World's Best Scientists 2026 revealed!

D-Index & Metrics

Microbiology

D-Index
80
Citations
25298
World Ranking
1152
National Ranking
522

Thomas J. Hope publication distribution in Microbiology in 2026

The chart shows the distribution of publications by all Research.com ranked scientists in the field of Microbiology in 2026. The highlighted bar marks where Thomas J. Hope sits on this spectrum.

55–64 publications: 8 scientists 65–74 publications: 29 scientists 75–84 publications: 55 scientists 85–94 publications: 112 scientists 95–104 publications: 137 scientists 105–114 publications: 190 scientists 115–124 publications: 235 scientists 125–134 publications: 234 scientists 135–144 publications: 288 scientists 145–154 publications: 265 scientists 155–164 publications: 264 scientists 165–174 publications: 253 scientists 175–184 publications: 276 scientists 185–194 publications: 190 scientists 195–204 publications: 234 scientists 205–214 publications: 208 scientists 215–224 publications: 198 scientists 225–234 publications: 155 scientists 235–244 publications: 161 scientists 245–254 publications: 160 scientists 255–264 publications: 146 scientists 265–274 publications: 139 scientists 275–284 publications: 148 scientists 285–294 publications: 115 scientists 295–304 publications: 96 scientists 305–314 publications: 88 scientists 315–324 publications: 106 scientists 325–334 publications: 65 scientists 335–344 publications: 76 scientists 345–354 publications: 64 scientists 355–364 publications: 62 scientists 365–374 publications: 65 scientists 375–384 publications: 61 scientists 385–394 publications: 34 scientists 395–404 publications: 44 scientists 405–414 publications: 36 scientists 415–424 publications: 35 scientists 425–434 publications: 29 scientists 435–444 publications: 33 scientists 445–454 publications: 34 scientists 455–464 publications: 25 scientists 465–474 publications: 26 scientists 475–484 publications: 20 scientists 485–494 publications: 19 scientists 495–504 publications: 16 scientists 505–514 publications: 17 scientists 515–524 publications: 23 scientists 525–534 publications: 14 scientists 535–544 publications: 14 scientists 545–554 publications: 18 scientists 555–564 publications: 12 scientists 565–574 publications: 7 scientists 575–584 publications: 9 scientists 585–594 publications: 9 scientists 595–604 publications: 9 scientists 605–614 publications: 7 scientists 615–624 publications: 9 scientists 625–634 publications: 7 scientists 635–644 publications: 4 scientists 645–654 publications: 5 scientists 655–664 publications: 6 scientists 665–674 publications: 7 scientists 675–678 publications: 3 scientists 679+ publications: 99 scientists
55 publications 679+

This scientist: 272 publications — 71st percentile

71% of scientists in this discipline score the same or lower.

The last bar groups every scientist with 679 publications or more.

Thomas J. Hope D-index placement in Microbiology in 2026

The chart shows the D-index (discipline H-index) distribution of Microbiology scientists ranked by Research.com in 2026. The highlighted bar marks where Thomas J. Hope sits on this spectrum.

40 D-Index: 30 scientists 41 D-Index: 86 scientists 42 D-Index: 90 scientists 43 D-Index: 117 scientists 44 D-Index: 122 scientists 45 D-Index: 123 scientists 46 D-Index: 108 scientists 47 D-Index: 110 scientists 48 D-Index: 106 scientists 49 D-Index: 109 scientists 50 D-Index: 129 scientists 51 D-Index: 111 scientists 52 D-Index: 116 scientists 53 D-Index: 127 scientists 54 D-Index: 134 scientists 55 D-Index: 134 scientists 56 D-Index: 112 scientists 57 D-Index: 136 scientists 58 D-Index: 162 scientists 59 D-Index: 151 scientists 60 D-Index: 139 scientists 61 D-Index: 123 scientists 62 D-Index: 126 scientists 63 D-Index: 144 scientists 64 D-Index: 109 scientists 65 D-Index: 103 scientists 66 D-Index: 124 scientists 67 D-Index: 112 scientists 68 D-Index: 103 scientists 69 D-Index: 131 scientists 70 D-Index: 94 scientists 71 D-Index: 93 scientists 72 D-Index: 96 scientists 73 D-Index: 92 scientists 74 D-Index: 80 scientists 75 D-Index: 66 scientists 76 D-Index: 87 scientists 77 D-Index: 60 scientists 78 D-Index: 73 scientists 79 D-Index: 59 scientists 80 D-Index: 57 scientists 81 D-Index: 55 scientists 82 D-Index: 47 scientists 83 D-Index: 77 scientists 84 D-Index: 50 scientists 85 D-Index: 45 scientists 86 D-Index: 42 scientists 87 D-Index: 41 scientists 88 D-Index: 32 scientists 89 D-Index: 38 scientists 90 D-Index: 35 scientists 91 D-Index: 34 scientists 92 D-Index: 27 scientists 93 D-Index: 26 scientists 94 D-Index: 33 scientists 95 D-Index: 22 scientists 96 D-Index: 37 scientists 97 D-Index: 22 scientists 98 D-Index: 21 scientists 99 D-Index: 22 scientists 100 D-Index: 30 scientists 101 D-Index: 16 scientists 102 D-Index: 20 scientists 103 D-Index: 17 scientists 104 D-Index: 19 scientists 105 D-Index: 16 scientists 106 D-Index: 19 scientists 107 D-Index: 18 scientists 108 D-Index: 14 scientists 109 D-Index: 10 scientists 110 D-Index: 9 scientists 111 D-Index: 7 scientists 112 D-Index: 11 scientists 113 D-Index: 6 scientists 114 D-Index: 15 scientists 115 D-Index: 10 scientists 116 D-Index: 12 scientists 117 D-Index: 7 scientists 118 D-Index: 10 scientists 119 D-Index: 10 scientists 120 D-Index: 11 scientists 121 D-Index: 2 scientists 122 D-Index: 7 scientists 123 D-Index: 12 scientists 124 D-Index: 5 scientists 125 D-Index: 9 scientists 126 D-Index: 6 scientists 127+ D-Index: 95 scientists
40 D-Index 127+

This scientist: 80 D-Index — 80th percentile

80% of scientists in this discipline score the same or lower.

The last bar groups every scientist with 127 D-Index or more.

Overview

Thomas J. Hope is affiliated with Northwestern University in the United States. Their research spans primarily the fields of Medicine and Immunology and Microbiology, with a significant focus on Infectious Diseases, Virology, Epidemiology, Immunology, and Molecular Biology. The scientist's work predominantly addresses topics related to HIV research and treatment, cytomegalovirus and herpesvirus research, and SARS-CoV-2 and COVID-19 research.

Hope's recent notable papers include:

  • Functional landscape of SARS-CoV-2 cellular restriction, 2021, Molecular Cell
  • Circulating ACE2-expressing extracellular vesicles block broad strains of SARS-CoV-2, 2022, Nature Communications
  • Recommendations for measuring HIV reservoir size in cure-directed clinical trials, 2020, Nature Medicine
  • Recognition of HIV-1 capsid by PQBP1 licenses an innate immune sensing of nascent HIV-1 DNA, 2022, Molecular Cell
  • Design and Testing of a Cabotegravir Implant for HIV Prevention, 2020, Journal of Controlled Release

Frequent frequent coauthors of Thomas J. Hope include Michael D. McRaven, François Villinger, Yanique Thomas, Mariluz Araínga, and Ramon Lorenzo-Redondo, reflecting active collaboration within their areas of study.

The scientist's work has been published extensively in several key venues, most frequently in:

  • bioRxiv (Cold Spring Harbor Laboratory)
  • AIDS Research and Human Retroviruses
  • Nature Communications
  • Frontiers in Immunology
  • Journal of Virology

Key research topics covered in their publications include:

  • HIV Research and Treatment
  • Cytomegalovirus and herpesvirus research
  • HIV/AIDS Research and Interventions
  • SARS-CoV-2 and COVID-19 Research
  • COVID-19 Clinical Research Studies
  • HIV/AIDS drug development and treatment
  • Immune Cell Function and Interaction

Thomas J. Hope's contributions encompass both foundational studies in viral immunology and applied research focused on developing interventions for viral infections, particularly within the context of HIV and SARS-CoV-2. Their work includes examining viral-host interactions, immune sensing mechanisms, and therapeutic delivery systems.

Best Publications

  • Woodchuck Hepatitis Virus Posttranscriptional Regulatory Element Enhances Expression of Transgenes Delivered by Retroviral Vectors

    Romain Zufferey;John E. Donello;Didier Trono;Thomas J. Hope

  • Visualization of the intracellular behavior of HIV in living cells

    David McDonald;Marie A. Vodicka;Ginger Lucero;Tatyana M. Svitkina

  • A leucine-rich nuclear export signal in the p53 tetramerization domain: regulation of subcellular localization and p53 activity by NES masking.

    Jayne M. Stommel;Natalie D. Marchenko;Gretchen S. Jimenez;Ute M. Moll

  • Recruitment of HIV and its receptors to dendritic cell-T cell junctions.

    David McDonald;Li Wu;Stacy M. Bohks;Vineet N. KewalRamani

  • HIV-1 infection of nondividing cells through the recognition of integrase by the importin/karyopherin pathway.

    Philippe Gallay;Thomas Hope;Daniel Chin;Didier Trono

  • Exposure to HIV-1 directly impairs mucosal epithelial barrier integrity allowing microbial translocation.

    Aisha Nazli;Olivia Chan;Wendy N. Dobson-Belaire;Michel Ouellet

  • Human severe combined immunodeficiency due to a defect in ZAP-70, a T cell tyrosine kinase

    Melissa E. Elder;Dong Lin;Jared Clever;Andrew C. Chan

  • ES cells do not activate p53-dependent stress responses and undergo p53-independent apoptosis in response to DNA damage

    Mirit I. Aladjem;Benjamin T. Spike;Luo Wei Rodewald;Thomas J. Hope

  • HIV-1 capsid: the multifaceted key player in HIV-1 infection

    Edward M. Campbell;Thomas J. Hope

  • Polyreactivity increases the apparent affinity of anti-HIV antibodies by heteroligation

    Hugo Mouquet;Johannes F. Scheid;Johannes F. Scheid;Markus J. Zoller;Michelle Krogsgaard

  • Woodchuck Hepatitis Virus Contains a Tripartite Posttranscriptional Regulatory Element

    John E. Donello;Jonathan E. Loeb;Thomas J. Hope

  • A microfluidic culture model of the human reproductive tract and 28-day menstrual cycle

    Shuo Xiao;Jonathan R. Coppeta;Hunter B. Rogers;Brett C. Isenberg

  • Actin is part of pre-initiation complexes and is necessary for transcription by RNA polymerase II

    Wilma A. Hofmann;Ljuba Stojiljkovic;Beata Fuchsova;Gabriela M. Vargas

  • PRC1: A Human Mitotic Spindle–Associated CDK Substrate Protein Required for Cytokinesis

    Wei Jiang;Gretchen Jimenez;Nicholas J Wells;Thomas J Hope

  • Nuclear-cytoplasmic shuttling of C-ABL tyrosine kinase

    Salme Taagepera;David McDonald;Jonathan E. Loeb;Laura L. Whitaker

  • An N-terminal nuclear export signal is required for the nucleocytoplasmic shuttling of IκBα

    Connie Johnson;Daniel Van Antwerp;Daniel Van Antwerp;Thomas J. Hope

  • Proteasome inhibitors uncouple rhesus TRIM5α restriction of HIV-1 reverse transcription and infection

    Xiaolu Wu;Jenny L. Anderson;Edward M. Campbell;Ajith M. Joseph

  • Complementary assays reveal a relationship between HIV-1 uncoating and reverse transcription.

    Amy E. Hulme;Omar Perez;Thomas J. Hope

  • Oligomerization and RNA binding domains of the type 1 human immunodeficiency virus Rev protein: a dual function for an arginine-rich binding motif

    Maria L. Zapp;Thomas J. Hope;Tristram G. Parslow;Michael R. Green

  • Enhanced expression of transgenes from adeno-associated virus vectors with the woodchuck hepatitis virus posttranscriptional regulatory element: implications for gene therapy.

    Jonathan E. Loeb;Wendy S. Cordier;Matthew E. Harris;Matthew D. Weitzman

Frequent Co-Authors

Ronald S. Veazey
Ronald S. Veazey Tulane University
Tristram G. Parslow
Tristram G. Parslow Emory University
Didier Trono
Didier Trono École Polytechnique Fédérale de Lausanne
Anna-Lise Williamson
Anna-Lise Williamson University of Cape Town
Grant J. Jensen
Grant J. Jensen California Institute of Technology
Glenda Gray
Glenda Gray South African Medical Research Council
Georgia D. Tomaras
Georgia D. Tomaras Duke University
Richard T. D'Aquila
Richard T. D'Aquila Northwestern University
Francesca Chiodi
Francesca Chiodi Karolinska Institute
Linda-Gail Bekker
Linda-Gail Bekker University of Cape Town

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