scholarly journals Sheathing the Hybrid Cleaver: Exploring Substrate‐Envelope‐Guided Drug Design with HIV‐1 RNase H

2020 ◽  
Vol 34 (S1) ◽  
pp. 1-1
Author(s):  
Abigail E. Wilcox ◽  
Ahnika Cota ◽  
S. Alice Woodson ◽  
Audrey C. Shor
Keyword(s):  
Rnase H ◽  
Hiv 1 ◽  
2021 ◽  
Vol 28 ◽  
Author(s):  
Fengyuan Yang ◽  
Jingyi Yang ◽  
Zhao Zhang ◽  
Gao Tu ◽  
Xiaojun Yao ◽  
...  

: Acquired immunodeficiency syndrome (AIDS) has been a chronic, life-threatening disease for a long time. However, a broad range of antiretroviral drug regimens are applicable for the successful suppression of virus replication in human immunodeficiency virus type 1 (HIV-1) infected people. The mutation-induced drug resistance problems during the treatment of AIDS forced people to continuously look for new antiviral agents. HIV-1 integrase (IN) and reverse transcriptase associated ribonuclease (RT-RNase H), two pivotal enzymes in HIV-1 replication progress, has gain popularity as drug-able targets for designing novel HIV-1 antiviral drugs. During the development of HIV-1 IN and/or RT-RNase H inhibitors, computer-aided drug design (CADD), including homology modeling, pharmacophore, docking, molecular dynamics (MD) simulation, and binding free energy calculation, represents a significant tool to accelerate the discovery of new drug candidates and reduce costs in antiviral drug development. In this review, we summarized the recent advances in the design of single-and dual-target inhibitors against HIV-1 IN or/and RT-RNase H as well as the prediction of mutation-induced drug resistance based on computational methods. We highlighted the results of the reported literature and proposed some perspectives on the design of novel and more effective antiviral drugs in the future.


2013 ◽  
Vol 20 (9) ◽  
pp. 1116-1124 ◽  
Author(s):  
Madhavi N.L. Nalam ◽  
Akbar Ali ◽  
G.S. Kiran Kumar Reddy ◽  
Hong Cao ◽  
Saima G. Anjum ◽  
...  

ACS Catalysis ◽  
2021 ◽  
pp. 7915-7927
Author(s):  
Simon L. Dürr ◽  
Olga Bohuszewicz ◽  
Dénes Berta ◽  
Reynier Suardiaz ◽  
Pablo G. Jambrina ◽  
...  

ACS Omega ◽  
2016 ◽  
Vol 1 (3) ◽  
pp. 435-447 ◽  
Author(s):  
Baofeng Zhang ◽  
Michael P. D’Erasmo ◽  
Ryan P. Murelli ◽  
Emilio Gallicchio

2004 ◽  
Vol 18 (12) ◽  
pp. 739-760 ◽  
Author(s):  
Rajeshri G. Karki ◽  
Yun Tang ◽  
Terrence R. Burke ◽  
Marc C. Nicklaus
Keyword(s):  
Anti Hiv ◽  

2013 ◽  
Vol 41 (8) ◽  
pp. 4601-4612 ◽  
Author(s):  
Mar Álvarez ◽  
Verónica Barrioluengo ◽  
Raquel N. Afonso-Lehmann ◽  
Luis Menéndez-Arias

2015 ◽  
Vol 89 (16) ◽  
pp. 8119-8129 ◽  
Author(s):  
Eytan Herzig ◽  
Nickolay Voronin ◽  
Nataly Kucherenko ◽  
Amnon Hizi

ABSTRACTThe process of reverse transcription (RTN) in retroviruses is essential to the viral life cycle. This key process is catalyzed exclusively by the viral reverse transcriptase (RT) that copies the viral RNA into DNA by its DNA polymerase activity, while concomitantly removing the original RNA template by its RNase H activity. During RTN, the combination between DNA synthesis and RNA hydrolysis leads to strand transfers (or template switches) that are critical for the completion of RTN. The balance between these RT-driven activities was considered to be the sole reason for strand transfers. Nevertheless, we show here that a specific mutation in HIV-1 RT (L92P) that does not affect the DNA polymerase and RNase H activities abolishes strand transfer. There is also a good correlation between this complete loss of the RT's strand transfer to the loss of the DNA clamp activity of the RT, discovered recently by us. This finding indicates a mechanistic linkage between these two functions and that they are both direct and unique functions of the RT (apart from DNA synthesis and RNA degradation). Furthermore, when the RT's L92P mutant was introduced into an infectious HIV-1 clone, it lost viral replication, due to inefficient intracellular strand transfers during RTN, thus supporting thein vitrodata. As far as we know, this is the first report on RT mutants that specifically and directly impair RT-associated strand transfers. Therefore, targeting residue Leu92 may be helpful in selectively blocking this RT activity and consequently HIV-1 infectivity and pathogenesis.IMPORTANCEReverse transcription in retroviruses is essential for the viral life cycle. This multistep process is catalyzed by viral reverse transcriptase, which copies the viral RNA into DNA by its DNA polymerase activity (while concomitantly removing the RNA template by its RNase H activity). The combination and balance between synthesis and hydrolysis lead to strand transfers that are critical for reverse transcription completion. We show here for the first time that a single mutation in HIV-1 reverse transcriptase (L92P) selectively abolishes strand transfers without affecting the enzyme's DNA polymerase and RNase H functions. When this mutation was introduced into an infectious HIV-1 clone, viral replication was lost due to an impaired intracellular strand transfer, thus supporting thein vitrodata. Therefore, finding novel drugs that target HIV-1 reverse transcriptase Leu92 may be beneficial for developing new potent and selective inhibitors of retroviral reverse transcription that will obstruct HIV-1 infectivity.


2008 ◽  
Vol 22 (S1) ◽  
Author(s):  
Zhigang Liu ◽  
Ravikiran Yedidi ◽  
Joseph Brunzelle ◽  
Iulia Kovari ◽  
Ladislau Kovari

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