Area of research
Molecular Biology · Cell Biology
Research interest
Research focused on Proteome and Proteomics, with related work in Cancer research, Endoplasmic reticulum, Cell biology. Notable publications include 'Systematic Analyses of the Transcriptome, Translatome, and Proteome Provide a Global View and Potential Strategy for the C-HPP', 'Sulforaphane inhibits pancreatic cancer through disrupting Hsp90–p50Cdc37 complex and direct interactions with amino acids residues of Hsp90', and 'Aberrant human ClpP activation disturbs mitochondrial proteome homeostasis to suppress pancreatic ductal adenocarcinoma'.
Exosomal Proteome from Hepatocellular Carcinoma Patient-Derived Xenograft Mice Serves as Identity of Liver Cancer
Quantitative Proteome Analysis of Plasma Extracellular Vesicles Identifies Three Proteins with Potential Diagnostic Value for <i>Mycobacterium bovis</i> Infection in Cows
Addendum: Cellular differentiation into hyphae and spores in halophilic archaea
Cellular differentiation into hyphae and spores in halophilic archaea
Aberrant human ClpP activation disturbs mitochondrial proteome homeostasis to suppress pancreatic ductal adenocarcinoma
Geometric Constraints Regulate Energy Metabolism and Cellular Contractility in Vascular Smooth Muscle Cells by Coordinating Mitochondrial DNA Methylation
USP18‑deficiency in cervical carcinoma is crucial for the malignant behavior of tumor cells in an ERK signal‑dependent manner
Quantitative Proteomics Reveals the Development of HBV-Associated Glomerulonephritis Triggered by the Downregulation of SLC7A7
Ctenopharyngodon idella PERK (EIF2AK3) decreases cell viability by phosphorylating eIF2α under ER stress
Quantitative proteomics reveals FLNC as a potential progression marker for the development of hepatocellular carcinoma
Tissue-Based Proteogenomics Reveals that Human Testis Endows Plentiful Missing Proteins
Quantitative Proteomics Reveals Membrane Protein-Mediated Hypersaline Sensitivity and Adaptation in Halophilic <i>Nocardiopsis xinjiangensis</i>
Special Enrichment Strategies Greatly Increase the Efficiency of Missing Proteins Identification from Regular Proteome Samples
Systematic Analyses of the Transcriptome, Translatome, and Proteome Provide a Global View and Potential Strategy for the C-HPP
Sulforaphane inhibits pancreatic cancer through disrupting Hsp90–p50Cdc37 complex and direct interactions with amino acids residues of Hsp90