ArticlePLoS genetics2024
A conserved protein tyrosine phosphatase, PTPN-22, functions in diverse developmental processes in C. elegans.
Article in PLoS genetics, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 8 papers.
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8 citing papers in PubMed.
- Decoding ulcerative colitis pathogenesis through transcriptomics: from dysregulated gene networks to targeted intervention strategies.Journal of translational autoimmunity · 2026Article
- Proximity labeling strategies in Caenorhabditis elegans: a comprehensive review.Cell communication and signaling : CCS · 2026Review
- PIKI-1, a class II PI 3-kinase, functions in endocytic trafficking.PLoS genetics · 2026Article
- Integrating endogenous TurboID and data-independent acquisition mass spectrometry for in vivo proximity labeling.The EMBO journal · 2026Article
- Phosphorylation-dependent regional motility of the ciliary kinesin OSM-3.The Journal of cell biology · 2025Article
- PIKI-1, a class II phosphatidylinositol 3-kinase, functions in endocytic trafficking.bioRxiv : the preprint server for biology · 2025Article
- TAT-1, a phosphatidylserine flippase, affects molting and regulates membrane trafficking in the epidermis of Caenorhabditis elegans.Genetics · 2025Article
- Unzipping the defense: a comprehensive review on bZIP transcription factors inFrontiers in cellular and infection microbiology · 2025Review
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Abstract
Protein tyrosine phosphatases non-receptor type (PTPNs) have been studied extensively in the context of the adaptive immune system; however, their roles beyond immunoregulation are less well explored. Here we identify novel functions for the conserved C. elegans phosphatase PTPN-22, establishing its role in nematode molting, cell adhesion, and cytoskeletal regulation. Through a non-biased genetic screen, we found that loss of PTPN-22 phosphatase activity suppressed molting defects caused by loss-of-function mutations in the conserved NIMA-related kinases NEKL-2 (human NEK8/NEK9) and NEKL-3 (human NEK6/NEK7), which act at the interface of membrane trafficking and actin regulation. To better understand the functions of PTPN-22, we carried out proximity labeling studies to identify candidate interactors of PTPN-22 during development. Through this approach we identified the CDC42 guanine-nucleotide exchange factor DNBP-1 (human DNMBP) as an in vivo partner of PTPN-22. Consistent with this interaction, loss of DNBP-1 also suppressed nekl-associated molting defects. Genetic analysis, co-localization studies, and proximity labeling revealed roles for PTPN-22 in several epidermal adhesion complexes, including C. elegans hemidesmosomes, suggesting that PTPN-22 plays a broad role in maintaining the structural integrity of tissues. Localization and proximity labeling also implicated PTPN-22 in functions connected to nucleocytoplasmic transport and mRNA regulation, particularly within the germline, as nearly one-third of proteins identified by PTPN-22 proximity labeling are known P granule components. Collectively, these studies highlight the utility of combined genetic and proteomic approaches for identifying novel gene functions.
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