| Field | Specification |
|---|---|
| Mfr No | |
| Alternative Names | Beta-nerve growth factor|Beta-NGF|NGF|NGFB |
| Assay Time | |
| Detection Method | |
| Detection Range | |
| Product Type | |
| Reactivity | |
| Sample Type(s) | Serum, Plasma, Cell Culture Supernatant, cell or tissue lysate, Other liquid samples |
| Sensitivity | |
| Species | |
| Storage | |
| Target | |
| UniProt # |
Background
mouse NGF/NGFβ (Nerve growth factor) is a molecular target commonly studied in neuroscience, immunology, and stem cells research. Growth factors are signaling proteins that influence proliferation, differentiation, and tissue remodeling through receptor activation.
Biological role and mechanism
The biological role of NGF/NGFβ is typically understood in terms of its molecular category and interaction network. Depending on the model system, it may participate in cell–cell communication, intracellular signaling, enzymatic processing, or regulation of gene expression programs. Mechanistic interpretation is often strengthened by considering upstream regulators and downstream readouts rather than relying on a single marker.
Expression and abundance of NGF/NGFβ can vary by tissue, cell type, and physiological state. In many systems, levels are influenced by factors such as developmental stage, immune activation, metabolic status, and cellular stress. Because sample matrix and pre-analytical handling can affect measured concentrations, interpretation is typically strongest when experiments keep collection and processing consistent across groups.
Nomenclature and related terms
NGF/NGFβ (Nerve growth factor) may also be referenced as Beta-nerve growth factor, Beta-NGF, and NGF in the literature or in databases. When comparing results across studies, confirm that the reported analyte refers to the same molecule, species context, and molecular form (e.g., precursor vs mature protein, or soluble vs membrane-associated forms).
Why it matters in research
- Understanding how NGF/NGFβ relates to neuronal signaling and synaptic function, neuroinflammation, neurodegeneration models, and brain–body communication in neuroscience, immunology, and stem cells research.
- Interpreting shifts in NGF/NGFβ levels alongside other pathway components or complementary markers.
- Connecting molecular changes to phenotypes such as inflammation, remodeling, metabolism shifts, or cell-state transitions (context-dependent).
Molecular forms and interpretation
For some targets, isoforms, proteolytic processing, or post-translational modifications (such as phosphorylation or glycosylation) can influence function and apparent abundance. If multiple molecular forms are expected in your model, align interpretation with the form most relevant to the biological question.
Disease and translational relevance
NGF/NGFβ has been investigated across diverse physiological and disease contexts, and changes in its abundance have been reported in areas aligned with neuroscience, immunology, and stem cells studies. These associations are interpreted as research findings rather than diagnostic or therapeutic claims, and they should be evaluated alongside model-specific covariates and study design.
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Controlling the Spatiotemporal Release of Nerve Growth Factor by Chitosan/Polycaprolactone Conduits for Use in Peripheral Nerve Regeneration
IF: 5.924 Journal: International Journal of Molecular Sciences Cited Date: 2022-03-18
Shikonin mitigates cyclophosphamide-induced cardiotoxicity in mice: the role of sirtuin-1, NLRP3 inflammasome, autophagy, and apoptosis
IF: 2.8 Journal: Journal of Pharmacy and Pharmacology Author: Department of Pharmaceutical Sciences, College of Pharmacy, Princess Nourah bint Abdulrahman University, P.O. Box 84428, Riyadh 11671, Saudi Arabia. Cited Date: 2024-09-13
Nerve growth factor released from collagen scaffolds protects axotomized cholinergic neurons of the basal nucleus of Meynert in organotypic brain slices
IF: 2.554 Journal: Journal of Neuroscience Methods Cited Date: 2017-12-05
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