Discovery of Novel Small-Molecule Inhibitors of LIM Domain Kinase for Inhibiting HIV-1

Author:

Yi Fei1,Guo Jia1,Dabbagh Deemah1,Spear Mark1,He Sijia2,Kehn-Hall Kylene1,Fontenot Jacque1,Yin Yan3,Bibian Mathieu3,Park Chul Min3,Zheng Ke3,Park Ha Jeung3,Soloveva Veronica45,Gharaibeh Dima4,Retterer Cary4,Zamani Rouzbeh4,Pitt Margaret L.4,Naughton John6,Jiang Yongjun2,Shang Hong2,Hakami Ramin M.1,Ling Binhua7,Young John A. T.6,Bavari Sina4,Xu Xuehua8,Feng Yangbo9,Wu Yuntao1ORCID

Affiliation:

1. National Center for Biodefense and Infectious Diseases, George Mason University, Manassas, Virginia, USA

2. Department of Laboratory Medicine, China Medical University, Shenyang, China

3. Medicinal Chemistry, Translational Research Institute, The Scripps Research Institute, Jupiter, Florida, USA

4. U.S. Army Medical Research Institute of Infectious Diseases, Frederick, Maryland, USA

5. Henry M. Jackson Foundation, Bethesda, Maryland, USA

6. Nomis Foundation Laboratories for Immunobiology and Microbial Pathogenesis, Salk Institute of Biological Studies, La Jolla, California, USA

7. Tulane National Primate Research Center, Covington, Louisiana, USA

8. Laboratory of Immunogenetics, National Institute of Allergy and Infectious Diseases, Rockville, Maryland, USA

9. Reaction Biology Corporation, Malvern, Pennsylvania, USA

Abstract

ABSTRACT A dynamic actin cytoskeleton is necessary for viral entry, intracellular migration, and virion release. For HIV-1 infection, during entry, the virus triggers early actin activity by hijacking chemokine coreceptor signaling, which activates a host dependency factor, cofilin, and its kinase, the LIM domain kinase (LIMK). Although knockdown of human LIM domain kinase 1 (LIMK1) with short hairpin RNA (shRNA) inhibits HIV infection, no specific small-molecule inhibitor of LIMK has been available. Here, we describe the design and discovery of novel classes of small-molecule inhibitors of LIMK for inhibiting HIV infection. We identified R10015 as a lead compound that blocks LIMK activity by binding to the ATP-binding pocket. R10015 specifically blocks viral DNA synthesis, nuclear migration, and virion release. In addition, R10015 inhibits multiple viruses, including Zaire ebolavirus (EBOV), Rift Valley fever virus (RVFV), Venezuelan equine encephalitis virus (VEEV), and herpes simplex virus 1 (HSV-1), suggesting that LIMK inhibitors could be developed as a new class of broad-spectrum antiviral drugs. IMPORTANCE The actin cytoskeleton is a structure that gives the cell shape and the ability to migrate. Viruses frequently rely on actin dynamics for entry and intracellular migration. In cells, actin dynamics are regulated by kinases, such as the LIM domain kinase (LIMK), which regulates actin activity through phosphorylation of cofilin, an actin-depolymerizing factor. Recent studies have found that LIMK/cofilin are targeted by viruses such as HIV-1 for propelling viral intracellular migration. Although inhibiting LIMK1 expression blocks HIV-1 infection, no highly specific LIMK inhibitor is available. This study describes the design, medicinal synthesis, and discovery of small-molecule LIMK inhibitors for blocking HIV-1 and several other viruses and emphasizes the feasibility of developing LIMK inhibitors as broad-spectrum antiviral drugs.

Funder

U.S. Department of Health and Human Services

DOD | Defense Threat Reduction Agency

Publisher

American Society for Microbiology

Subject

Virology,Insect Science,Immunology,Microbiology

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