Literature DB >> 24501410

Flow cytometry reveals that H5N1 vaccination elicits cross-reactive stem-directed antibodies from multiple Ig heavy-chain lineages.

James R R Whittle1, Adam K Wheatley, Lan Wu, Daniel Lingwood, Masaru Kanekiyo, Steven S Ma, Sandeep R Narpala, Hadi M Yassine, Gregory M Frank, Jonathan W Yewdell, Julie E Ledgerwood, Chih-Jen Wei, Adrian B McDermott, Barney S Graham, Richard A Koup, Gary J Nabel.   

Abstract

UNLABELLED: An understanding of the antigen-specific B-cell response to the influenza virus hemagglutinin (HA) is critical to the development of universal influenza vaccines, but it has not been possible to examine these cells directly because HA binds to sialic acid (SA) on most cell types. Here, we use structure-based modification of HA to isolate HA-specific B cells by flow cytometry and characterize the features of HA stem antibodies (Abs) required for their development. Incorporation of a previously described mutation (Y98F) to the receptor binding site (RBS) causes HA to bind only those B cells that express HA-specific Abs, but it does not bind nonspecifically to B cells, and this mutation has no effect on the binding of broadly neutralizing Abs to the RBS. To test the specificity of the Y98F mutation, we first demonstrated that previously described HA nanoparticles mediate hemagglutination and then determined that the Y98F mutation eliminates this activity. Cloning of immunoglobulin genes from HA-specific B cells isolated from a single human subject demonstrates that vaccination with H5N1 influenza virus can elicit B cells expressing stem monoclonal Abs (MAbs). Although these MAbs originated mostly from the IGHV1-69 germ line, a reasonable proportion derived from other genes. Analysis of stem Abs provides insight into the maturation pathways of IGVH1-69-derived stem Abs. Furthermore, this analysis shows that multiple non-IGHV1-69 stem Abs with a similar neutralizing breadth develop after vaccination in humans, suggesting that the HA stem response can be elicited in individuals with non-stem-reactive IGHV1-69 alleles. IMPORTANCE: Universal influenza vaccines would improve immune protection against infection and facilitate vaccine manufacturing and distribution. Flu vaccines stimulate B cells in the blood to produce antibodies that neutralize the virus. These antibodies target a protein on the surface of the virus called HA. Flu vaccines must be reformulated annually, because these antibodies are mostly specific to the viral strains used in the vaccine. But humans can produce broadly neutralizing antibodies. We sought to isolate B cells whose genes encode influenza virus antibodies from a patient vaccinated for avian influenza. To do so, we modified HA so it would bind only the desired cells. Sequencing the antibody genes of cells marked by this probe proved that the patient produced broadly neutralizing antibodies in response to the vaccine. Many sequences obtained had not been observed before. There are more ways to generate broadly neutralizing antibodies for influenza virus than previously thought.

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Year:  2014        PMID: 24501410      PMCID: PMC3993745          DOI: 10.1128/JVI.03422-13

Source DB:  PubMed          Journal:  J Virol        ISSN: 0022-538X            Impact factor:   5.103


  35 in total

1.  Structural basis of preexisting immunity to the 2009 H1N1 pandemic influenza virus.

Authors:  Rui Xu; Damian C Ekiert; Jens C Krause; Rong Hai; James E Crowe; Ian A Wilson
Journal:  Science       Date:  2010-03-25       Impact factor: 47.728

2.  Highly conserved protective epitopes on influenza B viruses.

Authors:  Cyrille Dreyfus; Nick S Laursen; Ted Kwaks; David Zuijdgeest; Reza Khayat; Damian C Ekiert; Jeong Hyun Lee; Zoltan Metlagel; Miriam V Bujny; Mandy Jongeneelen; Remko van der Vlugt; Mohammed Lamrani; Hans J W M Korse; Eric Geelen; Özcan Sahin; Martijn Sieuwerts; Just P J Brakenhoff; Ronald Vogels; Olive T W Li; Leo L M Poon; Malik Peiris; Wouter Koudstaal; Andrew B Ward; Ian A Wilson; Jaap Goudsmit; Robert H E Friesen
Journal:  Science       Date:  2012-08-09       Impact factor: 47.728

3.  IMGT/V-QUEST: IMGT standardized analysis of the immunoglobulin (IG) and T cell receptor (TR) nucleotide sequences.

Authors:  Véronique Giudicelli; Xavier Brochet; Marie-Paule Lefranc
Journal:  Cold Spring Harb Protoc       Date:  2011-06-01

4.  Heterosubtypic neutralizing antibodies are produced by individuals immunized with a seasonal influenza vaccine.

Authors:  Davide Corti; Amorsolo L Suguitan; Debora Pinna; Chiara Silacci; Blanca M Fernandez-Rodriguez; Fabrizia Vanzetta; Celia Santos; Catherine J Luke; Fernando J Torres-Velez; Nigel J Temperton; Robin A Weiss; Federica Sallusto; Kanta Subbarao; Antonio Lanzavecchia
Journal:  J Clin Invest       Date:  2010-04-12       Impact factor: 14.808

5.  Pandemic H1N1 influenza vaccine induces a recall response in humans that favors broadly cross-reactive memory B cells.

Authors:  Gui-Mei Li; Christopher Chiu; Jens Wrammert; Megan McCausland; Sarah F Andrews; Nai-Ying Zheng; Jane-Hwei Lee; Min Huang; Xinyan Qu; Srilatha Edupuganti; Mark Mulligan; Suman R Das; Jonathan W Yewdell; Aneesh K Mehta; Patrick C Wilson; Rafi Ahmed
Journal:  Proc Natl Acad Sci U S A       Date:  2012-05-21       Impact factor: 11.205

6.  A neutralizing antibody selected from plasma cells that binds to group 1 and group 2 influenza A hemagglutinins.

Authors:  Davide Corti; Jarrod Voss; Steven J Gamblin; Giosiana Codoni; Annalisa Macagno; David Jarrossay; Sebastien G Vachieri; Debora Pinna; Andrea Minola; Fabrizia Vanzetta; Chiara Silacci; Blanca M Fernandez-Rodriguez; Gloria Agatic; Siro Bianchi; Isabella Giacchetto-Sasselli; Lesley Calder; Federica Sallusto; Patrick Collins; Lesley F Haire; Nigel Temperton; Johannes P M Langedijk; John J Skehel; Antonio Lanzavecchia
Journal:  Science       Date:  2011-07-28       Impact factor: 47.728

Review 7.  Why do influenza virus subtypes die out? A hypothesis.

Authors:  Peter Palese; Taia T Wang
Journal:  MBio       Date:  2011-08-30       Impact factor: 7.867

8.  DNA priming and influenza vaccine immunogenicity: two phase 1 open label randomised clinical trials.

Authors:  Julie E Ledgerwood; Chih-Jen Wei; Zonghui Hu; Ingelise J Gordon; Mary E Enama; Cynthia S Hendel; Patrick M McTamney; Melissa B Pearce; Hadi M Yassine; Jeffrey C Boyington; Robert Bailer; Terrence M Tumpey; Richard A Koup; John R Mascola; Gary J Nabel; Barney S Graham
Journal:  Lancet Infect Dis       Date:  2011-10-03       Impact factor: 25.071

9.  Heterosubtypic neutralizing monoclonal antibodies cross-protective against H5N1 and H1N1 recovered from human IgM+ memory B cells.

Authors:  Mark Throsby; Edward van den Brink; Mandy Jongeneelen; Leo L M Poon; Philippe Alard; Lisette Cornelissen; Arjen Bakker; Freek Cox; Els van Deventer; Yi Guan; Jindrich Cinatl; Jan ter Meulen; Ignace Lasters; Rita Carsetti; Malik Peiris; John de Kruif; Jaap Goudsmit
Journal:  PLoS One       Date:  2008-12-16       Impact factor: 3.240

10.  IMGT/V-QUEST: the highly customized and integrated system for IG and TR standardized V-J and V-D-J sequence analysis.

Authors:  Xavier Brochet; Marie-Paule Lefranc; Véronique Giudicelli
Journal:  Nucleic Acids Res       Date:  2008-05-24       Impact factor: 16.971

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  107 in total

1.  A unique nanoparticulate TLR9 agonist enables a HA split vaccine to confer FcγR-mediated protection against heterologous lethal influenza virus infection.

Authors:  Takuya Yamamoto; Yuji Masuta; Masatoshi Momota; Masaru Kanekiyo; Tomohiro Kanuma; Shoukichi Takahama; Eiko Moriishi; Yasuhiro Yasutomi; Takashi Saito; Barney S Graham; Yoshimasa Takahashi; Ken J Ishii
Journal:  Int Immunol       Date:  2019-02-15       Impact factor: 4.823

Review 2.  Advances in the development of influenza virus vaccines.

Authors:  Florian Krammer; Peter Palese
Journal:  Nat Rev Drug Discov       Date:  2015-03       Impact factor: 84.694

3.  Outflanking immunodominance to target subdominant broadly neutralizing epitopes.

Authors:  Davide Angeletti; Ivan Kosik; Jefferson J S Santos; William T Yewdell; Carolyn M Boudreau; Vamsee V A Mallajosyula; Madeleine C Mankowski; Michael Chambers; Madhu Prabhakaran; Heather D Hickman; Adrian B McDermott; Galit Alter; Jayanta Chaudhuri; Jonathan W Yewdell
Journal:  Proc Natl Acad Sci U S A       Date:  2019-06-18       Impact factor: 11.205

4.  Heterologous viral protein interactions within licensed seasonal influenza virus vaccines.

Authors:  Marina Koroleva; Frances Batarse; Savannah Moritzky; Carole Henry; Francisco Chaves; Patrick Wilson; Florian Krammer; Katherine Richards; Andrea J Sant
Journal:  NPJ Vaccines       Date:  2020-01-10       Impact factor: 7.344

Review 5.  Is It Possible to Develop a "Universal" Influenza Virus Vaccine? Potential for a Universal Influenza Vaccine.

Authors:  James E Crowe
Journal:  Cold Spring Harb Perspect Biol       Date:  2018-07-02       Impact factor: 10.005

6.  Germline-Encoded Affinity for Cognate Antigen Enables Vaccine Amplification of a Human Broadly Neutralizing Response against Influenza Virus.

Authors:  Maya Sangesland; Larance Ronsard; Samuel W Kazer; Julia Bals; Seyhan Boyoglu-Barnum; Ashraf S Yousif; Ralston Barnes; Jared Feldman; Maricel Quirindongo-Crespo; Patrick M McTamney; Daniel Rohrer; Nils Lonberg; Bryce Chackerian; Barney S Graham; Masaru Kanekiyo; Alex K Shalek; Daniel Lingwood
Journal:  Immunity       Date:  2019-09-25       Impact factor: 31.745

7.  Immunization with Components of the Viral Fusion Apparatus Elicits Antibodies That Neutralize Epstein-Barr Virus in B Cells and Epithelial Cells.

Authors:  Wei Bu; M Gordon Joyce; Hanh Nguyen; Dalton V Banh; Fiona Aguilar; Zeshan Tariq; Moh Lan Yap; Yusuke Tsujimura; Rebecca A Gillespie; Yaroslav Tsybovsky; Sarah F Andrews; Sandeep R Narpala; Adrian B McDermott; Michael G Rossmann; Yasuhiro Yasutomi; Gary J Nabel; Masaru Kanekiyo; Jeffrey I Cohen
Journal:  Immunity       Date:  2019-04-09       Impact factor: 31.745

Review 8.  Strategies to guide the antibody affinity maturation process.

Authors:  Nicole A Doria-Rose; M Gordon Joyce
Journal:  Curr Opin Virol       Date:  2015-04-24       Impact factor: 7.090

9.  Vaccine-Induced Antibodies that Neutralize Group 1 and Group 2 Influenza A Viruses.

Authors:  M Gordon Joyce; Adam K Wheatley; Paul V Thomas; Gwo-Yu Chuang; Cinque Soto; Robert T Bailer; Aliaksandr Druz; Ivelin S Georgiev; Rebecca A Gillespie; Masaru Kanekiyo; Wing-Pui Kong; Kwanyee Leung; Sandeep N Narpala; Madhu S Prabhakaran; Eun Sung Yang; Baoshan Zhang; Yi Zhang; Mangaiarkarasi Asokan; Jeffrey C Boyington; Tatsiana Bylund; Sam Darko; Christopher R Lees; Amy Ransier; Chen-Hsiang Shen; Lingshu Wang; James R Whittle; Xueling Wu; Hadi M Yassine; Celia Santos; Yumiko Matsuoka; Yaroslav Tsybovsky; Ulrich Baxa; James C Mullikin; Kanta Subbarao; Daniel C Douek; Barney S Graham; Richard A Koup; Julie E Ledgerwood; Mario Roederer; Lawrence Shapiro; Peter D Kwong; John R Mascola; Adrian B McDermott
Journal:  Cell       Date:  2016-07-21       Impact factor: 41.582

10.  Structure-Based Design with Tag-Based Purification and In-Process Biotinylation Enable Streamlined Development of SARS-CoV-2 Spike Molecular Probes.

Authors:  Tongqing Zhou; I-Ting Teng; Adam S Olia; Gabriele Cerutti; Jason Gorman; Alexandra Nazzari; Wei Shi; Yaroslav Tsybovsky; Lingshu Wang; Shuishu Wang; Baoshan Zhang; Yi Zhang; Phinikoula S Katsamba; Yuliya Petrova; Bailey B Banach; Ahmed S Fahad; Lihong Liu; Sheila N Lopez Acevedo; Bharat Madan; Matheus Olivera de Souza; Xiaoli Pan; Pengfei Wang; Jacy R Wolfe; Michael Yin; David D Ho; Emily Phung; Anthony DiPiazza; Lauren Chang; Olubukula Abiona; Kizzmekia S Corbett; Brandon J DeKosky; Barney S Graham; John R Mascola; John Misasi; Tracy Ruckwardt; Nancy J Sullivan; Lawrence Shapiro; Peter D Kwong
Journal:  SSRN       Date:  2020-07-21
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