Dual effect of TAT functionalized DHAH lipid nanoparticles with neurotrophic factors in human BBB and microglia cultures
Sara Hernando,Polyxeni Nikolakopoulou,Dimitrios Voulgaris,Rosa Maria Hernandez,Manoli Igartua,Anna Herland +5 more
TL;DR: In this paper , the authors used in vitro models to investigate whether DHAH-NLCs can enter the brain via the blood-brain barrier (BBB) and investigate the therapeutic effect of neurotrophic factors (NTF) containing DHAHAH NLC on lipopolysaccharide-challenged microglia.
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Abstract: Neurodegenerative diseases (NDs) are an accelerating global health problem. Nevertheless, the stronghold of the brain- the blood-brain barrier (BBB) prevents drug penetrance and dwindles effective treatments. Therefore, it is crucial to identify Trojan horse-like drug carriers that can effectively cross the blood-brain barrier and reach the brain tissue. We have previously developed polyunsaturated fatty acids (PUFA)-based nanostructured lipid carriers (NLC), namely DHAH-NLC. These carriers are modulated with BBB-permeating compounds such as chitosan (CS) and trans-activating transcriptional activator (TAT) from HIV-1 that can entrap neurotrophic factors (NTF) serving as nanocarriers for NDs treatment. Moreover, microglia are suggested as a key causative factor of the undergoing neuroinflammation of NDs. In this work, we used in vitro models to investigate whether DHAH-NLCs can enter the brain via the BBB and investigate the therapeutic effect of NTF-containing DHAH-NLC and DHAH-NLC itself on lipopolysaccharide-challenged microglia.We employed human induced pluripotent stem cell-derived brain microvascular endothelial cells (BMECs) to capitalize on the in vivo-like TEER of this BBB model and quantitatively assessed the permeability of DHAH-NLCs. We also used the HMC3 microglia cell line to assess the therapeutic effect of NTF-containing DHAH-NLC upon LPS challenge.TAT-functionalized DHAH-NLCs successfully crossed the in vitro BBB model, which exhibited high transendothelial electrical resistance (TEER) values (≈3000 Ω*cm2). Specifically, the TAT-functionalized DHAH-NLCs showed a permeability of up to 0.4% of the dose. Furthermore, using human microglia (HMC3), we demonstrate that DHAH-NLCs successfully counteracted the inflammatory response in our cultures after LPS challenge. Moreover, the encapsulation of glial cell-derived neurotrophic factor (GNDF)-containing DHAH-NLCs (DHAH-NLC-GNDF) activated the Nrf2/HO-1 pathway, suggesting the triggering of the endogenous anti-oxidative system present in microglia.Overall, this work shows that the TAT-functionalized DHAH-NLCs can cross the BBB, modulate immune responses, and serve as cargo carriers for growth factors; thus, constituting an attractive and promising novel drug delivery approach for the transport of therapeutics through the BBB into the brain.
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Lipid nanoparticles strategies to modify pharmacokinetics of central nervous system targeting drugs: crossing or circumventing the blood-brain barrier (BBB) to manage neurological disorders.
Ana Cristina Oliveira Correia,A. R. Monteiro,R. Silva,João Nuno Moreira,José Manuel Sousa Lobo,A. C. Silva +5 more
TL;DR: A review of the state of the art on the use of lipid nanoparticles to modify the pharmacokinetics of drugs employed in the management of neurological disorders can be found in this article .
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Multifunctional nanomedicine strategies to manage brain diseases
TL;DR: The principal mechanisms of therapeutic resistance of the most prevalent brain diseases are reviewed, how to overcome this therapeutic resistance through the use of multifunctional nanomedicines that tackle multiple fronts of the disease microenvironment, and the promising therapeutic responses reported in literature are reviewed.
References
The Blood-Brain Barrier in Health and Chronic Neurodegenerative Disorders
TL;DR: These findings support developments of new therapeutic approaches for chronic neurodegenerative disorders directed at the blood-brain barrier and other nonneuronal cells of the neurovascular unit.
3.2K
Blood–brain barrier breakdown in Alzheimer disease and other neurodegenerative disorders
TL;DR: This Review discusses neuroimaging studies in the living human brain and post-mortem tissue as well as biomarker studies demonstrating BBB breakdown in Alzheimer disease, Parkinson disease, Huntington disease, amyotrophic lateral sclerosis, multiple sclerosis, HIV-1-associated dementia and chronic traumatic encephalopathy.
Ageing as a risk factor for neurodegenerative disease.
Yujun Hou,Xiuli Dan,Mansi Babbar,Yong Wei,Steen G. Hasselbalch,Deborah L. Croteau,Vilhelm A. Bohr,Vilhelm A. Bohr +7 more
TL;DR: Hallmarks of ageing — genomic instability, telomere attrition, epigenetic alterations, loss of proteostasis, mitochondrial dysfunction, cellular senescence, stem cell exhaustion and altered intercellular communication — correlate with susceptibility to neurodegenerative disease.
2.2K
Development, maintenance and disruption of the blood-brain barrier
TL;DR: This Review highlights recently gained mechanistic insights into the development and maintenance of the blood-brain barrier (BBB), and discusses how BBB disruption can cause or contribute to neurological disease.
2.1K
How neuroinflammation contributes to neurodegeneration.
TL;DR: Observations indicate that therapies targeting glial cells might provide benefit for those afflicted by neurodegenerative disorders, because the environment is affected during disease in a cascade of processes collectively termed neuroinflammation.
1.6K