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Grewe, B.

Publications and source records attributed to Grewe, B..

2 recordsLinked to original sources

Fast retrograde access to projection neuron circuits underlying vocal learning in songbirds

Understanding the structure and function of neural circuits underlying speech and language is a vital step towards better treatments for diseases of these systems. Songbirds, among the few animal orders that share with humans the ability to learn vocalizations from a conspecific, have provided many insights into the neural mechanisms of vocal development. However, research into vocal learning circuits has been hindered by a lack of tools for rapid genetic targeting of specific neuron populations to meet the quick pace of developmental learning. Here, we present a new viral tool that enables fast and efficient retrograde access to projection neuron populations. In zebra finches, Bengalese finches, canaries, and mice, we demonstrate fast retrograde labeling of cortical or dopaminergic neurons. We further demonstrate the suitability of our construct for detailed morphological analysis, for in vivo imaging of calcium activity, and for multicolor brainbow labeling.

neuroscience

CRNKL1 is a highly selective regulator of intron-retaining HIV-1 and cellular mRNAs

The HIV-1 Rev protein is a nuclear export factor for unspliced and incompletely-spliced HIV-1 RNAs. Without Rev, these intron-retaining RNAs are trapped in the nucleus. A genome-wide screen identified nine proteins of the spliceosome which all enhanced expression from the HIV-1 unspliced RNA after CRISPR/Cas knock-down. Depletion of DHX38, WDR70 and four proteins of the Prp19-associated complex (ISY1, BUD31, XAB2, CRNKL1) resulted in a more than 20-fold enhancement of unspliced HIV-1 RNA levels in the cytoplasm. Targeting of CRNKL1, DHX38, and BUD31 affected nuclear export efficiencies of the HIV-1 unspliced RNA to a much larger extent than splicing. Transcriptomic analyses further revealed that CRNKL1 also suppresses cytoplasmic levels of cellular mRNAs with selectively retained introns. Thus, CRNKL1 dependent nuclear retention seems to be a novel mechanism for the regulation of cytoplasmic levels of intron-retaining cellular mRNAs that is harnessed by HIV-1 to direct its complex splicing pattern.

molecular biology