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On page 329 showing 6561 ~ 6580 out of 26,890 results
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https://med.uth.edu/nrc/

The Neuroscience Research Center (NRC) is a university-wide center where diverse and multidisciplinary research is conducted to further the understanding of neural and behavioral disorders. Whether conducting cellular research in laboratories or clinical trials in patient care settings, the work of NRC researchers may someday contribute to preventing and treating such devastating disorders as: * Dementias resulting from Alzheimer''s disease and stroke * Mental retardation and other learning disabilities * Mental illnesses, including schizophrenia and manic-depressive illness * Alcoholism and other substance abuse problems * Inability to process knowledge due to factors such as aging and head trauma * Disabilities due to disorders of the developing nervous system More than 280 faculty hold NRC appointments, and are on the faculties of the Medical School, School of Public Health, School of Nursing, Dental Branch, and School of Biomedical Informatics. Departments with significant NRC research activities within the Medical School include Neurobiology and Anatomy; Neurology; Neurosurgery; Ophthalmology and Visual Science; Psychiatry and Behavioral Sciences and Radiology. NRC activities are guided by an executive committee appointed by the President of the Health Science Center. The Neuroscience Research Center (NRC) is affiliated with educational opportunities at the graduate and postdoctoral levels.

Proper citation: UTHealth at Houston Neuroscience Research Center (RRID:SCR_007486) Copy   


http://www.medicine.tamhsc.edu/basic-sciences/next/index.html

The Department of Neuroscience and Experimental Therapeutics (NExT) at the Texas A&M Health Science Center College of Medicine has 16 full-time faculty members and is one of four basic science departments within the College of Medicine. Program strengths within the department include brain development, cellular/molecular basis of drug addiction, circadian biology, ocular pharmacology and experimental therapeutics, neurobiology of aging, neurodegenerative diseases such as stroke and Alzheimer''s disease, neuro-oncology and neuroteratology of alcohol, nicotine and other drugs of abuse. The Department of Neuroscience and Experimental Therapeutics participates in an interdisciplinary graduate program in the Medical Sciences that leads primarily to the Ph.D. degree with special emphasis in interdisciplinary training in Neurosciences or Pharmaceutical Sciences. The Ph.D. program in Medical Science usually requires 4-5 years to complete. Graduates from our program are prepared for leadership roles in research and teaching in academic, industrial, or governmental positions. Faculty within the department are affiliated with university-wide interdisciplinary faculties including the TAMU Faculty of Neuroscience rand our clinical science partner, the Texas Brain and Spine Institute. The department is also home to the Women''s Health in Neuroscience Program, consisting of interdisciplinary research faculty and a clinical advisory group aimed at developing a cohesive preclinical approach to the impact of puberty, pregnancy and menopause on brain development, mental health and brain disease.

Proper citation: Texas A and M Health Science Center College of Medicine Department of Neuroscience and Experimental Therapeutics (RRID:SCR_007482) Copy   


http://www.upstate.edu/pharm/

Research in the Department of Pharmacology focuses on three major areas: 1) cardiovascular science 2) cell signaling 3) cancer biology and therapeutics. Within those areas, research ranges from basic biological problems to those with clinical orientations. The cardiovascular science research strives to understand the normal and abnormal functioning of the heart at the molecular, cellular and organ levels, and is exceptionally strong in cardiac electrophysiology and the mechanisms of cardiac arrhythmia. The cell signaling research concerns regulation of cell function by extracellular factors, the molecular biology of signaling pathways, cell communication, and intracellular proteolysis. The cancer biology and therapeutics research is focused on molecular mechanisms regulating cell death and survival in human malignancies, development and testing of novel cancer therapeutics, novel tumor markers, oncogenic transformation and apoptosis, regulation of tumor suppressors and molecular mechanisms of leukemogensis. The Pharmacology Department has multiple research grants for the next five years. Most of the funding comes from the National Institutes of Health (NIH), with additional funding from the Association for International Cancer Research, the American Society of Hematology, the Department of Defense and the American Heart Association.

Proper citation: SUNY Upstate Medical University, Pharmacology (RRID:SCR_007481) Copy   


http://www.nibb.ac.jp/brish/indexE.html

Database of detailed protocols for single and double in situ hybridization (ISH) method, probes used by Yamamori lab and others useful for studies of brain, and many photos of mammalian (mostly mouse and monkey) brains stained with various gene probes. Also includes a brain atlas of gene expression. Currently, the atlas comprises a series of un-annotated images showing the localization of a particular probe or molecule, e.g., AChE.

Proper citation: BraInSitu: A homepage for molecular neuroanatomy (RRID:SCR_008081) Copy   


http://ekhidna.biocenter.helsinki.fi/sqgraph/pairsdb

This is a web interface for ADDA, an automatic algorithm for domain decomposition and clustering of all protein domain families. We use alignments derived from an all-on-all sequence comparison to define domains within protein sequences based on a global maximum likelihood model. ADDA is downloadable. There are three ways in which you can retrieve a protein sequence and its domains from ADDA. Sequences can be located using sequence identifiers and/or accession numbers, using a identical fragment lookup, or by running BLAST against all sequences in ADDA. ADDA is a protein sequence clustering algorithm. It takes a set of sequences and returns domain families. ADDA has two steps corresponding to the two aspects of the protein sequence clustering domain. First, ADDA splits protein sequences into domains. The idea behind ADDA is in principle the application of Occam''s razor; the goal is to describe the diversity of protein sequences with a minimal set of protein domains. The algorithm behind ADDA approximates this minimal set. In practice ADDA works by looking at where BLAST alignments are located on the sequence and splits the sequences, so that as few as possible alignments are cut by domain boundaries and that as many alignments as possible stretch over complete domains. Secondly, ADDA takes all the domains and then arranges them in a minimum spanning tree, where the similarity between two domains is determined by their relative overlap given a BLAST alignment. Each link in the tree is then checked by a pairwise profile-profile comparison and links below a threshold are removed. The remaining connected components are then taken to represent protein domain families.

Proper citation: ADDA - Automatic Domain Decomposition Algorithm (RRID:SCR_007546) Copy   


  • RRID:SCR_007821

    This resource has 1+ mentions.

http://www.nmpdr.org/FIG/wiki/view.cgi

The National Microbial Pathogen Data Resource provides curated annotations in an environment for comparative analysis of genomes and biological subsystems, with an emphasis on the food-borne pathogens Campylobacter, Listeria, Staphylococcus, Streptococcus, and Vibrio; as well as the STD pathogens Chlamydiaceae, Haemophilus, Mycoplasma, Neisseria, Treponema, and Ureaplasma. This edition of the NMPDR includes 47 archaeal, 725 bacterial, and 29 eukaryal genomes with 3,257,100 genetic features, of which 1,338,895 are in FIGfams curated using 616 active subsystems. ''''''Notice to NMPDR Users'''''' - The NMPDR BRC contract ended in December 2009. At that time we ceased maintenance of the NMPDR web resource and data. Bacterial data from NMPDR has been transferred to PATRIC (http://www.patricbrc.org), a new consolidated BRC for all NIAID category A-C priority pathogenic bacteria. NMPDR was a collaboration among researchers from the Computation Institute of the University of Chicago, the Fellowship for Interpretation of Genomes (FIG), Argonne National Laboratory, and the National Center for Supercomputing Applications (NCSA) at the University of Illinois.

Proper citation: NMPDR (RRID:SCR_007821) Copy   


http://www.pharmacy.wsu.edu/prospectivestudents/graduateprograms.html

The research-oriented program in pharmacology and toxicology prepares students for careers in independent research and teaching in pharmacology, toxicology and related areas.The research interests of the faculty are very broad and active areas of research include cancer biology, pharmacogenomics, pharmacokinetics, immuno-pharmacology and -toxicology and neuroscience. The diversity in faculty research interests provides students with a solid foundation in many areas of molecular and cellular pharmacology and toxicology and gives them a wide variety of research programs from which a dissertation proposal may be selected.
The curriculum provides exposure of students to virtually all areas of current research in molecular and cellular biochemistry, immunology, molecular biology, pharmacology and toxicology and formal course requirements are flexible to tailor programs to individual needs.Our graduates have been successfully placed in careers in universities and colleges, the pharmaceutical and biotech industries, and in federal and state agencies. The program awards Ph.D. and M.S. degrees.

Proper citation: Washington State University Pullman WA. Pharmacology and Toxicology (RRID:SCR_007543) Copy   


https://www.schulich.uwo.ca/physpharm/

Research-based medical science department of physiology and pharmacology in the Schulich School of Medicine and Dentistry at the University of Western Ontario that focus on biological processes from the cellular-molecular level to the integrative-systemic level, and on the effects of drugs and environmental agents on these processes. Their areas of research excellence include the physiology and pharmacology of the cardiovascular, neural, reproductive, endocrine and musculoskeletal systems. Several faculty work in the area of developmental biology related to these organ systems. Faculty members in this Department are leaders in nationally-funded collaborative research programs studying skeletal / bone development and biology, heart and vascular biology, cell communication and gap junctions, neural control of vision and movement, and osteoarthritis and pain. Funding from several large infrastructure grants from both national and provincial governments has facilitated the development of state-of-the-art research laboratories and core facilities.

Proper citation: University of Western Ontario London Ontario Canada Physiology and Pharmacology (RRID:SCR_007541) Copy   


http://www.saltlakecity.va.gov/psychology_postdoc/index.asp

This web site is an overview of the post-doctoral psychology training program at the VA Salt Lake City Health Care System (VA SLC HCS). Its purpose is to help prospective psychology post-docs learn about the training and professional growth opportunities that are available. The VA Salt Lake City Health Care System postdoctoral fellowship is a full-time, 12-month continuous appointment focused on specialty training in the evaluation and treatment of veterans with Post-Traumatic Stress Disorder. Postdoctoral Fellows will be active members of two interdisciplinary treatment teams: - The PTSD Clinical Team through the Mental Health Department - The Polytrauma Team through the Physical Medicine and Rehabilitation Department. Fellows will also provide community outreach to returning veterans from Afghanistan and Iraq. Especially relevant to the VA Mental Health Strategic Plan, psychological services are provided within the complementary areas of emotional trauma (e.g., military combat, military sexual trauma), physical trauma (e.g., TBI, orthopedic injuries), substance abuse, and couples/family discord, primarily within the OEF/OIF veteran population. Sponsors: This work is funded by the US Department of Veterans Affairs, Salt Lake City.

Proper citation: Psychology Post-doctoral Training Program, US Department of Veterans affairs, Salt Lake City, UT (RRID:SCR_008076) Copy   


http://sig.biostr.washington.edu/projects/brain/

The UW Integrated Brain Project is one project within the national Human Brain Project, a national multi-agency effort to develop informatics tools for managing the exploding amount of information that is accumulating about the human brain. The objective of the UW Integrated Brain Project effort is to organize and integrate distributed functional information about the brain around the structural information framework that is the long term goal of our work. This application therefore extends the utility of the Digital Anatomist Project by using it to organize non-structural information. The initial driving neuroscience problem that is being addressed is the management, visualization and analysis of cortical language mapping data. In recent years, advances in imaging technology such as PET and functional MRI have allowed researchers to observe areas of the cortex that are activated when the subject performs language tasks. These advances have greatly accelerated the amount of data available about human language, but have also emphasized the need to organize and integrate the sometimes contradictory sources of data, in order to develop theories about language organization. The hypothesis is that neuroanatomy is the common substrate on which the diverse kinds of data can be integrated. A result of the work done by this project is a set of software tools for generating a 3-D reconstruction of the patient''s own brain from MRI, for mapping functional data to this reconstruction, for normalizing individual anatomy by warping to a canonical brain atlas and by annotating data with terms from an anatomy ontology, for managing individual lab data in local laboratory information systems, for integrating and querying data across separate data management systems, and for visualizing the integrated results. Sponsors: This Human Brain Project research is funded jointly by the National Institute on Deafness and Other Communication Disorders, the National Institute of Mental Health, and the National Institute on Aging.

Proper citation: University of Washington Integrated Brain Project (RRID:SCR_008075) Copy   


http://www.med.upenn.edu/nscience/

The Department of Neuroscience is located in the School of Medicine at the University of Pennsylvania. Founded in 1992 to recognize the growing importance of neuroscience as a scientific discipline, the Department laboratories pursue a wide variety of research interests reflecting the entire range of modern neuroscience. The Department lies at the heart of the campus-wide Mahoney Institute of Neurological Sciences, the first research organization to receive NIH funding for training in the neurosciences.

Proper citation: University of Pennsylvania Medical Center Neuroscience (RRID:SCR_007978) Copy   


  • RRID:SCR_007973

    This resource has 100+ mentions.

http://enhancer.lbl.gov/

Resource for experimentally validated human and mouse noncoding fragments with gene enhancer activity as assessed in transgenic mice. Most of these noncoding elements were selected for testing based on their extreme conservation in other vertebrates or epigenomic evidence (ChIP-Seq) of putative enhancer marks. Central public database of experimentally validated human and mouse noncoding fragments with gene enhancer activity as assessed in transgenic mice. Users can retrieve elements near single genes of interest, search for enhancers that target reporter gene expression to particular tissue, or download entire collections of enhancers with defined tissue specificity or conservation depth.

Proper citation: VISTA Enhancer Browser (RRID:SCR_007973) Copy   


  • RRID:SCR_008020

    This resource has 10+ mentions.

http://www.buzsakilab.com/

Lab interested in understanding how neuronal circuitries of the brain support its cognitive capacities. Its goal is to provide rational, mechanistic explanations of cognitive functions at a descriptive level. In the lab''s view, the most promising area of cognitive faculties for scientific inquiry is memory, since it is a well-circumscribed term, can be studied in animals and substantial knowledge has accumulated on the molecular mechanisms of synaptic plasticity. Available software: * NeuroScope: NeuroScope can display local field potentials (EEG), neuronal spikes, behavioral events, as well as the position of the animal in the environment. It also features limited editing capabilities. * Klusters: Klusters is a powerful and easy-to-use cluster cutting application designed to help neurophysiologists sort action potentials from multiple neurons on groups of electrodes (e.g., tetrodes or multisite silicon probes). * KlustaKwik: KlustaKwik is a program for automatic cluster analysis, specifically designed to run fast on large data sets. * MATLAB m-files: A selection of MATLAB files developed in the lab., THIS RESOURCE IS NO LONGER IN SERVICE. Documented on September 16,2025.

Proper citation: Buzsaki Lab (RRID:SCR_008020) Copy   


http://www.hpid.org

Database that provides human protein interaction information and integrated interaction and also finds proteins from databases that can potentially react with proteins submitted by users. The human protein interaction information was pre-computed by a statistical method from existing structural and experimental data, while the integrated human protein interactions are derived from BIND, DIP and HPRD. A score composed of three parts is assigned to the predicted interaction data, and those interactions with high scores were found reliable. HPID allows the user to use the protein IDs in EMBL, Ensembl, MIM, RefSeq, HPRD and NCBI to search protein interactions of interest. A set of web-based software tools has also been developed so that users can visualize and analyze protein interaction networks.

Proper citation: HPID - Human Protein Interaction database (RRID:SCR_007724) Copy   


http://www.alzheimers.org.au/

A website which provides in-depth fact sheets on aspects of dementia and dementia care. It provides information on member organizations in each state, support and respite services as well as counseling and education available through Alzheimer's Australia. This organization's vision is for a society committed to the prevention of dementia, while valuing and supporting people living with dementia. Alzheimer's Australia manages a wide range of innovative National Programs which provide information, support, counseling, training and education to people with dementia, their families and carers as well as to professionals working in the dementia field.

Proper citation: Alzheimer's Australia: Living with Dementia (RRID:SCR_008015) Copy   


  • RRID:SCR_007959

    This resource has 100+ mentions.

http://t1dbase.org/

THIS RESOURCE IS NO LONGER IN SERVICE. Documented on August 26,2019. In October 2016, T1DBase has merged with its sister site ImmunoBase (https://immunobase.org). Documented on March 2020, ImmunoBase ownership has been transferred to Open Targets (https://www.opentargets.org). Results for all studies can be explored using Open Targets Genetics (https://genetics.opentargets.org). Database focused on genetics and genomics of type 1 diabetes susceptibility providing a curated and integrated set of datasets and tools, across multiple species, to support and promote research in this area. The current data scope includes annotated genomic sequences for suspected T1D susceptibility regions; genetic data; microarray data; and global datasets, generally from the literature, that are useful for genetics and systems biology studies. The site also includes software tools for analyzing the data.

Proper citation: T1DBase (RRID:SCR_007959) Copy   


http://www.pharmacy.umaryland.edu/graduate/psc/

The School of Pharmacys Department of Pharmaceutical Sciences has a rapidly expanding research program in the areas of cellular and molecular biology, chemistry, neuroscience and pharmacology, biopharmaceutics and drug delivery and clinical pharmaceutical sciences. Faculty and graduate students in the Department of Pharmaceutical Sciences are organized into Research Areas. The mission of the graduate program is to foster individual and collaborative research, faculty growth, and a graduate student education which provides a strong, broad background in the drug development process along with intensive expertise in a focal research area of the pharmaceutical sciences. The department also provides opportunities to conduct research in the area of Clinical Pharmaceutical Sciences. This is one of only 4 such programmatic themes of its kind in the U.S. This program is a collaborative effort between the departments of Pharmacy Practice and Science and Pharmaceutical Sciences in the School of Pharmacy. The clinical pharmaceutical research scientists trained by this program will be well-suited to meet the demand expressed by federal agencies (FDA, NIH), academia, and the pharmaceutical industry, with the potential to develop new therapeutic strategies to optimize patient care in Maryland, the U.S., and worldwide.

Proper citation: University of Maryland School of Pharmacy, Pharmaceutical Sciences Graduate Program (RRID:SCR_007513) Copy   


http://www.louisville.edu/medschool/pharmacology/

The Department of Pharmacology & Toxicology in the School of Medicine at the University of Louisville focuses upon the interaction of drugs and other chemicals with biological systems ranging from individual molecules, to cells, to tissues, to organ systems or individuals. The two disciplines are a continuum incorporating the therapeutic to toxic effect of every drug and chemical. Our departmental programs incorporate pharmacology and/or toxicology, and graduates are well trained to accept employment in either or both disciplines. Our research and curriculum incorporate molecular biology, genetics, neuroscience, biochemistry, physiology and other biomedical sciences, providing maximum flexibility for our graduates.

Proper citation: University of Louisville, Department of Pharmacology (RRID:SCR_007510) Copy   


http://bio2rdf.blogspot.com/

This is a blog about post genomic knowledge. The website''s goal is to make public datasets from the bioinformatics community available in RDF format via standard SPARQL endpoints.

Proper citation: Bio2RDF atlas of post genomic knowledge (RRID:SCR_007991) Copy   


http://www.interaction-proteome.org/

THIS RESOURCE IS NO LONGER IN SERVICE, documented on January 28, 2013. (URL is no longer valid) A platform for high-throughput proteomic analysis. Major objectives of IPP include the establishment of a broadly applicable platform of routine methods for the analysis of protein interaction networks in bio-medical research. A multidisciplinary approach will address; * their validation by cell biological, biochemical and biophysical methods. * their collection in a new type of public database. * their exploitation and use for in silico simulations of protein-interaction networks. The innovations generated in IPP will provide the basis for an efficient analysis and systems modeling of fundamental biological processes in health and disease. It will develop novel technology, including a high-end mass spectrometer with extremely large dynamic range, high-density peptide arrays, and improved visualization technology for light and electron microscopy. Additionally, the novel technologies will be validated with selected model systems of high relevance to medicine and biotechnology. Extensive bioinformatics support is a key element in the project to cope with the massive increase in experimental data on protein interactions obtained using the novel technologies. In particular, the efficient integration of disparate data sets represents a key challenge in proteomics and functional genomics. Therefore, the consortium includes the creator of the only European protein-interactions database, MINT. The multi-disciplinary efforts required in the scientific program of IPP are organized into four sub-projects (SP): * SP1: Tools for interaction analysis - SP1 is dedicated to the development of innovative proteomics technology to map protein-interaction networks and their cellular topology for the interaction analyses in SP2 and SP3. * SP2: Identification of interaction partners for protein domains - SP2 will generate (high throughput) data for important protein-protein interactions defined by bioinformatics and biomedical interest and by SP3, utilizing technology developed in SP1. * SP3: Functional analysis of interactions - SP3 focuses on the validation of technologies and tools developed in SP1. It will perform functional analyses of protein-interactions in medically and biochemically relevant prokaryotic and eukaryotic (mammalian) model systems. * SP4: Interactome database and modelling - SP4 provides the required bioinformatics infrastructure for the project, comprising the improvement of the public MINT database for the collection and dissemination of the interactome data; modelling and simulation of protein-interaction networks characterised in SP2 and SP3; and the dissemination of the technology developments to the scientific community.

Proper citation: Interaction Proteome Project (RRID:SCR_008043) Copy   



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