A patient-derived amyotrophic lateral sclerosis blood-brain barrier cell model reveals focused ultrasound-mediated anti-TDP-43 antibody delivery.
Wasielewska, J. M.; Castro Cabral-da-Silva, M.; Pecoraro, M.; Nguyen, T. H.; La Bella, V.; Oikari, L. E.; Ooi, L.; White, A. R.
Show abstract
BackgroundAmyotrophic lateral sclerosis (ALS) is a rapidly progressing neurodegenerative disorder with minimally effective treatment options. An important hurdle in ALS drug development is the non-invasive therapeutic access to the motor cortex currently limited by the presence of the blood-brain barrier (BBB). Focused ultrasound and microbubble (FUS+MB) treatment is an emerging technology that was successfully used in ALS patients to temporarily open the cortical BBB. However, FUS+MB-mediated drug delivery across ALS patients BBB has not yet been reported. Similarly, the effects of FUS+MB on human ALS BBB cells remain unexplored. MethodsHere we established the first FUS+MB-compatible, fully-human ALS patient-cell-derived BBB model based on induced brain endothelial-like cells (iBECs) to study anti-TDP-43 antibody delivery and FUS+MB bioeffects in vitro. ResultsGenerated ALS iBECs recapitulated disease-specific hallmarks of BBB pathology, including changes to BBB integrity, permeability and TDP-43 proteinopathy. Our results also identified differences between sporadic ALS and familial (C9orf72 expansion carrying) ALS iBECs reflecting patient heterogeneity associated with disease subgroups. Studies in these models revealed successful ALS iBEC monolayer opening in vitro with a lack of adverse cellular effects of FUS+MB. This was accompanied by the molecular bioeffects of FUS+MB in ALS iBECs including changes in expression of tight and adherens junction markers, and drug transporter and inflammatory mediators, with sporadic and C9orf72 ALS iBECs generating transient specific responses. Additionally, we demonstrated an effective increase in the delivery of anti-TDP-43 antibody with FUS+MB in C9orf72 (2.7-fold) and sporadic (1.9-fold) ALS iBECs providing the first proof-of-concept evidence that FUS+MB can be used to enhance the permeability of large molecule therapeutics across the BBB in a human ALS in vitro model. ConclusionsTogether, our study describes the first characterisation of cellular and molecular responses of ALS iBECs to FUS+MB and provides a fully-human platform for FUS+MB-mediated drug delivery screening on an ALS BBB in vitro model.
Matching journals
The top 12 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- A panel of TDP-43-regulated splicing events verify loss of TDP-43 function in amyotrophic lateral sclerosis brain tissue 95%
- Novel extracellular vesicle release pathway facilitated by toxic superoxide dismutase 1 oligomers 94%
- Amyloid beta peptides (Aβ) from Alzheimer's disease neuronal secretome induce endothelial activation in a human cerebral microvessel model 94%
Similar papers in this journal
Similar papers in this journal
Similar papers in this journal
Similar papers in this journal
- Polarized α-synuclein trafficking and transcytosis across Brain Endothelial Cells via Rab7-decorated carriers 93%
- Human iPSC-derived pericyte-like cells carrying APP Swedish mutation overproduce beta-amyloid and induce cerebral amyloid angiopathy-like changes 93%
- Increasing brain half-life of antibodies by additional binding to myelin oligodendrocyte glycoprotein, a CNS specific protein 92%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.