PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
May 6, 2026Biology0 citationsOpen Access

Exploring the Phosphoregulatory Network of Human Sucrose Non-Fermenting 1-Related Kinase

View Full Paper
VGVaishnavi GopalakrishnanAFAmal FahmaAGAthira Perunelly Gopalakrishnan

Key Points

  • This research aims to define the phosphoregulatory network of SNRK and identify its substrates and kinases.
  • Comprehensive analysis of global phosphoproteomics datasets
  • Identification of class I phosphosites on SNRK
  • Examination of differential regulation of phosphosites under experimental conditions
  • Coregulation analysis of proteins and their phosphorylation sites
  • Identified 33 dark SNRK phosphosites with 19 differentially regulated
  • S518 and S569 showed significant regulation under various conditions
  • S569 is predicted as a candidate autophosphorylation site
  • Phospho-SNRK associated with cell cycle progression and chromatin organization

Abstract

Sucrose non-fermenting 1-related kinase (SNRK) is an understudied serine/threonine kinase of the CAMKL family, known for its role in metabolic regulation and cell signaling. Despite its emerging relevance in various biological processes and diseases, the phosphoregulatory landscape of human SNRK (valid substrates or role of its phosphosites) remains unexplored and demands robust, large-scale, data-oriented approaches to predict the potential substrates. A comprehensive analysis of global human phosphoproteomics datasets was performed to systematically identify class I phosphosites on SNRK, along with their predicted upstream kinases, potential downstream substrates, and coregulated phosphoproteins. Our analysis resulted in the identification of 33 dark SNRK phosphosites, of which 19 were differentially regulated across an array of experimental conditions. Among them, S518 and S569, outside their kinase domain, were the most frequently regulated and co-occurred phosphosites under diverse conditions. Notably, S569 is predicted as a candidate autophosphorylation site of SNRK. In these contexts, coregulation analysis of proteins and their phosphorylation sites suggested associations of phospho-SNRK in cell cycle progression, chromatin organization, and DNA replication. Uncovering candidate upstream kinases and potential substrates for prioritized validation, this study provides the first comprehensive phosphoproteomic map of SNRK, serving as a foundation for future investigations into its signaling network associations and therapeutic approaches.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Gopalakrishnan et al. (2026) studied this question.

synapsesocial.com/papers/69fa979b04f884e66b5317f0https://doi.org/10.3390/biology15090709
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Dissecting the Phospho-Regulatory Landscape of Protein Kinase N1 (PKN1) and Its Downstream Signaling: Functional Insights into the Activity-Dependent and Disease-Relevant Phosphosites2026
  2. 2Sucrose Nonfermenting-Related Kinase Enzyme–Mediated Rho-Associated Kinase Signaling is Responsible for Cardiac Function2016 · 19 citations
  3. 3Integrative phosphoproteomic analysis reveals co-regulatory phosphorylation networks of rhotekin in cancer progression2026
  4. 4Identification of RSK substrates using an analog-sensitive kinase approach2024 · 6 citations
  5. 5Emergence of Catalytic Activity in VRK3: Phosphoproteomic Insights into the Regulatory Network of a Former Pseudokinase2026