home.social

#rna — Public Fediverse posts

Live and recent posts from across the Fediverse tagged #rna, aggregated by home.social.

  1. Wastewater monitoring may predict influenza outbreaks one week earlier

    Seasonal influenza can spread rapidly, and timely information on rising cases is essential for public health decisions and…
    #NewsBeep #News #Health #AU #Australia #ClinicalTesting #epidemiology #flu #Healthcare #Hospital #influenza #publichealth #research #RNA #Technology #virus
    newsbeep.com/au/669966/

  2. Wastewater monitoring may predict influenza outbreaks one week earlier

    Seasonal influenza can spread rapidly, and timely information on rising cases is essential for public health decisions and…
    #NewsBeep #News #Health #AU #Australia #ClinicalTesting #epidemiology #flu #Healthcare #Hospital #influenza #publichealth #research #RNA #Technology #virus
    newsbeep.com/au/669966/

  3. Aptamere, kurze einzelsträngige #RNA- oder #DNA-Fragmente, lassen sich leicht so designen, dass sie mit hoher Affinität Proteine oder andere Moleküle binden. Bestückt man einen DNA-Nanoswitch mit zweien davon, erhält man einen formidablen Protein-Detektor ... 👉 laborjournal.de/editorials/349

  4. Aptamere, kurze einzelsträngige #RNA- oder #DNA-Fragmente, lassen sich leicht so designen, dass sie mit hoher Affinität Proteine oder andere Moleküle binden. Bestückt man einen DNA-Nanoswitch mit zweien davon, erhält man einen formidablen Protein-Detektor ... 👉 laborjournal.de/editorials/349

  5. Aptamere, kurze einzelsträngige #RNA- oder #DNA-Fragmente, lassen sich leicht so designen, dass sie mit hoher Affinität Proteine oder andere Moleküle binden. Bestückt man einen DNA-Nanoswitch mit zweien davon, erhält man einen formidablen Protein-Detektor ... 👉 laborjournal.de/editorials/349

  6. Aptamere, kurze einzelsträngige #RNA- oder #DNA-Fragmente, lassen sich leicht so designen, dass sie mit hoher Affinität Proteine oder andere Moleküle binden. Bestückt man einen DNA-Nanoswitch mit zweien davon, erhält man einen formidablen Protein-Detektor ... 👉 laborjournal.de/editorials/349

  7. Aptamere, kurze einzelsträngige #RNA- oder #DNA-Fragmente, lassen sich leicht so designen, dass sie mit hoher Affinität Proteine oder andere Moleküle binden. Bestückt man einen DNA-Nanoswitch mit zweien davon, erhält man einen formidablen Protein-Detektor ... 👉 laborjournal.de/editorials/349

  8. Pipeline release! nf-core/rnaseq v3.26.0 - nf-core/rnaseq v3.26.0 - Chromium Cuttlefish!
    RNA sequencing analysis pipeline using STAR, RSEM, HISAT2 or Salmon with gene/isoform counts and extensive quality control.
    Please see the changelog: github.com/nf-core/rnaseq/rele

    #rna #rnaseq #nfcore #openscience #nextflow #bioinformatics

  9. Pipeline release! nf-core/rnaseq v3.26.0 - nf-core/rnaseq v3.26.0 - Chromium Cuttlefish!
    RNA sequencing analysis pipeline using STAR, RSEM, HISAT2 or Salmon with gene/isoform counts and extensive quality control.
    Please see the changelog: github.com/nf-core/rnaseq/rele

    #rna #rnaseq #nfcore #openscience #nextflow #bioinformatics

  10. Pipeline release! nf-core/rnaseq v3.26.0 - nf-core/rnaseq v3.26.0 - Chromium Cuttlefish!
    RNA sequencing analysis pipeline using STAR, RSEM, HISAT2 or Salmon with gene/isoform counts and extensive quality control.
    Please see the changelog: github.com/nf-core/rnaseq/rele

    #rna #rnaseq #nfcore #openscience #nextflow #bioinformatics

  11. Pipeline release! nf-core/rnaseq v3.26.0 - nf-core/rnaseq v3.26.0 - Chromium Cuttlefish!
    RNA sequencing analysis pipeline using STAR, RSEM, HISAT2 or Salmon with gene/isoform counts and extensive quality control.
    Please see the changelog: github.com/nf-core/rnaseq/rele

    #rna #rnaseq #nfcore #openscience #nextflow #bioinformatics

  12. Pipeline release! nf-core/rnaseq v3.26.0 - nf-core/rnaseq v3.26.0 - Chromium Cuttlefish!
    RNA sequencing analysis pipeline using STAR, RSEM, HISAT2 or Salmon with gene/isoform counts and extensive quality control.
    Please see the changelog: github.com/nf-core/rnaseq/rele

    #rna #rnaseq #nfcore #openscience #nextflow #bioinformatics

  13. How #AI foundation models trained on #DNA could transform #plant #biology
    Instead of training models on text or images, researchers are now turning to DNA, #RNA, and other biological data, treating #genetic sequences as information systems that can be analyzed at scale.
    The challenge is no longer gathering genetic information, but understanding how different sequences interact and influence real-world outcomes.
    techradar.com/pro/every-living

  14. How #AI foundation models trained on #DNA could transform #plant #biology
    Instead of training models on text or images, researchers are now turning to DNA, #RNA, and other biological data, treating #genetic sequences as information systems that can be analyzed at scale.
    The challenge is no longer gathering genetic information, but understanding how different sequences interact and influence real-world outcomes.
    techradar.com/pro/every-living

  15. How foundation models trained on could transform
    Instead of training models on text or images, researchers are now turning to DNA, , and other biological data, treating sequences as information systems that can be analyzed at scale.
    The challenge is no longer gathering genetic information, but understanding how different sequences interact and influence real-world outcomes.
    techradar.com/pro/every-living

  16. How #AI foundation models trained on #DNA could transform #plant #biology
    Instead of training models on text or images, researchers are now turning to DNA, #RNA, and other biological data, treating #genetic sequences as information systems that can be analyzed at scale.
    The challenge is no longer gathering genetic information, but understanding how different sequences interact and influence real-world outcomes.
    techradar.com/pro/every-living

  17. How #AI foundation models trained on #DNA could transform #plant #biology
    Instead of training models on text or images, researchers are now turning to DNA, #RNA, and other biological data, treating #genetic sequences as information systems that can be analyzed at scale.
    The challenge is no longer gathering genetic information, but understanding how different sequences interact and influence real-world outcomes.
    techradar.com/pro/every-living

  18. How does pathogenic #influenza #H5N1 #virus transmit between #cattle on farms? @lakdawala_lab &co detect infectious H5N1 in air samples from milking parlors & #farm waste water, #viral #RNA in exhaled cow breath, & asymptomatic #seroconversion in cows @PLOSBiology plos.io/4wb1sTt

  19. How does pathogenic #influenza #H5N1 #virus transmit between #cattle on farms? @lakdawala_lab &co detect infectious H5N1 in air samples from milking parlors & #farm waste water, #viral #RNA in exhaled cow breath, & asymptomatic #seroconversion in cows @PLOSBiology plos.io/4wb1sTt

  20. How does pathogenic #influenza #H5N1 #virus transmit between #cattle on farms? @lakdawala_lab &co detect infectious H5N1 in air samples from milking parlors & #farm waste water, #viral #RNA in exhaled cow breath, & asymptomatic #seroconversion in cows @PLOSBiology plos.io/4wb1sTt

  21. How does pathogenic #influenza #H5N1 #virus transmit between #cattle on farms? @lakdawala_lab &co detect infectious H5N1 in air samples from milking parlors & #farm waste water, #viral #RNA in exhaled cow breath, & asymptomatic #seroconversion in cows @PLOSBiology plos.io/4wb1sTt

  22. How does pathogenic #influenza #H5N1 #virus transmit between #cattle on farms? @lakdawala_lab &co detect infectious H5N1 in air samples from milking parlors & #farm waste water, #viral #RNA in exhaled cow breath, & asymptomatic #seroconversion in cows @PLOSBiology plos.io/4wb1sTt

  23. 🧬 Could a single metric decode how genes are regulated across cells?

    🔗 Regulation Ratio: A Singular Multi-Omic Measurement of Gene Regulatory Mechanisms. Computational and Structural Biotechnology Journal (CSBJ). DOI: doi.org/10.34133/csbj.0044

    📚 CSBJ - A Science Partner Journal: spj.science.org/journal/csbj

    #GeneRegulation #Genomics #MultiOmics #SystemsBiology #Bioinformatics #ComputationalBiology #MolecularBiology #RNA #GeneExpression #Epigenetics #Transcriptomics

  24. 🧬 Could a single metric decode how genes are regulated across cells?

    🔗 Regulation Ratio: A Singular Multi-Omic Measurement of Gene Regulatory Mechanisms. Computational and Structural Biotechnology Journal (CSBJ). DOI: doi.org/10.34133/csbj.0044

    📚 CSBJ - A Science Partner Journal: spj.science.org/journal/csbj

    #GeneRegulation #Genomics #MultiOmics #SystemsBiology #Bioinformatics #ComputationalBiology #MolecularBiology #RNA #GeneExpression #Epigenetics #Transcriptomics

  25. 🧬 Could a single metric decode how genes are regulated across cells?

    🔗 Regulation Ratio: A Singular Multi-Omic Measurement of Gene Regulatory Mechanisms. Computational and Structural Biotechnology Journal (CSBJ). DOI: doi.org/10.34133/csbj.0044

    📚 CSBJ - A Science Partner Journal: spj.science.org/journal/csbj

    #GeneRegulation #Genomics #MultiOmics #SystemsBiology #Bioinformatics #ComputationalBiology #MolecularBiology #RNA #GeneExpression #Epigenetics #Transcriptomics

  26. 🧬 Could a single metric decode how genes are regulated across cells?

    🔗 Regulation Ratio: A Singular Multi-Omic Measurement of Gene Regulatory Mechanisms. Computational and Structural Biotechnology Journal (CSBJ). DOI: doi.org/10.34133/csbj.0044

    📚 CSBJ - A Science Partner Journal: spj.science.org/journal/csbj

    #GeneRegulation #Genomics #MultiOmics #SystemsBiology #Bioinformatics #ComputationalBiology #MolecularBiology #RNA #GeneExpression #Epigenetics #Transcriptomics