The development of therapeutics for neurological disorders is constrained by limited access to the central nervous system (CNS). ATP-binding cassette (ABC) transporters, particularly P-glycoprotein (P-gp) and breast cancer resistance protein (BCRP), are expressed on the luminal surface of capillaries in the CNS and transport drugs out of the endothelium back into the blood against the concentration gradient. Survival motor neuron (SMN) protein, which is deficient in spinal muscular atrophy (SMA), is a target of the ubiquitin proteasome system. Inhibiting the proteasome in a rodent model of SMA with bortezomib increases SMN protein levels in peripheral tissues but not the CNS, because bortezomib has poor CNS penetrance. We sought to determine if we could inhibit SMN degradation in the CNS of SMA mice with a combination of bortezomib and the ABC transporter inhibitor tariquidar. In cultured cells we show that bortezomib is a substrate of P-gp. Mass spectrometry analysis demonstrated that intraperitoneal co-administration of tariquidar increased the CNS penetrance of bortezomib, and reduced proteasome activity in the brain and spinal cord. This correlated with increased SMN protein levels and improved survival and motor function of SMA mice. These findings show that CNS penetrance of treatment for this neurological disorder can be improved by inhibiting drug efflux at the blood-brain barrier.
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http://dx.doi.org/10.1016/j.nbd.2016.01.008 | DOI Listing |
Cell Mol Life Sci
December 2024
Department of Pathophysiology and Transplantation, Dino Ferrari Center, University of Milan, Milan, Italy.
The development of ground-breaking Survival Motor Neuron (SMN) replacement strategies has revolutionized the field of Spinal Muscular Atrophy (SMA) research. However, the limitations of these therapies have now become evident, highlighting the need for the development of complementary targets beyond SMN replacement. To address these challenges, here we explored, in in vitro and in vivo disease models, Stathmin-2 (STMN2), a neuronal microtubule regulator implicated in neurodegenerative diseases like Amyotrophic Lateral Sclerosis (ALS), as a novel SMN-independent target for SMA therapy.
View Article and Find Full Text PDFSemin Respir Crit Care Med
December 2024
Department of Neurology and Rehabilitation Medicine, University of Cincinnati, Cincinnati, Ohio.
Neuromuscular disorders can cause respiratory impairment by affecting the muscle fibers, neuromuscular junction, or innervation of respiratory muscles, leading to significant morbidity and mortality. Over the past few years, new disease-modifying therapies have been developed and made available for treating different neuromuscular disorders. Some of these therapies have remarkable effectiveness, resulting in the prevention and reduction of respiratory complications.
View Article and Find Full Text PDFHum Mol Genet
December 2024
Center for Motor Neuron Biology and Disease, Columbia University Medical Center, 630 W. 168th St., New York, NY 10032, United States.
Spinal muscular atrophy (SMA) is caused by low levels of the survival motor neuron (SMN) protein. Even though SMN is ubiquitously expressed, the disease selectively affects motor neurons, leading to progressive muscle weakness. Even among motor neurons, certain motor units appear more clinically resistant to SMA.
View Article and Find Full Text PDFZh Nevrol Psikhiatr Im S S Korsakova
December 2024
JSC BIOCAD, St. Petersburg, Russia.
Spinal muscular atrophy (SMA) is a group of genetically heterogeneous neuromuscular diseases characterized by the progressive loss of motor neurons in the anterior horns of the spinal cord. The prevalence of SMA is approximately 1 in 10.000 live births.
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