Bruton's tyrosine kinase (BTK), a member of the TEC family of kinases, is an essential effector of B-cell receptor (BCR) signaling. Chronic activation of BTK-mediated BCR signaling is a hallmark of many hematological malignancies, which makes it an attractive therapeutic target. Pharmacological inhibition of BTK enzymatic function is now a well-proven strategy for the treatment of patients with these malignancies. We report the discovery and characterization of NX-2127, a BTK degrader with concomitant immunomodulatory activity. By design, NX-2127 mediates the degradation of transcription factors IKZF1 and IKZF3 through molecular glue interactions with the cereblon E3 ubiquitin ligase complex. NX-2127 degrades common BTK resistance mutants, including BTKC481S. NX-2127 is orally bioavailable, exhibits in vivo degradation across species, and demonstrates efficacy in preclinical oncology models. NX-2127 has advanced into first-in-human clinical trials and achieves deep and sustained degradation of BTK following daily oral dosing at 100 mg.
Supplementary Table S1. Percentage of enzyme activity following dialysis compared to a non-compound treated control; Supplementary Figure S1. PRN1371 inhibited SNU16 cell proliferation as assessed by BrdU incorporation; Supplementary Figure S2. PRN1371 treatment induces apoptosis via caspase activation.
Bruton's tyrosine kinase (BTK), a Tec family tyrosine kinase, is critical in immune pathways as an essential intracellular signaling element, participating in both adaptive and immune responses. Currently approved BTK inhibitors are irreversible covalent inhibitors and limited to oncology indications. Herein, we describe the design of covalent reversible BTK inhibitors and the discoveries of PRN473 (11) and rilzabrutinib (PRN1008, 12). These compounds have exhibited potent and durable inhibition of BTK, in vivo efficacy in rodent arthritis models, and clinical efficacy in canine pemphigus foliaceus. Compound 11 has completed phase 1 trials as a topical agent, and 12 is in phase 3 trials for pemphigus vulgaris and immune thrombocytopenia.
Abstract Bruton’s tyrosine kinase (BTK), expressed in B cells and cells of innate immunity, including microglia, is an essential signaling element downstream of the B‐cell receptor and Fc‐receptors. Tolebrutinib (PRN2246, SAR442168) is a potent BTK inhibitor that covalently binds the kinase, resulting in durable inhibition with the potential to target inflammation in the periphery and central nervous system (CNS). Tolebrutinib crosses the blood‐brain barrier and potently inhibits BTK in microglial cells isolated from the CNS. A first‐in‐human randomized, double‐blind, placebo‐controlled study of tolebrutinib was conducted. The trial design consisted of five single ascending dose arms with oral administration of a single dose of 5, 15, 30, 60, and 120 mg (n = 6 per arm, n = 2 placebo), five multiple ascending dose arms with oral administration of 7.5, 15, 30, 60, and 90 mg (n = 8 per arm, n = 2 placebo) over 10 days, and one arm (n = 4) in which cerebral spinal fluid (CSF) exposure was measured 2 h after a single 120 mg dose. Tolebrutinib was well‐tolerated in the study and all treatment‐related treatment emergent adverse events were mild. Tolebrutinib was rapidly absorbed following oral administration with a rapid half‐life of ~ 2 h. Peripheral BTK occupancy was assessed at various timepoints by an enzyme‐linked immunosorbent assay‐based readout using an irreversible probe. Assessments demonstrated extensive and prolonged peripheral BTK occupancy at steady‐state with once daily doses as low as 7.5 mg. Further, CSF exposure was demonstrated 2 h after administration at 120 mg.
Bruton's tyrosine kinase (BTK) plays a key role in cell survival in B cell malignancies, and covalent inhibitors of BTK, such as ibrutinib and acalabrutinib, have proven efficacious in chronic lymphocytic leukemia (CLL), mantle cell lymphoma (MCL), marginal zone lymphoma (MZL), and Waldenstrom's macroglobulinemia (WM). BTK inhibitors have also demonstrated clinical activity in small trials of patients with relapsed/refractory primary central nervous system lymphoma. The long-term efficacy of BTK inhibitors is limited by the emergence of resistance mutations, most commonly at C481 of BTK. These mutations preclude formation of a covalent bond with BTK and lead to diminished efficacy and disease progression. Several noncovalent BTK inhibitors, which do not require covalent binding to C481, are currently being investigated in clinical trials as potential therapies for patients with relapsed and refractory disease. However, other mutations have been shown to decrease the in vitro activity of these non-covalent BTK inhibitors, suggesting that mutations may ultimately limit the effectiveness of these compounds as well.
Bruton's tyrosine kinase (BTK) plays a key role in cell survival in B cell malignancies, such as chronic lymphocytic leukemia (CLL). Covalent inhibitors of BTK, such as ibrutinib and acalabrutinib, while effective, have been associated with the occurrence of resistance mutations. The most prevalent site of mutation, C481, renders covalent BTK inhibitors unable to form a covalent bond with BTK leading to diminished efficacy and disease progression. Small molecule-induced protein degradation offers a unique approach to target BTK for the treatment of B-cell malignancies. Chimeric Targeting Molecules (CTMs) catalyze ubiquitylation and proteasomal degradation of target proteins and are comprised of a ubiquitin ligase binding element ("harness"), a linker, and a target binding element ("hook"). NX-2127 is a CTM that contains a BTK hook linked to a cereblon (CRBN) harness. NX-2127 degrades 50% of cellular BTK (DC50) at < 5 nM across multiple cancer cell lines and in human PBMCs. BTK CTMs impair viability in the BTK-dependent ABC-DLBCL cell line, TMD8 (EC50: < 15 nM after 72 hours). Importantly, NX-2127 induces degradation of the mutated BTK-C481S in cells and inhibits proliferation of BTK-C481S mutant TMD8 cells more effectively than ibrutinib (NX-2127 EC50 values of < 30 nM versus > 1 μM for ibrutinib). Oral administration of NX-2127 in mice leads to dose-proportional exposure in plasma and BTK degradation to <10% of baseline levels in circulating and splenic B cells. In both WT TMD8 and C481S mutant xenograft models, daily oral administration of NX-2127 resulted in superior tumor growth inhibition (TGI) as compared to ibrutinib. NX-2127 also demonstrates potent degradation of BTK in cynomolgus monkeys with oral administration. Following 14 days of once daily, oral dosing in cynomolgus monkey, BTK levels are suppressed to <10% of baseline levels at doses as low as 1 mg/kg. In addition to potent BTK degradation, NX-2127 possesses IMiD-like properties through the design of the CRBN binding harness that catalyzes the degradation of CRBN neosubstrates Aiolos (IKZF3) and Ikaros (IKZF1). This activity is associated with increased T cell activation and anti-tumor effects of the IMiD drugs lenalidomide and pomalidomide. In primary human T cells, NX-2127 catalyzes the degradation of Aiolos and Ikaros with of 25 nM and 54 nM, respectively, potencies which are similar to those of lenalidomide (20 nM and 343 nM, respectively). Corresponding with such degradation, NX-2127 stimulates T cell activation as measured by increased IL-2 production in primary human T Cells in a manner similar to lenalidomide and pomalidomide. The dual activity of BTK degradation combined with immunomodulation of NX-2127 supports its development for the treatment of B-cell malignancies. Disclosures Robbins: Nurix Therapeutics: Current Employment, Current equity holder in publicly-traded company. Kelly:Nurix Therapeutics: Current Employment, Current equity holder in publicly-traded company. Tan:Nurix Therapeutics: Current Employment, Current equity holder in publicly-traded company. McIntosh:Nurix Therapeutics: Current Employment, Current equity holder in publicly-traded company. Wu:Nurix Therapeutics: Current Employment, Current equity holder in publicly-traded company. Konst:Nurix Therapeutics: Current Employment, Current equity holder in publicly-traded company. Kato:Nurix Therapeutics: Current Employment, Current equity holder in publicly-traded company. Peng:Nurix Therapeutics: Current Employment, Current equity holder in publicly-traded company. Mihalic:Nurix Therapeutics: Current Employment, Current equity holder in publicly-traded company. Weiss:Nurix Therapeutics: Current Employment, Current equity holder in publicly-traded company. Perez:Nurix Therapeutics: Current Employment, Current equity holder in publicly-traded company. Tung:Nurix Therapeutics: Current Employment, Current equity holder in publicly-traded company. Kolobova:Nurix Therapeutics: Current Employment, Current equity holder in publicly-traded company. Borodovsky:Nurix Therapeutics: Current Employment, Current equity holder in publicly-traded company. Rountree:Nurix Therapeutics: Current Employment, Current equity holder in publicly-traded company. Tenn-McClellan:Nurix Therapeutics: Current Employment, Current equity holder in publicly-traded company. Noviski:Nurix Therapeutics: Current Employment, Current equity holder in publicly-traded company. Ye:Nurix Therapeutics: Current Employment, Current equity holder in publicly-traded company. Basham:Nurix Therapeutics: Current Employment, Current equity holder in publicly-traded company. Ingallinera:Nurix Therapeutics: Current Employment, Current equity holder in publicly-traded company. McKinnell:Nurix Therapeutics: Current Employment, Current equity holder in publicly-traded company. Karr:Nurix Therapeutics: Current Employment, Current equity holder in publicly-traded company. Powers:Nurix Therapeutics: Current Employment, Current equity holder in publicly-traded company. Guiducci:Nurix Therapeutics: Current Employment, Current equity holder in publicly-traded company. Sands:Nurix Therapeutics: Current Employment, Current equity holder in publicly-traded company.
Bruton's tyrosine kinase (BTK) is a key component of B cell receptor signaling and is involved in B cell development and function. BTK plays a crucial role in cell survival in B cell malignancies such as Chronic Lymphocytic Leukemia (CLL), and covalent inhibitors of BTK, such as ibrutinib, have been successful clinically. However, long-term therapy with covalent BTK inhibitors has been shown to generate resistance mutations, which lead to disease progression. New treatments are needed to address this unmet medical need. Small molecule-induced protein degradation offers a unique approach to inhibiting BTK function. Chimeric Targeting Molecules (CTMs) mediate ubiquitylation and proteasomal degradation of specific target proteins. CTMs are comprised of a ubiquitin ligase binding element ("harness"), a chemical linker, and a target binding element ("hook"). Use of CTMs to degrade both WT and ibrutinib-resistant forms of BTK present a novel approach to targeting BTK and could affect both its catalytic and potential scaffolding functions. We have identified multiple CTMs that catalyze BTK degradation in multiple B cell lines; the concentration of one of such CTM, NRX0492, required to degrade 50% BTK (DC50) was < 1 nM after 4 hours. BTK CTMs impair viability in the BTK-dependent ABC-DLBCL cell line, TMD8 (EC50: < 10 nM after 72 hours). These CTMs also induce degradation of the ibrutinib-resistant C481S mutant form of BTK in cells and confer loss of viability in BTKC481S mutant TMD8 cells with EC50 values of < 10 nM compared to > 1 µM for ibrutinib. Oral administration of NRX0492 in mice leads to dose-proportional exposure in plasma and BTK degradation in circulating and splenic B cells: at 6 hours after a single oral dose of NRX0492, 11% BTK remained in mouse splenocytes compared to 100% BTK in mice dosed with vehicle (P < 0.0001). In a WT TMD8 xenograft model, NRX0492 treatment resulted in similar tumor growth inhibition (TGI) as compared to ibrutinib over 23 days of daily oral administration: 54.4% TGI for NRX0492 and 55.8% for Ibrutinib, both as compared to placebo (P = 0.0006 and P = 0.0004, respectively). Notably, in a TMD8 BTKC481S xenograft model, NRX0492 demonstrated superior TGI as compared to ibrutinib: 51.3% versus 15.2%, (P = 0.033). Preclinical safety and toxicity studies for BTK CTMs are ongoing to inform plans for clinical development. CTM-mediated degradation of BTK may provide an alternative therapeutic approach for B cell malignancies, particularly in the ibrutinib-resistant setting. Disclosures Kelly: Nurix Therapeutics: Employment. Robbins:Nurix Therapeutics: Employment. Tan:Nurix Therapeutics: Employment. Tenn-McClellan:Nurix Therapeutics: Employment. McIntosh:Nurix Therapeutics: Employment. Wu:Nurix Therapeutics: Employment. Konst:Nurix Therapeutics: Employment. Kato:Nurix Therapeutics: Employment. Perez:Nurix Therapeutics: Employment. Tung:Nurix Therapeutics: Employment. Kolobova:Nurix Therapeutics: Employment. Ingallinera:Nurix Therapeutics: Employment. McKinnell:Nurix Therapeutics: Employment. Weiss:Nurix Therapeutics: Employment. Noviski:Nurix Therapeutics: Employment. Ye:Nurix Therapeutics: Employment. Peng:Nurix Therapeutics: Employment. Cardozo:Nurix Therapeutics: Employment. Mihalic:Nurix Therapeutics: Employment. Basham:Nurix Therapeutics: Employment. Rountree:Nurix Therapeutics: Employment. Karr:Nurix Therapeutics: Employment. Bence:Nurix Therapeutics: Employment. Zapf:Nurix Therapeutics: Employment. Sands:Nurix Therapeutics: Employment.
PRN1008 is an oral, reversible covalent inhibitor of Bruton's tyrosine kinase (BTK) in clinical development for the treatment of multiple autoimmune diseases. BTK is an essential signaling element downstream of the B cell receptor (BCR), Fc-gamma receptor and Fc-epsilon receptor pathways. BTK activation is critical for B cell activation and maturation. BTK also regulates antibody mediated activation of other immune cells, such as macrophages, neutrophils and mast cells through Fc receptor signaling.
Abstract An increasing number of cancers are known to harbor mutations, translocations, or amplifications in the fibroblast growth factor receptor (FGFR) family of kinases. The FGFR inhibitors evaluated in clinical trials to date have shown promise at treating these cancers. Here, we describe PRN1371, an irreversible covalent inhibitor of FGFR1-4 targeting a cysteine within the kinase active site. PRN1371 demonstrated strong FGFR potency and excellent kinome-wide selectivity in a number of biochemical and cellular assays, including in various cancer cell lines exhibiting FGFR alterations. Furthermore, PRN1371 maintained FGFR inhibition in vivo, not only when circulating drug levels were high but also after the drug had been cleared from circulation, indicating the possibility of sustained FGFR inhibition in the clinic without the need for continuous drug exposure. Durable tumor regression was also obtained in multiple tumor xenografts and patient-derived tumor xenograft models and was sustained even using an intermittent dosing strategy that provided drug holidays. PRN1371 is currently under clinical investigation for treatment of patients with solid tumors. Mol Cancer Ther; 16(12); 2668–76. ©2017 AACR.
Abstract Introduction: Multiple human cancers harbor alterations in FGFRs that drive tumor growth, including mutations, translocations and amplifications. PRN1371 is an irreversible, covalent FGFR1-4 inhibitor that exhibits highly selective and sustained inhibition of FGFR which extends well beyond circulating drug concentrations in preclinical models. The duration of inhibition of the FGFR signaling pathway is dependent on protein turnover of FGFR, which may vary depending on the type of FGFR alteration. Thus, we set out to investigate whether the duration of target inhibition differs across cancer cell lines of various lineages harboring different FGFR alterations, including fusions and mutations. Furthermore, as FGFR inhibitors exhibit hyperphosphatemia via on-target pharmacology, we also investigated the duration of target inhibition in primary renal epithelial cells which are wild-type for FGFR. Materials and Methods: Cancer cell lines from several lineages harboring different FGFR alterations were treated with increasing concentrations of PRN1371 in vitro for 1 hour, before washing out the compound. Cells were harvested at various time-points post-washout, protein lysates were generated and assessed for modulation of the downstream signaling pathway by western blot analysis. Results: Dose-dependent inhibition of phospho-ERK was observed in the cancer cell lines tested in response to compound treatment for 1 hour in vitro. Dose dependent partial or full rebound of phospho-ERK back to baseline levels were detected in cancer cell lines after a prolonged period post-washout. In contrast, full rebound of phospho-ERK was observed at 1 hour post washout in response to a non-covalent inhibitor. Studies are on-going to assess duration of pathway inhibition in the primary renal proximal epithelial cells. Conclusions: PRN1371 is a potent, highly selective irreversible inhibitor exhibiting sustained inhibition of FGFR signaling across cancer cell lines harboring different FGFR alterations. The duration of inhibition of the downstream signaling was comparable across cancer cell lines harboring different FGFR alterations, including mutations, fusions and amplification of FGFR and was prolonged when compared to a non-covalent inhibitor. A Phase 1 clinical trial of PRN1371 for the treatment of solid tumors harboring FGFR alterations is ongoing (NCT02608125). Citation Format: Eleni Venetsanakos, Yan Xing, Natalie Loewenstein, J. Michael Bradshaw, Dane Karr, Jacob LaStant, Philip Nunn, Jin Shu, Abha Bommireddi, Jens Oliver Funk, David M. Goldstein, Stefani Wolff, Ken A. Brameld, Steven G. Gourlay. PRN1371, an irreversible, covalent inhibitor of FGFR1-4 exhibits sustained pathway inhibition in cancer cell lines [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2017; 2017 Apr 1-5; Washington, DC. Philadelphia (PA): AACR; Cancer Res 2017;77(13 Suppl):Abstract nr 2091. doi:10.1158/1538-7445.AM2017-2091
Aberrant signaling of the FGF/FGFR pathway occurs frequently in cancers and is an oncogenic driver in many solid tumors. Clinical validation of FGFR as a therapeutic target has been demonstrated in bladder, liver, lung, breast, and gastric cancers. Our goal was to develop an irreversible covalent inhibitor of FGFR1-4 for use in oncology indications. An irreversible covalent binding mechanism imparts many desirable pharmacological benefits including high potency, selectivity, and prolonged target inhibition. Herein we report the structure-based design, medicinal chemistry optimization, and unique ADME assays of our irreversible covalent drug discovery program which culminated in the discovery of compound 34 (PRN1371), a highly selective and potent FGFR1-4 inhibitor.
AIM:To evaluate the safety, tolerability, and pharmacokinetics/pharmacodynamics of PRN1008, a novel Bruton's tyrosine kinase (BTK) inhibitor, in healthy volunteers, and thus determine the dose range for future clinical studies.METHODS:This was a two-part randomized, placebo controlled study in healthy volunteers using a liquid formulation. Part I was a single ascending dose design with dose levels of 50-1200 mg (n = 6 active, two placebos per cohort); Part II was a multiple ascending dose design, with dose regimens ranging from 300 to 900 mg daily, either four times or twice daily for 10 days. Plasma pharmacokinetics, adverse events, vital signs, electrocardiograms and laboratory parameters were assessed. BTK occupancy in peripheral blood mononuclear cells was evaluated as a marker of target engagement.RESULTS:PRN1008 was rapidly absorbed following oral administration, and was safe and well tolerated in all dose regimens evaluated in both single and multiple doses. PRN1008 demonstrated a large volume of distribution, and a half-life of approximately 3-4 h. BTK occupancy of >90% was observed within 4 h after dosing in both single and multiple dose regimens, and was closely linked to maximum plasma concentration. BTK occupancy decay was slow (-1.6% h-1 ), and occupancy was sustained despite drug concentrations being undetectable. No severe or serious adverse events occurred, and the most common adverse events were gastrointestinal in nature.CONCLUSIONS:PRN1008 was safe and well-tolerated following oral administration, and achieved high, sustained levels of BTK occupancy in peripheral blood mononuclear cells.
Abstract Introduction: Multiple human cancers harbor alterations in FGFRs that drive tumor growth, including mutations, translocations and amplifications. We developed a covalent, irreversible, highly selective FGFR1, 2, 3 and 4 inhibitor, PRN1371, by targeting a cysteine residue within the kinase domain. This approach enables highly selective and sustained inhibition of FGFR which extends well beyond circulating drug concentrations. PRN1371 is currently in a phase 1 clinical trial for the treatment of solid tumors. Materials and Methods: FGFR1-4 enzymatic activities were measured using the Caliper microfluidics Labchip system. Inhibition of proliferation was assessed over 3 days using Cell-Titer-Glo. SNU16 and RT4 xenograft tumor models were used to investigate pharmacodynamics and efficacy. For tumor inoculation, cancer cells were implanted into the rear flank of immunocompromised mice. Once tumor volume reached a mean average of 175mm3, mice were randomized and treated with FGFR inhibitor. Results: PRN1371 is a novel investigative drug that is a potent ATP competitive, highly selective inhibitor of the FGFR family of protein kinases. PRN1371 binds irreversibly to FGFR1, 2, 3 and 4, leading to long duration of target inhibition. The IC50 values for FGFR1, 2, 3 and 4 are 0.7, 1.3, 4.1 and 19.2 nM, respectively. The IC50 values are 55.0, 12.0, 1.2 and 2.3 nM for FGFR3-V555M, FGFR2-N549H, FGFR3-G697C and FGFR3-K650E, respectively. PRN1371 exhibited no significant activity against 247 other protein kinases. PRN1371 demonstrates potent inhibition of cell proliferation in multiple tumor cell lines driven by dysregulated FGFR signaling. In RT4, RT112, SNU16, AN3-CA, LI7, JHH7, and OPM2 cells, EC50's are 4.0, 4.1, 2.6, 43.3, 33.1, 231 and 14.0 nM, respectively. PRN1371 is rapidly and well-absorbed. Bioavailability is dose and species-dependent. PRN1371 demonstrates potent tumor growth inhibition and regression in FGFR3-fusion expressing RT4 and FGFR2-amplified SNU16 xenograft models, when dosed either continuously, or intermittently, and is generally well-tolerated. PRN1371 is also shown to have significant anti-tumor activity against a panel of PDX tumor xenografts of various lineages harboring different FGFR pathway alterations. The phase 1 clinical trial will evaluate ascending doses of PRN1371 in a conventional “three plus three” design. Expansion cohorts of selected tumor types will then be investigated at the recommended dose level. Conclusion: PRN1371 is a potent, highly selective, irreversible inhibitor exhibiting sustained inhibition of FGFR 1, 2, 3 and 4. A Phase 1 clinical trial of PRN1371 for the treatment of solid tumors is currently ongoing. Citation Format: Eleni Venetsanakos, Michael Bradshaw, David M. Goldstein, Kwan Leung, Dane Karr, Yan Xing, Jacob LaStant, Philip Nunn, Jin Shu, Abha Bommireddi, Steven G. Gourlay, Jens Oliver Funk, Ken A. Brameld. PRN1371, an irreversible, covalent inhibitor of FGFR1, 2, 3 and 4 is highly efficacious in preclinical tumor models. [abstract]. In: Proceedings of the 107th Annual Meeting of the American Association for Cancer Research; 2016 Apr 16-20; New Orleans, LA. Philadelphia (PA): AACR; Cancer Res 2016;76(14 Suppl):Abstract nr 1249.
Drugs with prolonged on-target residence times often show superior efficacy, yet general strategies for optimizing drug-target residence time are lacking. Here we made progress toward this elusive goal by targeting a noncatalytic cysteine in Bruton's tyrosine kinase (BTK) with reversible covalent inhibitors. Using an inverted orientation of the cysteine-reactive cyanoacrylamide electrophile, we identified potent and selective BTK inhibitors that demonstrated biochemical residence times spanning from minutes to 7 d. An inverted cyanoacrylamide with prolonged residence time in vivo remained bound to BTK for more than 18 h after clearance from the circulation. The inverted cyanoacrylamide strategy was further used to discover fibroblast growth factor receptor (FGFR) kinase inhibitors with residence times of several days, demonstrating the generalizability of the approach. Targeting of noncatalytic cysteines with inverted cyanoacrylamides may serve as a broadly applicable platform that facilitates 'residence time by design', the ability to modulate and improve the duration of target engagement in vivo.
Amino carbamate adduct formation from the amino group of an aminoglycoside and carbon dioxide has been postulated as a mechanism for reducing nephrotoxicity in the aminoglycoside class compounds. In this study, sisomicin was used as a model compound for amino carbamate analysis. A high pH based reversed-phase high performance liquid chromatography (RP-HPLC) method is used to separate the amino carbamate from sisomicin. The carbamate is stable as the breakdown is inhibited at high pH and any reactive carbon dioxide is removed as the carbonate. The amino carbamate was quantified and the molar fraction of amine as the carbamate of sisomicin was obtained from the HPLC peak areas. The equilibrium constant of carbamate formation, Kc, was determined to be 3.3 × 10(-6) and it was used to predict the fraction of carbamate over the pH range in a typical biological systems. Based on these results, the fraction of amino carbamate at physiological pH values is less than 13%, and the postulated mechanism for nephrotoxicity protection is not valid. The same methodology is applicable for other aminoglycosides.
A reversed-phase high performance liquid chromatographic (RP-HPLC) method has been developed for the aminoglycoside (AG) plazomicin (ACHN-490). This method employed a high pH mobile phase (pH > 11) with a gradient of 0.25 M ammonium hydroxide in water and acetonitrile, an XBridge C-18 column and UV detection at 210 nm. Although the molar UV absorption of plazomicin is weak, the high pH conditions of this method allow for higher loadings, which compensates for the inherent low UV sensitivity. Under these high pH conditions, impurities and degradants were base line separated from plazomicin. The mobile phases used for this method allowed for on-line mass detection for the impurities and degradants.The RP-HPLC method has been validated in terms of specificity, linearity and range, accuracy, and precision. The analytical method met specificity requirements of a homogenous peak with no interferences from the blank or from the known impurities in plazomicin. The linearity of the method for the plazomicin impurity determination was excellent, with a coefficient of determination (r(2)) of 0.9993, over the freebase (FB) concentration range of 0.0025-3.0 mg/mL. The method is capable of detecting impurities down to 0.1% of the peak area of plazomicin. A single point standard at a concentration of 1.0 mg/mL FB was validated over the range of 50-150% for quantitation of the freebase content (the assay) in bulk drug substance. The mean recoveries of FB are in the range 98.6-102.0% with a mean RSD (relative standard deviation) <1.0%. The study also examined the method precision for purity, impurities and the assay with two instruments on two different days. The method showed adequate accuracy and precision for the intended use. This high pH method was successfully used to determine the impurity and measure the drug content in the final plazomicin drug substance. In addition, the method with an on-line mass spectrometry detector has been used to characterize the structures of the impurities in plazomicin. (C) 2012 Elsevier B.V. All rights reserved.