1.Stress granules and organelles: coordinating cellular responses in health and disease.
Ying LIU ; Yin LI ; Peipei ZHANG
Protein & Cell 2025;16(6):418-438
Membrane-bound organelles and membraneless organelles (MLOs) coordinate various biological processes within eukaryotic cells. Among these, stress granules (SGs) are significant cytoplasmic MLOs that form in response to cellular stress, exhibiting liquid-like properties alongside stable substructures. SGs interact with diverse organelles, thereby influencing cellular pathways that are critical in both health and disease contexts. This review discusses the interplay between SGs and organelles and explores the methodologies employed to analyze interactions between SGs and other MLOs. Furthermore, it highlights the pivotal roles SGs play in regulating cellular responses and the pathogenesis of amyotrophic lateral sclerosis. Gaining insights into these interactions is essential for deciphering the mechanisms underlying both physiological processes and pathological conditions.
Humans
;
Stress Granules/pathology*
;
Organelles/metabolism*
;
Amyotrophic Lateral Sclerosis/pathology*
;
Animals
;
Stress, Physiological
;
Cytoplasmic Granules/metabolism*
2.Axonopathy Underlying Amyotrophic Lateral Sclerosis: Unraveling Complex Pathways and Therapeutic Insights.
Tongshu LUAN ; Qing LI ; Zhi HUANG ; Yu FENG ; Duo XU ; Yujie ZHOU ; Yiqing HU ; Tong WANG
Neuroscience Bulletin 2024;40(11):1789-1810
Amyotrophic Lateral Sclerosis (ALS) is a complex neurodegenerative disorder characterized by progressive axonopathy, jointly leading to the dying back of the motor neuron, disrupting both nerve signaling and motor control. In this review, we highlight the roles of axonopathy in ALS progression, driven by the interplay of multiple factors including defective trafficking machinery, protein aggregation, and mitochondrial dysfunction. Dysfunctional intracellular transport, caused by disruptions in microtubules, molecular motors, and adaptors, has been identified as a key contributor to disease progression. Aberrant protein aggregation involving TDP-43, FUS, SOD1, and dipeptide repeat proteins further amplifies neuronal toxicity. Mitochondrial defects lead to ATP depletion, oxidative stress, and Ca2+ imbalance, which are regarded as key factors underlying the loss of neuromuscular junctions and axonopathy. Mitigating these defects through interventions including neurotrophic treatments offers therapeutic potential. Collaborative research efforts aim to unravel ALS complexities, opening avenues for holistic interventions that target diverse pathological mechanisms.
Humans
;
Amyotrophic Lateral Sclerosis/therapy*
;
Animals
;
Axons/metabolism*
;
Mitochondria/metabolism*
;
Motor Neurons/pathology*
3.REEP1 Preserves Motor Function in SOD1G93A Mice by Improving Mitochondrial Function via Interaction with NDUFA4.
Siyue QIN ; Pan YOU ; Hui YU ; Bo SU
Neuroscience Bulletin 2023;39(6):929-946
A decline in the activities of oxidative phosphorylation (OXPHOS) complexes has been consistently reported in amyotrophic lateral sclerosis (ALS) patients and animal models of ALS, although the underlying molecular mechanisms are still elusive. Here, we report that receptor expression enhancing protein 1 (REEP1) acts as an important regulator of complex IV assembly, which is pivotal to preserving motor neurons in SOD1G93A mice. We found the expression of REEP1 was greatly reduced in transgenic SOD1G93A mice with ALS. Moreover, forced expression of REEP1 in the spinal cord extended the lifespan, decelerated symptom progression, and improved the motor performance of SOD1G93A mice. The neuromuscular synaptic loss, gliosis, and even motor neuron loss in SOD1G93A mice were alleviated by increased REEP1 through augmentation of mitochondrial function. Mechanistically, REEP1 associates with NDUFA4, and plays an important role in preserving the integrity of mitochondrial complex IV. Our findings offer insights into the pathogenic mechanism of REEP1 deficiency in neurodegenerative diseases and suggest a new therapeutic target for ALS.
Mice
;
Animals
;
Amyotrophic Lateral Sclerosis/metabolism*
;
Superoxide Dismutase-1/metabolism*
;
Superoxide Dismutase/metabolism*
;
Mice, Transgenic
;
Spinal Cord/pathology*
;
Mitochondria/physiology*
;
Disease Models, Animal
4.New pathogenic insights from large animal models of neurodegenerative diseases.
Peng YIN ; Shihua LI ; Xiao-Jiang LI ; Weili YANG
Protein & Cell 2022;13(10):707-720
Animal models are essential for investigating the pathogenesis and developing the treatment of human diseases. Identification of genetic mutations responsible for neurodegenerative diseases has enabled the creation of a large number of small animal models that mimic genetic defects found in the affected individuals. Of the current animal models, rodents with genetic modifications are the most commonly used animal models and provided important insights into pathogenesis. However, most of genetically modified rodent models lack overt neurodegeneration, imposing challenges and obstacles in utilizing them to rigorously test the therapeutic effects on neurodegeneration. Recent studies that used CRISPR/Cas9-targeted large animal (pigs and monkeys) have uncovered important pathological events that resemble neurodegeneration in the patient's brain but could not be produced in small animal models. Here we highlight the unique nature of large animals to model neurodegenerative diseases as well as the limitations and challenges in establishing large animal models of neurodegenerative diseases, with focus on Huntington disease, Amyotrophic lateral sclerosis, and Parkinson diseases. We also discuss how to use the important pathogenic insights from large animal models to make rodent models more capable of recapitulating important pathological features of neurodegenerative diseases.
Amyotrophic Lateral Sclerosis/genetics*
;
Animals
;
Brain/pathology*
;
Disease Models, Animal
;
Gene Editing
;
Neurodegenerative Diseases/pathology*
;
Swine
5.Increased expression of coronin-1a in amyotrophic lateral sclerosis: a potential diagnostic biomarker and therapeutic target.
Qinming ZHOU ; Lu HE ; Jin HU ; Yining GAO ; Dingding SHEN ; You NI ; Yuening QIN ; Huafeng LIANG ; Jun LIU ; Weidong LE ; Sheng CHEN
Frontiers of Medicine 2022;16(5):723-735
Amyotrophic lateral sclerosis (ALS) is the most common motor neuron disease. At present, no definite ALS biomarkers are available. In this study, exosomes from the plasma of patients with ALS and healthy controls were extracted, and differentially expressed exosomal proteins were compared. Among them, the expression of exosomal coronin-1a (CORO1A) was 5.3-fold higher than that in the controls. CORO1A increased with disease progression at a certain proportion in the plasma of patients with ALS and in the spinal cord of ALS mice. CORO1A was also overexpressed in NSC-34 motor neuron-like cells, and apoptosis, oxidative stress, and autophagic protein expression were evaluated. CORO1A overexpression resulted in increased apoptosis and oxidative stress, overactivated autophagy, and hindered the formation of autolysosomes. Moreover, CORO1A activated Ca2+-dependent phosphatase calcineurin, thereby blocking the fusion of autophagosomes and lysosomes. The inhibition of calcineurin activation by cyclosporin A reversed the damaged autolysosomes. In conclusion, the role of CORO1A in ALS pathogenesis was discovered, potentially affecting the disease onset and progression by blocking autophagic flux. Therefore, CORO1A might be a potential biomarker and therapeutic target for ALS.
Mice
;
Animals
;
Amyotrophic Lateral Sclerosis/pathology*
;
Calcineurin/metabolism*
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Motor Neurons/pathology*
;
Microfilament Proteins/metabolism*
;
Cytoskeletal Proteins/metabolism*
6.Impaired Nucleoporins Are Present in Sporadic Amyotrophic Lateral Sclerosis Motor Neurons that Exhibit Mislocalization of the 43-kDa TAR DNA-Binding Protein.
Hitoshi AIZAWA ; Takenari YAMASHITA ; Haruhisa KATO ; Takashi KIMURA ; Shin KWAK
Journal of Clinical Neurology 2019;15(1):62-67
BACKGROUND AND PURPOSE: Disruption of nucleoporins has been reported in the motor neurons of patients with sporadic amyotrophic lateral sclerosis (sALS). However, the precise changes in the morphology of nucleoporins associated with the pathology of the 43-kDa TAR DNA-binding protein (TDP-43) in the disease process remain unknown. We investigated the expression of nucleoporins that constitute the nuclear pore complex (NPC) in spinal motor neurons that exhibit sALS in relation to TDP-43 pathology, which is a reliable neuropathological hallmark of sALS. METHODS: Paraffin-embedded sections of the lumbar spinal cord were obtained for immunofluorescence analysis from seven control subjects and six sALS patients. Anti-TDP-43 antibody, anti-nucleoporin p62 (NUP62) antibody, and anti-karyopherin beta 1 (KPNB1) antibody were applied as primary antibodies, and then visualized using appropriate secondary antibodies. The sections were then examined under a fluorescence microscope. RESULTS: NUP62 and KPNB1 immunoreactivity appeared as a smooth round rim bordering the nuclear margin in normal spinal motor neurons that exhibited nuclear TDP-43 immunoreactivity. sALS spinal motor neurons with apparent TDP-43 mislocalization demonstrated irregular, disrupted nuclear staining for NUP62 or KPNB1. Some atrophic sALS spinal motor neurons with TDP-43 mislocalization presented no NUP62 immunoreactivity. CONCLUSIONS: Our findings suggest a close relationship between NPC alterations and TDP-43 pathology in the degenerative process of the motor neurons of sALS patients.
Amyotrophic Lateral Sclerosis*
;
Antibodies
;
Fluorescence
;
Fluorescent Antibody Technique
;
Humans
;
Motor Neurons*
;
Nuclear Pore
;
Nuclear Pore Complex Proteins*
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Pathology
;
Spinal Cord
7.Prognostic value of time to generalization in 71 Chinese patients with sporadic amyotrophic lateral sclerosis.
Qiong-Hua SUN ; Yan-Ran LI ; Wen-Jie LAN ; Fei YANG ; Fang CUI ; Xu-Sheng HUANG
Chinese Medical Journal 2019;132(9):1023-1027
BACKGROUND:
It is important to determine prognostic factors for the outcome of amyotrophic lateral sclerosis (ALS) at an early stage. The time taken for symptoms to spread from spinal or bulbar regions to both (time to generalization; TTG) is considered a strong predictor of survival; however, this has rarely been studied in Asian populations. The aim of this retrospective study was to evaluate potential factors affecting prognosis in Chinese patients with sporadic ALS, with a focus on the association between TTG and overall survival.
METHODS:
Seventy-one patients with sporadic ALS who were hospitalized at Chinese PLA General Hospital from 2009 to 2016 were followed up until December 2017. Survival analysis was performed using univariate Kaplan-Meier log-rank and multivariate Cox proportional hazards models. The clinical data of the patients were recorded and analyzed. Variables studied were age at symptom onset, sex, site of symptom onset, diagnostic latency, TTG, diagnostic category, ALS Functional Rating Scale-revised score, percent predicted forced vital capacity (FVC%), and disease progression rate (DPR) at diagnosis.
RESULTS:
The mean age at onset was 54 (SD = 10.2) years, and the median survival time from symptom onset was 41 months (95% confidence interval: 34-47). By univariate analysis, factors independently affecting survival were age at symptom onset (Log rank = 15.652, P < 0.0001), TTG (Log rank = 14.728, P < 0.0001), diagnostic latency (Log rank = 11.997, P = 0.001), and DPR (Log rank = 6.50, P = 0.011). In the Cox multivariate model, TTG had the strongest impact on survival time (hazard ratio = 0.926, P = 0.01).
CONCLUSIONS
TTG can be used as an effective indicator of prognosis in patients with sporadic ALS.
Adult
;
Amyotrophic Lateral Sclerosis
;
pathology
;
Disease Progression
;
Female
;
Humans
;
Male
;
Middle Aged
;
Prognosis
;
Proportional Hazards Models
;
Retrospective Studies
8.Extracellular Vesicles in Neurodegenerative Diseases: A Double-Edged Sword.
Tissue Engineering and Regenerative Medicine 2017;14(6):667-678
Extracellular vesicles (EVs), a heterogenous group of membrane-bound particles, are virtually secreted by all cells and play important roles in cell-cell communication. Loaded with proteins, mRNAs, non-coding RNAs and membrane lipids from their donor cells, these vesicles participate in normal physiological and pathogenic processes. In addition, these subcellular vesicles are implicated in the progression of neurodegenerative disorders. Accumulating evidence suggests that intercellular communication via EVs is responsible for the propagation of key pathogenic proteins involved in the pathogenesis of amyotrophic lateral sclerosis, Parkinson's diseases, Alzheimer's diseases and other neurodegenerative disorders. For therapeutic perspective, EVs present advantage over other synthetic drug delivery systems or cell therapy; ability to cross biological barriers including blood brain barrier (BBB), ability to modulate inflammation and immune responses, stability and longer biodistribution with lack of tumorigenicity. In this review, we summarized the current state of EV research in central nervous system in terms of their values in diagnosis, disease pathology and therapeutic applications.
Amyotrophic Lateral Sclerosis
;
Blood-Brain Barrier
;
Cell- and Tissue-Based Therapy
;
Central Nervous System
;
Diagnosis
;
Drug Delivery Systems
;
Extracellular Vesicles*
;
Humans
;
Inflammation
;
Membrane Lipids
;
Neurodegenerative Diseases*
;
Pathology
;
RNA, Messenger
;
RNA, Untranslated
;
Tissue Donors
9.Myelin Water Fraction MRI in a Case of Clinically Probable Amyotrophic Lateral Sclerosis.
Jiwon YANG ; Jongho LEE ; Eungyeop KIM ; Dong Hoon SHIN
Korean Journal of Clinical Neurophysiology 2016;18(1):18-20
Amyotrophic lateral sclerosis (ALS) is a progressive motor neuron degenerative disease that clinically manifests both upper and lower motor neuron signs. However, it is unknown where and how the motor neuron degeneration begins, and conflicting hypotheses have been suggested. Recent advanced radiological techniques enable us to look into ALS neuropathology in vivo. Herein, we report a case with upper motor neuron-predominant ALS in whom the results of brain magnetic resonance imaging (MRI) and myelin water fraction MRI suggest axonal degeneration.
Amyotrophic Lateral Sclerosis*
;
Axons
;
Brain
;
Magnetic Resonance Imaging*
;
Motor Neurons
;
Myelin Sheath*
;
Neuropathology
;
Pathology
;
Water*
10.Elimination Rate of Serum Lactate is Correlated with Amyotrophic Lateral Sclerosis Progression.
Yuan-Jin ZHANG ; Dong-Sheng FAN
Chinese Medical Journal 2016;129(1):28-32
BACKGROUNDMitochondrial dysfunction plays an important role in the pathogenesis of amyotrophic lateral sclerosis (ALS). We aimed to demonstrate mitochondrial dysfunction in ALS using a lactate stress test and to examine the relationship between mitochondrial dysfunction with motor deterioration.
METHODSWe enrolled 116 patients and observed clinical variables, including the survival state.
RESULTSPatients with a rapid slope of revised ALS functional rating scales (ALSFRS-r) (>20 U/year) exhibited the slowest elimination rate (median -4.67 × 10-3 mmol·L-1·min-1 , coefficient of variation, 590.15%), the shortest duration (0.63 ± 0.28 years) and the worst ALSFRS-r (32.59 ± 4.93). Patients with a moderate slope of ALSFRS-r (10-20 U/year) showed a moderate elimination rate (median -11.33 × 10-3 mmol·L-1·min-1 , coefficient of variation, 309.89%), duration (1.16 ± 0.45 years), and ALSFRS-r (34.83 ± 6.11). The slower progressing (<10 U/year group) patients exhibited a rapid elimination rate (median: -12.00 × 10-3 mmol·L-1·min-1 , coefficient of variation: 143.08%), longer duration (median: 3 years, coefficient of variation: 193.33%), and adequate ALSFRS-r values (39.58 ± 9.44). Advanced-phase ALS patients also showed slower elimination rate (ER, quartiles -17.33, -5.67, 4.00) and worse ALSFRS-r (34.88 ± 9.27), while early-phase patients showed a more rapid ER (quartiles -25.17, -11.33, -3.50) and better ALSFRS-r (39.28 ± 7.59). These differences were statistically significant. Multiple linear regression analysis revealed strong direct associations among ER, ALSFRS-r slope (standard beta = 0.33, P = 0.007), and forced vital capacity (predict %) (standard beta = -0.458, P = 0.006, adjusted for ALSFRS-r, course and onset region). However, the data obtained from 3 years of follow-up showed no statistically significant difference in the survival rates between the most rapid and slowest ER groups.
CONCLUSIONThere is a potential linear relationship between ER and motor deterioration in ALS. Slower ER might be associated with faster disease progression.
Adult ; Amyotrophic Lateral Sclerosis ; blood ; mortality ; pathology ; Analysis of Variance ; Disease Progression ; Female ; Humans ; Kaplan-Meier Estimate ; Lactic Acid ; blood ; Male ; Middle Aged ; Retrospective Studies

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