Cytomegalovirus (CMV) infection is the most common congenital infection in the United States and is a leading cause for hearing loss in children. CMV infection is also a major problem for immunocompromised patients, where CMV infections frequently result in life threatening complications. Unfortunately, existing drugs have poor bioavailability and toxicity profiles which limit their use to only the most critically ill patients. Thus, there is a critical need to develop potent, safe and efficacious drugs for the treatment of CMV. Our laboratory has a long standing interest in the development of medicinal agents directed towards the inhibition key protein-protein interactions involved in critical biological processes. The objective of this application is to develop agents that target a critical, virally-specific protein-protein interaction involved in viral DNA synthesis. Our targeted interaction occurs between the virally encoded polymerase (UL54) and its processivity factor (UL44). Previous studies have shown that this interaction is required for viral viability. The central hypothesis of this R21 grant is that compounds that attach to the UL54-binding pocket of UL44 will inhibit the formation of the UL44:UL54 complex and thus inhibit viral replication. Our hypothesis has been formulated based upon a variety of studies that show that inhibition of the protein-protein interaction between UL44 and UL54 halts viral replication and our preliminary studies which have used computational and rational design to create compounds that inhibit complex formation. Exploration of compounds that inhibit the UL44:UL54 interaction will be done following according to two specific aims: 1. Identify novel inhibitors of the UL54:UL44 complex based upon mimicking the ?-helix of the C-terminus of the UL54 protein. 2. Identify novel inhibitors of the UL54:UL44 complex by in silico pharmacophore screening of databases of commercially available compounds. At the conclusion of this study, we expect that a foundation for a new class of anti-CMV agents will be laid, which in turn, will provide the basis for future intensive medicinal chemistry efforts.

Public Health Relevance

Cytomegalovirus (CMV) infection is the most common congenital infection in the United States and major problem for immunocompromised patients. Unfortunately, existing agents to treat CMV are less then ideal. As an outcome of the proposed investigations, we expect to develop new therapeutic agents targeted to the disruption of a critical protein-protein interaction within CMV DNA replication. This contribution is significant because it is expected to provide new anti-CMV agents that will function on a viral target different from existing therapies and once such therapies become available, there is the expectation that these agents will positively impact the treatment of CMV in children and immunocompromised patients. Finally, the information learned during the development of inhibitors of the UL44:UL54 interaction in CMV should be applicable to other herpesviruses which have been demonstrated to require a similar protein-protein interaction.

Agency
National Institute of Health (NIH)
Institute
National Institute of Allergy and Infectious Diseases (NIAID)
Type
Exploratory/Developmental Grants (R21)
Project #
3R21AI075239-02S1
Application #
7918586
Study Section
Synthetic and Biological Chemistry A Study Section (SBCA)
Program Officer
Dempsey, Walla L
Project Start
2008-09-02
Project End
2010-08-31
Budget Start
2009-09-02
Budget End
2010-08-31
Support Year
2
Fiscal Year
2009
Total Cost
$64,765
Indirect Cost
Name
Wayne State University
Department
Radiation-Diagnostic/Oncology
Type
Schools of Pharmacy
DUNS #
001962224
City
Detroit
State
MI
Country
United States
Zip Code
48202
Adamson, Trinka W; Diaz-Arevalo, Diana; Gonzalez, Tracey M et al. (2013) Hypothermic endpoint for an intranasal invasive pulmonary aspergillosis mouse model. Comp Med 63:477-81
Dewal, Mahender B; Wani, Amit S; Vidaillac, Celine et al. (2012) Thieno[2,3-d]pyrimidinedione derivatives as antibacterial agents. Eur J Med Chem 51:145-53
Dewal, M B; Firestine, S M (2011) Non-peptidic ?-helical mimetics as protein-protein interaction inhibitors. Curr Med Chem 18:2420-8
Firestine, Steven M; Wu, Weidong; Youn, Hasik et al. (2009) Interrogating the mechanism of a tight binding inhibitor of AIR carboxylase. Bioorg Med Chem 17:794-803