2012 Workshop on Fault Diagnosis and Tolerance in Cryptography, 09/2012, pp. 103 - 113
Recently, some active shielding techniques have been broken (e.g. by FlyLogic). The caveat is that their geometry is easy to guess, and thus they can be...
Fabrication | Geometry | hard identification phase | traveling salesman problem | Wires | Layout | Metals | Logic gates | Routing | spaghetti routing | Active shield | genetic algorithms
Fabrication | Geometry | hard identification phase | traveling salesman problem | Wires | Layout | Metals | Logic gates | Routing | spaghetti routing | Active shield | genetic algorithms
Conference Proceeding
Molecular Brain Research, ISSN 0169-328X, 1998, Volume 63, Issue 1, pp. 1 - 13
A number of precursors for neuropeptides have recently been cloned in amphibians, but little is known concerning the endoproteases responsible for the...
Neuropeptides | Frog brain | In situ hybridization | Proprotein convertase | Proteolytic processing | PITUITARY ADENYLATE-CYCLASE | CHROMOSOMAL LOCALIZATION | IMMUNOHISTOCHEMICAL LOCALIZATION | proteolytic processing | neuropeptides | SECRETOGRANIN-II | frog brain | NEUROSCIENCES | ENDOPROTEASE FAMILY | PARS-INTERMEDIA | NEUROPEPTIDE-Y | CORTICOTROPIN-RELEASING FACTOR | proprotein convertase | CENTRAL-NERVOUS-SYSTEM | in situ hybridization | DNA, Complementary - analysis | Proprotein Convertase 2 | Antisense Elements (Genetics) | Brain - enzymology | Molecular Sequence Data | RNA, Messenger - analysis | Male | Neuropeptides - metabolism | Pituitary Gland - chemistry | Reverse Transcriptase Polymerase Chain Reaction | Sequence Homology, Amino Acid | Animals | In Situ Hybridization | Base Sequence | Cloning, Molecular | Subtilisins - genetics | Rana ridibunda
Neuropeptides | Frog brain | In situ hybridization | Proprotein convertase | Proteolytic processing | PITUITARY ADENYLATE-CYCLASE | CHROMOSOMAL LOCALIZATION | IMMUNOHISTOCHEMICAL LOCALIZATION | proteolytic processing | neuropeptides | SECRETOGRANIN-II | frog brain | NEUROSCIENCES | ENDOPROTEASE FAMILY | PARS-INTERMEDIA | NEUROPEPTIDE-Y | CORTICOTROPIN-RELEASING FACTOR | proprotein convertase | CENTRAL-NERVOUS-SYSTEM | in situ hybridization | DNA, Complementary - analysis | Proprotein Convertase 2 | Antisense Elements (Genetics) | Brain - enzymology | Molecular Sequence Data | RNA, Messenger - analysis | Male | Neuropeptides - metabolism | Pituitary Gland - chemistry | Reverse Transcriptase Polymerase Chain Reaction | Sequence Homology, Amino Acid | Animals | In Situ Hybridization | Base Sequence | Cloning, Molecular | Subtilisins - genetics | Rana ridibunda
Journal Article
Brain Research, ISSN 0006-8993, 1993, Volume 607, Issue 1, pp. 154 - 160
Cognitive and histological alterations in human Alzheimer's disease (AD) are correlated with selective neuronal loss in nucleus basalis of Meynert. In search...
Nucleus basalis | Ibotenic acid | Somatostatin | Somatostatin receptor radioautography | Plasticity | Ibotenic Acid - administration & dosage | Iodine Radioisotopes | Ibotenic Acid - pharmacology | Neuronal Plasticity - drug effects | Rats | Male | Adenylyl Cyclases - metabolism | Basal Ganglia - anatomy & histology | Basal Ganglia - physiology | Cerebral Cortex - metabolism | Adenylyl Cyclase Inhibitors | Neuropeptide Y - metabolism | Autoradiography | Animals | Signal Transduction - drug effects | Radioimmunoassay | Histocytochemistry | Receptors, Somatostatin - metabolism | Cerebral Cortex - drug effects | Cerebral Cortex - anatomy & histology | Somatostatin - metabolism | Basal Ganglia - drug effects
Nucleus basalis | Ibotenic acid | Somatostatin | Somatostatin receptor radioautography | Plasticity | Ibotenic Acid - administration & dosage | Iodine Radioisotopes | Ibotenic Acid - pharmacology | Neuronal Plasticity - drug effects | Rats | Male | Adenylyl Cyclases - metabolism | Basal Ganglia - anatomy & histology | Basal Ganglia - physiology | Cerebral Cortex - metabolism | Adenylyl Cyclase Inhibitors | Neuropeptide Y - metabolism | Autoradiography | Animals | Signal Transduction - drug effects | Radioimmunoassay | Histocytochemistry | Receptors, Somatostatin - metabolism | Cerebral Cortex - drug effects | Cerebral Cortex - anatomy & histology | Somatostatin - metabolism | Basal Ganglia - drug effects
Journal Article
Peptides, ISSN 0196-9781, 1987, Volume 8, Issue 1, pp. 61 - 67
This study demonstrates the presence of a rich plexus of neuropeptide Y (NPY) immunoreactive fibers in the hypothalamus and in the intermediate lobe of the...
Regulation of secretion | MSH | Endorphin | Pars intermedia | NPY | MSH Release-Inhibiting Hormone | Pituitary Gland - metabolism | Melanocyte-Stimulating Hormones - metabolism | Xenopus laevis | Immunoenzyme Techniques | Pro-Opiomelanocortin - metabolism | Endorphins - metabolism | Animals | Radioimmunoassay | Histocytochemistry | Neuropeptide Y - analysis | In Vitro Techniques | Neuropeptide Y - physiology
Regulation of secretion | MSH | Endorphin | Pars intermedia | NPY | MSH Release-Inhibiting Hormone | Pituitary Gland - metabolism | Melanocyte-Stimulating Hormones - metabolism | Xenopus laevis | Immunoenzyme Techniques | Pro-Opiomelanocortin - metabolism | Endorphins - metabolism | Animals | Radioimmunoassay | Histocytochemistry | Neuropeptide Y - analysis | In Vitro Techniques | Neuropeptide Y - physiology
Journal Article
Journal of Comparative Neurology, ISSN 0021-9967, 09/1988, Volume 275, Issue 3, pp. 309 - 325
The newt brain represents a simplified model for the increasingly complex vertebrate neuronal organization. The localization of neuropeptide Y‐like (NPY‐like)...
highperformance liquid chromatography | radioimmunoassay | crested newt | immunoblotting | neuropeptide Y | immunohistochemistry | brain | Brain - metabolism | Immunohistochemistry | Nerve Fibers - analysis | Brain - cytology | Salamandridae - metabolism | Animals | Brain Mapping | Female | Male | Neuropeptide Y - analysis
highperformance liquid chromatography | radioimmunoassay | crested newt | immunoblotting | neuropeptide Y | immunohistochemistry | brain | Brain - metabolism | Immunohistochemistry | Nerve Fibers - analysis | Brain - cytology | Salamandridae - metabolism | Animals | Brain Mapping | Female | Male | Neuropeptide Y - analysis
Journal Article
Life Sciences, ISSN 0024-3205, 1986, Volume 39, Issue 13, pp. 1183 - 1192
The presence of neuropeptide tyrosine (NPY) in the intermediate lobe of the frog pituitary was demonstrated using indirect immunofluorescence, the immunogold...
Dose-Response Relationship, Drug | Neuropeptide Y | Nerve Tissue Proteins - physiology | Animals | Pituitary Gland - metabolism | Melanocyte-Stimulating Hormones - metabolism | Radioimmunoassay | Male | Rana ridibunda | Chromatography, High Pressure Liquid
Dose-Response Relationship, Drug | Neuropeptide Y | Nerve Tissue Proteins - physiology | Animals | Pituitary Gland - metabolism | Melanocyte-Stimulating Hormones - metabolism | Radioimmunoassay | Male | Rana ridibunda | Chromatography, High Pressure Liquid
Journal Article
Patent
Fish Physiology and Biochemistry, ISSN 0920-1742, 06/1989, Volume 7, Issue 1-6, pp. 77 - 83
Journal Article
29.
Full Text
Mapping of neuropeptide Y‐like immunoreactivity in the feline hypothalamus and hypophysis
Journal of Comparative Neurology, ISSN 0021-9967, 01/1987, Volume 255, Issue 2, pp. 283 - 292
The distribution of neuropeptide Y (NPY) in the cat hypothalamus and hypophysis was studied with the indirect immunofluorescence technique of Coons and...
pituitary | pancreatic polypeptide | diencephalons | cat | immunofluorescence | NEUROSCIENCES | ZOOLOGY | Neuropeptide Y - metabolism | Cats | Animals | Hypothalamus - metabolism | Pituitary Gland - metabolism | Fluorescent Antibody Technique
pituitary | pancreatic polypeptide | diencephalons | cat | immunofluorescence | NEUROSCIENCES | ZOOLOGY | Neuropeptide Y - metabolism | Cats | Animals | Hypothalamus - metabolism | Pituitary Gland - metabolism | Fluorescent Antibody Technique
Journal Article
Neuroscience Letters, ISSN 0304-3940, 1987, Volume 74, Issue 2, pp. 163 - 168
By means of the peroxidase-anti-peroxidase technique, the distribution of neuropeptide tyrosine (NPY) and its C-terminal flanking peptide (C-PON) has been...
Neuropeptide Y | Colocalization | Brain | Pars intermedia | Immunocytochemistry | Pro-neuropeptide Y | Amphibian | Brain - metabolism | Neuropeptide Y - metabolism | Peptide Fragments - metabolism | Animals | Pituitary Gland - metabolism | Fluorescent Antibody Technique | Male | Rana ridibunda | Immunoenzyme Techniques
Neuropeptide Y | Colocalization | Brain | Pars intermedia | Immunocytochemistry | Pro-neuropeptide Y | Amphibian | Brain - metabolism | Neuropeptide Y - metabolism | Peptide Fragments - metabolism | Animals | Pituitary Gland - metabolism | Fluorescent Antibody Technique | Male | Rana ridibunda | Immunoenzyme Techniques
Journal Article
10/2007
Method of compressing a digital image signal in which a first quantization step set, which is unique for a given segment, is determined so that the number of...
PRESENTATION OF DATA | ELECTRIC COMMUNICATION TECHNIQUE | HANDLING RECORD CARRIERS | COMPUTING | COUNTING | PHYSICS | PICTORIAL COMMUNICATION, e.g. TELEVISION | ELECTRICITY | CALCULATING | RECORD CARRIERS | RECOGNITION OF DATA
PRESENTATION OF DATA | ELECTRIC COMMUNICATION TECHNIQUE | HANDLING RECORD CARRIERS | COMPUTING | COUNTING | PHYSICS | PICTORIAL COMMUNICATION, e.g. TELEVISION | ELECTRICITY | CALCULATING | RECORD CARRIERS | RECOGNITION OF DATA
Patent
Annals of the New York Academy of Sciences, ISSN 0077-8923, 11/1990, Volume 611, Issue 1, pp. 513 - 515
Journal Article
33.
Full Text
Innervation of the Pars intermedia and Control of Alpha-Melanotropin Secretion in the Newt
Neuroendocrinology, ISSN 0028-3835, 1989, Volume 50, Issue 5, pp. 543 - 549
In this study we have investigated the presence of nerve fibers containing dopamine, thyrotropin-releasing hormone (TRH) and neuropeptide Y (NPY) in the pars...
Original Paper | Immunohistochemistry | Neuropeptide Y | Dopamine | Pars intermedia | Thyrotropin-releasing hormone | Alpha-melanotropin release | In vitro perilusion | NEUROSCIENCES | ENDOCRINOLOGY & METABOLISM | Animals | Apomorphine - pharmacology | Perfusion | Pituitary Gland - innervation | Thyrotropin-Releasing Hormone - pharmacology | Dopamine - pharmacology | Neuropeptide Y - pharmacology | Salamandridae | Melanocyte-Stimulating Hormones - secretion
Original Paper | Immunohistochemistry | Neuropeptide Y | Dopamine | Pars intermedia | Thyrotropin-releasing hormone | Alpha-melanotropin release | In vitro perilusion | NEUROSCIENCES | ENDOCRINOLOGY & METABOLISM | Animals | Apomorphine - pharmacology | Perfusion | Pituitary Gland - innervation | Thyrotropin-Releasing Hormone - pharmacology | Dopamine - pharmacology | Neuropeptide Y - pharmacology | Salamandridae | Melanocyte-Stimulating Hormones - secretion
Journal Article
Molecular and Cellular Endocrinology, ISSN 0303-7207, 1987, Volume 50, Issue 3, pp. 203 - 209
The kinetics of a-MSH secretion induced by prolonged TRH infusion were studied using perfused frog neurointermediate lobe (NIL). During a 2 h administration of...
Cycloheximide | Desensitization | Thyrotropin-releasing hormone | Monensin | Pituitary | Melanotropin | Intermediate lobe | Perifusion | Amphibians | Protein Biosynthesis | Animals | Pituitary Gland - metabolism | Melanocyte-Stimulating Hormones - metabolism | Thyrotropin-Releasing Hormone - pharmacology | Monensin - pharmacology | Male | Rana ridibunda | Kinetics | In Vitro Techniques | Cycloheximide - pharmacology | Pituitary Gland - drug effects
Cycloheximide | Desensitization | Thyrotropin-releasing hormone | Monensin | Pituitary | Melanotropin | Intermediate lobe | Perifusion | Amphibians | Protein Biosynthesis | Animals | Pituitary Gland - metabolism | Melanocyte-Stimulating Hormones - metabolism | Thyrotropin-Releasing Hormone - pharmacology | Monensin - pharmacology | Male | Rana ridibunda | Kinetics | In Vitro Techniques | Cycloheximide - pharmacology | Pituitary Gland - drug effects
Journal Article
02/2004, 7
Patent
06/2003, 7
Method of compressing a digital image signal in which a first quantization step set, which is unique for a given segment, is determined so that the number of...
ELECTRIC COMMUNICATION TECHNIQUE | PICTORIAL COMMUNICATION, e.g. TELEVISION | ELECTRICITY
ELECTRIC COMMUNICATION TECHNIQUE | PICTORIAL COMMUNICATION, e.g. TELEVISION | ELECTRICITY
Patent
04/2003, 7
The method comprises the formation of spatial blocks of coefficients assigned at pixels, the transformation of each block into frequency domain, the...
ELECTRIC COMMUNICATION TECHNIQUE | PICTORIAL COMMUNICATION, e.g. TELEVISION | ELECTRICITY
ELECTRIC COMMUNICATION TECHNIQUE | PICTORIAL COMMUNICATION, e.g. TELEVISION | ELECTRICITY
Patent
03/2003, 7
The method comprises the formation of spatial blocks of coefficients assigned at pixels, the transformation of each block into frequency domain, the...
ELECTRIC COMMUNICATION TECHNIQUE | PICTORIAL COMMUNICATION, e.g. TELEVISION | ELECTRICITY
ELECTRIC COMMUNICATION TECHNIQUE | PICTORIAL COMMUNICATION, e.g. TELEVISION | ELECTRICITY
Patent
Fish physiology and biochemistry, ISSN 0920-1742, 06/1989, Volume 7, Issue 1-6, pp. 77 - 83
This work investigated the action of neuropeptide Y (NPY) on thein vitro pituitary release of the maturing gonadotropic hormone (GtH) of the rainbow trout...
Journal Article
European Journal of Biochemistry, ISSN 0014-2956, 1996, Volume 236, Issue 1, pp. 60 - 67
The neuroendocrine‐specific polypeptide 7B2 is a constituent of the regulated secretory pathway. Recently, 7B2 was found to function as a molecular chaperone...
gene structure | promoter | neuroendocrine | chaperone | polypeptide 7B2 | Promoter | Neuroendocrine | Chaperone | Gene structure | Polypeptide 7B2 | BIOCHEMISTRY & MOLECULAR BIOLOGY | IDENTIFICATION | SACCHAROMYCES-CEREVISIAE | MESSENGER-RNAS | XENOPUS | ENDOCRINE PROTEIN | INHIBITOR-I GENE | CLONING | SEQUENCE | PROOPIOMELANOCORTIN GENE | PITUITARY POLYPEPTIDE 7B2 | Amino Acid Sequence | Promoter Regions, Genetic | Pituitary Hormones - biosynthesis | Species Specificity | Exons | Introns | Humans | Xenopus laevis | Gene Expression Regulation | Molecular Chaperones - genetics | Molecular Sequence Data | Nerve Tissue Proteins - genetics | Neurosecretory Systems | Heat-Shock Response | Neuroendocrine Secretory Protein 7B2 | Animals | Base Sequence | Cloning, Molecular | Nerve Tissue Proteins - biosynthesis | Pituitary Hormones - genetics | Transcription, Genetic | Genome | Molecular Chaperones - biosynthesis
gene structure | promoter | neuroendocrine | chaperone | polypeptide 7B2 | Promoter | Neuroendocrine | Chaperone | Gene structure | Polypeptide 7B2 | BIOCHEMISTRY & MOLECULAR BIOLOGY | IDENTIFICATION | SACCHAROMYCES-CEREVISIAE | MESSENGER-RNAS | XENOPUS | ENDOCRINE PROTEIN | INHIBITOR-I GENE | CLONING | SEQUENCE | PROOPIOMELANOCORTIN GENE | PITUITARY POLYPEPTIDE 7B2 | Amino Acid Sequence | Promoter Regions, Genetic | Pituitary Hormones - biosynthesis | Species Specificity | Exons | Introns | Humans | Xenopus laevis | Gene Expression Regulation | Molecular Chaperones - genetics | Molecular Sequence Data | Nerve Tissue Proteins - genetics | Neurosecretory Systems | Heat-Shock Response | Neuroendocrine Secretory Protein 7B2 | Animals | Base Sequence | Cloning, Molecular | Nerve Tissue Proteins - biosynthesis | Pituitary Hormones - genetics | Transcription, Genetic | Genome | Molecular Chaperones - biosynthesis
Journal Article
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