ArticlePLoS genetics2024
Cysteine Rich Intestinal Protein 2 is a copper-responsive regulator of skeletal muscle differentiation and metal homeostasis.
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 9 papers.
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Who cites it
9 citing papers in PubMed.
- Iron-endoplasmic reticulum-extracellular matrix axis regulates cancer cell invasion.bioRxiv : the preprint server for biology · 2026Article
- Integrative Analysis Prioritizes CRIP2 as a Candidate Associated with Myocardial Copper-Handling Responses After Myocardial Infarction.Current issues in molecular biology · 2026Article
- Role of cuproptosis in digestive system tumors (Review).International journal of molecular medicine · 2026Review
- The PBAF chromatin remodeling complex contributes to metal homeostasis through MTF1 regulation.Metallomics : integrated biometal science · 2026Article
- The Copper Chaperone ATOX1 Exhibits Differential Protein-Protein Interactions and Contributes to Skeletal Myoblast Differentiation.Molecular and cellular biology · 2026Article
- Sulfide regulation and catabolism in health and disease.Signal transduction and targeted therapy · 2025Review
- The impact and mechanisms of CRIP2 on the biological behavior of triple-negative breast cancer cells.Translational breast cancer research : a journal focusing on translational research in breast cancer · 2025Article
- Cysteine rich intestinal protein 2 links copper homeostasis to translational regulation in primary myoblasts.microPublication biology · 2025Article
- Emerging perspectives of copper-mediated transcriptional regulation in mammalian cell development.Metallomics : integrated biometal science · 2024Review
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18 authors.
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Abstract
Copper (Cu) is essential for respiration, neurotransmitter synthesis, oxidative stress response, and transcription regulation, with imbalances leading to neurological, cognitive, and muscular disorders. Here we show the role of a novel Cu-binding protein (Cu-BP) in mammalian transcriptional regulation, specifically on skeletal muscle differentiation using murine primary myoblasts. Utilizing synchrotron X-ray fluorescence-mass spectrometry, we identified murine cysteine-rich intestinal protein 2 (mCrip2) as a key Cu-BP abundant in both nuclear and cytosolic fractions. mCrip2 binds two to four Cu+ ions with high affinity and presents limited redox potential. CRISPR/Cas9-mediated deletion of mCrip2 impaired myogenesis, likely due to Cu accumulation in cells. CUT&RUN and transcriptome analyses revealed its association with gene promoters, including MyoD1 and metallothioneins, suggesting a novel Cu-responsive regulatory role for mCrip2. Our work describes the significance of mCrip2 in skeletal muscle differentiation and metal homeostasis, expanding understanding of the Cu-network in myoblasts. Copper (Cu) is essential for various cellular processes, including respiration and stress response, but imbalances can cause serious health issues. This study reveals a new Cu-binding protein (Cu-BP) involved in muscle development in primary myoblasts. Using unbiased metalloproteomic techniques and high throughput sequencing, we identified mCrip2 as a key Cu-BP found in cell nuclei and cytoplasm. mCrip2 binds up to four Cu+ ions and has a limited redox potential. Deleting mCrip2 using CRISPR/Cas9 disrupted muscle formation due to Cu accumulation. Further analyses showed that mCrip2 regulates the expression of genes like MyoD1, essential for muscle differentiation, and metallothioneins in response to copper supplementation. This research highlights the importance of mCrip2 in muscle development and metal homeostasis, providing new insights into the Cu-network in cells.
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Registered trials
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