A spatiotemporal reconstruction of the C. elegans pharyngeal cuticle reveals a structure rich in phase-separating proteins

Author:

Kamal Muntasir12,Tokmakjian Levon23,Knox Jessica12ORCID,Mastrangelo Peter12,Ji Jingxiu12ORCID,Cai Hao4,Wojciechowski Jakub W5ORCID,Hughes Michael P6,Takács Kristóf7,Chu Xiaoquan8,Pei Jianfeng9,Grolmusz Vince7ORCID,Kotulska Malgorzata5ORCID,Forman-Kay Julie Deborah410ORCID,Roy Peter J123ORCID

Affiliation:

1. Department of Molecular Genetics, University of Toronto

2. The Donnelly Centre for Cellular and Biomolecular Research, University of Toronto

3. Department of Pharmacology and Toxicology, University of Toronto

4. Molecular Medicine Program, The Hospital for Sick Children

5. Wroclaw University of Science and Technology, Faculty of Fundamental Problems of Technology, Department of Biomedical Engineering

6. Department of Cell and Molecular Biology, St. Jude Children’s Research Hospital

7. PIT Bioinformatics Group, Institute of Mathematics, Eötvös University

8. Center for Quantitative Biology, Academy for Advanced Interdisciplinary Studies, Peking University

9. Department of Computer Science and Technology, Tsinghua University

10. Department of Biochemistry, University of Toronto

Abstract

How the cuticles of the roughly 4.5 million species of ecdysozoan animals are constructed is not well understood. Here, we systematically mine gene expression datasets to uncover the spatiotemporal blueprint for how the chitin-based pharyngeal cuticle of the nematode Caenorhabditis elegans is built. We demonstrate that the blueprint correctly predicts expression patterns and functional relevance to cuticle development. We find that as larvae prepare to molt, catabolic enzymes are upregulated and the genes that encode chitin synthase, chitin cross-linkers, and homologs of amyloid regulators subsequently peak in expression. Forty-eight percent of the gene products secreted during the molt are predicted to be intrinsically disordered proteins (IDPs), many of which belong to four distinct families whose transcripts are expressed in overlapping waves. These include the IDPAs, IDPBs, and IDPCs, which are introduced for the first time here. All four families have sequence properties that drive phase separation and we demonstrate phase separation for one exemplar in vitro. This systematic analysis represents the first blueprint for cuticle construction and highlights the massive contribution that phase-separating materials make to the structure.

Funder

NKFI

National Science Foundation

National Science Centre, Poland

Canadian Institutes of Health Research

National Science and Engineering Council of Canada

Canada Research Chairs

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

Reference97 articles.

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