Description
PTD-DBM Peptide Vial
PTD-DBM peptide vials provide a sterile solution for storing peptides, maintaining their quality for dependable research results. They offer precise measurement capabilities, ensuring accurate dosing and reproducibility in experiments. Research professionals can benefit from the flexibility to adjust peptide concentrations, tailoring studies to unique research goals.
Peptide Storage
PTD-DBM peptide vials offer a lyophilised solid peptide that dissolves easily in sterile or bacteriostatic water for in vitro applications. To maintain integrity, store them in a dry, cool environment, ideally in a fridge at 2°C to 8°C, protected from light and heat. Sealed storage preserves quality by limiting exposure to air and humidity.
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PTD-DBM Research
PTD-DBM peptide is a targeted therapeutic agent derived from the Protein Transduction Domain (PTD) system, renowned for its ability to facilitate intracellular delivery. This peptide is engineered by conjugating the PTD with the DBM (DNA-binding moiety), enabling efficient cellular penetration and interaction at the molecular level. Its primary property revolves around its capability to bind specific DNA sequences, offering potential in gene regulation and modification studies.
Mechanistically, PTD-DBM leverages the PTD’s internalisation properties to bypass cell membranes non-disruptively, ensuring consistent delivery into target cells without compromising cellular integrity. Once internalised, the DBM domain interacts with target DNA segments, potentially triggering transcriptional activation or silencing, depending on the therapeutic goal.
With broad applications in gene therapy, epigenetics, and regenerative medicine, PTD-DBM holds promise for selective modulation of gene expression, making it an innovative research tool and a prospective candidate for the treatment of genetic disorders at a cellular level.
Further evidence suggests that PTD-DBM peptide holds a crucial role in promoting hair follicle development due to its ability to facilitate targeted intracellular delivery and influence gene expression. By effectively penetrating cells and interacting with specific DNA regions, PTD-DBM may activate pathways involved in hair follicle growth and regeneration. This mechanism could pave the way for innovative applications in regenerative medicine, particularly in addressing conditions like alopecia. Its capacity for precise modulation of gene activity offers a promising approach to enhancing hair follicle development and restoring healthy hair growth.
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