Monoclonal antibodies are powerful therapeutic, diagnostic, and research tools. Methods utilized to generate monoclonal antibodies are evolving rapidly. We created a transfectable linear antibody expression cassette from a 2-h high-fidelity overlapping PCR reaction from synthesized DNA fragments. We coupled heavy and light chains into a single linear sequence with a promoter, self-cleaving peptide, and poly(A) signal to increase the flexibility of swapping variable regions from any sequence available in silico. Transfection of the linear cassette tended to generate similar levels to the two-plasmid system and generated an average of 47 mu g (14-98 mu g) after 5 days in 2 ml cultures with 15 unique antibody sequences. The levels of antibodies produced were sufficient for most downstream applications in less than a week. The method presented here reduces the time, cost, and complexity of cloning steps.
India is one of the most affected countries by COVID-19 pandemic; but little is understood regarding immune responses to SARS-CoV-2 in this region. Herein we examined SARS-CoV-2 neutralizing antibodies, IgG, IgM, IgA and memory B cells in COVID-19 recovered individual from India. While a vast majority of COVID-19 recovered individuals showed SARS-CoV-2 RBD-specific IgG, IgA and IgM antibodies (38/42, 90.47%; 21/42, 50%; 33/42, 78.57% respectively), only half of them had appreciable neutralizing antibody titers. RBD-specific IgG, but not IgA or IgM titers, correlated with neutralizing antibody titers and RBD-specific memory B cell frequencies. These findings have timely significance for identifying potential donors for plasma therapy using RBD-specific IgG assays as surrogate measurement for neutralizing antibodies in India. Further, this study provides useful information needed for designing large-scale studies towards understanding of inter-individual variation in immune memory to SARS CoV-2 natural infection for future vaccine evaluation and implementation efforts.
Zika virus (ZIKV) vertical transmission from mother to child in utero is associated with a number of neonatal abnormalities, including congenital microcephaly. Yet, the mechanism by which ZIKV infects the placenta and subsequently the fetus remains poorly understood. ZIKV and Dengue virus (DENV) endemic regions are commonly overlapping, and DENV specific antibodies can cross-react with ZIKV. We and others have previously demonstrated that cross-reactive DENV IgG can mediate ZIKV infection of placental cells though increased viral entry via Fc receptors. Specifically, we found that infection with ZIKV immune complexes (ZIKV-IC) generated from cross-reactive anti-DENV monoclonal IgG was enhanced in human placental macrophages called Hofbauer cells, which are found within the chorionic villus stroma near the fetal vasculature. In this study, we aimed to characterize the intrinsic cellular changes that occur in Hofbauer cells as a result of ZIKV-IC infection. We performed RNA sequencing on Hofbauer cells infected with ZIKV complexed with different concentrations of anti-DENV monoclonal IgG. Principal component analysis revealed that while ZIKV incubated with anti-influenza IgG had a similar gene expression profile to ZIKV alone, ZIKV-IC infection with increasing anti-DENV IgG skewed gene expression towards a unique phenotype. We identified a number of transcriptional profiles related to anti-DENV IgG dose. Notably, we observed a pattern of decreased interferon stimulated genes with increasing anti-DENV IgG dose. Yet, increasing anti-DENV IgG also increased ZIKV viral RNA. These results may indicate that ZIKV-IC infection makes Hofbauer cells more permissive to ZIKV replication by modulating the innate antiviral response.
Fluorescence microscopy imaging technologies play an important role in a large number of scientific studies on cancer progression mechanisms and biological activity patterns. However, both the large fluorescence microscopy image scale and varying number of objects of interest prevent such images from accurate and efficient analyses by humans. Therefore, the development of efficient, accurate, and automated motion tracking approaches is necessary and critical to enable such fluorescence microscopy image analyses. It has been demonstrated that traditional approaches detecting individual objects in each image frame and next linking detected objects between adjacent frames work well when sequences of images have a high signal to noise ratio and capture a limited number of tracking objects of interest. Less subject to these constraints, particle filtering has been preferably used in diverse tracking analyses. Specifically, particle filtering approaches using the Gaussian function for object state characterization can produce robust tracking results even when objects are densely distributed in clumps. However, due to the complexity of object morphology and the limitation of microscopy image resolution, intensities of objects do not always follow the Gaussian distribution. Despite the fact that deep learning algorithms have been emerged to improve the particle filtering performance, the required large training data scale limits their practical applications in many scenarios. In this work, we extend the particle filtering approach by developing non-Gaussian models and the corresponding tracking management strategy. With a gradient-based segmentation algorithm, objects in image sequences are extracted and modeled by states. The evolution of these states can be used to recover object motion trajectories and quantitatively characterize object motion behaviors. Experiments on both artificial and real biomedical time-lapse fluorescence image data for 2D and 3D space demonstrate the robustness and accuracy of our generalized approach.
Immunity to the severe diarrheal disease cholera is largely mediated by lipopolysaccharide (LPS)-specific antibodies. However, the properties and protective mechanism of functionally relevant antibodies have not been well defined.
Accurate diagnosis of acute severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) infection is critical for appropriate management of patients with this disease. We examined the possible complementary role of laboratory-developed class-specific clinical serology in assessing SARS-CoV-2 infection in hospitalized patients. Serological tests for immunoglobulin G (IgG), IgA, and IgM antibodies against the receptor binding domain (RBD) of SARS-CoV-2 were evaluated using samples from real-time reverse transcription-quantitative PCR (qRT-PCR)-confirmed inpatient coronavirus disease 2019 (COVID-19) cases. We analyzed the influence of timing and clinical severity on the diagnostic value of class-specific COVID-19 serology testing. Cross-sectional analysis revealed higher sensitivity and specificity at lower optical density cutoffs for IgA in hospitalized patients than for IgG and IgM serology (IgG area under the curve [AUC] of 0.91 [95% confidence interval {CI}, 0.89 to 0.93] versus IgA AUC of 0.97 [95% CI, 0.96 to 0.98] versus IgM AUC of 0.95 [95% CI, 0.92 to 0.97]). The enhanced performance of IgA serology was apparent in the first 2 weeks after symptom onset and the first week after PCR testing. In patients requiring intubation, all three tests exhibit enhanced sensitivity. Among PCR-negative patients under investigation for SARS-CoV-2 infection, 2 out of 61 showed clear evidence of seroconversion IgG, IgA, and IgM. Suspected false-positive results in the latter population were most frequently observed in IgG and IgM serology tests. Our findings suggest the potential utility of IgA serology in the acute setting and explore the benefits and limitations of class-specific serology as a complementary diagnostic tool to PCR for COVID-19 in the acute setting.
The factors that control the development of an effective immune response to the recently emerged SARS-CoV-2 virus are poorly understood. In this study, we provide a cross-sectional analysis of the dynamics of B cell responses to SARS-CoV-2 infection in hospitalized COVID-19 patients. We observe changes in B cell subsets consistent with a robust humoral immune response, including significant expansion of plasmablasts and activated receptor-binding domain (RBD)-specific memory B cell populations. We observe elevated titers of Abs to SARS-CoV-2 RBD, full-length Spike, and nucleoprotein over the course of infection, with higher levels of RBD-specific IgG correlating with increased serum neutralization. Depletion of RBD-specific Abs from serum removed a major portion of neutralizing activity in most individuals. Some donors did retain significant residual neutralization activity, suggesting a potential Ab subset targeting non-RBD epitopes. Taken together, these findings are instructive for future vaccine design and mAb strategies.
Vibrio cholerae is a bacterial pathogen which causes the severe acute diarrheal disease cholera. Given that a symptomatic incident of cholera can lead to long term protection, a thorough understanding of the immune response to this pathogen is needed to identify parameters critical to the generation and durability of immunity. To approach this, we utilized a live attenuated cholera vaccine to model the response to V. cholerae infection in 12 naïve subjects. We found that this live attenuated vaccine induced durable vibriocidal antibody titers that were maintained at least one year after vaccination. Similar to what we previously reported in infected patients from Bangladesh, we found that vaccination induced plasmablast responses were primarily specific to the two immunodominant antigens lipopolysaccharide (LPS) and cholera toxin (CT). Interestingly, the magnitude of the early plasmablast response at day 7 predicted the serological outcome of vaccination at day 30. However, this correlation was no longer present at later timepoints. The acute responses displayed preferential immunoglobulin isotype usage, with LPS specific cells being largely IgM or IgA producing, while cholera toxin responses were predominantly IgG. Finally, CCR9 was highly expressed on vaccine induced plasmablasts, especially on IgM and IgA producing cells, suggesting a role in migration to the gastrointestinal tract. Collectively, these findings demonstrate that the use of a live attenuated cholera vaccine is an effective tool to examine the primary and long-term immune response following V. cholerae exposure. Additionally, it provides insight into the phenotype and specificity of the cells which likely return to and mediate immunity at the intestinal mucosa. A thorough understanding of these properties both in peripheral blood and in the intestinal mucosae will inform future vaccine development against both cholera and other mucosal pathogens. Trial Registration: NCT03251495.
SARS-CoV-2, the virus responsible for COVID-19, is causing a devastating worldwide pandemic, and there is a pressing need to understand the development, specificity, and neutralizing potency of humoral immune responses during acute infection. We report a cross-sectional study of antibody responses to the receptor-binding domain (RBD) of the spike protein and virus neutralization activity in a cohort of 44 hospitalized COVID-19 patients. RBD-specific IgG responses are detectable in all patients 6 days after PCR confirmation. Isotype switching to IgG occurs rapidly, primarily to IgG1 and IgG3. Using a clinical SARS-CoV-2 isolate, neutralizing antibody titers are detectable in all patients by 6 days after PCR confirmation and correlate with RBD-specific binding IgG titers. The RBD-specific binding data were further validated in a clinical setting with 231 PCR-confirmed COVID-19 patient samples. These findings have implications for understanding protective immunity against SARS-CoV-2, therapeutic use of immune plasma, and development of much-needed vaccines.
SARS-CoV-2 is currently causing a devastating pandemic and there is a pressing need to understand the dynamics, specificity, and neutralizing potency of the humoral immune response during acute infection. Herein, we report the dynamics of antibody responses to the receptor-binding domain (RBD) of the spike protein and virus neutralization activity in 44 COVID-19 patients. RBD-specific IgG responses were detectable in all patients 6 days after PCR confirmation. Using a clinical isolate of SARS-CoV-2, neutralizing antibody titers were also detectable in all patients 6 days after PCR confirmation. The magnitude of RBD-specific IgG binding titers correlated strongly with viral neutralization. In a clinical setting, the initial analysis of the dynamics of RBD-specific IgG titers was corroborated in a larger cohort of PCR-confirmed patients (n=231). These findings have important implications for our understanding of protective immunity against SARS-CoV-2, the use of immune plasma as a therapy, and the development of much-needed vaccines.
SARS‐CoV‐2 is a recently emerged human coronavirus that has escalated to a pandemic. There are currently no approved vaccines for SARS‐CoV‐2, which causes severe respiratory illness or death. Defining the antibody response to SARS‐CoV‐2 will be essential for understanding disease progression, long‐term immunity, and vaccine efficacy. Here we describe two methods for evaluating the neutralization capacity of SARS‐CoV‐2 antibodies. The basic protocol is a focus reduction neutralization test (FRNT), which involves immunostaining infected cells with a chromogen deposit readout. The alternate protocol is a modification of the FRNT that uses an infectious clone−derived SARS‐CoV‐2 virus expressing a fluorescent reporter. These protocols are adapted for use in a high‐throughput setting, and are compatible with large‐scale vaccine studies or clinical testing. © 2020 Wiley Periodicals LLC
Vibrio cholerae is a bacterial pathogen which causes cholera, a severe acute diarrheal disease. A symptomatic incident of cholera can lead to long term protection against subsequent exposure; however, the generation of immunity and mechanisms of protection are undetermined. A thorough understanding of the immune response to V. cholerae is needed to identify parameters which are key for the generation and maintenance of immunity. To approach this, we utilized a live attenuated cholera vaccine to model the response to V. cholerae exposure. In this study, we found that vaccination induced plasmablasts which were specific for the two immunodominant antigens of cholera, lipopolysaccharide (LPS) and cholera toxin (CT). These antigens induced a preferential isotype response with LPS driving IgM and IgA plasmablasts while CT drives an IgG and IgA plasmablast. Serum responses had corresponding increases in both antigen binding and functional titers that remained detectable one-year post vaccination. Additionally, LPS specific IgA memory B cells were detectable at 90 days post vaccination. These cells, along with mucosal plasma cells likely play a role in long term cholera immunity. Collectively, these findings demonstrate the use of the live attenuated cholera vaccine as an effective tool to examine the primary and long term immune response to V. cholerae exposure. Additionally, it provides insight into the phenotype and specificity of the cells which likely return to and mediate immunity at the mucosa as determined by our analysis of gut-homing receptor (CCR9) expression levels on antigen specific cells. A thorough understanding of these properties will likely inform future vaccine development to both cholera and other mucosal pathogens.
Vibrio cholerae is a prototypical mucosal pathogen that causes cholera, a severe diarrheal disease. Cholera affects an estimated 3 to 5 million people annually, resulting in over 100,000 deaths. Infection leads to serotype-specific immunity that can last for up to ten years. Immunity is likely mediated by intestinal antibodies, which primarily target the immunodominant antigens lipopolysaccharide (LPS) and cholera toxin (CT). However, how immunity is generated and maintained is not well understood. Here we have used the live-attenuated cholera vaccine, Vaxchora, to characterize the primary immune response in both the periphery and the human duodenum. Previously, this vaccine showed 80% protective efficacy 90 days after vaccination of naïve volunteers, and induced early antibody responses in levels similar to infection. We developed new technology to identify and characterize V. cholerae-specific plasmablasts and plasma cells by flow cytometry, and found that antigen-specific plasmablasts in peripheral blood quickly expand and upregulate mucosal trafficking markers CCR9 and CCR10. These B cells either develop locally or home to the small intestine, where anti-LPS and anti-CT antibody-secreting cells are present by day 28. Surprisingly, our preliminary data shows that vaccinees may exhibit robust anti-CT responses in the duodenum even when peripheral anti-CT antibody secreting cells are not detected, which provides novel insight into the generation of sustained protection. These data will help us understand not only protective immunity to V. cholerae, but also how the human mucosal plasma cell compartment is developed and maintained.
The mechanism of protection against cholera afforded by previous illness or vaccination is currently unknown. We have recently shown that antibodies targeting O-specific polysaccharide (OSP) of Vibrio cholerae correlate highly with protection against cholera. V. cholerae is highly motile and possesses a flagellum sheathed in OSP, and motility of V. cholerae correlates with virulence. Using high-speed video microscopy and building upon previous animal-related work, we demonstrate that sera, polyclonal antibody fractions, and OSP-specific monoclonal antibodies recovered from humans surviving cholera block V. cholerae motility at both subagglutinating and agglutinating concentrations. This antimotility effect is reversed by preadsorbing sera and polyclonal antibody fractions with purified OSP and is associated with OSP-specific but not flagellin-specific monoclonal antibodies. Fab fragments of OSP-specific polyclonal antibodies do not inhibit motility, suggesting a requirement for antibody-mediated cross-linking in motility inhibition. We show that OSP-specific antibodies do not directly affect V. cholerae viability, but that OSP-specific monoclonal antibody highly protects against death in the murine cholera model. We used in vivo competitive index studies to demonstrate that OSP-specific antibodies impede colonization and survival of V. cholerae in intestinal tissues and that this impact is motility dependent. Our findings suggest that the impedance of motility by antibodies targeting V. cholerae OSP contributes to protection against cholera.IMPORTANCE Cholera is a severe dehydrating illness of humans caused by Vibrio choleraeV. cholerae is a highly motile bacterium that has a single flagellum covered in lipopolysaccharide (LPS) displaying O-specific polysaccharide (OSP), and V. cholerae motility correlates with its ability to cause disease. The mechanisms of protection against cholera are not well understood; however, since V. cholerae is a noninvasive intestinal pathogen, it is likely that antibodies that bind the pathogen or its products in the intestinal lumen contribute to protection from infection. Here, we demonstrate that OSP-specific antibodies isolated from humans surviving cholera in Bangladesh inhibit V. cholerae motility and are associated with protection against challenge in a motility-dependent manner.
Zika virus (ZIKV) is a mosquito-borne flavivirus that has recently emerged in the Americas and is a pathogen of significant public health concern. Unique amongst flaviviruses, ZIKV can be vertically transmitted from an infected mother to the developing fetus in utero, in some cases resulting in adverse pregnancy outcomes, including spontaneous abortion and fetal brain abnormalities. We recently found that Hofbauer cells (HCs), a fetal-derived placental macrophage, are primary targets for ZIKV infection. Further, cross-reactive dengue antibodies facilitate ZIKV transcytosis across the placental barrier to seed infection within HCs. However, little is known about the innate immune mechanisms of HCs to limit virus replication and spread within the placenta. Here, we report that HCs express the RIG-I-like receptors, RIG-I, MDA5, and LGP2, and the cytosolic DNA sensor, cGAS, and can induce a potent innate immune response characterized by production of monocyte and macrophage chemoattractants, MCP-1, MIP-1α, and MIP-1β. In contrast, HCs infected in the presence or absence of ZIKV immune complexes induced little to no type I interferon (IFN), pro-inflammatory cytokines, or chemokines. Notably, HCs infected with ZIKV immune complexes displayed reduced antiviral gene induction as compared to HCs infected in the absence of immune complexes despite similar kinetics of virus replication. We are currently performing RNA sequencing analyses to determine how binding of viral immune complexes can alter the antiviral gene signature within HCs to enhance productive ZIKV infection. These studies will further our understanding of innate immunologic mechanisms and modulation during vertical transmission of flaviviruses in the placenta.
Pemphigus vulgaris (PV) is an autoimmune disease characterized by blistering sores on skin and mucosal membranes, caused by autoantibodies primarily targeting the cellular adhesion protein, desmoglein-3 (Dsg3). To better understand how Dsg3-specific autoantibodies develop and cause disease in humans, we performed a cross-sectional study of PV patients before and after treatment to track relevant cellular responses underlying disease pathogenesis, and we provide an in-depth analysis of two patients by generating a panel of mAbs from single Dsg3-specific memory B cells (MBCs). Additionally, we analyzed a paired sample from one patient collected 15-months prior to disease diagnosis. We find that Dsg3-specific MBCs have an activated phenotype and show signs of ongoing affinity maturation and clonal selection. Monoclonal antibodies (mAbs) with pathogenic activity primarily target epitopes in the extracellular domains EC1 and EC2 of Dsg3, though they can also bind to the EC4 domain. Combining antibodies targeting different epitopes synergistically enhances in vitro pathogenicity.
The re-emergence of Zika virus (ZIKV) in the western hemisphere has most significantly affected dengue virus (DENV) endemic regions. Due to the geographical overlap between these two closely related flaviviruses, numerous individuals who suffered ZIKV infection during recent outbreaks may have also previously been exposed to DENV. As such, the impact of pre-existing dengue immunity on immune responses to ZIKV has been an area of focused research and interest. To understand how B cell responses to a ZIKV infection may be modulated by prior dengue exposures, we compared and contrasted plasmablast repertoire and specificity between two ZIKV-infected individuals, one dengue-naïve (ZK018) and the other dengue-experienced (ZK016). In addition to examining serological responses, we generated 59 patient plasmablast-derived monoclonal antibodies (mAbs) to define the heterogeneity of the early B cell response to ZIKV. Both donors experienced robust ZIKV-induced plasmablast expansions early after infection, with comparable mutational frequencies in their antibody variable genes. However, notable differences were observed in plasmablast clonality and functional reactivity. Plasmablasts from the dengue-experienced donor ZK016 included cells with shared clonal origin, while ZK018 mAbs were entirely clonally unrelated. Both at the mAb and plasma level, ZK016 antibodies displayed extensive cross-reactivity to DENV1-4, and preferentially neutralized DENV compared to ZIKV. In contrast, the neutralization activity of ZK018 mAbs was primarily directed towards ZIKV, and fewer mAbs from this donor were cross-reactive, with the cross-reactive phenotype largely limited to fusion loop-specific mAbs. ZK016 antibodies caused greater enhancement of DENV2 infection of FcRγ-expressing cells overall compared to ZK018, with a striking difference at the plasma level. Taken together, these data strongly suggest that the breadth and protective capacity of the initial antibody responses after ZIKV infection may depend on the dengue immune status of the individual. These findings have implications for vaccine design, given the likelihood that future epidemics will involve both dengue-experienced and naïve populations.
Abstract Cholera is a severe diarrheal disease affecting 2.9 million people annually resulting in an estimated 95,000 deaths. Infection induces long lasting protective immunity, likely mediated by intestinal antibodies. To further understand humoral immunity against cholera, we used single cell expression cloning to generate panels of human monoclonal antibodies (mAbs) from acutely induced plasmablasts isolated from patients in Bangladesh. mAbs largely targeted the dominant antigens cholera toxin and lipopolysaccharide (LPS). Notably, while LPS responses targeted the O-specific polysaccharide moiety, mAbs varied in serotype specificity and functional characteristics. Unexpectedly, despite all patients being infected by the Ogawa serotype, isolated mAbs from one patient preferentially bound to the Inaba serotype, which had been almost undetectable in circulation for 5 years. Inaba selective mAbs were characterized by high levels of somatic hypermutation. These findings suggest that cholera can generate immunologic memory and induce significant somatic hypermutation in response to this polysaccharide antigen. To expand on these findings we generated a panel of isotype and subclass variants from six LPS specific mAbs, representing a range of affinity and serotype specificity. mAbs were expressed as IgG1, IgG2, IgG3, IgG4, pentameric IgM, and the monomeric and dimeric forms of IgA1 and IgA2. This analysis provided detailed insight into how immunoglobulin isotype/subclass impacts functional characteristics such as agglutination and vibriocidal activity. Moreover, using live-cell microscopy and soft-agar migration assays, we provide novel insight into the impact of these antibody variants on bacterial propulsion.
B cells play a critical role in the immune response by producing antibodies, which display remarkable diversity. Here we describe a bioinformatic pipeline, BALDR (BCR Assignment of Lineage using De novo Reconstruction) that accurately reconstructs the paired heavy and light chain immunoglobulin gene sequences from Illumina single-cell RNA-seq data. BALDR was accurate for clonotype identification in human and rhesus macaque influenza vaccine and simian immunodeficiency virus vaccine induced vaccine-induced plasmablasts and naïve and antigen-specific memory B cells. BALDR enables matching of clonotype identity with single-cell transcriptional information in B cell lineages and will have broad application in the fields of vaccines, human immunodeficiency virus broadly neutralizing antibody development, and cancer.BALDR is available at https://github.com/BosingerLab/BALDR .