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Dive into the research topics where Devin Sok is active.

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Featured researches published by Devin Sok.


Science | 2013

Crystal Structure of a Soluble Cleaved HIV-1 Envelope Trimer

Jean-Philippe Julien; Albert Cupo; Devin Sok; Robyn L. Stanfield; Dmitry Lyumkis; Marc C. Deller; Per Johan Klasse; Dennis R. Burton; Rogier W. Sanders; John P. Moore; Andrew B. Ward; Ian A. Wilson

Knowing the Enemy Infection of host cells by HIV-1 is mediated by an envelope glycoprotein (Env) trimeric spike on the surface of the virus. Proteins comprising the Env trimer must be cleaved for infectivity, and thus viral fusion involves three Env conformations. The flexibility of the Env trimer has made it a challenge to determine a high-resolution structure, although such a structure is key both for understanding trimer function and for guiding vaccine design. Lyumkis et al. (p. 1484) and Julien et al. (p. 1477) studied soluble cleaved trimers stabilized by specific mutations but that have kept a near-native antigenicity profile. Lyumkis et al. present a high-resolution structure of the trimer in complex with a broadly neutralizing antibody, and Julien et al. present a crystal structure of the trimer in complex with another broadly neutralizing antibody. Key structural features dictate how the HIV envelope protein functions and interacts with the human immune system. HIV-1 entry into CD4+ target cells is mediated by cleaved envelope glycoprotein (Env) trimers that have been challenging to characterize structurally. Here, we describe the crystal structure at 4.7 angstroms of a soluble, cleaved Env trimer that is stabilized and antigenically near-native (termed the BG505 SOSIP.664 gp140 trimer) in complex with a potent broadly neutralizing antibody, PGT122. The structure shows a prefusion state of gp41, the interaction between the component gp120 and gp41 subunits, and how a close association between the gp120 V1/V2/V3 loops stabilizes the trimer apex around the threefold axis. The complete epitope of PGT122 on the trimer involves gp120 V1, V3, and several surrounding glycans. This trimer structure advances our understanding of how Env functions and is presented to the immune system, and provides a blueprint for structure-based vaccine design.


Science | 2013

Rational HIV Immunogen Design to Target Specific Germline B Cell Receptors

Joseph G. Jardine; Jean-Philippe Julien; Sergey Menis; Takayuki Ota; Oleksandr Kalyuzhniy; Andrew T. McGuire; Devin Sok; Po-Ssu Huang; Skye MacPherson; Meaghan Jones; Travis Nieusma; John C. Mathison; David Baker; Andrew B. Ward; Dennis R. Burton; Leonidas Stamatatos; David Nemazee; Ian A. Wilson; William R. Schief

Building Better Vaccines In the past few years, several highly potent, broadly neutralizing antibodies (bNAbs) specific for the gp120 envelope protein of HIV-1 have been discovered. The goal of this work is to use this information to inform the design of vaccines that are able to induce such antibodies (see the Perspective by Crowe). However, because of extensive somatic hypermutation, the epitope bound by these antibodies often does not bind to the germline sequence. Jardine et al. (p. 711, published online 28 March; see the cover) used computational analysis and in vitro screening to design an immunogen that could bind to VRC01-class bNAbs and to their germline precursors. Georgiev et al. (p. 751) took advantage of the fact that only four sites on the HIV viral envelope protein seem to bind bNAbs, and sera that contain particular bNAbs show characteristic patterns of neutralization. An algorithm was developed that could successfully delineate the neutralization specificity of antibodies present in polyclonal sera from HIV-infected patients. Structural knowledge of broadly neutralizing antibodies against HIV-1 guides the design of an immunogen to elicit them. Vaccine development to induce broadly neutralizing antibodies (bNAbs) against HIV-1 is a global health priority. Potent VRC01-class bNAbs against the CD4 binding site of HIV gp120 have been isolated from HIV-1–infected individuals; however, such bNAbs have not been induced by vaccination. Wild-type gp120 proteins lack detectable affinity for predicted germline precursors of VRC01-class bNAbs, making them poor immunogens to prime a VRC01-class response. We employed computation-guided, in vitro screening to engineer a germline-targeting gp120 outer domain immunogen that binds to multiple VRC01-class bNAbs and germline precursors, and elucidated germline binding crystallographically. When multimerized on nanoparticles, this immunogen (eOD-GT6) activates germline and mature VRC01-class B cells. Thus, eOD-GT6 nanoparticles have promise as a vaccine prime. In principle, germline-targeting strategies could be applied to other epitopes and pathogens.


PLOS Pathogens | 2013

Broadly neutralizing antibody PGT121 allosterically modulates CD4 binding via recognition of the HIV-1 gp120 V3 base and multiple surrounding glycans.

Jean-Philippe Julien; Devin Sok; Reza Khayat; Jeong Hyun Lee; Katherine Doores; Laura M. Walker; Alejandra Ramos; Devan Diwanji; Robert Pejchal; Albert Cupo; Umesh Katpally; Rafael S. Depetris; Robyn L. Stanfield; Ryan McBride; Andre J. Marozsan; James C. Paulson; Rogier W. Sanders; John P. Moore; Dennis R. Burton; Pascal Poignard; Andrew B. Ward; Ian A. Wilson

New broad and potent neutralizing HIV-1 antibodies have recently been described that are largely dependent on the gp120 N332 glycan for Env recognition. Members of the PGT121 family of antibodies, isolated from an African donor, neutralize ∼70% of circulating isolates with a median IC50 less than 0.05 µg ml−1. Here, we show that three family members, PGT121, PGT122 and PGT123, have very similar crystal structures. A long 24-residue HCDR3 divides the antibody binding site into two functional surfaces, consisting of an open face, formed by the heavy chain CDRs, and an elongated face, formed by LCDR1, LCDR3 and the tip of the HCDR3. Alanine scanning mutagenesis of the antibody paratope reveals a crucial role in neutralization for residues on the elongated face, whereas the open face, which accommodates a complex biantennary glycan in the PGT121 structure, appears to play a more secondary role. Negative-stain EM reconstructions of an engineered recombinant Env gp140 trimer (SOSIP.664) reveal that PGT122 interacts with the gp120 outer domain at a more vertical angle with respect to the top surface of the spike than the previously characterized antibody PGT128, which is also dependent on the N332 glycan. We then used ITC and FACS to demonstrate that the PGT121 antibodies inhibit CD4 binding to gp120 despite the epitope being distal from the CD4 binding site. Together, these structural, functional and biophysical results suggest that the PGT121 antibodies may interfere with Env receptor engagement by an allosteric mechanism in which key structural elements, such as the V3 base, the N332 oligomannose glycan and surrounding glycans, including a putative V1/V2 complex biantennary glycan, are conformationally constrained.


Proceedings of the National Academy of Sciences of the United States of America | 2014

Recombinant HIV envelope trimer selects for quaternary-dependent antibodies targeting the trimer apex

Devin Sok; Marit J. van Gils; Matthias Pauthner; Jean-Philippe Julien; Karen L. Saye-Francisco; Jessica Hsueh; Bryan Briney; Jeong Hyun Lee; Khoa Le; Peter S. Lee; Yuanzi Hua; Michael S. Seaman; John P. Moore; Andrew B. Ward; Ian A. Wilson; Rogier W. Sanders; Dennis R. Burton

Significance Despite the high antigenic diversity of the HIV envelope trimer (Env), broadly neutralizing antibodies (bnAbs) have identified conserved regions that serve as targets for vaccine design. One of these regions is located at the apex of Env and is expressed fully only in the context of the correctly folded trimer. This work describes the isolation of bnAbs that target this region using a recombinant native-like Env trimer as an affinity reagent to sort specific antibody-producing cells. Characterization of these antibodies reveals a highly diverse antibody response against the trimer apex and provides molecular information that will be useful in the design of immunogens to elicit bnAbs to this region of Env. Broadly neutralizing antibodies (bnAbs) targeting the trimer apex of HIV envelope are favored candidates for vaccine design and immunotherapy because of their great neutralization breadth and potency. However, methods of isolating bnAbs against this site have been limited by the quaternary nature of the epitope region. Here we report the use of a recombinant HIV envelope trimer, BG505 SOSIP.664 gp140, as an affinity reagent to isolate quaternary-dependent bnAbs from the peripheral blood mononuclear cells of a chronically infected donor. The newly isolated bnAbs, named “PGDM1400–1412,” show a wide range of neutralization breadth and potency. One of these variants, PGDM1400, is exceptionally broad and potent with cross-clade neutralization coverage of 83% at a median IC50 of 0.003 µg/mL. Overall, our results highlight the utility of BG505 SOSIP.664 gp140 as a tool for the isolation of quaternary-dependent antibodies and reveal a mosaic of antibody responses against the trimer apex within a clonal family.


Science Translational Medicine | 2014

Promiscuous Glycan Site Recognition by Antibodies to the High-Mannose Patch of gp120 Broadens Neutralization of HIV

Devin Sok; Katie J. Doores; Bryan Briney; Khoa Le; Karen L. Saye-Francisco; Alejandra Ramos; Daniel W. Kulp; Jean-Philippe Julien; Sergey Menis; Lalinda Wickramasinghe; Michael S. Seaman; William R. Schief; Ian A. Wilson; Pascal Poignard; Dennis R. Burton

HIV broadly neutralizing monoclonal antibodies targeting the high-mannose patch of Env can use alternate glycan sites for neutralization. Neutralizing Antibodies with a Sweet Tooth Sugar can be quite tempting—as anyone who’s seen a kid rip into birthday cake can attest. Yet, antibodies can also have a sweet tooth, targeting glycan modifications on the surface of proteins. Indeed, some antibodies that neutralize multiple HIV strains—broadly neutralizing monoclonal antibodies (bnmAbs)—target a high-mannose patch on the HIV protein Env. Although this high-mannose patch is centered around the glycan at position 332 (N332), it has remained unclear if the N332 glycan is absolutely required for neutralization and, if not, why not. Sok et al. found that these mannose patch–targeting antibodies can bind alternate glycans in the absence of N332, which helps to explain their ability to neutralize many strains of HIV. Specifically, some bnmAbs can bind to the N334 site when that replaces the N332 site and some can form more interactions with other glycans, particularly complex-type glycans on variable loops, if the N332 sugar is absent. These data also suggest that mannose patch–targeting bnmAbs can work in combination to neutralize a wider range of different strains than single bnmAbs. The promiscuity of glycan binding by these sugar-loving antibodies is important to consider for both vaccine and therapeutic antibody development. Broadly neutralizing monoclonal antibodies (bnmAbs) that target the high-mannose patch centered around the glycan at position 332 on HIV Env are promising vaccine leads and therapeutic candidates because they effectively protect against mucosal SHIV challenge and strongly suppress SHIV viremia in established infection in macaque models. However, these antibodies demonstrate varying degrees of dependency on the N332 glycan site, and the origins of their neutralization breadth are not always obvious. By measuring neutralization on an extended range of glycan site viral variants, we found that some bnmAbs can use alternate N-linked glycans in the absence of the N332 glycan site and therefore neutralize a substantial number of viruses lacking the site. Furthermore, many of the antibodies can neutralize viruses in which the N332 glycan site is shifted to the 334 position. Finally, we found that a combination of three antibody families that target the high-mannose patch can lead to 99% neutralization coverage of a large panel of viruses containing the N332/N334 glycan site and up to 66% coverage for viruses that lack the N332/N334 glycan site. The results indicate that a diverse response against the high-mannose patch may provide near-equivalent coverage as a combination of bnmAbs targeting multiple epitopes. Additionally, the ability of some bnmAbs to use other N-linked glycan sites can help counter neutralization escape mediated by shifting of glycosylation sites. Overall, this work highlights the importance of promiscuous glycan binding properties in bnmAbs to the high-mannose patch for optimal antiviral activity in either protective or therapeutic modalities.


Science | 2016

HIV-1 broadly neutralizing antibody precursor B cells revealed by germline-targeting immunogen

Joseph G. Jardine; Daniel W. Kulp; Colin Havenar-Daughton; Anita Sarkar; Bryan Briney; Devin Sok; Fabian Sesterhenn; June Ereño-Orbea; Oleksandr Kalyuzhniy; Isaiah Deresa; Xiaozhen Hu; Skye Spencer; Meaghan Jones; Erik Georgeson; Yumiko Adachi; Michael Kubitz; Allan C. deCamp; Jean-Philippe Julien; Ian A. Wilson; Dennis R. Burton; Shane Crotty; William R. Schief

Baby steps toward bNAbs Some HIV-infected individuals develop heavily mutated, broadly neutralizing antibodies (bNAbs) that target HIV. Scientists aim to design vaccines that would elicit such antibodies. Jardine et al. report an important step toward this goal: They engineered an immunogen that could engage B cells from HIV-uninfected individuals that express the germline versions of the immunoglobulin genes harbored by a particular class of bNAbs. The frequencies of these B cells, their affinities for the immunogen, and structural analysis suggest that the immunogen is a promising candidate. Further shaping of the B cell response with subsequent immunogens may eventually elicit bNAbs in people. Science, this issue p. 1458 People that have not been infected with HIV can harbor HIV-1 broadly neutralizing antibody B cell precursors. Induction of broadly neutralizing antibodies (bnAbs) is a major HIV vaccine goal. Germline-targeting immunogens aim to initiate bnAb induction by activating bnAb germline precursor B cells. Critical unmet challenges are to determine whether bnAb precursor naïve B cells bind germline-targeting immunogens and occur at sufficient frequency in humans for reliable vaccine responses. Using deep mutational scanning and multitarget optimization, we developed a germline-targeting immunogen (eOD-GT8) for diverse VRC01-class bnAbs. We then used the immunogen to isolate VRC01-class precursor naïve B cells from HIV-uninfected donors. Frequencies of true VRC01-class precursors, their structures, and their eOD-GT8 affinities support this immunogen as a candidate human vaccine prime. These methods could be applied to germline targeting for other classes of HIV bnAbs and for Abs to other pathogens.


Cell | 2014

Structural Evolution of Glycan Recognition by a Family of Potent HIV Antibodies

Fernando Garces; Devin Sok; Leopold Kong; Ryan McBride; Helen J. Kim; Karen F. Saye-Francisco; Jean-Philippe Julien; Yuanzi Hua; Albert Cupo; John P. Moore; James C. Paulson; Andrew B. Ward; Dennis R. Burton; Ian A. Wilson

The HIV envelope glycoprotein (Env) is densely covered with self-glycans that should help shield it from recognition by the human immune system. Here, we examine how a particularly potent family of broadly neutralizing antibodies (Abs) has evolved common and distinct structural features to counter the glycan shield and interact with both glycan and protein components of HIV Env. The inferred germline antibody already harbors potential binding pockets for a glycan and a short protein segment. Affinity maturation then leads to divergent evolutionary branches that either focus on a single glycan and protein segment (e.g., Ab PGT124) or engage multiple glycans (e.g., Abs PGT121-123). Furthermore, other surrounding glycans are avoided by selecting an appropriate initial antibody shape that prevents steric hindrance. Such molecular recognition lessons are important for engineering proteins that can recognize or accommodate glycans.


Cell | 2016

Tailored Immunogens Direct Affinity Maturation toward HIV Neutralizing Antibodies.

Bryan Briney; Devin Sok; Joseph G. Jardine; Daniel W. Kulp; Patrick Skog; Sergey Menis; Ronald Jacak; Oleksandr Kalyuzhniy; Natalia de Val; Fabian Sesterhenn; Khoa Le; Alejandra Ramos; Meaghan Jones; Karen L. Saye-Francisco; Tanya R. Blane; Skye Spencer; Erik Georgeson; Xiaozhen Hu; Gabriel Ozorowski; Yumiko Adachi; Michael Kubitz; Anita Sarkar; Ian A. Wilson; Andrew B. Ward; David Nemazee; Dennis R. Burton; William R. Schief

Summary Induction of broadly neutralizing antibodies (bnAbs) is a primary goal of HIV vaccine development. VRC01-class bnAbs are important vaccine leads because their precursor B cells targeted by an engineered priming immunogen are relatively common among humans. This priming immunogen has demonstrated the ability to initiate a bnAb response in animal models, but recall and maturation toward bnAb development has not been shown. Here, we report the development of boosting immunogens designed to guide the genetic and functional maturation of previously primed VRC01-class precursors. Boosting a transgenic mouse model expressing germline VRC01 heavy chains produced broad neutralization of near-native isolates (N276A) and weak neutralization of fully native HIV. Functional and genetic characteristics indicate that the boosted mAbs are consistent with partially mature VRC01-class antibodies and place them on a maturation trajectory that leads toward mature VRC01-class bnAbs. The results show how reductionist sequential immunization can guide maturation of HIV bnAb responses.


Proceedings of the National Academy of Sciences of the United States of America | 2011

Rapid development of glycan-specific, broad, and potent anti–HIV-1 gp120 neutralizing antibodies in an R5 SIV/HIV chimeric virus infected macaque

Laura M. Walker; Devin Sok; Yoshiaki Nishimura; Olivia K. Donau; Reza Sadjadpour; Rajeev Gautam; Masashi Shingai; Robert Pejchal; Alejandra Ramos; Melissa Simek; Yu Geng; Ian A. Wilson; Pascal Poignard; Malcolm A. Martin; Dennis R. Burton

It is widely believed that the induction of a broadly neutralizing antibody (bNAb) response will be a critical component of a successful vaccine against HIV. A significant fraction of HIV-infected individuals mount bNAb responses, providing support for the notion that such responses could be elicited through vaccination. Infection of macaques with simian immunodeficiency virus (SIV) or SIV/HIV chimeric virus (SHIV) has been widely used to model aspects of HIV infection, but to date, only limited bNAb responses have been described. Here, we screened plasma from 14 R5-tropic SHIV-infected macaques for broadly neutralizing activity and identified a macaque with highly potent cross-clade plasma NAb response. Longitudinal studies showed that the development of broad and autologous NAb responses occurred coincidentally in this animal. Serum-mapping studies, using pseudovirus point mutants and antigen adsorption assays, indicated that the plasma bNAbs are specific for epitopes that include carbohydrates and are critically dependent on the glycan at position 332 of Env gp120. The results described herein provide insight into the development and evolution of a broad response, suggest that certain bNAb specificities may be more rapidly induced by immunization than others, and provide a potential model for the facile study of the development of bNAb responses.


Proceedings of the National Academy of Sciences of the United States of America | 2012

Site-specific DNA-antibody conjugates for specific and sensitive immuno-PCR

Stephanie A. Kazane; Devin Sok; Edward H. Cho; Maria Loressa Uson; Peter Kuhn; Peter G. Schultz; Vaughn V. Smider

Antibody conjugates are widely used as diagnostics and imaging reagents. However, many such conjugates suffer losses in sensitivity and specificity due to nonspecific labeling techniques. We have developed methodology to site-specifically conjugate oligonucleotides to antibodies containing a genetically encoded unnatural amino acid with orthogonal chemical reactivity. These oligobody molecules were used in immuno-PCR assays to detect Her2+ cells with greater sensitivity and specificity than nonspecifically coupled fragments, and can detect extremely rare Her2+ cells in a complex cellular environment. Such designed antibody-oligonucleotide conjugates should provide sensitive and specific reagents for diagnostics, as well as enable other unique applications based on oligobody building blocks.

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Dennis R. Burton

Scripps Research Institute

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Ian A. Wilson

Scripps Research Institute

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Andrew B. Ward

Scripps Research Institute

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Khoa Le

Scripps Research Institute

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Matthias Pauthner

Scripps Research Institute

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William R. Schief

Scripps Research Institute

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Bryan Briney

Scripps Research Institute

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Pascal Poignard

Scripps Research Institute

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