PEG-MGF 6 mg Monthly subscription

Original price was: $135.00.Current price is: $75.00. / month

Compound: PEGylated Mechano-Growth Factor (PEG-MGF) 

Concentration: 2mg per vial 

Format: Lyophilized White Powder (Strictly for In-Vitro Laboratory Use) 

Chemical Classification: IGF-1 Splice Variant (Isoform)

Chemical Profile: PEG-MGF is a truncated and chemically modified form of Insulin-Like Growth Factor 1 (IGF-1), specifically the splice variant known as Mechano-Growth Factor (MGF). In biological systems, MGF is naturally expressed in muscle tissue in response to mechanical overload or damage. This synthetic version features the addition of a Polyethylene Glycol (PEG) group, a process known as pegylation. This modification significantly enhances the peptide’s stability and bioavailability in research settings.

  1. PEG-MGF Structure & Pegylation Native MGF has a very short half-life in the bloodstream (measured in minutes) because it is rapidly cleared by the kidneys or degraded by enzymes. This limits its utility in systemic research models. Pegylation involves attaching a polyethylene glycol polymer to the peptide chain. This process acts as a protective shield, reducing renal clearance and preventing enzymatic breakdown. In laboratory studies, this modification extends the half-life from minutes to days, allowing researchers to administer the compound via a single systemic injection rather than requiring frequent, localized intramuscular administration.
  2. PEG-MGF and Skeletal Muscle Research in murine models of muscle injury focuses on PEG-MGF’s ability to stimulate myoblast (muscle stem cell) proliferation and differentiation. Studies utilizing international endocrinology protocols suggest that PEG-MGF activates the IGF-1 receptor with similar potency to native IGF-1, potentially triggering signaling pathways linked to hypertrophy (increase in muscle fiber size) and energy homeostasis. Further research indicates that it may modulate inflammation by recruiting macrophages and neutrophils to sites of tissue damage, thereby creating a cellular environment conducive to repair rather than scar formation.
  3. Research in Heart Muscle Repair The Department of Bioengineering at the University of Illinois has conducted studies examining MGF’s role in cardiac hypoxia models. Research suggests that PEG-MGF administration may inhibit programmed cell death (apoptosis) in cardiomyocytes following ischemic events. Furthermore, the peptide is being investigated for its potential to recruit cardiac stem cells to injured regions, providing a model for studying regeneration and the reduction of pathologic hypertrophy (cardiac remodeling) after myocardial infarction.
  4. Bone Repair and Growth In rabbit models of skeletal injury, PEG-MGF has been observed to accelerate the rate of bone mineralization. Research indicates that the peptide may boost the proliferation of osteoblasts (bone-forming cells). Comparative studies demonstrated that subjects treated with MGF achieved healing benchmarks at four weeks that were only seen at six weeks in control groups. This makes PEG-MGF a primary compound of interest for studying accelerated fracture recovery protocols.
  5. Protecting Cartilage Research focusing on chondrocytes (the cells responsible for cartilage maintenance) suggests that MGF enhances cell migration from bone into the cartilaginous matrix. Because cartilage has poor vascularity and heals slowly, PEG-MGF is being studied as a long-acting agent that could theoretically be retained in joint spaces for extended periods. This offers a model for investigating therapies aimed at preserving cartilage integrity in degenerative conditions.
  6. Dental Applications In cell cultures of human periodontal ligament cells, PEG-MGF has been shown to improve osteogenic differentiation and increase the expression of Matrix Metalloproteinases (MMP-1 and MMP-2). These enzymes are critical for tissue remodeling. Current research explores whether these mechanisms can facilitate the re-attachment of ligaments to bone, offering potential insights into preserving avulsed teeth or improving outcomes in periodontal reconstruction models.
  7. Potential Neuroprotective Effects Recent reviews of central nervous system (CNS) studies have explored MGF expression in aging models. Data suggests that MGF is naturally upregulated in the brain following hypoxia. In mouse models of ALS (Amyotrophic Lateral Sclerosis), administration of the peptide was correlated with a reduction in motor neuron loss and improved muscle function. Furthermore, age-dependent studies indicate that overexpression of MGF may help retain cognitive performance and mitigate neuron degeneration in senescent mice.

 

Disclaimer: This product is sold explicitly as a chemical reagent for laboratory research and testing purposes only. It is not intended for human consumption, diagnostic, or therapeutic use. Bodily introduction of any kind into humans or animals is strictly forbidden by law.

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