Sample preparation for proteomics analysis was performed as described previously with slight modifications. Briefly, for mouse samples, SDC lysis buffer (2% SDC, 100 mM Tris-HCl pH 8.5) was used to lyse the cell pellets at 95°C for 45 min at 600 rpm in a thermoshaker. For human samples which were fixed in PFA, prior to the SDC lysis buffer step, the samples were first resuspended in 6% SDS buffer, heat denatured, sonicated and then precipitated using 80% acetone overnight in -20°C. Next day, these samples were centrifuged and the pellet was resuspended in SDC lysis buffer. After this, the procedure remains the same for both mouse and human samples. The samples in SDC buffer were sonicated in high mode for 15 cycles (30 sec OFF, 30 sec ON) (Bioruptor® Plus; Diagenode). The samples were again heated at 95°C for 45 min at 600 rpm in a thermoshaker. The extracted and solubilized protein concentration was estimated by BCA method and 25 µg of protein was further reduced and alkylated using a final concentrations of 10 mM TCEP and 40 mM CAA in dark, at 45°C for 10 min with 600 rpm in a thermoshaker. The protein samples were digested overnight with Trypsin and LysC (1:50, protease:protein ratio) at 37°C, 1,000 rpm shake. Resulting peptides were acidified with 1% TFA 99% isopropanol with 1:1 volume-to-volume ratio, vortexed and centrifuged to pellet residual particles. The supernatant was transferred to fresh tubes and subjected to in-house built StageTip clean-up consisted of three layers of styrene divinylbenzene reversed-phase sulfonate (SDB-RPS; 3 M Empore) membranes. Peptides were loaded on the activated (100% ACN, 1% TFA in 30% Methanol, 0.2% TFA, respectively) StageTips, run through the SDB-RPS membranes, and washed by EtOAc including 1% TFA, isopropanol including 1% TFA, and 0.2% TFA, respectively. Peptides were then eluted from the membranes via 60 µL elution buffer (80% ACN, 1.25% NH4OH) and dried using vacuum centrifuge (40 min at 45°C). Finally, peptides were reconstituted in 10 µL of loading buffer (2% ACN, 0.1% TFA) and peptide concentration was estimated using PierceTM Quantitative Colorimetric Peptide Assay.
Description: Sample preparation for proteomics analysis was performed as described previously with slight modifications. Briefly,...
SEEK ID: http://lmmeisd-2.srv.mwn.de/data_files/137
- Proteomics (Published)
- The Hippo network kinase STK38 contributes to protein homeostasis by inhibiting BAG3-mediated autophagy
- Trnp1 organizes diverse nuclear membrane-less compartments in neural stem cells
- CRISPR-Mediated Induction of Neuron-Enriched Mitochondrial Proteins Boosts Direct Glia-to-Neuron Conversion
- Excessive local host-graft connectivity in aging and amyloid-loaded brain
- Brain injury environment critically influences the connectivity of transplanted neurons
- Injury-specific factors in the cerebrospinal fluid regulate astrocyte plasticity in the human brain
- Autophagosomal Content Profiling Reveals an LC3C-Dependent Piecemeal Mitophagy Pathway
- Autophagy acts through TRAF3 and RELB to regulate gene expression via antagonism of SMAD proteins
- Lysosomal targeting of the ABC transporter TAPL is determined by membrane-localized charged residues
- Filling the Gaps – A Call for Comprehensive Analysis of Extracellular Matrix of the Glial Scar in Region- and Injury-Specific Contexts
- The ubiquitin-conjugating enzyme UBE2QL1 coordinates lysophagy in response to endolysosomal damage
- ACSL3 is a novel GABARAPL2 interactor that links ufmylation and lipid droplet biogenesis
- AMPK, a Regulator of Metabolism and Autophagy, Is Activated by Lysosomal Damage via a Novel Galectin-Directed Ubiquitin Signal Transduction System
- ATG4 family proteins drive phagophore growth independently of the LC3/GABARAP lipidation system
- Autophagosome content profiling using proximity biotinylation proteomics coupled to protease digestion in mammalian cells
- Lipid and protein content profiling of isolated native autophagic vesicles
- Ubiquitin profiling of lysophagy identifies actin stabilizer CNN2 as a target of VCP/p97 and uncovers a link to HSPB1.
- ALS-linked loss of Cyclin-F function affects HSP90
- Defining the Adult Neural Stem Cell Niche Proteome Identifies Key Regulators of Adult Neurogenesis
- Met/HGFR triggers detrimental reactive microglia in TBI
- Spatial centrosome proteome of human neural cells uncovers disease-relevant heterogeneity
- Lysosomal damage sensing and lysophagy initiation by SPG20-ITCH
- Rational correction of pathogenic conformational defects in HTRA1
- Systematically defining selective autophagy receptor-specific cargo using autophagosome content profiling
- Multiomic ALS signatures highlight subclusters and sex differences suggesting the MAPK pathway as therapeutic target
- MicroRNAs from extracellular vesicles as a signature for Parkinson's disease
- Nonvesicular lipid transfer drives myelin growth in the central nervous system
- A ubiquitin-specific, proximity-based labeling approach for the identification of ubiquitin ligase substrates
- Distinct molecular profiles of skull bone marrow in health and neurological disorders
- Cellular depletion of major cathepsin proteases reveals their concerted activities for lysosomal proteolysis
- Development of a Proteomic Workflow for the Identification of Heparan Sulphate Proteoglycan-Binding Substrates of ADAM17
- Proteomic Characterization of Ubiquitin Carboxyl-Terminal Hydrolase 19 Deficient Cells Reveals a Role for USP19 in the Secretion of Lysosomal Proteins
- Loss of CLN3 in microglia leads to impaired lipid metabolism and myelin turnover
- Loss of NPC1 enhances phagocytic uptake and impairs lipid trafficking in microglia
- The Alzheimer's disease-linked protease BACE2 cleaves VEGFR3 and modulates its signaling
- Proteomics of mouse brain endothelium uncovers dysregulation of vesicular transport pathways during aging
- Deciphering sources of PET signals in the tumor microenvironment of glioblastoma at cellular resolution
- Reactivated endogenous retroviruses promote protein aggregate spreading
- Targeting the TCA cycle can ameliorate widespread axonal energy deficiency in neuroinflammatory lesions
- The Alzheimer's disease-linked protease BACE1 modulates neuronal IL-6 signaling through shedding of the receptor gp130
- Spatial proteomics reveals secretory pathway disturbances caused by neuropathy-associated TECPR2
- Beneficial Effect of ACI-24 Vaccination on Aβ Plaque Pathology and Microglial Phenotypes in an Amyloidosis Mouse Model
- Spatial proteomics in three-dimensional intact specimens
- Experimental evidence for temporal uncoupling of brain Aβ deposition and neurodegenerative sequelae
- Signatures of glial activity can be detected in the CSF proteome
- Proteomic profiling in cerebral amyloid angiopathy reveals an overlap with CADASIL highlighting accumulation of HTRA1 and its substrates
- Proteomic and lipidomic profiling of demyelinating lesions identifies fatty acids as modulators in lesion recovery
- The pseudoprotease iRhom1 controls ectodomain shedding of membrane proteins in the nervous system
- ADAM10-Mediated Ectodomain Shedding Is an Essential Driver of Podocyte Damage
- IKKβ binds NLRP3 providing a shortcut to inflammasome activation for rapid immune responses
- An optimized quantitative proteomics method establishes the cell type-resolved mouse brain secretome
- Neuronal differentiation of LUHMES cells induces substantial changes of the proteome
- Basic Fibroblast Growth Factor 2-Induced Proteome Changes Endorse Lewy Body Pathology in Hippocampal Neurons
- Fibrillar Aβ triggers microglial proteome alterations and dysfunction in Alzheimer mouse models
- The tetraspanin Tspan15 is an essential subunit of an ADAM10 scissor complex
- Pro-inflammatory activation following demyelination is required for myelin clearance and oligodendrogenesis
- Cell-type-specific profiling of brain mitochondria reveals functional and molecular diversity
- NrCAM is a marker for substrate-selective activation of ADAM10 in Alzheimer's disease
- Signal peptide peptidase-like 2c impairs vesicular transport and cleaves SNARE proteins
- The intramembrane protease SPPL2c promotes male germ cell development by cleaving phospholamban
- A TBK1 variant causes autophagolysosomal and motoneuron pathology without neuroinflammation in mice
- The COP9 signalosome reduces neuroinflammation and attenuates ischemic neuronal stress in organotypic brain slice culture model
- C9orf72 protein quality control by UBR5-mediated heterotypic ubiquitin chains
- Mapping autophagosome contents identifies interleukin-7 receptor-alpha as a key cargo modulating CD4+ T cell proliferation
- Multi-omics profiling identifies a deregulated FUS-MAP1B axis in ALS/FTD-associated UBQLN2 mutants
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Created: 2nd Dec 2024 at 12:59

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Version 1 (earliest) Created 2nd Dec 2024 at 12:59 by Aditi Methi
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Related items
Projects: SyNergy: Published Datasets, SyNergy: Unpublished Datasets, Test Programme: Project 1
Institutions: LMU Klinikum
Research Data Manager
Neurological diseases are on the rise – and as societies age, they affect an ever-increasing number of people, not only in Europe, but worldwide.
The Munich Cluster for Systems Neurology (SyNergy) investigates how complex neurological diseases such as Alzheimer's disease, stroke, and multiple sclerosis develop. Even though these diseases differ in their clinical manifestations, overlapping mechanisms are involved in their development. For example, the immune system gets activated in dementia, ...
Projects: SyNergy: Published Datasets, SyNergy: Unpublished Datasets
Web page: https://www.synergy-munich.de
This project serves as a centralized repository for omics datasets published by research groups within the SyNergy Cluster. It encompasses investigations such as proteomics and transcriptomics, which are further divided into individual studies led by SyNergy members. Each study is linked to relevant publications, assays and data files (with links to external repositories).
To explore investigations and their associated studies in more detail, please visit the 'Related items' tab on the Project ...
Programme: Munich Cluster for Systems Neurology (SyNergy)
Public web page: Not specified
Organisms: Mus musculus, Rattus norvegicus, Homo sapiens, Macaca mulatta, Sus scrofa, Danio rerio
Submitter: Rainer Malik
Studies: A TBK1 variant causes autophagolysosomal and motoneuron pathology withou..., A ubiquitin-specific, proximity-based labeling approach for the identifi..., ACSL3 is a novel GABARAPL2 interactor that links ufmylation and lipid dr..., ADAM10-Mediated Ectodomain Shedding Is an Essential Driver of Podocyte D..., ALS-linked loss of Cyclin-F function affects HSP90, AMPK, a Regulator of Metabolism and Autophagy, Is Activated by Lysosomal..., ATG4 family proteins drive phagophore growth independently of the LC3/GA..., An optimized quantitative proteomics method establishes the cell type-re..., Autophagosomal Content Profiling Reveals an LC3C-Dependent Piecemeal Mit..., Autophagosome content profiling using proximity biotinylation proteomics..., Autophagy acts through TRAF3 and RELB to regulate gene expression via an..., Basic Fibroblast Growth Factor 2-Induced Proteome Changes Endorse Lewy B..., Beneficial Effect of ACI-24 Vaccination on Aβ Plaque Pathology and Micro..., Brain injury environment critically influences the connectivity of trans..., C9orf72 protein quality control by UBR5-mediated heterotypic ubiquitin c..., CRISPR-Mediated Induction of Neuron-Enriched Mitochondrial Proteins Boos..., Cell-type-specific profiling of brain mitochondria reveals functional an..., Cellular depletion of major cathepsin proteases reveals their concerted ..., Deciphering sources of PET signals in the tumor microenvironment of glio..., Defining the Adult Neural Stem Cell Niche Proteome Identifies Key Regula..., Development of a Proteomic Workflow for the Identification of Heparan Su..., Distinct molecular profiles of skull bone marrow in health and neurologi..., Excessive local host-graft connectivity in aging and amyloid-loaded brain, Experimental evidence for temporal uncoupling of brain Aβ deposition and..., Fibrillar Aβ triggers microglial proteome alterations and dysfunction in..., Filling the Gaps – A Call for Comprehensive Analysis of Extracellular Ma..., IKKβ binds NLRP3 providing a shortcut to inflammasome activation for rap..., Injury-specific factors in the cerebrospinal fluid regulate astrocyte pl..., Lipid and protein content profiling of isolated native autophagic vesicles, Loss of CLN3 in microglia leads to impaired lipid metabolism and myelin ..., Loss of NPC1 enhances phagocytic uptake and impairs lipid trafficking in..., Lysosomal damage sensing and lysophagy initiation by SPG20-ITCH, Lysosomal targeting of the ABC transporter TAPL is determined by membran..., Mapping autophagosome contents identifies interleukin-7 receptor-alpha a..., Met/HGFR triggers detrimental reactive microglia in TBI, MicroRNAs from extracellular vesicles as a signature for Parkinson's dis..., Multi-omics profiling identifies a deregulated FUS-MAP1B axis in ALS/FTD..., Multiomic ALS signatures highlight subclusters and sex differences sugge..., Neuronal differentiation of LUHMES cells induces substantial changes of ..., Nonvesicular lipid transfer drives myelin growth in the central nervous ..., NrCAM is a marker for substrate-selective activation of ADAM10 in Alzhei..., Pro-inflammatory activation following demyelination is required for myel..., Proteomic Characterization of Ubiquitin Carboxyl-Terminal Hydrolase 19 D..., Proteomic and lipidomic profiling of demyelinating lesions identifies fa..., Proteomic profiling in cerebral amyloid angiopathy reveals an overlap wi..., Proteomics of mouse brain endothelium uncovers dysregulation of vesicula..., Rational correction of pathogenic conformational defects in HTRA1, Reactivated endogenous retroviruses promote protein aggregate spreading, Signal peptide peptidase-like 2c impairs vesicular transport and cleaves..., Signatures of glial activity can be detected in the CSF proteome, Spatial centrosome proteome of human neural cells uncovers disease-relev..., Spatial proteomics in three-dimensional intact specimens, Spatial proteomics reveals secretory pathway disturbances caused by neur..., Systematically defining selective autophagy receptor-specific cargo usin..., Targeting the TCA cycle can ameliorate widespread axonal energy deficien..., The Alzheimer's disease-linked protease BACE1 modulates neuronal IL-6 si..., The Alzheimer's disease-linked protease BACE2 cleaves VEGFR3 and modulat..., The COP9 signalosome reduces neuroinflammation and attenuates ischemic n..., The Hippo network kinase STK38 contributes to protein homeostasis by inh..., The intramembrane protease SPPL2c promotes male germ cell development by..., The pseudoprotease iRhom1 controls ectodomain shedding of membrane prote..., The tetraspanin Tspan15 is an essential subunit of an ADAM10 scissor com..., The ubiquitin-conjugating enzyme UBE2QL1 coordinates lysophagy in respon..., Trnp1 organizes diverse nuclear membrane-less compartments in neural ste..., Ubiquitin profiling of lysophagy identifies actin stabilizer CNN2 as a t...
Assays: Affinity purification coupled with mass spectrometry proteomics (human), Affinity purification coupled with mass spectrometry proteomics (human), Affinity purification coupled with mass spectrometry proteomics (human), Affinity purification coupled with mass spectrometry proteomics (human), Affinity purification coupled with mass spectrometry proteomics (human), Affinity purification coupled with mass spectrometry proteomics (human), Affinity purification coupled with mass spectrometry proteomics (human), Affinity purification coupled with mass spectrometry proteomics (human), Affinity purification coupled with mass spectrometry proteomics (human), Bottom-up proteomics (human), Bottom-up proteomics (mouse), Bottom-up proteomics (mouse), Bottom-up proteomics (mouse), Bottom-up proteomics (mouse), Gel-based experiment (human), Phosphoproteomics / Bottom-up proteomics (mouse), Proximity-proteomics-based autophagosome content profiling (human), SWATH MS (human), SWATH MS (human, mouse), SWATH MS (mouse), Shotgun proteomics (human), Shotgun proteomics (human), Shotgun proteomics (human), Shotgun proteomics (human), Shotgun proteomics (human), Shotgun proteomics (human), Shotgun proteomics (human), Shotgun proteomics (human), Shotgun proteomics (human), Shotgun proteomics (human), Shotgun proteomics (human), Shotgun proteomics (human), Shotgun proteomics (human), Shotgun proteomics (human), Shotgun proteomics (human), Shotgun proteomics (human), Shotgun proteomics (human, mouse), Shotgun proteomics (human, mouse), Shotgun proteomics (human, mouse), Shotgun proteomics (human, mouse), Shotgun proteomics (macaque), Shotgun proteomics (mouse), Shotgun proteomics (mouse), Shotgun proteomics (mouse), Shotgun proteomics (mouse), Shotgun proteomics (mouse), Shotgun proteomics (mouse), Shotgun proteomics (mouse), Shotgun proteomics (mouse), Shotgun proteomics (mouse), Shotgun proteomics (mouse), Shotgun proteomics (mouse), Shotgun proteomics (mouse), Shotgun proteomics (mouse), Shotgun proteomics (mouse), Shotgun proteomics (mouse), Shotgun proteomics (mouse), Shotgun proteomics (mouse), Shotgun proteomics (mouse), Shotgun proteomics (mouse), Shotgun proteomics (mouse), Shotgun proteomics (mouse), Shotgun proteomics (mouse), Shotgun proteomics (mouse), Shotgun proteomics (mouse), Shotgun proteomics (mouse), Shotgun proteomics (rat), Untargeted Proteomics (mouse)
Snapshots: Snapshot 1
The bone marrow in the skull is important for shaping immune responses in the brain and meninges, but its molecular makeup among bones and relevance in human diseases remain unclear. Here, we show that the mouse skull has the most distinct transcriptomic profile compared with other bones in states of health and injury, characterized by a late-stage neutrophil phenotype. In humans, proteome analysis reveals that the skull marrow is the most distinct, with differentially expressed neutrophil-related ...
Snapshots: No snapshots
Submitter: Aditi Methi
Assay type: Proteomics
Technology type: Mass Spectrometry
Investigation: Proteomics (Published)
Organisms: Homo sapiens, Mus musculus
SOPs: No SOPs
Data files: Multi-omics and 3D-imaging reveal bone heteroge...
Snapshots: No snapshots