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1.
Fluids Barriers CNS ; 21(1): 34, 2024 Apr 11.
Article in English | MEDLINE | ID: mdl-38605366

ABSTRACT

The blood-brain barrier (BBB) serves as a highly intricate and dynamic interface connecting the brain and the bloodstream, playing a vital role in maintaining brain homeostasis. BBB dysfunction has been associated with multiple neurodegenerative diseases, including amyotrophic lateral sclerosis (ALS); however, the role of the BBB in neurodegeneration is understudied. We developed an ALS patient-derived model of the BBB by using cells derived from 5 patient donors carrying C9ORF72 mutations. Brain microvascular endothelial-like cells (BMEC-like cells) derived from C9ORF72-ALS patients showed altered gene expression, compromised barrier integrity, and increased P-glycoprotein transporter activity. In addition, mitochondrial metabolic tests demonstrated that C9ORF72-ALS BMECs display a significant decrease in basal glycolysis accompanied by increased basal and ATP-linked respiration. Moreover, our study reveals that C9-ALS derived astrocytes can further affect BMECs function and affect the expression of the glucose transporter Glut-1. Finally, C9ORF72 patient-derived BMECs form leaky barriers through a cell-autonomous mechanism and have neurotoxic properties towards motor neurons.


Subject(s)
Amyotrophic Lateral Sclerosis , Blood-Brain Barrier , Endothelial Cells , Humans , Amyotrophic Lateral Sclerosis/genetics , Blood-Brain Barrier/metabolism , C9orf72 Protein/genetics , C9orf72 Protein/metabolism , Endothelial Cells/metabolism
2.
Proc Inst Mech Eng H ; 231(6): 565-574, 2017 Jun.
Article in English | MEDLINE | ID: mdl-28639518

ABSTRACT

Additive manufacturing technologies enable the creation of very precise and well-defined structures that can mimic hierarchical features of natural tissues. In this article, we describe the development of a manufacturing technology platform to produce innovative biodegradable membranes that are enhanced with controlled microenvironments produced via a combination of selective laser melting techniques and conventional electrospinning. This work underpins the manufacture of a new generation of biomaterial devices that have significant potential for use as both basic research tools and components of therapeutic implants. The membranes were successfully manufactured and a total of three microenvironment designs (niches) were chosen for thorough characterisation. Scanning electron microscopy analysis demonstrated differences in fibre diameters within different areas of the niche structures as well as differences in fibre density. We also showed the potential of using the microfabricated membranes for supporting mesenchymal stromal cell culture and proliferation. We demonstrated that mesenchymal stromal cells grow and populate the membranes penetrating within the niche-like structures. These findings demonstrate the creation of a very versatile tool that can be used in a variety of tissue regeneration applications including bone healing.


Subject(s)
Biocompatible Materials , Electricity , Lasers , Membranes, Artificial , Microtechnology , Animals , Biocompatible Materials/pharmacology , Male , Materials Testing , Mesenchymal Stem Cells/cytology , Mesenchymal Stem Cells/drug effects , Rats
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