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Updated: May 11, 2026

Lentiviral-mediated Knockdown During Ex Vivo Erythropoiesis of Human Hematopoietic Stem Cells
Published on: July 16, 2011
Transcriptomics and proteomics reveals the potential mechanisms of hydroquinone-inhibited erythroid differentiation
Chunhong Yu1, Jiaxi Chen2, Zetao Zhao1
1School of Engineering Medicine, Beihang University, 37 Xueyuan Road, Haidian District, Beijing 100191, China.
Abstract:
Hydroquinone (HQ), a key phenolic metabolite of benzene, plays a crucial role in the mechanisms underlying benzene-induced hematotoxicity and carcinogenicity. The mechanism of benzene-induced hematotoxicity hasn't been fully understood yet. The study aimed to elucidate the molecular mechanisms underlying benzene metabolites, HQ-inhibited erythroid differentiation. In this study, K562 cells were exposed to 40 μM HQ for 72 h, followed by induction with 40 μM Hemin for 48 h. Cell proliferation, hemoglobin synthesis, and gene and protein expression were assessed using trypan blue, benzidine staining, RT-PCR, RNA-seq, label-free proteomic analysis, and parallel reaction monitoring (PRM). The results demonstrated that HQ significantly inhibited erythroid differentiation in Hemin-induced K562 cells, downregulating key erythroid differentiation genes. HQ-induced differentially expressed genes (DEGs) and differentially expressed proteins (DEPs) were involved in oxidative stress, apoptosis, and erythroid differentiation-related GO terms, as well as metabolic, ferroptosis, biosynthesis of amino acids-related pathways. Network analysis identified five key hub proteins (MYB, ALAS1, ALAS2, FECH, and STAT5B) with the highest interaction scores, among which ALAS2 emerged as a potential major regulator in HQ-exposed K562 cells based on its role in erythroid differentiation. These findings provide novel insights into the molecular mechanisms underlying HQ-induced hematotoxicity and highlight potential therapeutic targets for mitigating the adverse effects of benzene exposure.
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