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Cells possess a wealth of posttranscriptional control mechanisms
that impact on every conceivable aspect of the life of an mRNA.
These processes are intimately intertwined in an almost baroque
manner, where promoter context influences the recruitment of
splicing factors, where the majority of pre-mRNAs undergo
alternative splicing, and where proteins deposited during nuclear
processing impact distal cytoplasmic processing, translation, and
decay. If there is a unifying theme to mRNA Processing and
Metabolism: Methods and Protocols, it is that mRNA processing and
metabolism are integrated processes. Many of the techniques used to
study mRNA have been described in a previous volume of this series
(RNA-Protein Interaction Protocols, Susan Haynes, ed.) and
specialized methods journals. In selecting topics for mRNA
Processing and Metabolism: Methods and Protocols, I sought input on
new and novel techniques and approaches that build on this
foundation using technological advances in microscopy, whole genome
sequencing, microarrays, mass spectrometry, fluorescent detection
methodologies, and RNA interference. I have tried not to bias this
book toward any single model organism, and approaches described in
the various chapters use yeast, Drosophila, Xenopus, mice, plants,
and cultured mammalian cells.
Cells possess a wealth of posttranscriptional control mechanisms
that impact on every conceivable aspect of the life of an mRNA.
These processes are intimately intertwined in an almost baroque
manner, where promoter context influences the recruitment of
splicing factors, where the majority of pre-mRNAs undergo
alternative splicing, and where proteins deposited during nuclear
processing impact distal cytoplasmic processing, translation, and
decay. If there is a unifying theme to mRNA Processing and
Metabolism: Methods and Protocols, it is that mRNA processing and
metabolism are integrated processes. Many of the techniques used to
study mRNA have been described in a previous volume of this series
(RNA-Protein Interaction Protocols, Susan Haynes, ed.) and
specialized methods journals. In selecting topics for mRNA
Processing and Metabolism: Methods and Protocols, I sought input on
new and novel techniques and approaches that build on this
foundation using technological advances in microscopy, whole genome
sequencing, microarrays, mass spectrometry, fluorescent detection
methodologies, and RNA interference. I have tried not to bias this
book toward any single model organism, and approaches described in
the various chapters use yeast, Drosophila, Xenopus, mice, plants,
and cultured mammalian cells.
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