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Dive into the research topics where Scott E. Kern is active.

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Featured researches published by Scott E. Kern.


The New England Journal of Medicine | 1988

Genetic alterations during colorectal-tumor development

Bert Vogelstein; Eric R. Fearon; Stanley R. Hamilton; Scott E. Kern; Ann C. Preisinger; M. Leppert; A M Smits; Johannes L. Bos

Because most colorectal carcinomas appear to arise from adenomas, studies of different stages of colorectal neoplasia may shed light on the genetic alterations involved in tumor progression. We looked for four genetic alterations (ras-gene mutations and allelic deletions of chromosomes 5, 17, and 18) in 172 colorectal-tumor specimens representing various stages of neoplastic development. The specimens consisted of 40 predominantly early-stage adenomas from 7 patients with familial adenomatous polyposis, 40 adenomas (19 without associated foci of carcinoma and 21 with such foci) from 33 patients without familial polyposis, and 92 carcinomas resected from 89 patients. We found that ras-gene mutations occurred in 58 percent of adenomas larger than 1 cm and in 47 percent of carcinomas. However, ras mutations were found in only 9 percent of adenomas under 1 cm in size. Sequences on chromosome 5 that are linked to the gene for familial adenomatous polyposis were not lost in adenomas from the patients with polyposis but were lost in 29 to 35 percent of adenomas and carcinomas, respectively, from other patients. A specific region of chromosome 18 was deleted frequently in carcinomas (73 percent) and in advanced adenomas (47 percent) but only occasionally in earlier-stage adenomas (11 to 13 percent). Chromosome 17p sequences were usually lost only in carcinomas (75 percent). The four molecular alterations accumulated in a fashion that paralleled the clinical progression of tumors. These results are consistent with a model of colorectal tumorigenesis in which the steps required for the development of cancer often involve the mutational activation of an oncogene coupled with the loss of several genes that normally suppress tumorigenesis.


Science | 1996

DPC4, A Candidate Tumor Suppressor Gene at Human Chromosome 18q21.1

Stephan A. Hahn; Mieke Schutte; A. T. M. Shamsul Hoque; Christopher A. Moskaluk; Luis T. da Costa; Ester Rozenblum; Craig L. Weinstein; Aryeh Fischer; Charles J. Yeo; Ralph H. Hruban; Scott E. Kern

About 90 percent of human pancreatic carcinomas show allelic loss at chromosome 18q. To identify candidate tumor suppressor genes on 18q, a panel of pancreatic carcinomas were analyzed for convergent sites of homozygous deletion. Twenty-five of 84 tumors had homozygous deletions at 18q21.1, a site that excludes DCC (a candidate suppressor gene for colorectal cancer) and includes DPC4, a gene similar in sequence to a Drosophila melanogaster gene (Mad) implicated in a transforming growth factor-β (TGF-β)-like signaling pathway. Potentially inactivating mutations in DPC4 were identified in six of 27 pancreatic carcinomas that did not have homozygous deletions at 18q21.1. These results identify DPC4 as a candidate tumor suppressor gene whose inactivation may play a role in pancreatic and possibly other human cancers.


Science | 1997

Gene Expression Profiles in Normal and Cancer Cells

Lin Zhang; Wei Zhou; Victor Velculescu; Scott E. Kern; Ralph H. Hruban; Stanley R. Hamilton; Bert Vogelstein; Kenneth W. Kinzler

As a step toward understanding the complex differences between normal and cancer cells in humans, gene expression patterns were examined in gastrointestinal tumors. More than 300,000 transcripts derived from at least 45,000 different genes were analyzed. Although extensive similarity was noted between the expression profiles, more than 500 transcripts that were expressed at significantly different levels in normal and neoplastic cells were identified. These data provide insight into the extent of expression differences underlying malignancy and reveal genes that may prove useful as diagnostic or prognostic markers.


Nature Genetics | 1994

Frequent somatic mutations and homozygous deletions of the p16 (MTS1) gene in pancreatic adenocarcinoma

Carlos Caldas; Stephan A. Hahn; Luis T. da Costa; Mark Redston; Mieke Schutte; Albert B. Seymour; Craig L. Weinstein; Ralph H. Hruban; Charles J. Yeo; Scott E. Kern

The MTS1 gene on chromosome 9p21 encodes the p16 inhibitor of cyclinD/Cdk-4 complexes, and is deleted or mutated in a variety of tumour types. We found allelic deletions of 9p21–p22 in 85% of pancreatic adenocarcinomas. Analysis of MTS1 in pancreatic carcinomas (27 xenografts and 10 cell lines) showed homozygous deletions in 15 (41%) and sequence changes in 14 (38%). These included eight point mutations (four nonsense, two missense and two splice site mutations) and six deletions/ insertions, all accompanied by loss of the wild-type allele. Sequencing of MTS1 from primary tumours confirmed the mutations. Coexistent inactivations of both MTS1 and p53 was common and suggests that abnormal regulation of cyclin-dependent kinases may play an important role in the biology of pancreatic carcinoma.


Molecular Cell | 1998

Human Smad3 and Smad4 Are Sequence-Specific Transcription Activators

Scott E. Kern; Leigh Zawel; Jia Le Dai; Bert Vogelstein; Kenneth W. Kinzler

Mounting evidence indicates that Smad proteins are required for TGF beta signaling, but the way(s) in which Smad proteins propagate this signal is unclear. We found that two human Smad proteins (Smad3 and Smad4) could specifically recognize an identical 8 bp palindromic sequences (GTCTAGAC). Tandem repeats of this palindrome conferred striking TGF beta responsiveness to a minimal promoter. This responsiveness was abrogated by targeted deletion of the cellular Smad4 gene. These results define a novel biochemical property of Smad proteins that is likely to play a direct role in the biologic responses to TGF beta and related ligands.


The American Journal of Surgical Pathology | 2001

Pancreatic intraepithelial neoplasia: a new nomenclature and classification system for pancreatic duct lesions.

Ralph H. Hruban; N. Volkan Adsay; Jorge Albores-Saavedra; Carolyn C. Compton; Elizabeth Garrett; Steven N. Goodman; Scott E. Kern; David S. Klimstra; Günter Klöppel; Daniel S. Longnecker; Jutta Lüttges; G. Johan A. Offerhaus

Proliferative epithelial lesions in the smaller caliber pancreatic ducts and ductules have been the subject of numerous morphologic, clinical, and genetic studies; however, a standard nomenclature and diagnostic criteria for classifying these lesion have not been established. To evaluate the uniformity of existing systems for grading duct lesions in the pancreas, 35 microscopic slides with 35 representative duct lesions were sent to eight expert pathologists from the United States, Canada, and Europe. Kappa values for interobserver agreement could not be calculated initially because more than 70 different diagnostic terms were used by the eight pathologists. In several cases, the diagnoses rendered for a single duct lesion ranged from “hyperplasia,” to “metaplasia,” to “dysplasia,” to “carcinoma in situ.” This review therefore demonstrated the need for a standard nomenclature and classification system. Subsequently, during a working group meeting, the pathologists agreed to adopt a single standard system. The terminology pancreatic intraepithelial neoplasia (or PanIN) was selected, and diagnostic criteria for each grade of PanIN were established (http://pathology.jhu.edu/pancreas_panin). This new system was then evaluated by having the eight pathologists rereview the original 35 cases. Only seven different diagnoses were rendered, and kappa values of 0.43, 0.14, and 0.42 were obtained for PanINs 1, 2, and 3 respectively. Cases assigned other diagnoses (e.g., squamous metaplasia) collectively had a kappa value of 0.41. These results show both the potential of the classification system, and also the difficulty of classifying these lesions even with a consistent nomenclature. However, even when there is lack of consensus, having a restricted set of descriptions and terms allows a better understanding of the reasons for disagreement. It is suggested that we adopt and apply this system uniformly, with continued study of its reliability and use, and possibly further refinement. The acceptance of a standard classification system will facilitate the study of pancreatic duct lesions, and will lead ultimately to a better understanding of their biologic importance.


Nature | 2011

Oncogene-induced Nrf2 transcription promotes ROS detoxification and tumorigenesis

Gina M. DeNicola; Florian A. Karreth; Timothy J. Humpton; Aarthi Gopinathan; Cong Wei; Kristopher K. Frese; Dipti Mangal; Kenneth H. Yu; Charles J. Yeo; Eric S. Calhoun; Francesca Scrimieri; Jordan M. Winter; Ralph H. Hruban; Christine A. Iacobuzio-Donahue; Scott E. Kern; Ian A. Blair; David A. Tuveson

Reactive oxygen species (ROS) are mutagenic and may thereby promote cancer. Normally, ROS levels are tightly controlled by an inducible antioxidant program that responds to cellular stressors and is predominantly regulated by the transcription factor Nrf2 (also known as Nfe2l2) and its repressor protein Keap1 (refs 2–5). In contrast to the acute physiological regulation of Nrf2, in neoplasia there is evidence for increased basal activation of Nrf2. Indeed, somatic mutations that disrupt the Nrf2–Keap1 interaction to stabilize Nrf2 and increase the constitutive transcription of Nrf2 target genes were recently identified, indicating that enhanced ROS detoxification and additional Nrf2 functions may in fact be pro-tumorigenic. Here, we investigated ROS metabolism in primary murine cells following the expression of endogenous oncogenic alleles of Kras, Braf and Myc, and found that ROS are actively suppressed by these oncogenes. K-RasG12D, B-RafV619E and MycERT2 each increased the transcription of Nrf2 to stably elevate the basal Nrf2 antioxidant program and thereby lower intracellular ROS and confer a more reduced intracellular environment. Oncogene-directed increased expression of Nrf2 is a new mechanism for the activation of the Nrf2 antioxidant program, and is evident in primary cells and tissues of mice expressing K-RasG12D and B-RafV619E, and in human pancreatic cancer. Furthermore, genetic targeting of the Nrf2 pathway impairs K-RasG12D-induced proliferation and tumorigenesis in vivo. Thus, the Nrf2 antioxidant and cellular detoxification program represents a previously unappreciated mediator of oncogenesis.


Science | 1991

Identification of p53 as a sequence-specific DNA-binding protein.

Scott E. Kern; Kenneth W. Kinzler; Arthur Bruskin; David Jarosz; Paula Friedman; Carol Prives; Bert Vogelstein

The tumor-suppressor gene p53 is altered by missense mutation in numerous human malignancies. However, the biochemical properties of p53 and the effect of mutation on these properties are unclear. A human DNA sequence was identified that binds specifically to wild-type human p53 protein in vitro. As few as 33 base pairs were sufficient to confer specific binding. Certain guanines within this 33-base pair region were critical, as methylation of these guanines or their substitution with thymine-abrogated binding. Human p53 proteins containing either of two missense mutations commonly found in human tumors were unable to bind significantly to this sequence. These data suggest that a function of p53 may be mediated by its ability to bind to specific DNA sequences in the human genome, and that this activity is altered by mutations that occur in human tumors.


Science | 2009

Exomic Sequencing Identifies PALB2 as a Pancreatic Cancer Susceptibility Gene

Siân Jones; Ralph H. Hruban; Mihoko Kamiyama; Michael Borges; Xiaosong Zhang; D. Williams Parsons; Jimmy Lin; Emily Palmisano; Kieran Brune; Elizabeth M. Jaffee; Christine A. Iacobuzio-Donahue; Anirban Maitra; Giovanni Parmigiani; Scott E. Kern; Victor E. Velculescu; Kenneth W. Kinzler; Bert Vogelstein; James R. Eshleman; Michael Goggins; Alison P. Klein

Through complete sequencing of the protein-coding genes in a patient with familial pancreatic cancer, we identified a germline, truncating mutation in PALB2 that appeared responsible for this patients predisposition to the disease. Analysis of 96 additional patients with familial pancreatic cancer revealed three distinct protein-truncating mutations, thereby validating the role of PALB2 as a susceptibility gene for pancreatic cancer. PALB2 mutations have been previously reported in patients with familial breast cancer, and the PALB2 protein is a binding partner for BRCA2. These results illustrate that complete, unbiased sequencing of protein-coding genes can lead to the identification of a gene responsible for a hereditary disease.


Nature Genetics | 1996

Mad-related genes in the human

Gregory J. Riggins; Sam Thiagalingam; Ester Rozenblum; Craig L. Weinstein; Scott E. Kern; Stanley R. Hamilton; James K V Willson; Sanford Markowitz; Kenneth W. Kinzler; Bert Vogelstein

Resistance to the growth inhibitory effects of TGF-β is common in human cancers1,2. However, the mechanism(s) by which tumour cells become resistant to TGF-β are generally unknown. We have identified five novel human genes related to a Drosophila gene called Mad which is thought to transduce signals from TGF-β family members3–5. One of these genes was found to be somatically mutated in two of eighteen colorectal cancers, and three of the other genes were located at chromosomal positions previously suspected to harbor tumour suppressor genes. These data suggest that this gene family may prove to be important in the suppression of neoplasia, imparting the growth inhibitory effects of TGF-β-like ligands.

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Ralph H. Hruban

Johns Hopkins University School of Medicine

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Charles J. Yeo

Thomas Jefferson University

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Christine A. Iacobuzio-Donahue

Memorial Sloan Kettering Cancer Center

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Eike Gallmeier

Johns Hopkins University

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Bert Vogelstein

Howard Hughes Medical Institute

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Mieke Schutte

Erasmus University Medical Center

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