs), which impact plant growth and development, are an excellent example of a glycoprotein family with a complex multidomain structure. FLAs combine globular fasciclin-like (FAS1) domains with regions that are intrinsically disordered and contain glycomotifs for directing the addition of O-linked arabinogalactan (AG) glycans. Additional posttranslational modifications on FLAs include N-linked glycans in the FAS1 domains, a cleaved signal peptide at the N terminus, and often a glycosylphosphatidylinositol (GPI) anchor signal sequence at the C terminus. The roles of glycosylation, the GPI anchor, and FAS1 domain functions in the polysaccharide-rich extracellular matrix of plants remain unclear, as do the relationships between them. In this study, we examined sequence–structure–function relationships of Arabidopsis (Arabidopsis thaliana) FLA11, demonstrated to have roles in secondary cell wall (SCW) development, by introducing domain mutations and functional specialization through domain swaps with FLA3 and FLA12. We identified FAS1 domains as essential for FLA function, differentiating FLA11/FLA12, with roles in SCW development, from FLA3, specific to flowers and involved in pollen development. The GPI anchor and AG glycosylation co-regulate the cell surface location and release of FLAs into cell walls. The AG glycomotif sequence closest to the GPI anchor (AG2) is a major feature differentiating FLA11 from FLA12. The results of our study show that the multidomain structure of different FLAs influences their subcellular location and biological functions during plant development.

Funder

University of Melbourne Research Scholarship

Albert Shimmins Fund

Australia Research Council

La Trobe Research Focus Area

La Trobe University

Sino-Australia Plant Cell Wall Research Centre

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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