Publications

2020

Doe, Jane, John Smith, Stephanie Black, and Mark White. 2020. “Lorem Ipsum Dolor Sit Amet, Consectetur Adipiscing Elit, Sed Do Eiusmod Tempor Incididunt Ut Labore et Dolore Magna Aliqua”. Ut Sem Viverra Aliquet Eget Sit Amet Tellus. 32 (7): 1789-1804.
Criado-Marrero, Marangelie, Jonathan J Sabbagh, Margaret R Jones, Dale Chaput, Chad A Dickey, and Laura J Blair. (2020) 2020. “Hippocampal Neurogenesis Is Enhanced in Adult Tau Deficient Mice”. Cells 9 (1). https://doi.org/10.3390/cells9010210.

Tau dysfunction is common in several neurodegenerative diseases including Alzheimer's disease (AD) and frontotemporal dementia (FTD). Affective symptoms have often been associated with aberrant tau pathology and are commonly comorbid in patients with tauopathies, indicating a connection between tau functioning and mechanisms of depression. The current study investigated depression-like behavior in Mapt-/- mice, which contain a targeted deletion of the gene coding for tau. We show that 6-month Mapt-/- mice are resistant to depressive behaviors, as evidenced by decreased immobility time in the forced swim and tail suspension tests, as well as increased escape behavior in a learned helplessness task. Since depression has also been linked to deficient adult neurogenesis, we measured neurogenesis in the hippocampal dentate gyrus and subventricular zone using 5-bromo-2-deoxyuridine (BrdU) labeling. We found that neurogenesis is increased in the dentate gyrus of 14-month-old Mapt-/- brains compared to wild type, providing a potential mechanism for their behavioral phenotypes. In addition to the hippocampus, an upregulation of proteins involved in neurogenesis was observed in the frontal cortex and amygdala of the Mapt-/- mice using proteomic mass spectrometry. All together, these findings suggest that tau may have a role in the depressive symptoms observed in many neurodegenerative diseases and identify tau as a potential molecular target for treating depression.

Favretto, Filippo, Jeremy D Baker, Timo Strohäker, Loren B Andreas, Laura J Blair, Stefan Becker, and Markus Zweckstetter. (2020) 2020. “The Molecular Basis of the Interaction of Cyclophilin A With α-Synuclein”. Angewandte Chemie (International Ed. In English) 59 (14): 5643-46. https://doi.org/10.1002/anie.201914878.

Peptidylprolyl isomerases (PPIases) catalyze cis/trans isomerization of prolines. The PPIase CypA colocalizes with the Parkinson's disease (PD)-associated protein α-synuclein in cells and interacts with α-synuclein oligomers. Herein, we describe atomic insights into the molecular details of the α-synuclein/CypA interaction. NMR spectroscopy shows that CypA catalyzes isomerization of proline 128 in the C-terminal domain of α-synuclein. Strikingly, we reveal a second CypA-binding site formed by the hydrophobic sequence 47 GVVHGVATVA56 , termed PreNAC. The 1.38 Å crystal structure of the CypA/PreNAC complex displays a contact between alanine 53 of α-synuclein and glutamine 111 in the catalytic pocket of CypA. Mutation of alanine 53 to glutamate, as found in patients with early-onset PD, weakens the interaction of α-synuclein with CypA. Our study provides high-resolution insights into the structure of the PD-associated protein α-synuclein in complex with the most abundant cellular cyclophilin.

Singh, Jay K, Darren M Hutt, Bradley Tait, Naihsuan C Guy, Jeffrey C Sivils, Nina R Ortiz, Ashley N Payan, et al. (2020) 2020. “Management of Hsp90-Dependent Protein Folding by Small Molecules Targeting the Aha1 Co-Chaperone”. Cell Chemical Biology 27 (3): 292-305.e6. https://doi.org/10.1016/j.chembiol.2020.01.008.

Hsp90 plays an important role in health and is a therapeutic target for managing misfolding disease. Compounds that disrupt co-chaperone delivery of clients to Hsp90 target a subset of Hsp90 activities, thereby minimizing the toxicity of pan-Hsp90 inhibitors. Here, we have identified SEW04784 as a first-in-class inhibitor of the Aha1-stimulated Hsp90 ATPase activity without inhibiting basal Hsp90 ATPase. Nuclear magnetic resonance analysis reveals that SEW84 binds to the C-terminal domain of Aha1 to weaken its asymmetric binding to Hsp90. Consistent with this observation, SEW84 blocks Aha1-dependent Hsp90 chaperoning activities, including the in vitro and in vivo refolding of firefly luciferase, and the transcriptional activity of the androgen receptor in cell-based models of prostate cancer and promotes the clearance of phosphorylated tau in cellular and tissue models of neurodegenerative tauopathy. We propose that SEW84 provides a novel lead scaffold for developing therapeutic approaches to treat proteostatic disease.

Favretto, Filippo, David Flores, Jeremy D Baker, Timo Strohäker, Loren B Andreas, Laura J Blair, Stefan Becker, and Markus Zweckstetter. (2020) 2020. “Catalysis of Proline Isomerization and Molecular Chaperone Activity in a Tug-of-War”. Nature Communications 11 (1): 6046. https://doi.org/10.1038/s41467-020-19844-0.

Catalysis of cis/trans isomerization of prolines is important for the activity and misfolding of intrinsically disordered proteins. Catalysis is achieved by peptidylprolyl isomerases, a superfamily of molecular chaperones. Here, we provide atomic insight into a tug-of-war between cis/trans isomerization and molecular chaperone activity. Catalysis of proline isomerization by cyclophilin A lowers the energy barrier for α-synuclein misfolding, while isomerase-binding to a separate, disease-associated protein region opposes aggregation. We further show that cis/trans isomerization outpowers the holding activity of cyclophilin A. Removal of the proline isomerization barrier through posttranslational truncation of α-synuclein reverses the action of the proline isomerase and turns it into a potent molecular chaperone that inhibits protein misfolding. The data reveal a conserved mechanism of dual functionality in cis/trans isomerases and define its molecular determinants acting on intrinsically disordered proteins.

Webster, Jack M, April L Darling, Taylor A Sanders, Danielle M Blazier, Yamile Vidal-Aguiar, David Beaulieu-Abdelahad, Drew G Plemmons, et al. (2020) 2020. “Hsp22 With an N-Terminal Domain Truncation Mediates a Reduction in Tau Protein Levels”. International Journal of Molecular Sciences 21 (15). https://doi.org/10.3390/ijms21155442.

Misfolding, aggregation and accumulation of proteins are toxic elements in the progression of a broad range of neurodegenerative diseases. Molecular chaperones enable a cellular defense by reducing or compartmentalizing these insults. Small heat shock proteins (sHsps) engage proteins early in the process of misfolding and can facilitate their proper folding or refolding, sequestration, or clearance. Here, we evaluate the effects of the sHsp Hsp22, as well as a pseudophosphorylated mutant and an N-terminal domain deletion (NTDΔ) variant on tau aggregation in vitro and tau accumulation and aggregation in cultured cells. Hsp22 wild-type (WT) protein had a significant inhibitory effect on heparin-induced aggregation in vitro and the pseudophosphorylated mutant Hsp22 demonstrated a similar effect. When co-expressed in a cell culture model with tau, these Hsp22 constructs significantly reduced soluble tau protein levels when transfected at a high ratio relative to tau. However, the Hsp22 NTDΔ protein drastically reduced the soluble protein expression levels of both tau WT and tau P301L/S320F even at lower transfection ratios, which resulted in a correlative reduction of the triton-insoluble tau P301L/S320F aggregates.

Criado-Marrero, Marangelie, Taylor M Smith, Lauren A Gould, Sojeong Kim, Hannah J Penny, Zheying Sun, Danielle Gulick, Chad A Dickey, and Laura J Blair. (2020) 2020. “FKBP5 and Early Life Stress Affect the Hippocampus by an Age-Dependent Mechanism”. Brain, Behavior, & Immunity - Health 9: 100143. https://doi.org/10.1016/j.bbih.2020.100143.

Early life stress (ELS) adversely affects the brain and is commonly associated with the etiology of mental health disorders, like depression. In addition to the mood-related symptoms, patients with depression show dysregulation of the hypothalamic-pituitary-adrenal (HPA) axis, increased peripheral inflammation, and structural brain alterations. Although the underlying causes are unknown, polymorphisms in the FK506-binding protein 5 (FKBP5) gene, a regulator of glucocorticoid receptor (GR) activity, interact with childhood adversities to increase vulnerability to depressive disorders. We hypothesized that high FKBP5 protein levels combined with early life stress (ELS) would alter the HPA axis and brain, promoting depressive-like behaviors. To test this, we exposed males and females of a mouse model overexpressing FKBP5 in the brain (rTgFKBP5 mice), or littermate controls, to maternal separation for 14 days after birth. Then, we evaluated neuroendocrine, behavioral, and brain changes in young adult and aged mice. We observed lower basal corticosterone (CORT) levels in rTgFKBP5 mice, which was exacerbated in females. Aged, but not young, rTgFKBP5 mice showed increased depressive-like behaviors. Moreover, FKBP5 overexpression reduced hippocampal neuron density in aged mice, while promoting markers of microglia expression, but these effects were reversed by ELS. Together, these results demonstrate that high FKBP5 affects basal CORT levels, depressive-like symptoms, and numbers of neurons and microglia in the hippocampus in an age-dependent manner.

2019

Blair, Laura J, Marangelie Criado-Marrero, Dali Zheng, Xinming Wang, Siddharth Kamath, Bryce A Nordhues, Edwin J Weeber, and Chad A Dickey. (2019) 2019. “The Disease-Associated Chaperone FKBP51 Impairs Cognitive Function by Accelerating AMPA Receptor Recycling”. ENeuro 6 (1). https://doi.org/10.1523/ENEURO.0242-18.2019.

Increased expression of the FK506-binding protein 5 (FKBP5) gene has been associated with a number of diseases, but most prominently in connection to psychiatric illnesses. Many of these psychiatric disorders present with dementia and other cognitive deficits, but a direct connection between these issues and alterations in FKBP5 remains unclear. We generated a novel transgenic mouse to selectively overexpress FKBP5, which encodes the FKBP51 protein, in the corticolimbic system, which had no overt effects on gross body weight, motor ability, or general anxiety. Instead, we found that overexpression of FKBP51 impaired long-term depression (LTD) as well as spatial reversal learning and memory, suggesting a role in glutamate receptor regulation. Indeed, FKBP51 altered the association of heat-shock protein 90 (Hsp90) with AMPA receptors, which was accompanied by an accelerated rate of AMPA recycling. In this way, the chaperone system is critical in triage decisions for AMPA receptor trafficking. Imbalance in the chaperone system may manifest in impairments in both inhibitory learning and cognitive function. These findings uncover an unexpected and essential mechanism for learning and memory that is controlled by the psychiatric risk factor FKBP5.

Blair, Laura J, Olivier Genest, and Mehdi Mollapour. (2019) 2019. “The Multiple Facets of the Hsp90 Machine”. Nature Structural & Molecular Biology 26 (2): 92-95. https://doi.org/10.1038/s41594-018-0177-7.

The Ninth International Conference on the Hsp90 Chaperone Machine concluded in October 2018, in Leysin, Switzerland. The program highlighted findings in various areas, including integrated insight into molecular mechanism of Hsp90, cochaperones, and clients’ structure and function.

Darling, April L, Leonid Breydo, Emma G Rivas, Niad T Gebru, Dali Zheng, Jeremy D Baker, Laura J Blair, Chad A Dickey, John Koren, and Vladimir N Uversky. (2019) 2019. “Repeated Repeat Problems: Combinatorial Effect of C9orf72-Derived Dipeptide Repeat Proteins”. International Journal of Biological Macromolecules 127: 136-45. https://doi.org/10.1016/j.ijbiomac.2019.01.035.

A microsatellite expansion mutation in C9orf72 is the most common genetic cause of Amyotrophic Lateral Sclerosis (ALS) and Frontotemporal Dementia (FTD). The expansion mutation leads to C9orf72 loss of function, RNA foci formation, and generation of five species of non-AUG RAN translated dipeptide repeat proteins (DPRs), such as poly(GA), poly(GP), poly(GR), poly(PA), and poly(PR). Although one cell can contain more than type of DPRs, information about interplay between different DPR species is limited. Here we show that the combined expression of distinct C9orf72-derived dipeptide repeat species produces cellular outcomes and structural differences that are unique compared to the expression of a single DPR species, suggesting the complex biological interactions that occur when multiple DPR variants are simultaneously expressed. Our data highlights the need for further analysis of how combined expression of different DPRs affects the disease state.