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Preface
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Our first five installments Wiley’s Drug Synthesis Series, Contemporary Drug Synthesis, The Art of Drug Synthesis, Modern Drug Synthesis, Innovative Drug Synthesis, and Current Drug Synthesis were published in
2004, 2007, 2010, 2015, and 2022, respectively. They have been warmly received by the drug discovery community. The current title, Chemistry and Pharmacology of Drug Discovery, is our sixth installment of this series.
This book has five sections, reviewing a total of 17 drugs. Section I, “Drugs Treating Infectious Diseases,” covers six drugs; Section II, “Oncology Drugs,” reviews four drugs; Section III, “CNS Drugs,” covers four drugs; Section IV Anti-inflammatory Drugs, reviews only one drug; and Section V, “Miscellaneous Drugs,” covers two additional drugs.
Each chapter is divided into seven sections as before:
1. Background
2. Pharmacology
3. Structure–activity relationship
4. Pharmacokinetics and drug metabolism
5. Efficacy and safety
6. Syntheses
7. Summary
8. References
I am very m uch indebted to all contributing authors from both industry and academia. Many of them are veterans and well-known experts in medicinal chemistry. S ome of them discovered the drugs that they reviewed. As a consequence, their work tremendously elevated the quality of this book as a teaching tool.
Meanwhile, I welcome your critique and suggestions so we can make this Wiley’s Drug Synthesis Series even more useful to the drug discovery/development community.
Jack Li
Jie
Ann Arbor, Michigan
February 1, 2024
Contributing Authors
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Prof. Timothy A. Cernak Department of Chemistry University of Michigan 500 S State St. Ann Arbor, MI 48109, USA
Dr. Dao-Qian Chen STA, 90 Delin Road Pudong New District, Shanghai P. R. China
Prof. Ke Ding State Key Laboratory of Chemical Biology Shanghai Institute of Organic Chemistry, Chinese Academy of Sciences 345 Fenglin Road Shanghai 200032, P. R. China
Dr. Faridoon Genhouse Bio Floor 4, Building No.8, No.1 Xinze Road, SIP, Suzhou 215000, P. R. China
Prof. Timothy J. Hagen Department of Chemistry and Biochemistry Northern Illinois University Faraday Hall DeKalb, IL 60115, USA
Charles L. Lail III Department of Chemistry and Biochemistry Northern Illinois University Faraday Hall DeKalb, IL 60115, USA
200131,
Dr. Jie Jack Li Genhouse Bio Floor 4, Building No.8, No.1 Xinze Road, SIP, Suzhou 215000, P. R. China
Dr. Xiang Li Beijing Kawin Technology 5 Rongjing E. St BDA, Beijing 100176, P. R. China
Dr. Guanglin Luo
Discovery Chemistry
Bristol-Myers Squibb Co. 3551 Lawrenceville Road Lawrence Township, NJ 08648, USA
Dr. Daljit Matharu Medicinal Chemistry Sanofi 350 Water Street Cambridge, MA 02141, USA
Andrew Outlaw Department of Chemistry University of Michigan 500 S State St Ann Arbor, MI 48109, USA
Dr. Yan Wang ChemPartner 280 Utah Avenue, Suite 100 South San Francisco, CA 94080, USA
Dr. Tao Wang Beijing Kawin Technology 5 Rongjing E. St BDA, Beijing 100176, P. R. China
Dr. Dexi Yang
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QuantX Biosciences 214 Carnegie Center, Suite 108 Princeton, NJ 08540, USA
Dr. Guiping Zhang Genhouse Bio Floor 4, Building No.8, No.1 Xinze Road, SIP, Suzhou 215000, P. R. China
Dr. Shaohui Yu NuChem Sciences 2350 Cohen Street, Suite 201 Ville St-Laurent, QC H4R 2N6 Canada
Yuqi Lavender Zha Sanegene Bio Room 301, Building 2, Zone B, Phase III of BioBAY, No.99 Jingu Road, SIP, Suzhou 215000, P. R. China
Dr. Ji Zhang HEC Pharm R&D Center Pharmaceutical Science
Dongguan Guangdong, P. R. China
Ruheng Zhao Department of Chemistry University of Michigan 500 S State St Ann Arbor, MI 48109, USA
,
Section I. DRUGS TREATING INFECTIOUS DISEASES
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________________________________________________________________________________
Nirmatrelvir (Paxlovid with Ritonavir): A 3-
Chymotrypsin-like Protease Inhibitor for
Treating SARS-CoV-2 Infection
Jie Jack Li
Chemistry and Pharmacology of Drug Discovery, First Edition. Edited by Jie Jack Li. © 2025 John Wiley & Sons, Inc. Published 2025 by John Wiley & Sons, Inc.
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Chemistry and Pharmacology of Drug Discovery
1. Background
The coronavirus disease-2019 (COVID-19) pandemic began in December 2019. Since then on, it has infected over 537 million people and led to more than 6.5 million deaths worldwide.
Some 20 years ago in 2002, severe acute respiratory syndrome (SARS) flared up. In order to discover drugs to treat SARS, Pfizer carried out a fluorescence resonance energy transfer (FRET)-based substrate cleavage assay. PF-00835231 (3) was identified as a potent inhibitor of 3-CL out quickly, Pfizer subsequently discontinued the project.
pro
of recombinant SARS-CoV-1. But since SARS petered
2
After the explosion of COVID-19 in 2020, Pfizer prepared PF-00835231 (3)’s phosphate prodrug PF-07304814 (4) in an effort to boost the solubility. But PF-07304814 (4) still lacked oral bioavailability and had to be given intravenously. Later on, Pfizer discontinued clinical trials for PF-07304814 (4) when their orally bioavailable 3-CL inhibitors became promising. After the discovery of orally bioavailable nirmatrelvir (1), its combination drug with ritonavir (2), Paxlovid, was approved by the FDA in December
3
2021. In November 2022, Shionogi received Japanese government’s approval for its
pro
oral 3-CL
inhibitor, ensitrelvir (5, Xocova), which is not a peptidomimetic and is orally
bioavailable drug by itself without adding a pharmaco-enhancer.
pro
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Chapter 1. Nirmatrelvir (Paxlovid)
2. Pharmacology
2.1. The Coronavirus
SARS-CoV-2 is a positive-sense single-stranded RNA (+ssRNA) virus surrounded by an envelope. The virus’s genome (Figure
it has about 30,000 RNA nucleotides in total.
1) consists of 11 open reading frames (ORFs) and
At the left of Figure 1, located at the 5′-end of the genome are the first two open reading frames (ORF1a and ORF1b) that occupy approximately two-thirds of the genome and encode 16 nonstructural proteins. At the right, the other ORFs are located at the 3′­end of the genome and encode four common structural proteins including spike (S), envelop (E), membrane (M), and nucleocapsid (N) proteins. The E and M proteins are responsible for the shape of the virus, while the S protein mediates receptor attachment and viral and host cell membrane fusion. The nucleocapsid (N) protein binds to the viral
RNA and forms a ribonucleoprotein that is packaged in the virus envelope (Figure
Figure 1. Coronavirus RNA genome
2).
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ORF1a and ORF1b produce polyproteins 1a (pp1a, ~450 kDa) and 1b (pp1b, ~750 kDa), respectively, for which the lengths and amino acid sequences are rather conserved among all known coronaviruses. Among the nonstructural proteins are two very large polyproteins (pp1a and pp1b) that are cleaved by two or three viral proteases.
Chemistry and Pharmacology of Drug Discovery
Figure 2. Coronavirus’s structure and functions
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2.2. The 3CL Protease
Historically, proteases have been tractable drug targets for treating a variety of diseases. Drugs targeting proteases include angiotensin converting enzyme (ACE) inhibitors such as enalapril (6, Vasotec) for treating hypertension; neuraminidase inhibitors for treating influenza; dipeptidyl peptidase-4 (DPP-4) inhibitors such as vildagliptin (7, Galvus) for treating type II diabetes; HIV protease inhibitors as represented by ritonavir (2) for treating HIV/AIDS; and HCV NS3/4A serine protease inhibitors, e.g., boceprevir (8, Victrelis) and narlaprevir (9, Arlansa), for treating HCV infection. Therefore, 3CL protease is considered as a prominent target for antiviral drugs.
Almost all protease inhibitors are transition-state mimics that are peptidomimetics resulted from truncation and de-peptization of endogenous substrates. Influenza neuraminidase inhibitors are the exceptions. This strategy had paved the road for the discovery of nirmatrelvir (1). In fact, some of nirmatrelvir (1)’s building blocks were directly “borrowed” from older protease inhibitors such as DPP-4 inhibitor vildagliptin (7) and HCV NS3/4A protease inhibitors boceprevir (8) and narlaprevir (9, vide infra).
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Chapter 1. Nirmatrelvir (Paxlovid)
Coronavirus’s two cysteine proteases papain-like cysteine protease (PL
pro
are responsible for cleaving polyproteins. The combined proteolytic actions of 3-
3-CL CL
pro
and PL
pro
produce various shorter, nonstructural proteins vital to viral replication
pro
) and
such as RNA-dependent RNA polymerase and helicase that are required in viral life cycle. 3-CL
Figure
composed of two protomers that consist of three domains, namely I, II, and III (Figure
pro
itself cleaves two polyproteins (pp1a and pp1b) at 11 different sites (see
7
1).
Structurally, 3-CL
pro
is a three-domain cysteine protease. It is a homodimer
3).
The homodimer forms due to the interactions between the N-terminus of domain I + I and the C-terminus of domain III. This dimer is reversible and more stable when a substrate is bound. The catalytic dyad Cys145–His41 is located in a cleft between the domains I and II, whereas domain III is just a cluster of helices. The protease is a highly conserved key protease for SARS-CoV-2 replication and no relevant homologous protein
pro
with a similar cleavage site to 3CL
pro
development of 3CL
inhibitors offers great promise for treatment of COVID-19.7
has been identified in humans. Therefore,