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[Targeting therapy for lung cancer].

Many approaches have been developed to targeting therapy for lung cancer. The representatives types have included photodynamic therapy (PDT), bronchial arterial infusion of anticancer agent and/or embolization, intensification of the effect of drugs on tumor tissue and drug delivery systems (DDS) using liposomes. In our hospital, 195 lung cancer patients, including those with 56 early stage lesions, have been treated with PDT, and a CR rate of 65.2% was obtained. Bronchial arterial infusion (BAI) for clinical N2, in-operable non-small cell lung cancer patients has prolonged median survival time compared to the patients treated without BAI. Combined modalities of chemotherapy and low power laser (He-Ne Laser) irradiation in the experimental animal model have been shown. This combined therapy may permit enhancement of the antitumor effects of routine chemotherapy by reducing the side effects of the drug. DDS using liposomes may well be a major targeting therapy for lung cancer. In our data, trans-bronchial injection of chemotherapeutic drugs encapsulated with liposomes will be most effective for mediastinal lymph node metastasis of lung cancer.

Bronchial Arteries↗

Optimizing targeted therapy and developing novel outcome measures for patients with advanced prostate cancer at Memorial Sloan-Kettering Cancer Center.

Hormonal therapy and chemotherapy, though active treatments for prostate cancer, are not curative for patients with metastatic disease. Targeted therapy has the potential to control, if not eradicate, cells resistant to castration and chemotherapy. Despite several years of development, however, a biologic approach with clear clinical benefits has yet to emerge from a crowded field. This review outlines the approaches being studied at Memorial Sloan-Kettering Cancer Center to optimize biologic therapy. Trials of targeted therapy are designed on the basis of a clinical states model that describes both patient clinical risks and tumor biology. Drugs that act on multiple pathways are being developed, and targets that are expressed across all phases of the disease are selected. New molecular imaging techniques permit assessments of the target before, during, and after treatment. High-throughput preclinical assays of gene expression are being developed to enhance selection of drug sequences and combinations for clinical testing.

Clinical Trials as Topic↗

[Molecular targeted therapy].

Until recently, cancer therapy was based on three modalities: surgery, radiotherapy, and cytostatic chemotherapy. In most instances treatment of solid tumors was a surgical domain. For patients with incomplete resection or relapse after surgery, radiotherapy and chemotherapy usually offered only partial response and mostly of limited duration. By the mid-1990s visions of antibody-based therapies, vaccination strategies, and even gene-specific therapies existed but seemed far from clinical practice. United States Federal Drug Administration approval of the humanized antibody rituximab (1997) and the tyrosine kinase inhibitor imatinib (2001) has changed perceptions of oncologic treatment. These drugs turned visions into reality and led the pharmaceutical industry, clinicians, and patients to new perspectives. This article gives an overview of the development of this fourth modality in cancer therapy, so-called targeted therapy.

Animals↗

Molecular targeting therapy for pancreatic cancer.

Pancreatic carcinogenesis is driven by multiple genetic and epigenetic changes. The epidermal growth factor receptor (EGFR) and its downstream signaling pathways, Ras-Raf-MEK-ERK axis, play important roles in pancreatic cancer development. The phosphoinositol 3 kinase (PI3 K)/Akt and the nuclear factor kappaB (NF-kappaB) pathways control both proliferation and resistance to apoptosis of pancreatic cancer. The role of cyclooxygenase (COX) and lipoxygenase (LOX) in the development of pancreatic cancer has been made known recently. The elucidation of these molecular events has led to several distinct therapeutic advances, including therapies that target EGFR, the Ras-Raf-MEK-ERK axis, the COX-2 and LOX pathways, and others. Many novel agents have been developed and are undergoing clinical investigation, such as monoclonal antibodies against EGFR, tyrosine kinase inhibitors (TKIs), farnesyl transferase inhibitors (FTIs), Bay43-9006, CI-1040, CCI-779, celecoxib, and LY293111. This review highlights recent advances in the development of these agents.

Apoptosis↗

A novel targeted therapy of Leydig and granulosa cell tumors through the luteinizing hormone receptor using a hecate-chorionic gonadotropin beta conjugate in transgenic mice.

We investigated the antitumoral efficacy, endocrine consequences, and molecular mechanisms underlying cell death induced by the Hecate-chorionic gonadotropin (CG)beta conjugate, a fusion protein of a 23-amino acid lytic peptide Hecate with a 15-amino acid (81-95) fragment of the human CGbeta chain. Transgenic (TG) mice expressing the inhibin alpha-subunit promoter (inhalpha)/Simian Virus 40 T-antigen (Tag) transgene, developing luteinizing hormone (LH) receptor (R) expressing Leydig and granulosa cell tumors, and wild-type control littermates were treated either with vehicle, Hecate, or Hecate-CGbeta conjugate for 3 weeks. Hecate-CGbeta conjugate treatment reduced the testicular and ovarian tumor burden (P < .05), whereas a concomitant increase (testis; P < .05) or no change (ovary) in tumor volumes occured with Hectate treatment. A drop in serum progesterone, produced by the tumors, and an increase in LH levels occured in Hecate-CGbeta treated mice, in comparison with vehicle and Hecate groups, providing further support for the positive treatment response. Hecate-CGbeta conjugate induced a rapid and cell-specific membrane permeabilization of LHR-expressing cells in vitro, suggesting a necrotic mode of cell death without activation of apoptosis. These results prove the principle that the Hecate-CGbeta conjugate provides a novel specific lead into gonadal somatic cell cancer therapy by targeted destruction of LHR-expressing tumor cells.

Amino Acid Chloromethyl Ketones↗

Hypoxia inducible carbonic anhydrase IX, marker of tumour hypoxia, survival pathway and therapy target.

Over 50 genes are inducible by hypoxia, via hypoxia inducible factor 1alpha (HIF-1alpha). Carbonic anhydrase IX (CAIX) is one of the most inducible and most uniformly induced genes and because of its stability and membrane location provides a reliable histochemical marker of hypoxia. Recent studies have shown the importance of pH in cell death under hypoxia, thus mechanisms of pH regulation are likely to be vital pathways for survival. Carbonic anhydrases have a widespread role in normal tissues in regulating pH, with 14 isoforms described, so inhibition may have substantial normal tissue toxicity. Selective nonmembrane permeable inhibitors are available and may synergise with chemotherapy agents more active in acid conditions. CAIX has a major role in regulating hydrogen ion (H+) flux and blockade of CAIX results in increased cell death under hypoxia, indicating that it is one mechanism of hypoxic adaptation. As it is commonly expressed in tumours with the worst prognosis it is a potential target for therapy.

Animals↗

[Cooperative effect of rhIL-2 and adriamycin-magnetic albumin microsphere targeting therapy on tumor].

AIM: To observe the synergistic inhibitory effects of rhIL-2 and adriamycin magnetic albumin microsphere(ADM-MAM) targeting therapy on tumor and to explore their antitumor mechanism. METHODS: The antitumor activity was observed using the tumor weight as index. The killer activity of natural killer (NK) cells and the lymphocyte transformation were examined by the LDH release assay and MTT colorimetry, respectively. The apoptosis of tumor cells and the expressions of p53,Fas and FasL were examined by flow cytometry. The expressions of IL-2 and IL-12 were determined by RT-PCR. RESULTS: Compared with the control group, in ADM-MAM targeting therapy group and combination therapy (ADM-MAM and rhIL-2 therapy) group, tumor weight, killer activity of NK cells, and the lymphocyte transformation;were obviously decreased; while the expression of Fas, FasL, IL-2 and IL-12 were markedly increased. CONCLUSION: ADM-MAM targeting therapy exerts anti-tumor effects with fewer side effects, which can be enhanced when combined with rhIL-2 therapy. Such synergistic anti-tumor effects may be realized by stimulating the proliferation of T cells and growth of NK cell to enhance cellular immunological function.

Albumins↗

Current management of advanced non-small cell lung cancer: targeted therapy.

Lung cancer is one of the most frequent causes of cancer-related death in the United States. For patients with advanced non-small cell lung cancer (NSCLC), chemotherapy, alone or in combination with radiation therapy, is considered the standard treatment. Although this treatment may result in a modest improvement in patient survival, overall prognosis of these patients remains dismal, and the treatment is nonspecific, nonselective, and toxic. Therefore, new therapeutic strategies are needed. During the past decade, several molecules that contribute to lung cancer progression and metastasis have been identified. Growth factors and proangiogenic factors have been the focus of intense research in cancer since therapeutic approaches for their inhibition do exist. The role of these factors was studied in different organs and tumors and was found to be phenotypically distinct. Several molecular targeted therapies have shown efficacy and had been approved for treatment of specific cancers. Most advanced in clinical research for lung cancer are targeted therapies that inhibit the epidermal growth factor receptor (EGFR) and the vascular endothelial growth factor (VEGF) signaling pathways. Others are signaling pathway inhibitors. The first targeted therapy for lung cancer is gefitinib, an EGFR inhibitor, which was approved in several countries in 2003. Goals of molecular targeted therapy studies include the following: better understanding of the exact role of particular growth factors in specific tumors; establishment of new clinical study designs for biological agents; and tailoring appropriate combinations of conventional chemotherapy and/or radiotherapy with biological therapy for specific patients. Achievement of these goals will hopefully lead to incorporation of biological therapy into the current anticancer arsenal, for the benefit of lung cancer patients.

Alkyl and Aryl Transferases↗

Targeted therapy: for kids, too.

Innovative hypothesis-driven clinical trials have achieved major successes over the past several decades in treating children and adolescents with cancer. DNA-damaging cytotoxic agents have cured children with cancer. While the mission is not yet accomplished, chemotherapy has been validated. None of these drugs were designed specifically for a pediatric disease. Continued progress will require new strategies. Now being tested for adult cancers, these strategies include gene therapy, immunotherapy, cancer prevention, and signal transduction inhibitor (STI) therapy. Of these, the most promising is STI therapy, also known as molecular therapeutics or targeted therapy. For this therapy to succeed, components of signal transduction (i.e., candidate drug targets) must be identified, the targets relevant to cancers, and the drugs available for trial. Because STI therapy is biologically driven and because therapy will be tailored depending on the molecular profile of a specific patient's tumor, clinical pediatric oncologists will need to acquire greater understanding of signaling pathways and their therapeutic relevance. With examples drawn from pediatric oncology, the critical steps in the pre-clinical development of targeted therapy are reviewed here.

Antineoplastic Agents↗

Antibody-targeted therapy: a paradigm of innovative treatment strategies in indolent and aggressive B-cell non-Hodgkin lymphoma.

PURPOSE OF REVIEW: This review outlines the principles of treatment of indolent and aggressive B-cell lymphoma based on current knowledge on the classification of hematologic malignancies and the rationale to implement new antibody-targeted immunotherapeutic approaches. RECENT FINDINGS: An update is provided on the use of antibody-targeted therapies in clinical trials, with emphasis on new, emerging strategies of immunotherapy in B-cell non-Hodgkin lymphoma. SUMMARY: The success of immune-mediated therapies has encouraged studies on antibody-targeted therapy in B-cell non-Hodgkin lymphoma. Promising new approaches combine classical dose-intense chemotherapy with "tumor-specific" antibody targeting during several phases of the disease. The safety and efficacy of anti-CD20 in the treatment of indolent and aggressive B-cell non-Hodgkin lymphoma at any stage of disease, either as a single agent or as part of multimodality regimes, as an unconjugated antibody or as radioimmunoconjugate have changed dramatically our treatment strategies. Increasing insights into basic molecular biology and immunology of B-cell non-Hodgkin lymphoma may identify subgroups of patients categorized in current classification systems who may benefit from tailored approaches with new modality antibody-targeted therapy in near future.

Antibodies, Monoclonal↗

New paradigms in anticancer therapy: targeting multiple signaling pathways with kinase inhibitors.

Signal transduction in cancer cells is a sophisticated process that involves receptor tyrosine kinases (RTKs) that eventually trigger multiple cytoplasmic kinases, which are often serine/threonine kinases. A number of tumor models have identified several key cellular signaling pathways that work independently, in parallel, and/or through interconnections to promote cancer development. Three major signaling pathways that have been identified as playing important roles in cancer include the phosphatidyl inositol-3-kinase (PI3K)/AKT, protein kinase C (PKC) family, and mitogen-activated protein kinase (MAPK)/Ras signaling cascades. In clinical trials, highly selective or specific blocking of only one of the kinases involved in these signaling pathways has been associated with limited or sporadic responses. Improved understanding of the complexity of signal transduction processes and their roles in cancer has suggested that simultaneous inhibition of several key kinases at the level of receptors and/or downstream serine/threonine kinases may help to optimize the overall therapeutic benefit associated with molecularly targeted anticancer agents. Using targeted agents to inhibit multiple signaling pathways has emerged as a new paradigm for anticancer treatment based on preclinical and clinical data showing potent anti-tumor activity of single drugs inhibiting multiple molecular targets or combination therapies involving multiple drugs with selective or narrow target specificity. Preclinical and clinical studies point to molecules on vascular endothelial cells and pericytes as being important targets for anticancer therapies, as well as molecules on or within tumor cells themselves. This suggests that optimal therapeutic approaches to cancer may involve targeting multiple molecules found in both the tumor and supportive tissues. In this review, we will use the most recent preclinical and clinical data to describe this emerging paradigm for anticancer therapy involving targeting multiple signaling pathways with tyrosine or serine/threonine kinase inhibitors.

Antineoplastic Agents↗

Role of novel targeted therapies in the clinic.

The number and variety of novel, molecular-targeted agents offers realistic hope for significant advances in cancer treatment. The potential of these new treatment approaches is unquestionable, but the reality is something that only thorough clinical evaluation and experience can reveal. Clinical experience of targeted therapies is at an early stage but it is likely that we will have an increasing number of treatment options available to us in the near future. This manuscript explores our current understanding of molecular-targeted therapies and considers: What approach should be used? (single vs multitarget agents); When should they be administered? (identifying the optimal point for intervention); How should they be used? (monotherapy or combination therapy regimens); and Who should we be giving them to? (acknowledging the need for patient selection).

Antibodies, Monoclonal↗

Extramedullary disease and targeted therapies for hematological malignancies--is the association real?

During the past years targeted therapies have gained a major role in the treatment of cancer patients, including those with hematological malignancies. Extramedullary involvement is a rare manifestation of acute and chronic leukemias and of multiple myeloma. Nevertheless, with the expanding use of targeted treatments there is an impression that the incidence of extramedullary relapses is increasing. We reviewed the reports on this phenomenon in patients treated with all-trans-retinoic acid and arsenic trioxide for acute promyelocytic leukemia, thalidomide and bortezomib for multiple myeloma and imatinib for chronic myeloid leukemia. The pathogenetic mechanisms suggested are: life prolongation by these treatments allowing for disease progression arising from dormant cells; poor penetration of the drugs to sanctuary sites like the central nervous system; the requirement of some of these drugs, especially thalidomide, for the marrow microenvironment to exert their action; and finally, a possible active role for some of the drugs, like all-trans-retinoic acid. Since the use of these targeted therapies is expanding we should be aware of this association.

Antineoplastic Agents↗

Retrovirus-mediated suicide gene/prodrug therapy targeting thyroid carcinoma using a thyroid-specific promoter.

To develop gene therapy targeting thyroid carcinoma, the recombinant retrovirus (LNTGTK) carrying herpes simplex virus thymidine kinase (HSV-TK) gene under the control of thyroglobulin (TG) promoter was constructed and its efficacy was investigated in 3 thyroid cell lines; a differentiated normal rat thyroid cell line (FRTL5), malignant rat thyroid carcinoma cells derived from FRTL5 (FRTC) and a human anaplastic thyroid carcinoma cell line (FRO). TG mRNA was detected by Northern blot analysis in FRTL5 cells and by RT-PCR in FRTC cells when cultured with 2 U/L TSH and its expression levels were decreased by TSH withdrawal. However, either methods revealed no TG expression in FRO cells. In vitro cytotoxic assays demonstrated TG expression status-dependent cell killing by transduction of LNTGTK followed by ganciclovir (GCV) treatment. Thus, LNTGTK transduction increased the GCV sensitivity approximately 13,000- and approximately 160-folds in the presence of TSH and approximately 4- and approximately 27-folds in the absence of TSH in FRTL5 and FRTC cells, respectively. In contrast, there was no difference in the GCV cytotoxicity between parental and transduced FRO cells. Significant growth inhibition, but not complete eradication, of transduced FRTC cells was observed in in vivo subcutaneous tumor models of nude mice. These results demonstrate that retrovirus-mediated transduction of HSV-TK gene under the control of the TG promoter confers the GCV sensitivity selectively to TG-expressing thyroid cells. This system may therefore be feasible for gene therapy targeting TG-expressing thyroid carcinomas.

Animals↗

B cell targeted therapies: safety considerations.

Reported data from recent clinical trials have contributed substantially to our growing understanding of the potential effectiveness and safety of B cell targeted therapy in the treatment of rheumatic diseases. Trials with rituximab, an anti-CD20 monoclonal antibody that depletes mature B cells, have amassed the most data of any B cell targeted therapy to date. A number of other B cell directed therapies are under investigation. Interestingly, although they may share a common target, the different agents have quite distinct mechanisms of action, and therefore their efficacy and safety profiles may differ. A common concern with all B cell directed therapies is the potential effect these agents may have on humoral immunity. The safety profile of rituximab in the oncology setting is well known, based on a database of well over 370,000 patients. Phase II trials of rituximab in rheumatoid arthritis (RA) have begun to examine safety issues specifically in the RA population, including issues surrounding longterm and repeated treatment safety profiles. Questions about the longterm safety of B cell therapy remain to be clarified: What will be the safety profile for repeated treatment courses? What will be the safety profile when B cell targeted therapies are used in sequence or in conjunction with other agents? Answers to these important questions are likely to come from careful observations by treating clinicians, data from registries, and longterm followup of patients enrolled in clinical trials.

Antibodies, Monoclonal↗

Targeted therapies in non-small cell lung cancer: proven concepts and unfulfilled promises.

Targeted therapies focus on signaling pathways in cancer cells and other molecular processes involved in oncogenesis. Recent approaches affect the following major groups: the epidermal growth factor receptor (EGFR)-family, angiogenesis, the eicosanoid pathway, the PKC/ Ras/ MAPK pathway, the proteasome and inducers of apoptosis. Numerous phase I and II trials have provided promising results and recently, anti-EGFR and anti-VEGF treatments have proven their efficacy in phase III trials. However, others failed in phase III settings (e.g. PKC- and matrix metalloproteinase inhibitors) and it is a moot point, whether patients have been selected properly. The huge amount of new medications raises questions like when to use which strategy in which sequence. The successful implementation of targeted agents into clinical routine will depend on the verification of sufficient predictive markers, allowing their economically reasonable usage. In the current review the up-to-date knowledge concerning targeted therapies in NSCLC is summarized and their therapeutical potential is discussed.

Angiogenesis Inhibitors↗

Repeated bone-targeted therapy for hormone-refractory prostate carcinoma: tandomized phase II trial with the new, high-energy radiopharmaceutical rhenium-188 hydroxyethylidenediphosphonate.

PURPOSE: We investigated the effect of repeated bone-targeted therapy with rhenium-188 hydroxyethylidenediphosphonate (HEDP) in patients with progressive, hormone-resistant prostate carcinoma and bone pain. The aim of this study was to determine the pain palliation and the antitumor effect of rhenium-188 HEDP treatments. PATIENTS AND METHODS: Sixty-four patients were randomly assigned to one of two groups for radionuclide therapy with rhenium-188 HEDP; patients of group A received a single injection, patients of group B received two injections (interval, 8 weeks). After therapy, patients were followed-up by assessment of pain palliation and clinical outcome until death. RESULTS: In both groups, toxicity was low, with moderate thrombopenia and leukopenia (maximum common toxicity criteria grade of 2). The effectiveness of rhenium-188 HEDP for pain palliation was better in the repeated treatment group (group B), with a response rate and time of response of 92% and 5.66 months, respectively (P =.006 and P =.001). In group B, 11 (39%) of 28 patients had a prostate-specific antigen decrease of more than 50% for at least 8 weeks, compared with two (7%) of 30 patients in the single-injection group (group A). The median times to progression of group A and group B were 2.3 months (range, 0 to 12.2 months) and 7.0 months (range, 0 to 24.1 months), respectively (P =.0013), and the median overall survival times were 7.0 months (range, 1.3 to 36.7 months) and 12.7 months (range, 4.1 to 32.2 months), respectively (P =.043). CONCLUSION: Compared with single-injection therapy, repeated bone-targeted therapy with rhenium-188 HEDP administered to patients with advanced progressive hormone-refractory prostate carcinoma enhanced pain palliation and improved progression-free and overall survival. Larger studies are justified to further evaluate the use of rhenium-188 HEDP.

Aged↗

Stable disease and improved health-related quality of life (HRQoL) following fractionated low dose 131I-metaiodobenzylguanidine (MIBG) therapy in metastatic paediatric paraganglioma: observation on false "reverse" discordance during pre-therapy work up and its implication for patient selection for high dose targeted therapy.

The incidence of paraganglioma in the paediatric population is exceedingly rare, accounting for < 0.1% of childhood cancers. We report here the response and toxicity profile in a case of malignant paraganglioma which was treated with what is currently perceived as an unconventional and non-standard approach, using three consecutive low doses of 131I-MIBG (a cumulative dose of 11 647.6 MBq). The patient had a stable disease at the end of 42 months follow-up following the first treatment with 131I-MIBG. Excellent symptomatic and hormonal responses were observed. The only adverse effect was mild nausea in the first 24 h after therapy. In addition to the potentially primary end point of radiological and biochemical response measurement, we, in this paper, endeavoured to look for a quality of life evaluation for this form of treatment. Given the rarity of this condition, the experience gained by this therapeutic approach is intriguing from response and toxicity standpoints and may be extrapolated to malignant pheochromocytoma as well. An apparent "reverse discordance" between 131I-MIBG scintigraphy and 99Tc(m)-MDP bone scan encountered during pre-therapy work up is also described with possible explanations. This draws attention to an important clinical issue in selecting patients for high dose targeted therapy.

3-Iodobenzylguanidine↗