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Related Concept Videos

Translation01:31

Translation

156.4K
Lesson: Translation
Translation is the process of synthesizing proteins from the genetic information carried by messenger RNA (mRNA). Following transcription, it constitutes the final step in the expression of genes. This process is carried out by ribosomes, complexes of protein and specialized RNA molecules. Ribosomes, transfer RNA (tRNA), and other proteins produce a chain of amino acids—the polypeptide—as the end product of translation.
Translation Produces the Building Blocks of...
156.4K
Translation01:31

Translation

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Translation is the process of synthesizing proteins from the genetic information carried by messenger RNA (mRNA). Following transcription, it constitutes the final step in the expression of genes. This process is carried out by ribosomes, complexes of protein and specialized RNA molecules. Ribosomes, transfer RNA (tRNA), and other proteins produce a chain of amino acids—the polypeptide—as the end product of translation.
Translation Produces the Building Blocks of Life
Proteins are...
17.8K
Initiation of Translation02:33

Initiation of Translation

39.0K
Initiating translation is complex because it involves multiple molecules. Initiator tRNA, ribosomal subunits, and eukaryotic initiation factors (eIFs) are all required to assemble on the initiation codon of mRNA. This process consists of several steps that are mediated by different eIFs.
First, the initiator tRNA must be selected from the pool of elongator tRNAs by eukaryotic initiation factor 2 (eIF2). The initiator tRNA (Met-tRNAi) has conserved sequence elements including modified bases at...
39.0K
Initiation of Translation02:33

Initiation of Translation

8.1K
8.1K
Termination of Translation01:44

Termination of Translation

27.7K
The large ribosomal subunit has several important structures essential to translation. These include the peptidyl transferase center (PTC) - which is the site where the peptide bond is formed - and a large, internal, water-filled tube through which the nascent polypeptide moves. This latter structure is called the Peptide Exit Tunnel, and it begins at the PTC and spans the body of the large ribosomal subunit. During translation, as the nascent polypeptide chain is synthesized, it passes through...
27.7K
Termination of Translation01:44

Termination of Translation

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Author Spotlight: Polysome Profiling Protocol for Studying Translational Regulation in Arabidopsis Under Heat Stress
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Transplatformer: translating toxicogenomic profiles between generations of platforms.

Guojing Cong1, Frank Chao2, Daniel L Svoboda3

  • 1Oak Ridge National Laboratory, Oak Ridge, TN, USA. congg@ornl.gov.

BMC Bioinformatics
|January 30, 2026
PubMed
Summary

We developed TransPlatformer, a deep learning tool that translates gene expression data across different toxicogenomics platforms. This method improves data integration and maximizes the value of legacy datasets for biological and toxicological research.

Keywords:
Attention mechanismsCross-platform translationDeep learningDrugMatrixGene expression analysisToxicogenomicsTranscriptomic data integration

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Area of Science:

  • Toxicogenomics
  • Computational Biology
  • Bioinformatics

Background:

  • Transcriptomic profiling is crucial for analyzing biological and toxicological responses.
  • Inconsistencies across platforms limit data integration and reuse of historical toxicogenomics datasets.
  • Developing computational methods for cross-platform data translation is essential to leverage legacy resources.

Purpose of the Study:

  • To develop computational methods for accurate cross-platform translation of gene expression data.
  • To maximize the utility of legacy toxicogenomics datasets through data harmonization.

Main Methods:

  • Developed TransPlatformer, a deep learning framework utilizing an attention-based architecture.
  • Mapped high-dimensional fold-change vectors from microarray to current platforms.
  • Trained and evaluated models using the DrugMatrix dataset across three technological generations, comparing mixed-tissue, single-tissue, and cross-tissue paradigms against baseline methods.

Main Results:

  • TransPlatformer significantly reduced mean absolute error by over 50% and nearly doubled Pearson correlation compared to baseline methods in mixed-tissue training.
  • The framework effectively preserved rare but biologically significant gene expression signals.
  • Single-tissue models further improved accuracy for well-represented organs, highlighting the need for data augmentation in low-sample tissues.

Conclusions:

  • TransPlatformer offers an effective and scalable solution for cross-platform transcriptomic data translation.
  • The approach enables biologically faithful harmonization of gene expression data, facilitating legacy dataset reuse.
  • This enhances downstream biomarker discovery and supports reproducible predictive modeling in toxicology.