It is demonstrated that NTV-ΔF1L-C7L combines high safety with enhanced replication and immunogenicity, supporting its value as a novel vaccine vector and its potential application in controlling the current global monkeypox outbreak.
Abstract
ABSTRACT A non-replicating Tiantan strain-based vaccinia virus (NTV) holds significant application prospects for vaccination and gene therapy and has recently entered clinical trials as a novel and safer vaccine candidate against monkeypox. However, optimization is still required, particularly regarding its production capacity and immunogenicity. In this study, a recombinant virus was constructed by modifying the F1L and C7L genes in a non-replicating viral backbone using CRISPR/Cas9-mediated gene editing and homologous recombination. The resulting construct, designated NTV-ΔF1L-C7L, exhibited significantly enhanced replication in vaccine production cell lines, with viral yields increasing by more than 680-fold in MRC-5 cells compared to those of the parental NTV. Its pathogenicity in mice was significantly reduced, showing more than a 10-fold decrease compared to the pathogenicity of the vaccinia virus Tiantan strain (VTT). Following two intramuscular doses, NTV-ΔF1L-C7L elicited high titers of orthopoxvirus-specific IgG and neutralizing antibodies against vaccinia and monkeypox viruses, along with a robust cellular immune response exhibiting a Th1 bias, which was significantly stronger than that induced by either parental NTV or VTT vaccination. Complete protection (100%) against a lethal challenge with the vaccinia virus Western Reserve strain was achieved in mice immunized with either a low dose (103 PFU) or a single dose (10⁵ PFU) of NTV-ΔF1L-C7L, comparable to that conferred by VTT. These findings demonstrate that NTV-ΔF1L-C7L combines high safety with enhanced replication and immunogenicity, supporting its value as a novel vaccine vector and its potential application in controlling the current global monkeypox outbreak. IMPORTANCE A highly attenuated NTV exhibits an improved safety profile; however, its production capacity and immunogenicity require optimization for clinical application. In this study, a novel recombinant virus, NTV-ΔF1L-C7L, was developed by targeting the deletion of F1L and the insertion of C7L into the NTV backbone. This attenuated live vaccine, NTV-ΔF1L-C7L, demonstrates several significant advantages. Its robust in vitro replication supports scalability for large-scale vaccine production. It has demonstrated strong immunoprotective efficacy in mice while maintaining a high safety margin, exhibiting reduced pathogenicity in vivo , and inducing robust humoral and cellular immune responses against vaccinia and monkeypox virus. These immune responses confer complete protection against lethal VACV challenge at low-dose or single-dose immunization. These findings establish a solid experimental foundation for the further development of NTV-ΔF1L-C7L as a next-generation VACV-based vector or a candidate vaccine against mpox. A highly attenuated NTV exhibits an improved safety profile; however, its production capacity and immunogenicity require optimization for clinical application. In this study, a novel recombinant virus, NTV-ΔF1L-C7L, was developed by targeting the deletion of F1L and the insertion of C7L into the NTV backbone. This attenuated live vaccine, NTV-ΔF1L-C7L, demonstrates several significant advantages. Its robust in vitro replication supports scalability for large-scale vaccine production. It has demonstrated strong immunoprotective efficacy in mice while maintaining a high safety margin, exhibiting reduced pathogenicity in vivo , and inducing robust humoral and cellular immune responses against vaccinia and monkeypox virus. These immune responses confer complete protection against lethal VACV challenge at low-dose or single-dose immunization. These findings establish a solid experimental foundation for the further development of NTV-ΔF1L-C7L as a next-generation VACV-based vector or a candidate vaccine against mpox.
Classical swine fever virus (CSFV) and pseudorabies virus (PRV) remain significant threats to the swine industry. Although recombinant PRV vectors represent promising platforms for bivalent vaccine development, their application is frequently limited by insufficient expression of heterologous antigens, which may compromise protective efficacy. To address this limitation, we employed a multi-copy expression strategy to enhance CSFV E2 protein levels in a PRV-based vector. Using CRISPR/Cas9-mediated gene editing, we constructed recombinant PRVs expressing one, two, or three copies of the E2 gene by sequential insertion into the gE/gI, tk, and gG loci. In vitro validation demonstrated increased detectable E2 expression in the multi-copy recombinant viruses. Meanwhile, the recombinant viruses maintained virion morphology and replication kinetics comparable to those of the parental strain PRV-GX. Immunogenicity studies in rabbits showed that PRV-3CE2 elicited stronger E2-specific humoral responses and E2-associated cytokine recall responses than PRV-2CE2, while both recombinant viruses induced detectable neutralizing activity. In challenge experiments, although vaccination did not completely prevent febrile responses following CSFV challenge, both PRV-2CE2 and PRV-3CE2 reduced CSFV RNA loads in blood compared with the mock group, suggesting partial protective efficacy. Additionally, both PRV-2CE2 and PRV-3CE2 provided complete protection against lethal PRV challenge in rabbits. These findings suggest that multi-copy E2 expression enhances E2-associated immunogenicity and supports further optimization and evaluation of PRV-3CE2 as a PRV-CSFV bivalent vaccine candidate.
Xianfei Shang, Hui Zhao, Yufeng He et al.· Veterinary Microbiology· 0 citations
Pseudorabies virus (PRV) remains a major threat to the swine industry, particularly due to the emergence of highly virulent PRV variants that have caused severe outbreaks in Asia in recent years. These emerging strains exhibit enhanced pathogenicity and immune evasion, resulting in insufficient protection by traditional inactivated or attenuated vaccines derived from classical strains such as Bartha. Therefore, novel antiviral vaccine strategies with improved immunogenicity are urgently needed. In this study, an attenuated recombinant PRV (rPRV) was constructed from the emerging HNX strain by removing the TK and gE loci and introducing a CCL3L1 expression cassette (HNX-ΔTK/ΔgE-CCL3L1). The immunogenicity and protective efficacy of this recombinant virus were systematically evaluated. HNX-ΔTK/ΔgE-CCL3L1 significantly promoted the activation of bone marrow-derived dendritic cells (DCs) in vitro and enhanced DC activation in lymph nodes (LNs) in vivo. Vaccination with HNX-ΔTK/ΔgE-CCL3L1 induced robust humoral immune responses, including increased virus-neutralizing and glycoprotein B-specific antibody levels observed from the second week post-immunization onward. Furthermore, rPRV-expressed CCL3L1 enhanced T cell-dependent germinal center (GC) responses, resulting in improved protection against lethal PRV challenge. Our results demonstrate that CCL3L1 acts as an effective molecular adjuvant by potentiating humoral immunity through activation of the conventional DC-T follicular helper cell-GC B cell axis, supporting HNX-ΔTK/ΔgE-CCL3L1 as a potential vaccine for the control of emerging PRV variants.
The recombinant virus maintained wild-type-comparable titers while carrying 3606 bp of total foreign sequences, highlighting its dual-site advantage and potential as a multivalent poultry vaccine vector.
Porcine reproductive and respiratory syndrome virus (PRRSV) and porcine circovirus type 2 (PCV2) are major swine pathogens that cause severe disease and frequently occur as coinfections in pig herds. Current vaccination strategies against PRRSV and PCV2 commonly rely on separate vaccines, which may increase the complexity of immunization programs and require repeated animal handling. Therefore, a bivalent vaccine platform capable of inducing immune responses against both pathogens would be valuable for simplifying vaccination strategies. In this study, the attenuated PRRSV strain HuN4-F112 was used as a live viral vector to express the PCV2d capsid (Cap) protein. The recombinant virus rHuN4-F112-Cap was successfully rescued using a reverse-genetics system. rHuN4-F112-Cap showed growth characteristics comparable to those of the parental HuN4-F112 strain in MARC-145 cells, and expression of the inserted PCV2 Cap gene was confirmed. A single intramuscular immunization with rHuN4-F112-Cap induced PRRSV and PCV2 specific antibody responses in piglets, as well as PCV2-neutralizing antibodies before challenge. In separate challenge models, vaccinated piglets showed reduced PCV2 DNA loads and milder lymphoid lesions after PCV2 challenge, and reduced clinical signs, lower PRRSV RNA loads, milder pulmonary lesions, and improved survival after highly pathogenic PRRSV challenge compared with DMEM-inoculated controls. These findings indicate that rHuN4-F112-Cap has potential as a bivalent live-vector vaccine candidate against PRRSV and PCV2.
Shuolei Gao, Jiecong Yan, Juan Wang et al.· Vaccine· 0 citations
This review comprehensively evaluates the rational design of classical animal herpesvirus vectors, including pseudorabies virus, herpesvirus of turkeys, and feline herpesvirus type 1, providing perspectives on how continuous biotechnological innovations will empower herpesvirus vectors to serve as formidable prophylactic tools against emerging and re-emerging infectious diseases.
Jia-Hui Guo, Chen Mei, Xin-Yao Sun et al.· Frontiers in Microbiology· 0 citations
Transmissible gastroenteritis (TGE) and pseudorabies (PR) remain important viral diseases causing massive economic losses and posing a continuous burden on the global swine industry. The continuous emergence of variant strains of transmissible gastroenteritis virus (TGEV) and pseudorabies virus (PRV) has gradually weakened the protective efficacy of traditional vaccines, highlighting the urgent need for next-generation preventive vaccine candidates. Here, we constructed a recombinant pseudorabies virus named rPRV-AD expressing the major neutralizing epitopes A and D of the TGEV spike protein via homologous recombination combined with CRISPR/Cas9-gene editing technology and then evaluated its biological characteristics in vitro and immunogenicity in piglets. The results showed that this recombinant virus exhibited similar replication kinetics and biological properties to the parental strain. Immunization of 2-week-old piglets with rPRV-AD caused no obvious adverse effects and induced specific antibody and neutralizing antibody responses against both TGEV and PRV. Following virulent TGEV challenge, compared with the DMEM control group, rPRV-AD immunization alleviated clinical signs of piglets and significantly reduced viral load in intestine and feces, although its protective efficacy was lower than that of the commercial TGEV vaccine. Moreover, rPRV-AD provided effective clinical protection against challenge with the virulent PRV NY strain. In summary, these findings suggest that rPRV-AD represents a vaccine candidate that provides partial protection and warrants further optimization, and yet shows short-term protective efficacy against both PRV and TGEV in pigs.
Li Zhao, Xiang-Shuo Tian, Tong Xu et al.· Veterinary Sciences· 0 citations
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