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1.
Biochim Biophys Acta Biomembr ; 1864(4): 183853, 2022 04 01.
Article in English | MEDLINE | ID: mdl-34973181

ABSTRACT

The aquaporins (AQPs) form a family of integral membrane proteins that facilitate the movement of water across biological membrane by osmosis, as well as facilitating the diffusion of small polar solutes. AQPs have been recognised as drug targets for a variety of disorders associated with disrupted water or solute transport, including brain oedema following stroke or trauma, epilepsy, cancer cell migration and tumour angiogenesis, metabolic disorders, and inflammation. Despite this, drug discovery for AQPs has made little progress due to a lack of reproducible high-throughput assays and difficulties with the druggability of AQP proteins. However, recent studies have suggested that targetting the trafficking of AQP proteins to the plasma membrane is a viable alternative drug target to direct inhibition of the water-conducting pore. Here we review the literature on the trafficking of mammalian AQPs with a view to highlighting potential new drug targets for a variety of conditions associated with disrupted water and solute homeostasis.


Subject(s)
Aquaporins/metabolism , Cell Membrane/metabolism , Animals , Humans , Osmosis , Plants/metabolism , Protein Isoforms/metabolism , Protein Transport , Water/metabolism
2.
Brain ; 145(1): 64-75, 2022 03 29.
Article in English | MEDLINE | ID: mdl-34499128

ABSTRACT

Aquaporin channels facilitate bidirectional water flow in all cells and tissues. AQP4 is highly expressed in astrocytes. In the CNS, it is enriched in astrocyte endfeet, at synapses, and at the glia limitans, where it mediates water exchange across the blood-spinal cord and blood-brain barriers (BSCB/BBB), and controls cell volume, extracellular space volume, and astrocyte migration. Perivascular enrichment of AQP4 at the BSCB/BBB suggests a role in glymphatic function. Recently, we have demonstrated that AQP4 localization is also dynamically regulated at the subcellular level, affecting membrane water permeability. Ageing, cerebrovascular disease, traumatic CNS injury, and sleep disruption are established and emerging risk factors in developing neurodegeneration, and in animal models of each, impairment of glymphatic function is associated with changes in perivascular AQP4 localization. CNS oedema is caused by passive water influx through AQP4 in response to osmotic imbalances. We have demonstrated that reducing dynamic relocalization of AQP4 to the BSCB/BBB reduces CNS oedema and accelerates functional recovery in rodent models. Given the difficulties in developing pore-blocking AQP4 inhibitors, targeting AQP4 subcellular localization opens up new treatment avenues for CNS oedema, neurovascular and neurodegenerative diseases, and provides a framework to address fundamental questions about water homeostasis in health and disease.


Subject(s)
Aquaporin 4 , Astrocytes , Animals , Aquaporin 4/metabolism , Astrocytes/metabolism , Blood-Brain Barrier/metabolism , Homeostasis , Humans , Water/metabolism
3.
EBioMedicine ; 72: 103618, 2021 Oct.
Article in English | MEDLINE | ID: mdl-34628351

ABSTRACT

BACKGROUND: Synovial inflammation is associated with pain severity in patients with knee osteoarthritis (OA). The aim here was to determine in a population with knee OA, whether synovial tissue from areas associated with pain exhibited different synovial fibroblast subsets, compared to synovial tissue from sites not associated with pain. A further aim was to compare differences between early and end-stage disease synovial fibroblast subsets. METHODS: Patients with early knee OA (n = 29) and end-stage knee OA (n = 22) were recruited. Patient reported pain was recorded by questionnaire and using an anatomical knee pain map. Proton density fat suppressed MRI axial and sagittal sequences were analysed and scored for synovitis. Synovial tissue was obtained from the medial and lateral parapatellar and suprapatellar sites. Fibroblast single cell RNA sequencing was performed using Chromium 10X and analysed using Seurat. Transcriptomes were functionally characterised using Ingenuity Pathway Analysis and the effect of fibroblast secretome on neuronal growth assessed using rat DRGN. FINDINGS: Parapatellar synovitis was significantly associated with the pattern of patient-reported pain in knee OA patients. Synovial tissue from sites of patient-reported pain exhibited a differential transcriptomic phenotype, with distinct synovial fibroblast subsets in early OA and end-stage OA. Functional pathway analysis revealed that synovial tissue and fibroblast subsets from painful sites promoted fibrosis, inflammation and the growth and activity of neurons. The secretome of fibroblasts from early OA painful sites induced greater survival and neurite outgrowth in dissociated adult rodent dorsal root ganglion neurons. INTERPRETATION: Sites of patient-reported pain in knee OA exhibit a different synovial tissue phenotype and distinct synovial fibroblast subsets. Further interrogation of these fibroblast pathotypes will increase our understanding of the role of synovitis in OA joint pain and provide a rationale for the therapeutic targeting of fibroblast subsets to alleviate pain in patients. FUNDING: This study was funded by Versus Arthritis, UK (21530; 21812).


Subject(s)
Arthralgia/pathology , Fibroblasts/pathology , Knee Joint/pathology , Osteoarthritis, Knee/pathology , Aged , Female , Humans , Inflammation/pathology , Male , Middle Aged , Pain/pathology , Pain Measurement/methods , Phenotype , Secretome/physiology , Severity of Illness Index , Synovial Membrane/pathology , Synovitis/pathology
4.
PLoS One ; 16(6): e0252341, 2021.
Article in English | MEDLINE | ID: mdl-34086733

ABSTRACT

The ability to target therapeutic agents to specific tissues is an important element in the development of new disease treatments. The transferrin receptor (TfR) is one potential target for drug delivery, as it expressed on many dividing cells and on brain endothelium, the key cellular component of the blood-brain barrier. The aim of this study was to compare a set of new and previously-described polypeptides for their ability to bind to brain endothelium, and investigate their potential for targeting therapeutic agents to the CNS. Six polypeptides were ranked for their rate of endocytosis by the human brain endothelial cell line hCMEC/D3 and the murine line bEnd.3. One linear polypeptide and two cyclic polypeptides showed high rates of uptake. These peptides were investigated to determine whether serum components, including transferrin itself affected uptake by the endothelium. One of the cyclic peptides was strongly inhibited by transferrin and the other cyclic peptide weakly inhibited. As proof of principle the linear peptide was attached to 2nm glucose coated gold-nanoparticles, and the rate of uptake of the nanoparticles measured in a hydrogel model of the blood-brain barrier. Attachment of the TfR-targeting polypeptide significantly increased the rates of endocytosis by brain endothelium and increased movement of nanoparticles across the cells.


Subject(s)
Drug Carriers/metabolism , Gold/metabolism , Metal Nanoparticles/administration & dosage , Peptides/metabolism , Receptors, Transferrin/metabolism , Animals , Biological Transport/physiology , Blood-Brain Barrier/metabolism , Brain/metabolism , Cell Line , Drug Delivery Systems/methods , Endocytosis/physiology , Endothelial Cells/metabolism , Endothelium, Vascular/metabolism , Humans , Mice , Transferrin/metabolism
5.
Cell ; 181(4): 784-799.e19, 2020 05 14.
Article in English | MEDLINE | ID: mdl-32413299

ABSTRACT

Swelling of the brain or spinal cord (CNS edema) affects millions of people every year. All potential pharmacological interventions have failed in clinical trials, meaning that symptom management is the only treatment option. The water channel protein aquaporin-4 (AQP4) is expressed in astrocytes and mediates water flux across the blood-brain and blood-spinal cord barriers. Here we show that AQP4 cell-surface abundance increases in response to hypoxia-induced cell swelling in a calmodulin-dependent manner. Calmodulin directly binds the AQP4 carboxyl terminus, causing a specific conformational change and driving AQP4 cell-surface localization. Inhibition of calmodulin in a rat spinal cord injury model with the licensed drug trifluoperazine inhibited AQP4 localization to the blood-spinal cord barrier, ablated CNS edema, and led to accelerated functional recovery compared with untreated animals. We propose that targeting the mechanism of calmodulin-mediated cell-surface localization of AQP4 is a viable strategy for development of CNS edema therapies.


Subject(s)
Aquaporin 4/metabolism , Edema/metabolism , Edema/therapy , Animals , Aquaporin 4/physiology , Astrocytes/metabolism , Brain/metabolism , Brain Edema/metabolism , Calmodulin/metabolism , Central Nervous System/metabolism , Edema/physiopathology , Male , Rats , Rats, Sprague-Dawley , Spinal Cord/metabolism , Spinal Cord Injuries/metabolism , Trifluoperazine/pharmacology
6.
Brain Pathol ; 29(1): 63-74, 2019 01.
Article in English | MEDLINE | ID: mdl-30051532

ABSTRACT

Alzheimer's disease (AD) is characterized by accumulation of ß-amyloid plaques (AP) and neurofibrillary tangles (NFT) in the cortex, together with synaptic loss and amyloid angiopathy. Perturbations in the brain lysosomal system, including the cathepsin family of proteases, have been implicated in AD where they may be involved in proteolytic clearance of misfolded and abnormally aggregated peptides. However, the status of cathepsin D (catD) is unclear in Lewy body dementia, the second most common form of neurodegenerative dementia after AD, and characterized by Lewy bodies (LB) containing aggregated α-synuclein. Furthermore, earlier reports of catD changes in AD have not been entirely consistent. We measured CatD immunoreactivities in the temporal (Brodmann area BA21) and parietal (BA40) cortices of well characterized AD brains as well as two clinical subtypes of Lewy body dementia, namely Parkinson disease dementia (PDD) and dementia with Lewy bodies (DLB), known to show varying degrees of concomitant AD pathology. Increased catD immunoreactivities in AD were found for both neocortical regions measured, where they also correlated with neuropathological NFT scores and phosphorylated pSer396 tau burden, and appeared to co-localize at least partly to NFT-containing neurons. In contrast, catD was increased only in BA40 in DLB and not at all in PDD, did not correlate with LB scores, and did not appreciably co-localize with α-synuclein inclusions. Our study suggests that catD upregulation may be an adaptive response to AD-related processes leading to neurofibrillary degeneration, but may not be directly associated with formation of α-synuclein inclusions in Lewy body dementia.


Subject(s)
Alzheimer Disease/metabolism , Cathepsin D/physiology , Neocortex/metabolism , Aged , Aged, 80 and over , Alzheimer Disease/pathology , Amyloid beta-Peptides/metabolism , Biomarkers , Cathepsin D/genetics , Cathepsin D/metabolism , Female , Humans , Lewy Bodies/pathology , Lewy Body Disease/pathology , Male , Neocortex/physiology , Neurodegenerative Diseases/physiopathology , Neurofibrillary Tangles/metabolism , Neurons/pathology , Parietal Lobe/pathology , Plaque, Amyloid/pathology , Temporal Lobe/pathology , alpha-Synuclein/metabolism , tau Proteins/metabolism
7.
Cells ; 7(10)2018 Oct 18.
Article in English | MEDLINE | ID: mdl-30340399

ABSTRACT

After injury to the spinal cord, edema contributes to the underlying detrimental pathophysiological outcomes that lead to worsening of function. Several related membrane proteins called aquaporins (AQPs) regulate water movement in fluid transporting tissues including the spinal cord. Within the cord, AQP1, 4 and 9 contribute to spinal cord injury (SCI)-induced edema. AQP1, 4 and 9 are expressed in a variety of cells including astrocytes, neurons, ependymal cells, and endothelial cells. This review discusses some of the recent findings of the involvement of AQP in SCI and highlights the need for further study of these proteins to develop effective therapies to counteract the negative effects of SCI-induced edema.

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