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Dive into the research topics where Ju-Hyun Lee is active.

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Featured researches published by Ju-Hyun Lee.


Cell | 2010

Lysosomal Proteolysis and Autophagy Require Presenilin 1 and Are Disrupted by Alzheimer-Related PS1 Mutations

Ju-Hyun Lee; W. Haung Yu; Asok Kumar; Sooyeon Lee; Panaiyur S. Mohan; Corrinne M. Peterhoff; Devin M. Wolfe; Marta Martinez-Vicente; Ashish C. Massey; Guy Sovak; Yasuo Uchiyama; David Westaway; Ana Maria Cuervo; Ralph A. Nixon

Macroautophagy is a lysosomal degradative pathway essential for neuron survival. Here, we show that macroautophagy requires the Alzheimers disease (AD)-related protein presenilin-1 (PS1). In PS1 null blastocysts, neurons from mice hypomorphic for PS1 or conditionally depleted of PS1, substrate proteolysis and autophagosome clearance during macroautophagy are prevented as a result of a selective impairment of autolysosome acidification and cathepsin activation. These deficits are caused by failed PS1-dependent targeting of the v-ATPase V0a1 subunit to lysosomes. N-glycosylation of the V0a1 subunit, essential for its efficient ER-to-lysosome delivery, requires the selective binding of PS1 holoprotein to the unglycosylated subunit and the Sec61alpha/oligosaccharyltransferase complex. PS1 mutations causing early-onset AD produce a similar lysosomal/autophagy phenotype in fibroblasts from AD patients. PS1 is therefore essential for v-ATPase targeting to lysosomes, lysosome acidification, and proteolysis during autophagy. Defective lysosomal proteolysis represents a basis for pathogenic protein accumulations and neuronal cell death in AD and suggests previously unidentified therapeutic targets.


Autophagy | 2008

Neurodegenerative lysosomal disorders: A continuum from development to late age

Ralph A. Nixon; Dun-Sheng Yang; Ju-Hyun Lee

Neuronal survival requires continuous lysosomal turnover of cellular constituents delivered by autophagy and endocytosis. Primary lysosomal dysfunction in inherited congenital “lysosomal storage” disorders is well known to cause severe neurodegenerative phenotypes associated with accumulations of lysosomes and autophagic vacuoles (AVs). Recently, the number of inherited adult-onset neurodegenerative diseases caused by proteins that regulate protein sorting and degradation within the endocytic and autophagic pathways has grown considerably. In this Perspective, we classify a group of neurodegenerative diseases across the lifespan as disorders of lysosomal function, which feature extensive autophagic-endocytic-lysosomal neuropathology and may share mechanisms of neurodegeneration related to degradative failure and lysosomal destabilization. We highlight Alzheimer’s disease as a disease within this group and discuss how each of the genes and other risk factors promoting this disease contribute to progressive lysosomal dysfunction and neuronal cell death.


European Journal of Neuroscience | 2013

Autophagy failure in Alzheimer's disease and the role of defective lysosomal acidification

Devin M. Wolfe; Ju-Hyun Lee; Asok Kumar; Sooyeon Lee; Samantha J. Orenstein; Ralph A. Nixon

Autophagy is a lysosomal degradative process which recycles cellular waste and eliminates potentially toxic damaged organelles and protein aggregates. The important cytoprotective functions of autophagy are demonstrated by the diverse pathogenic consequences that may stem from autophagy dysregulation in a growing number of neurodegenerative disorders. In many of the diseases associated with autophagy anomalies, it is the final stage of autophagy–lysosomal degradation that is disrupted. In several disorders, including Alzheimers disease (AD), defective lysosomal acidification contributes to this proteolytic failure. The complex regulation of lysosomal pH makes this process vulnerable to disruption by many factors, and reliable lysosomal pH measurements have become increasingly important in investigations of disease mechanisms. Although various reagents for pH quantification have been developed over several decades, they are not all equally well suited for measuring the pH of lysosomes. Here, we evaluate the most commonly used pH probes for sensitivity and localisation, and identify LysoSensor yellow/blue‐dextran, among currently used probes, as having the optimal profile of properties for measuring lysosomal pH. In addition, we review evidence that lysosomal acidification is defective in AD and extend our original findings, of elevated lysosomal pH in presenilin 1 (PS1)‐deficient blastocysts and neurons, to additional cell models of PS1 and PS1/2 deficiency, to fibroblasts from AD patients with PS1 mutations, and to neurons in the PS/APP mouse model of AD.


Cell Reports | 2015

Presenilin 1 Maintains Lysosomal Ca2+ Homeostasis via TRPML1 by Regulating vATPase-Mediated Lysosome Acidification

Ju-Hyun Lee; Mary Kate McBrayer; Devin M. Wolfe; Luke J. Haslett; Asok Kumar; Yutaka Sato; Pearl P.Y. Lie; Panaiyur S. Mohan; Erin E. Coffey; Uday B. Kompella; Claire H. Mitchell; Emyr Lloyd-Evans; Ralph A. Nixon

Presenilin 1 (PS1) deletion or Alzheimers disease (AD)-linked mutations disrupt lysosomal acidification and proteolysis, which inhibits autophagy. Here, we establish that this phenotype stems from impaired glycosylation and instability of vATPase V0a1 subunit, causing deficient lysosomal vATPase assembly and function. We further demonstrate that elevated lysosomal pH in Presenilin 1 knockout (PS1KO) cells induces abnormal Ca(2+) efflux from lysosomes mediated by TRPML1 and elevates cytosolic Ca(2+). In WT cells, blocking vATPase activity or knockdown of either PS1 or the V0a1 subunit of vATPase reproduces all of these abnormalities. Normalizing lysosomal pH in PS1KO cells using acidic nanoparticles restores normal lysosomal proteolysis, autophagy, and Ca(2+) homeostasis, but correcting lysosomal Ca(2+) deficits alone neither re-acidifies lysosomes nor reverses proteolytic and autophagic deficits. Our results indicate that vATPase deficiency in PS1 loss-of-function states causes lysosomal/autophagy deficits and contributes to abnormal cellular Ca(2+) homeostasis, thus linking two AD-related pathogenic processes through a common molecular mechanism.


Neurobiology of Aging | 2011

Declining phosphatases underlie aging-related hyperphosphorylation of neurofilaments

Veeranna; Dun-Sheng Yang; Ju-Hyun Lee; K. Yaragudri Vinod; Philip Stavrides; Niranjana D. Amin; Harish C. Pant; Ralph A. Nixon

Cytoskeletal protein phosphorylation is frequently altered in neuropathologic states but little is known about changes during normal aging. Here we report that declining protein phosphatase activity, rather than activation of kinases, underlies aging-related neurofilament hyperphosphorylation. Purified PP2A or PP2B dephosphorylated the heavy neurofilament (NFH) subunit or its extensively phorphorylated carboxyl-terminal domain in vitro. In cultured primary hippocampal neurons, inhibiting either phosphatase induced NFH phosphorylation without activating known neurofilament kinases. Neurofilament phosphorylation in the mouse CNS, as reflected by levels of the RT-97 phosphoepitope associated with late axon maturation, more than doubled during the 12-month period after NFH expression plateaued at p21. This was accompanied by declines in levels and activity of PP2A but not PP2B, and no rise in activities of neurofilament kinases (Erk1,2, cdk5 and JNK1,2). Inhibiting PP2A in mice in vivo restored brain RT-97 to levels seen in young mice. Declining PP2A activity, therefore, can account for rising neurofilament phosphorylation in maturing brain, potentially compounding similar changes associated with adult-onset neurodegenerative diseases.


Journal of Neurochemistry | 2008

Neurofilament tail phosphorylation: identity of the RT‐97 phosphoepitope and regulation in neurons by cross‐talk among proline‐directed kinases

Veeranna; Ju-Hyun Lee; Tej K. Pareek; Howard Jaffee; Barry Boland; K. Yaragudri Vinod; Niranjana D. Amin; Ashok B. Kulkarni; Harish C. Pant; Ralph A. Nixon

As axons myelinate, establish a stable neurofilament network, and expand in caliber, neurofilament proteins are extensively phosphorylated along their C‐terminal tails, which is recognized by the monoclonal antibody, RT‐97. Here, we demonstrate in vivo that RT‐97 immunoreactivity (IR) is generated by phosphorylation at KSPXK or KSPXXXK motifs and requires flanking lysines at specific positions. extracellular signal regulated kinase 1,2 (ERK1,2) and pERK1,2 levels increase in parallel with phosphorylation at the RT‐97 epitope during early postnatal brain development. Purified ERK1,2 generated RT‐97 on both KSP motifs on recombinant NF‐H tail domain proteins, while cdk5 phosphorylated only KSPXK motifs. RT‐97 epitope generation in primary hippocampal neurons was regulated by extensive cross‐talk among ERK1,2, c‐Jun N‐terminal kinase 1,2 (JNK1,2) and cdk5. Inhibition of both ERK1,2 and JNK1,2 completely blocked RT‐97 generation. Cdk5 influenced RT‐97 generation indirectly by modulating JNK activation. In mice, cdk5 gene deletion did not significantly alter RT‐97 IR or ERK1,2 and JNK activation. In mice lacking the cdk5 activator P35, the partial suppression of cdk5 activity increased RT‐97 IR by activating ERK1,2. Thus, cdk5 influences RT‐97 epitope generation partly by modulating ERKs and JNKs, which are the two principal kinases regulating neurofilament phosphorylation. The regulation of a single target by multiple protein kinases underscores the importance of monitoring other relevant kinases when the activity of a particular one is blocked.


Methods in Enzymology | 2009

Monitoring autophagy in Alzheimer's disease and related neurodegenerative diseases.

Dun-Sheng Yang; Ju-Hyun Lee; Ralph A. Nixon

This chapter describes detailed methods to monitor autophagy in neurodegenerative disorders, especially in Alzheimers disease. Strategies to assess the competence of autophagy-related mechanisms in disease states ideally incorporate analyses of human disease and control tissues, which may include brain, fibroblasts, or other peripheral cells, in addition to animal and cell models of the neurodegenerative disease pathology and pathobiology. Cross-validation of pathophysiological mechanisms in the diseased tissues is always critical. Because of the cellular heterogeneity of the brain and the differential vulnerability of the neural cells in a given disease state, analyses focus on regional comparisons of affected and unaffected regions or cell populations within a particular brain region and include ultrastructural, immunological, and cell and molecular biological approaches.


Autophagy | 2018

Transgenic expression of a ratiometric autophagy probe specifically in neurons enables the interrogation of brain autophagy in vivo

Ju-Hyun Lee; Mala V. Rao; Dun-Sheng Yang; Philip Stavrides; Eunju Im; Anna Pensalfini; Chunfeng Huo; Pallabi Sarkar; Tamotsu Yoshimori; Ralph A. Nixon

ABSTRACT Autophagy-lysosome pathway (ALP) disruption is considered pathogenic in multiple neurodegenerative diseases; however, current methods are inadequate to investigate macroautophagy/autophagy flux in brain in vivo and its therapeutic modulation. Here, we describe a novel autophagy reporter mouse (TRGL6) stably expressing a dual-fluorescence-tagged LC3 (tfLC3, mRFP-eGFP-LC3) by transgenesis selectively in neurons. The tfLC3 probe distributes widely in the central nervous system, including spinal cord. Expression levels were similar to endogenous LC3 and induced no detectable ALP changes. This ratiometric reporter registers differential pH-dependent changes in color as autophagosomes form, fuse with lysosomes, acidify, and degrade substrates within autolysosomes. We confirmed predicted changes in neuronal autophagy flux following specific experimental ALP perturbations. Furthermore, using a third fluorescence label in TRGL6 brains to identify lysosomes by immunocytochemistry, we validated a novel procedure to detect defective autolysosomal acidification in vivo. Thus, TRGL6 mice represent a unique tool to investigate in vivo ALP dynamics in specific neuron populations in relation to neurological diseases, aging, and disease modifying agents. Abbreviations: ACTB: actin, beta; AD: Alzheimer disease; AL: autolysosomes; ALP: autophagy-lysosome pathway; AP: autophagosome; APP: amyloid beta (Abeta) precursor protein; ATG5: autophagy related 5; ATG7: autophagy related 7; AV: autophagic vacuoles; CNS: central nervous system; CTSD: cathepsin D; CQ: chloroquine; DMEM: Dulbecco’s modified Eagle’s medium; GFP: green fluorescent protein; GABARAP: gamma-aminobutyric acid receptor associated protein; GABARAPL2/GATE16: gamma-aminobutyric acid (GABA) receptor-associated protein-like 2; ICC: immunocytochemistry; ICV: intra-cerebroventricular; LAMP2: lysosomal-associated membrane protein 2; Leup: leupeptin; LY: lysosomes; MAP1LC3/LC3: microtubule-associated protein 1 light chain 3; MTOR: mechanistic target of rapamycin kinase; RBFOX3/NeuN: RNA binding protein, fox-1 homolog (C. elegans) 3; RFP: red fluorescent protein; RPS6KB1: ribosomal protein S6 kinase, polypeptide 1; SDS-PAGE: sodium dodecyl sulfate-polyacrylamide gel electrophoresis; SQSTM1: sequestosome 1; tfLC3: mRFP-eGFP-LC3; TRGL6: Thy1 mRFP eGFP LC3-line 6; PCR: polymerase chain reaction; PD: Parkinson disease


Alzheimers & Dementia | 2010

Presenilin 1 (PS1) is required for lysosome acidification: FAD mutations of PS1 cause loss of protein turnover by autophagy

Ju-Hyun Lee; W. Haung Yu; Asok Kumar; Sooyeon Lee; Panaiyur S. Mohan; Corrinne M. Peterhoff; Marta Martinez-Vicente; Ashish C. Massey; Guy Sovak; Yasuo Uchiyama; David Westaway; Sangram S. Sisodia; Ana Maria Cuervo; Ralph A. Nixon


Journal of Experimental Medicine | 2005

Macroautophagy—a novel β-amyloid peptide-generating pathway activated in Alzheimer's disease

W. Haung Yu; Ana Maria Cuervo; Asok Kumar; Corrinne M. Peterhoff; Stephen D. Schmidt; Ju-Hyun Lee; Panaiyur S. Mohan; Marc Mercken; Mark R. Farmery; Lars O. Tjernberg; Ying Jiang; Karen Duff; Yasuo Uchiyama; Jan Näslund; Paul M. Mathews; Anne M. Cataldo; Ralph A. Nixon

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Ana Maria Cuervo

Albert Einstein College of Medicine

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Corrinne M. Peterhoff

Nathan Kline Institute for Psychiatric Research

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Ashish C. Massey

Albert Einstein College of Medicine

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