Publications by authors named "B A Budnik"

Diverse subtypes of cortical projection neurons (PN) form long-range axonal projections that are responsible for distinct sensory, motor, cognitive, and behavioral functions. Translational control has been identified at multiple stages of PN development, but how translational regulation contributes to formation of distinct, subtype-specific long-range circuits is poorly understood. Ribosomal complexes (RCs) exhibit variations of their component proteins, with an increasing set of examples that confer specialized translational control.

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  • The Human Proteome Project (HPP) aims to identify every protein-coding gene’s isoform and integrate proteomics into studies of human health and disease.
  • Major updates include the retirement of neXtProt as the knowledge base, with UniProtKB now serving as the reference proteome, and GENCODE providing the target protein list.
  • Recent data shows that 93% of protein-coding genes have been expressed, leaving 1,273 non-expressed proteins, along with the introduction of a new scoring system for functional annotation of proteins.
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  • * Researchers have developed a new gene expression vector, CPP16, which effectively delivered the human gene responsible for MLIV in preclinical mouse models.
  • * The treatment improved brain function and motor skills, preventing paralysis, although it did not restore retinal thickness despite some positive effects on retinal tissue degeneration.
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Engineering the genetic code of an organism provides the basis for (i) making any organism safely resistant to natural viruses and (ii) preventing genetic information flow into and out of genetically modified organisms while (iii) allowing the biosynthesis of genetically encoded unnatural polymers. Achieving these three goals requires the reassignment of multiple of the 64 codons nature uses to encode proteins. However, synonymous codon replacement-recoding-is frequently lethal, and how recoding impacts fitness remains poorly explored.

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With advances in sample preparation, small-volume liquid dispensing technologies, high-resolution MS/MS instrumentation, and data acquisition methodologies, it has become increasingly possible to confidently investigate the heterogeneous proteome found within individual cells. In this chapter, we present an automated high-throughput sample preparation workflow based on the Tecan Uno instrument for quantitative single-cell mass spectrometry-based proteomics. Cells are analyzed by the Single-Cell Proteome Analysis platform (SCREEN), which was introduced earlier and provides deeper proteome coverage across single cells.

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