Connection

Co-Authors

This is a "connection" page, showing publications co-authored by SUE CRAWFORD and KHALIL ETTAYEBI.
Connection Strength

1.432
  1. Insights into human norovirus cultivation in human intestinal enteroids. mSphere. 2024 11 21; 9(11):e0044824.
    View in: PubMed
    Score: 0.221
  2. Insights into Human Norovirus Cultivation in Human Intestinal Enteroids. bioRxiv. 2024 Sep 19.
    View in: PubMed
    Score: 0.220
  3. New Insights and Enhanced Human Norovirus Cultivation in Human Intestinal Enteroids. mSphere. 2021 01 27; 6(1).
    View in: PubMed
    Score: 0.171
  4. Replication of human noroviruses in stem cell-derived human enteroids. Science. 2016 09 23; 353(6306):1387-1393.
    View in: PubMed
    Score: 0.126
  5. Overcoming host restrictions to enable continuous passaging of GII.3 human norovirus in human intestinal enteroids. Sci Adv. 2026 Feb 06; 12(6):eaeb0455.
    View in: PubMed
    Score: 0.060
  6. Mutational analysis of human norovirus VP2 elucidates critical molecular interactions for virus assembly. J Virol. 2026 02 17; 100(2):e0142025.
    View in: PubMed
    Score: 0.060
  7. Functional diversity in GII.4 norovirus entry: HBGA binding and capsid clustering dynamics. Proc Natl Acad Sci U S A. 2025 Oct 07; 122(40):e2517493122.
    View in: PubMed
    Score: 0.059
  8. Mutational Analysis of Human Norovirus VP2 Elucidates Critical Molecular Interactions for Virus Assembly. bioRxiv. 2025 Aug 23.
    View in: PubMed
    Score: 0.059
  9. Functional Diversity in GII.4 Norovirus Entry: HBGA Binding and Capsid Clustering Dynamics. bioRxiv. 2025 May 21.
    View in: PubMed
    Score: 0.058
  10. Bile acid-sensitive human norovirus strains are susceptible to sphingosine-1-phosphate receptor 2 inhibition. J Virol. 2024 07 23; 98(7):e0202023.
    View in: PubMed
    Score: 0.054
  11. Bile acid-sensitive human norovirus strains are susceptible to sphingosine-1-phosphate receptor 2 inhibition. bioRxiv. 2024 Jan 03.
    View in: PubMed
    Score: 0.052
  12. CLIC and membrane wound repair pathways enable pandemic norovirus entry and infection. Nat Commun. 2023 02 28; 14(1):1148.
    View in: PubMed
    Score: 0.049
  13. Human norovirus exhibits strain-specific sensitivity to host interferon pathways in human intestinal enteroids. Proc Natl Acad Sci U S A. 2020 09 22; 117(38):23782-23793.
    View in: PubMed
    Score: 0.042
  14. Bile acids and ceramide overcome the entry restriction for GII.3 human norovirus replication in human intestinal enteroids. Proc Natl Acad Sci U S A. 2020 01 21; 117(3):1700-1710.
    View in: PubMed
    Score: 0.040
  15. Human Norovirus Cultivation in Nontransformed Stem Cell-Derived Human Intestinal Enteroid Cultures: Success and Challenges. Viruses. 2019 07 11; 11(7).
    View in: PubMed
    Score: 0.038
  16. Human Intestinal Enteroids: New Models to Study Gastrointestinal Virus Infections. Methods Mol Biol. 2019; 1576:229-247.
    View in: PubMed
    Score: 0.037
  17. Detection of human norovirus in intestinal biopsies from immunocompromised transplant patients. J Gen Virol. 2016 09; 97(9):2291-2300.
    View in: PubMed
    Score: 0.031
  18. Human Intestinal Enteroids: a New Model To Study Human Rotavirus Infection, Host Restriction, and Pathophysiology. J Virol. 2016 01 01; 90(1):43-56.
    View in: PubMed
    Score: 0.030
  19. Human enteroids as an ex-vivo model of host-pathogen interactions in the gastrointestinal tract. Exp Biol Med (Maywood). 2014 Sep; 239(9):1124-34.
    View in: PubMed
    Score: 0.027
Connection Strength

The connection strength for concepts is the sum of the scores for each matching publication.

Publication scores are based on many factors, including how long ago they were written and whether the person is a first or senior author.