1.Correlation of IGF2 levels with sperm quality, inflammation, and DNA damage in infertile patients.
Jing-Gen WU ; Cai-Ping ZHOU ; Wei-Wei GUI ; Zhong-Yan LIANG ; Feng-Bin ZHANG ; Ying-Ge FU ; Rui LI ; Fang WU ; Xi-Hua LIN
Asian Journal of Andrology 2025;27(2):204-210
Insulin-like growth factor 2 (IGF2) is a critical endocrine mediator implicated in male reproductive physiology. To investigate the correlation between IGF2 protein levels and various aspects of male infertility, specifically focusing on sperm quality, inflammation, and DNA damage, a cohort of 320 male participants was recruited from the Women's Hospital, Zhejiang University School of Medicine (Hangzhou, China) between 1 st January 2024 and 1 st March 2024. The relationship between IGF2 protein concentrations and sperm parameters was assessed, and Spearman correlation and linear regression analysis were employed to evaluate the independent associations between IGF2 protein levels and risk factors for infertility. Enzyme-linked immunosorbent assay (ELISA) was used to measure IGF2 protein levels in seminal plasma, alongside markers of inflammation (tumor necrosis factor-alpha [TNF-α] and interleukin-1β [IL-1β]). The relationship between seminal plasma IGF2 protein levels and DNA damage marker phosphorylated histone H2AX (γ-H2AX) was also explored. Our findings reveal that IGF2 protein expression decreased notably in patients with asthenospermia and teratospermia. Correlation analysis revealed nuanced associations between IGF2 protein levels and specific sperm parameters, and low IGF2 protein concentrations correlated with increased inflammation and DNA damage in sperm. The observed correlations between IGF2 protein levels and specific sperm parameters, along with its connection to inflammation and DNA damage, underscore the importance of IGF2 in the broader context of male reproductive health. These findings lay the groundwork for future research and potential therapeutic interventions targeting IGF2-related pathways to enhance male fertility.
Humans
;
Male
;
Insulin-Like Growth Factor II/metabolism*
;
Infertility, Male/genetics*
;
DNA Damage
;
Adult
;
Inflammation/metabolism*
;
Spermatozoa/metabolism*
;
Semen Analysis
;
Semen/metabolism*
;
Tumor Necrosis Factor-alpha/metabolism*
;
Histones/metabolism*
;
Interleukin-1beta/metabolism*
2.Icariin targets PDE5A to regulate viability, DNA synthesis and DNA damage of spermatogonial stem cells and improves reproductive capacity.
Tian-Long LIAO ; Cai-Mei HE ; Di XIAO ; Zhi-Rong ZHANG ; Zuping HE ; Xiao-Ping YANG
Asian Journal of Andrology 2025;27(4):543-549
Icariin is a pure compound derived from Epimedium brevicornu Maxim, and it helps the regulation of male reproduction. Nevertheless, the role and underlying mechanisms of Icariin in mediating male germ cell development remain to be clarified. Here, we have demonstrated that Icariin promoted proliferation and DNA synthesis of mouse spermatogonial stem cells (SSCs). Furthermore, surface plasmon resonance iron (SPRi) and molecular docking (MOE) assays revealed that phosphodiesterase 5A (PDE5A) was an important target of Icariin in mouse SSCs. Mechanically, Icariin decreased the expression level of PDE5A. Interestingly, hydrogen peroxides (H 2 O 2 ) enhanced the expression level of phosphorylation H2A.X (p-H2A.X), whereas Icariin diminished the expression level of p-H2A.X and DNA damage caused by H 2 O 2 in mouse SSCs. Finally, our in vivo animal study indicated that Icariin protected male reproduction. Collectively, these results implicate that Icariin targets PDE5A to regulate mouse SSC viability and DNA damage and improves male reproductive capacity. This study thus sheds new insights into molecular mechanisms underlying the fate decisions of mammalian SSCs and offers a scientific basis for the clinical application of Icariin in male reproduction.
Male
;
Animals
;
Flavonoids/pharmacology*
;
Mice
;
Cyclic Nucleotide Phosphodiesterases, Type 5/drug effects*
;
DNA Damage/drug effects*
;
Cell Survival/drug effects*
;
Cell Proliferation/drug effects*
;
Spermatogonia/drug effects*
;
Reproduction/drug effects*
;
Adult Germline Stem Cells/metabolism*
;
DNA Replication/drug effects*
3.Mechanism and significance of cell senescence induced by viral infection.
Yunchuang CHANG ; Xinna WU ; Lingli DENG ; Sanying WANG ; Genxiang MAO
Journal of Zhejiang University. Medical sciences 2025;54(1):70-80
Virus-induced senescence (VIS) is a significant biological phenomenon, which is associated with declining immune function, accelerating aging process and causing aging-related diseases. A variety of common viruses, including RNA viruses (such as SARS-CoV-2), DNA viruses (such as herpesviruses and hepatitis B virus), and prions can cause VIS in host cells. The primary mechanisms include abnormal activation of the cGAS-STING signaling pathway, DNA damage response, and potential correlations with the integrated stress response due to intracellular phase separation. Viral infection and cellular senescence influence each other: cellular senescence serves as a defense to restrict viral replication and transmission, while some viruses exploit cellular senescence to enhance their infectivity and replication. Understanding the mechanisms of VIS is conducive to the development of therapeutic strategies for viral infections and promotion of healthy aging. However, there is lack of research on therapeutic targets and drug development in this field so far. Although senolytics may be effective for anti-senescent cells therapy, their efficacy for VIS needs evidence from further clinical trials. This article reviews the research progress on the connection between viral infection and cellular senescence, to provide insights for the prevention and treatment of aging related diseases.
Humans
;
Cellular Senescence/physiology*
;
Virus Diseases/physiopathology*
;
Signal Transduction
;
Nucleotidyltransferases/metabolism*
;
DNA Damage
;
Virus Replication
;
COVID-19
;
Membrane Proteins/metabolism*
;
SARS-CoV-2
4.The role of 8-OxoG and its repair systems in liver diseases progression: responsible mechanisms and promising natural products.
Ying ZHENG ; Junxin CHEN ; Ze LIU ; Kaibo WANG ; Hao ZHANG
Chinese Journal of Natural Medicines (English Ed.) 2025;23(7):815-823
The accumulation of deoxyribonucleic acid (DNA) oxidative damage mediated by reactive oxygen species (ROS) is closely associated with liver diseases. 8-Oxoguanine (8-OxoG), a prevalent DNA oxidation product, plays a significant role in liver disease progression. The base excision repair (BER) pathway, comprising over 30 proteins including 8-OxoG DNA glycosylase1 (OGG1), MutY homolog (MUTYH), and MutT homolog protein 1 (MTH1), is responsible for the clearance and mismatch repair of 8-OxoG. Abnormally high levels of 8-OxoG and dysregulated expression and function of 8-OxoG repair enzymes contribute to the onset and development of liver diseases. Consequently, targeting the 8-OxoG production and repair system with agonists or inhibitors may offer a promising approach to liver disease treatment. This review summarizes the impact of 8-OxoG accumulation and dysregulated repair enzymes on various liver diseases, including viral liver disease, alcoholic liver disease (ALD), metabolic dysfunction-associated steatotic liver disease (MASLD), cholestatic liver disease (CLD), liver fibrosis, cirrhosis, and liver cancer. Additionally, we review natural constituents as potential therapeutic agents that regulate 8-OxoG production, repair enzymes, and repair system-related signal pathways in oxidative damage-induced liver diseases.
Humans
;
Liver Diseases/genetics*
;
Biological Products/pharmacology*
;
DNA Repair/drug effects*
;
Guanine/metabolism*
;
Animals
;
Disease Progression
;
DNA Damage
;
Oxidative Stress
5.Chinese agarwood petroleum ether extract suppressed gastric cancer progression via up-regulation of DNA damage-induced G0/G1 phase arrest and HO-1-mediated ferroptosis.
Lishan OUYANG ; Xuejiao WEI ; Fei WANG ; Huiming HUANG ; Xinyu QIU ; Zhuguo WANG ; Peng TAN ; Yufeng GAO ; Ruoxin ZHANG ; Jun LI ; Zhongdong HU
Chinese Journal of Natural Medicines (English Ed.) 2025;23(10):1210-1220
Gastric cancer (GC) is characterized by high morbidity and mortality rates. Chinese agarwood comprises the resin-containing wood of Aquilaria sinensis (Lour.) Gilg., traditionally utilized for treating asthma, cardiac ischemia, and tumors. However, comprehensive research regarding its anti-GC effects and underlying mechanisms remains limited. In this study, Chinese agarwood petroleum ether extract (CAPEE) demonstrated potent cytotoxicity against human GC cells, with half maximal inhibitory concentration (IC50) values for AGS, HGC27, and MGC803 cells of 2.89, 2.46, and 2.37 μg·mL-1, respectively, at 48 h. CAPEE significantly induced apoptosis in these GC cells, with B-cell lymphoma-2 (BCL-2) associated X protein (BAX)/BCL-2 antagonist killer 1 (BAK) likely mediating CAPEE-induced apoptosis. Furthermore, CAPEE induced G0/G1 phase cell cycle arrest in human GC cells via activation of the deoxyribonucleic acid (DNA) damage-p21-cyclin D1/cyclin-dependent kinase 4 (CDK4) signaling axis, and increased Fe2+, lipid peroxides and reactive oxygen species (ROS) levels, thereby inducing ferroptosis. Ribonucleic acid (RNA) sequencing, real-time quantitative polymerase chain reaction (RT-qPCR), and Western blotting analyses revealed CAPEE-mediated upregulation of heme oxygenase-1 (HO-1) in human GC cells. RNA interference studies demonstrated that HO-1 knockdown reduced CAPEE sensitivity and inhibited CAPEE-induced ferroptosis in human GC cells. Additionally, CAPEE administration exhibited robust in vivo anti-GC activity without significant toxicity in nude mice while inhibiting tumor cell growth and promoting apoptosis in tumor tissues. These findings indicate that CAPEE suppresses human GC cell growth through upregulation of the DNA damage-p21-cyclin D1/CDK4 signaling axis and HO-1-mediated ferroptosis, suggesting its potential as a candidate drug for GC treatment.
Animals
;
Humans
;
Mice
;
Antineoplastic Agents, Phytogenic
;
Apoptosis/drug effects*
;
Cell Line, Tumor
;
Cyclin D1/genetics*
;
Cyclin-Dependent Kinase 4/genetics*
;
DNA Damage/drug effects*
;
Drugs, Chinese Herbal/pharmacology*
;
Ferroptosis/drug effects*
;
G1 Phase Cell Cycle Checkpoints/drug effects*
;
Heme Oxygenase-1/genetics*
;
Mice, Inbred BALB C
;
Mice, Nude
;
Plant Extracts/pharmacology*
;
Stomach Neoplasms/physiopathology*
;
Thymelaeaceae/chemistry*
;
Up-Regulation/drug effects*
6.Assessing the efficacy of a novel sperm-washing medium enriched with serotonin, L-carnitine, and coenzyme Q10: an observational cohort study.
Sinem DOGAN ; Turgut AYDIN ; Nadiye KOROGLU ; Yasemin YILMAZER ; Nazli ALBAYRAK ; Fadime CETIN ; Elnaz MOSHFEGHI ; Ozge CELIK
Asian Journal of Andrology 2024;26(6):635-639
This observational cohort study investigated the potential of a novel sperm-washing medium (SWM) enriched with serotonin (5-HT), L-carnitine (L-C), and coenzyme Q10 (CoQ10) to enhance sperm motility and reduce DNA damage. It compared this innovative medium (5-HT/L-C/CoQ10 SWM) with two widely used commercial media (SWM 1 and SWM 2). Ninety-eight volunteers from an infertility clinic provided semen samples, which were divided into three aliquots for analysis in different SWMs: group 1, SWM was composed of hydroxyethyl piperazineethanesulfonic acid (HEPES), sodium bicarbonate, human serum albumin (HSA), taurine, and gentamicin sulfate (SWM 1); group 2, SWM was composed of HEPES, sodium bicarbonate, and HSA (SWM 2); and group 3, SWM was composed of HEPES-buffered human tubal fluid supplemented with 5-HT, L-C, and CoQ10 (5-HT/L-C/CoQ10 SWM). Sperm motility was categorized as progressive, nonprogressive, or immotile. Apoptosis, reactive oxygen species (ROS) production, and DNA fragmentation were also assessed. There were no significant differences in total or progressive sperm motility among the groups. Spermatozoa in group 3 exhibited reduced apoptosis, necrosis, and ROS levels and increased viability. No significant differences were observed in the DNA fragmentation index among groups. The 5-HT/L-C/CoQ10 SWM reduced sperm oxidative stress and apoptosis compared with those of the two commercially available SWMs, suggesting that 5-HT/L-C/CoQ10 SWM could be useful for enhancing in vitro fertilization success rates.
Humans
;
Male
;
Serotonin
;
Carnitine/pharmacology*
;
Ubiquinone/pharmacology*
;
Sperm Motility/drug effects*
;
Adult
;
Spermatozoa/drug effects*
;
Cohort Studies
;
Reactive Oxygen Species/metabolism*
;
Culture Media
;
DNA Fragmentation/drug effects*
;
Apoptosis/drug effects*
;
DNA Damage/drug effects*
7.Ku80 Inhibition Affects the Chemotherapeutic Sensitivity of T-Acute Lymphoblastic Leukemia Cell Line Jurkat.
Journal of Experimental Hematology 2024;32(6):1689-1695
OBJECTIVE:
To investigate the influence of Ku80 inhibition on the chemotherapeutic sensitivity of the T-acute lymphoblastic leukemia(T-ALL) cell line Jurkat, and to explore the potential mechanism.
METHODS:
The transcription and expression level of Ku80 in 6 hematological malignant cell lines were detected by RT-qPCR and Western blot, respectively. The expression of Ku80 in Jurkat cells was detected by Western blot after transfection with the recombinant shKu80 lentiviral vector. The proliferation capacity of Jurkat cells was explored by CCK-8 after Ku80 inhibition. The colony formation ability, apoptosis, and γH2AX(a protein marker of DNA damage) expression in Jurkat cells were investigated after Ku80 silencing and co-treated with etoposide(VP16) for 4 hours through soft agar assay, flow cytometry and Western blot, respectively.
RESULTS:
The mRNA level and protein expression of Ku80 were both highest in Jurkat among 6 hematological malignant cell lines. Ku80 expression was successfully down regulated in Jurkat cells after relative plasmid transfected. The proliferative ability of cells was significantly decreased after Ku80 inhibition(P < 0.05). The colony formation capacity of Jurkat cells was obviously reduced and the cells apoptosis and γH2AX expression were increased after Ku80 inhibition, with or without VP16 incubation.
CONCLUSION
Targeted silencing of Ku80 could enhance the sensitivity of VP16 in Jurkat cells, which might be associated with the elevated level of DNA damage accumulation.
Humans
;
Ku Autoantigen/metabolism*
;
Jurkat Cells
;
Apoptosis/drug effects*
;
Cell Proliferation
;
Etoposide/pharmacology*
;
DNA Damage
;
Cell Line, Tumor
;
Precursor T-Cell Lymphoblastic Leukemia-Lymphoma
8.Navigating the complex role of senescence in liver disease.
Chinese Medical Journal 2024;137(24):3061-3072
Cellular senescence, an irreversible state of cell cycle arrest characterized by phenotypic changes and a specific secretory profile, plays a dual role in liver health and disease. Under physiological conditions, senescence aids organ repair and regeneration, but its accumulation due to aging or pathological stress significantly contributes to chronic liver diseases, including alcoholic liver disease, metabolic dysfunction-associated steatohepatitis, liver fibrosis, and hepatocellular carcinoma. Senescence is identified by a range of cellular and molecular changes, such as morphological alterations, expression of cell cycle inhibitors, senescence-associated β-galactosidase activity, and nuclear membrane changes. The onset of senescence in organ cells can affect the entire organism, primarily through the senescence-associated secretory phenotype, which has autocrine, paracrine, and endocrine effects on tissue microenvironments. The objective of this review is to offer a contemporary overview of the pathophysiological events involving hepatic senescent cells and to elucidate their role in the onset and progression of liver diseases, particularly through mechanisms like telomere shortening, genomic and mitochondrial DNA damage, and inflammation. Additionally, this review discusses the emerging senolytic therapies aimed at targeting senescent cells to delay or mitigate liver disease progression. The therapeutic potential of these interventions, alongside their safety and effectiveness, highlights the need for further research to refine these approaches and address unresolved problems in the field of hepatic cellular senescence.
Humans
;
Cellular Senescence/physiology*
;
Liver Diseases
;
Animals
;
DNA Damage
;
Telomere Shortening/physiology*
9.Deubiquitinating enzyme JOSD2 affects susceptibility of non-small cell lung carcinoma cells to anti-cancer drugs through DNA damage repair.
Fujing GE ; Xiangning LIU ; Hongyu ZHANG ; Tao YUAN ; Hong ZHU ; Bo YANG ; Qiaojun HE
Journal of Zhejiang University. Medical sciences 2023;52(5):533-543
OBJECTIVES:
To investigate the effects and mechanisms of deubiquitinating enzyme Josephin domain containing 2 (JOSD2) on susceptibility of non-small cell lung carcinoma (NSCLC) cells to anti-cancer drugs.
METHODS:
The transcriptome expression and clinical data of NSCLC were downloaded from the Gene Expression Omnibus. Principal component analysis and limma analysis were used to investigate the deubiquitinating enzymes up-regulated in NSCLC tissues. Kaplan-Meier analysis was used to investigate the relationship between the expression of deubiquitinating enzymes and overall survival of NSCLC patients. Gene ontology enrichment and gene set enrichment analysis (GSEA) were used to analyze the activation of signaling pathways in NSCLC patients with high expression of JOSD2. Gene set variation analysis and Pearson correlation were used to investigate the correlation between JOSD2 expression levels and DNA damage response (DDR) pathway. Western blotting was performed to examine the expression levels of JOSD2 and proteins associated with the DDR pathway. Immunofluorescence was used to detect the localization of JOSD2. Sulforhodamine B staining was used to examine the sensitivity of JOSD2-knock-down NSCLC cells to DNA damaging drugs.
RESULTS:
Compared with adjacent tissues, the expression level of JOSD2 was significantly up-regulated in NSCLC tissues (P<0.05), and was significantly correlated with the prognosis in NSCLC patients (P<0.05). Compared with the tissues with low expression of JOSD2, the DDR-related pathways were significantly upregulated in NSCLC tissues with high expression of JOSD2 (all P<0.05). In addition, the expression of JOSD2 was positively correlated with the activation of DDR-related pathways (all P<0.01). Compared with the control group, overexpression of JOSD2 significantly promoted the DDR in NSCLC cells. In addition, DNA damaging agents significantly increase the nuclear localization of JOSD2, whereas depletion of JOSD2 significantly enhanced the sensitivity of NSCLC cells to DNA damaging agents (all P<0.05).
CONCLUSIONS
Deubiquitinating enzyme JOSD2 may regulate the malignant progression of NSCLC by promoting DNA damage repair pathway, and depletion of JOSD2 significantly enhances the sensitivity of NSCLC cells to DNA damaging agents.
Humans
;
Carcinoma, Non-Small-Cell Lung/genetics*
;
Antineoplastic Agents/pharmacology*
;
Lung Neoplasms/genetics*
;
DNA Damage
;
DNA
;
Deubiquitinating Enzymes/genetics*
10.Fibrillarin promotes homologous recombination repair by facilitating the recruitment of recombinase RAD51 to DNA damage sites.
Yanhua MU ; Jinhua HAN ; Mingjie WU ; Zongfang LI ; Ke DU ; Yameng WEI ; Mengjie WU ; Jun HUANG
Journal of Zhejiang University. Science. B 2023;24(12):1165-1173
Eukaryotic organisms constantly face a wide range of internal and external factors that cause damage to their DNA. Failure to accurately and efficiently repair these DNA lesions can result in genomic instability and the development of tumors (Canela et al., 2017). Among the various forms of DNA damage, DNA double-strand breaks (DSBs) are particularly harmful. Two major pathways, non-homologous end joining (NHEJ) and homologous recombination (HR), are primarily responsible for repairing DSBs (Katsuki et al., 2020; Li and Yuan, 2021; Zhang and Gong, 2021; Xiang et al., 2023). NHEJ is an error-prone repair mechanism that simply joins the broken ends together (Blunt et al., 1995; Hartley et al., 1995). In contrast, HR is a precise repair process. It involves multiple proteins in eukaryotic cells, with the RAD51 recombinase being the key player, which is analogous to bacterial recombinase A (RecA) (Shinohara et al., 1992). The central event in HR is the formation of RAD51-single-stranded DNA (ssDNA) nucleoprotein filaments that facilitate homology search and DNA strand invasion, ultimately leading to the initiation of repair synthesis (Miné et al., 2007; Hilario et al., 2009; Ma et al., 2017).
Recombinational DNA Repair
;
DNA-Binding Proteins/metabolism*
;
DNA Repair
;
DNA Damage
;
DNA

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