Design and Efficacy of Non-Human Protein-Derived PCSK9 Immunogens for Cholesterol Management

The technology involves the development of novel PCSK9 immunogens that are specifically designed to eliminate sequence overlap with human proteins, thereby reducing potential self-reactivity and immunogenicity issues. By selectively grafting epitope residues from non-human PCSK9 or structurally similar sequences onto the epitope-scaffold, these immunogens can induce an immune response against the PCSK9 enzyme without triggering a significant reaction against the body’s own proteins.

Generation and Application of c-Cbl floxed Transgenic Mice for Conditional Gene Deletion Studies

This technology presents a novel strain of transgenic mice where the proto-oncogene c-Cbl (Casitas B-lineage lymphoma) has been engineered with loxP (locus of X-over P1) sites, commonly referred to as "floxed." This design enables the conditional knockout of the c-Cbl gene when the mice are crossed with strains that express the Cre recombinase enzyme. Cre recombinase is an enzyme that can specifically target loxP sites, excising the floxed gene only in the presence of Cre, thus allowing tissue-specific or temporal deletion of the target gene.

Enhanced Live-Attenuated Respiratory Syncytial Virus Vaccine with Deletion and Point Mutations in the L Protein

The reported technology encompasses an advanced formulation of a live-attenuated respiratory syncytial virus (RSV) vaccine, distinct due to strategic genetic modifications. This vaccine candidate incorporates a deletion of the ORF encoding the RSV M2-2 protein, alongside A1313 and I1314L point mutations in the L protein.

Discovery Submission Form: Attenuated RSV Vaccine with Enhanced Genetic Modifications

The technology under discussion represents a significant advancement in the field of virology and immunization. It involves a novel live-attenuated respiratory syncytial virus (RSV) vaccine that is genetically modified by deleting the NS2 gene, which is known to elicit cellular responses to viral infection, and by incorporating a stabilized I030s mutation in the L protein to improve its safety and efficacy.

Development of LEAPS Technology in Enhancing Immune Response Against Influenza Virus Infection

The Ligand Epitope Antigen Presentation System (LEAPS) represents a breakthrough in immunotherapeutic technology developed by CEL-SCI Corporation. This technology employs a novel approach to boost the immune system's response to influenza, aiming to treat, manage, or even prevent the illness. By combining LEAPS with a specific peptide from the influenza virus, and administering it intravenously in mice, there's a marked improvement in the immune system's ability to fight off the virus.

Enhancing Immunogenicity and Protection in Calves

The discovery outlined in the Employee Discovery and Invention Report represents a significant advancement in veterinary vaccine technology, specifically targeting the bovine respiratory syncytial virus (bRSV). This innovation involves a "DS2" version of the bRSV F vaccine, which has been engineered to enhance immunogenicity through a prefusion-stabilized form of the F protein, absent of the fusion peptide and reinforced by cavity-filling mutations and inter-protomer disulfides.

A Novel, GMP-Compliant Method for Pathogenesis and Vaccine Development Studies

The technology involves a laboratory-derived version of the 2009 pandemic H1N1 virus, produced under Good Manufacturing Practices (GMP) to ensure safety and reproducibility for human studies. It's designed for use in controlled research settings to advance our understanding of influenza pathogenesis and to assess the efficacy of vaccines and drugs.

Tailored HIV Vaccines: Regional Strategies for Clade-Specific Protection and Treatment

In this groundbreaking approach, a versatile AIDS vaccine technology is tailored to target distinct HIV clades prevalent in different regions, including Clade B for the United States, Clade AG for West Africa, and Clade C for South Africa and India. The vaccine serves a dual purpose, functioning both as a prophylactic and therapeutic solution against HIV/AIDS. Furthermore, it can be employed in synergy with DNA vaccines and the immune-boosting properties of GM-CSF to enhance the immune response.

Development and Characterization of Anti-Idiotypic Monoclonal Antibodies for PGT121 Anti-HIV Therapy Monitoring

The document details the creation of an anti-idiotypic monoclonal antibody specifically targeting the PGT121 monoclonal antibody (mAb) used in HIV treatment, highlighting its potential in both therapeutic and preventative applications. To ensure the consistent quality and effectiveness of the PGT121 mAb, these anti-idiotypic antibodies are developed for monitoring purposes during clinical applications.

Development and Testing of a Novel CMV-Based Vaccine Prototype

The collaborative effort between the Jarvis Laboratory at the University of Plymouth and Feldmann's laboratory led to the development and testing of a groundbreaking Cytomegalovirus (CMV)-based vaccine designed to express the Ebola virus glycoprotein. This innovative approach aimed to enhance Ebola virus-specific immunogenicity and efficacy. The Jarvis Laboratory was responsible for the initial design and construction of the vaccine prototype, while Feldmann's team conducted extensive testing for immunogenicity and efficacy using a nonhuman primate model.