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Eddie Reed

Publications and source records attributed to Eddie Reed.

At least 37 records · Page 2Linked to original sources

Demonstration of differential gene expression between sensitive and resistant ovarian tumor cells by fluorescence differential display-PCR analysis.

Chemotherapy plays a major role in cancer management; however, acquired drug resistance remains a significant problem for ovarian cancer treatment. Chemoresistance is regulated by the coordinated expression of a set of genes. Thus, the identification of genes specifically modulated in the process provides an important step toward the discovery of underlying molecular mechanisms in drug resistance events. We recently developed five drug-resistant human ovarian carcinoma cell lines, including two cisplatin (cis) resistant cell lines, two carboplatin (car) resistant cell lines and one taxol (tax) resistant cell line. In this study, we investigated differential gene expression between these resistant cell lines and their parental cell lines by the fluorescence differential display-polymerase chain reaction (FDD-PCR) technique. We first screened and identified differentially expressed genes in the resistant ovarian cancer cell lines, and we then sequenced and analyzed these genes by bioinformatics software. A total of 33 fragments were displayed in the two resistant cell lines (S-cis and S-car) derived from the sensitive SKOV-3 cell line, and 36 fragments were displayed in the three resistant cell lines (A-cis, A-car and A-tax) derived from the sensitive A2780 cell line. After purification, cloning, sequencing, and homology analysis on the NCBI BLAST GenBank, 12 gene fragments were identified from the resistant S-cis and S-car cells, and 23 gene fragments were identified from the resistant A-cis, A-car and A-tax cells. Although a homolog search of the NIH GenBank revealed that most of the gene fragments were not significantly associated with the known drug resistance-related genes, our study conclusively demonstrates that FDD-PCR is a useful tool for analyzing the differential gene expression between resistant and sensitive tumor cells and for identifying novel chemoresistance-associated genes and potential biological markers or genetic markers of drug resistance.

Base Sequence↗

Molecular mechanism of antitumor activity of taxanes in lung cancer (Review).

Lung cancer is the most common cause of cancer mortality in both male and female patients in the United States of America, as well as in the rest of the world. Over one million people are diagnosed with lung cancer every year worldwide. The taxane is one of the most powerful classes of novel antitumor agents and has become an integral part of several commonly used chemotherapy regimens in lung cancer management over the past few years. Although the ability of taxanes to disrupt microtubule dynamics is well documented, the molecular basis by which taxanes suppress cancer cell growth and induce apoptotic cell death is not clearly defined. In this review, we focus on the molecular mechanisms of the antitumor activity of taxanes (paclitaxel and docetaxel) in lung cancer, and discuss the interactions of taxanes with microtubules, the roles of cell cycle control and cell death induction in the anticancer action of taxanes, as well as the signal transduction pathways involved in the processes. In addition, we discuss the possible mechanisms of taxane resistance, because drug resistance to these anti-neoplastic agents affects therapy efficacy and is also a major obstacle in the clinic for the successful treatment of lung cancer. Understanding the molecular mechanisms underlying the antitumor effect of taxanes and the drug resistance to taxanes may lead to the design of biologically and pharmacologically targeted therapeutic strategies for taxane resistant tumors, and to the improvement of chemotherapy effect and cancer patient survival.

Antineoplastic Agents↗

Subcellular localization of caspase-3 activation correlates with changes in apoptotic morphology in MOLT-4 leukemia cells exposed to X-ray irradiation.

Caspase-3 is a critical effector caspase for apoptosis, which cleaves proteins, including cytoskeletal and associated proteins, kinases, and members of the Bcl-2 family of apoptosis-related proteins. This leads to changes in apoptotic morphology, such as membrane externalization and cytoplasm and nuclear condensation. It has been reported that pro-caspase-3 is activated in the cytosol. However, it remains obscure how caspase-3 activation correlates to serial changes in cell morphology during apoptosis. The current study was therefore undertaken to assess the relationship between caspase-3 activation and its subcellular localization and alterations in apoptotic morphology in MOLT-4 human leukemia cells exposed to X-ray irradiation. Fluorescence labeled inhibitor of caspases (FLICA) was used to detect caspase-3 activity in apoptotic cells in this project; cell morphology and caspase-3 sub-localization were determined by confocal microscopy. Our data showed that MOLT-4 cells presented typical morphological changes in apoptosis, such as membrane reversion, DNA fragmentation, and formation of apoptotic cell bodies following 10 Gray (Gy) of X-ray irradiation. Caspase-3 was activated 2 h after X-ray irradiation, and its activity increased markedly after 4-6-h exposure. Membrane reversion in MOLT-4 leukemia cells was detected by Annexin V assay at 4 h following X-ray irradiation, 2 h after the elevated caspase-3 activity was measured. Cytologically, activation of caspase-3 was first observed close to the inside surface of the cellular membrane, then transferred to the cytoplasm, and finally translocated to the nuclear region. We conclude that caspase-3 is activated in MOLT-4 cells following exposure to X-rays, and that the enhanced caspase-3 activity and its sub-localization shifting is correlated to changes in apoptotic morphology. The spatial shift of activated caspase-3 in X-ray-induced apoptotic MOLT-4 leukemia cells is a process of crucial importance for apoptosis.

Apoptosis↗

Differential expression of cyclins A, B1, D3 and E in G1 phase of the cell cycle between the synchronized and asynchronously growing MOLT-4 cells.

The use of 'double-thymidine block' was the first widely accepted method for inducing cell synchrony and remains one of the most effective and frequently used techniques for analyzing the cell cycle today. While thymidine is in itself an inhibitor of DNA replication, thymidine blocks are typically used to generate cell synchrony at the G1/S boundary. We have previously presented the first evidence that shows the growth imbalance and altered expression levels of cyclins A, B1, D3 and E in MOLT-4 cells synchronized in the cell cycle by thymidine. The major objective of the present study was to compare the levels of cyclins A, B1, D3 and E in G1 phase of the cell cycle between synchronized and unperturbed asynchronously growing human lymphocyte leukemia MOLT-4 cells. Here, we demonstrate that the sorted, asynchronously growing MOLT-4 cells had considerably lower levels of cyclins A, B1, D3 and E than their counterparts of the cells arrested in G1/S phase, as assessed by flow cytometry. In addition, we confirmed these results by using post-sorting Western blotting, a new method we recently developed for examining protein expression in specific phases of sorted, synchronized or asynchronously growing cells. Our findings revealed that the levels of cyclins D3 and E in the asynchronously growing MOLT-4 cells were significantly lower than those in synchronized cultures. Interestingly, protein expression levels of cyclins A and B1 in the asynchronously growing MOLT-4 cells were barely measurable, suggesting that these proteins were either not expressed or under detectable levels. These studies indicate that our synchronization protocol may have disturbed cell proliferation and metabolism as evidenced by significant differences in the expression of cyclins between asynchronously growing and synchronized cells, and further suggest that the levels of cyclins A, B1, D3 and E in synchronized cultures cannot represent those in unperturbed, asynchronously growing cells. Thus, it appears that thymidine-treated, synchronized cells may not be suitable experimental models for the study of normal cell cycle.

Blotting, Western↗

Gleason score and pretreatment prostate-specific antigen in survival among patients with stage D2 prostate cancer.

Although multiple studies have addressed the prognostic importance of tumor differentiation in patients with clinically localized prostate cancer, few data are available in patients with metastatic disease. We evaluated and compared survival data in two groups of men with Whitmore stage D2 metastatic prostate cancer initially treated with hormonal therapy. A series of 76 patients with D2 metastatic disease were evaluated and treated at the National Cancer Institute (NCI) in conjunction with an additional cohort of 141 patients from the Louisiana State University School of Medicine (LSU). Pathological specimens were classified according to the Gleason score. Fifty-two (25%) of the combined NCI/LSU specimens had a Gleason score of 6 or less, 71 (34%) had a value of 7, and remaining 87 (41%) had scores between 8 and 10. The median PSA at the time of diagnosis for the NCI patients was 294.2 ng/ml. Time to treatment failure was defined as the time that a greater than 50% increase above nadir PSA was noted. In neither group was Gleason score correlated with overall survival. There was no association between the time to progression following hormone therapy and primary tumor Gleason score. The PSA concentration at the time of diagnosis was not correlated with the Gleason score for the NCI patients; however, there was an inverse correlation between pretreatment PSA level and time to progression following hormonal ablation. Gleason score does not appear to impact survival in metastatic prostate cancer. PSA as a marker of the biological behavior in metastatic disease may also be limited. These findings should be reevaluated in larger, better matched cohorts. Novel techniques such as serum proteomics, microarrays, and metastatic cell isolation methods may better predict outcome in advanced prostate cancer.

Aged↗

SU5416 inhibited VEGF and HIF-1alpha expression through the PI3K/AKT/p70S6K1 signaling pathway.

Ovarian cancer has the highest mortality rate of any gynecological disease affecting women in Western countries. VEGF is a crucial inducer of angiogenesis both in vivo and in vitro. VEGF is commonly upregulated in ovarian cancer and is regulated by HIF-1. SU5416 is known to inhibit various stages of tumor growth. In this study, we show that SU5416 inhibited VEGF mRNA expression in ovarian cancer cells in a dose-dependent manner. SU5416 inhibited VEGF expression at the transcriptional level through the HIF-1 DNA binding site. HIF-1 is composed of HIF-1alpha and HIF-1beta subunits. SU5416 specifically decreased HIF-1alpha, but not HIF-1beta protein levels. To understand the signaling pathways regulating SU5416-inhibited VEGF and HIF-1alpha expression, we found that SU5416 inhibited PI3K activity. AKT is a downstream target of PI3K. We found that SU5416 also inhibited AKT and p70S6K1 activation and activity in a dose-dependent manner. These results demonstrate that SU5416 inhibited VEGF and HIF-1alpha expression through the inhibition of PI3K/AKT/p70S6K1 pathway in ovarian cancer cells. These results indicate that SU5416 may be an effective agent for ovarian cancer treatment through the inhibition of VEGF and HIF-1 expression, and the activation of PI3K/AKT/p70S6K1 signaling pathway.

Binding Sites↗

ATM-dependent CHK2 activation induced by anticancer agent, irofulven.

Irofulven (6-hydroxymethylacylfulvene, HMAF, MGI 114) is one of a new class of anticancer agents that are semisynthetic derivatives of the mushroom toxin illudin S. Preclinical studies and clinical trials have demonstrated that irofulven is effective against several tumor types. Mechanisms of action studies indicate that irofulven induces DNA damage, MAPK activation, and apoptosis. In this study we found that in ovarian cancer cells, CHK2 kinase is activated by irofulven while CHK1 kinase is not activated even when treated at higher concentrations of the drug. By using GM00847 human fibroblast expressing tetracycline-controlled, FLAG-tagged kinase-dead ATR (ATR.kd), it was demonstrated that ATR kinase does not play a major role in irofulven-induced CHK2 activation. Results from human fibroblasts proficient or deficient in ATM function (GM00637 and GM05849) indicated that CHK2 activation by irofulven is mediated by the upstream ATM kinase. Phosphorylation of ATM on Ser(1981), which is critical for kinase activation, was observed in ovarian cancer cell lines treated with irofulven. RNA interference results confirmed that CHK2 activation was inhibited after introducing siRNA for ATM. Finally, experiments done with human colon cancer cell line HCT116 and its isogenic CHK2 knockout derivative; and experiments done by expressing kinase-dead CHK2 in an ovarian cancer cell line demonstrated that CHK2 activation contributes to irofulven-induced S phase arrest. In addition, it was shown that NBS1, SMC1, and p53 were phosphorylated in an ATM-dependent manner, and p53 phosphorylation on serine 20 is dependent on CHK2 after irofulven treatment. In summary, we found that the anticancer agent, irofulven, activates the ATM-CHK2 DNA damage-signaling pathway, and CHK2 activation contributes to S phase cell cycle arrest induced by irofulven.

Antineoplastic Agents, Alkylating↗

Phase II trial of carboplatin and infusional cyclosporine in platinum-resistant recurrent ovarian cancer.

PURPOSE: To determine the response rate to 26-h continuous infusion cyclosporine A (CSA) combined with a fixed dose level of carboplatin (CBDCA) in patients with recurrent ovarian cancer, and to determine the effect of CSA on the pharmacokinetics of CBDCA. EXPERIMENTAL DESIGN: To examine the effect of duration of CSA exposure on reversal of CBDCA resistance, clonogenic assays were performed in vitro in platinum-resistant A2780 cells. CBDCA (AUC 4) with CSA repeated every 3 weeks was then administered to patients on this phase II study. Pharmacokinetics of CSA and CBDCA were determined in a subset of patients. RESULTS: Preincubation of platinum-resistant A2780 cells with CSA reversed CBDCA resistance in a concentration-dependent and time-dependent manner. A group of 23 patients received 58 courses of CBDCA/CSA therapy. One partial response was observed. Eight patients achieved disease stabilization. Toxicity was similar to that observed in our previous phase I study and consisted of myelosuppression, nausea, vomiting, and headache. The mean +/- SD end-of-infusion CSA level (HPLC assay) was 1253 +/- 400 microg/ml. The pharmacokinetic studies suggest that CSA does not increase CBDCA AUC. CONCLUSIONS: Steady-state levels of >1 microg/ml CSA (HPLC assay) are achievable in vivo. Modest partial reversal of platinum resistance (in one patient with an objective response and in eight patients with stable disease noted) is achievable in vivo in patients pretreated with CSA. This phenomenon is not explained by alterations in CBDCA pharmacokinetics.

Adult↗

CHK2 kinase expression is down-regulated due to promoter methylation in non-small cell lung cancer.

BACKGROUND: CHK2 kinase is a tumor suppressor that plays important role in DNA damage signaling, cell cycle regulation and DNA damage induced apoptosis. CHK2 kinase expression was known to be ubiquitous in mammalian cells. CHK2-/- cells were remarkably resistant to DNA damage induced apoptosis, mimicking the clinical behavior of non-small cell lung cancer to conventional chemo and radiation therapy. RESULT: We reported that the CHK2 expression is diminished or absent in both non-small cell lung cancer (NSCLC) cell lines and clinical lung cancer tumor specimens. The absent CHK2 expression in NSCLC was due to hypermethylation of the CHK2 gene promoter, preventing from binding of a transcriptional factor, leading to silence of the CHK2 gene transcription. CONCLUSION: Since the CHK2 null mice showed a remarkable radioresistance, which bear significant similarity to clinical behavior of NSCLC, down-regulation of CHK2 kinase expression by CHK2 gene silencing and methylation in non-small cell lung cancer suggest a critical role of CHK2 kinase in DNA damage induced apoptosis and a novel mechanism of the resistance of NSCLC to DNA damage based therapy.

Carcinoma, Non-Small-Cell Lung↗

Detection of cyclin b1 expression in g(1)-phase cancer cell lines and cancer tissues by postsorting Western blot analysis.

Protein complex of cyclin B1 and cyclin-dependent protein kinase 1 induces phosphorylation of key substrates that mediate cell cycle transition during the G(2)-M phase. It is believed that cyclin B1 accumulates in the S phase of the cell cycle and reaches the maximal level at mitosis but is absent in G(1)-phase cells. In the present study, we demonstrated that cyclin B1 was expressed in the arrested G(1)-phase MOLT-4 lymphocyte leukemia cells and in G(1) phase T-7 transitional tumor cells, as determined by flow cytometry. In addition, we showed that cyclin B1 was detected in the G(1) phase in breast cancer cells from patient tissues and in lymphocytes from patients with leukemia. These findings were confirmed for the first time by postsorting Western blot analysis and by confocal microscopy. Furthermore, by using postsorting Western blotting, we found that cyclin B1 was expressed in different time-window sections of the G(1) phase under different conditions. For the asynchronously growing T-7 cells, cyclin B1 was detected in early G(1) phase, whereas in MOLT-4 cells arrested in G(1)-S phase, cyclin B1 was mainly detected in late G(1) phase. We propose that the cyclin B1 expressed in the G(1) phase may differ from that expressed in the G(2)-M phase, and that this unscheduled type of cyclin B1 may play an important role in tumorigenesis and apoptosis.

Blotting, Western↗

9-beta-D-arabinofuranosyl-2-fluoroadenine inhibits expression of vascular endothelial growth factor through hypoxia-inducible factor-1 in human ovarian cancer cells.

Ovarian cancer is the leading cause of death from gynecological malignancy and has the worst prognosis of all gynecological cancers. Vascular endothelial growth factor (VEGF) plays an important role in ovarian cancer development. 9-beta-D-Arabinofuranosyl-2-fluoroadenine (Fara-A), a nucleotide analog, is frequently used in treating certain types of cancer. However, the effectiveness of Fara-A on ovarian cancer cells is unknown. In this study, we found that Fara-A inhibited VEGF expression in human ovarian cancer cells. Fara-A inhibited VEGF transcriptional activation through hypoxia-inducible factor 1 (HIF-1). HIF-1 is composed of HIF-1alpha and -1beta subunits. Fara-A inhibited expression of HIF-1alpha but not HIF-1beta. Overexpression of HIF-1alpha reversed Fara-A-inhibited VEGF transcriptional activation. Our results demonstrated that Fara-A inhibited VEGF transcriptional activation through HIF-1alpha expression. Fara-A partly inhibited HIF-1alpha mRNA levels. Fara-A blocked the activation of AKT but not of ERK1/2. Overexpression of AKT reversed the Fara-A-inhibited VEGF transcriptional activation, suggesting that Fara-A inhibits VEGF expression via phosphatidylinositol 3-kinase/AKT signaling. These results demonstrate a new function of Fara-A in inhibiting VEGF and HIF-1alpha expression and identify a potential molecular mechanism of the regulation.

Antineoplastic Agents↗

Neuro-optic cell apoptosis and microangiopathy in KKAY mouse retina.

Diabetic retinopathy is one of the common complications of diabetes and is the leading cause for patients' visual dysfunction and sight loss. However, the mechanism of diabetic retinopathy is not clearly defined. The present study was undertaken to investigate neuroretinal apoptosis in different stages in a mouse model for type 2 diabetes mellitus and the mechanism of diabetic retinopathy. KKAY mouse with genetic diabetes, an animal model for type 2 diabetes, was used in this study. Mice were divided into a control group and a diabetic group. The mice in both groups were sacrificed at one month and three months, and the mouse eyeballs were used for making retinal histologic sections. We showed in this study that the apoptotic cell numbers for retinal neural cells in the ganglion cell layer were significantly greater in the diabetic group than in the control group (p<0.01), as determined by the TUNEL assay. In addition, many more apoptotic retinal neuronal cells were found in the retinal ganglion cell layer and medial part of the inner nuclear layer in the diabetic group when the mice were sacrificed at three months as compared to those sacrificed at one month (p<0.01). We also studied the ultrastructure of the retinal nerve cells and microvesseles by electron microscopy and demonstrated that the ultrastructure changes for retinal neural cells and retinal microangiopathy were observed in, as early as, the early stage of diabetes. These findings indicate that: i). retinal neuropathy and microangiopathy occur in the early stage of diabetes, ii). apoptosis may be an important mechanism through which retinal neurodegeneration is developed, and iii). both retinal neurodegeneration and retinal microangiopathy should be considered as the diabetic retinopathy.

Animals↗

Apoptosis in prostate cancer: progressive and therapeutic implications (Review).

Prostate cancer is the most common non-cutaneous malignancy in American men and the second greatest cause of cancer-related death. Development of effective therapeutic modalities for the treatment of this cancer relies heavily on understanding the molecular alterations that result in the initiation and progression of the tumorigenic process. Increasing evidence indicates that impaired ability to undergo apoptosis plays an important role in the evolution from androgen-dependent to androgen-independent prostate cancer. In this review, we address recent progress toward the central objectives of understanding the molecular events that contribute to prostate cancer progression. We focus on some key regulatory molecules, including the pro-apoptotic regulators p53, PTEN, caspases and Par-4, and the anti-apoptotic molecules Bcl-2, NF-kappaB and Akt, to discuss their roles in prostate cancer progression and their therapeutic implications in human prostate carcinoma.

Apoptosis↗

Mechanisms underlying the synergistic effect of SU5416 and cisplatin on cytotoxicity in human ovarian tumor cells.

SU5416 is a selective inhibitor of vascular endothelial growth factor (VEGF) receptors with anti-angiogenesis activity for human cancers. We have previously reported that SU5416 sensitizes ovarian cancer cells to cisplatin via suppression of nucleotide excision repair activity. This study sought to gain further insights into the mechanisms underlying the synergistic effect of SU5416 and cisplatin on cytotoxicity in human ovarian tumor cells. Here, we show that SU5416 inhibited the expression of G1 cell cycle checkpoint regulators, p53, p21, p27 and MDM2 in ovarian carcinoma cells. We also demonstrate that SU5416 triggered the apoptosis of these cells, in addition to augmenting the apoptosis induced by cisplatin, as determined by a Sub-G1 profile analysis using a flow cytometer. Furthermore, we show that SU5416-induced apoptosis is associated with a decrease in the expression of the apoptosis inhibitors, MDM2 and Bcl-2, and an increase in the level of NF-kappaB inhibitor, IkappaBalpha. NF-kappaB is an anti-apoptotic transcription factor, which induces the apoptosis inhibitors, Bcl-XL and IAPs (inhibitor of apoptosis proteins), and IkappaBalpha is an inhibitor of NF-kappaB, which binds to the NF-kappaB and retains it in the cytoplasm. Finally, the compound was found to block cisplatin-induced increases in AP-1 expression and JNK activity, as well as Raf-1 protein level in these cells. Together, these results suggest that the chemosensitizing effect of SU5416 on ovarian tumor cells may be mediated, at least in part, through inhibiting G1 checkpoint control and up-regulating the apoptotic response to cisplatin.

Angiogenesis Inhibitors↗

Development and characterization of five cell models for chemoresistance studies of human ovarian carcinoma.

Platinum agents and paclitaxel (taxol) are among the most effective drugs currently available for treatment of ovarian cancer. One of the hurdles with taxol and platinum- based therapy is the clinical development of resistance to these agents. To investigate the mechanism of drug resistance in human ovarian cancer, we developed and characterized 5 cell models for chemoresistance studies of cisplatin, carboplatin and taxol. We report in this study that these human ovarian carcinoma cell model systems include 2 models for cisplatin resistance, 2 models for carboplatin resistance, and 1 model for taxol resistance. The biological and biochemical characteristics of the models showed that (i), the IC50 values of the drugs for all these resistant cell models were 3 times (or more) higher than those for the parental tumor cells. There also exist varying degrees of cross-resistance to several other chemotherapeutic agents in these systems. Moreover, the intracellular drug accumulations in these cells were significantly reduced as compared to those in the parental cells. (ii), The proliferation rates of these resistant cells were markedly decreased. However, there were no obvious changes in cell cycle distribution in these model systems. (iii), Our results for the expression of a few major drug resistance-related genes revealed that the expression of p53, lrp-1 and mrp-1 was decreased, while the expression of pkc, topo I and topo II beta was increased in the resistant tumor cells as compared with the parental cells. In contrast, no significant alterations in gst-pi and topo II alpha expression were found. Interestingly, the levels of mdr-1 expression were elevated in some models, but were reduced in others, thus suggesting that different pathways are involved in the formation of drug resistance in different cell model systems, and that different mechanisms are responsible for the development of different drug resistances in tumor cells. Taken together, our findings indicate that these models may be potentially used to assess the biochemical and genetic mechanisms of drug resistance in human ovarian cancer and to identify new drug resistance-related genes.

Antineoplastic Agents↗

Confirmation of 42-bp deletion within the ERCC1 5' UTR.

Our previous studies revealed a splicing variant (lacking a 42 base pair segment) within the 5'-UTR of the ERCC1 gene, a critical component of the nucleotide excision repair (NER) pathway that plays an important role in the development of chemoresistance in platinum-based anticancer therapy. This 42-bp segment seems to possess a regulatory function in ERCC1 expression and representing the level of clinical response to platinum-treatment in ovarian cancer patients. To confirm the existence of the 42-bp deletion and to investigate the 42-bp function, we performed several experiments and assays. Northern blot analysis and RNase protection assay provide evidence that the 42-bp deletion occurs at RNA level of ERCC1 5'-UTR in both ovarian cancer cell lines and ovarian cancer tissues. Luciferase assay suggests that this gene fragment possesses a regulatory function as an enhancer of ERCC1 gene expression in ovarian cancer cells. In Electrophoretic Mobility Shift Assay (EMSA), a shift band present in the ovarian cancer cell line extracts is consistent with the presence of an intracellular protein that recognizes this specific 42-bp sequence. Further, specific EMSA results with 42-bp probe mutated at the site of RFX-1 indicate different putative-DNA binding proteins, rather than RFX-1. We conclude that the 42-bp sequence within the 5'-UTR influences the expression of ERCC1 and hence can influence response to cisplatin in ovarian cancer therapy.

5' Untranslated Regions↗

Molecular basis of cellular response to cisplatin chemotherapy in non-small cell lung cancer (Review).

Cisplatin is one of the most potent anticancer agents, displaying significant clinical activity against a variety of solid tumors. For more than two decades, the most effective systemic chemotherapy for non-small cell lung cancer (NSCLC), the leading cause of cancer morbidity and mortality among men and women in the western world, was cisplatin-based combination treatment. Unfortunately, the outcome of cisplatin therapy on NSCLC seems to have reached a plateau. Therefore, the biological mechanisms of cisplatin action need to be understood in order to overcome the treatment plateau on NSCLC. Moreover, the development of resistance is a hurdle in the use of this drug. The molecular mechanisms that underlie this chemoresistance are largely unknown. Possible mechanisms of acquired resistance to cisplatin include reduced intracellular accumulation of cisplatin, enhanced drug inactivation by metallothionine and glutathione, increased repair activity of DNA damage, and altered expression of oncogenes and regulatory proteins. In addition, it is generally accepted that cytotoxicity of cisplatin is mediated through induction of apoptosis and arrest of cell cycle resulting from its interaction with DNA, such as the formation of cisplatin-DNA adducts, which activates multiple signaling pathways, including those involving p53, Bcl-2 family, caspases, cyclins, CDKs, pRb, PKC, MAPK and PI3K/Akt. Increased expression of anti-apoptotic genes and mutations in the intrinsic apoptotic pathway may contribute to the inability of cells to detect DNA damage or to induce apoptosis. Towards an understanding of the molecular basis of the cellular response to cisplatin-based chemotherapy in NSCLC, in this review we provide some insights into the pathways involved in cisplatin damage from entering the cells to execution of apoptosis or survival of NSCLC cells. We believe that as more and more molecular mechanisms of response to cisplatin-based therapy are unraveled, this knowledge should provide a basis for further studies to improve our understanding of molecular events associated with lung NSCLC as well as to devise novel and effective therapeutic approaches to overcome the treatment plateau or reverse drug resistance in this disease.

Animals↗

Excision repair cross complementing-group 1: gene expression and platinum resistance.

Platinum compounds induce their cytotoxic effect by binding to a DNA molecule in the form of a platinum-DNA-adduct. Many previous studies have shown that the level of platinum-DNA-adduct correlats with response to platinum-based chemotherapy. Although the mechanism of platinum resistance in vivo is not clearly understood, laboratory studies on cancer cell lines suggest that nucleotide excision repair (NER) is the main mechanism responsible for this resistance by increased platinum-DNA-adduct removal. NER pathway is a network of many proteins gathered in a DNA-repair system. The excision repair cross complementing-group 1 (ERCC1) gene has the leading role in NER-pathway because of its damage recognition and excision ability. In this report we reviewed the pathway leading to ERCC1 gene transcription and translation in cancer cells when exposed to cisplatin. We summarized data from different cancer cell lines and human cancers showing that the high level of ERCC1-mRNA and/or ERCC1 protein is associated with resistance to platinum compounds with direct impact on cancer patient survival and finally we analyzed drugs interfering with ERCC1 gene expression and causing the reversal of the platinum resistance when given to cancer cells prior to platinum-based chemotherapy.

Animals↗