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Proteins are continuously synthesized during cell growth and proliferation. At the same time, excessive and misfolded proteins have to be degraded, otherwise they are a burden to cells. Protein degradation is essential to maintain proteostasis in cells, and dysfunction of protein degradation systems results in numerous diseases such as cancer and neurodegenerative diseases. Despite the importance of protein degradation, the degradation pathways of many proteins remain to be explored. Here, we comprehensively investigated the degradation of newly synthesized proteins in human cells by integrating metabolic labeling, click chemistry, and multiplexed proteomics, and systematic and quantitative analysis of newly synthesized proteins first revealed the degradation pathways of many proteins. Bioinformatic analysis demonstrates that proteins degraded through two major pathways have distinct properties and functions. Proteins degraded through the ubiquitin-proteasome pathway contain more disordered structures, whereas those through the autophagy-lysosome pathway have significantly higher hydrophobicity. Systematic and quantitative investigation of the dynamics of newly synthesized proteins provides unprecedented and valuable information about protein degradation, which leads to a better understanding of protein properties and cellular activities.
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http://dx.doi.org/10.1039/c9sc06479f | DOI Listing |
Dalton Trans
September 2025
Department of Chemistry, Istanbul Technical University, Maslak, Istanbul, 34469, Türkiye.
A novel phthalonitrile derivative (a) containing three functional groups (hexyl, aminated ester, phenoxy) was synthesized and subsequently cyclotetramerized in the presence of the corresponding metal chloride salts to obtain hexadeca-substituted metal {M = Cu(II) and Co(II)} phthalocyanines (b and c). The water-soluble phthalocyanines (d and e) were prepared by treating the newly synthesized complexes (b and c) with methyl iodide. Moreover, gold nanoparticles (1) and silver nanoparticles (2) were prepared, and their surfaces were modified with quaternary phthalocyanines (d and e).
View Article and Find Full Text PDFChem Biodivers
September 2025
Department of Microbiology, Immunology and Transplantation, Rega Institute for Medical Research, Molecular, Structural and Translational Virology Research Group, KU Leuven, Leuven, Belgium.
The human chemokine receptor 8 (CCR8) received attention as target for the treatment of various autoimmune disorders. Phenoxybenzylpiperidine analogues are known to act as CCR8 agonists, although their structure-activity relationship (SAR) has been studied to a limited extent. In this study, the SAR of phenoxybenzylpiperidinyl analogues was explored in a systematic way by fusion or insertion of various heterocyclic groups on the piperidinyl ring, yielding a set of 21 novel phenoxybenzylpiperidinyl derivatives.
View Article and Find Full Text PDFPain Res Manag
September 2025
Department of Thoracic and Cardiovascular Surgery, The First Affiliated Hospital of Guangxi Medical University, Nanning, China.
Pectus excavatum is a common congenital chest wall deformity that can lead to significant cardiopulmonary compression and psychological distress. The minimally invasive Nuss procedure is the standard treatment, but it often results in severe postoperative pain. Effective perioperative pain management is essential to enhance recovery and improve patient outcomes.
View Article and Find Full Text PDFACS Omega
September 2025
Department of Chemistry, Faculty of Science, Dokuz Eylul University, Izmir 35160, Turkey.
A novel silica-based sorbent, silica-carbazole-formazan (Si-Carb-Formazan), was synthesized through in situ functionalization with a newly prepared carbazole formazan derivative to remove Cu-(II) ions from aqueous solutions efficiently. The sorbent was characterized using techniques such as FTIR, SEM, TGA, and XPS, which revealed a porous structure with a high surface area and excellent thermal stability. Batch adsorption experiments analyzed the influence of various factors on the sorbent's performance, demonstrating its high efficiency.
View Article and Find Full Text PDFFront Immunol
September 2025
Department of Pediatrics, Division of Infectious Diseases, Emory University School of Medicine, Atlanta, GA, United States.
Introduction: Interferon-induced transmembrane proteins (IFITMs) inhibit the entry of diverse enveloped viruses. The spectrum of antiviral activity of IFITMs is largely determined by their subcellular localization. IFITM1 localizes to and primarily blocks viral fusion at the plasma membrane, while IFITM3 prevents viral fusion in late endosomes by accumulating in these compartments.
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