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1.
Drug Metab Dispos ; 47(10): 1111-1121, 2019 10.
Artículo en Inglés | MEDLINE | ID: mdl-31387871

RESUMEN

The identification of nonopioid alternatives to treat chronic pain has received a great deal of interest in recent years. Recently, the engineering of a series of Nav1.7 inhibitory peptide-antibody conjugates has been reported, and herein, the preclinical efforts to identify novel approaches to characterize the pharmacokinetic properties of the peptide conjugates are described. A cryopreserved plated mouse hepatocyte assay was designed to measure the depletion of the peptide-antibody conjugates from the media, with a correlation being observed between percentage remaining in the media and in vivo clearance (Pearson r = -0.5525). Physicochemical (charge and hydrophobicity), receptor-binding [neonatal Fc receptor (FcRn)], and in vivo pharmacokinetic data were generated and compared with the results from our in vitro hepatocyte assay, which was hypothesized to encompass all of the aforementioned properties. Correlations were observed among hydrophobicity; FcRn binding; depletion rates from the hepatocyte assay; and ultimately, in vivo clearance. Subsequent studies identified potential roles for the low-density lipoprotein and mannose/galactose receptors in the association of the Nav1.7 peptide conjugates with mouse hepatocytes, although in vivo studies suggested that FcRn was still the primary receptor involved in determining the pharmacokinetics of the peptide conjugates. Ultimately, the use of the cryopreserved hepatocyte assay along with FcRn binding and hydrophobic interaction chromatography provided an efficient and integrated approach to rapidly triage molecules for advancement while reducing the number of in vivo pharmacokinetic studies. SIGNIFICANCE STATEMENT: Although multiple in vitro and in silico tools are available in small-molecule drug discovery, pharmacokinetic characterization of protein therapeutics is still highly dependent upon the use of in vivo studies in preclinical species. The current work demonstrates the combined use of cryopreserved hepatocytes, hydrophobic interaction chromatography, and neonatal Fc receptor binding to characterize a series of Nav1.7 peptide-antibody conjugates prior to conducting in vivo studies, thus providing a means to rapidly evaluate novel protein therapeutic platforms while concomitantly reducing the number of in vivo studies conducted in preclinical species.


Asunto(s)
Dolor Crónico/tratamiento farmacológico , Antígenos de Histocompatibilidad Clase I/metabolismo , Inmunoconjugados/farmacocinética , Canal de Sodio Activado por Voltaje NAV1.7/metabolismo , Receptores Fc/metabolismo , Bloqueadores del Canal de Sodio Activado por Voltaje/farmacocinética , Administración Intravenosa , Animales , Anticuerpos Monoclonales/administración & dosificación , Anticuerpos Monoclonales/farmacocinética , Criopreservación , Evaluación Preclínica de Medicamentos/métodos , Hepatocitos , Antígenos de Histocompatibilidad Clase I/genética , Inmunoconjugados/administración & dosificación , Macaca fascicularis , Masculino , Tasa de Depuración Metabólica , Ratones , Ratones Noqueados , Péptidos/administración & dosificación , Péptidos/farmacocinética , Receptores Fc/genética , Distribución Tisular , Bloqueadores del Canal de Sodio Activado por Voltaje/administración & dosificación
2.
ACS Chem Biol ; 14(4): 806-818, 2019 04 19.
Artículo en Inglés | MEDLINE | ID: mdl-30875193

RESUMEN

Drug discovery research on new pain targets with human genetic validation, including the voltage-gated sodium channel NaV1.7, is being pursued to address the unmet medical need with respect to chronic pain and the rising opioid epidemic. As part of early research efforts on this front, we have previously developed NaV1.7 inhibitory peptide-antibody conjugates with tarantula venom-derived GpTx-1 toxin peptides with an extended half-life (80 h) in rodents but only moderate in vitro activity (hNaV1.7 IC50 = 250 nM) and without in vivo activity. We identified the more potent peptide JzTx-V from our natural peptide collection and improved its selectivity against other sodium channel isoforms through positional analogueing. Here we report utilization of the JzTx-V scaffold in a peptide-antibody conjugate and architectural variations in the linker, peptide loading, and antibody attachment site. We found conjugates with 100-fold improved in vitro potency relative to those of complementary GpTx-1 analogues, but pharmacokinetic and bioimaging analyses of these JzTx-V conjugates revealed a shorter than expected plasma half-life in vivo with accumulation in the liver. In an attempt to increase circulatory serum levels, we sought the reduction of the net +6 charge of the JzTx-V scaffold while retaining a desirable NaV in vitro activity profile. The conjugate of a JzTx-V peptide analogue with a +2 formal charge maintained NaV1.7 potency with 18-fold improved plasma exposure in rodents. Balancing the loss of peptide and conjugate potency associated with the reduction of net charge necessary for improved target exposure resulted in a compound with moderate activity in a NaV1.7-dependent pharmacodynamic model but requires further optimization to identify a conjugate that can fully engage NaV1.7 in vivo.


Asunto(s)
Inmunoconjugados , Canal de Sodio Activado por Voltaje NAV1.7/metabolismo , Péptidos/química , Venenos de Araña/química , Bloqueadores del Canal de Sodio Activado por Voltaje , Animales , Anticuerpos/química , Descubrimiento de Drogas , Humanos , Inmunoconjugados/química , Inmunoconjugados/farmacocinética , Masculino , Ratones , Terapia Molecular Dirigida , Canal de Sodio Activado por Voltaje NAV1.7/inmunología , Péptidos/farmacocinética , Venenos de Araña/farmacocinética , Bloqueadores del Canal de Sodio Activado por Voltaje/química , Bloqueadores del Canal de Sodio Activado por Voltaje/farmacocinética
3.
ACS Chem Biol ; 12(9): 2427-2435, 2017 09 15.
Artículo en Inglés | MEDLINE | ID: mdl-28800217

RESUMEN

The voltage-gated sodium channel NaV1.7 is a genetically validated pain target under investigation for the development of analgesics. A therapeutic with a less frequent dosing regimen would be of value for treating chronic pain; however functional NaV1.7 targeting antibodies are not known. In this report, we describe NaV1.7 inhibitory peptide-antibody conjugates as an alternate construct for potential prolonged channel blockade through chemical derivatization of engineered antibodies. We previously identified NaV1.7 inhibitory peptide GpTx-1 from tarantula venom and optimized its potency and selectivity. Tethering GpTx-1 peptides to antibodies bifunctionally couples FcRn-based antibody recycling attributes to the NaV1.7 targeting function of the peptide warhead. Herein, we conjugated a GpTx-1 peptide to specific engineered cysteines in a carrier anti-2,4-dinitrophenol monoclonal antibody using polyethylene glycol linkers. The reactivity of 13 potential cysteine conjugation sites in the antibody scaffold was tuned using a model alkylating agent. Subsequent reactions with the peptide identified cysteine locations with the highest conversion to desired conjugates, which blocked NaV1.7 currents in whole cell electrophysiology. Variations in attachment site, linker, and peptide loading established design parameters for potency optimization. Antibody conjugation led to in vivo half-life extension by 130-fold relative to a nonconjugated GpTx-1 peptide and differential biodistribution to nerve fibers in wild-type but not NaV1.7 knockout mice. This study describes the optimization and application of antibody derivatization technology to functionally inhibit NaV1.7 in engineered and neuronal cells.


Asunto(s)
Inmunoconjugados/farmacología , Canal de Sodio Activado por Voltaje NAV1.7/metabolismo , Péptidos/farmacología , Bloqueadores del Canal de Sodio Activado por Voltaje/farmacología , Animales , Células HEK293 , Humanos , Inmunoconjugados/química , Inmunoconjugados/farmacocinética , Masculino , Ratones , Modelos Moleculares , Péptidos/química , Péptidos/farmacocinética , Distribución Tisular , Bloqueadores del Canal de Sodio Activado por Voltaje/química , Bloqueadores del Canal de Sodio Activado por Voltaje/farmacocinética
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