Paul F. Richardson
Pfizer
Network
Latest external collaboration on country level. Dive into details by clicking on the dots.
Publication
Featured researches published by Paul F. Richardson.
Journal of Medicinal Chemistry | 2014
Ted W. Johnson; Paul F. Richardson; Simon Bailey; Alexei Brooun; Benjamin J. Burke; Michael Raymond Collins; J. Jean Cui; Judith Gail Deal; Ya-Li Deng; Dac M. Dinh; Lars D. Engstrom; Mingying He; Jacqui Elizabeth Hoffman; Robert Louis Hoffman; Qinhua Huang; Robert Steven Kania; John Charles Kath; Hieu Lam; Justine L. Lam; Phuong Thi Quy Le; Laura Lingardo; Wei Liu; Michele McTigue; Cynthia Louise Palmer; Neal W. Sach; Tod Smeal; Graham L. Smith; Albert E. Stewart; Sergei Timofeevski; Huichun Zhu
Although crizotinib demonstrates robust efficacy in anaplastic lymphoma kinase (ALK)-positive non-small-cell lung carcinoma patients, progression during treatment eventually develops. Resistant patient samples revealed a variety of point mutations in the kinase domain of ALK, including the L1196M gatekeeper mutation. In addition, some patients progress due to cancer metastasis in the brain. Using structure-based drug design, lipophilic efficiency, and physical-property-based optimization, highly potent macrocyclic ALK inhibitors were prepared with good absorption, distribution, metabolism, and excretion (ADME), low propensity for p-glycoprotein 1-mediated efflux, and good passive permeability. These structurally unusual macrocyclic inhibitors were potent against wild-type ALK and clinically reported ALK kinase domain mutations. Significant synthetic challenges were overcome, utilizing novel transformations to enable the use of these macrocycles in drug discovery paradigms. This work led to the discovery of 8k (PF-06463922), combining broad-spectrum potency, central nervous system ADME, and a high degree of kinase selectivity.
Journal of Medicinal Chemistry | 2014
Qinhua Huang; Ted W. Johnson; Simon Bailey; Alexei Brooun; Kevin D. Bunker; Benjamin J. Burke; Michael Raymond Collins; Andrew Simon Cook; J. Jean Cui; Kevin Neil Dack; Judith Gail Deal; Ya-Li Deng; Dac M. Dinh; Lars D. Engstrom; Mingying He; Jacqui Elizabeth Hoffman; Robert Louis Hoffman; Patrick Stephen Johnson; Robert Steven Kania; Hieu Lam; Justine L. Lam; Phuong Thi Quy Le; Qiuhua Li; Laura Lingardo; Wei Liu; Melissa West Lu; Michele McTigue; Cynthia Louise Palmer; Paul F. Richardson; Neal W. Sach
Crizotinib (1), an anaplastic lymphoma kinase (ALK) receptor tyrosine kinase inhibitor approved by the U.S. Food and Drug Administration in 2011, is efficacious in ALK and ROS positive patients. Under pressure of crizotinib treatment, point mutations arise in the kinase domain of ALK, resulting in resistance and progressive disease. The successful application of both structure-based and lipophilic-efficiency-focused drug design resulted in aminopyridine 8e, which was potent across a broad panel of engineered ALK mutant cell lines and showed suitable preclinical pharmacokinetics and robust tumor growth inhibition in a crizotinib-resistant cell line (H3122-L1196M).
Journal of Medicinal Chemistry | 2011
Ted W. Johnson; Steven P. Tanis; Scott L. Butler; Deepak Dalvie; Dorothy M. DeLisle; Klaus Ruprecht Dress; Erik J. Flahive; Qiyue Hu; Jon E. Kuehler; Atsuo Kuki; Wen Liu; Guy A. McClellan; Qinghai Peng; Michael Bruno Plewe; Paul F. Richardson; Graham L. Smith; Jim Solowiej; Khanh Tuan Tran; Hai Wang; Xiaoming Yu; Junhu Zhang; Huichun Zhu
HIV-1 integrase (IN) is one of three enzymes encoded by the HIV genome and is essential for viral replication, and HIV-1 IN inhibitors have emerged as a new promising class of therapeutics. Recently, we reported the synthesis of orally bioavailable azaindole hydroxamic acids that were potent inhibitors of the HIV-1 IN enzyme. Here we disclose the design and synthesis of novel tricyclic N-hydroxy-dihydronaphthyridinones as potent, orally bioavailable HIV-1 integrase inhibitors displaying excellent ligand and lipophilic efficiencies.
Organic Letters | 2011
Kevin D. Bunker; Neal W. Sach; Qinhua Huang; Paul F. Richardson
The reaction of [1.1.1]propellane with di-tert-butyl azodicarboxylate and phenylsilane in the presence of Mn(dpm)(3) to give di-tert-butyl 1-(bicyclo[1.1.1]pentan-1-yl)hydrazine-1,2-dicarboxylate is described. Subsequent deprotection gives 1-bicyclo[1.1.1]pentylhydrazine followed by reduction to give 1-bicyclo[1.1.1]pentylamine. The reported route marks a significant improvement over the previous syntheses of 1-bicyclo[1.1.1]pentylamine in terms of scalability, yield, safety, and cost.
ACS Medicinal Chemistry Letters | 2011
Kevin Liu; JinJiang Zhu; Graham L. Smith; Min-Jean Yin; Simon Bailey; Jeffrey H. Chen; Qiyue Hu; Qinhua Huang; Chunze Li; Qing J. Li; Matthew A. Marx; Genevieve Paderes; Paul F. Richardson; Neal W. Sach; Marlena Walls; Peter A. Wells; Aihua Zou
Highly selective PI3K inhibitors with subnanomolar PI3Kα potency and greater than 7000-fold selectivity against mTOR kinase were discovered through structure-based drug design (SBDD). These tetra-substituted thiophenes were also demonstrated to have good in vitro cellular potency and good in vivo oral antitumor activity in a mouse PI3K driven NCI-H1975 xenograft tumor model. Compounds with the desired human PK predictions and good in vitro ADMET properties were also identified. In this communication, we describe the rationale behind the installation of a critical triazole moiety to maintain the intricate H-bonding network within the PI3K receptor leading to both better potency and selectivity. Furthermore, optimization of the C-4 phenyl group was exploited to maximize the compounds mTOR selectivity.
Angewandte Chemie | 2016
Jeff Elleraas; Jason Ewanicki; Ted W. Johnson; Neal W. Sach; Michael Raymond Collins; Paul F. Richardson
Lorlatinib (PF-06463922) is an ALK/ROS1 inhibitor and is in clinical trials for the treatment of ALK positive or ROS1 positive NSCLC (i.e. specific subsets of NSCLC). One of the laboratory objectives for this molecule indicated that it would be desirable to advance a molecule which was CNS penetrant in order to treat brain metastases. From this perspective, a macrocyclic template was attractive for a number of reasons. In particular, this template reduces the number of rotatable bonds, provides the potential to shield polar surface area and reinforces binding through a restricted conformation. All of these features led to better permeability for the molecules of interest and thus increased the chance for better blood brain barrier penetration. With a CNS penetrant molecule, kinase selectivity is a key consideration particularly with regard to proteins such as TrkB, which are believed to influence cognitive function. Removal of the chiral benzylic methyl substituent from lorlatinib was perceived as not only a means to simplify synthetic complexity, but also as a strategy to further truncate the molecule of interest. Examination of the NMR of the desmethyl analogues revealed that the compound existed as a mixture of atropisomers, which proved separable by chiral SFC. The individual atropisomers were evaluated through a series of in vitro assays, and shown to have a favorable selectivity profile when compared to lorlatinib. The challenge to develop such a molecule lies in the rate at which the atropisomers interchange dictated by the energy barrier required to do this. Here, we describe the synthesis of the desmethyl macrocycles, conformational studies on the atropisomers, and the kinetics of the interconversion. In addition, the corresponding conformational studies on lorlatinib are reported providing a hypothesis for why a single diastereomer is observed when the chiral benzylic methyl group is introduced.
Journal of the American Chemical Society | 2017
Padmanabha V. Kattamuri; Jun Yin; Surached Siriwongsup; Doo Hyun Kwon; Daniel H. Ess; Qun Li; Guigen Li; Muhammed Yousufuddin; Paul F. Richardson; Scott C. Sutton; László Kürti
Given the importance of amines in a large number of biologically active natural products, active pharmaceutical ingredients, agrochemicals, and functional materials, the development of efficient C-N bond-forming methods with wide substrate scope continues to be at the frontier of research in synthetic organic chemistry. Here, we present a general and fundamentally new synthetic approach for the direct, transition-metal-free preparation of symmetrical and unsymmetrical diaryl-, arylalkyl-, and dialkylamines that relies on the facile single or double addition of readily available C-nucleophiles to the nitrogen atom of bench-stable electrophilic aminating agents. Practical single and double polarity reversal (i.e., umpolung) of the nitrogen atom is achieved using sterically and electronically tunable ketomalonate-derived imines and oximes. Overall, this novel approach represents an operationally simple, scalable, and environmentally friendly alternative to transition-metal-catalyzed C-N cross-coupling methods that are currently used to access structurally diverse secondary amines.
Journal of Medicinal Chemistry | 2015
Qinhua Huang; Eugene Y. Rui; Morena Cobbs; Dac M. Dinh; Hovhannes J. Gukasyan; Jennifer Lafontaine; Saurabh Mehta; Brian D. Patterson; D.A. Rewolinski; Paul F. Richardson; Martin Paul Edwards
The antiglaucoma drugs dorzolamide (1) and brinzolamide (2) lower intraocular pressure (IOP) by inhibiting the carbonic anhydrase (CA) enzyme to reduce aqueous humor production. The introduction of a nitric oxide (NO) donor into the alkyl side chain of dorzolamide (1) and brinzolamide (2) has led to the discovery of NO-dorzolamide 3a and NO-brinzolamide 4a, which could lower IOP through two mechanisms: CA inhibition to decrease aqueous humor secretion (reduce inflow) and NO release to increase aqueous humor drainage (increase outflow). Compounds 3a and 4a have shown improved efficacy of lowering IOP in both rabbits and monkeys compared to brinzolamide (2).
Molecular Cancer Therapeutics | 2013
Ted W. Johnson; Simon Bailey; Benjamin J. Burke; Michael Raymond Collins; J. Jean Cui; Judy G. Deal; Ya-Li Deng; Martin Paul Edwards; Mingying He; Jacqui Elizabeth Hoffman; Robert L. Hoffman; Qinhua Huang; Robert Steven Kania; Phuong T. Le; Michele McTigue; Cynthia Louise Palmer; Paul F. Richardson; Neal W. Sach; Graham L. Smith; Lars D. Engstrom; Wenyue Hu; Hieu Lam; Justine L. Lam; Tod Smeal; Helen Y. Zou
Oncogenic fusions of anaplastic lymphoma kinase (ALK) define a subset of human lung adenocarcinoma. The 1st generation ALK inhibitor crizotinib demonstrated impressive clinical benefit in ALK-fusion positive lung cancers and was approved by the FDA for the treatment of ALK-fusion positive NSCLC in 2011. However, as seen with most kinase inhibitors, patients treated with crizotinib eventually develop resistance to therapy. Acquired ALK kinase domain mutations and disease progression in the central nervous system (CNS) are reported as main contributors to patient relapse after ALK inhibitor therapy. Preclinically, crizotinib lacks significant brain penetration and does not potently inhibit activity of ALK kinase domain mutants, so a drug discovery program was initiated aimed to develop a second generation ALK inhibitor that is more potent than existing ALK inhibitors, capable of inhibiting the resistant ALK mutants and penetrating the blood-brain-barrier. These objectives present a considerable challenge in kinase inhibitor chemical space. Here we report that PF-06463922, a novel small molecule ATP-competitive inhibitor of ALK/ROS1, showed exquisite potencies against non-mutant ALK (Ki 100 fold kinase selectivity against 95% of the kinases tested in a 207 recombinant kinase panel. Specific design considerations were developed leading to novel ATP-competitive kinase inhibitors with desired low efflux in cell lines over-expressing p-glycoprotein and breast cancer resistance protein, providing excellent blood-brain-barrier and cell penetration properties. Efforts to optimize ligand efficiency and lipophilic efficiency leveraging structure based drug design techniques led to ligands with overlapping broad spectrum potency and low efflux. Single and repeat dose preclinical rat in vivo studies of PF-06463922 demonstrated excellent oral bioavailability and CNS availability with free brain exposure approximately 30% of free plasma levels. In addition, CNS-directed safety studies showed no adverse events at predicted efficacious concentrations. It is anticipated that PF-06463922 with its potent activities on non-mutant ALK, ALK kinase domain mutations and CNS metastases would provide great promise for patients with ALK and ROS1 positive cancers. Citation Information: Mol Cancer Ther 2013;12(11 Suppl):PR10. Citation Format: Ted W. Johnson, Simon Bailey, Benjamin J. Burke, Michael R. Collins, J. Jean Cui, Judy Deal, Ya-Li Deng, Martin P. Edwards, Mingying He, Jacqui Hoffman, Robert L. Hoffman, Qinhua Huang, Robert S. Kania, Phuong Le, Michele McTigue, Cynthia L. Palmer, Paul F. Richardson, Neal W. Sach, Graham L. Smith, Lars Engstrom, Wenyue Hu, Hieu Lam, Justine L. Lam, Tod Smeal, Helen Y. Zou. Is CNS availability for oncology a no-brainer? Discovery of PF-06463922, a novel small molecule inhibitor of ALK/ROS1 with preclinical brain availability and broad spectrum potency against ALK-resistant mutations. [abstract]. In: Proceedings of the AACR-NCI-EORTC International Conference: Molecular Targets and Cancer Therapeutics; 2013 Oct 19-23; Boston, MA. Philadelphia (PA): AACR; Mol Cancer Ther 2013;12(11 Suppl):Abstract nr PR10.
Annual Reports in Medicinal Chemistry | 2012
Paul F. Richardson
Abstract Narrow therapeutic index and side effects continue to be a hurdle for pharmacotherapy of cancer. Advances in our knowledge of molecular biology of cancer and pathways involved in malignant transformation of cells are revolutionizing the approach to cancer treatment in terms of the molecules employed. However, targeted drug delivery to tumor tissues remains an elusive challenge, and nanotechnology has been promoted as a promising solution to address this. Several nanoparticulate therapeutics are approved for use (e.g., Abraxane, Doxil), for cancer treatment, and have been on the market for some time. This chapter is intended to survey (i) the advantages that these therapeutics have over conventional therapeutics, (ii) the current development of new improved nanoparticulate therapeutics for cancer, and (iii) an overview of emerging technologies for the development of tumor-targeted nanomedicines.