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Biology subjects

He, l.

Publications and source records attributed to He, l..

2 recordsLinked to original sources

FFPERescuer: deep unsupervised domain adaptation for the reconstruction of gene expression profiles derived from formalin-fixed paraffin-embedded samples

Formalin-fixed paraffin-embedded (FFPE) tumor tissues often suffer from RNA degradation, posing a long-standing challenge for reliable transcriptomic profiling. Here, we propose FFPERescuer, a deep learning framework employing unsupervised domain adaptation, to rectify distorted gene expression data. FFPERescuer comprises a partial encoder that maps a small subset of genes to high-level representations and a decoder to reconstruct full gene expression profiles. On simulated data with varying noise levels, FFPERescuer faithfully recovered gene expression profiles, achieving high Pearson correlation coefficients (PCCs > 0.85) with the ground truth. In FF-FFPE-matched cohorts, FFPERescuer significantly enhanced expression profile concordance, with average PCCs increased by 23% (P < 0.05). Applying to cancer subtyping, FFPERescuer improved classification accuracy from 67% to 92%, recapitulated subtype-specific biological properties lost in the FFPE-derived data, and enhanced survival associations. Our studies provide a powerful framework for reliable transcriptomic profiling from FFPE-archived tumor samples that are widely available in the clinic.

bioinformatics↗

Efficient heterologous mRNA production in E. coli via protein-facilitated protection

Messenger RNA (mRNA)-based therapeutics have emerged as a new class of biological medicines, clearly exemplified by the global deployment of mRNA vaccines against the COVID-19 pandemic. Currently, therapeutic mRNA is primarily produced through in vitro transcription that suffers high production costs. Until now, intracellular manufacture of mRNA has been challenging due to the presence of ubiquitous RNases in vivo. Here, we have developed a new approach that protects eukaryotic mRNA from RNase degradation ensuring longevity and integrity of mRNA inside microbial cells. Through targeted strain and molecular engineering, our approach involves specially designed inserts in mRNA that facilitate formation of stabilized and protected protein-mRNA complexes. In addition to vastly improved stability, the protein-mRNA complexes enable convenient purification of mRNA from cell lysate with high purity using conventional chromatography. The work reported here promises a scalable, rapid, and low-cost approach to produce fully functional eukaryotic mRNA using well-known microbial systems.

bioengineering↗