voice output chip - определение. Что такое voice output chip
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Что (кто) такое voice output chip - определение

MOLECULAR BIOLOGY METHOD
ChIP-chip; ChIP-Chip; Chip on chip
  • Workflow overview of the dry-lab portion of a ChIP-on-chip experiment.
  • Workflow overview of the wet-lab portion of a ChIP-on-chip experiment.
  • Workflow overview of a ChIP-on-chip experiment.

Output (economics)         
QUANTITY OF GOODS OR SERVICES PRODUCED IN A GIVEN TIME PERIOD, BY A FIRM, INDUSTRY, OR COUNTRY, WHETHER CONSUMED OR USED FOR FURTHER PRODUCTION
Netput; Economic output
Output in economics is the "quantity of goods or services produced in a given time period, by a firm, industry, or country",Alan Deardorff. output, Deardorff asspoo's Glossary of International Economics.
Output device         
  • A recording setup with two monitor speakers
  • upright=0.6
  • [[Colossal Cave Adventure]] being played on a [[VT100]] terminal
  • upright=0.8
  • A pair of [[computer speaker]]s and a [[subwoofer]] used in a desktop environment
  • An [[LCD monitor]] in use
  • An LED projector
  • Output interfaces on the rear of a graphics card
TYPE OF COMPUTER HARDWARE DEVICE THAT TRANSMITS INFORMATION FROM THE COMPUTER TO THE USER
Graphical output device; Output devices; List of output devices; Output hardware
An output device is any piece of computer hardware equipment which converts information into a human-perceptible form or, historically, into a physical machine-readable form for use with other non-computerized equipment. It can be text, graphics, tactile, audio, or video.
Chip (name)         
GIVEN NAME
Chip (nickname)
Chip is an English given name and nickname in the United States, which is often a diminutive form of Charles or Christopher. Notable people referred to by this name include the following:

Википедия

ChIP-on-chip

ChIP-on-chip (also known as ChIP-chip) is a technology that combines chromatin immunoprecipitation ('ChIP') with DNA microarray ("chip"). Like regular ChIP, ChIP-on-chip is used to investigate interactions between proteins and DNA in vivo. Specifically, it allows the identification of the cistrome, the sum of binding sites, for DNA-binding proteins on a genome-wide basis. Whole-genome analysis can be performed to determine the locations of binding sites for almost any protein of interest. As the name of the technique suggests, such proteins are generally those operating in the context of chromatin. The most prominent representatives of this class are transcription factors, replication-related proteins, like origin recognition complex protein (ORC), histones, their variants, and histone modifications.

The goal of ChIP-on-chip is to locate protein binding sites that may help identify functional elements in the genome. For example, in the case of a transcription factor as a protein of interest, one can determine its transcription factor binding sites throughout the genome. Other proteins allow the identification of promoter regions, enhancers, repressors and silencing elements, insulators, boundary elements, and sequences that control DNA replication. If histones are subject of interest, it is believed that the distribution of modifications and their localizations may offer new insights into the mechanisms of regulation.

One of the long-term goals ChIP-on-chip was designed for is to establish a catalogue of (selected) organisms that lists all protein-DNA interactions under various physiological conditions. This knowledge would ultimately help in the understanding of the machinery behind gene regulation, cell proliferation, and disease progression. Hence, ChIP-on-chip offers both potential to complement our knowledge about the orchestration of the genome on the nucleotide level and information on higher levels of information and regulation as it is propagated by research on epigenetics.