1.Era of Digital Healthcare: Emergence of the Smart Patient
Dooyoung HUHH ; Kwangsoo SHIN ; Miyeong KIM ; Jisan LEE ; Hana KIM ; Jinho CHOI ; Suyeon BAN
Healthcare Informatics Research 2025;31(1):107-110
2.Era of Digital Healthcare: Emergence of the Smart Patient
Dooyoung HUHH ; Kwangsoo SHIN ; Miyeong KIM ; Jisan LEE ; Hana KIM ; Jinho CHOI ; Suyeon BAN
Healthcare Informatics Research 2025;31(1):107-110
3.Era of Digital Healthcare: Emergence of the Smart Patient
Dooyoung HUHH ; Kwangsoo SHIN ; Miyeong KIM ; Jisan LEE ; Hana KIM ; Jinho CHOI ; Suyeon BAN
Healthcare Informatics Research 2025;31(1):107-110
4.Amyloid-beta oligomers regulate the properties of human neural stem cells through GSK-3beta signaling.
Il Shin LEE ; Kwangsoo JUNG ; Il Sun KIM ; Kook In PARK
Experimental & Molecular Medicine 2013;45(11):e60-
Alzheimer's disease (AD) is the most common cause of age-related dementia. The neuropathological hallmarks of AD include extracellular deposition of amyloid-beta peptides and neurofibrillary tangles that lead to intracellular hyperphosphorylated tau in the brain. Soluble amyloid-beta oligomers are the primary pathogenic factor leading to cognitive impairment in AD. Neural stem cells (NSCs) are able to self-renew and give rise to multiple neural cell lineages in both developing and adult central nervous systems. To explore the relationship between AD-related pathology and the behaviors of NSCs that enable neuroregeneration, a number of studies have used animal and in vitro models to investigate the role of amyloid-beta on NSCs derived from various brain regions at different developmental stages. However, the Abeta effects on NSCs remain poorly understood because of conflicting results. To investigate the effects of amyloid-beta oligomers on human NSCs, we established amyloid precursor protein Swedish mutant-expressing cells and identified cell-derived amyloid-beta oligomers in the culture media. Human NSCs were isolated from an aborted fetal telencephalon at 13 weeks of gestation and expanded in culture as neurospheres. Human NSCs exposure to cell-derived amyloid-beta oligomers decreased dividing potential resulting from senescence through telomere attrition, impaired neurogenesis and promoted gliogenesis, and attenuated mobility. These amyloid-beta oligomers modulated the proliferation, differentiation and migration patterns of human NSCs via a glycogen synthase kinase-3beta-mediated signaling pathway. These findings contribute to the development of human NSC-based therapy for AD by elucidating the effects of Abeta oligomers on human NSCs.
Amyloid beta-Peptides/*pharmacology
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Animals
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Apoptosis
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Cell Aging
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Cell Movement
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Cell Proliferation
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Culture Media, Conditioned/chemistry/pharmacology
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Fetus/cytology
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Glycogen Synthase Kinase 3/*metabolism
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HEK293 Cells
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Humans
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Mice
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Mice, Inbred C57BL
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Neural Stem Cells/*drug effects/metabolism/physiology
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Signal Transduction
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Telomere Shortening
5.Assessment of Competence in Emergency Medicine among Healthcare Professionals in Cameroon.
Sang Chul KIM ; Young Sun RO ; Sang Do SHIN ; Dae Han WI ; Joongsik JEONG ; Ju Ok PARK ; Kyong Min SUN ; Kwangsoo BAE
Journal of Korean Medical Science 2017;32(12):1931-1937
Development of a competence-based curriculum is important. This study aimed to develop competence assessment tools in emergency medicine and use it to assess competence of Cameroonian healthcare professionals. This was a cross-sectional, descriptive study. Through literature review, expert survey, and discrimination tests, we developed a self-survey questionnaire and a scenario-based competence assessment tool for assessing clinical knowledge and self-confidence to perform clinical practices or procedures. The self-survey consisted of 23 domains and 94 questionnaires on a 5-point Likert scale. Objective scenario-based competence assessment tool was used to validate the self-survey results for five life-threatening diseases presenting frequently in emergency rooms of Cameroon. Response rate of the self-survey was 82.6%. In this first half of competence assessment, knowledge of infectious disease had the highest score (4.6 ± 0.4) followed by obstetrics and gynecology (4.2 ± 0.6) and hematology and oncology (4.2 ± 0.5); in contrast, respondents rated the lowest score in the domains of disaster, abuse and assault, and psychiatric and behavior disorder (all of mean 2.8). In the scenario-based test, knowledge of multiple trauma had the highest score (4.3 ± 1.2) followed by anaphylaxis (3.4 ± 1.4), diabetic ketoacidosis (3.3 ± 1.0), ST-elevation myocardial infarction (2.5 ± 1.4), and septic shock (2.2 ± 1.1). Mean difference between the self-survey and scenario-based test was statistically insignificant (mean, −0.02; 95% confidence interval, −0.41 to 0.36), and agreement rate was 58.3%. Both evaluation tools showed a moderate correlation, and the study population had relatively low competence for specific aspects of emergency medicine and clinical procedures and skills.
Anaphylaxis
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Cameroon*
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Communicable Diseases
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Curriculum
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Delivery of Health Care*
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Developing Countries
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Diabetic Ketoacidosis
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Disasters
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Discrimination (Psychology)
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Emergencies*
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Emergency Medicine*
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Emergency Service, Hospital
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Gynecology
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Hematology
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Mental Competency*
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Multiple Trauma
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Myocardial Infarction
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Obstetrics
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Professional Competence
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Shock, Septic
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Surveys and Questionnaires
6.Glial Cell Line-derived Neurotrophic Factor-overexpressing Human Neural Stem/Progenitor Cells Enhance Therapeutic Efficiency in Rat with Traumatic Spinal Cord Injury
Kyujin HWANG ; Kwangsoo JUNG ; Il Sun KIM ; Miri KIM ; Jungho HAN ; Joohee LIM ; Jeong Eun SHIN ; Jae Hyung JANG ; Kook In PARK
Experimental Neurobiology 2019;28(6):679-696
Spinal cord injury (SCI) causes axonal damage and demyelination, neural cell death, and comprehensive tissue loss, resulting in devastating neurological dysfunction. Neural stem/progenitor cell (NSPCs) transplantation provides therapeutic benefits for neural repair in SCI, and glial cell line-derived neurotrophic factor (GDNF) has been uncovered to have capability of stimulating axonal regeneration and remyelination after SCI. In this study, to evaluate whether GDNF would augment therapeutic effects of NSPCs for SCI, GDNF-encoding or mock adenoviral vector-transduced human NSPCs (GDNF-or Mock-hNSPCs) were transplanted into the injured thoracic spinal cords of rats at 7 days after SCI. Grafted GDNF-hNSPCs showed robust engraftment, long-term survival, an extensive distribution, and increased differentiation into neurons and oligodendroglial cells. Compared with Mock-hNSPC- and vehicle-injected groups, transplantation of GDNF-hNSPCs significantly reduced lesion volume and glial scar formation, promoted neurite outgrowth, axonal regeneration and myelination, increased Schwann cell migration that contributed to the myelin repair, and improved locomotor recovery. In addition, tract tracing demonstrated that transplantation of GDNF-hNSPCs reduced significantly axonal dieback of the dorsal corticospinal tract (dCST), and increased the levels of dCST collaterals, propriospinal neurons (PSNs), and contacts between dCST collaterals and PSNs in the cervical enlargement over that of the controls. Finally grafted GDNF-hNSPCs substantially reversed the increased expression of voltage-gated sodium channels and neuropeptide Y, and elevated expression of GABA in the injured spinal cord, which are involved in the attenuation of neuropathic pain after SCI. These findings suggest that implantation of GDNF-hNSPCs enhances therapeutic efficiency of hNSPCs-based cell therapy for SCI.
Animals
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Axons
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Cell Death
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Cell Movement
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Cell- and Tissue-Based Therapy
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Cicatrix
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Demyelinating Diseases
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gamma-Aminobutyric Acid
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Glial Cell Line-Derived Neurotrophic Factor
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Humans
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Hyperalgesia
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Myelin Sheath
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Neuralgia
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Neurites
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Neuroglia
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Neurons
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Neuropeptide Y
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Paraplegia
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Pyramidal Tracts
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Rats
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Regeneration
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Spinal Cord Injuries
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Spinal Cord
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Therapeutic Uses
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Transplants
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Voltage-Gated Sodium Channels
7.Cellular Response of Ventricular-Subventricular Neural Progenitor/Stem Cells to Neonatal Hypoxic-Ischemic Brain Injury and Their Enhanced Neurogenesis
Jeong Eun SHIN ; Haejin LEE ; Kwangsoo JUNG ; Miri KIM ; Kyujin HWANG ; Jungho HAN ; Joohee LIM ; Il-Sun KIM ; Kwang-Il LIM ; Kook In PARK
Yonsei Medical Journal 2020;61(6):492-505
Purpose:
To elucidate the brain’s intrinsic response to injury, we tracked the response of neural stem/progenitor cells (NSPCs) located in ventricular-subventricular zone (V-SVZ) to hypoxic-ischemic brain injury (HI). We also evaluated whether transduction of V-SVZ NSPCs with neurogenic factor NeuroD1 could enhance their neurogenesis in HI.
Materials and Methods:
Unilateral HI was induced in ICR neonatal mice. To label proliferative V-SVZ NSPCs in response to HI, bromodeoxyuridine (BrdU) and retroviral particles encoding LacZ or NeuroD1/GFP were injected. The cellular responses of NSPCs were analyzed by immunohistochemistry.
Results:
Unilateral HI increased the number of BrdU+ newly-born cells in the V-SVZ ipsilateral to the lesion while injury reduced the number of newly-born cells reaching the ipsilateral olfactory bulb, which is the programmed destination of migratory V-SVZ NSPCs in the intact brain. These newly-born cells were directed from this pathway towards the lesions. HI significantly increased the number of newly-born cells in the cortex and striatum by the altered migration of V-SVZ cells. Many of these newly-born cells differentiated into active neurons and glia. LacZ-expressing V-SVZ NSPCs also showed extensive migration towards the non-neurogenic regions ipsilateral to the lesion, and expressed the neuronal marker NeuN. NeuroD1+/GFP+ V-SVZ NSPCs almost differentiated into neurons in the peri-infarct regions.
Conclusion
HI promotes the establishment of a substantial number of new neurons in non-neurogenic regions, suggesting intrinsic repair mechanisms of the brain, by controlling the behavior of endogenous NSPCs. The activation of NeuroD1 expression may improve the therapeutic potential of endogenous NSPCs by increasing their neuronal differentiation in HI.
8.Transformation of Mature Osteoblasts into Bone Lining Cells and RNA Sequencing-Based Transcriptome Profiling of Mouse Bone during Mechanical Unloading
A Ram HONG ; Kwangsoo KIM ; Ji Yeon LEE ; Jae-Yeon YANG ; Jung Hee KIM ; Chan Soo SHIN ; Sang Wan KIM
Endocrinology and Metabolism 2020;35(2):456-469
Background:
We investigated RNA sequencing-based transcriptome profiling and the transformation of mature osteoblasts into bone lining cells (BLCs) through a lineage tracing study to better understand the effect of mechanical unloading on bone loss.
Methods:
Dmp1-CreERt2(+):Rosa26R mice were injected with 1 mg of 4-hydroxy-tamoxifen three times a week starting at postnatal week 7, and subjected to a combination of botulinum toxin injection with left hindlimb tenotomy starting at postnatal week 8 to 10. The animals were euthanized at postnatal weeks 8, 9, 10, and 12. We quantified the number and thickness of X-gal(+) cells on the periosteum of the right and left femoral bones at each time point.
Results:
Two weeks after unloading, a significant decrease in the number and a subtle change in the thickness of X-gal(+) cells were observed in the left hindlimbs compared with the right hindlimbs. At 4 weeks after unloading, the decrease in the thickness was accelerated in the left hindlimbs, although the number of labeled cells was comparable. RNA sequencing analysis showed downregulation of 315 genes in the left hindlimbs at 2 and 4 weeks after unloading. Of these, Xirp2, AMPD1, Mettl11b, NEXN, CYP2E1, Bche, Ppp1r3c, Tceal7, and Gadl1 were upregulated during osteoblastogenic/osteocytic and myogenic differentiation in vitro.
Conclusion
These findings demonstrate that mechanical unloading can accelerate the transformation of mature osteoblasts into BLCs in the early stages of bone loss in vivo. Furthermore, some of the genes involved in this process may have a pleiotropic effect on both bone and muscle.
9.Transformation of Mature Osteoblasts into Bone Lining Cells and RNA Sequencing-Based Transcriptome Profiling of Mouse Bone during Mechanical Unloading
A Ram HONG ; Kwangsoo KIM ; Ji Yeon LEE ; Jae-Yeon YANG ; Jung Hee KIM ; Chan Soo SHIN ; Sang Wan KIM
Endocrinology and Metabolism 2021;36(6):1314-1314
10.Corrigendum to: Development and Verification of Time-Series Deep Learning for Drug-Induced Liver Injury Detection in Patients Taking Angiotensin II Receptor Blockers: A Multicenter Distributed Research Network Approach
Suncheol HEO ; Jae Yong YU ; Eun Ae KANG ; Hyunah SHIN ; Kyeongmin RYU ; Chungsoo KIM ; Yebin CHEGA ; Hyojung JUNG ; Suehyun LEE ; Rae Woong PARK ; Kwangsoo KIM ; Yul HWANGBO ; Jae-Hyun LEE ; Yu Rang PARK
Healthcare Informatics Research 2024;30(2):168-168