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Burkhard H Brandt

Publications and source records attributed to Burkhard H Brandt.

7 recordsLinked to original sources

Options for visualizing metastatic disease in the living body.

Detection and observation of primary tumor growth and metastasis in living subjects is an important task in clinical and basic cancer research. Recently several approaches and techniques emerged which offer a huge variety of options with respect to the specific objectives and questions of a given study. Recent developments in the field of in vivo imaging not only allow the assessment of anatomic information but also functional processes with cellular resolution and molecular sensitivity. This chapter will provide an overview of the most common imaging techniques which are currently available for the detection and observation of metastasizing tumor cells. General capacities, advantages, limitations and drawbacks will be discussed. These techniques include computed tomography (CT), molecular resonance imaging (MRI), positron emission tomography (PET), single photon emission computed tomography (SPECT), fluorescence imaging (FI), and bioluminescent imaging (BLI). The objective is to provide the cancer researcher with information that will help solve the dilemma of how best to apply the latest imaging tools for studying biological questions in the context of the living body.

Animals↗

First evidence supporting a potential role for the BMP/SMAD pathway in the progression of oestrogen receptor-positive breast cancer.

Oestrogen receptor expression is generally a sign of better tumour differentiation and comparatively good clinical outcome in invasive breast cancer. However, oestrogen receptor-positive, poorly differentiated carcinomas with a poor clinical outcome exist. The underlying genetic mechanisms and the genes involved remain obscure, even though chromosome 7p gains seem to be associated with these uncommon tumours. In this study, we compared two subsets of oestrogen receptor-positive breast cancers, which differed in tumour grade, cytogenetic instability, and tumour proliferation, for their differential gene expression in order to identify proteins involved in the progression of oestrogen receptor-positive breast cancers. We were able to show by means of subtractive suppression hybridization, real-time reverse transcriptase PCR, and tissue microarray analysis that expression of the bone morphogenetic protein receptor IB (BMPR-IB) is a major hallmark of the progression and dedifferentiation of breast cancer. Strong expression of BMPR-IB was associated with high tumour grade, high tumour proliferation, cytogenetic instability, and a poor prognosis in oestrogen receptor-positive carcinomas. Western blot analysis revealed that downstream signalling of this receptor is mainly mediated via phosphorylation of SMAD 1 in oestrogen receptor-positive breast cancer. Even though BMPR-IB was expressed in oestrogen receptor-positive and -negative breast cancers, an impact on tumour grade, proliferation, and cytogenetic instability, as parameters of tumour progression, could only be demonstrated in oestrogen receptor-positive carcinomas. This pro-proliferative effect was complemented by significant anti-apoptotic activity, indicated by XIAP and IAP-2 expression in BMPR-IB-positive carcinomas. These results show that the BMP/SMAD pathway is activated in breast cancer and may contribute to breast cancer progression and dedifferentiation in oestrogen receptor-positive breast cancer. The definition of this pathway characterizes a new potential target in the molecular treatment of invasive breast cancer.

Apoptosis↗

Modified direct-double-differential PCR for gene dosage quantification of HER2.

HER2 amplification and/or overexpression in breast cancer are adverse prognostic factors and can predict the response to trastuzumab therapy. As assessment of HER2 status in breast cancer is of great importance for clinical decision-making, it is crucial to have reliable methods to quantify HER2. In the present project, we have developed a modification of the direct-double-differential PCR method (dddPCR) for gene dosage quantification of HER2 in breast cancer samples. The study was also undertaken to establish the potential application of the newly developed dddPCR method for HER2 testing in a diagnostic laboratory. The dddPCR validity for determining HER2 amplification in comparison to IHC-based HercepTest for the detection of protein levels was performed. Modified dddPCR was proven to be highly reproducible and reliable. A statistically significant correlation between protein expression and gene dosage of HER2 was found in the examined material. The obtained results indicate that dddPCR provides a fast and reliable diagnostic tool for HER2 quantification and may be considered as a supplementary method to verify equivocal results obtained with IHC-based HercepTest. Notably, dddPCR can be performed in every basic molecular biology laboratory, and is inexpensive and time-saving.

Adult↗

Induction of cancer cell migration by epidermal growth factor is initiated by specific phosphorylation of tyrosine 1248 of c-erbB-2 receptor via EGFR.

Induction of tumor cell migration is a key step in invasion and metastasis. Here we report that the epidermal growth factor (EGF)-induced cell migration of breast cancer cells is attributed to a transient, rather than a sustained, activation of phospholipase C (PLC)-gamma1 due to c-erbB-2 signaling. EGF stimulation of EGF receptor (EGFR) overexpressing cells resulted in long-term PLC-gamma1 tyrosine phosphorylation and sustained levels of inositol-1,4,5-triphosphate (IP3) and diacylglycerol (DAG) producing sinusoidal calcium oscillations. In contrast, c-erbB-2/EGFR expressing cells displayed baseline transient calcium oscillations after EGF treatment due to short-term PLC-gamma1 tyrosine phosphorylation and short-term IP3 and DAG turnover. A third cell line expressing a point-mutated c-erbB-2 receptor that lacks the autophosphorylation Y1248 was generated to investigate whether the different PLC-gamma1 activation was attributed to this structure. Neither PLC-gamma1 tyrosine phosphorylation nor IP3 and DAG turnover and calcium oscillations were observed in this cell line, indicating the modulation of the PLC-g1 activation time course by c-erbB-2 signaling. Induction of cell migration was solely observable in the c-erbB-2-positive cell line as proved by the mode of actin reorganization and a cell migration assay, using a 3D-collagen lattice. In summary, c-erbB-2 up-regulation switches on the cell migration program by modulating the time course of PLC-gamma1 activation.

Calcium↗

Trimodality treatment in Stage III nonsmall cell lung carcinoma: prrognostic impact of K-ras mutations after neoadjuvant therapy.

BACKGROUND: In a trimodality treatment approach for Stage III nonsmall cell lung carcinoma (NSCLC), the prognostic impact of the ras mutation status in resection specimens was evaluated. METHODS: Forty patients with Stage III NSCLC underwent tumor resection after neoadjuvant treatment with two cycles of chemotherapy (ifosfamide, carboplatin, and etoposide) and subsequent twice-daily radiotherapy (45 grays [Gy]; 2 x 1.5 Gy/day) with concurrent carboplatin and vindesine. Assessment of K-ras codon 12 mutation status was performed in the paraffin embedded resection specimens by a two-step polymerase chain reaction followed by restriction fragment length polymorphism analysis. RESULTS: K-ras mutation status could be assessed in 28 cases. A K-ras codon 12 point mutation was found in 13 of 28 resection specimens (46%). The mutation was found independently of gender, age, tumor stage, and clinical response status and occurred more frequently in adenocarcinomas. Even after complete resection, the presence of a K-ras mutation was a significant predictor for a poor progression free survival (P = 0.005). CONCLUSIONS: These data suggest that further evaluation of the K-ras codon 12 mutation status in trials on neoadjuvant and adjuvant therapy is warranted. This may contribute to the identification of stratification variables for future treatment approaches.

Adenocarcinoma↗

Cancer cell motility--on the road from c-erbB-2 receptor steered signaling to actin reorganization.

Cell migration depends mainly on actin polymerization and intracellular organization, which are influenced by a vast variety of actin binding proteins (ABPs). Regulation of ABP activity is mediated by second messengers such as phosphoinositides and calcium. Signaling via these second messengers is initiated and regulated by membrane receptors, e.g., receptor tyrosine kinases (RTKs), and by adhesion molecule interactions (e.g., integrins and selectins) and focal adhesion kinases. A major role in steering second-messenger signaling and thus in actin cytoskeleton reorganization and motility of cancer cells is played by the RTK c-erbB-2. This occurs through a number of signaling pathways which involve mainly enzymes, e.g., phospholipase Cgamma1 and GTPases, which modify signaling molecules. Furthermore large multiprotein complexes including actin-related protein 2/3, Wiskott-Aldrich syndrome protein, profilin, and capping protein among others play an important role in regulating actin reorganization. The complex picture of the mode of actin reorganization, which is involved in tumor cell migration, is slowly emerging from the mists of cellular signaling pathways, but this is still by no means a clear view.

Actins↗

Molecular diagnostics of solid malignant tumours.

Three groups of genes have been identified which play a major role in determining the origin and spread of cancer: Oncogenes support the growth of tumour cells in a manner which does not depend on the tissue environment. They occur as proto-oncogenes in the genome of every cell in the body. If only one allele is excessively or inappropriately activated by mutation, they can change the phenotype of the cell lastingly and initiate malignant growth. Tumour suppressor genes hamper the growth of cells with DNA mutations. Both alleles must be mutated in the genome in order to block production of functional protein and to allow mutations to be passed on in their DNA to daughter cells. With an existing predisposition to cancer, one of the alleles is already mutated. The malignoma develops after a mutation occurs in the second allele. Mutator genes are responsible for maintaining the integrity of the genome and reliably transmitting the genetic code. A functional loss of both alleles increases error rates during DNA-replication. This can lead to mutations in oncogenes or tumour suppressor genes, and contribute to the origin or spreading of a malignoma. Tumour-modifier genes might turn out to be the genetic factors underlying the origin or even prevention of malignomas caused mainly by environmental factors. From experiments on mice it is known that these genes may be responsible for the incomplete penetrance of hereditary tumours. Demonstration of these genes using molecular diagnostic procedures will promote opportunities and knowledge in the field of oncology.

Animals↗