Essential amino acids in the Plant-Conserved and Class-Specific Regions of cellulose synthases

Author:

Olek Anna T1ORCID,Rushton Phillip S2ORCID,Kihara Daisuke23ORCID,Ciesielski Peter4ORCID,Aryal Uma K56ORCID,Zhang Zicong3ORCID,Stauffacher Cynthia V2ORCID,McCann Maureen C27ORCID,Carpita Nicholas C127ORCID

Affiliation:

1. Department of Botany and Plant Pathology, Purdue University, West Lafayette , Indiana 47907, USA

2. Department of Biological Sciences, Purdue University, West Lafayette , Indiana 47907, USA

3. Department of Computer Science, Purdue University, West Lafayette , Indiana 47907, USA

4. Renewable Resources & Enabling Sciences Center, National Renewable Energy Laboratory, Golden , Colorado 80401, USA

5. Bindley Biosciences Center, Purdue University, West Lafayette , Indiana 47907, USA

6. Department of Comparative Pathobiology, College of Veterinary Medicine, Purdue University , West Lafayette, Indiana 47907, USA

7. Biosciences Center, National Renewable Energy Laboratory , Golden, Colorado 80401, USA

Abstract

Abstract The Plant-Conserved Region (P-CR) and the Class-Specific Region (CSR) are two plant-unique sequences in the catalytic core of cellulose synthases (CESAs) for which specific functions have not been established. Here, we used site-directed mutagenesis to replace amino acids and motifs within these sequences predicted to be essential for assembly and function of CESAs. We developed an in vivo method to determine the ability of mutated CesA1 transgenes to complement an Arabidopsis (Arabidopsis thaliana) temperature-sensitive root-swelling1 (rsw1) mutant. Replacement of a Cys residue in the CSR, which blocks dimerization in vitro, rendered the AtCesA1 transgene unable to complement the rsw1 mutation. Examination of the CSR sequences from 33 diverse angiosperm species showed domains of high-sequence conservation in a class-specific manner but with variation in the degrees of disorder, indicating a nonredundant role of the CSR structures in different CESA isoform classes. The Cys residue essential for dimerization was not always located in domains of intrinsic disorder. Expression of AtCesA1 transgene constructs, in which Pro417 and Arg453 were substituted for Ala or Lys in the coiled-coil of the P-CR, were also unable to complement the rsw1 mutation. Despite an expected role for Arg457 in trimerization of CESA proteins, AtCesA1 transgenes with Arg457Ala mutations were able to fully restore the wild-type phenotype in rsw1. Our data support that Cys662 within the CSR and Pro417 and Arg453 within the P-CR of Arabidopsis CESA1 are essential residues for functional synthase complex formation, but our data do not support a specific role for Arg457 in trimerization in native CESA complexes.

Funder

Center for Direct Catalytic Conversion of Biomass to Biofuels

Energy Frontier Research Center

Department of Energy, Office of Science, Office of Basic Energy Sciences

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

Cited by 2 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Open questions in plant cell wall synthesis;Journal of Experimental Botany;2023-03-24

2. Cellulose synthesis in land plants;Molecular Plant;2023-01

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