SBIR-STTR Award

Developing Multi-targeting Antiviral Agents Against Herpes Simplex 1
Award last edited on: 3/25/2019

Sponsored Program
STTR
Awarding Agency
NIH : NIAID
Total Award Amount
$308,940
Award Phase
1
Solicitation Topic Code
NIAID
Principal Investigator
Sandra K Weller

Company Information

Quercus Molecular Design LLC (AKA: QMD)

116 West Avon Road
Unionville, CT 06085
   (860) 377-1474
   N/A
   www.quercusmoleculardesign.com

Research Institution

Quercus Moleclar Design LLC

Phase I

Contract Number: 1R41AI134509-01
Start Date: 8/3/2017    Completed: 7/31/2019
Phase I year
2017
Phase I Amount
$258,940
Viruses from the human herpesvirus family are estimated to infect 90% of the adult population worldwide and are responsible for lifelong debilitating and congenital infections. Some members of this family are associated with human cancers and age-related cognitive decline. Herpes simplex virus (HSV1) has infected more than 3.7 billion people under the age of 50 (67% of the population). HSV1/2 causes significant disease during acute infection (oral and genital lesions, corneal blindness and encephalitis) and establishes persistent latent infections in sensory neurons for the life of the host with the potential for reactivation and recurrent disease. In the US, the economic burden of HSV infection due to social and medical concerns is estimated at over $400 million each year. Other members of the herpesvirus family are associated with even more severe disease states especially in immunocompromised individuals. Although much of the impact of herpesvirus pathogenesis can be controlled by drug therapy, the emergence of drug resistance has threatened these treatment efforts. We have formed a new start up venture, Quercus Molecular Design (QMD LLC) whose long-term objective is to identify, characterize, and exploit multiple drug targets of human herpesviruses. QMD will leverage decades of HSV genetic and biochemical research from Dr. Sandra Weller's laboratory with Dr. Dennis Wright's expertise in small molecule drug discovery and development in infectious disease. Existing strategies for development of new herpesvirus therapies have focused on individual viral targets such as the viral polymerase. QMD is focused on developing novel therapeutic agents for HSV by pursuing multi-targeting inhibitors that block two or more essential viral proteins that fall into the nucleotidyltransferase superfamily (NTS). This approach is expected to lead to the production of antivirals that are less susceptible to the development of mutation-based resistance. HSV encodes three essential NTS proteins that are characterized by the presence of an acidic catalytic triad: viral single strand DNA binding protein (ICP8), viral terminase (UL15) and viral alkaline nuclease (UL12). Small molecule inhibitors that bind at this site are hypothesized to exhibit potent inhibition of at least two of the proteins, thereby drastically limiting the onset of resistance. In Aim 1 we will prepare lead-like, dual metal-directed chemotypes as multi-target inhibitors of HSV proteins. In Aim 2 we will test lead compounds for efficacy in biochemical assays for ICP8, UL12 and UL15 activity and for reduction of virus production. We anticipate the identification of multiple lead scaffolds that target two or more of the enumerated viral targets and exhibit antiviral activity. Upon completion of the work in this phase I application, we will be well positioned to pursue further development of novel antiviral agents for treatment of HSV infections.

Public Health Relevance Statement:


Public Health Relevance:
Herpes Simplex Virus (HSV) is a ubiquitous human pathogen that can cause significant morbidity and mortality in humans. Although many HSV infections can be controlled by drug therapy, current therapies have major limitations including the emergence of viruses that are resistant to the most commonly used drugs. The goal of this grant is to develop new strategies for the treatment of HSV infections that would be active against drug resistant viruses and provide alternative treatment strategies.    

NIH Spending Category:
Biotechnology; Genetics; Infectious Diseases; Sexually Transmitted Diseases/Herpes

Project Terms:
Acute; Acyclovir; Adult; Afferent Neurons; Age; Age-associated memory impairment; alternative treatment; Antiviral Agents; Area; Award; base; Binding; Biochemical; Biological Assay; Blindness; Breathing; Cells; Chelating Agents; Chemicals; Communicable Diseases; Complement; congenital infection; Cornea; design; Development; Disease; DNA Binding; DNA biosynthesis; DNA-Directed DNA Polymerase; Drug Controls; drug development; drug discovery; Drug resistance; drug resistant virus; Drug Targeting; Drug usage; Economic Burden; Encephalitis; Enzyme Inhibitor Drugs; Enzymes; Evaluation; Exhibits; falls; Family; Family member; follow-up; Future; Gene Expression; Genes; Genital system; Goals; Grant; Herpes Labialis; Herpes Simplex Infections; Herpesviridae; Herpesvirus 1; HIV Integrase Inhibitors; Human; Human Herpesvirus 2; Immunocompetent; Immunocompromised Host; Immunosuppression; Individual; Infection; inhibitor/antagonist; Integrase Inhibitors; Laboratories; latent infection; latent persistent infection; Lead; Lesion; Libraries; Life; Lytic; Lytic Phase; magnesium ion; Malignant Neoplasms; Medical; member; Metal Binding Site; metal chelator; Metals; Methods; Molecular; Morbidity - disease rate; mortality; Mutation; Natural Products; Neonatal; novel; novel therapeutics; Nucleic Acids; nucleoside analog; nucleotidyltransferase; Oral; pathogen; Pathogenesis; Pharmaceutical Preparations; Pharmacotherapy; Phase; Polymerase; Population; Positioning Attribute; Preparation; Production; Proteins; public health relevance; Quercus; recombinant virus; Recombinants; Recurrence; Recurrent disease; Reporter; Reporting; Research; Resistance; Resistance development; scaffold; Simplexvirus; Single-Stranded DNA; Site; Small Business Technology Transfer Research; small molecule; small molecule inhibitor; social; spleen exonuclease; SS DNA BP; terminase; Testing; Therapeutic Agents; Thymidine Kinase; Time; treatment strategy; Triad Acrylic Resin; Tropolone; Viral; viral alkaline nuclease; viral DNA; Viral Genes; Viral Genome; Viral Proteins; virology; Virus; Virus Diseases; virus genetics; Virus Replication; Work

Phase II

Contract Number: ----------
Start Date: 8/3/2017    Completed: 7/31/2018
Phase II year
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Phase II Amount
$50,000