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Chemistry and Pharmacology of Drug Discovery
5 Efficacy and Safety
In the preclinical study, pacritinib (1) potently blocked JAK/STAT signaling pathway, induced apoptosis, and effectively abridged neoplastic cell proliferation in a dose­dependent manner. Pacritinib SET-2 and BaF3 xenograft model with resolution of hepatosplenomegaly in the absence of hematologic toxicities such as anemia or thrombocytopenia or leukopenia and prolonged
survival.
In phase I/II trial (NCT00719836), pacritinib (1) demonstrated promising
clinical activity in patients
20
malignancies.
In phase I dose-escalation component, adults with advanced myeloid malignancies were treated with once-daily (qd) pacritinib Among the several dose levels tested, there was a less than proportionate increase in systemic exposure at doses from 100 to 400 mg, with negligible increase in exposure >400 mg daily. Therefore, 400 mg daily (qd) was identified as the recommended phase II dose for further evaluation.
In the phase I study, the majority of the patients (86%) experienced clinical benefit. In patients with myelofibrosis, the clinical benefit rate was 94% (vs 43% in patients with acute myeloid leukemia). In the phase II study pacritinib promising result: 23.5% of evaluable patients achieved a spleen volume reduction of
35% by MRI from baseline to week 24.20 However, phase III studies of pacritinib (1), PERSIST-1 and PERSIST-2, were placed on hold by the FDA in February 2016 due to due to concerns over interim survival results, bleeding, and cardiovascular events. hold was removed by FDA on January 5, 2017, upon review of the final phase III PERSIST-1 data, final data from the phase III PERSIST-2 study, and planned dose comparison protocol in patients with failure of prior JAK2-directed therapy.
Phase III PERSIST-2 randomized 311 patients with baseline thrombocytopenia (platelet count 100 × 109/L) to pacritinib BAT (45% received ruxolitinib). Combined analysis of patients on both pacritinib
arms found improved rates of ≥35% spleen reduction compared to BAT (18% vs 3%,
p = 0.001) based on computed tomography (CT) or magnetic resonance imaging (MRI). Pacritinib
(1) 200 mg twice daily was most effective at improving hemoglobin levels and
reducing the transfusion burden. Plans are currently underway to launch the randomized phase III PACIFICA trial in patients with severe thrombocytopenia (platelet count 50 × 109/L) comparing pacritinib
The most common adverse reactions of pacritinib diarrhea, thrombocytopenia, anemia, nausea, and peripheral enema. The most frequent serious adverse reactions included pneumonia, cardiac failure, disease progression, pyrexia, and squamous cell carcinoma of skin.
(1) recapitulated these results in a JAK2 V617F-dependent
with myelofibrosis and other advanced myeloid
(1) 100–600 mg (n = 43).
21
(1) showed
22
This
23
(1) 200 mg twice daily, 400 mg daily, and
(1)
(1) 200 mg daily vs physician’s choice.
(1) in the clinical trials were
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Chapter 8. Pacritinib (Vonjo)
6 Synthesis
The synthesis of pacritinib (1) was first disclosed in the patent published in 2007.24 Later in 2011, the modified synthesis of pacritinib (1) was published in the J. Med. Chem. by William et al. from the same company. was synthesized by Suzuki coupling of commercially available 2,4-dichloropyrimidine 13 and boronic acid 14 affording the corresponding biaryl alcohol 15 which was then subjected to the reaction with allyl bromide in the presence of tetrabutylammonium hydrogensulfate (TBAHSO
) to give the diether 16.
4
19
According to this synthetic route, fragment 16
The second fragment 21 was synthesized starts with the nucleophilic attack of 2­hydroxy-5-nitrobenzaldehyde 17 to 1-bromo-2-chloroethane in the presence of potassium carbonate to afford the aromatic ether 18. The reduction of the aldehydic group of compound 18 afforded the benzylic alcohol 19 which was then subjected to the reaction with allyl bromide in the presence of tetrabutylammonium hydrogen sulfate (TBAHSO to give the diether 20. The nitro group of diether 20 was reduced to amine under iron/ammonium chloride conditions to produce the amine 21.
)
4
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Chemistry and Pharmacology of Drug Discovery
After the nucleophilic aromatic substitution of compound 21 with compound 16 to get compound 22, the ring-closing metathesis (RCM) afforded the macrocycle 23 via ruthenium-based approach using the Zhan catalyst 1B. The macrocycle 23 was obtained as inseparable mixtures of approximately 85:15 E/Z geometry. Compound 24 was finally
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Chapter 8. Pacritinib (Vonjo)
obtained via nucleophilic addition of pyrrolidine to the chloride of macrocycle 23 in excellent yield and used directly for biological study as reported in the journal of medicinal chemistry.
19
In 2018, a patent25 claimed a method of separating the isomers
applying an ion exchange medium comprising silver ions to give pure pacritinib (1).
Later in 2017, the selectivity of the RCM of diene 22 was further improved by
26
Shen et al.
using their molybdenum monoaryloxide pyrrolide complex catalyst (Mo-1). They initially examined the RCM of boryl-diene 25. Subjection of 25 to 10 mol% Mo-1 at ambient temperature for 12 h resulted in an inefficient reaction (25% conversion; 17% product 26) with higher E selectivity (93/7 E/Z). When the same reaction was performed with an equivalent of B(C isolated in 60% yield and 95/5 E/Z selectivity.
to avoid catalyst deactivation, product 26 could be
6F5)3
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Chemistry and Pharmacology of Drug Discovery
The same procedure with triether 27 is highly stereoselective, but the yield is
lower (34%). Triether 27 contains an additional di-ether fragment that might coordinate
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to the Lewis acidic molybdenum center to cause reduced catalyst activity; this was a concern because the basicity of the new ether oxygen might be enhanced by the para amino group. Therefore, they investigated the Boc-protected variant 28 assuming that this modification would more firmly diminish the Lewis basicity of the pyrimidine and the bis(ether) moiety. Thus subjecting 28 to the same reaction conditions but without B(C yield of 73% and 92/8 E/Z selectivity.
, and then removing the protecting group, resulted in product 23 at an overall
6F5)3
Chapter 8. Pacritinib (Vonjo)
7 Summary
Though the phase III studies of pacritinib (1) were placed on hold by the FDA in February 2016 due to concerns over interim survival results, bleeding, and cardiovascular events. Its developers did not lost courage and came with more detailed and comprehensive data to satisfy FDA to remove the hold on its clinical trial and then pacritinib (1) received its first accelerated conditional approval on February 28, 2022, in the United States for the treatment of thrombocythemia and myelofibrosis. This accelerated approval of pacritinib (1) will facilitate robust collection of real-world data that would further help to understand the fullest extent of efficacy and safety of pacritinib (1) in patients with myelofibrosis and severe thrombocytopenia. In patients with myelofibrosis and thrombocytopenia, including those with prior anti-JAK therapy, pacritinib (1) twice daily is more effective than BAT, including ruxolitinib (2), for reducing splenomegaly and symptoms.
References
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Chapter 8. Pacritinib (Vonjo)
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____________________________________________________________
Tucatinib (Tukysa): An Oral, Selective HER2
Inhibitor for the Treatment of HER2-Positive
Solid Tumors
Fengtao Zhou and Ke Ding
Tucatinib (1, Tukysa, ONT-380) was an oral highly selective human epidermal growth­factor receptor-2 (HER-2) tyrosine kinase inhibitor, developed by Seattle Genetics (SeaGen). Tucatinib (1) was approved in April 2020 for the treatment of unresectable or metastatic HER2-positive breast cancer in combination with trastuzumab and capecitabine.
Before the approval of tucatinib (1), the dual tyrosine kinase inhibitors lapatinib
(2) and covalent inhibitor neratinib (3) have been clinically used to treat patients with HER2-positive metastatic breast cancer (Figure
neratinib (3) displayed off-target adverse effects, including diarrhea and skin rashes, due to the no selective blockage of both HER2 and EGFR. Tucatinib (1) is the first highly selective HER2 inhibitor with approximately 500-fold more potent activities against HER2 than EGFR, which exhibits fewer side effects resulting from the inhibition of
1
EGFR. HER-2 positive breast cancer harboring brain metastases since it could cross the blood-
Furthermore, tucatinib (1) displays great potential to be used for the treatment of
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.
1). However, both lapatinib (2) and