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1.
Journal of Zhejiang University. Medical sciences ; (6): 113-122, 2021.
Article in English | WPRIM | ID: wpr-879952

ABSTRACT

The pathogenesis of hepatitis B virus (HBV)-associated hepatocellular carcinoma (HCC) is complicated with the crosstalk of multiple factors and the multi-step processes. The main mechanisms underlying the HBV-induced HCC include:①integration of HBV DNA into the host hepatocyte genome to alter gene function at the insertion site,resulting in host genome instability and expression of carcinogenic truncated proteins;②HBV gene mutations at S,C,and X coding regions in the genome;③HBV X gene-encoded HBx protein activates proto-oncogenes and inhibits tumor suppressor genes,leading to the HCC occurrence. In this article,the recent research progress on the molecular mechanism of HBV-induced HCC is comprehensively reviewed,so as to provide insights into the prevention,early prediction and postoperative adjuvant therapy of HCC.


Subject(s)
Humans , Carcinoma, Hepatocellular , Hepatitis B/complications , Hepatitis B virus/genetics , Hepatocytes , Liver Neoplasms
2.
Journal of Zhejiang University. Medical sciences ; (6): 541-551, 2018.
Article in Chinese | WPRIM | ID: wpr-775281

ABSTRACT

Promyelocytic leukemia (PML) protein, a tumor suppressor, plays an important role in patients with acute promyelocytic leukemia (APL) receiving arsenic trioxide (AsO) therapy. APL is a M3 subtype of acute myeloid leukemia (AML), which is characterized by expression of PML-RARα (P/R) fusion protein, leading to the oncogenesis. AsO is currently used as the first-line drug for patients with APL, and the mechanism may be:AsO directly binds to PML part of P/R protein and induces multimerization of related proteins, which further recruits different functional proteins to reform PML nuclear bodies (PML-NBs), and finally it degraded by SUMOylation and ubiquitination proteasomal pathway. Gene mutations may lead to relapse and drug resistance after AsO treatment. In this review, we discuss the structure and function of PML proteins; the pathogenesis of APL induced by P/R fusion protein; the involvement of PML protein in treatment of APL patient with AsO; and explain how PML protein mutations could cause resistance to AsO therapy.


Subject(s)
Humans , Antineoplastic Agents , Therapeutic Uses , Arsenic Trioxide , Therapeutic Uses , Drug Resistance, Neoplasm , Genetics , Leukemia, Promyelocytic, Acute , Drug Therapy , Mutation , Oncogene Proteins, Fusion , Metabolism , Promyelocytic Leukemia Protein , Chemistry , Genetics , Metabolism
3.
Acta Pharmaceutica Sinica ; (12): 666-71, 2014.
Article in Chinese | WPRIM | ID: wpr-448637

ABSTRACT

In our previous work, we found that trivalent dimethylarsinous acid (DMA(III)) have high affinity binding to cysteine residue 13 of rat hemoglobin. However, it is still unknown why arsenic intermediate metabolite DMA(III) has high binding affinity for Cysl3 but not for other cysteine residues 93, 140, 111 and 125. In order to better understand the molecular mechanism of DMA(III) with rat hemoglobin, we have done current study. So, SD rats were divided into control and arsenic-treated groups randomly. Arsenic species in lysate of red blood cells were analyzed by HPLC-ICP-MS, and then determined by a hybrid quadrupole TOF MS. In addition, trivalent DMA(III) binds to different cysteine residues in rat hemoglobin alpha and beta chains were also simulated by Molecular Docking. Only Cys13 in alpha chain is able to bind to DMA(III) from the experiment results. Cys13 of alpha chain in rat hemoglobin is a specific binding site for DMA(III), and we found that amino acids compose pockets structure and surround Cys13 (but not other cysteine residues), make DMA(III) much easy to bind cysteine 13. Taken together, the DMA(III) specific binding to Cys13 is related to spatial structure of Cys13.

4.
Acta Pharmaceutica Sinica ; (12): 666-671, 2014.
Article in Chinese | WPRIM | ID: wpr-245029

ABSTRACT

In our previous work, we found that trivalent dimethylarsinous acid (DMA(III)) have high affinity binding to cysteine residue 13 of rat hemoglobin. However, it is still unknown why arsenic intermediate metabolite DMA(III) has high binding affinity for Cysl3 but not for other cysteine residues 93, 140, 111 and 125. In order to better understand the molecular mechanism of DMA(III) with rat hemoglobin, we have done current study. So, SD rats were divided into control and arsenic-treated groups randomly. Arsenic species in lysate of red blood cells were analyzed by HPLC-ICP-MS, and then determined by a hybrid quadrupole TOF MS. In addition, trivalent DMA(III) binds to different cysteine residues in rat hemoglobin alpha and beta chains were also simulated by Molecular Docking. Only Cys13 in alpha chain is able to bind to DMA(III) from the experiment results. Cys13 of alpha chain in rat hemoglobin is a specific binding site for DMA(III), and we found that amino acids compose pockets structure and surround Cys13 (but not other cysteine residues), make DMA(III) much easy to bind cysteine 13. Taken together, the DMA(III) specific binding to Cys13 is related to spatial structure of Cys13.


Subject(s)
Animals , Rats , Arsenic , Metabolism , Binding Sites , Cacodylic Acid , Chemistry , Chromatography, High Pressure Liquid , Cysteine , Metabolism , Hemoglobins , Metabolism , Mass Spectrometry , Peptide Fragments , Metabolism
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