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neural tissue dissociation kit postnatal neurons  (Miltenyi Biotec)


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    Miltenyi Biotec neural tissue dissociation kit postnatal neurons
    Neural Tissue Dissociation Kit Postnatal Neurons, supplied by Miltenyi Biotec, used in various techniques. Bioz Stars score: 97/100, based on 119 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/neurons/Neural+Tissue+Dissociation+Kit+-+Postnatal+Neurons/bio_rxiv__64898__2026__07__02__735775-309-6-11
    Average 97 stars, based on 119 article reviews
    neural tissue dissociation kit postnatal neurons - by Bioz Stars, 2026-09
    97/100 stars

    Images

    Related Articles

    Isolation:

    Article Title: Neuronal activity-dependent mechanisms of small cell lung cancer pathogenesis
    Article Snippet: .. Neurons were isolated from the brains of CD1 mice using the Neural Tissue Dissociation Kit - Postnatal Neurons (Miltenyi), followed by the Neuron Isolation Kit, Mouse (Miltenyi) per the manufacturer’s instructions. .. After isolation, 300,000 neurons were plated onto circular glass coverslips (Electron Microscopy Services) pre-treated for 20 min at 37 °C with poly- l -lysine (Sigma) and then 3 h at 37 °C with 5 μg ml −1 mouse laminin (Thermo Fisher).

    Article Title: Caspase-8 expression in CD8 + T cells promotes pathogen restriction in the brain during Toxoplasma gondii infection
    Article Snippet: Serum cytokine levels were detected according to the manufacturer’s instructions using Quantikine enzyme-linked immunosorbent assay (ELISA) (Mouse IL-12 p40 allele specific, R&D Systems, catalog no. M1240) and DuoSet ELISA (Mouse IFN-gamma, R&D Systems, catalog no. DY485). .. Purified cell populations isolated to measure excision of Casp8 were collected according to the manufacturer’s instructions: neurons (Miltenyi Biotech, catalog no. 130-115-390), ACSA2 + astrocytes (Miltenyi Biotech, catalog no. 130-097-678), CD11b + microglia (Miltenyi Biotech, catalog no. 130-093-634), monocytes (Miltenyi Biotech, catalog no. 130-100-629), and CD8α + T cells (Miltenyi Biotech, catalog no. 130-104-075). .. Brain homogenate was homogenized in TRIzol (Thermo Fisher Scientific, catalog no. 15-596-026), and RNA was extracted according to the manufacturer’s protocol. cDNA was then generated using a High-Capacity Reverse Transcription Kit (Applied Biosystems, catalog no. 4374967). qPCR was performed using 2× Taq-based Master Mix (Bioline, catalog no. 21105) and Taq Man gene expression assays (Thermo Fisher Scientific, catalog no. 4331182).

    Article Title: Sex-specific systemic and brain metabolic responses to a standardized ketogenic diet in mice.
    Article Snippet: Then, brains were collected and placed in ice-cold phosphate-buffered saline (PBS) before being dissociated into single-cell suspensions using the Adult Brain Dissociation Kit (130-107- 677, Miltenyi). .. After dissociation, astrocytes were labeled using the ACSA-2 antibody (1:10; 130-097-678, Miltenyi)96, and neurons were isolated via negative selection (130-115-389, Miltenyi). .. RNA extraction from isolated cells was performed using RNeasy Mini Kit (74104, Qiagen).

    Article Title: Neuronal activity-dependent mechanisms of small cell lung cancer pathogenesis.
    Article Snippet: .. Co-culture of SCLC cells with primary mouse neurons Neurons were isolated from the brains of CD1 mice using the Neural Tissue Dissociation Kit - Postnatal Neurons (Miltenyi), followed by the Neuron Isolation Kit, Mouse (Miltenyi) per the manufacturer’s instructions. .. After isolation, 300,000 neurons were plated onto circular glass coverslips (Electron Microscopy Services) pre-treated for 20 min at 37 °C with poly-l-lysine (Sigma) and then 3 h at 37 °C with 5 μg ml−1 mouse laminin (Thermo Fisher).

    Purification:

    Article Title: Caspase-8 expression in CD8 + T cells promotes pathogen restriction in the brain during Toxoplasma gondii infection
    Article Snippet: Serum cytokine levels were detected according to the manufacturer’s instructions using Quantikine enzyme-linked immunosorbent assay (ELISA) (Mouse IL-12 p40 allele specific, R&D Systems, catalog no. M1240) and DuoSet ELISA (Mouse IFN-gamma, R&D Systems, catalog no. DY485). .. Purified cell populations isolated to measure excision of Casp8 were collected according to the manufacturer’s instructions: neurons (Miltenyi Biotech, catalog no. 130-115-390), ACSA2 + astrocytes (Miltenyi Biotech, catalog no. 130-097-678), CD11b + microglia (Miltenyi Biotech, catalog no. 130-093-634), monocytes (Miltenyi Biotech, catalog no. 130-100-629), and CD8α + T cells (Miltenyi Biotech, catalog no. 130-104-075). .. Brain homogenate was homogenized in TRIzol (Thermo Fisher Scientific, catalog no. 15-596-026), and RNA was extracted according to the manufacturer’s protocol. cDNA was then generated using a High-Capacity Reverse Transcription Kit (Applied Biosystems, catalog no. 4374967). qPCR was performed using 2× Taq-based Master Mix (Bioline, catalog no. 21105) and Taq Man gene expression assays (Thermo Fisher Scientific, catalog no. 4331182).

    Saline:

    Article Title: Exploiting porphyrin metabolism to inhibit angiogenesis
    Article Snippet: .. After rinsing in Dulbecco’s Phosphate Buffered Saline (DPBS), tissues were incubated with the Neural Tissue Dissociation Kit-Postnatal Neurons (Miltenyi Biotec, Bergisch Gladbach, DE, catalog n 130-092-628) according to the manufacturer instruction. ..

    Article Title: Exploiting porphyrin metabolism to inhibit angiogenesis.
    Article Snippet: .. After rinsing in Dulbecco’s Phosphate Buffered Saline (DPBS), tissues were incubated with the Neural Tissue Dissociation Kit-Postnatal Neurons (Miltenyi Biotec, Bergisch Gladbach, DE, catalog n 130-092-628) according to the manufacturer instruction. ..

    Incubation:

    Article Title: Exploiting porphyrin metabolism to inhibit angiogenesis
    Article Snippet: .. After rinsing in Dulbecco’s Phosphate Buffered Saline (DPBS), tissues were incubated with the Neural Tissue Dissociation Kit-Postnatal Neurons (Miltenyi Biotec, Bergisch Gladbach, DE, catalog n 130-092-628) according to the manufacturer instruction. ..

    Article Title: Exploiting porphyrin metabolism to inhibit angiogenesis.
    Article Snippet: .. After rinsing in Dulbecco’s Phosphate Buffered Saline (DPBS), tissues were incubated with the Neural Tissue Dissociation Kit-Postnatal Neurons (Miltenyi Biotec, Bergisch Gladbach, DE, catalog n 130-092-628) according to the manufacturer instruction. ..

    RNA Extraction:

    Article Title: Single Cell RNAseq Analysis of Thyroid Hormone Effects on Retinal Glial Cells.
    Article Snippet: Retinal extraction and cell dissociation Retinas were isolated from the eyes of both control and T3-treated mice and placed in Dulbecco’s Modified Eagle Medium (ThermoFisher, Richardson, TX, USA). .. One retina was snap-frozen in liquid nitrogen and kept at −80 °C for RNA extraction, while the other retina underwent cellular dissociation using the Neural Tissue Dissociation Kit-Postnatal Neurons (Miltenyi Biotec, cat# 130-094- 802). .. Retinal samples were rinsed twice in DPBS containing calcium, magnesium (Sigma-Aldrich, cat# D8662), and 0.5% BSA before adding 1960 μL of enzyme mix 1.

    Labeling:

    Article Title: Sex-specific systemic and brain metabolic responses to a standardized ketogenic diet in mice.
    Article Snippet: Then, brains were collected and placed in ice-cold phosphate-buffered saline (PBS) before being dissociated into single-cell suspensions using the Adult Brain Dissociation Kit (130-107- 677, Miltenyi). .. After dissociation, astrocytes were labeled using the ACSA-2 antibody (1:10; 130-097-678, Miltenyi)96, and neurons were isolated via negative selection (130-115-389, Miltenyi). .. RNA extraction from isolated cells was performed using RNeasy Mini Kit (74104, Qiagen).

    Selection:

    Article Title: Sex-specific systemic and brain metabolic responses to a standardized ketogenic diet in mice.
    Article Snippet: Then, brains were collected and placed in ice-cold phosphate-buffered saline (PBS) before being dissociated into single-cell suspensions using the Adult Brain Dissociation Kit (130-107- 677, Miltenyi). .. After dissociation, astrocytes were labeled using the ACSA-2 antibody (1:10; 130-097-678, Miltenyi)96, and neurons were isolated via negative selection (130-115-389, Miltenyi). .. RNA extraction from isolated cells was performed using RNeasy Mini Kit (74104, Qiagen).



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    Image Search Results


    Effect and mechanism of the nano-gelatin on NSCs . (A) A diagram of the layered composite structure of the nano-gelatin after hemostasis. (B) Representative SEM images showing the platelet-derived extracellular vesicles in the nano-gelatin after hemostasis. (C) ALB contents in the cryogels following hemostasis (N = 4). (D) NGF contents in the cryogels (N = 3). (E) SDF-1 contents in the cryogels (N = 3). (F) Representative images showing NSCs migrating through the Transwell membrane into the plate with cryogels. (G) Quantification of the NSC numbers that migrated through the Transwell membrane into the plate (N = 4). (H) Representative images of the live/dead staining showing the survival and morphology of NSCs on the cryogels. (I) Cytotoxicity of the cryogels on NSCs by CCK-8 assay. (J) Representative images of immunostaining against F-actin, paxillin, and vinculin for cells encapsulated in the nano-gelatin and the GelMA hydrogel. (K) Representative images of immunostaining against Tuj-1 and GFAP. (L) Volcano plot analyzing DEGs between the nano-gelatin group and the control group. (M) The enriched GO pathways. (N) The enriched KEGG pathways. (O) The heatmaps of DEGs associated with Focal adhesion. (P) Schematic diagram of the potential mechanism by which the nano-gelatin regulates NSC migration and differentiation to promote nerve repair. Statistical analysis was performed using one-way ANOVA followed by Tukey's multiple comparisons test.

    Journal: Bioactive Materials

    Article Title: A cell motility-based selective hydrogel enables rapid generation of nerve-repairing blood clots

    doi: 10.1016/j.bioactmat.2026.05.015

    Figure Lengend Snippet: Effect and mechanism of the nano-gelatin on NSCs . (A) A diagram of the layered composite structure of the nano-gelatin after hemostasis. (B) Representative SEM images showing the platelet-derived extracellular vesicles in the nano-gelatin after hemostasis. (C) ALB contents in the cryogels following hemostasis (N = 4). (D) NGF contents in the cryogels (N = 3). (E) SDF-1 contents in the cryogels (N = 3). (F) Representative images showing NSCs migrating through the Transwell membrane into the plate with cryogels. (G) Quantification of the NSC numbers that migrated through the Transwell membrane into the plate (N = 4). (H) Representative images of the live/dead staining showing the survival and morphology of NSCs on the cryogels. (I) Cytotoxicity of the cryogels on NSCs by CCK-8 assay. (J) Representative images of immunostaining against F-actin, paxillin, and vinculin for cells encapsulated in the nano-gelatin and the GelMA hydrogel. (K) Representative images of immunostaining against Tuj-1 and GFAP. (L) Volcano plot analyzing DEGs between the nano-gelatin group and the control group. (M) The enriched GO pathways. (N) The enriched KEGG pathways. (O) The heatmaps of DEGs associated with Focal adhesion. (P) Schematic diagram of the potential mechanism by which the nano-gelatin regulates NSC migration and differentiation to promote nerve repair. Statistical analysis was performed using one-way ANOVA followed by Tukey's multiple comparisons test.

    Article Snippet: Then, the samples were fixed and stained with astrocyte marker GFAP (1:500, CST, Rabbit mAb #80788) and neuron marker Tuj-1 (1:200, HUABIO, SP06-00) to assess differentiation.

    Techniques: Derivative Assay, Membrane, Staining, CCK-8 Assay, Immunostaining, Control, Migration

    (A) Experimental design for chemogenetic suppression of excitatory neurons during in vivo imaging of ATP dynamics and microglial morphology. AAV-CaMKII-Cre, AAV-hSyn-DIO-hM4D(Gi)-mCherry, and AAV-hSyn-GRAB-ATP1.0 were injected into the motor cortex of Cx3cr1 GFP/+ mice, followed by DCZ administration. (B) Representative time-lapse images showing ATP events and microglial morphology near mCherry-positive Gi-DREADD-expressing neurons after DCZ administration. Dashed lines indicate mCherry-positive neuronal somata. The arrowhead indicates an ATP hotspot, and the arrow indicates a newly formed BE. (C and D) Quantification of ATP hotspot frequency (C) and ATP hotspot size (D) before and after DCZ administration (one-way ANOVA with Dunnett’s multiple-comparisons test, n = 4 mice). (E) Nearest-neighbor distance between ATP hotspots and mCherry-positive Gi-DREADD-expressing neurons compared with a random spatial model (one-way ANOVA with Dunnett’s multiple-comparisons test, n = 4 mice). (F) Quantification of BEs per ATP hotspot before and after DCZ administration (one-way ANOVA with Dunnett’s multiple-comparisons test, n = 4 mice). (G) Correlation between BE number and ATP hotspot area after DCZ administration (simple linear regression; n = 30 ATP hotspots; data collected from 4 mice). (H) Experimental design for freely moving miniature two-photon imaging combined with EEG and EMG recordings to monitor ATP dynamics across sleep-wake states. (I) Representative EEG spectrograms, EMG traces, and vigilance-state classifications during dark and light phases. W, wake; N, NREM sleep; R, REM sleep. (J) Quantification of time spent in wake, NREM sleep, and REM sleep during dark and light phases (n = 6 mice). (K) Representative GRAB-ATP fluorescence images during dark and light phases. Arrowheads indicate ATP hotspots. (L) Quantification of ATP hotspot event frequency during dark and light phases (two-sided paired t-test, n = 6 mice). (M) Quantification of ATP hotspot area during dark and light phases (two-sided unpaired t-test; dark, n = 24 ATP hotspots; light, n = 57 ATP hotspots; data collected from 6 mice). (N) Representative images showing microglial BEs during awake and NREM sleep states. Insets show BE dynamics over time. (O) Quantification of BE number during awake and NREM sleep states (two-sided paired t-test, n = 5 mice). Data are shown as mean ± SEM. Individual points represent mice, ATP hotspots, or BEs as indicated. ns, not significant.

    Journal: bioRxiv

    Article Title: Astrocyte-to-microglia purinergic signaling mediates synaptic shielding and promotes neuronal activity

    doi: 10.64898/2026.07.05.735345

    Figure Lengend Snippet: (A) Experimental design for chemogenetic suppression of excitatory neurons during in vivo imaging of ATP dynamics and microglial morphology. AAV-CaMKII-Cre, AAV-hSyn-DIO-hM4D(Gi)-mCherry, and AAV-hSyn-GRAB-ATP1.0 were injected into the motor cortex of Cx3cr1 GFP/+ mice, followed by DCZ administration. (B) Representative time-lapse images showing ATP events and microglial morphology near mCherry-positive Gi-DREADD-expressing neurons after DCZ administration. Dashed lines indicate mCherry-positive neuronal somata. The arrowhead indicates an ATP hotspot, and the arrow indicates a newly formed BE. (C and D) Quantification of ATP hotspot frequency (C) and ATP hotspot size (D) before and after DCZ administration (one-way ANOVA with Dunnett’s multiple-comparisons test, n = 4 mice). (E) Nearest-neighbor distance between ATP hotspots and mCherry-positive Gi-DREADD-expressing neurons compared with a random spatial model (one-way ANOVA with Dunnett’s multiple-comparisons test, n = 4 mice). (F) Quantification of BEs per ATP hotspot before and after DCZ administration (one-way ANOVA with Dunnett’s multiple-comparisons test, n = 4 mice). (G) Correlation between BE number and ATP hotspot area after DCZ administration (simple linear regression; n = 30 ATP hotspots; data collected from 4 mice). (H) Experimental design for freely moving miniature two-photon imaging combined with EEG and EMG recordings to monitor ATP dynamics across sleep-wake states. (I) Representative EEG spectrograms, EMG traces, and vigilance-state classifications during dark and light phases. W, wake; N, NREM sleep; R, REM sleep. (J) Quantification of time spent in wake, NREM sleep, and REM sleep during dark and light phases (n = 6 mice). (K) Representative GRAB-ATP fluorescence images during dark and light phases. Arrowheads indicate ATP hotspots. (L) Quantification of ATP hotspot event frequency during dark and light phases (two-sided paired t-test, n = 6 mice). (M) Quantification of ATP hotspot area during dark and light phases (two-sided unpaired t-test; dark, n = 24 ATP hotspots; light, n = 57 ATP hotspots; data collected from 6 mice). (N) Representative images showing microglial BEs during awake and NREM sleep states. Insets show BE dynamics over time. (O) Quantification of BE number during awake and NREM sleep states (two-sided paired t-test, n = 5 mice). Data are shown as mean ± SEM. Individual points represent mice, ATP hotspots, or BEs as indicated. ns, not significant.

    Article Snippet: For chemogenetic neuronal silencing experiments, deschloroclozapine (DCZ; #HY-42110, MedChemExpress) was administered intraperitoneally at 100 μg/kg during in vivo imaging.

    Techniques: In Vivo Imaging, Injection, Expressing, Imaging, Fluorescence