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Dive into the research topics where Z. F. Zhang is active.

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Featured researches published by Z. F. Zhang.


Nature | 2013

Co-evolution of a broadly neutralizing HIV-1 antibody and founder virus

Hua-Xin Liao; Rebecca M. Lynch; Tongqing Zhou; Feng Gao; S. Munir Alam; Scott D. Boyd; Andrew Fire; Krishna M. Roskin; Chaim A. Schramm; Z. F. Zhang; Jiang Zhu; Lawrence Shapiro; Nisc Comparative Sequencing Program; James C. Mullikin; S. Gnanakaran; Peter Hraber; Kevin Wiehe; Garnett Kelsoe; Guang Yang; Shi-Mao Xia; David C. Montefiori; Robert Parks; Krissey E. Lloyd; Richard M. Scearce; Kelly A. Soderberg; Myron S. Cohen; Gift Kamanga; Mark K. Louder; Lillian Tran; Yue Chen

Current human immunodeficiency virus-1 (HIV-1) vaccines elicit strain-specific neutralizing antibodies. However, cross-reactive neutralizing antibodies arise in approximately 20% of HIV-1-infected individuals, and details of their generation could provide a blueprint for effective vaccination. Here we report the isolation, evolution and structure of a broadly neutralizing antibody from an African donor followed from the time of infection. The mature antibody, CH103, neutralized approximately 55% of HIV-1 isolates, and its co-crystal structure with the HIV-1 envelope protein gp120 revealed a new loop-based mechanism of CD4-binding-site recognition. Virus and antibody gene sequencing revealed concomitant virus evolution and antibody maturation. Notably, the unmutated common ancestor of the CH103 lineage avidly bound the transmitted/founder HIV-1 envelope glycoprotein, and evolution of antibody neutralization breadth was preceded by extensive viral diversification in and near the CH103 epitope. These data determine the viral and antibody evolution leading to induction of a lineage of HIV-1 broadly neutralizing antibodies, and provide insights into strategies to elicit similar antibodies by vaccination.


Nature | 2014

Developmental pathway for potent V1V2-directed HIV-neutralizing antibodies

Nicole A. Doria-Rose; Chaim A. Schramm; Jason Gorman; Penny L. Moore; Jinal N. Bhiman; Brandon J. DeKosky; Michael J. Ernandes; Ivelin S. Georgiev; Helen J. Kim; Marie Pancera; Ryan P. Staupe; Han R. Altae-Tran; Robert T. Bailer; Ema T. Crooks; Albert Cupo; Aliaksandr Druz; Nigel Garrett; Kam Hon Hoi; Rui Kong; Mark K. Louder; Nancy S. Longo; Krisha McKee; Molati Nonyane; Sijy O’Dell; Ryan S. Roark; Rebecca S. Rudicell; Stephen D. Schmidt; Daniel J. Sheward; Cinque Soto; Constantinos Kurt Wibmer

Antibodies capable of neutralizing HIV-1 often target variable regions 1 and 2 (V1V2) of the HIV-1 envelope, but the mechanism of their elicitation has been unclear. Here we define the developmental pathway by which such antibodies are generated and acquire the requisite molecular characteristics for neutralization. Twelve somatically related neutralizing antibodies (CAP256-VRC26.01–12) were isolated from donor CAP256 (from the Centre for the AIDS Programme of Research in South Africa (CAPRISA)); each antibody contained the protruding tyrosine-sulphated, anionic antigen-binding loop (complementarity-determining region (CDR) H3) characteristic of this category of antibodies. Their unmutated ancestor emerged between weeks 30–38 post-infection with a 35-residue CDR H3, and neutralized the virus that superinfected this individual 15 weeks after initial infection. Improved neutralization breadth and potency occurred by week 59 with modest affinity maturation, and was preceded by extensive diversification of the virus population. HIV-1 V1V2-directed neutralizing antibodies can thus develop relatively rapidly through initial selection of B cells with a long CDR H3, and limited subsequent somatic hypermutation. These data provide important insights relevant to HIV-1 vaccine development.


Immunity | 2013

Multidonor Analysis Reveals Structural Elements, Genetic Determinants, and Maturation Pathway for HIV-1 Neutralization by VRC01-Class Antibodies.

Tongqing Zhou; Jiang Zhu; Xueling Wu; Stephanie Moquin; Baoshan Zhang; Priyamvada Acharya; Ivelin S. Georgiev; Han R. Altae-Tran; Gwo-Yu Chuang; M. Gordon Joyce; Young Do Kwon; Nancy S. Longo; Mark K. Louder; Timothy S. Luongo; Krisha McKee; Chaim A. Schramm; Jeff Skinner; Yongping Yang; Zhongjia Yang; Z. F. Zhang; Anqi Zheng; Mattia Bonsignori; Barton F. Haynes; Johannes F. Scheid; Michel C. Nussenzweig; Melissa Simek; Dennis R. Burton; Wayne C. Koff; James C. Mullikin; Mark Connors

Antibodies of the VRC01 class neutralize HIV-1, arise in diverse HIV-1-infected donors, and are potential templates for an effective HIV-1 vaccine. However, the stochastic processes that generate repertoires in each individual of >10(12) antibodies make elicitation of specific antibodies uncertain. Here we determine the ontogeny of the VRC01 class by crystallography and next-generation sequencing. Despite antibody-sequence differences exceeding 50%, antibody-gp120 cocrystal structures reveal VRC01-class recognition to be remarkably similar. B cell transcripts indicate that VRC01-class antibodies require few specific genetic elements, suggesting that naive-B cells with VRC01-class features are generated regularly by recombination. Virtually all of these fail to mature, however, with only a few-likely one-ancestor B cell expanding to form a VRC01-class lineage in each donor. Developmental similarities in multiple donors thus reveal the generation of VRC01-class antibodies to be reproducible in principle, thereby providing a framework for attempts to elicit similar antibodies in the general population.


Cell | 2015

Maturation and Diversity of the VRC01-Antibody Lineage over 15 Years of Chronic HIV-1 Infection

Xueling Wu; Z. F. Zhang; Chaim A. Schramm; M. Gordon Joyce; Young Do Kwon; Tongqing Zhou; Zizhang Sheng; Baoshan Zhang; Sijy O’Dell; Krisha McKee; Ivelin S. Georgiev; Gwo-Yu Chuang; Nancy S. Longo; Rebecca M. Lynch; Kevin O. Saunders; Cinque Soto; Sanjay Srivatsan; Yongping Yang; Robert T. Bailer; Mark K. Louder; Betty Benjamin; Robert W. Blakesley; Gerry Bouffard; Shelise Brooks; Holly Coleman; Mila Dekhtyar; Michael Gregory; Xiaobin Guan; Jyoti Gupta; Joel Han

HIV-1-neutralizing antibodies develop in most HIV-1-infected individuals, although highly effective antibodies are generally observed only after years of chronic infection. Here, we characterize the rate of maturation and extent of diversity for the lineage that produced the broadly neutralizing antibody VRC01 through longitudinal sampling of peripheral B cell transcripts over 15 years and co-crystal structures of lineage members. Next-generation sequencing identified VRC01-lineage transcripts, which encompassed diverse antibodies organized into distinct phylogenetic clades. Prevalent clades maintained characteristic features of antigen recognition, though each evolved binding loops and disulfides that formed distinct recognition surfaces. Over the course of the study period, VRC01-lineage clades showed continuous evolution, with rates of ∼2 substitutions per 100 nucleotides per year, comparable to that of HIV-1 evolution. This high rate of antibody evolution provides a mechanism by which antibody lineages can achieve extraordinary diversity and, over years of chronic infection, develop effective HIV-1 neutralization.


Proceedings of the National Academy of Sciences of the United States of America | 2013

Mining the antibodyome for HIV-1–neutralizing antibodies with next-generation sequencing and phylogenetic pairing of heavy/light chains

Jiang Zhu; Gilad Ofek; Yongping Yang; Baoshan Zhang; Mark K. Louder; Gabriel Lu; Krisha McKee; Marie Pancera; Jeff Skinner; Z. F. Zhang; Robert Parks; Joshua Eudailey; Krissey E. Lloyd; Julie Blinn; S. Munir Alam; Barton F. Haynes; Melissa Simek; Dennis R. Burton; Wayne C. Koff; Nisc Comparative Sequencing Program; James C. Mullikin; John R. Mascola; Lawrence Shapiro; Peter D. Kwong; Jesse Becker; Betty Benjamin; Robert W. Blakesley; Gerry Bouffard; Shelise Brooks; Holly Coleman

Next-generation sequencing of antibody transcripts from HIV-1–infected individuals with broadly neutralizing antibodies could provide an efficient means for identifying somatic variants and characterizing their lineages. Here, we used 454 pyrosequencing and identity/divergence grid sampling to analyze heavy- and light-chain sequences from donor N152, the source of the broadly neutralizing antibody 10E8. We identified variants with up to 28% difference in amino acid sequence. Heavy- and light-chain phylogenetic trees of identified 10E8 variants displayed similar architectures, and 10E8 variants reconstituted from matched and unmatched phylogenetic branches displayed significantly lower autoreactivity when matched. To test the generality of phylogenetic pairing, we analyzed donor International AIDS Vaccine Initiative 84, the source of antibodies PGT141–145. Heavy- and light-chain phylogenetic trees of PGT141–145 somatic variants also displayed remarkably similar architectures; in this case, branch pairings could be anchored by known PGT141–145 antibodies. Altogether, our findings suggest that phylogenetic matching of heavy and light chains can provide a means to approximate natural pairings.


Frontiers in Microbiology | 2012

Somatic populations of PGT135-137 HIV-1-neutralizing antibodies identified by 454 pyrosequencing and bioinformatics

Jiang Zhu; Sijy O’Dell; Gilad Ofek; Marie Pancera; Xueling Wu; Baoshan Zhang; Z. F. Zhang; Nisc Comparative Sequencing Program; James C. Mullikin; Melissa Simek; Dennis R. Burton; Wayne C. Koff; Lawrence Shapiro; John R. Mascola; Peter D. Kwong

Select HIV-1-infected individuals develop sera capable of neutralizing diverse viral strains. The molecular basis of this neutralization is currently being deciphered by the isolation of HIV-1-neutralizing antibodies. In one infected donor, three neutralizing antibodies, PGT135–137, were identified by assessment of neutralization from individually sorted B cells and found to recognize an epitope containing an N-linked glycan at residue 332 on HIV-1 gp120. Here we use next-generation sequencing and bioinformatics methods to interrogate the B cell record of this donor to gain a more complete understanding of the humoral immune response. PGT135–137-gene family specific primers were used to amplify heavy-chain and light-chain variable-domain sequences. Pyrosequencing produced 141,298 heavy-chain sequences of IGHV4-39 origin and 87,229 light-chain sequences of IGKV3-15 origin. A number of heavy and light-chain sequences of ∼90% identity to PGT137, several to PGT136, and none of high identity to PGT135 were identified. After expansion of these sequences to include close phylogenetic relatives, a total of 202 heavy-chain sequences and 72 light-chain sequences were identified. These sequences were clustered into populations of 95% identity comprising 15 for heavy chain and 10 for light chain, and a select sequence from each population was synthesized and reconstituted with a PGT137-partner chain. Reconstituted antibodies showed varied neutralization phenotypes for HIV-1 clade A and D isolates. Sequence diversity of the antibody population represented by these tested sequences was notably higher than observed with a 454 pyrosequencing-control analysis on 10 antibodies of defined sequence, suggesting that this diversity results primarily from somatic maturation. Our results thus provide an example of how pathogens like HIV-1 are opposed by a varied humoral immune response, derived from intrinsic mechanisms of antibody development, and embodied by somatic populations of diverse antibodies.


Nature Communications | 2015

Analysis of immunoglobulin transcripts and hypermutation following SHIV(AD8) infection and protein-plus-adjuvant immunization.

Joseph R. Francica; Zizhang Sheng; Z. F. Zhang; Yoshiaki Nishimura; Masashi Shingai; Akshaya Ramesh; Brandon F. Keele; Stephen D. Schmidt; Barbara J. Flynn; Sam Darko; Rebecca M. Lynch; Takuya Yamamoto; Rodrigo Matus-Nicodemos; David Wolinsky; Nisc Comparative Sequencing Program; Betty Barnabas; Robert W. Blakesley; Gerry Bouffard; Shelise Brooks; Holly Coleman; Mila Dekhtyar; Michael Gregory; Xiaobin Guan; Jyoti Gupta; Joel Han; Shi-ling Ho; Richelle Legaspi; Quino Maduro; Cathy Masiello; Baishali Maskeri

Developing predictive animal models to assess how candidate vaccines and infection influence the ontogenies of Envelope (Env)-specific antibodies is critical for the development of an HIV vaccine. Here we use two nonhuman primate models to compare the roles of antigen persistence, diversity and innate immunity. We perform longitudinal analyses of HIV Env-specific B-cell receptor responses to SHIVAD8 infection and Env protein vaccination with eight different adjuvants. A subset of the SHIVAD8-infected animals with higher viral loads and greater Env diversity show increased neutralization associated with increasing somatic hypermutation (SHM) levels over time. The use of adjuvants results in increased ELISA titres but does not affect the mean SHM levels or CDR H3 lengths. Our study shows how the ontogeny of Env-specific B cells can be tracked, and provides insights into the requirements for developing neutralizing antibodies that should facilitate translation to human vaccine studies.


Journal of Immunology | 2014

Single-Cell and Deep Sequencing of IgG-Switched Macaque B Cells Reveal a Diverse Ig Repertoire following Immunization

Christopher Sundling; Z. F. Zhang; Ganesh E. Phad; Zizhang Sheng; Yimeng Wang; John R. Mascola; Yuxing Li; Richard T. Wyatt; Lawrence Shapiro; Gunilla B. Karlsson Hedestam

The nonhuman primate model is important for preclinical evaluation of prophylactic and therapeutic intervention strategies. The recent description of the rhesus macaque germline Ig loci and establishment of a database of germline gene segments offer improved opportunities to delineate Ig gene usage in the overall B cell repertoire as well as in response to vaccination. We applied 454-pyrosequencing and single-cell RT-PCR of bulk and sorted memory B cells, respectively, to investigate IGHV gene segment expression in rhesus macaques. The two methods gave remarkably concordant results and identified groups of gene segments that are frequently or rarely used. We further examined the VH repertoire of Ag-specific memory B cells induced by immunization with recombinant HIV-1 envelope glycoproteins, an important vaccine component. We demonstrate that HIV-1 envelope glycoprotein immunization activates a highly polyclonal response composed of most of the expressed VH gene segments, illustrating the considerable genetic diversity of responding B cells following vaccination.


Frontiers in Immunology | 2016

SONAR: A High-Throughput Pipeline for Inferring Antibody Ontogenies from Longitudinal Sequencing of B Cell Transcripts.

Chaim A. Schramm; Zizhang Sheng; Z. F. Zhang; John R. Mascola; Peter D. Kwong; Lawrence Shapiro

The rapid advance of massively parallel or next-generation sequencing technologies has made possible the characterization of B cell receptor repertoires in ever greater detail, and these developments have triggered a proliferation of software tools for processing and annotating these data. Of especial interest, however, is the capability to track the development of specific antibody lineages across time, which remains beyond the scope of most current programs. We have previously reported on the use of techniques such as inter- and intradonor analysis and CDR3 tracing to identify transcripts related to an antibody of interest. Here, we present Software for the Ontogenic aNalysis of Antibody Repertoires (SONAR), capable of automating both general repertoire analysis and specialized techniques for investigating specific lineages. SONAR annotates next-generation sequencing data, identifies transcripts in a lineage of interest, and tracks lineage development across multiple time points. SONAR also generates figures, such as identity–divergence plots and longitudinal phylogenetic “birthday” trees, and provides interfaces to other programs such as DNAML and BEAST. SONAR can be downloaded as a ready-to-run Docker image or manually installed on a local machine. In the latter case, it can also be configured to take advantage of a high-performance computing cluster for the most computationally intensive steps, if available. In summary, this software provides a useful new tool for the processing of large next-generation sequencing datasets and the ontogenic analysis of neutralizing antibody lineages. SONAR can be found at https://github.com/scharch/SONAR, and the Docker image can be obtained from https://hub.docker.com/r/scharch/sonar/.


Archive | 2010

Evaluation of Soil Flushing for Application to the Deep Vadose Zone in the Hanford Central Plateau

Michael J. Truex; Martinus Oostrom; Z. F. Zhang; Kenneth C. Carroll; Janet A. Schramke; Thomas W. Wietsma; Guzel D. Tartakovsky; Kathryn A. Gordon

Soil flushing was included in the Deep Vadose Zone Treatability Test Plan for the Hanford Central Plateau as a technology with the potential to remove contaminants from the vadose zone. Soil flushing operates through the addition of water, and if necessary an appropriate mobilizing agent, to mobilize contaminants and flush them from the vadose zone and into the groundwater where they are subsequently captured by a pump-and-treat system. There are uncertainties associated with applying soil flushing technology to contaminants in the deep vadose zone at the Hanford Central Plateau. The modeling and laboratory efforts reported herein are intended to provide a quantitative assessment of factors that impact water infiltration and contaminant flushing through the vadose zone and into the underlying groundwater. Once in the groundwater, capture of the contaminants would be necessary, but this aspect of implementing soil flushing was not evaluated in this effort. Soil flushing was evaluated primarily with respect to applications for technetium and uranium contaminants in the deep vadose zone of the Hanford Central Plateau.

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Vicky L. Freedman

Pacific Northwest National Laboratory

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Mark K. Louder

National Institutes of Health

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Andy L. Ward

Pacific Northwest National Laboratory

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Baoshan Zhang

National Institutes of Health

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Glendon W. Gee

Pacific Northwest National Laboratory

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James C. Mullikin

National Institutes of Health

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Jiang Zhu

Scripps Research Institute

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John R. Mascola

National Institutes of Health

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