PubMed HealthSearch

SEARCH · PubMed Health

Results for “Dynamic regulation”

Explore indexed PubMed citations for clinical trials, systematic reviews and public health research. Read source abstracts and follow each citation to its original PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 19 recordsLinked to original sources

Invadopodia in cancer metastasis: dynamics, regulation, and targeted therapies.

Pseudopodia and invadopodia are dynamic, actin-rich membrane structures extending from the cell surface. While pseudopodia are found in various cell types, invadopodia are exclusive to tumor cells and play a key role in cancer progression. These specialized structures enable tumor cells to degrade the extracellular matrix, breach tissue barriers, and invade surrounding tissues and blood vessels, thus facilitating metastasis. Extensive research has elucidated the distinct structure of invadopodia, the signaling pathways driving their formation, and their interaction with the tumor microenvironment. Integrin- and Src kinase-mediated signaling pathways regulate invadopodia dynamics. This review explores the mechanisms underlying invadopodia stabilization and highlights recent insights into their regulation by the tumor microenvironment. Particular emphasis is placed on the role of cell surface signaling in modulating invadopodia activity and the intracellular targeting of matrix metalloproteinases (MMPs) in enhancing invasive potential. A deeper understanding of invadopodia-driven cancer cell migration and metastasis provides valuable implications for therapeutic development. These findings support the potential for receptor-mediated and molecularly targeted therapies to inhibit tumor metastasis, improve clinical outcomes, and enhance the efficacy of existing cancer treatments.

Humans

Membrane potential and feedback dynamics regulate CatSper-mediated progesterone signaling in human sperm.

Activation of the sperm-specific Ca2+ channel CatSper by progesterone evokes rapid changes in intracellular Ca2+ in human sperm that are required for fertilization. However, the mechanisms regulating the progesterone-induced Ca2+ signals have remained elusive. Here, we used quantitative kinetic fluorimetry with fast voltage-sensitive fluorescent indicators to investigate how progesterone affects the membrane potential (Vm) of human sperm. Additionally, we employed the FASTM technique to simultaneously record at millisecond time resolution changes in both Vm and intracellular Ca2+. We show that progesterone evokes a rapid pulse-like depolarization and repolarization. The depolarization is caused by Ca2+ influx through CatSper, which pulls Vm away from a resting membrane potential (Vrest) of -65 mV set by the sperm-specific K+ channel Slo3. We further show that Vm- and Ca2+-dependent mechanisms limit the CatSper-mediated Ca2+ influx, thereby promoting repolarization and enabling K+ efflux through Slo3 channels to restore Vrest. Our findings demonstrate that non-genomic progesterone signaling in human sperm is regulated by negative feedback on CatSper and involves a dynamic interplay between CatSper and Slo3 in controlling Vm. We anticipate that our novel kinetic, quantitative Vm recording and Vm/Ca2+-multiplexing techniques will reveal additional molecular mechanisms underlying CatSper-mediated Ca2+ signaling in human sperm both in health and disease.

CatSper

Neurotrophic regulation of dynamic properties of skeletal muscle: effects of botulinum toxin and denervation.

In order to determine the role of acetylcholine (ACh) transmission in neurotrophic regulation of dynamic properties of muscle, the effects of botulinum toxin treatment were compared with those of denervation. The extensor digitorum longus (EDL) and soleus muscles of rats were either denervated or injected with botulinum toxin. At times up to 25 days the isometric properties of these muscles were determined. 2. Both botulinum treatment and denervation produced progressive slowing of the time to peak of the twitch (TPT) and half-relaxation time of the twitch (1/2 RT), which was more pronounced in the EDL than in the soleus. 3. Both treatments produced slowing of the relaxation curve following tetanic contraction, more marked in the EDL than in the soleus muscle. This indicates a slowing of relaxation, and suggests a prolongation of the active state of the muscle. 4. The maximum rate of rise of the tetanus did not change significantly in the EDL and soleus muscles after botulinum treatment or denervation. This suggests that there is no major change in the speed of contraction under conditions of botulinum treatment or denervation. 5. The changes produced by botulinum treatment and denervation were virtually identical in all parameters tested. This is interpreted meaning that cholinergic transmission (including muscle usage), or some other factor closely related to cholinergic transmission, accounts for the motor nerve's trophic influence in maintaining these dynamic properties of skeletal muscles.

Acetylcholine

Tailored UPRE2 variants for dynamic gene regulation in yeast.

Genetic elements are foundational in synthetic biology serving as vital building blocks. They enable programming host cells for efficient production of valuable chemicals and recombinant proteins. The unfolded protein response (UPR) is a stress pathway in which the transcription factor Hac1 interacts with the upstream unfolded protein response element (UPRE) of the promoter to restore endoplasmic reticulum (ER) homeostasis. Here, we created a UPRE2 mutant (UPRE2m) library. Several rounds of screening identified many elements with enhanced responsiveness and a wider dynamic range. The most active element m84 displayed a response activity 3.72 times higher than the native UPRE2. These potent elements are versatile and compatible with various promoters. Overexpression of HAC1 enhanced stress signal transduction, expanding the signal output range of UPRE2m. Through molecular modeling and site-directed mutagenesis, we pinpointed the DNA-binding residue Lys60 in Hac1(Hac1-K60). We also confirmed that UPRE2m exhibited a higher binding affinity to Hac1. This shed light on the mechanism underlying the Hac1-UPRE2m interaction. Importantly, applying UPRE2m for target gene regulation effectively increased both recombinant protein production and natural product synthesis. These genetic elements provide valuable tools for dynamically regulating gene expression in yeast cell factories.

Saccharomyces cerevisiae

Adaptive genomic evolution and WD40-regulated temporal dynamics of anthocyanins support leaf photoplasticity in Parrotia subaequalis.

BACKGROUND: Parrotia subaequalis, a Tertiary relict endemic to China, plays a significant role in phylogeny and adaptive evolution as a key species in the early differentiation of angiosperms. It has abundant leaf colors and great potential as an ornamental tree. RESULTS: This study assembled the first chromosome-level genome of P. subaequalis (Contig N50 = 2.15 Mb), revealing transposable element proliferation, key paleopolyploid events and dynamic gene family evolution, including the expansion of secondary metabolite transport and synthesis genes (such as WD40, 2OG-FeII_Oxy) and the contraction of gene families related to flower morphogenesis (such as F-box-like, K-box). Through integrative transcriptomics and targeted metabolomics approaches, we further revealed that the color transition of young leaves from red to green was driven by temporal accumulation differences of malvidin-3,5-O-diglucoside, whose biosynthesis is progressively down-regulated during leaf development. WGCNA revealed that a subset of WD40 genes (light-signaling, TTG1/HOS15-like, etc.) coexpresses with anthocyanin biosynthetic genes, like 4CLL9, GT1, in anthocyanin-related modules enriched for auxin signaling and hydrolase activity, suggesting a potential link between WD40 expansion and photoprotective plasticity. Relevant regulatory networks were found to complement the species-specific gene pool related to leaf color regulation. CONCLUSION: This genomic resource of P. subaequalis advanced our understanding of early angiosperm adaptation through neofunctionalized regulatory networks and established a foundation for molecular breeding aimed at enhancing environmental resilience while preserving ornamental traits.

Anthocyanins

Biomedical aspects of oxygen regulator performance: II. dynamic characteristics.

Several oxygen regulators were quantitatively assessed during interface with dynamic respiratory simulation and human user breathing. Continuous measurements of regulator flow, delivered pressure, and delivered oxygenation was provided during variable tidal volumes and breathing frequencies as accomplished initially with breathing simulation and subsequently with human users. The regulators demonstrated large sensitivity to flow demand and the characteristics of the inspiratory flow pulse. Large variations in outlet suction pressure and delivered oxygen concentration accompanied the variable breathing modes of human subjects. The inability of oxygen regulators to consistently provide required oxygen/air delivery is discussed with respect ot inadequate performance specifications currently used.

Aerospace Medicine

Ionizing radiation induces bidirectional transcriptomic reprogramming and dynamic NOS2/TREM2 regulation in triple-negative breast cancer cells.

PURPOSE: To characterize irradiation-associated transcriptomic changes in murine triple-negative breast cancer cells and examine dose- and time-response patterns of selected radiation-responsive candidates. MATERIALS AND METHODS: RNA sequencing (RNA-seq) was performed in 4T1 cells collected 24 h after 4 Gy irradiation, followed by Reactome and Kyoto Encyclopedia of Genes and Genomes (KEGG) pathway enrichment and gene set enrichment analyses. Representative RNA-seq-derived genes were examined by reverse transcription quantitative PCR (RT-qPCR), and selected immune- and inflammation-related transcripts were further assessed across additional radiation doses and post-irradiation time points. Inducible nitric oxide synthase (NOS2) and triggering receptor expressed on myeloid cells 2 (TREM2) protein abundance was assessed by Western blotting, and nitrite accumulation in culture supernatants was measured using a Griess reagent-based assay as an indirect readout of nitric oxide production. RESULTS: RNA sequencing identified 757 differentially expressed genes, including 285 upregulated and 472 downregulated genes. Irradiation was associated with enrichment of inflammatory, interferon-related, immune-system, and cell-adhesion transcriptional signatures, whereas downregulated genes were enriched in cell-cycle-, chromosome-cohesion-, DNA-damage-response-, DNA-repair-, and SUMOylation-related pathways. Selected immune- and inflammation-related transcripts showed distinct temporal patterns. Nos2 mRNA increased across the examined 0-6 Gy dose range and at later post-irradiation time points, whereas NOS2 protein showed different kinetics, with an early peak after 4 Gy irradiation and no clear further increase above 6 Gy. Nitrite accumulation increased after irradiation. Trem2 showed the largest fold increase among strongly upregulated transcripts identified by RNA-seq, but RT-qPCR detected a significant increase only at 24 h, and TREM2 protein abundance remained unchanged across the examined doses and time points. CONCLUSIONS: Ionizing radiation was associated with broad bidirectional transcriptional remodeling in 4T1 cells, involving immune-, inflammatory-, and interferon-related signatures together with reduced representation of cell-cycle- and DNA-repair-related gene sets. The discordant mRNA and protein patterns of NOS2 and TREM2 indicate that transcript-level responses do not necessarily translate into corresponding protein-level changes. These findings define irradiation-associated molecular responses requiring further functional investigation.

Triple-negative breast cancer

Epitranscriptomic reprogramming in response to low CO2 stress and m6A engineering to enhance biomass production in Nannochloropsis oceanica.

N6-adenine methylation (m6A) as an epitranscriptomic mark is the most abundant modification in eukaryotic RNA and plays a dynamically regulated role. However, m6A dynamics, deposition and engineering in microalgae remain largely unknown. Here, in Nannochloropsis oceanica, the dynamic alterations and reprogramming in m6A RNA modifications after the shift from high to low CO2 conditions were first investigated using methylated RNA immunoprecipitation sequencing. The m6A peaks in N. oceanica were mainly enriched in 3'UTR. A positive association between m6A abundance and mRNA transcription of CO2-responsive genes was observed; moreover, N. oceanica cells adopted versatile strategies in a dynamic reprogramming of m6A in response to low CO2 stress. Secondly, knockout of two putative m6A methylases including NoMTA (NO04G02990) and NoMTB (NO07G02450) by genome editing induced methylation reprogramming, which was associated with expression changes of low-CO2 responsive genes such as carbon/nitrogen metabolism, and photorespiration genes that underlie reductions in growth and biomass. Lastly, m6A modification reprogramming was first engineered to increase low-CO2 stress tolerance and biomass productivity by the CRISPR/dCas13 system combined with MTA and NoMTB under low CO2 in N. oceanica. Therefore, these strides would pave the way for microalgal epigenetics and future industrial applications.

Microalgae

PUS7-dependent Ψ reshapes specific synaptic gene exons to facilitate fear extinction memory formation.

RNA modifications serve as dynamic regulators of neural plasticity through their ability to fine-tune transcript stability and splicing. Pseudouridine (Ψ), an evolutionarily conserved RNA modification catalyzed by pseudouridine synthases, plays established roles in neurodevelopment, yet its functional significance in activity-dependent behavioral adaptation remains poorly defined. Here, we investigate Ψ-mediated epitranscriptomic regulation within the infralimbic prefrontal cortex (ILPFC), a brain region requiring precise synaptic remodeling for the clinically relevant form of fear extinction memory. Combining transcriptome-wide pseudouridylation profiling with behavioral analysis in mice, we identified selective Ψ enrichment at exons of synaptic regulatory genes within ILPFC during fear extinction learning. Fear extinction in the ILPFC drives concomitant exonic Ψ deposition and upregulation of synaptogenic transcripts, processes that involve pseudouridine synthase PUS7. Crucially, PUS7 knockdown in the ILPFC selectively impaired fear extinction memory formation without altering baseline fear expression, establishing a causal link between Ψ-dependent RNA processing and activity-dependent synaptic structural remodeling in this microcircuit. Our findings demonstrate that PUS7-mediated Ψ modification spatiotemporally regulates activity-dependent RNA dynamics in the ILPFC, providing the evidence that epitranscriptomic mechanisms precisely coordinate synaptic gene expression within behaviorally defined brain sub-region. This work bridges molecular RNA biology with systems neuroscience, revealing a novel mechanism for activity-dependent regulation of fear extinction in ILPFC.

Animals

Unraveling cadaverine toxicity effect to guide the engineering of robust strain.

End-product inhibition represents a major challenge in the microbial synthesis of various value-added chemicals. Cadaverine, a key monomer for polyamide synthesis, exhibits severe cytotoxicity, limiting its high-titer biosynthesis. Here, transcriptomic analysis and genome-wide library screening were integrated to systematically elucidate the cytotoxic mechanisms of cadaverine in Escherichia coli (E. coli) and identify beneficial genes for enhanced tolerance and overproduction. Transcriptomic analysis revealed that high concentrations of cadaverine disrupted cell membrane integrity and impaired oxidative phosphorylation, leading to redox imbalance and reactive oxygen species (ROS) accumulation. Subsequent genome-wide screening further confirmed these toxicity mechanisms and uncovered crucial cellular defense strategies. Functional validation highlighted the important role of NikR, UbiE, and YcbX in enhancing membrane integrity, restoring respiratory function and ROS homeostasis, or scavenging 6-N-hydroxylaminopurine (6-HAP) to prevent DNA damage. Among these, YcbX emerged as the most effective target for improving production. Consequently, we constructed a robust E. coli strain by implementing a dynamic regulation system for YcbX expression under cadaverine-responsive promoters, which significantly enhanced cadaverine biosynthesis to 87.2 g/L (a 46.8% enhancement). This work provides an in-depth understanding of cadaverine toxicity and tolerance, offering valuable targets and strategies for the rational design of high-performance microbial cell factories for diamines.

6-HAP clearance

Analysis and validation of abnormal signaling pathways and immune cell infiltration characteristics in digestive system cancers based on peroxisome-related genes.

BACKGROUND: Although emerging evidence suggests a role for peroxisomes in tumorigenesis, their functions in digestive cancers remain unclear. This study aims to investigate the association between peroxisomes and digestive tract tumors. METHODS: To systematically investigate peroxisomal functions in digestive cancers, we first constructed and validated tumor-specific prognostic signatures based on peroxisome-related genes (PRGs) through univariate Cox, least absolute shrinkage and selection operator (LASSO), and multivariate Cox regression analyses. We then characterized the tumor immune microenvironment (TIME) with CIBERSORT, X-CELL, and EPIC algorithms, and identified tumor-specific and common signalings via Gene Ontology (GO), Kyoto Encyclopedia of Genes and Genomes (KEGG), and gene set enrichment analysis (GSEA). Focusing on hepatocellular carcinoma (HCC), we experimentally validated peroxisome-related therapeutic responses by profiling signature genes in radioresistant cells and an orthotopic transarterial chemoembolization (TACE) rat model. PEX13 knockdown further assessed peroxisomal role in radiosensitivity and targeted therapy response. Clinical relevance of PEX13 was evaluated in HCC cohort. Single-cell RNA sequencing dataset and lipidomics further revealed peroxisomal mechanisms in HCC progression. Finally, peroxisomal function in colorectal cancer (CRC) was validated in vitro. RESULTS: Novel peroxisome-related prognostic signatures demonstrated strong predictive power in HCC, colon adenocarcinoma, rectal adenocarcinoma, pancreatic adenocarcinoma, gastric adenocarcinoma, esophageal adenocarcinoma, esophageal squamous cell carcinoma, and cholangiocarcinoma. High-risk patients displayed an immunosuppressive microenvironment, characterized by increased infiltration of regulatory T cells, M2 macrophages, Th2 cells, or cancer-associated fibroblasts, or Th1 cells' reduction. Peroxisomes engaged in several distinct yet convergent pathways, most notably "positive regulation of response to stimuli". HCC prognostic genes were dynamically regulated in response to therapeutic stimuli, including radiotherapy, targeted therapy, and TACE. Clinically, the expression of PEX13 was markedly upregulated in tumor tissues from therapy-resistant HCC patients. Mechanistically, peroxisomal dysfunction induced by silencing PEX13 in HCC or UBE2D2 in CRC may overcome therapeutic resistance (radiotherapy/ lenvatinib resistance in HCC, radioresistance in CRC) through reprogramming lipid metabolism. CONCLUSIONS: Peroxisomes act as pivotal regulators of digestive cancer progression by modulating signaling pathways, the TIME, therapeutic resistance, and lipid metabolism. Targeting peroxisomal function, particularly in high-risk subgroups of HCC and CRC, warrants further exploration as a promising therapeutic strategy.

Peroxisomes

The alarmin interleukin-33 modulates platelet proteome, function, and biogenesis.

Platelets, traditionally recognized for their involvement in hemostasis and wound healing, also play a central role in immune regulation and inflammation. Their function and production adapt in response to inflammatory cues such as cytokines and danger-associated molecular patterns. Interleukin-33 (IL-33), an alarmin released during tissue damage, particularly in lung inflammation, has been implicated in influencing platelet biology, though its exact effects remain poorly understood. To clarify IL-33's role, we examined its impact on platelet production, proteome, adhesion, secretion, and aggregation using platelets from IL-33-deficient (IL-33 knockout [IL-33KO]) mice and IL-33 stimulation in vivo. Our results reveal that although platelets themselves do not express IL-33, platelets isolated from IL-33KO mice display altered proteomic signatures and reduced adhesion to fibrinogen, podoplanin, and laminin, alongside impaired thrombus formation under shear stress. IL-33 administration in vivo led to proteomic remodeling characterized by increased expression of inflammatory proteins, as well as changes in platelet morphology, including increased size, typically associated with de novo production. Using lung intravital microscopy, we visualized platelet fragmentation within the lung vasculature in real time, and observed enhanced fragmentation following IL-33 stimulation. Interestingly, ST2, the receptor for IL-33, is expressed in subsets of mouse and human megakaryocytes and hematopoietic progenitors, particularly those involved in a noncanonical pathway of thrombopoiesis that enables the rapid replenishment of platelets during inflammation, infection, and aging. Together, these findings identify IL-33 as a pivotal regulator of platelet function and production, linking inflammatory signaling to the dynamic regulation of thrombopoiesis.

Interleukin-33

A proteomics-based survey reveals thrombospondin-4 as a ligand regulated by the mannose receptor in the injured lung.

Receptor-mediated cellular uptake of specific ligands constitutes an important step in the dynamic regulation of individual protein levels in extracellular fluids. With a focus on the inflammatory lung, we here performed a proteomics-based search for novel ligands regulated by the mannose receptor (MR), a macrophage-expressed endocytic receptor. WT and MR-deficient mice were exposed to lipopolysaccharide, after which the protein content in their lung epithelial lining fluid was compared by tandem mass tag-based mass spectrometry. More than 1200 proteins were identified in the epithelial lining fluid using this unbiased approach, but only six showed a statistically different abundance. Among these, an unexpected potential new ligand, thrombospondin-4 (TSP-4), displayed a striking 17-fold increased abundance in the MR-deficient mice. Experiments using exogenous addition of TSP-4 to MR-transfected CHO cells or MR-positive alveolar macrophages confirmed that TSP-4 is a ligand for MR-dependent endocytosis. Similar studies revealed that the molecular interaction with TSP-4 depends on both the lectin activity and the fibronectin type-II domain of MR and that a closely related member of the TSP family, TSP-5, is also efficiently internalized by the receptor. This was unlike the other members of this protein family, including TSPs -1 and -2, which are ligands for a close MR homologue known as urokinase plasminogen activator receptor-associated protein. Our study shows that MR takes part in the regulation of TSP-4, an important inflammatory component in the injured lung, and that two closely related endocytic receptors, expressed on different cell types, undertake the selective endocytosis of distinct members of the TSP family.

Animals

Functions and mechanisms of BRCA1 in early embryonic development.

Breast Cancer Gene 1 (BRCA1) is a critical regulator of genome integrity whose dysfunction greatly increases lifetime risk of breast and ovarian cancers. While BRCA1 has been extensively studied in the contexts of adult biology and cancer, its diverse functions, including homologous recombination-mediated DNA repair, cell cycle checkpoint activation, protein ubiquitination, and transcriptional regulation, have many underexplored implications. In early embryonic development, the maternal-to-zygotic transition (MZT) and subsequent developmental processes place extraordinary demands on DNA replication fidelity, cell cycle regulation, transcriptional activation, and chromatin remodeling. These critical processes overlap strikingly with canonical functions of BRCA1, yet its function in early development is poorly characterized. In this review, we investigate BRCA1 conservation across species and connect its well-established functions to findings from developmental studies to assess its role in development. We highlight evidence of BRCA1 mitigating genome integrity loss from diverse sources, maintaining the proliferative activity needed for successful germ layer formation and early tissue morphogenesis, and regulating transcription and epigenetic modifications. Together, this synthesis supports a model where BRCA1 acts as a multi-functional and dynamic regulator of early embryogenesis. Building on this, we propose outstanding questions that could further illuminate these developmental roles. Characterization of BRCA1 in early development may not only provide important insight into the origin and progression of cancer susceptibility but may also elucidate fundamental mechanisms shaping early development.

BRCA1 Protein

Conflict-dependent gain control in area VIP during visual-vestibular self-motion processing.

Visual and vestibular signals are continuously integrated to estimate self-motion, yet these sensory cues are often inconsistent under natural conditions. How cortical circuits regulate multisensory interactions under cue conflict while preserving stable heading representations remains poorly understood. Here, we recorded neurons in male macaque ventral intraparietal area (VIP) during passive movement stimulation while systematically varying visual-vestibular heading offsets. VIP neurons exhibited strong conflict-sensitive gain modulation: congruent cues enhanced neuronal responses, whereas increasing cue offsets progressively suppressed response gain. This effect was observed not only in multisensory neurons but also in neurons classified as predominantly visual or vestibular, indicating widespread cross-modal interactions across the population. In contrast, preferred-heading shifts remain modest, suggesting that cue conflict primarily modulated response gain rather than altering heading tuning. Despite substantial suppression at the single-neuron level under large cue offsets, population Fisher information was largely preserved, indicating robust heading discriminability. Further analyses revealed flexible sensory weighting in VIP, with visual and vestibular contributions shifting as cue conflict increased. Finally, a feedforward-gated normalization model substantially improved the characterization of VIP responses by allowing cue conflict to dynamically regulate the effective normalization pool, thereby capturing both multisensory enhancement at small visual-vestibular heading offset and suppression under large cue conflict. Together, these findings show that VIP exhibits conflict-dependent regulation of multisensory gain, preserving robust self-motion representations under sensory conflict.Significance statement Visual and vestibular cues are often misaligned in natural environments, creating a challenge for accurate self-motion perception. We demonstrate that neurons in the macaque ventral intraparietal area (VIP) dynamically adjust multisensory gain according to the degree of visual-vestibular conflict. As the visual-vestibular heading offset increases, neuronal responses are progressively enhanced or suppressed, while population coding of heading direction remains largely preserved. A conflict-sensitive normalization model accounts for these response dynamics and outperforms traditional multisensory integration models, suggesting that VIP implements adaptive gain-control computations to regulate interactions between visual and vestibular signals. These results identify a cortical mechanism that links sensory conflict detection to robust perceptual coding, advancing our understanding of multisensory processing in the brain.

Journal Article

Characterization and chemoproteomic profiling of protein O-GlcNAcylation in SOD1-G93A mouse model.

BACKGROUND: Amyotrophic lateral sclerosis (ALS) is a devastating motor neuron disease. Protein O-linked β-N-acetylglucosamine (O-GlcNAc) modification has been found to affect the processing of several important proteins implicated in ALS. However, the overall level and cellular localization of O-GlcNAc during ALS progression are incompletely understood, and large-scale profiling of O-GlcNAcylation sites in this context remains unexplored. METHODS: By using immunostaining analysis and chemoenzymatic labeling-based quantitative chemoproteomics, we assayed O-GlcNAcylation dynamics of lumbar spinal cords from SOD-G93A mice and their non-transgenic (NTG) littermates, the most widely used animal model for studying ALS pathogenesis. RESULTS: We discovered that the global O-GlcNAcylation was significantly reduced at the disease end stage. Correlatively, a great increase of OGA was observed. Immunohistochemistry and immunofluorescence analysis showed a higher proportion of O-GlcNAc-positive neurons in the NTG group, while O-GlcNAc colocalization with astrocytes/microglia was elevated in SOD1-G93A mice. Moreover, we reported the identification of 568 high-confidence O-GlcNAc sites from end-stage SOD1-G93A and NTG mice. Of the 568 sites, 226-many of which occurred on neuronal function and structure-related proteins-were found to be dynamically regulated. CONCLUSION: These data provide a valuable resource for dissecting the functional role of O-GlcNAcylation in ALS and shed light on promising therapeutic avenues for ALS. The chemoenzymatic labeling-based chemoproteomic approach is applicable for probing O-GlcNAc dynamics in various pathological processes.

Animals

Lipidomic profiling of mouse brain and human neuron cultures reveals a role for Mboat7 in mTOR-dependent neuronal migration.

Mutations in lipid regulator genes are a frequent cause of autism spectrum disorder, including those regulating phosphatidylinositol (PI) and phosphoinositide 3-kinase signaling. MBOAT7 encodes a key acyltransferase in PI synthesis and is mutated in an autism-related condition with neurodevelopmental delay and epilepsy. Using liquid chromatography-tandem mass spectrometry, we analyzed the PI-associated glycerolipidome in mice and humans during neurodevelopment and found dynamic regulation at times corresponding to neural apoptosis in the brains of Mboat7 knockout mice. Mboat7 function was necessary for polyunsaturated lipid synthesis and cortical neural migration, and loss resulted in massive accumulation of the precursor lysophosphatidylinositol and hyperactive mTOR signaling. Inhibiting mTOR signaling rescued migration defects. Our findings demonstrate roles for lipid remodeling during neurodevelopment and implicate lipid regulation in neuronal migration, revealing potential paths to treatment for MBOAT7 deficiency.

Animals

Pioneer in Molecular Biology: Conformational Ensembles in Molecular Recognition, Allostery, and Cell Function.

In 1978, for my PhD, I developed the efficient O(n3) dynamic programming algorithm for the-then open problem of RNA secondary structure prediction. This algorithm, now dubbed the "Nussinov algorithm", "Nussinov plots", and "Nussinov diagrams", is still taught across Europe and the U.S. As sequences started coming out in the 1980s, I started seeking genome-encoded functional signals, later becoming a bioinformatics trend. In the early 1990s I transited to proteins, co-developing a powerful computer vision-based docking algorithm. In the late 1990s, I proposed the foundational role of conformational ensembles in molecular recognition and allostery. At the time, conformational ensembles and free energy landscapes were viewed as physical properties of proteins but were not associated with function. The classical view of molecular recognition and binding was based on only two conformations captured by crystallography: open and closed. I proposed that all conformational states preexist. Proteins always have not one folded form-nor two-but many folded forms. Thus, rather than inducing fit, binding can work by shifting the ensembles between states, and this shifting, or redistributing the ensembles to maintain equilibrium, is the origin of the allosteric effect and protein, thus cell, function. This transformative paradigm impacted community views in allosteric drug design, catalysis, and regulation. Dynamic conformational ensemble shifts are now acknowledged as the origin of recognition, allostery, and signaling, underscoring that conformational ensembles-not proteins-are the workhorses of the cell, pioneering the fundamental idea that dynamic ensembles are the driving force behind cellular processes. Nussinov was recognized as pioneer in molecular biology by JMB.

Molecular Biology